AWF · E-5 BIB · Entry 4 of 5 · Publication

AVIATION STRUCTURAL MECHANIC E

NAVEDTRA 14327 · CHAPTER 6, 7, 8

CHAPTER 6

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NOTE: To convert Fahrenheit to Celsius (centigrade), use 5/9(F–32). For example, –4°F is converted as: 5/9(–4 – 32) = 5/9 X –36 = –20ºC. Celsius to Fahrenheit is converted using 9/5°C + 32. For example, –55°C is converted as: 9/5(–55) + 32 = –99 + 32 = –67°F. The aircraft manufacturer considers these varia- tions in outside air temperature and atmospheric pres- sure when designing the aircraft. ATMOSPHERIC CONSIDERATIONS Pressurization and air-conditioning of aircraft are necessary at high altitudes. With operational ceilings now in excess of 50,000 feet, flight personnel, and in some cases aircraft components, are supplied with an artificial means of maintaining a reasonable pressure around the entire body and/or equipment. This is done by sealing off the entire cabin/cockpit and any equipment area that may require pressurization and maintaining an inside air pressure equivalent to that at substantially lower altitudes. This is known as a pres- surized cabin, cockpit, or compartment, as applicable. In addition to pressurizing them, the cabin, cockpit, and some compartments are also air-conditioned, if the aircraft is to fly at high speeds. This requirement is partly due to the difference in temperatures at various altitudes and also to aerodynamic heating. For example, an aircraft flying at supersonic speeds at an altitude of 35,000 feet may generate a temperature on its skin of 200°F, and twice that temperature at altitudes near sea level. In addition to aerodynamic heating, other factors affecting cabin/cockpit temperatures are engine heat, heat from the sun (solar heat), heat from electrical units, and heat from the body. Through research and test, it was determined that the average total temperature of these five heat sources will raise cabin/cockpit temperature to approximately 190°F (88°C). Through experiments it was determined that the maximum temperature that a person can withstand and maintain efficiency for extended periods is 80°F (27°C); therefore, air-conditioning of the cabin/cockpit area is just as essential as pressurization. Under low-speed operating conditions at low temperature, cabin/cockpit heating may be required. The proper operation of much of today’s aircraft electronic equipment is also dependent on maintaining a reasonable operating temperature that will prolong the life of various components. In most cases, equipment cooling is provided by teeing off the ducting from the cabin/cockpit system. On other aircraft, a separate cooling system may be used primarily for equipment cooling. Q6-1. What is the atmospheric pressure at sea level? Q6-2. As an aircraft ascends to higher altitude, the decrease in atmospheric pressure may affect flight personnel. What is the most noticeable effect? Q6-3. The atmospheric pressure above 35,000 feet is extremely low. This condition may cause what effect on the human body? ENVIRONMENTAL CONTROL SYSTEMS LEARNING OBJECTIVE : Recognize the need for environmental control systems (ECS). The environmental control systems of most aircraft include cabin air-conditioning and pressurization, equip- ment cooling, defogging, windshield washing and rain removal, and equipment pressurization sub- systems. Coverage in this chapter is limited to air cycle air-conditioning and pressurization. There are five requirements necessary for the successful functioning of a pressurization and air-conditioning system: • The cabin must be designed to withstand the necessary pressure differential. This is primarily an airframe engineering and manufacturing problem. • There must be a means of limiting the maximum pressure differential to which walls will be subjected. This is provided by the cabin safety valve. • The aircraft must have an adequate supply of compressed air. This is provided through the compressor section of the jet engine. A separate compressor or supercharger is used on aircraft having reciprocating engines. On all jet aircraft, the air is taken directly from the compressor section of the jet engine. This is generally referred to as bleed air. • There must be a means of cooling the bleed air before it enters the cabin. This is provided by an aircraft refrigeration unit. • There must be a means of controlling the cabin pressure. This is provided by the cabin pressure 6-2

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regulator, which regulates the outflow of air from the cabin. In addition to the major components, various valves, controls, and other related units are neces- sary to complete an aircraft pressurization and air-conditioning system. The design, construction, and use of these components may vary somewhat with different manufacturers; however, the systems on all jet aircraft operate on the same principles. Q6-4. List the five requirements necessary for successful functioning of a pressurization and air-conditioning system. Q6-5. List three systems that are included in the environmental control system. AIR CYCLE AIR-CONDITIONING SYSTEMS LEARNING OBJECTIVE : Recognize the components and operating principles of air cycle air-conditioning systems (ACS). Most naval aircraft are designed with an air cycle ACS because it is efficient for the weight and space required and is relatively trouble-free. The name air cycle or air-to-air comes from the principle of cooling the air without the use of refrigerants by compression and expansion of bleed air. The P-3 air cycle ACS is an example of this type of system. DESCRIPTION The P-3 air-conditioning system is comprised of two independent air cycle cooling systems of identical capacity, each with its own temperature control system, and fresh air sources. Fresh air sources are comprised of two engine-driven compressors (EDCs) and the air multiplier package (AMP). Fresh Air Sources In order for the air-conditioning system to function, air at the proper temperature and flow volume must be available. The fresh air sources are the EDCs and the AMP. The EDCs are single-stage compressors with fully automatic controls. They supply air to the air cycle cooling systems during flight and are operable only when no. 2 and no. 3 engines are running. The EDCs also serve as a secondary air source for the air cycle cooling systems during ground operations. The AMP is the primary air source for the air cycle cooling systems only during static ground operations when the auxiliary power unit (APU) is running. The AMP interacts with the APU to such an extent that it is referred to as the APU/AMP combination. EDCs The P-3 aircraft has two EDCs (fig. 6-1), to supply air to each of the two air cycle cooling systems. During EDC operation, there is no interconnect between the flight station and cabin systems until well downstream in the air distribution and exhaust system. The no. 2 engine EDC supplies air to the right (flight station) air cycle cooling system and the no. 3 EDC supplies air to the left (cabin) air cycle cooling system. The duct crossover is in the APU compartment and allows the ducts some flexibility for expansion. The EDC is mounted to a drive pad on the left side of the engine reduction gearbox assembly. The EDCs are adjusted for a maximum power requirement of 81 horsepower (hp) to deliver 60 pounds of air per minute at sea level. APU/AMP The APU/AMP combination supplies air to the air cycle cooling systems during ground operation only. It 6-3 Figure 6-1.—EDC view from left.

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serves as a single source of air with a flow rate equal to that supplied by the two EDCs. With the engines operating at normal revolutions per minute (rpm), each EDC supplies air to its respective air cycle cooling system at the rate of approximately 60 pounds per minute (lb/min). The APU/AMP combination supplies air to a duct common to both air cycle cooling systems at a rate of approximately 125 lb/min. The air volume divides in the air cycle cooling system interconnection duct, with half going to the flight station air cycle cooling system and half to the cabin air cycle cooling system. An air-conditioning system that employs a single source of air to supply two air cycle cooling systems that operate at different back-pressures will have air flow problems unless a control is added to balance airflow. If airflow is not properly balanced, the air cycle cooling system with the lower back-pressure (as the result of more air bypass) will rob air from the unit with the higher back-pressure. Two flow-limiting venturis are used to balance airflow when the APU/AMP combination is the air supply source. Figure 6-2 shows an AMP installation. COMPONENTS Components include a heat exchanger package, turbine refrigeration unit, water separator, water spray system, and a flow-limiting venturi. Heat Exchanger Package The function of the heat exchanger package (fig. 6-3) is to reduce the temperature of the supply air furnished by the EDC or AMP. Two heat exchanger packages, each consisting of a primary and secondary section, electric fan assembly, check valve, and ram air duct check valve are installed on each side of the nose wheel well. The left heat exchanger package supplies air for the cabin systems and the right package cools flight station air. 6-4 Figure 6-2.—AMP installation.

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The heat exchanger unit is constructed of a brazed core, which contains a series of metal plates separated by layers of fins that form a passage for cooling air and separate passage for supply air. During ground operation, the fan assembly installed on the heat exchanger forces ambient air through the heat exchanger and overboard. A check valve, installed at the fan outlet, directs ambient airflow in the heat exchanger. Another check valve, located in the ram air inlet duct, closes, preventing ambient air from spilling overboard through the ram air duct check valve. The heat exchanger check valve closes, and the ram air is used to cool the supply air. Turbine Refrigeration Unit Each air cycle cooling system has a turbine refrigeration unit (fig. 6-4) installed on each side of the 6-5 Figure 6-3.—P-3 air-conditioning system schematic diagram. Figure 6-4.—Turbine refrigeration unit.

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aircraft nose wheel well. The refrigeration unit, along with the secondary section of the heat exchanger, lowers the temperature of supply air so that it may be used for aircraft cooling. The refrigeration unit consists of a rotating assembly and a housing assembly. The rotating assembly mounts a turbine scroll and a compressor scroll, enclosing the rotating assembly. The bottom of the bearing support housing forms a sump for lubricating oil. A sight gauge is provided in the sump for determining the level of lubrication oil. Each of the three sections formed by the housing assembly is sealed to prevent air and oil leakage. Compressed supply air, after it has passed through the primary section of the heat exchanger, is ducted into the compressor section of the turbine where it is further compressed as it passes through the compressor scroll. The compressed air, with a temperature slightly above that of ambient air, is then routed to the secondary section of the heat exchanger, where it is cooled to a lower temperature. Returning from the heat exchanger, the compressed air enters the turbine scroll, expanding as it flows from the nozzle through the turbine wheel to the outlet duct. As the air is expanded, it drives the turbine wheel at high speed. Mechanical energy, which is extracted from the air to drive the turbine wheel, is transmitted to and absorbed by the compressor wheel. This mechanical energy reduces the supply air pressure and temperature to the point where the air becomes usable for aircraft cooling. Lubrication of the rotating assembly bearings is accomplished by an air-oil mist. Oil is absorbed by wicks, which extend from the oil sump to the shaft of the rotating assembly. Oil is distributed on the rotating assembly shaft as a result of capillary action in the wicks. Rotation of the shaft causes the oil to diffuse into an air-oil mist. The action of the oil slingers causes the air-oil mist to pass through the bearings, providing lubrication. Water Separator The water separator (fig. 6-5) removes moisture from the air before it is distributed within the aircraft. Two water separator units are installed in the APU compartment. The cabin system unit is located in the aft upper left section of the APU compartment and the flight station unit is located in the forward upper right section. The water separator consists of a condenser assem- bly and a collector assembly. The condenser assembly is a coalescer. An ice-limiting sensor is installed in the inlet section of the unit to protect against icing and a check valve is installed in the water separator outlet to prevent reverse airflow through the unit. 6-6 Figure 6-5.—Dual check valve, water separator, and ice-limiting sensor.

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As supply air passes through the coalescer, moisture particles are condensed into droplets. After the air has passed through the coalescer, hundreds of small vanes create a swirling motion of the air and the airborne water droplets. This swirling motion centrifuges most of the water droplets from the air into the coalescer sump, where the water accumulates and drains overboard. The air, relieved of approximately 70 percent of its moisture, is then ducted into the aircraft and distributed. Water Spray System The water spray system increases basic cooling capacity of the air cycle cooling system by spraying water separator discharge water into the ram air, cooling it by evaporation before the ram air passes through the heat exchanger’s secondary section. Flow-Limiting Venturi Each air cycle cooling system has a flow-limiting venturi installed in the left and right sides of the APU compartment in the air distribution duct between the AMP and the EDC air ducts. The venturi is sized to limit airflow to 67 lb/min from the AMP to the air cycle cooling system to ensure proper flow division and to prevent excessive flow through the aircraft during the heating mode. It functions to limit flow through the refrigeration unit in the event the other refrigeration unit is operating at a different bypass setting; that is, one refrigeration unit is in maximum cooling while the other is modulated toward heating. A check valve is located in the outlet of each venturi to prevent reverse EDC airflow through the venturi. CABIN AND FLIGHT STATION TEMPERATURE CONTROL SYSTEM There are two independent temperature control systems on the aircraft designed to control the temperature of the air cycle cooling system output air. Each system (fig. 6-6) is composed of a selector-indicator, a temperature controller, a master temperature sensor, a duct rate sensor, an ice-limiting 6-7 Figure 6-6.—Temperature control system components.

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sensor, a pressure ratio limiter, and three airflow control valves. Air supplied from the ground-air connection or from the auxiliary ventilation system does not pass through the air cycle cooling system, so the aircraft temperature control system has no control of incoming air from these sources. Temperature control is achieved, either automati- cally or manually, through the three modulating valves. These valves route supply air through the various cooling components to produce the desired output air temperature. The three airflow control valves are driven by servomotors that are controlled by servo-amplifiers. The airflow valve schedule is the same for both manual and automatic modes of operation. The basic difference in operating modes is the method of applying sensing control to the servo-amplifiers. Temperature Control System Selector-Indicator Air-conditioning system control input signals are selected with the selector-indicator. The selector-indicator contains a push-pull knob, a cursor at the edge of the indicator face, an indicator needle, and an indicator flag. Sets of dot markings, one-dot, two-dot, and three-dot, are on the indicator face to facilitate temperature or program selection. The mode of operation is selected by moving the push-pull knob: push for manual operation, pull for automatic. The indicator flag indicates which mode has been selected (MAN or AUTO). The system control voltage (manual) or operating temperature (automatic) is selected by rotating the push-pull knob, clockwise for warmer, counterclockwise for cooler. This moves the cursor at the edge of the instrument face to indicate the program position (automatic) or temperature selection (manual). The indicator needle in the center of the dial is the indicator of the voltmeter that is connected to the temperature controller circuitry. There are three potentiometers inside the selector-indicator assembly. In manual mode, each potentiometer provides a command signal to each of the three airflow control valves (valves A, B, and C) by way of the temperature controller. When an automatic mode is selected, valve A potentiometer provides the temperature controller with the command signal for all three airflow control valves. Temperature Controller The temperature controller is the heart of the temperature control system. It receives and integrates the signals from the selector-indicator, master temperature sensor, duct rate sensor, ice-limiting sensor, and pressure ratio limiter. These signals are used to position the three airflow control valves. The temperature controller is composed of four modules: a programming amplifier module and three transistorized servo-amplifier modules. The pro- gramming amplifier contains the temperature control system automatic mode control circuitry. When automatic mode is engaged, this module integrates the sensor signals with the selector-indicator command signal, and produces the appropriate command signals for the three valve servo-amplifiers. In manual mode, the programming amplifier contributes nothing to system operation. The servo-amplifiers control the operation of the airflow valves and are identified as valve A, B, and C servo-amplifiers. In manual mode, the servo-amplifiers respond to command signals from the three potentiometers in the selector-indicator. In automatic mode, command signals come from the programming amplifier module. Master Temperature Sensor A master temperature sensor is mounted in each system exhaust air duct to sense cabin or flight station air temperatures. The flight station master temperature sensor is in an exhaust duct above and aft of the pilot position. The cabin temperature sensor is in the ex- haust duct above the tactical coordinator (TACCO) station. In automatic mode, the sensor senses the temperature within the aircraft. The heart of the sensor is the thermistor, whose electrical resistance varies inversely with its temperature. The changes of resistance provide reference signals to the temperature controller. The controller combines these signals with the signals from the duct rate sensor and the selector-indicator, and produces a command signal. The command signal is used by the temperature controller to regulate the temperature within the aircraft, by positioning the airflow control valves. Duct Rate Sensor A duct rate sensor is installed in the duct upstream of each ice-limiting sensor. It senses the temperature output air from the air cycle cooling system and the hot air bypass valve (valve C). In automatic mode, the duct rate sensor signals are integrated with the master temperature sensor and selector-indicator signals to regulate system temperature. 6-8

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Ice-Limiting Sensor The purpose of the ice-limiting sensor is to eliminate ice formation in the water separator. An ice-limiting sensor is installed in the inlet of each water separator. Electrical signals from the ice-limiting sensor are sent to the programming amplifier in the temperature controller. The programming amplifier directs the signals to valve A servo-amplifier. The servo-amplifier directs the signals to the servomotor that drives the valve toward an open position. This allows warm air to enter the water separator, which eliminates ice formation in the water separator. The ice-limiting sensor is operative in the manual or automatic mode. Ice formation on the water separator coalescer causes a pressure drop between the water separator inlet and outlet, which is sensed by the ice-limiting sensor. As this pressure drop increases to 2.9 inches of mercury, low-pressure (yellow) relay K3 is actuated. This relay removes voltage to valve A servo-amplifier, which allows only an opening signal to be received. If ice buildup increases differential pressure to 4.1 inches of mercury, high-pressure (red) relay K5 is actuated. This relay removes servo-amplifier signals routed to valve A and supplies a signal to the valve in the open direction only. This causes the valve to open, allowing hot air to enter the water separator and circulate, thus removing ice. Pressure Ratio Limiter Assembly The pressure ratio limiter is mounted on the EDC, and is part of the EDC surge control system. Its function is to relieve or eliminate that part of the total EDC back pressure imposed by the turbine refrigeration units and water separators when the EDC is operating at maximum capacity or is overloaded. It is intended to function above 18,000 feet or during climb and descent. Airflow Control Valves There are three airflow control valves installed in each air cycle system. Their function is to control system air output. The turbine bypass valves (valve A) are located in the nose wheel well in the primary of each heat exchanger outlet to turbine bypass duct. The turbine shutoff valves (valve B) are located in the nose wheel well in the secondary section of each heat exchanger outlet to turbine inlet duct. The hot air bypass valves (valve C) are located in the forward left and right sides of the APU compartment. Valve C controls the amount of hot primary compressor discharge air that is bypassed around the air cycle cooling system. Valve A controls the amount of warm air that is bypassed around the bootstrap refrigeration unit. Valve B controls the volume of air flowing through the refrigeration turbine for cooling. The 3 1/2-inch diameter valves B and C are identical and have the same part number. Valve A has a diameter of 4 1/2 inches. Each valve assembly consists of a butterfly type valve, an alternating current (ac) servomotor, a planetary gear train, and a follow-up potentiometer. The servomotor, gear train, and potentiometer are combined into a single unit called the actuator assembly, which is mounted on the valve housing. The actuator assembly receives signals from the temperature controller to position the butterfly valve during temperature control system operation. TEMPERATURE INDICATOR The selectors, controls, and monitoring equipment for temperature control are mounted in the upper portion of the panel grouping (fig. 6-7). Control of cabin and flight station temperature is achieved through modulation of the two air cycle cooling systems. 6-9 Figure 6-7.—Air-conditioning, cabin air compressors, and cabin pressurization control panels.

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The temperature indicator, TEMP °C, and the three-position TEMP SELECTOR switch are connected to read three different temperature sources as follows: • FLT STA COND AIR position. Temperature of the conditioned air leaving the air cycle cooling system, which is controlled to meet flight stations requirements. • CABIN COND AIR position. Temperature of the conditioned air leaving the air cycle cooling system, which is controlled to meet cabin requirements. • CABIN TEMP position. Temperature of the air leaving the cabin, exhaust air temperature, which is actual cabin temperature. OPERATION The P-3 aircraft is equipped with two temperature control systems, one for the flight station and one for the main cabin area. Each temperature control system consists of a temperature controller, a selector-indicator, a master temperature sensor, a duct rate sensor, and three airflow control valves. To operate the temperature control system, the flight crew sets the selector-indicator at the desired temperature (fig. 6-8). This information is transmitted to the temperature controller, along with signals from the sensors that provide the actual cabin or flight station temperature and the rate of temperature change at the water separator inlet. The temperature controller then positions the three airflow control valves in a programmed schedule to properly blend the hot, warm, and cool air flowing in the air cycle cooling system to obtain the selected flight station or cabin temperature. The temperature control system employs the basic air cycle cooling system, two valve-controlled bypass ducts, and one shutoff valve. The hot air bypass valve (valve C) controls the amount of hot primary compressor discharge air that will be bypassed around the air cycle cooling system. The turbine bypass valve (valve A) controls the amount of warm air that will be bypassed around the turbine refrigeration unit. The turbine shutoff valve B controls the volume of air flowing through the turbine refrigeration unit for cooling. When full cold is commanded, all of the airflow into the air cycle cooling system is being cooled in the turbine refrigeration unit. If the control system demands heating, warm or hot air will bypass various portions of the air cycle cooling system until the desired temperature is obtained. The valve B and C operation schedules are similar in response, but opposite in direction. On the other hand, valve A has a relatively complicated operation schedule. This is because valve A controls the bypass of air that is warm, but close to a comfortable temperature. Under certain atmospheric conditions, water separator bag icing will cause reduced airflow and high 6-10 Figure 6-8.—Selector-indicator.

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back-pressure on the air cycle cooling system. High back-pressure from the air cycle cooling system will cause the pressure ratio across the EDC to exceed its design limits and cause a compressor surge condition. The compressor surge may cause a loss of cooling air at the dump valve or damage the EDC. The ice limit sensor, a pressure switch, senses the pressure differen- tial across the water separator. One side of the pressure switch senses the air pressure upstream from the water separator bag, and the other side senses the air pressure downstream from the water separator bag. When the bag is covered with ice, the airflow is impeded and a greater-than-normal pressure drop develops across the bag. When the pressure differential exceeds 2.9 inches mercury (Hg), a switch actuates in the ice limit sensor ice limiter indicating partial blockage (yellow condi- tion) of the water separator (fig. 6-9). If the water separator icing condition worsens and the ice limiter senses an increase in pressure drop across the water separator bag to 4.1 inches Hg, the high-pressure switch actuates in the ice limit sensor, indicating heavy block- age (red condition) of the water separator. These ice limiting sensor signals are used by the temperature con- trol system, during the automatic mode only, to control water during icing. Figure 6-10 shows the ECS flow. 6-11 Figure 6-9.—Air cycle cooling schematic diagram. Figure 6-10.—ECS block diagram.

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Automatic Mode The automatic mode of operation regulates the cabin or flight station environment at a temperature setting between 65°F (18°C) (full cold, AUTO) and 85°F (29°C) (full hot, AUTO) depending on the setting of the selector bug. The face of the selector-indicator has reference marks on it at settings of 70°F (21°C) (one dot), 73°F (23°C) (two dots), and 80°F (27°C) (three dots). In the automatic mode, the temperature controller receives three inputs and uses them to determine the proper control valve positions. First, the flight crew uses the selector-indicator to select the desired temperature. This tells the controller what the flight crew wants. The master temperature sensor provides the second input to the temperature controller. This device senses the current flight station or cabin ambient temperature. The temperature controller amplifier compares the temperature requested by the flight crew (selector-indicator) with the actual cabin or flight station temperature (master temperature sensor), and develops an output called the program voltage. This signal is a dc voltage command for the three servo-amplifiers to drive the airflow control valves. The selector-indicator needle, called the program position indicator (PPI), is positioned by the command from the program amplifier. The PPI tells the flight crew what the system is going to produce, regardless of the position of the selector bug. The duct rate sensor senses the rate of temperature change in the air supply duct, then it sends a third signal that is proportional to this rate of change to the controller program amplifier. This signal enables the temperature controller to prevent temperature instability when the actual temperature approaches the desired temperature. The duct rate sensor is mounted in the system supply duct at the control valve blending location. This is the point where the hot air bypass, the warm turbine bypass, and the cold turbine refrigeration unit air discharges are blended. As the three airflow control valves move in response to changes in program voltage or position, the temperature of the air will change at a proportional rate. Manual Mode The manual mode of operation for the temperature control system is a backup mode in case the automatic mode fails. In the manual mode, the selector bug commands control valve position rather than setting a temperature. If the flight crew is uncomfortable, the valve positions must be changed by moving the selector bug. The PPI needle should follow the selector bug closely (within one needle width) as the bug is moved. The master temperature sensor, duct rate sensor, and program amplifier inputs are not used in the manual mode. Q6-6. The term air-to-air comes from what principle? Q6-7. The cabin air cycle cooling system EDC is mounted on what engine? Q6-8. What component balances airflow in case of back-pressure? Q6-9. The water separator removes what per- centage of moisture? Q6-10. What component is the heart of the tem- perature control system? Q6-11. When selecting full cold, all of the airflow into the air cycle cooling system is being cooled by what component? Q6-12. What are the modes of operation for the P-3 air cycle cooling system? AIRCRAFT PRESSURIZATION SYSTEMS LEARNING OBJECTIVE : Recognize the purpose and function of an aircraft pres- surization system to include maintenance and troubleshooting operations. As aircraft became capable of obtaining altitudes above that at which flight crews could operate ef- ficiently, a need developed for complete environmental systems. Air conditioning could provide the proper tem- perature and supplemental oxygen could provide sufficient breathable air. The one problem was that not enough atmospheric pressure exists at high altitude to aid in breathing, and even at lower altitudes the body must work harder to absorb sufficient oxygen through the lungs to operate at the same level of efficiency as at sea level. This problem was solved by pressurizing the cockpit/cabin area. PRESSURIZATION SYSTEM The area of an aircraft to be pressurized must be free from all air leaks. This is accomplished by use of 6-12

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seals around tubing, ducting, bolts, rivets, and other hardware that pass through or pierce the pressure-tight area. All panels and large structural components are assembled with sealing compounds. Access and removable doors and hatches have integral seals. Canopies are constructed with inflatable seals. The pressurizing air is the air from the aircraft ACS. The S-3 aircraft incorporates a cabin pressurization subsystem. This regulates the outflow of air from the cabin to control the cabin pressures according to a predetermined schedule. Cabin air is drawn through the internal avionics racks by the cabin exhaust fan and is modulated by the cabin pressure regulator valve. A cabin pressure regulator control provides the pres- surization schedule. SYSTEM OPERATION The cabin pressurization subsystem is managed on the pressure regulator control, which provides five modes of operation: unpressurized, isobaric, differential cabin-to-ambient pressure, dump, and re-pressurization. The cabin pressure schedule is designed to satisfy the requirements of a maximum cabin pressure-to-ambient differential of 6.7 (±0.1) psi and a 5,000 feet cabin altitude at flight altitudes between 5,000 and 25,000 feet. The cabin is normally unpressurized below 5,000 feet. Table 6-1 shows cabin pressures and altitudes with actual flight altitude. During the unpressurized mode of operation, the pressure regulator control directs low-pressure air to the pressure regulator valve to command it to the full open position. This mode of operation occurs at all altitudes below 4,350 feet. In this mode, cabin pressure is maintained at a near ambient pressure. The pressure is slightly above ambient because of the duct pressure losses, the quantity of air flowing into the cabin, and the pressure across the internal avionics ventilation subsystem. During flight operations between 5,000 and 24,000 feet, the isobaric mode maintains the cabin altitude between 4,350 and 5,000 feet. The pressure regulator control, using the sensed ambient pressure as a low-pressure source and the sensed cabin pressure as the high-pressure source, modulates the pressure regulator open or closed to maintain cabin pressure at the specific altitude. The differential mode of operation overrides the isobaric mode when the aircraft is flying at altitudes in excess of 24,000 feet. As cabin-to-ambient differential pressure reaches 6.7 ±0.1 psi, a spring-loaded diaphragm in the pressure regulator control positions a poppet valve to supply this differential pressure as a control pressure to the pressure regulator valve. The 6-13 Flight Altitude (ft) Cabin Pressure Differential Cabin Pressure Altitude Min (psi) Max (psi) Min (ft) Max (ft) 0 0 0.25 –500 0 5,000 0 0.30 4,350 5,000 10,000 2.12 2.42 4,350 5,000 15,000 3.94 4.24 4,350 5,000 20,000 5.48 5.78 4,350 5,000 *24,300 6.60 6.80 4,500 5,000 25,000 6.60 6.80 5,000 5,380 30,000 6.60 6.80 7,400 7,870 35,000 6.60 6.80 9,600 10,100 40,000 6.60 6.80 11,520 12,050 *Maximum flight altitude for a 5,000 feet cabin altitude Table 6-1.—Cabin Altitude vs Flight Altitude Schedule

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pressure regulator valve compares this control pressure to cabin pressure, and it positions the butterfly to maintain the required differential pressure. The cabin pressurization system also makes provision for dumping cabin pressure in an emergency. By setting the cabin pressure switch on the environmental control panel to the DUMP position, the latching solenoids on both the cabin outflow pressure regulating valve and on the cabin safety valve are actuated to the dump position. In addition, the re-circulation air shutoff valve will be actuated to the full open position, provided electrical power is available. A secondary method of achieving cabin depressurization is to turn the air-conditioning switch to the OFF/RESET position and select the auxiliary vent mode. This selection will cause the cabin outflow pressure regulator valve to open, but it will not actuate the cabin safety valve to the open position. The re-pressurization mode of operation is used when returning to the normal mode from the dump mode or during a rapid descent in excess of 4,000 feet per minute. In this mode, the pressure regulator control modulates the rate of cabin re-pressurization with an integral isobaric and differential pressure control system. The pressure regulator control compares the existing cabin pressure to a lagging cabin pressure reference. If the result of this comparison exceeds the calibrated rate, control pressure output from the pressure regulator control is reduced. This causes the pressure regulator valve to sense a relatively higher pressure on the opening side of its actuating diaphragm, allowing the diaphragm to open the pressure regulator valve butterfly. This reduces cabin pressure and the rate of pressurization. Precautions for operating the S-3 cabin pressurization subsystem on the ground, where the elevation is 5,000 feet or higher, are required because the cabin pressurization subsystem does not have provisions for automatic depressurization. Therefore, the cabin will pressurize whenever the ground elevation is above 5,000 feet. To ensure adequate cooling of the internal avionics during operations at ground elevations above 5,000 feet, one of the following steps must be used: • Keep the cabin pressurized as in flight. • Set CABIN PRESS switch to DUMP to ensure a full-open pressure safety valve. • Turn AUX VENT selector to ON if outside air temperature is below 80°F, and open the cabin entry door to ensure an adequate supply of cooling air. COMPONENTS The S-3 cabin pressurization subsystem consists of five primary components (figs. 6-11 and 6-12). Four of them are shown in figure 6-11. The fifth component is located in the cockpit. Each component is discussed in the following paragraphs. If you are to troubleshoot effectively, it is important to know the relationship of each component to the system as a whole. Cabin Pressure Regulator Valve The cabin pressure regulator is a pneumatically actuated butterfly valve mounted in the cabin exhaust ducting downstream of the cabin exhaust fan. The butterfly is spring-loaded to the closed position. The pressure regulator valve consists of the butterfly valve, which is actuated by a pressure-controlled diaphragm, and a solenoid valve to control the air pressure on the 6-14 Figure 6-11.—Cabin pressurization subsystem schematic.

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diaphragm. The solenoid valve is electronically con- nected to the cabin pressurization switch on the en- vironmental control panel (fig. 6-13). There are three ports leading into the pressure regulator valve diaphragm chamber. The first port is located on the spring-loaded closing side of the diaphragm. It admits pressure from the cabin pressure regulator control. The second port is the ambient vent port. It is also located on the spring-loaded closing side of the diaphragm. The third port is located on the opening side of the diaphragm. A sensing line is attached to the third port to connect the cabin pressure regulator control and the cabin pressure exhaust duct. The pressure admitted to the diaphragm through the third port is equivalent to cabin air pressure. The difference between them causes the pressure regulator valve to modulate between the open and closed positions. Cabin Pressure Regulator Safety Valve The pressure regulator safety valve is an independent, pneumatically operated, balanced type of poppet valve that limits cabin-to-ambient pressure differentials to 7.07 (+0.2 and –0.0) psi. If the difference between cabin pressure and ambient pressure reaches the calibrated limit, the change in pressure acting on the limit control diaphragm overcomes the metering valve spring-load and allows 6-15 Figure 6-12.—Cabin pressurization components. Figure 6-13.—Environmental control panel.

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the metering valve to open. This also opens a passage in the cabin pressure safety valve head, which causes the head pressure to be slightly lowered. Since the cabin pressure is greater than head pressure, it opens the pressure-balanced main poppet to allow cabin air to be vented overboard. When the cabin pressure differential is restored to normal, the limit control metering valve closes, and the pressure safety valve returns to its normally closed position. Cabin Pressure Regulator Control The pressure regulator control is a pneumatic control that provides four modes of cabin pressure operation. In addition to the modes of operation, a test valve is included with three manually set positions (FLIGHT, DIFF ON, and ALL OFF). The test valve is normally lockwired in the FLIGHT position for all cabin pressurization modes. The DIFF ON position permits a ground test of the normal delta-P setpoint. The ALL OFF position permits a ground test of the set point of the pressure safety valve. These test are accomplished with pressure supplied by support equipment. Four pneumatic ports are provided on the pressure regulator control for interfacing with various sensed pressures and the pressure regulator valve. These ports are different sizes to prevent improper plumbing connections. The pressure regulator control contains an isobaric bellows, which is calibrated to maintain an aircraft cabin pressure of 5,000 feet while the aircraft is flying at altitudes between 5,000 and 24,000 feet. The isobaric bellows, which modulates a control pressure, uses cabin air as a pressure source and low pressure in the environmental control system compartment as a negative pressure. Control pressure is delivered to one side of the pressure regulator valve diaphragm, and cabin pressure is connected to the opposite side. Because control pressure is normally less than cabin pressure, the pressure regulator valve becomes more open to decrease cabin pressure. The pressure regulator control contains provisions for controlling the rate of cabin re-pressurization when recovering cabin pressure after using the cabin dump mode, or during a rapid descent in altitude. The control pressure modulated by the isobaric bellows is further modulated by the re-pressurization diaphragm to limit cabin re-pressurization to an equivalent 4,000 feet per minute change. The pressure regulator valve is held open until normal pressure characteristics are sensed. Cabin Low-Pressure Switch The low-pressure switch is installed below the center console to sense cabin absolute pressure. The normally open low-pressure switch closes at 13,000 (±500) feet and reopens at 11,000 (±500) feet. The CAB PRESS indicator light on the annunciator panel illuminates when the low-pressure switch closes. The indicator light goes off when the low-pressure switch reopens. Cabin Air Pressure Sensing Filter The air pressure-sensing filter is located in the line that connects the cabin exhaust air duct, the cabin pressure regulator control, and the cabin pressure regulator valve. The replaceable filter element, which is connected to the air sensing tube, is mounted with clamping rings on the fuselage frame. The filter element is a cylindrical plug of treated paper and fabric in a metal housing. The clamping rings confine the air entry to the dome-shaped end to trap the entry of tobacco tar and dust particles greater than 10 microns in diameter. MAINTENANCE AND INSPECTION Very little maintenance is required on most pressurization and ACSs other than making the required periodic inspections and operational checks. In most instances, a maladjusted or malfunctioning component simply must be removed and replaced. There are, however, certain components that require periodic servicing, cleaning, and inspection so the component will function properly and efficiently. Specific requirements for servicing, cleaning, and inspection are listed in the daily, postflight, and special/conditional maintenance requirement card (MRC) decks as well as the maintenance instruction manual (MIM) for each aircraft. Electrical Failures Since all pressurization and ACSs have electrically controlled components, maintenance of these systems must include the related electrical circuits. Although an Aviation Electrician’s Mate (AE) is generally called upon to locate and correct electrical troubles, the AME should be able to check circuits for loose connections, and even perform continuity checks when necessary. A knowledge of electrical symbols and the ability to read circuit diagrams is therefore necessary. Figure 6-14 6-16

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illustrates the electrical symbols commonly found in schematic diagrams. Loose connections are located by checking all connectors in the circuit. A connector that can be turned by hand is loose and should be tightened hand-tight. A continuity check is simply a matter of determining whether the circuit to the valve or other electrically controlled unit is complete. To perform a continuity check, the connector at the electrically controlled unit is first disconnected. Then, with all necessary switches and circuit breakers closed, a test lamp is connected into the circuit at the electrical connector. The lamp indicates whether or not the circuit is complete. Continuity checks may also be made with the use of a multimeter, an instrument used for measuring resistance, voltage, or amperage. Troubleshooting Troubleshooting is the process of locating a malfunctioning component or other unit in a system or mechanism. For the AME, troubleshooting is an important responsibility and one which will require a lot of squadron time. When a malfunction is reported concerning any of the components or systems that are maintained by the AME, the difficulty must be located and corrected quickly. To troubleshoot intelligently, the AME must be familiar with the system(s) at hand, knowing the function of each component in the system and with a mental picture of the location of each component in the system in relation to other components, as well as the location of the component in the aircraft. This can be achieved best by studying the installation and schematic diagrams of the system found in the applicable MIM. Troubleshooting procedures are similar in practically all applications. The procedures covered in this section are adaptable to almost all aircraft systems. Auto mechanics use these steps to find and repair automobile malfunctions. The AME can use these procedures to find and repair malfunctions within aircraft systems. There are seven distinct steps to follow during troubleshooting, as follows: 1. Conduct a visual inspection. This inspection should be thorough and searching—checking all lines, linkages, and components for obvious damage, 6-17 Figure 6-14.—Electrical symbols.

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evidence of leakage, looseness, security, material condition, and proper installation; and servicing when applicable. 2. Conduct an operational check. The mal- functioning system or subsystem is checked for proper operation. This may be done by using special support equipment such as the environmental control test set or by using aircraft power and equipment with the engine running. Each aircraft maintenance manual provides the steps to be taken in performing the operational checkout of all the aircraft’s systems. The operational checks and troubleshooting charts for each system are numbered so that when a malfunction occurs during a step in the operational checkout, the malfunction can be located under the same step number in the troubleshooting chart. The troubleshooting chart will provide a list of possible causes of the malfunction in the order of probability, along with a recommended remedy. In any case, the AME must check the system out thoroughly, observing proper operation, sequence of events, etc. 3. Classify the trouble. Malfunctions usually fall into three basic categories—electrical, mechanical, and/or improper installation. Using the information acquired in steps 1 and 2, the AME determines under which category the malfunction occurs. Proper use of the test set or multimeter will identify whether the trouble is electrical or mechanical. Use of the MIM when performing all maintenance tasks should prevent improper installation. Something affecting the flow of gas or liquid (as could be the case in a vapor cycle ACS) could be categorized as a combination electrical/mechanical failure. Most mechanical failures should be found on the visual inspection; however, drive shaft failure is not readily apparent until the valve is operated. In some cases it may even be necessary to disconnect the valve from the ducting so that the butterfly valve can be observed through the end opening. The position indicator on some valves can indicate that the valve is changing positions, which can be a false indication if the shaft is broken after the indicating mechanism, or if the butterfly valve was damaged in such a manner that the shaft would rotate without actually repositioning the valve. 4. Isolate the trouble. This step calls for sound reasoning and a full and complete knowledge of how the system and each component operate. During this step, the AME can make full use of their knowledge and the system schematics to trace system operation and systematically eliminate components. They can arrive at a reasonable conclusion concerning the cause of the malfunction based on facts and deductive reasoning. Usually the trouble can be pinned down to one or two areas. By checking each individual area or component, the trouble can be isolated. 5. Locate the trouble. This step is used to eliminate unnecessary parts removal, saving time, money, and man-hours. Once the AME has isolated the trouble to a certain area or component, a closer observation of the valve or component in operation should provide some obvious indication that it is not operating as specified in the MIM. If all evidence indicates that the problem is electrical, the assistance of an AE should be requested. 6. Correct the trouble. This step is performed only after the trouble has been definitely pinpointed and there is no doubt that the AME’s diagnosis is correct. Removal and replacement, or repair of the unit or system is done using the instructions provided in the applicable aircraft MIM. NOTE: While performing maintenance on any system, ensure the step-by-step procedures outlined in the MIM, including cautions, warnings, and safety notes concerning the specific procedures, are strictly complied with. 7. Conduct a final operational check. The affected component or system must be given an operational check following installation or repair to verify proper system or component operation. The MIM will provide the procedures for conducting the operational check. It will usually require operation of the system in various modes (manual and automatic for air-conditioning and pressurization systems) or through several cycles, as applicable. Specified steps throughout the repair procedure and operational check must be observed and certified by a quality assurance representative or a collateral duty quality assurance representative from the work center performing the work. These steps are usually identified in the MIM by underlining, italics, or some other obvious method. Q6-13. In order for the human body to operate at the same level of efficiency as at sea level, what solution was developed? Q6-14. The area of an aircraft to be pressurized must be free from all air leaks. How is this accomplished? Q6-15. For the S-3 pressurization system, what component provides the pressurization schedule? 6-18

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Q6-16. During flight operations between 5,000 and 24,000 feet, what mode maintains the cabin altitude between 4,350 and 5,000 feet? Q6-17. When is the re-pressurization mode used? Q6-18. The S-3 cabin pressurization system will pressurize whenever ground elevation is above what altitude? Q6-19. The S-3 cabin pressurization subsystem consists of how many primary components? Q6-20. The pressure regulator safety valve limits cabin-to-ambient pressure differentials to what psi? Q6-21. The pressure regulator control maintains cabin pressure of 5,000 feet while the aircraft is flying between what altitudes? Q6-22. State the purpose of performing a continuity check. Q6-23. How many distinct steps should be followed during troubleshooting? Q6-24. Malfunctions usually fall into three basic categories. What are they? Q6-25. During troubleshooting, all evidence in- dicates that the problem is electrical. Whom should you call for assistance? 6-19

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CHAPTER 6 ANSWERS TO REVIEW QUESTIONS A6-1. 14.7 psi A6-2. Breathing A6-3. The human body tends to burst. In some cases, blood vessels near the surface may burst, causing hemorrhages in the ears, eyes, and breathing passages. A6-4. 1. The cabin must be designed to withstand the necessary pressure differential. This is primarily an airframe engineering and manufacturing problem. 2. There must be a means of limiting the maximum pressure differential to which walls will be subjected. This is provided by the cabin safety valve. 3. The aircraft must have an adequate supply of compressed air. This is provided through the compressor section of the jet engine. A separate compressor or supercharger is used on aircraft having reciprocating engines. On all jet aircraft, the air is taken directly from the compressor section of the jet engine. This is generally referred to as bleed air. 4. There must be a means of cooling the bleed air before it enters the cabin. This is provided by an aircraft refrigeration unit. 5. There must be a means of controlling the cabin pressure. This is provided by the cabin pressure regulator, which regulates the outflow of air from the cabin. A6-5. The envir onmental control systems of most aircraft include cabin air-conditioning and pressurization, equipment cooling, defogging, windshield washing and rain removal, and equipment pressurization subsystems. A6-6. The name air cycle or air-to-air comes from the principle of cooling the air without the use of refrigerants by compression and expansion of bleed air. A6-7. No. 3 A6-8. Two flow-limiting venturis A6-9. 70 percent A6-10. Temperature controller A6-11. Turbine refrigeration unit A6-12. Automatic and manual A6-13. Pressurizing the cockpit/cabin area A6-14. By the use of seals around tubing, ducting, bolts, rivets, and other hardware that pass through or pierce the pressure tight area. All panels and large structural components are assembled with sealing compounds. A6-15. Cabin pressure regulator A6-16. Isobaric A6-17. When returning to the normal mode from the dump mode or during a rapid descent in excess of 4,000 feet per minute. A6-18. 5,000 feet 6-20

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A6-19. Five A6-20. 7.07 (+0.2 and –0.0) psi A6-21. 5,000 and 24,000 feet A6-22. To determine whether or not the circuit to the component is complete A6-23. Seven A6-24. Electrical, mechanical, and/or improper installation A6-25. An AE 6-21

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CHAPTER 7 OXYGEN SYSTEMS A dependable supply of oxygen is an essential element for maintaining life. Oxygen systems aboard naval aircraft sustain the lives of the pilot and aircrew so they can perform their missions. AME personnel service and maintain aircraft oxygen systems. Therefore, it is important that AME personnel understand how and why oxygen systems function as they do. This chapter provides an overview of the operating characteristics and maintenance require- ments for several aircraft oxygen systems, stressing safety and use of the applicable maintenance instruc- tion manual (MIM). IMPORTANCE OF OXYGEN LEARNING OBJECTIVE: Identify the im- portance of oxygen to include types, charac- teristics, and effects of a lack of oxygen. No one can live without sufficient quantities of food, water, and oxygen. Of the three, oxygen is by far the most urgently needed. If necessary, a well-nourished person can go without food for weeks, living on what is stored in the body. The need for water is more immediate, but still does not become critical for several days. The supply of oxygen in the body is limited to a few minutes. When the supply is exhausted, death is inevitable. Oxygen starvation affects a pilot or aircrewman in much the same way that it affects an aircraft engine. Both the body and the engine require oxygen for the burning of fuel. An engine designed for low-altitude operation loses power and performs poorly at high altitudes. High-altitude operation demands a means of supplying air at higher pressure to give the engine enough oxygen for the combustion of fuel. A super-charger or compressor satisfies the engine’s demands. What about the demands of the human body? The combustion of fuel in the human body is the source of energy for everything the aviator is required to do with muscles, eyes, and brain. As the aircraft climbs, the amount of oxygen per unit of volume of air decreases, and the aviator’s oxygen intake is reduced. Unless the aviator breathes additional oxygen, the eyes, brain, and muscles begin to fail. The body is designed for low-altitude operation and will not give satisfactory performance unless it is supplied the full amount of oxygen that it requires. Like the engine, the body requires a means of having this oxygen supplied to it in greater amounts or under greater pressure. This need is satisfied by use of supplemental oxygen supplied directly to the respiratory system through an oxygen mask, and by pressurizing the aircraft to a pressure equivalent to that at normal safe-breathing altitudes, or both. For purposes of illustration, an aviator’s lungs are like a bag of air since the air in the lungs behaves in the same way. If an open bag is placed in an aircraft at sea level, air will escape from it continuously as the aircraft ascends. The air pressure at 18,000 feet is only half that at sea level; therefore, at 18,000 feet the bag will be subjected to only half the atmospheric pressure it was subjected to at sea level. For this reason, it will contain only half the oxygen molecules it had when on the ground. Similarly, an aviator’s lungs contain less and less air as the aircraft ascends, and correspondingly less oxygen. Thus the use of supplemental oxygen is neces- sary on high-altitude flights. Up to approximately 35,000 feet, an aviator can keep sufficient oxygen in the lungs to permit normal activity by use of oxygen equipment that supplies oxygen upon demand (inhalation). The oxygen received by the body on each inhalation is diluted with decreasing amounts of air up to approximately 33,00 feet. Above 33,000 feet and up to approximately 35,000 feet, this equipment provides 100 percent oxygen. At approximately 35,000 feet, inhalation through the demand oxygen system alone will NOT provide enough oxygen. Above 35,000 feet and up to 43,000 feet, normal activity is only possible by use of pressure demand equipment. This equipment consists of a super-charger arrangement by which oxygen is supplied to the mask under a pressure slightly higher than that of the surrounding atmosphere. Upon inhalation, oxygen is forced (pressured) into the mask by the system. Upon exhalation, the oxygen pressure is shut off automatically so that carbon dioxide can be expelled from the mask. Above 43,000 feet, the only adequate provision for the safety of the aviator is pressurization of the entire body. 7-1

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TYPES OF OXYGEN Aviators breathing oxygen (ABO) (MIL-0-27210) is supplied in two types—type I and type II. Type I is gaseous oxygen and type II is liquid oxygen. Oxygen procured under this specification is required to be 99.5 percent pure. The water vapor content must not be more than 0.02 milligrams per liter when tested at 21.1°C (70°F) and at sea level pressure. Technical oxygen, both gaseous and liquid, is procured under specification BB-O-925A. The moisture content of technical oxygen is not as rigidly controlled as is breathing oxygen; therefore, the technical grade should never be used in aircraft oxygen systems. The extremely low moisture content required of breathing oxygen is not to avoid physical injury to the body, but to ensure proper operation of the oxygen system. Air containing a high percentage of moisture can be breathed indefinitely without any serious ill effects. The moisture affects the aircraft oxygen system in the small orifices and passages in the regulator. Freezing temperatures can clog the system with ice and prevent oxygen from reaching the user. Therefore, extreme precautions must be taken to safeguard against the hazards of water vapor in oxygen systems. CHARACTERISTICS OF OXYGEN Oxygen in its natural state is a colorless, odorless, and tasteless gas. Oxygen is considered to be the most important of all the elements to life. It forms about 21 percent of the atmosphere by volume and 23 percent by weight. The remainder of the atmosphere consists of nitrogen (78 percent) and inert gases (1 percent), of which argon is the most abundant. Of all the elements in our environment, oxygen is the most plentiful. It makes up nearly one-half of the Earth’s crust and approximately one-fifth of the air we breath. Oxygen combines with most of the other elements. The combining of an element with oxygen is called oxidation. Combustion is simply rapid oxidation. In almost all oxidations, heat is given off. In combustion, the heat is given off so rapidly it does not have time to be carried away; the temperature rises extremely high, and a flame appears. Some examples of slow oxidation are rusting of iron, drying of paints, and the change of alcohol into vinegar. Even fuels in storage slowly oxidize, the heat usually being rapidly carried away. However, when the heat cannot easily escape, the temperature will rise and a fire may break out. This fire is the result of spontaneous combustion. Oxygen does not burn, but it does support combustion. Nitrogen neither burns nor supports combustion. Therefore, combustible materials burn more readily and vigorously in oxygen than in air, since air is composed of about 78 percent nitrogen by volume and only about 21 percent oxygen. In addition to existing as a gas, oxygen can exist as a liquid and as a solid. Liquid oxygen is pale blue in color. It flows like water, and weighs 9.52 pounds per gallon. EFFECTS OF LACK OF OXYGEN A decrease in the amount of oxygen per unit volume of air results in an insufficient amount of oxygen entering the bloodstream. The body reacts to this condition rapidly. This deficit in oxygen is called hypoxia. When the body regains its normal oxygen supply, one may recover from hypoxia. A complete lack of oxygen, which results in permanent physical damage or death, is called anoxia. Hypoxia There is an enormous increase in oxygen requirements caused by an increase in physical activity. Strenuous exercise like long distance running greatly increases the need for oxygen, which is evidenced by deep and rapid breathing. Even mild exercise like getting up and walking around a room may double the air intake. In the case of the aviator, leaking of an oxygen mask, which may go completely unnoticed while the wearer is at rest, may lead to collapse and unconsciousness when an attempt is made to move from one station to another in the aircraft. A walkaround (portable) oxygen bottle that is sufficient for 24 minutes of quiet breathing may be emptied by 17 minutes of use when the user is moving around inside the aircraft. Effects of Hypoxia People differ in their reactions to hunger, thirst, and other sensations. An individual’s reactions vary from time to time under similar circumstances. Illness, pain, fear, excessive heat or cold, and many other factors govern what the response will be in each particular case. The same thing is true of individual reactions to oxygen starvation. The effects of hypoxia on a given 7-2

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person cannot be predicted accurately. For example, a person may be relatively unaffected one day, but highly susceptible the next. It is difficult to detect hypoxia, because its victims are seldom able to judge how seriously they are affected, or if they are affected at all. The unpleasant sensations experienced in suffocation are absent in the case of hypoxia. Blurring of vision, slight shortness of breath, a vague weak feeling, and a little dizziness are the only warnings. Even these may be absent or so slight as to go unnoticed. While still conscious, the aviator may lose all sense of time and spend the last moments of consciousness in some apparently meaningless activity. In such a condition, a person is a menace to the crew as well as to himself. Since the aviator understands that it is the reduced air pressure at higher altitudes that determines the effect on the body, dependence should be upon the altimeter rather than sensations or judgment to determine when oxygen is needed. The effects of hypoxia at various altitudes are discussed in the following paragraphs. BELOW 10,000 FEET.—At or below 10,000 feet, some effects of hypoxia may be present. Generally, the eye is the first part of the body to suffer effects of hypoxia. Even at a relatively low altitude of approximately 5,000 feet, where no other effect of hypoxia can be detected, night vision may be affected, due to mild oxygen starvation. Thus, the use of supplemental oxygen on night flights above 5,000 feet is required. Although hypoxia affects the eyes in the daytime as well as at night, the results during the day are usually not as noticeable below 10,000 feet. BETWEEN 10,000 AND 15,000 FEET .— Although efficiency may be considered impaired at 10,000 to 15,000 feet, death from oxygen starvation at these altitudes is virtually unknown. The greatest dangers are from errors in judgment or performance due to drowsiness or mental confusion. At these altitudes, long flights without oxygen produce persistent drowsiness and excessive fatigue for many hours afterward. Frequently, persistent headaches develop soon after completion of the flight. For these reasons, the use of oxygen on flights above 10,000 feet is required. Portable oxygen systems are available for aircraft that do not have oxygen equipment. BETWEEN 15,000 AND 20,000 FEET.—Flights at 15,000 to 20,000 feet, even for short periods, must never be attempted without the use of oxygen. Collapse and unconsciousness are common. Failure to use oxygen could result in death, especially when the situation is complicated by loss of blood in combat or by shock due to pain or fear. BETWEEN 20,000 AND 25,000 FEET.—During World War II, most military flying was done in unpressurized aircraft at altitudes of between 20,000 and 25,000 feet. Most of the resulting anoxia deaths occurred in this altitude range. The general symptoms of drowsiness, mental confusion, dim vision, and dizziness occur here, as at lower altitudes, but they come on much more quickly, allowing less opportunity for corrective action. Consequently, under no cir- cumstances should aircraft ascend to these altitudes, even for short periods, without the use of oxygen by all persons aboard. The movement of personnel in the aircraft requires the constant use of walk-around equipment. Unusual actions or failure of a crewmember to respond quickly and clearly when called require immediate investigation. BETWEEN 25,000 AND 30,000 FEET .— Between 25,000 and 30,000 feet, collapse, un- consciousness, and death quickly follow interruption of the oxygen supply. Mask leakage at these altitudes may cause a degree of hypoxia that, although not noticed during flight, can produce considerable fatigue and have serious cumulative effects. ABOVE 30,000 FEET .—Above 30,000 feet, unconsciousness and death strike rapidly and often without warning. At such altitudes, it is imperative that all oxygen equipment is functioning correctly and that each breath is taken through a properly fitted oxygen mask. Above a pressure altitude of 35,000 feet, pressure breathing oxygen equipment is required. Q7-1. As an aircraft climbs, what effect occurs to the volume of air? Q7-2. Unless an aviator breathes additional oxy- gen, which three main systems on the body begin to fail? Q7-3. Above 33,000 feet to approximately 35,000 feet, oxygen equipment provides what per- centage of oxygen? Q7-4. Above 43,000 feet, what requirement is the only adequate provision for the safety of an aviator? Q7-5. Oxygen procured under MIL-0-27210 is required to be what minimum percent pure? Q7-6. What color is liquid oxygen? Q7-7. A complete lack of oxygen is referred to by what medical term? 7-3

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GASEOUS OXYGEN SYSTEMS LEARNING OBJECTIVE : Identify safety precautions, components, and maintenance procedures for gaseous oxygen systems. Gaseous oxygen systems are used primarily in large, multi-place aircraft where space and weight limitation are less important items and the systems are used only occasionally. HANDLING/SAFETY PRECAUTIONS The pressure in gaseous oxygen supply cylinders should not be allowed to fall below 50 pounds per square inch (psi). If the pressure falls much below this value, moisture is likely to accumulate in the cylinder and could be introduced into the oxygen system of the aircraft, causing component malfunction. All oxygen under pressure is potentially very dangerous if handled carelessly. Personnel servicing or maintaining oxygen systems and components must be extremely careful about preventing grease, oil, hydraulic fluid, or similar hydrocarbons as well as other contamination from coming in contact with lines, hoses, fittings, and equipment, as this contact presents a fire and explosion hazard. If, because of hydraulic leaks or some other unpreventable malfunction, components of the oxygen system do become externally contaminated, they should be cleaned using only approved oxygen system cleaning compounds. While some MIMs specify the use of a variety of cleaning compounds, the preferred compound is oxygen system cleaning compound type I conforming to Military Specification MIL-C-81302. The following safety precautions should be adhered to: • Under no circumstances should a non-approved cleaning compound be used on any oxygen lines, fittings, or components. • When handling oxygen cylinders, the valve protection cap should always be in place. Before removing the cap and opening the valve, ensure that the cylinder is firmly supported. A broken valve may cause a pressurized cylinder to be propelled like a rocket. • Do NOT use oxygen in systems intended for other gases or as a substitute for compressed air. • Cylinders being stored for use on gaseous oxygen servicing trailers or any other use must always be properly secured. Do not handle cylinders or any other oxygen equipment with greasy hands, gloves, or other greasy materials. The storage area should be located so that oil or grease from other equipment cannot be accidentally splashed or spilled on the cylinders. Additional safety precautions may be found in the publications of technical manual NAVAIROSH Requirements for the Shore Establishments , NA V AIR A1-NAOSH-SAF-000/P-5100; Aviators Breathing Oxygen (ABO) Surveillance Program Laboratory Manual and Field Guide, A6-3332AO-GYD-000; and Aviator Crew Systems Technical Manuals , NA V AIR 13-1-6.4 series. SYSTEM COMPONENTS Basically, all gaseous oxygen systems consist of the following: • Containers (cylinders) for storing oxygen supply • Tubing to route the oxygen from the main supply to the users • Various valves for directing the oxygen through the proper tubing • Metering devices (regulators) to control the flow of oxygen to the user • Gauges for indicating the oxygen pressure • Masks to direct the oxygen to each user’s respiratory system Cylinders Gaseous oxygen cylinders used in naval air- craft systems are generally high-pressure and non-shatterable, meaning that the cylinder is designed to resist shattering when punctured by a foreign object, such as gunfire, at a pressure of 1,800 psi. The resistance to shattering is generally achieved by the use of a heat-treated alloy or wire wrapping applied to the outside of the cylinder. The two most common cylinder sizes are 514 and 295 cubic inches. The main advantage of the high-pressure cylinder is that it minimizes space used for storing gaseous oxygen. All high-pressure oxygen cylinders are painted green in accordance with the established color codes provided in MIL-STD-101A. Cylinders come equipped with either a manually operated handwheel valve or an automatic self-opening 7-4

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valve (figs. 7-1 and 7-2). Opening the handwheel operated valve assembly releases the contents of the cylinder. The handwheel has four 5/15-inch diameter holes for the attachment of remote operation equipment, if needed. The valve is equipped with a fusible metal safety plug and a safety disc to release the contents of the cylinder if the pressure becomes excessive because of high temperature. The safety plug is filled with a fusible metal designed to melt at temperatures ranging from 208°F to 220°F (97.8°C to 104.5°C). The cylinder and valve assembly is connected to the oxygen tubing by soldering the tubing to a coupling nose and securing the nose to the valve outlet with a coupling nut. The self-opening (automatic) oxygen cylinder valve is automatically opened when it is connected to the oxygen line. The use of this type of valve permits remote location of the oxygen cylinder to places less vulnerable during combat and more readily accessible for servicing. Regulators The success or failure of high-altitude flight depends primarily on the proper functioning of the oxygen breathing regulator. Acting as a metering device, the regulator is the heart of the oxygen system. To perform successfully in an aircraft system, a regulator must deliver the life-supporting oxygen in the quantities demanded throughout its entire range of operation. Although personnel of the Aircrew Survival Equipmentman (PR) rating are primarily responsible for maintenance of regulators, the AME is responsible for performing operational checks in the aircraft and for removal and installation. In other words, the AME removes a malfunctioning regulator from the aircraft and delivers it to the shop where the PR determines the trouble and makes the necessary repairs. When the trouble is corrected, the AME reinstalls the regulator in the aircraft. Tubing Two types of tubing are used in aircraft oxygen systems. Low-pressure aluminum alloy tubing is used in lines carrying pressures up to 450 psi. High-pressure 7-5 1. CYLINDER 2. LABEL–INSTRUCTION ON W ALTER KIDDE CYLINDERS 3. HANDGRIPS 4. HANDWHEEL 5. NUT, HANDWHEEL 6. W ASHER, LOCK EXTENSION TEETH, BRONZE, NO. 10 7. CAPS, V ALVE 8. STEM, UPPER 9. DIAPHRAGM (SET OF 3) 10. BUSHING 11. GASKET, BUSHING 12. CAP, SPINDLE 13. SPRING 14. SEAT, V ALVE 15. PLUG, SAFETY 16. DISC, SAFETY 17. W ASHER, SAFETY DISC 18. CAP, OUTLET 19. W ASHER, OUTLET CAP 20. BODY, V ALVE 21. NUT, COUPLING 22. NOSE, COUPLING Figure 7-1.—Gaseous oxygen cylinder and handwheel valve assembly. 1. SELF-OPENING HIGH-PRESSURE OXYGEN V ALVE ASSEMBLY 2. SAFETY PLUG ASSEMBLY 3. SAFETY DISC 4. DISC W ASHER 5. SPRING NEST 6. SPRING 7. ASSEMBLY CHECK Figure 7-2.—Self-opening oxygen cylinder valve.

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copper or aluminum alloy tubing is used in lines carrying pressure above 450 psi. Lines running from the filler valve to each of the cylinders are called filler lines. Those running from the cylinders to the regulators are called distribution or supply lines. Oxygen lines, like all other lines in the aircraft, are identified by strips of colored tape. The strips of tape are wrapped around each line near each fitting and at least once in each compartment through which the line runs. The color code for oxygen lines is green and white with the words Breathing Oxygen printed in the green portion, while black outlines of rectangles appear in the white portion. Resistance to fatigue failure is an important factor in oxygen line design because the line pressure in a high-pressure system will at times exceed 1,800 psi, and at other times be as low as 300 psi. Because of these varying pressures and temperature, expansion and contraction occur all the time. These fluctuations cause metal fatigue, which must be guarded against in both the design and the construction specifications for tubing. Steps are taken during installation to prevent fatigue failure of the tubing. Tubing is bent in smooth coils wherever it is connected to an inflexible object, like a cylinder or a regulator. Every precaution is taken to prevent the accidental discharge of compressed oxygen because of faulty tubing or installation. Although simple in construction and purpose, tubing is the primary means by which oxygen is routed from the cylinders to the regulator stations. High-pressure tubing is used between the oxygen cylinder valve and the filler connection in all systems, between the cylinder valve and the regulator inlet in high-pressure systems, and between the cylinder valve and pressure reducer in reduced high-pressure systems. To connect high-pressure copper tubing, adapters and fittings are silver-soldered to the tubing ends. Due to the high pressures involved, the security (leak tightness) of all high-pressure lines relies primarily on a metal-to-metal contact of all its fitting and connections. A fitting properly silver-soldered to the end of a length of copper tubing will not come loose or leak. Valves Various types of valves are installed in gaseous oxygen systems. Among the most commonly used are check valves, pressure-reducing valves, and filler valves. CHECK V ALVES.—Check valves are installed at various points in the oxygen system. Their purpose is to permit the flow of oxygen in one direction only and to prevent the loss of the entire oxygen supply in the event a cylinder or line is ruptured. Various styles of single, dual, and triple check valves are available, as shown in figure 7-3. The arrows embossed on the valve casting indicates the direction of flow through the valve. PRESSURE-REDUCING V ALVES .— Pressure-reducing valves (or pressure reducers) are used in certain oxygen systems for the purpose of reducing high cylinder pressure to a working low pressure. In most installations the pressure reducers are designed to reduce the pressure from 1,800 psi to a working pressure of 60 to 70 psi. They are always located in the oxygen distribution lines between the cylinders and the flight station outlets. Figure 7-4 illustrates a typical pressure-reducing valve. FILLER V ALVES.—All oxygen systems are designed so the entire system can be serviced (refilled) through a common filler valve. The filler valve is 7-6 Figure 7-3.—Oxygen system check valves.

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generally located so it may be reached by a person standing on the ground or wing. The filler valve contains a check valve, which opens during the filling operation and closes when filling is completed. A dust cap keeps out dust, dirt, grease, and moisture. Gauges Gauges are used in gaseous oxygen systems to indicate the oxygen pressure in pounds per square inch. All systems are equipped with at least one gauge that indicates the amount of oxygen in the cylinders. The gauge also indicates indirectly how much longer the oxygen will last. The volume of any gas compressed in a cylinder is directly proportional to the pressure. If the pressure is half, the volume is half, etc. Therefore, if 900 psi of oxygen remains in a 1,800-psi system, half the oxygen is left. A pressure gauge is always mounted at each flight station, usually on the regulator. These gauges are calibrated to indicate from 0 to 2,000 psi on high-pressure systems and 0 to 500 psi on reduced high-pressure systems. TYPICAL GASEOUS OXYGEN SYSTEMS As previously stated, naval aircraft equipped with high-pressure oxygen systems are designed for approximately 1,800 psi, with working pressures reduced to 60 to 70 psi by a reducer or regulator. Systems equipped with a pressure reducer are referred to as reduced high-pressure systems. The reduced high-pressure gaseous oxygen system shown in figure 7-5 is typical of high-pressure cylinders and supplies three regulators—one each for the pilot, copilot, and flight engineer. 7-7 Figure 7-4.—Pressure-reducing valve. Figure 7-5.—Reduced high-pressure oxygen system schematic.

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SYSTEM OPERATION The pressure manifold, which is equipped with internal check valves, receives oxygen flow from the cylinders, directs the flow into a common line, and routes it to the pressure reducer. The manifold assembly also connects to a filler line, allowing the three cylinders to be recharged simultaneously from an external supply. The pressure reducer decreases the pressure to 65 psi. Incorporated on the low-pressure side of the pressure reducer is a relief valve, which connects through tubing to an overboard discharge indicator. In the event of excessive pressure developing within the low-pressure section of the pressure reducer, the excess pressure will flow through the relief valve and out the overboard discharge line. This flow will rupture the green disc in the discharge indicator, giving a visual indication of a malfunctioning pressure reducer. A line from the high-pressure side of the pressure reducer connects to a gauge in the cockpit. This gauge gives the pilot an indication of pressure in the three storage cylinders. Portable Oxygen Systems Portable oxygen systems include walkaround cylinders, survival kits, and bailout units. These systems are used primarily to maintain crew functions in the event of failure of the fixed oxygen systems. The survival kit oxygen system also performs the same function during descent after bailout. All of these are small, lightweight, high-pressure, self-contained gaseous systems, which are readily removed from the aircraft. Walkaround cylinders are standard equipment on many transport, patrol, and early warning aircraft, and are used separately or in addition to a permanently installed oxygen system. Each system consists of a reducer and regulator assembly mounted directly on a small oxygen cylinder. Figure 7-6 illustrates a high-pressure walkaround oxygen system. It is a 295- or 514-cubic-inch capacity, 1,800-psi cylinder equipped with a regulator, which is connected to the cylinder with a short coiled length of copper tubing. A short flexible breathing tube, clamped to the outlet of the regulator at one end and fitted with a connector at the other end, provides the assembly for the attachment of the demand mask tube. Straps fastened to the cylinder bracket provide the means for securing the unit to the user’s seat or part of the aircraft’s structure. The cylinder bracket may be placed horizontally or stood on end while in use. The straps can be used as a handle to carry it from place to place. Because of its weight, the walkaround unit should not be carried by its breathing tube, regulator, or copper tubing. SYSTEM MAINTENANCE The maintenance procedures discussed in this section are general in nature. Consult the applicable MIM prior to performing any maintenance on each specific type of aircraft. Routine maintenance includes servicing of cylinders, checking the system and regulators for leaks, operationally checking the system, and troubleshooting malfunctions. 7-8 Figure 7-6.—Portable oxygen system.

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Malfunctions may become apparent during inspections, testing, or actual use of the oxygen system. The remedies for some malfunctions will be quite obvious, while in other cases it may require ex- tensive time and effort to pinpoint the actual cause. The effectiveness of corrective action will be dependent on an accurate diagnosis of the mal- function. Troubleshooting of the gaseous oxygen system, as with the other systems, is the process of locating a malfunctioning component or unit in a system or mechanism. To troubleshoot intelligently, you must be familiar with the system and know the function of each component within the system. You can study the schematic diagrams of the system provided in the MIM to gain a mental picture of the location of each component in relation to other components. By learning to interpret these diagrams, you can save time in isolating malfunctioning components. The schematic diagram does not indicate the location of components in the aircraft; however, it will provide the means to trace the oxygen flow from the cylinder through each component to the mask. Installation diagrams provided in either the MIM or the illustrated parts breakdown (IPB) will assist you in locating the particular component in the aircraft. The MIMs provide a variety of troubleshooting charts, which are intended to aid you in discovering the cause of malfunction and its remedy. Table 7-1 illustrates one type of chart. The discrepancy is listed in the first column with the probable cause in the second and the remedy in the third. The list of probable causes is arranged in the order of probability of occurrence. Q7-8. The pressure in gaseous oxygen supply cylinders should not be allowed to fall below what level? Q7-9. What is the preferred compound for use in oxygen system cleaning? Q7-10. True or False. Oxygen systems can be used as a substitute for compressed air. Q7-11. What component is used to direct the oxygen to the user’s respiratory system? Q7-12. What are the two most common cylinder sizes? 7-9 Discrepancy Probable Cause Remedy Excessive leakage of system pressure. Filler valve leaking. Replace filler valve. Leak in lines. Check tubing, fittings, and connections and repair or replace as necessary. Flexible hose leaking. Replace hose. Regulator not shut off. Shut off regulator. Crewmember receives insufficient oxygen at high altitude. Improperly functioning regulator. Replace regulator. Ill-fitting mask. Refit or replace mask. Mask flapper valve not operating properly. Check mask exhaust valve. Flexible tubing to mask crushed or kinked. Replace tubing as necessary. No pressure reading at the regulator Defective regulator. Replace regulator. Oxygen supply turned off. Turn on cylinder hand valve if so equipped. System not charged. Replenish oxygen supply. Regulator pressure gauge indications are incorrect. Gauge defective. Replace gauge. Regulator flow indicator not functioning. Indicator defective. Replace regulator. Table 7-1.—Gaseous Oxygen System Troubleshooting

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Q7-13. High-pressure copper or aluminum alloy tubing can withstand what amount of pressure? Q7-14. What is the purpose of oxygen check valves? LIQUID OXYGEN (LOX) SYSTEMS LEARNING OBJECTIVE : Identify safety precautions, components, installation and testing of components, and operating proce- dures for liquid oxygen (LOX) systems. Liquid oxygen, commonly referred to as LOX,i s normally obtained by a combined cooling and pressurization process. When the temperature of gaseous oxygen is lowered to –182°F under 720 psi pressure, it will begin to form into a liquid. When the temperature is lowered to –297°F, it will remain a liquid under normal atmospheric pressure. Once converted into a liquid, oxygen will remain in its liquid state as long as the temperature is maintained below –297°F. The liquid has an expansion ratio of about 862 to 1, which means that one volume of LOX will expand about 862 times when converted to a gas at atmospheric pressure. Thus, 1 liter of LOX produces about 862 liters of gaseous oxygen. SAFETY PRECAUTIONS As already mentioned, the main dangers of LOX are the extremely low temperature of the liquid, its expansion ratio, and its support of violent combustion. The liquid is nontoxic, but will freeze (burn) the skin severely upon contact. Use extreme caution not to touch implements containing LOX unless gloves are worn. Without gloves, bare skin would immediately stick and freeze to the metal surface. Personnel who could be exposed to accidental spillage of LOX must wear a face shield, coveralls, gloves, and oxygen safety shoes to prevent skin and vision damage. Open gloves, low-cut shoes, trousers with cuffs, and similar improper clothing that can form pockets capable of holding a quantity of LOX present a severe hazard. All personnel handling LOX must wear the protective clothing specified in the protective clothing section of NA V AIR 13-1-6.4. A greater danger than freezing is the combustion-supporting potential of oxygen. When LOX is used, it is possible to build up high concentrations of oxygen quickly. Many materials such as cloth, wood, grease, oil, paint, or tar will burn violently when saturated with oxygen, provided an ignition source is supplied. A static electric discharge or spark can serve as an igniter. Once an oxygen-enriched fire is started, it is virtually impossible to extinguish until the oxygen supply is cut off. An added danger exists if a combustible material is saturated with oxygen at low temperatures. Many materials, especially hydrocarbons, tar, etc., will burn with explosive violence when saturated or subjected to very mild shock or impact. Extreme care must be taken not to splash or spill LOX on clothing. When LOX comes in contact with cloth, an ideal and deadly situation for a fire exists—a fire that cannot be put out. LOX by itself will not burn, but mixing with the smallest amount of almost any material will cause the liquid to boil and splash violently, making combustion possible. If splashed out of a container, LOX will break into many parts upon contact with the floor/deck. It must be poured slowly from one container to another to avoid splashing, and to allow the gaining receptacle to cool sufficiently without thermal breakage. NEVER seal or cap the vent port of a liquid oxygen system, because liquid oxygen at atmospheric pressure will generate up to 12,000 pounds of pressure if allowed to evaporate in a sealed container or system that has no relief provisions. Access to oxygen supply/storage areas should be limited only to personnel familiar with proper handling procedures. The area should be adequately ventilated and free of any materials that could present a fire hazard. All pressure-type containers, plumbing, and pressure-relief devices should conform to the applicable maintenance manual and be kept in good repair. The vents on LOX containers are designed to have a sufficient flow capacity to carry away any oxygen that may boil off in case of accidental loss of insulation. Do NOT cap such vents or cause the opening to be restricted in any way. The pressure relief assembly in LOX system storage cylinders consists of a reseatable relief valve and rupture disc in parallel. The assembly is designed so that the relief valve relieves first, with the rupture disc acting as a safety backup in the event the relief valve malfunctions or its relieving capacity is exceeded. 7-10

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LOX converters and servicing trailers should be stowed or parked so that they are protected from excessive heat and direct rays of sunlight as much as is practical. All LOX should be segregated from containers of other gases or liquids and all flammable materials. Hydrocarbons such as oil and grease in the oxygen handling area could result in death, serious injury, and property damage. Smoking, open flames, or sparks are not permitted in any oxygen handling area. When transferring oxygen, provide adequate ventilation to prevent the formation of an oxygen-enriched atmosphere. Avoid spilling LOX on floors or deck areas. In case of accidental spillage, ventilate the area. Intentional draining of LOX from a system or container must be caught in a clean drain pan and allowed to evaporate in a suitable open area that will not present a hazard. In the event that LOX is spilled on clothing, separate clothing from skin contact immediately and thoroughly air clothing for 1 hour to allow dilution of the oxygen concentration. When an uninsulated container of LOX is touched or when there is any reason to suspect some part of the body has been frozen or chilled, the area should be thoroughly washed or immersed in clean water that is slightly above body temperature (approximately 104°F to 113°F). The exposed area should then be loosely wrapped with a clean, dry dressing, and medical aid should be sought immediately. When servicing and maintaining LOX systems, the AME will be required to transfer LOX from servicing trailers to aircraft converters, and occasionally from the converter to the drain pan. The AME also will be required to remove and install converters and other components of LOX systems. All servicing and maintenance of LOX systems must be done in accordance with instructions contained in the applicable aircraft MIM. All safety precautions concerning the handling of LOX must be adhered to. When a completely empty system is being serviced, the LOX should be added slowly to cool the converter down to the storage temperature (–297°F). The converter could otherwise be damaged by thermal shock or rapid pressure buildup. Additional gaseous and liquid oxygen safety precautions and handling procedures are provided in the following publications: • NA V AIR A1-NAOSH-SAF-000/P5100/1, NAVAIROSH Requirements for the Shore Establishment • NA V AIR 06-30-501, Technical Manual of Oxygen/Nitrogen Cryogenic Systems All personnel handling oxygen and maintaining gaseous or liquid oxygen systems should be thoroughly familiar with all precautions and procedures listed in the latest revisions to these publications. They also should be familiar with the specific precautions provided in the applicable aircraft MIM and those pertaining to the type of equipment being used to service such systems. SYSTEM COMPONENTS Aircraft LOX systems are similar to gaseous oxygen systems except that the several cylinders of gaseous oxygen are replaced by one or more LOX converters. The use of more than one converter provides for an adequate supply of oxygen on long-range flights or where there is more than one crewmember using the oxygen systems. In addition to the converters, most LOX systems contain a heat exchanger; filler, pressure control, relief, and shutoff valves; quick-disconnect couplings; low-pressure switch; oxygen lines and regulators; and quantity indicating units. See figure 7-7 for a schematic diagram of a LOX system. 7-11 Figure 7-7.—LOX system schematic.

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Container The LOX converter (fig. 7-8) consists of an inner and outer shell of stainless steel separated by a vacuum. A blowout disc provides a margin of safety from explosion if a leak occurs in the inner shell. Filler Valve The filler valve is a combination filler, vent, and buildup valve. The filler portion of the valve is essentially a spring-loaded check valve (fig. 7-9). When the servicing hose of the LOX cart is coupled to the filler connection, the poppet is displaced. This seals the supply port and allows container pressure to be relieved through the vent port. At the same time, oxygen flows through the filler connection and fill port to the container. When the container is full, the liquid flows from the container through the gas port and then through the vent port. In the normal position, the spring in the filler connection holds the poppet in place, forming a gastight seal. There is a check valve in the fill port that acts as a backup seal in the event the filler connection develops a leak. The vent port also is sealed in this position, allowing the gaseous boil-off (from the top of the container) to flow through the gas port to the supply port and into the oxygen system. Pressure Control Valve The pressure control valve used on most converters is a combination opening and closing valve (two valves contained within one housing). These valves are controlled by spring-loaded bellows. The pressure-closing valve is spring-loaded open and the pressure-opening valve is spring-loaded closed. The pressure-opening valve controls the flow of gaseous oxygen into the supply line. If the pilot’s demand for oxygen becomes greater than the capability of the pressure opening valve to deliver, there is a differential check valve that opens and allows liquid oxygen to flow directly into the supply line. It is transformed into gaseous oxygen during its passage through the oxygen system supply lines. Relief Valves A relief valve is provided in the converter to relieve excessive pressure buildup in the event of a malfunction in the pressure control valves. It also relieves normal pressure buildup when the system is not in use. This normal buildup pressure is caused by heat entering the system, and will cause a loss of 10 percent of the system’s capacity every 24 hours; for example, approximately 1 liter of loss will be experienced from a 10-liter converter. Quick-Disconnect Couplings Liquid oxygen systems are designed for the rapid removal of the LOX converter for ease of servicing and maintenance. This is accomplished by the use of supply and vent quick-disconnect couplings, a single point converter retainer wing nut hold down, and 7-12 Figure 7-8.—Liquid oxygen converter assembly. Figure 7-9.—Filler valve.

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quick-disconnect quantity indicator lead disconnects (fig. 7-10). The vent and supply quick-disconnect couplings are of two-piece construction. The male half is mounted on the LOX converter, and the female half is attached to the flexible oxygen supply and vent lines. The coupling for the supply line contains a spring-loaded check valve, which closes automatically when the supply line is uncoupled from the converter. This prevents contaminating the aircraft oxygen system when the converter is removed for servicing. The vent coupling has no check valve; however, it forms a positive seal between the vent port of the converter and overboard vent line. Heat Exchanger The lungs would be damaged if gaseous oxygen were breathed at the temperature at which it exits the LOX converter. The purpose of the air-to-oxygen heat exchanger is to increase the temperature of the gaseous oxygen after it leaves the LOX converter. The heat exchanger is located in the cockpit area of the aircraft to expose it to a temperature capable of warming the gaseous oxygen regardless of the altitude of the aircraft. The heat exchanger is aluminum with a large interior surface area (fig. 7-11). Low-Pressure Switch The low-pressure switch is located in the oxygen supply line. It indicates to the flight crew, through a caution light in the aircraft cabin, when system pressure falls below minimum operating pressure of the system. This alerts and allows the pilot to descend to a safe altitude. Quantity Indicating System The quantity indicating system consists of a quantity gauge and a warning light in the cockpit. A quantity probe is also a part of the liquid oxygen converter. This probe senses the amount (quantity) of liquid in the converter. This information is transmitted to the quantity gauge by an electrical coaxial cable. The quantity gauge is marked in liters from zero to the system’s maximum storage capacity (0 to 10). The gauge constantly shows the remaining liquid in the converter. The low-quantity warning light is also connected to the coaxial cable and illuminates when the quantity of liquid in the converter falls below 1 liter. 7-13 Figure 7-10.—LOX converter installation. Figure 7-11.—Aircraft air-to-oxygen heat exchanger.

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Oxygen Shutoff Valve The oxygen shutoff valve is installed in the system to control the flow of oxygen to the pilot or flight crew, as required. Figure 7-12 illustrates a typical manually operated two-position valve. This valve has an inlet port, outlet port, and a relief port. The pressure-relief valve is located in the inlet chamber to protect the oxygen regulator and crewmember from excessive system pressure if there is a malfunction of the liquid oxygen converter. Also, this valve relieves excessive pressure due to thermal expansion of gaseous oxygen trapped within the system when not in use. If the oxygen system incorporates a console-mounted regulator, the shutoff valve is part of the regulator. Composite Quick-Disconnect Coupling The purpose of the composite quick-disconnect coupling is to provide a single-point connection for quickly connecting and disconnecting the pilot with aircraft oxygen, anti-g, communications, and ventila- tion air services. Oxygen Lines LOX systems are classed as low-pressure systems. As such, low-pressure tubing is used in manufacture and repair of LOX lines. All low-pressure tubing used in LOX systems is aluminum alloy 5052 tubing and is non-heat treatable. It is manufactured in seamless, round lengths, and is annealed to provide greater flexibility. Aircraft oxygen systems are fitted with 5/16-, 3/8-, and 1/2-inch sizes. Low-pressure tubing also is installed from the pressure reducer outlets in reduced high-pressure oxygen systems. Oxygen Regulators Regulators used with LOX systems are either console-mounted or miniature mask-mounted. The miniature mask-mounted regulator was especially designed for use with aircraft that have ejection seats. The console-mounted regulator is normally used in large non-ejection seat-equipped multi-place aircraft such as the E-6B and P-3. MINIATURE OXYGEN BREATHING REG- ULATOR.—The miniature mask oxygen regulator, shown in a cutaway view in figure 7-13, is intended primarily for use in aircraft having a low-pressure LOX system and ejection seats. It is often referred to as a miniature mask-mounted regulator. Since it weights only 2.3 ounces and measures approximately 2 5/8-inches in length and width, it is easily mounted on the oxygen mask or user’s torso harness. It is designed so that with an inlet pressure of 40 to 120 psi, it will deliver 100-percent oxygen automatically to the user between the altitudes of 0 and 50,000 feet. Oxygen at system pressure, warmed to a comfortable temperature, flows into the regulator inlet port to the demand valve diaphragm. A small passage from the inlet line sends this pressure to the backside of the diaphragm; thus, the demand valve diaphragm is 7-14 Figure 7-12.—Oxygen shutoff valve. Figure 7-13.—Cutaway view of a miniature oxygen regulator.

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pressure balanced except for the light imbalance caused by an area advantage on the backside of the diaphragm, which provides a positive sealing force. The vacuum caused by inhalation causes the sensing diaphragm to tilt downward, pushing down the demand-actuating paddle. As the paddle is forced downward, its base is lifted from a seat, which seals a second passageway from the backside of the demand valve diaphragm. Raising the paddle base allows flow from this area, which causes a pressure drop behind the demand valve diaphragm and allows inlet pressure to lift the diaphragm from its seat, and oxygen flow occurs. Safety pressure is obtained by the safety pressure spring, which deflects the sensing diaphragm, causing flow through the unit until the force created by mask pressure equals the force of the spring. This returns the sensing diaphragm to a balanced condition. Automatic pressure breathing is obtained by diverting a small volume bleed from the inlet passage to the aneroid chamber. This bleed is normally vented from the aneroid cavity past the area labeled aneroid vent. At the altitude at which pressure breathing is to begin, the lip of the aneroid comes in contact with the seat, closing off the aneroid vent and building up pressure, which reacts on the sensing diaphragm. The pressure lifts the sensing diaphragm, causing flow until the mask pressure exerts a force on the sensing diaphragm equal to the force exerted by pressure buildup in the aneroid chamber. The relief valve on the unit acts as a pilot device to open the exhalation valve of the mask. This is done by isolating the pressure pickup of the exhalation valve with the tube in the outlet port of the unit, so that only the pressure sent to it by the exhalation valve pickup tube compensates the exhalation valve. AIRCRAFT-MOUNTED OXYGEN REGULA- TORS.—The MD series regulator is being used in several multi-place naval aircraft. There are two types of regulators in this series—the MD-1 (low-pressure) (fig. 7-14) and the MD-2 (high-pressure) (fig. 7-15). The only difference found in these regulators is operat- ing pressure. The operating pressure of the MD-1 regula- tor is 50 to 500 psi. The pressure gauge reads 0 to 500 psi. The operating pressure of the MD-2 regulator is 50 to 2,000 psi. The pressure gauge reads 0 to 2,000 psi. The following controls and indicators are located on the front panel of the regulator. The small oblong-shaped window area on the left side of the panel marked FLOW indicates the flow of oxygen through the regulator by a visible blinking action. The pressure gauge is on the upper right and indicates inlet pressure to the regulator. The regulator has three control levers. A supply valve controller lever, on the lower right corner, is used to control the supply of oxygen to the regulator; a diluter control lever, on the lower center of the panel, has two positions—100% OXYGEN and NORMAL OXYGEN; an emergency pressure control lever, on the lower left of the panel, has three positions—EMERGENCY , NORMAL, and TEST MASK, and with the diluter lever in the 100% OXYGEN position, the regulator delivers 100 percent oxygen upon inhalation by the user. In the NORMAL OXYGEN position, the regulator delivers a mixture of air and oxygen with the air content decreasing until a cabin altitude of approximately 30,000 feet is reached. Above this altitude, 100 percent oxygen is delivered to the user upon inhalation. 7-15 Figure 7-14.—Aircraft panel mounted oxygen regulator, type MD-1. Figure 7-15.—Aircraft panel mounted oxygen regulator, type MD-2.

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With the emergency pressure control lever in the EMERGENCY position, the regulator delivers positive oxygen pressure to the outlet at altitudes when positive pressure is not automatically delivered. In the TEST MASK position, oxygen is delivered to the mask under pressure too high to breathe and is used for checking the fit of the mask. The switch must be in the NORMAL position for normal system operation. Refer to figure 7-16 for the operation of an MD type regulator. 1. Supply oxygen entering through the oxygen inlet (1) is filtered and passes through the manifold inlet assembly into the inlet supply valve (2) and then into the first-stage reduction chamber (3) by action of the inlet supply valve control lever (24). The pressure of the flowing oxygen is registered on the oxygen supply pressure gauge. 2. The reduction chamber incorporates the first-stage relief valve assembly (4) to protect the regulator against overpressures. 3. The demand valve assembly (5) is opened when the pressure across demand outer diaphragm (6) forces the demand valve lever assembly (7) down. The pressure differential exists during the inhalation cycle of the user by creating a reduction in the pressure outlet (8). 4. Reduction in pressure at the pressure outlet is sensed in the demand diaphragm chamber (9) through the sensing port (10). 5. During periods of flow, the oxygen passes through the venturi assembly (11). At the venturi assembly, the flow of oxygen mixes with ambient air, which enters the regulator through the inlet ports (12). 7-16 1. INLET 2. INLET SUPPLY V ALVE 3. REDUCTION CHAMBER 4. RELIEF V ALVE 5. DEMAND V ALVE 6. DIAPHRAGM 7. DEMAND V ALVE LEVER 8. OUTLET 9. DEMAND DIAPHRAGM CHAMBER 10. SENSING PORT 11. VENTURI ASSEMBLY 12. INLET PORT 13. DILUTER CONTROL LEVER 14. DILUTER ANEROID 15. CHECK V ALVE 16. EMERGENCY PRESSURE CONTROL LEVER 17. TEST SPRING 18. CONTROL LEVER 19. ANEROID 20. DIAPHRAGM 21. PRESSURE BREATHER V ALVE 22. PLATE ASSEMBLY 23. RELIEF V ALVE 24. SUPPLY V ALVE CONTROL LEVER Figure 7-16.—MD regulator operational drawing.

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6. The addition of ambient air to oxygen is controlled by the manual diluter control lever (13) and by the diluter aneroid assembly (14), which automatically produces a 100-percent oxygen concentration at altitudes above 32,000 feet. 7. The aneroid check valve assembly (15) prevents a flow of oxygen out through the inlet ports. 8. The emergency pressure control lever (16) applies force to the emergency pressure control test spring (17), which mechanically loads the emergency pressure diaphragm through the control lever and center assembly (18). Mechanical loading of the emergency pressure diaphragm provides positive pressure at the regulator outlet. 9. Both automatic safety pressure and pressure breathing at altitudes above 30,000 feet are provided through pneumatic actuation of the aneroid assembly (19). This function begins near 27,000 feet altitude. The force exerted on the diaphragm assembly (20) by the aneroid assembly actuates the pressure breather valve assembly (21), and the oxygen flows to the diaphragm and the plate assembly (22), which is pressure loaded by this volume of oxygen acting on the demand valve lever assembly to the extent that the positive pressure is built up at the pressure outlet as the altitude increases. 10. Additional safety is obtained through the inclusion of the second-stage relief valve assembly (23) in the regulator. TURNAROUND/PREFLIGHT/POSTFLIGHT/ TRANSFER INSPECTIONS .—These inspections are visual inspections performed in conjunction with the inspection requirements for the aircraft in which the regulators are installed. Refer to table 7-2 for assistance in troubleshooting. Visually inspect the following: • Electrical performance of the panel light • Legibility of all marking • Plastic lighting plate for cracks and dis- coloration • Low or improper reading on regulator pressure gauge • Emergency pressure control lever in NORMAL position 7-17 TROUBLE PROBABLE CAUSE REMEDY Oxygen cylinder pressure gauge fails to indicate proper pressure Defective gauge Replace regulator Blocked or leaking supply line Replace or clean supply line to regulator Low cylinder pressure Refill Defective manifold inlet assembly Replace regulator Oxygen not available at mask with proper pressure source to regulator and other than emergency setting on regulator Regulator controls improperly positioned Correct position of controls Hose to mask is kinked Straighten hose and reposition outlet Regulator not functioning properly Replace regulator Oxygen not available at mask with proper pressure source to regulator and regulator controls set at EMERGENCY Kink or other malfunction between hose and mask Replace or readjust equipment as necessary Faulty linkage from emergency pressure control lever Replace regulator Oxygen available at mask but flow is not indicated Defective blinker assembly Replace regulator Gauge pressure drops when regulator is not in use Loose or leaking connections Tighten or replace connections as necessary Defective manifold inlet assembly Replace regulator Panel light fails to light Burned out lamp Replace regulator Faulty light assembly Replace lamp Faulty electrical hookup to power source Repair electrical hookup Table 7-2.—Gaseous Oxygen System Troubleshooting

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• Diluter control lever in 100% OXYGEN position • Supply valve control lever in OFF position • Regulator and surrounding area free of dirt and hydrocarbons • Delivery hose and connector for cuts, fraying, kinking, hydrocarbons, and general condition If discrepancies are found or suspected, mainte- nance control should be notified. Regulators that do not pass inspection and cannot be repaired in the aircraft are removed and replaced by ready-for-issue (RFI) regulators. Non-RFI regulators are forwarded to the nearest maintenance activity having repair capability. SYSTEM OPERATION The LOX system shown in figure 7-7 is an example of a typical system. This system converts LOX to gaseous oxygen and then delivers it to the crew. The oxygen source of this system is a supply of LOX stored in a 10-lilter converter. System pressure is maintained at 75 to 110 psi by a pressure control valve and a pressure relief valve. Through a process of controlled evaporation within the converter assembly, LOX is converted to gaseous oxygen as required by the occupant of the aircraft. The oxygen is delivered to the pilot after being warmed to a safe breathing temperature in the heat exchanger. The flow of oxygen is controlled in the cockpit by the shutoff valve. The units that make up the converter assembly control the major part of the operation of the LOX system automatically. The LOX converter has three sequences of operation—fill, buildup, and supply (fig. 7-17). In the supply sequence, the converter alternates between the economy and demand modes of operation. 7-18 Figure 7-17.—Liquid oxygen converter operation.

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Fill Sequence The fill sequence begins automatically when the servicing trailer hose filler nozzle is connected to the filler port on the filler, buildup, and vent valve. The hose nozzle, when attached to the fill valve, actuates a plunger within the valve, which places the valve in the fill and vent condition (fig. 7-17, fill sequence, view A). The valve, when in this position, provides an opening from the top of the converter to the atmosphere. This opening is used to vent gaseous oxygen during filling and liquid oxygen after the converter is full. During transfer, liquid oxygen flows into the converter through a passage located in the bottom of the converter. This arrangement allows gaseous oxygen to vent through the converter top as it is being displaced by liquid flow in the bottom. When the converter is full, liquid flows overboard through the vent line, giving an indication that the converter is full. Removal of the filler hose nozzle from the fill valve automatically places the converter in the buildup sequence. Buildup Sequence The buildup sequence (fig. 7-17, buildup sequence, view B) begins when the filler hose is removed from the converter. This sequence provides for rapid pressure buildup to system operating pressure. During this sequence, LOX from the converter fills the buildup coil by gravity feed. Liquid in the coil absorbs heat from the ambient air around the coil and vaporizes, causing the pressure to build up. The gaseous oxygen formed in the coil then circulates through the pressure-closing valve and back to the top of the converter. This causes more fluid to flow into the buildup coil. This circulation continues to build up pressure until approximately 75 psi is reached. At this pressure, the pressure-closing valve is forced closed. Pressure continues to build up within the system at a slower rate, and at approximately 82 psi, the pressure-opening valve opens. When this occurs, oxygen is available at the supply outlet. A pressure relief valve, which is set at approximately 110 psi, is installed in the converter system to relieve excessive pressure. Supply Sequence The supply sequence of the liquid oxygen system consists of two modes of operation—the economy mode, in which gaseous oxygen is fed from the converter, and the demand mode, in which oxygen flows from the converter as a liquid and vaporizes to a gas in the feed line. In the economy mode of operation (fig. 7-17, supply sequence, view C), limited demand upon the system allows the converter to supply gaseous oxygen directly as a result of drawing off the gaseous oxygen stored within the top of the converter. At approximately 82 psi, the pressure-opening valve unseats and allows gaseous oxygen to flow from the converter to the supply system. Oxygen then flows from the upper (gas) portion of the converter, rather than the liquid side. When the amount of oxygen demanded by the crew exceeds the supply of the economy mode, the pressure-opening valve closes. As the crew continues to draw upon the oxygen supply, the supply system pressure becomes lower than that of the converter. When a pressure differential of 5 psi occurs, the differential check valve opens (fig. 7-17, supply sequence, views C and D) and allows liquid oxygen to flow into the supply line, creating the demand mode. Converter pressure will build up while the system is operating in the demand mode. As the pressure again approaches 82 psi, the pressure-opening valve will again unseat, switching the supply sequence back into the economy mode. The converter automatically switches itself back and forth between the economy and demand modes while supplying oxygen to the crew. SYSTEM MAINTENANCE Extreme care must be exercised when installing units in an oxygen system. The life of the pilot and crew depends on the thoroughness with which the AME does this job. All maintenance of LOX systems must be done in accordance with the instructions contained in the applicable MIM. The AME assigned to do the LOX system maintenance also should be familiar with the various instructions pertaining to handling LOX and maintenance of the related equipment. The actual removal and installation procedures used in maintaining LOX systems will vary from one aircraft to another; however, the following precautions will apply to almost any aircraft system. 1. Use only tubing assemblies that have been tested, cleaned, capped, and properly identified as oxygen lines. 7-19

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CAUTION If lines are fabricated locally, ensure that only clean, oil-free tubing and fittings are used. Also, ensure that no hydraulic fluid is used in the fabrication procedure. 2. Use only the type of fittings specified for the particular oxygen system. Never use fittings with pitted or otherwise disfigured cones or imperfect threads. 3 . It is MANDATORY that EXTREME CAUTION be exercised with regard to cleanliness of hands, clothing, and tools. It must be emphasized that all items that come into contact with the oxygen system must be free of dirt, oil, or grease. 4. Use thread anti-seize tape that is approved under specification MIL-T-27730. 5. When installing tubing assemblies between fixed units, the tube assembly should align without the use of undue force. 6. The torque values specified for the particular oxygen system should be strictly adhered to when tightening the fittings. 7. If a section of line is left open or disconnected during an installation, the open fittings must be covered with suitable caps or plugs. When making connections, be certain that no lint, dust, chips, or other foreign material is allowed to enter the oxygen system. 8. Upon completion of the installation of a tube assembly or component, a pressure check of the system should be conducted. The system should be pressurized and the connections checked with a leak-test solution conforming to specification MIL-L-25567. After the connections have been checked, the leak-test solution should be washed off with clean water. 9. The aircraft liquid oxygen system should be purged after the replacement of any component or tubing assembly. 10. The type of clothing and footwear that is worn when maintaining and servicing a liquid oxygen system is an extremely important factor. Do not wear anything that will produce sparks or static electricity, such as nylon clothing or shoes with steel taps or hobnails. Oxygen-permeated clothing will burn vigorously—a most painful way to die. 11. When servicing a liquid oxygen system, en- sure that only oxygen conforming to specification MIL-0-27210 is used. Oxygen procured under Federal Specification BB-0-925A is intended for technical use and should NOT be used in aircraft oxygen systems. 12. After the completion of repairs, always perform an operational check of the system and make the required test to ensure that the oxygen is safe for use by the pilot and crew. Q7-15. When the temperature of gaseous oxygen is lowered to –182°F under 720 psi pressure, what transformation will occur? Q7-16. True or False. When working with LOX, the wearing of trousers with cuffs is authorized. Q7-17. A sealed container of LOX can generate up to what amount of pressure? Q7-18. What component on a LOX converter pro- vides a margin of safety from explosion? Q7-19. In a 24-hour period, a normal LOX system will lose what amount of pressure? Q7-20. Where is the low-pressure switch for a LOX system located? Q7-21. What are the three sequences of operation for a LOX converter? Q7-22. An aircraft liquid oxygen system should have what type of maintenance performed after replacement of any component or tubing assembly? ONBOARD OXYGEN GENERATING SYSTEM LEARNING OBJECTIVE: Identify the sys- tem components and operation of the onboard oxygen generating system. The onboard oxygen generating system (OBOGS) is an alternative to liquid oxygen. When compared to a LOX system, the OBOGS has several advantages. First, its availability may be as high as 99 percent. There are no requirements for depot-level maintenance. The OBOGS has no daily servicing requirements, and scheduled preventive maintenance occurs at 2,000 hours. Incorporation of the OBOGS eliminates the need to store and transport LOX, and it eliminates the need for LOX support equipment. The potential for accidents related to LOX and high-pressure gases is greatly reduced. 7-20

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SYSTEM COMPONENTS The basic components of the OBOGS are the concentrator, oxygen monitor, and control panel assembly. Oxygen Concentrator The oxygen concentrator (fig. 7-18) produces an oxygen-rich gas by processing engine bleed air through two sieve beds. It is an electrical/mechanical device that is made up of a rotary valve, two molecular sieve beds, drive/servo motor, plenum assembly, air heater, inlet filter, over-temperature sensor indicator, pressure reducer, and insulating shroud. Oxygen Monitor The oxygen monitor (fig. 7-19) senses the partial pressure of the gas and if necessary, provides a low-pressure warning to the pilot. It is an electronic processor made up of an oxygen sensor, processing electronics, built-in test (BIT), a circuit heater, and a pressure-controlled sensing chamber. Control Panel Assembly The control panel assembly (fig. 7-20) houses the controls to operate the OBOGS system. It contains the following controls: • OBOGS ON/OFF control switch (electrical) • OXY FLOW ON/OFF control valve (mechan- ical) 7-21 Figure 7-18.—Oxygen concentrator. Figure 7-19.—Oxygen monitor. Figure 7-20.—Control panel assembly.

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SYSTEM OPERATION The OBOGS, shown in figure 7-21, receives engine bleed air from the outlet of the air-conditioning heat exchanger. The partially cooled air passes through an air temperature sensor to a pressure reducer assembly. The air is then routed to the concentrator. The concentrator has a rotary valve that alternates the airflow over the molecular sieve beds. The sieve beds absorb the nitrogen and allow the oxygen and argon to pass through. Two molecular sieve beds are used in the concentrator so that while one is absorbing, the other is desorbing (releasing) nitrogen. This method allows a continuous flow of oxygen to the system. After the concentrator, the oxygen flows to a plenum assembly that acts as a surge tank and an accumulator. The plenum also functions as a heat exchanger to heat or cool the oxygen to approximately cockpit temperature. Before the oxygen reaches the oxygen regulator, the oxygen performance monitor senses the partial pressure of the gas, and provides a signal to the pilot whenever the pressure exceeds prescribed limits. The oxygen then flows through the regulator to the pilot’s mask. Q7-23. An OBOGS system availability may be as high as what percent? Q7-24. True or False. An OBOGS system has a reduced chance for potential accident. Q7-25. What are the three basic components of an OBOGS system? Q7-26. What component has a built-in test? Q7-27. During OBOGS operation, when one sieve bed is absorbing, what is the other sieve bed releasing? 7-22 Figure 7-21.—Onboard oxygen generating system (OBOGS) schematic.

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CHAPTER 7 ANSWERS TO REVIEW QUESTIONS A7-1. Decreases A7-2. The eyes, brain, and muscles A7-3. 100 percent A7-4. Pressurization of the entire body A7-5. 99.5 percent A7-6. Pale blue A7-7. Anoxia A7-8. 50 psi A7-9. Type I conforming to Military Specification MIL-C-81302 A7-10. False A7-11. Mask A7-12. 514 and 295 cubic inches A7-13. Above 450 psi A7-14. To permit the flow of oxygen in one direction only A7-15. The oxygen will begin to form into a liquid A7-16. False A7-17. 12,000 pounds of pressure A7-18. Blowout disc A7-19. 10 percent A7-20. In the oxygen supply line A7-21. Fill, buildup, and supply A7-22. Purged A7-23. 99 percent A7-24. True A7-25. Concentrator, oxygen monitor, and control panel assembly A7-26. Oxygen monitor A7-27. Nitrogen 7-23

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CHAPTER 8 OXYGEN SUPPORT EQUIPMENT Oxygen systems on naval aircraft require several types of support equipment to ensure their safe and satisfactory operation. AMEs are concerned with support equipment that is used for storage and servicing of oxygen. In this chapter, storage tanks and servicing equipment are discussed. As an AME it is your responsibility to know and understand the safety precautions that are involved when working with or handling liquid or gaseous oxygen and its support equipment. This information should not stop with just the personnel of your rate, but it should be stressed to all aviation maintenance personnel, so they won’t mishandle or mistreat AME support equipment. Examples include playing with valves of service trailers, standing or sitting on trailers, hauling tools and equipment on them, spilling oils and other fluids on them, etc. Their awareness will reduce the possibility of creating hazardous conditions that could cause serious injury to themselves or others. Safety precautions also can be found in NA V AIR 06-30-501, Technical Manual of Oxygen/Nitrogen Cryogenic Systems. LIQUID OXYGEN SERVICING EQUIPMENT LEARNING OBJECTIVE : Describe liquid oxygen-servicing equipment to include safety precautions, LOX servicing trailers, and sys- tem servicing. Oxygen servicing equipment for both liquid and gaseous oxygen systems are discussed in this section. Since AMEs operate this equipment, they must be familiar with purging and sampling procedures as well as operation of the equipment while servicing aircraft oxygen systems. SAFETY PRECAUTIONS The following safety precautions must be observed when handling liquid oxygen (LOX): • Never allow LOX to contact your skin. The extremely low temperature of the liquid quickly freezes skin, and severe frostbite results. If your skin is splashed with LOX, immediately flush the area thoroughly with water, and then obtain first aid. • Always store LOX with the vent valve open. Relief valves on the tank protect the tank in case of malfunction, and are not to be used as pressure regulators. • Never confine LOX in piping or a container without adequate safety devices. When the liquid expands to a gas, the pressure buildup will rupture most piping, tubing, or containers. • Comply with all safety directives. Fifty feet away is the safe distance to permit smoking, open flames, or sparks in a LOX handling area. Assure that painting and markings on the LOX tank are maintained as required. Oxygen gas does not burn, but it vigorously supports combustion of any material that does burn. • Keep LOX away from absorbent materials, loose clothing, or rags. These materials can trap oxygen gas and later be ignited by a spark, cigarette, or match. • When LOX equipment is in use, keep it in a well-ventilated area away from all gasoline, kerosene, oil, grease, and other hydrocarbons. These substances are not compatible with LOX. Spontaneous ignition may result from contact with these substances. TMU-70/M, LOW LOSS, CLOSED LOOP LIQUID OXYGEN SERVICING TRAILER The primary purpose of portable transfer equip- ment is to provide a means of servicing oxygen systems installed in aircraft. This section will cover the TMU-70/M low loss, closed loop trailer (fig. 8-1). 8-1 Figure 8-1.—TMU-70/M low loss, closed loop, liquid oxygen servicing trailer.

CHAPTER 8

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During LOX servicing of aircraft converters, a lot of oxygen is lost because of the way the transfer is carried out. In addition to the economic loss, a safety hazard is created when LOX or oxygen vapors are released into the atmosphere near operating equipment and personnel. The low loss, closed loop system was designed to significantly reduce these losses and eliminate the safety hazards associated with venting oxygen in critical areas. Description The TMU-70/M is a completely self-contained unit with three major components: a 50-gallon Dewar tank, a 15-liter Dewar transfer tank, and a low loss, closed loop (LLCL) system of transfer lines. Separate liquid level and pressure gauges, as well as pressure relief devices, are provided for each tank. These components are permanently mounted on a portable three-wheel trailer, which is equipped with a manually operated parking brake and retractable caster wheel. The primary purpose of the TMU-70/M is to service aircraft LOX converters. The LLCL system is designed to recycle oxygen vapor caused by heat losses during transfer to the aircraft converter. The oxygen vapors vented from the transfer tank and aircraft converter are returned to the storage tank for cooldown and retention. Components Components include a storage tank, transfer tank, and transfer lines and piping system. STORAGE TANK .—The storage tank is a 50-gallon (U.S.) capacity, double-walled Dewar. The space between the double walls of the storage tank and transfer tank is evacuated down to 5 microns or lower and contains a multi-layer, high-vacuum insulation to minimize heat gain and boil-off of the LOX. TRANSFER TANK .—The 15-liter capacity transfer tank is a double-walled, vacuum insulated Dewar, permanently attached to the storage tank. It is self-contained and gravity-filled from the storage tank. The transfer tank is equipped with a pressure buildup coil, relief valve, rupture disc, and controls. The primary function of the transfer tank is to hold small volumes of LOX and to utilize cold gas pressure from the pressure buildup unit to transfer LOX to the aircraft converter. TRANSFER LINES AND PIPING SYS- TEM.—These lines carry the LOX from the storage tank to the transfer tank, and then to the aircraft converter. They also carry the vented oxygen gas from the aircraft’s converter to the storage tank. The closed loop system of the transfer lines contains the vented oxygen gas during filling operations. The interconnected liquid and return gas lines are vacuum-jacketed wherever practical and are a minimum length to reduce cooldown and heat leak losses. The piping system consists of a fill line for storage tank filling, a vent system for overboard venting of excess liquid or gas, and a pressure relief valve system connected to the vent system. Controls And Indicators The controls and indicators of the TMU-70/M are illustrated in figure 8-2. The functions of the controls are as follows: STORAGE TANK PRESSURE GAUGE.—(Fig. 8-2, item 1). The pressure gauge indicates the pressure in the inner storage tank. The gauge is calibrated to read from 0 to 100 pounds per square inch gauge (psig). A green band on the gauge face indicates safe operating pressure of 0 to 50 psig; a red band indicates unsafe operating pressure of 50 to 100 psig. STORAGE TANK LIQUID LEVEL GAUGE.— (Fig. 8-2, item 2). The liquid level gauge directly indicates the level of liquid oxygen in the inner tank when the tank is sitting level. The gauge dial is magnetically and mechanically coupled to a float sensor inside the storage tank. The gauge is calibrated in gallons. Safe operating levels of up to 50 gallons are indicated in green; unsafe operating levels of more than 50 gallons are indicated in red. CONVERTER VENT LINE SHUTOFF VA LV E.—(Fig. 8-2, item 3). The vent valve controls the flow of oxygen gas vapors from the converter being filled to the storage tank and prevents the loss of storage tank gas when the converter is not being filled. TRANSFER TANK VENT LINE SHUTOFF VA LV E.—(Fig. 8-2, item 4). The vent valve controls the flow of oxygen gas vapors from the transfer tank to the vapor space of the storage tank. 8-2

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TRANSFER TANK FILL LINE SHUTOFF VA LV E.—(Fig. 8-2, item 5). The valve is used to control the gravity flow of liquid oxygen from the storage tank to the transfer tank. TRANSFER TANK PRESSURE BUILDUP VA LV E.—(Fig. 8-2, item 6). The pressure buildup valve controls the flow of liquid oxygen from the bottom of the transfer tank to the pressure buildup (PBU) coil. The PBU coil is a heat exchanger where the liquid oxygen is exposed to ambient temperature and is converted to gas. As the liquid changes to gas it expands. The output gas of the PBU coil is fed back to the transfer tank vapor space, providing pressure to discharge liquid to the converter. This valve is open only when pressure is required to fill the converter. TRANSFER TANK LIQUID LEVEL GAUGE.— (Fig. 8-2, item 7). The liquid level gauge indicates the level of liquid oxygen in the transfer tank. The gauge is magnetically and mechanically coupled to a float sensor inside the transfer tank. The gauge is calibrated in percent of full. TRANSFER TANK PRESSURE GAUGE .— (Fig. 8-2, item 8). The pressure gauge indicates the pressure in the transfer tank. The pressure in the transfer tank must be greater than the pressure in the storage tank to achieve transfer of liquid since the converter is vented into the storage tank during converter fill operation. The gauge is calibrated to read 0 to 160 psig. Safe operating pressure is 0 to 90 psig and is indicated by a green band; a red band indicates unsafe pressure of 90 to 160 psig. CONVERTER FULL INDICATOR GAUGE.— (Fig. 8-2, item 9). The full indicator gauge (marked LIQUID-GAS) is a vapor pressure thermometer that monitors the converter vent line temperature. During transfer of liquid to a converter, the gauge indicates GAS temperature in the converter fill line. When the converter is full, the vent line is filled with liquid oxygen overflow. The converter vent line temperature drops and the gauge indicator moves to the LIQUID position and indicates a full converter. 8-3 1. STORAGE TANK PRESSURE GAUGE (P-1) 2. STORAGE TANK LIQUID LEVEL GAUGE (LG-1) 3. CONVERTER VENT LINE SHUTOFF V ALVE (GV-4) 4. TRANSFER TANK VENT LINE SHUTOFF V ALVE (GV-3) 5. TRANSFER TANK FILL LINE SHUTOFF V ALVE (LV-2) 6. TRANSFER TANK PRESSURE BUILDUP V ALVE (GV-5) 7. TRANSFER TANK LIQUID LEVEL GAUGE (LG-2) 8. TRANSFER TANK PRESSURE GAUGE (P-2) 9. CONVERTER FULL INDICATOR GAUGE (F1) 10. FILL-DRAIN LINE SHUTOFF V ALVE (LV-1) 11. STORAGE TANK VENT LINE SHUTOFF V ALVE (GV-6) 12. FILLER V ALVE (C-2) 13. CONVERTER VENT LINE CONNECTION (C-3) 14. FILL-DRAIN LINE COUPLING (C-1) Figure 8-2.—Liquid oxygen servicing trailer controls and indicators.

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CAUTION The fill-drain line shutoff valve is not used to control flow. Restricting transfer flow may create a dangerous back-pressure on the supply line used for filling. Control of transfer flow should be maintained with the service valve of the central supply tank. FILL-DRAIN LINE SHUTOFF V ALVE.—(Fig. 8-2, item 10). The fill valve is used during the storage tank filling operation to permit the flow of oxygen from a central supply tank. The shutoff valve is opened completely during the filling function and then closed after the transfer has been completed. STORAGE TANK VENT LINE SHUTOFF VA LV E.—(Fig. 8-2, item 11). The vent valve is used to control the release of gaseous vapors from the storage tank to the vent-piping manifold. The valve is open during filling to vent all pressure from the storage tank. During normal idle storage, the valve is left in the open position to vent all vapors generated by normal liquid oxygen boil-off. When the cart is not in use, the valve is left closed to prevent oxygen contact with flammable liquids or vapors. 8-4 1. FILL-DRAIN LINE COUPLING (C-1) 2. FILL-DRAIN LINE FILTER (LF-1) 3. FILL-DRAIN LINE SHUTOFF V ALVE (LV-1) 4. FILL-DRAIN LINE RELIEF V ALVE (RV-3) 5. STORAGE TANK VENT LINE SHUTOFF V ALVE (GV-6) 6. STORAGE TANK LIQUID LEVEL GAUGE (LG-1) 7. STORAGE TANK PRESSURE GAUGE (P-1) 8. STORAGE TANK INNER SHELL RELIEF V ALVE (RV-1) 9. STORAGE TANK INNER SHELL RUPTURE DISC (SD-1) 10. TRANSFER TANK FILL LINE SHUTOFF V ALVE (LV-2) 11. TRANSFER TANK VENT LINE SHUTOFF V ALVE (GV-3) 12. TRANSFER TANK PRESSURE GAUGE (P-2) 13. TRANSFER TANK LIQUID LEVEL GAUGE (LG-2) 14. TRANSFER TANK INNER SHELL RELIEF V ALVE (RV-2) 15. TRANSFER TANK INNER SHELL RUPTURE DISC (SD-3) 16. CONVERTER VENT LINE CONNECTOR (C-3) 17. FILLER V ALVE (C-2) 18. CONVERTER VENT LINE CHECK V ALVE (CV-1) 19. CONVERTER FULL INDICATOR GAUGE (F1) 20. CONVERTER VENT LINE SHUTOFF V ALVE (GV-4) 21. TRANSFER TANK PRESSURE BUILDUP V ALVE (GV-5) 22. OUTER SHELL RELIEF DEVICE (SD-2) 23. CONVERTER V APOR RETURN CHECK V ALVE (CODE C AND D) Figure 8-3.—TMU-70/M liquid oxygen servicing trailer schematic diagram.

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Operation The following procedures describe LOX flow in connection with filling the TMU-70/M storage tank and the servicing of an aircraft converter, using the trailer. The flow description is keyed to figure 8-3. Figure 8-4 shows the operating instructions from the plate attached to the trailer. When the servicing trailer is received from the factory or from an overhaul activity, it is normally ready to be filled with LOX and pressurized for immediate use. The annular space is evacuated to the point 8-5 Figure 8-4.—Operating instructions for TMU-70/M.

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desirable for a warm and empty tank. Prior to filling or pressurizing the tank, perform the inspection proce- dures indicated in table 8-1. FILLING.—Normally the servicing trailer is filled from central supply tanks. These tanks have transfer hoses terminating in couplings that match the fill-drain line coupling on the trailer. Operation of the supply tank should be in accordance with the procedures in its operation manual. Filling consists of the following procedures. Ensure that all required safety equipment is in use and all safety precautions have been taken. Place the trailer on a level surface or ensure that the tank has a level position. Close all control valves on the storage tank. Pressurize the LOX supply tank to the required pressure for transfer to the TMU-70/M. Remove the dust cover from the supply tank transfer line and purge hose. After purging, connect the fill-drain line coupling (1) (fig. 8-3) to the transfer hose. Open the TMU-70/M’s storage tank vent line shutoff valve (5) and fill drain line shutoff valve (3). 8-6 ITEM INSPECTION FREQUENCY Exterior Inspect for obvious physical damage, missing parts, illegible decals or plates, and missing or insecure attaching parts. Daily while in use Piping and valves Inspect for dents, nicks, or scratches; security of brazed or threaded connections; ease of valve movement, and adequate seating and security of packings. Daily while in use Gauges Inspect for cracked dial face and security of installation. Daily while in use Cabinet Inspect for smooth hinge and guide operation and correct functioning of latches and legibility of decals and plates. Daily while in use Tires Inspect for correct inflation, tread wear, sidewall cracks or abrasions, and proper positioning of valve stems. Daily while in use Wheel assemblies Inspect for warps or dents in rims and freedom of rotation. Daily while in use Retractable caster Inspect for proper operation and undue wear or damage. Daily while in use Controls Inspect for loose, missing, or cracked handles; obvious physical damage. Daily while in use Brake and cross shaft assemblies Inspect for physical damage, missing parts, and ease of operation. Daily while in use Converter fill and vent line hoses Inspect for frayed wire in braid and worn or damaged fill and vent couplings. Daily while in use Exterior cleanliness Inspect visually for such contaminants as oil, grease, metal chips or scale. Weekly Operation Perform operational checkout Monthly or on receipt of new or repaired equipment Table 8-1.—Periodic Inspection

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CAUTION Pressure should not be allowed to rise above 55 pounds per square inch (psi) in the storage tank. Monitor the storage tank pressure gauge (7) closely during cooldown. Open the service valve on the supply tank slowly, and allow only a partial flow of LOX through the transfer hose and into the trailer. Considerable vaporization will take place until the transfer hose, fill-drain line, and storage tank on the trailer have cooled down. When these have sufficiently cooled and are able to handle a full flow of LOX, open the service valve on the supply tank completely. During filling, LOX flow is through the fill-drain line filter (2) and shutoff valves (3) to the storage tank. The relief valve (4) is provided to prevent excessive pressure if the fill-drain line shutoff valve and the service valve on the supply tank are closed with cold gas or liquid trapped within the supply line. The relief valve (4) is connected to the vent line for safe discharge overboard. The vent line shutoff valve (5) is opened during filling and normal storage where safe overboard discharge is provided. Storage tank conditions are monitored and indicated by the liquid level gauge (6) and pressure gauge (7). The inner shell relief valve (8) and rupture disc (9) are provided in case of excessive pressure in the storage tank. Monitor the storage tank liquid level gauge (6) during filling. When it indicates 50 gallons or LOX starts to flow out the vent manifold, close the servicing valve on the supply tank. Close the fill-drain line shutoff valve (3) to relieve internal pressure. CAUTION Use extreme caution when disconnecting the transfer hose. Even though the hose has been drained and the pressure relieved, some LOX will still remain. Do not direct the hose toward personnel or other equipment. Disconnect the supply tank transfer hose, immediately drain the LOX that remains, and replace the coupling cap loosely. Tighten the cap after ensuring that all LOX has vaporized and bled off. Close all control valves on the service trailer except the storage tank vent valve (5). NOTE: Observe the time required to fill the TMU-70/M. Filling will vary with each supply tank and supply system. Under normal conditions and 30 psi transfer pressure, the storage tank should fill within a period of 5 to 10 minutes. Deviation from the average filling time should be cause for investigation. TRANSFER.—The transfer of LOX from the storage tank of the trailer to an aircraft converter can be done in the following manner. Ensure that all safety equipment is in use. Close all control valves (3, 5, 10, 11, 20, and 21, as show in figure 8-3). Observe storage tank liquid level gauge (6) and pressure gauge (7) to ensure sufficient LOX supply and safe operating pressure. Open the transfer tank fill valve (10) and vent valve (11) to allow the transfer tank to fill. When the transfer tank is full, as indicated by the liquid level gauge (13), close the shutoff valves (10) and (11). Connect the converter vent line connector (16) to the converter vent fitting. Connect the air force (AF) filler valve (17) to the converter fill fitting, using a two-step procedure. First, position the valve against the purge fitting and turn the housing clockwise, locking the valve in place. Second, push the knurled knob forward and rotate clockwise, locking the valve in the open position. Open the transfer tank pressure buildup valve (21) momentarily and observe the tank pressure gauge (12). When pressure rises to approximately 90 psig, close valve (21). If necessary, maintain desired pressure by regulating pressure buildup valve (21) during converter servicing. Open the converter vent line shutoff valve (20) and observe the converter full indicator gauge (19). The gauge will indicate GAS as the converter is filling, and when full, it will indicate LIQUID. As soon as it indicates LIQUID, disconnect the AF filler valve (17), close the transfer tank pressure valve (21), close the converter vent valve (20), and then disconnect the converter vent line connector (16). If no other converters are to be serviced, empty the transfer tank, open the fill line shutoff valve (10), and then the pressure buildup valve (21), if necessary, and observe the liquid level gauge (13). When the transfer tank is empty, close the pressure buildup valve (21) and then the fill line shutoff valve (10). Close all valves except the storage tank vent valve (5). The flow of LOX from the storage tank to the aircraft converter is done as follows and can be traced using figure 8-3. The flow of LOX from the storage 8-7

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tank to the transfer tank is by gravity. It first passes through the transfer fill line shutoff valve (10) to the transfer tank. During this process, the gaseous oxygen produced by cooldown of the tank is vented back to the storage tank through the vent line shutoff valve (11). Conditions of the transfer tank are monitored and indicated by pressure gauge (12) and liquid level gauge (13). When the transfer tank is filled to the desired level, as indicated by the liquid level gauge, valves (10) and (11) are closed. The converter lines are connected to the vent line connector (16) and filler valve (17). The filler valve is opened to allow the pressure in the converter and transfer tank to equalize. The transfer tank PBU coil is used to increase the pressure in the transfer tank to approximately 90 psig. This pressure is regulated by the pressure buildup valve (21) as required to maintain as high a pressure as possible during the servicing operation. W ARNING The rate of pressure buildup depends on the liquid level in the transfer tank. In a full tank, the pressure will build extremely fast because of the small amount of vapor space to be filled. Use extreme caution in building the pressure, and never allow the pressure to exceed 90 psig. Open transfer tank vent valve (11) to relieve the excessive pressure into the storage tank. This will avoid the opening of the relief valve (14) and the resultant undesirable discharge of gaseous oxygen from the vent line. LOX is now able to flow from the transfer tank into the converter. When the converter full indicator gauge (19) indicates full, the overflow is returned to the storage tank by passing through the converter vent line shutoff valve (20). The filler valve (17) is then removed, the transfer tank pressure buildup valve (21) is closed, vent valve (20) is closed, and then vent line connector (16) is disconnected. The preceding process is repeated either until the storage tank is empty or the maximum operating pressure, as indicated on the storage tank pressure gauge (7), has been replaced. Maintenance Information and instructions for maintenance of the TMU-70/M storage tank are found in NA V AIR 19-25D-26. The maintenance section is organized to provide information and instructions for the three levels of maintenance responsibility: organizational, intermediate, and depot. The capability of the using or supporting activity will be the limiting factor as to the level of maintenance that can be performed on the equipment. If maintenance of the equipment is beyond the assigned maintenance responsibility of the using or supporting activity, the next higher level will perform the maintenance. AMEs are only responsible for the organizational maintenance of LOX trailers, which includes those functions normally performed in support of daily operations. Normal operational maintenance func- tions include inspection and preventive maintenance. Table 8-1 will assist you in understanding these functions. System Servicing Aircraft systems and LOX converters should be serviced in accordance with the appropriate mainte- nance instructions manual (MIM). Only LOX conforming to MIL-0-27210, type II, may be used in aircraft LOX systems. The firefighting agents below are prohibited from use in conjunction with LOX-enriched fires. • Soda-acid extinguishers • Mechanical (liquid) foam • Methyl bromide • Carbon tetrachloride Q8-1. Open flames, smoking, or sparks should be kept what minimum distance away from a LOX handling area? Q8-2. True or False. Oxygen will burn when ignited. Q8-3. Identify the three major components of the TMU-70/M. Q8-4. Explain the primary function of the transfer tank. Q8-5. What is the function of the transfer tank pres- sure buildup valve? Q8-6. Using the fill-drain shutoff valve to control LOX flow may cause what type of hazard? Q8-7. Exterior cleanliness of the TMU-70/M LOX cart should be performed at what interval? 8-8

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Q8-8. Information and instructions for maintenance of the TMU-70/M are found in what publica- tion? Q8-9. What type of LOX must be used to service aircraft LOX systems? CONTAMINATION CONTROL LEARNING OBJECTIVE : Describe con- tamination control procedures for oxygen equipment to include detection, purging, and purging equipment. The importance of using uncontaminated LOX in aircraft systems cannot be overstressed. Because of this, the Navy has established the Aviators Breathing Oxygen (ABO) Surveillance Program Laboratory and Field Guide (A6-332SAO-GYD-000). For additional information on contamination control, oxygen sam- pling, and oxygen system purging, refer to that manual. LOX produced by generating plants contains contaminants, which are not completely removed by the generating process. Atmospheric air, from which LOX is generated, is the primary source of contamination. Additional sources of contamination are the compressors and other equipment of the generating plants. Airborne contaminants and those added by the generating plants are partially removed by a system of filters, absorbers, driers, and heat exchangers before the air is finally liquefied. When the LOX separates from the liquefied air it carries with it those contaminants that are not completely removed. The variety and concentration of contaminants that separate with the LOX depend on how effective their removal has been during the generating process. Generating plants are designed to remove contamina- tion to the lowest limits possible, both for safety of operation and for quality of product. The contamination limits of LOX produced by any generating plant for the Navy and Marine Corps as breathing oxygen are specified as procurement limits. Procurement limits and the ultimate use limits of contamination are based on the types and significance of contaminants, and the sources of increasing contamination in liquid oxygen during storage, handling, and transfer. DETECTION LOX contamination is detected by means of an odor test, sampling, and analysis. Only the odor test will be discussed in this chapter because all other tests and analysis must be performed in a laboratory. An odor test will be performed on LOX trailers after the first filling of the day, or each 6 days when the trailer is not in service. Aircraft LOX systems require an odor test to be performed as soon as possible after an aircraft accident/incident or a report of in-flight odors by pilots or aircrew. The sample taken after an accident/incident must be sent to a test site for analysis with details of the incident, including history of the supply source of the LOX. Odor Test The odor test is performed by pouring a 200-milliliter (6.8 oz) sample into a clean 400-milliliter (13.8 oz) beaker or similar container after covering the bottom of the beaker with clean, dry filter paper or other absorbent paper. A watch glass cover or some other means of partially covering the top of the beaker will be provided as the 200 milliliters evaporates to dryness. This will prevent atmospheric elements from being absorbed by the exposed liquid. The liquid is permitted to evaporate to dryness and warm up to approximately room temperature in an area free from air currents or extraneous odors. When the liquid has completely evaporated, the watch glass is removed and the beaker contents smelled at frequent intervals until the accumulated frost on the outside of the beaker has completely melted. Odors will be most prevalent when the beaker has warmed to nearly room temperature. If odors are present, the LOX container or system will be purged in accordance with existing directives. Sampling Sampling and analysis of LOX is required any time contamination is suspected. Contamination of oxygen used in aircraft can cause many problems, from fire hazards to death of the crewmember using the oxygen system. The most dangerous contaminate is hydrocarbons. The presence of hydrocarbons in LOX constitutes a potential fire and explosive hazard as well as causing psychological and physiological dangers to aircrews. Psychologically, the effects may be uneasiness, apprehension, or possible panic resulting from detection of odors. Physiologically, the effects may be nausea, illness, intoxication, or possibly asphyxia. Acetylene is the most hazardous hydrocarbon contaminate because it is highly insoluble in LOX, changing into a solid at extremely low concentrations. Once in its solid form, it can readily be set off into ignition, and since it is chemically unstable, it can decompose under certain conditions and become its own source of ignition. The presence of acetylene in 8-9

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LOX has caused several major LOX generating plant explosions. Inert solids are small contaminants that do not react with oxygen to create a fire or explosion, such as rust, dust, and fibers. They may cause mechanical malfunctions or failures by plugging filters, lines, or valves. Other contaminants commonly found in oxygen are water vapor, carbon dioxide, nitrous oxide, and halogenated compounds (Freons). PURGING Purging and other maintenance of LOX trailers is performed by the Aviation Support Equipment Technician (AS) rating. Purging is the cleansing of impurities from oxygen systems and containers. There are two ways to purge oxygen containers: LOX wash and gas purging. The LOX wash method is used on large containers, such as storage tanks and LOX trailers, to lower the contamination to acceptable levels by replacing the contaminated LOX with LOX known to be un- contaminated. Gas purging is used on aircraft LOX converters if the system pressure is allowed to deplete or if odor is detected. Gas purging of aircraft LOX systems must be done if any maintenance is performed on the system that opens it to the atmosphere. Q8-10. What manual should you refer to for information on contamination control for oxygen? Q8-11. What is the primary source of contamination for LOX? Q8-12. State the three ways LOX contamination is detected. Q8-13. An odor test will be performed on a LOX cart if it has not been in service for what amount of time? Q8-14. When is LOX sampling performed? Q8-15. Of all the hydrocarbons associated with LOX, why is acetylene the most dangerous? Q8-16. List four contaminants commonly found in oxygen. Q8-17. What rate is responsible for purging of LOX trailers? GASEOUS OXYGEN SERVICING TRAILERS LEARNING OBJECTIVE: Identify compo- nents and operating procedures for gaseous oxygen servicing trailers. There are several different models of gaseous oxygen servicing trailers currently in use by naval activities. This section will discuss the type No-2 and the A/U26U-1A oxygen servicing unit. TYPE NO-2 GASEOUS OXYGEN SERVICING TRAILER The type No-2 servicing trailer is shown in figure 8-5. Equipment provided on the trailer includes six manifold control valves with pressure gauges, an upper and lower manifold, two pressure regulators, a recharge valve, four shutoff valves, a drier assembly, six cylinders and connecting flexible hoses, and a servicing hose fitted with a line servicing valve fitted with a high-pressure charging adapter. The function of each of these components is described in the following text. Components Complete familiarity with the following trailer components is a basic prerequisite for safe operation. MANIFOLD CONTROL V ALVES .—The six manifold control valves serve to shut off the flow of oxygen from the cylinders to the system being charged. These valves are lever-type valves. The manifold control valves should not be used as a shutoff for long-time storage. Always use the hand-wheel type valves located on the cylinders. UPPER MANIFOLD .—The upper manifold provides connections/mounting for the six manifold control valves with pressure gauges (each connected to a supply cylinder), a recharge valve, and two upper/inlet shutoff valves that connect to the inlet side of the regulators. PRESSURE REGULATORS .—The pressure regulator controls the charging pressure when the trailer is being used to service aircraft oxygen systems. Only one pressure regulator is used during operation. The spare is provided to ensure uninterrupted operation should one fail. RECHARGE V ALVE.—The recharge valve is provided as a means of recharging the trailer cylinders directly through the upper manifold without the 8-10

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necessity of removing the cylinders. When not in use, the valve adapter should be fitted with a dust cap. SHUTOFF V ALVES.—There are four shutoff valves, one on the inlet side of each pressure regulator and one on the outlet side of each regulator. These shutoff valves control the flow of oxygen from the upper manifold to the lower manifold, via the regulator. When the shutoff valves on the inlet and outlet sides of the regulator are open, the pressure regulator is ready for use. By turning the regulator control handle clockwise, the pressure (as read on the gauge attached to the regulator) will increase. Turning the control handle counterclockwise decreases pressure. LOWER MANIFOLD .—The lower manifold provides connections/mountings for the two lower/outlet shutoff valves from the outlet side of the regulators, a delivery pressure gauge, and a flexible hose that connects the lower manifold to the drier assembly. DRIER ASSEMBLY.—The drier assembly is a reservoir containing a chemical drying agent through which oxygen must pass before going through the servicing hose. This chemical drier is provided to remove any moisture in the oxygen supply. The oxygen flows into the bottom of the drier, passes up through the drying agent, and out through the servicing hose. SERVICING HOSE AND LINE V ALVE.—The servicing hose is a high-pressure, non-linking, metallic flexible hose. The line-servicing valve is attached to the servicing hose and is used to control the flow of oxygen to the system being charged. 8-11 Figure 8-5.—Type No-2 gaseous oxygen servicing trailer.

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Operation The six supply cylinders are connected by means of flexible hoses to their respective control valves (fig. 8-6). The six control valves are attached to the upper manifolds. A pressure gauge is screwed into each control valve at a point below the seat. This allows each cylinder pressure to be easily read. The oxygen flows from the upper manifold through either of two pressure regulators via two shutoff valves. The oxygen is collected in the lower manifold where a gauge registers the pressure of the delivery side of the system. The lower manifold is connected by flexible hose to a drier that filters and dries the oxygen. The servicing hose connects directly to the drier and has a line-servicing valve on the terminal end. The line-servicing valve is fitted with a standard oxygen cylinder connection. Loading Cylinders The servicing trailer is capable of having its cylinders recharged without removal. However, many operating activities replace the empty cylinders with full cylinders. NOTE: NEVER completely expend the supply of oxygen from a cylinder. Always leave a residual pressure in excess of 50 psi. REMOV AL OF EMPTY CYLINDERS.—When the trailer has been in use and cylinder pressure is low, the cylinders are removed as described below. 1. Close all lever valves on the manifold prior to removing any cylinders. 2. Close the cylinder shutoff valves. 3. Disconnect the flexible hose that connects the cylinder to the manifold. 4. Loosen the clamping arrangement that holds the cylinders to the trailer. 5. Install the cylinder safety caps. 6. Remove the empty cylinders. CAUTION Do not attempt to remove empty cylinders while charging. 8-12 Figure 8-6.—Type No-2 gaseous oxygen servicing trailer (schematic).

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INSTALLATION OF FULL CYLINDERS .— The trailer should be loaded with cylinders while fastened to a towing vehicle. If a towing vehicle is not available, the rear stand should be let down and hand brakes applied so the weight of the cylinders will not cause the trailer to tilt backwards. The retractable swivel wheel should be down if the trailer is not hooked to a towing vehicle. (When the trailer is hooked to the towing vehicle, the swivel wheel should be retracted). Cylinders should be loaded from the rear and should be handled with safety caps in place. Standing cylinders should be brought to within 4 feet of the rear end of the trailer. If the cylinders are lying down, the safety cap end of the cylinder should be just below the rear of the trailer. The safety cap end of the cylinder should be lifted or lowered and placed in the appropriate channel. The bottom of the cylinder should be raised and the cylinder worked into place. Ensure that the cylinder is in its forward-most position and firmly seated against the forward cylinder stop. Remove the cylinder safety cap. Position the cylinder so that the cylinder valve outlet may easily be connected to the flexible hose without causing undue strain on the hose. Prior to connecting the hose to the cylinder, open the cylinder valve slightly to blow any foreign matter from the outlet valve, then close the valve. Connect the flexible hose nut to the power cylinder valve. As soon as the cylinders are in place and the hoses connected, the clamping arrangements should be tightened. The bottom four cylinders are clamped in pairs by a wheel while the top two cylinders are each held in place by a single strap. After tightening the coupling nuts on the hoses, the hoses should be free of twisting strain. Gripping the hose with one hand and twisting slightly in a clockwise direction while tightening the coupling nut can prevent twisting. After replacing the empty cylinders, the cylinder valves on the full cylinders should not be opened until the trailer is positioned for servicing an aircraft. CAUTION To eliminate the danger of an explosion, do not interchange parts between oxygen servicing equip- ment and air/nitrogen equipment. REPLACEMENT OF DRYING AGENT.—The chemical drier should be inspected after every 12 cylinders are used, and the chemical agent should be replaced at the first sign of change in the indicator. The blue-colored indicating agent is applied on top of the white drying agent. When moisture is present, the indicating agent will change color from blue to pink. The indicating agent can be easily inspected by removing the servicing hose and unscrewing the top cap of the drier container. CAUTION Relieve all pressure prior to inspection or re- placement of the chemical agent. The drying agent is removed by removing the hose connecting the lower cap and the lower manifold and unscrewing the drier lower cap. All traces of the contaminated agent should be removed and the lower cap replaced, and the lower manifold connected. The drying agent should be quickly placed in the drier so that it does not pick up moisture from the air. Care should be given to the replacement of the indicating agent. The top cap should be screwed in place immediately after observing the condition of the indicator so that moisture or humid air does not cause the indicator to change color. The caps on the drier should be screwed down until they hit bottom. The caps should be removed and replaced by hand only. It is not necessary to tighten the caps extremely tight; the caps are sealed with O-ring packings. If leakage occurs, the O-rings should be replaced. NOTE : All maintenance on the oxygen-servicing trailer should be performed in accordance with the instructions contained in the applicable operation and service instruc- tions manual or set of maintenance require- ment cards. OXYGEN SERVICING UNIT A/U26U-1A The oxygen servicing unit A/U26U-1A is a configuration of four major components consisting of a trailer assembly, gas storage system, gas servicing 8-13

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system, and interface/servicing equipment. Figures 8-7 and 8-8 illustrate the relationship of major components and location of information plates and reflective tape. Components Components include a trailer assembly, gas storage system, gas servicing system, and interface/servicing equipment. TRAILER ASSEMBLY.—The trailer assembly is designed to support and transport the gas storage system, gaseous oxygen/nitrogen modules, and interface/servicing equipment including the grounding reel cable assembly. The trailer contains three wheels and a tow bar. The tow bar is used to attach the trailer to a towing vehicle. A rotatable, retractable swivel caster wheel supports the tow bar when the trailer is uncoupled from a tow vehicle. The wheel release handle holds the swivel caster wheel in the up position when the trailer is being towed. When uncoupled, the caster wheel is locked in the down position with the wheel release handle. The trailer is equipped with a mechanical parking brake operated by a hand brake lever. GAS STORAGE SYSTEM .—The gas storage system is used to store oxygen and nitrogen. It consists of one cylinder of oxygen and two cylinders of gaseous nitrogen (oil free). The storage system is designed to operate at 225-3850 psig for nitrogen and 200 to 2640 psig for oxygen. Nitrogen is used to drive an oxygen boost pump when compressed air is not available. 8-14 Figure 8-7.—Oxygen servicing unit A/U26U-1A.

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GAS SERVICING SYSTEM .—The gas servicing system is used to supply oxygen to an aircraft oxygen storage system. The system consists of the gaseous oxygen module and nitrogen module. CAUTION Compressed air used to drive the oxygen gas boost pump must be clean and moisture free. 8-15 1. TRAILER ASSEMBLY 2. NITROGEN MODULE 3. OXYGEN MODULE 4. OXYGEN STORAGE CYLINDER 5. NITROGEN STORAGE CYLINDER 6. SERVICING/INTERFACE EQUIPMENT STORAGE 7. PARKING BRAKE HANDLE 8. PUSH BAR 9. NOSE WHEEL RELEASE HANDLE 10. SAFETY CHAIN AND HOOK 11. RETRO-REFLECTIVE TAPE 12. LIFTING INSTRUCTION PLATE 13. TRANSPORTATION DATA PLATE 14. IDENTIFICATION PLATE 15. GROUNDING REEL CABLE ASSEMBLY Figure 8-8.—Oxygen servicing unit A/U26U-1A.

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Gaseous Oxygen Module.—The gaseous oxygen module (fig. 8-9) transfers oxygen from the gas storage system by equalizing pressure or by boosting with a pump driven by compressed air or gaseous nitrogen. The two oxygen delivery pressures provided are for high pressure (HP) and low pressure (LP) aircraft oxygen serving. During aircraft oxygen servicing, the oxygen module is grounded to the nitrogen module and trailer grounding reel. Gaseous oxygen (aviator’s breathing) used with this unit shall conform to the current military specification MIL-0-27210, type I (gaseous, 99.5 percent pure). W ARNING Do not interchange parts between nitrogen module and oxygen module. 8-16 Figure 8-9.—Gaseous oxygen module.

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Gaseous Nitrogen Module .—The gaseous nitrogen module (fig. 8-10) supplies unregulated compressed air (90 to 150 psig) or regulated gaseous nitrogen (120 to 130 psig) to the oxygen module for oxygen boost pump drive. Compressed air is the primary drive source for the boost pump. Gaseous nitrogen will only be used as a drive source for boost pump when compressed air is not available. Gaseous nitrogen used for recharging this unit shall conform to federal specification BB-N-411, type 1 (gaseous), Class 1 (oil free), Grade B (99.5 percent pure, low moisture content). 8-17 Figure 8-10.—Gaseous nitrogen module.

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INTERFACE/SERVICING EQUIPMENT .— The interface/servicing equipment (fig. 8-11) consists of those parts required to connect the oxygen-servicing unit to the aircraft oxygen storage system and includes the grounding cable reel assembly. The servicing equipment provides an HP and LP oxygen supply connection for aircraft oxygen storage cylinders and emergency bailout systems. The interface equipment consists of connecting hoses between oxygen/nitrogen modules, which convey air or nitrogen to drive the oxygen boost pump. 8-18 32. OXYGEN SERVICE HOSE PN 1828AS137-1 33. OXYGEN SERVICE V ALVE PN 1828AS179-1 34. SERVICE ADAPTER CONNECTION PN MS33656E4 35. HP SERVICE ADAPTER PN 1828AS138-1 36. LP SERVICE ADAPTER PN 1828AS139-1 37. LP ADAPTER BURST DISC PN 1828AS177-1 38. HP ADAPTER BURST DISC PN 1828AS178-1 40. BOOST PUMP DRIVE HOSE PN 1828AS143-1 41. OXYGEN BENCH SUPPLY HOSE (SHIP/SHOP PN 1828AS140-1 42. GROUNDING CABLE REEL ASSEMBLY PN ML-2930-34 (61349) 43. HP SERVICE ADAPTER (AIRCRAFT) PN 1426AS136-1 Figure 8-11.—Oxygen/nitrogen interface/servicing equipment.

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Operation The operational functions of the oxygen-servicing unit are HP and LP aircraft oxygen servicing, HP and LP oxygen shop servicing, and gaseous nitrogen recharging. Aircraft servicing shall be performed in ambient temperatures of –30°F to 125°F in various environmental conditions. Figure 8-12 illustrates the 8-19 1. NITROGEN STORAGE CYLINDERS 2. OXYGEN STORAGE CYLINDER 3. NITROGEN CYLINDER V ALVES 4. OXYGEN CYLINDER V ALVE 5. NITROGEN SUPPLY PRESSURE GAUGE (0-5000 PSIG) 6. HP MANIFOLD 7. OXYGEN SUPPLY PRESSURE GAUGE (0-3000 PSIG) 8. NITROGEN SUPPLY V ALVE 9. PRE-SET REGULATOR 10. SHIP AIR CONNECTION 11. N 2 RECHARGE CONNECTION 12. RECHARGE CHECK V ALVE 13. FILTER 14. BOOST PUMP DRIVE PRESSURE GAUGE (0-200 PSIG) 15. BOOST PUMP DRIVE VENT 16. LP BURST DISC (180 PSIG) 17. BOOST PUMP DRIVE V ALVE 18. LP MANIFOLD 19. SELECTOR V ALVE 20. BOOST PUMP 21. EXHAUST 22. NO PILOT V ALVE 23. NC PILOT V ALVE 24. RELIEF V ALVE (2900 PSIG) 25. PURIFIER 26. FILTER 27. OXYGEN VENT V ALVE 28. REGULATOR INLET PRESSURE GAUGE (0-3000 PSIG) 29. OXYGEN REGULATOR 30. REGULATOR OUTLET PRESSURE GAUGE (0-3000 PSIG) 31. OXYGEN SERVICE CONNECTION 32. SERVICE HOSE 33. SERVICE V ALVE 34. SERVICE ADAPTER CONNECTION 35. HP SERVICE ADAPTER 36. LP SERVICE ADAPTER 37. LP ADAPTER BURST DISC (600 PSIG) 38. HP ADAPTER BURST DISC (2590 PSIG) 39. PRE SET REGULATOR FILTER 40. HP SERVICE ADAPTER (AIRCRAFT) Figure 8-12.—Air/nitrogen boost pump drive and oxygen servicing flow schematic.

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component locations and the oxygen flow; table 8-2 describes the functions of the servicing controls and indicators as shown in figure 8-12. HP AND LP AIRCRAFT SERVICING .—The HP and LP aircraft oxygen servicing operational function involves the mobile servicing of aircraft 8-20 ITEM NAME FUNCTION 3 Hand valves on nitrogen gas storage cylinders Isolates the nitrogen storage cylinders. 4 Hand valve on oxygen gas storage cylinder Isolates the oxygen gas storage cylinder. 5 Nitrogen supply pressure gauge on nitrogen module Displays nitrogen cylinder gas pressure. 7 Oxygen supply pressure gauge on oxygen module Displays oxygen cylinder gas pressure. 8 Nitrogen supply valve on nitrogen module Prevents nitrogen flowing to a pre-set pressure regulator when recharging the nitrogen gas storage cylinder. 14 Boost pump drive pressure gauge on nitrogen module Displays nitrogen gas or air pressure being delivered to the boost pump. 15 Boost pump drive valve on nitrogen module Vents the boost pump drive gas pressure and nitrogen module gas line pressure for parts disconnecting. 16 LP burst disc Prevents the boost pump drive air pressure from exceeding 180 psig. 17 Boost pump drive valve on nitrogen module Provides positive control of air or nitrogen gas to the boost pump. 19 Selector valve on oxygen module Provides control of oxygen delivered to the boost pump or bypasses oxygen around the boost pump. Also, provides system off control. 24 Relief valve in oxygen module Relieves excess pressure if boost pump outlet pressure exceeds 2900 psig. 27 Oxygen vent valve on oxygen module Vents oxygen gas upstream of regulator. 28 Regulator inlet pressure gauge on oxygen module Displays inlet gas pressure to the oxygen regulator. 29 Oxygen regulator in oxy- gen module Regulates oxygen delivery pressure to the aircraft oxygen gas storage system. 30 Regulator outlet pressure gauge on oxygen module Displays outlet gas pressure of oxygen regulator. 33 Service valve on service equipment Positive control for ON-OFF delivery to aircraft storage system. Vents upstream pressures for parts disconnect. 37 Low pressure service adapter burst disc Prevents low pressure aircraft oxygen gas storage system from exceeding 600 psig. 38 High pressure service adapter burst disc Prevents high pressure aircraft oxygen gas storage system from exceeding 2400 psig. Table 8-2.—Servicing Controls and Indicators

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oxygen storage systems to a HP of 1800 psig and LP of 500 psig. NITROGEN RECHARGING .—This opera- tional function involves charging two gaseous nitrogen cylinders. The nitrogen cylinders have a pressure range of 225 to 3850 psig. When recharging the cylinders, the nominal pressure is 3500 psig to a maximum of 3850 psig. Q8-18. The type No-2 gaseous oxygen-servicing trailer has how many manifold control valves? Q8-19. What component on the type No-2 cart controls the charging pressure when the trailer is servicing aircraft oxygen systems? Q8-20. An oxygen cylinder should never be completely drained. How much residual pressure should be kept in the cylinder? Q8-21. True or False. Parts for a No-2 cart can be interchanged with those on a nitrogen cart. Q8-22. The A/U26U-1A gaseous nitrogen module supplies what amount of regulated gaseous nitrogen to the oxygen module? Q8-23. Gaseous nitrogen on the A/U26U-1A shall conform to what federal specification? Q8-24. When using the A/U26U-1A, what is the maximum allowable ambient temperature when servicing aircraft? 8-21

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CHAPTER 8 ANSWERS TO REVIEW QUESTIONS A8-1. Fifty feet A8-2. False A8-3. A 50-gallon Dewar storage tank, 15-liter Dewar transfer tank, and a low loss, closed loop system of transfer lines A8-4. Holds small volumes of LOX and uses cold gas pressure from the pressure buildup unit to transfer LOX to the aircraft converter A8-5. Controls the gravity flow of liquid oxygen from the storage tank to the transfer tank A8-6. Dangerous back-pressure A8-7. Weekly A8-8. NAVAIR 19-25D-26 A8-9. Only LOX conforming to MIL-0-27210, type II A8-10. Aviators Breathing Oxygen (ABO) Surveillance Program Laboratory and Field Guide (A6-332SAO-GYD-000) A8-11. Atmospheric air A8-12. Odor test, sampling, and analysis A8-13. Six days A8-14. Whenever contamination is suspected A8-15. It is highly insoluble in LOX, and changing into a solid form, it can be readily set off into ignition. Since it is chemically unstable, it can decompose under certain conditions and become its own source of ignition. A8-16. Water vapor, carbon dioxide, nitrous oxide, and halogenated compounds (Freons) A8-17. AS rate A8-18. Six A8-19. Pressure regulators A8-20. 50 psi A8-21. False A8-22. 120 to 130 psig A8-23. Federal Specification BB-N-411, Type 1 (gaseous), Class 1 (oil free), Grade B (99.5 percent pure, low moisture content) A8-24. 125°F 8-22

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APPENDIX I GLOSSARY ABO—Aviators breathing oxygen. ACS—Air-conditioning system. ADC—Air data computer. AIMD—Aircraft intermediate maintenance department. ALLOY—A metal that is a mixture of two or more metals. AMBIENT—Surround; adjacent to; next to. For example, ambient conditions of the immediate area such as ambient temperature, ambient humidity, ambient pressure, etc. AMP—Auxiliary power unit. ANOXIA—A complete lack of oxygen in the blood stream. APU—Auxiliary power unit. AUR—All up round. BIT—Built-in test. BLEED AIR—Hot, high-pressure air, taken from the compressor section of a jet engine. BRU—Barostatic release unit. CAD/PAD—Cartridge-activated device/propellant-actuated device. CAG—Carrier air group. CAUTION—An operating procedure, practice, etc., that if not strictly observed could result in damage to or destruction of equipment. CDI—Collateral duty inspector. CELSIUS—A temperature scale using 0 as the freezing point of water and 100 as the boiling point. The scale has 100 equal divisions between the 0 and 100 with each division designated a degree. A reading is usually written in an abbreviated form; e.g., 75°C. Formerly known as the centigrade scale, it was renamed for Andres Celsius, the Swedish astronomer who devised the scale. CF 3BR—Triflourobromomethane. CFM—Cubic feet per minute. CIWS—Close-in weapons system. CNO—Chief of Naval Operations. CO/OIC—Commanding officer/Officer-in-charge. COMNA V AIRSYSCOM—Commander Naval Air Systems Command. CONREP—Connected replenishments. CONTAMINANT—An impurity such as harmful foreign matter in a fluid. CTR—Center. DDI—Digital display indicator. ECMO—Electronic countermeasures officer. ECS—Environmental control system. EDC—Engine driven compressors. EED—Electrically activated explosive device. EI—Engineering investigation. EOD—Explosive ordnance disposal. EPA—Electronics package assembly. FCDC—Flexible confined detonating cord. FLSC—Flexible linear shaped charge. GPM—Gallons per minute. Hg—Mercury. I—Individual. IFF—Identification friend or foe. IMA—Intermediate maintenance activity. IMP—Multi-purpose initiator. INBD—Inboard. IPB—Illustrated parts breakdown. JULIAN DATE—The year and numerical day of the year identified by four numeric characters. The first character indicates the year and the remaining three characters specify the day of the year. For example, 2030 indicates the 30th day of 2002. KEAS—Knots equivalent airspeed. KIAS—Knots indicated airspeed. AI-1

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KINKED—A twist or curl, as in a cable, wire, or tubing, caused by its doubling or bending upon itself. LCSU—Liquid coolant service unit. LH—Left hand. LOX—Liquid oxygen. MAINTENANCE—The function of retaining mate- rial in or restoring it to a serviceable condition. MBEU—Martin-Baker ejection unit (seat). MIM—Maintenance instruction manual. MLM—Marine location marker. MRC—Maintenance requirement card. MULTIMETER—An instrument used for measuring resistance, voltage, or amperage. NADEP—Naval aviation depot. NATOPS— Naval Air Training and Operating Procedures Standardization. NA V AIRSYSCOM—Naval Air Systems Command. NA WMU-1—Naval Airborne Weapons Maintenance Unit One. NFO—Naval flight officer. NOMENCLATURE—A system of names; systematic naming. NOTE—An operating procedure, condition, etc., which, because of its importance, is essential to highlight. NSN—National stock number. OBOGS—Onboard oxygen generating system. OJT—On-the-job training. OPNA V—Office of the Chief of Naval Operations. OUTBD—Outboard. OXIDATION—That process by which oxygen unites with some other substance, causing rust or cor- rosion. PDRM—Parachute deployment rocket motor. PPI—Program position indicator. PRESSURE—The amount of force distributed over each unit of area, expressed in pounds per square inch (psi). PSI—Pounds per square inch. PSIA—Pounds per square inch absolute. PSIG—Pounds per square inch gauge. QA—Quality assurance. QUAL/CERT PROGRAM—Qualification/certification program. RAC—Rapid action change. RFI—Ready for issue. RH—Right hand. SAFETY WIRE/LOCKWIRE— A wire set into a component to lock movable parts into a safe, secure position. SDLM—Standard depot-level maintenance. SE—Support equipment. All the equipment on the ground needed to support aircraft in a state of readiness for flight. SEA W ARS—Seawater activated release system. SENSO—Sensor operator. SERVICING—The filling of an aircraft with consum- ables such as fuel, oil, and compressed gases to predetermined levels, pressure, quantities, or weights. SMDC—Shielded mild detonating cord. SOP—Standard operating procedure. TACCO—Tactical coordinator. TENSION—A force of pressure exerting a pull or resistance. TL—Team leader. TM—Team member. TORQUE—A turning or twisting force. TOXIC—Harmful, destructive, deadly; poisonous. TYCOM—Type commander. VAC —V olts alternating current. VDC—V olts direct current. VOLATILE LIQUIDS—Liquids that are readily va- porizable at relatively low temperatures. Explosive liquids. W AM—Weapons assembly manual. W ARNING—An operating procedure, practice, etc., that if not followed correctly could result in personal injury or loss of life. XSMDC—Expanding shielded mild detonating cord. AI-2

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APPENDIX II REFERENCES NOTE: Although the following references were current when this Nonresident Training Course (NRTC) was published, their continued currency cannot be assured. When consulting these references, keep in mind that they may have been revised to reflect new technology or revised methods, practices, or procedures; therefore, you need to ensure that you are studying the latest references. CHAPTER 1 Escape and Survival Systems , NA V AIR 01-85ADC-2-5, Naval Air Systems Command, Patuxent River, MD, August 2000. CHAPTER 2 Escape Systems , NA V AIR 01-F14AAD-2-2-3, Naval Air Systems Command, Patuxent River, MD, January 2000. Seat, Canopy, Survival Equipment, and Boarding Ladder , A1-F18AC-120-100, Naval Air Systems Command, Patuxent River, MD, December 1999. CHAPTER 3 Environmental Control Systems , NA V AIR 01-F14AAA-2-2-2, Naval Air Systems Command, Patuxent River, MD, March 2001. Escape and Survival Systems , NA V AIR 01-S3AAA-2-2.8, Naval Air Systems Command, Patuxent River, MD, January 1992. Escape Systems , NA V AIR 01-F14AAD-2-2-3, Naval Air Systems Command, Patuxent River, MD, January 2000. General Use Cartridges and Cartridge Actuated Devices for Aircraft and Associated Equipment, NA V AIR 11-100-1.1, Naval Air Systems Command, Patuxent River, MD, January 2002. CHAPTER 4 Explosives Handling Personnel Qualification and Certification Program , OPNAVINST8020.14,ChiefofNavalOperations,Washington,DC,October 1999. General Use Cartridges and Cartridge Actuated Devices for Aircraft and Associated Equipment, NA V AIR 11-100-1.1, Naval Air Systems Command, Patuxent River, MD, January 2002 The Naval Aviation Maintenance Program (NAMP), OPNA V 4790 series, V olume 1, Chief of Naval Operations, Washington, DC, June 2001. CHAPTER 5 Environmental Control Systems , A1-F18AC-410-100, Naval Air Systems Command, Patuxent River, MD, April 2000. AII-1

CHAPTER 8

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ASSIGNMENT 1 Textbook Assignment: Chapte r 1 – Martin-Baker MK-GRUEA-7 Ejection Seat and Chapte r2–N a v y Aircrew Common Ejection Seat (NACES) 1-1. The MK-GRUEA-7 seat provides crewmembers with completely automatic escape at ground level at what minimum knots? 1. 60 2. 70 3. 80 4. 90 1-2. How many Martin-Baker MK-GRUEA-7 seats are on the EA-6B? 1. One 2. Two 3. Three 4. Four 1-3. What difference, if any, do the MK-GRUEA-7 ejection seats have from each other? 1. Time delay firing mechanisms 2. Seat height 3. Seat color 4. None 1-4. What component provides an automatic backup mode of separating the parachute from the crewmember? 1. Emergency release handle 2. Guillotine breech 3. SEAW ARS 4. Time-release mechanism 1-5. What type of aircraft uses the Martin-Baker MK-GRUEA-7? 1. E-6B 2. EA-6B 3. S-3 4. F-14 1-6. Which of the following seats ejects first during ejection? 1. ECMO #1 2. ECMO #2 3. ECMO #3 4. Pilot 1-7. What color is the murphy-proof bracket for ECMO #2 seat? 1. Orange 2. Brown 3. Purple 4. White 1-8. Who is the primary person to initiate ejection? 1. ECMO #1 2. ECMO #2 3. ECMO #3 4. Pilot 1-9. With the CMD EJECT SELECT handle in the NORM position, what individual(s) is/are able to initiate ejection? 1. Pilot and ECMO #1 2. Pilot and ECMO #2 3. ECMO #1 and #2 4. ECMO #3 only 1-10. The lanyards for the ejection seat safety pins are what color? 1. Green 2. Red 3. Orange 4. Yellow 1-11. Prior to entering an aircraft cockpit that has an ejection seat, personnel should ensure which of the following guidelines is met? 1. Electrical power is applied 2. Safety pins are installed 3. Proper safety precautions are followed 4. Both 2 and 3 above 1-12. Who may work on ejection seats? 1. E5 and above 2. E5 and below 3. Any AME 4. Qualified personnel only 1

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1-13. How many tubes are attached to the center body of the rocket motor? 1. 8 2. 10 3. 12 4. 14 1-14. What precautions, if any, are used to ensure the correct rocket motor is installed on the proper seat? 1. Color coded tubes 2. Varied size motors 3. Varied size bolts 4. None 1-15. The rocket motor initiator has how many compartments? 1. One 2. Two 3. Three 4. Four 1-16. What is the main structural frame on the MK-GRUEA-7 ejection seat? 1. Catapult assembly 2. Main beam assembly 3. Rocket motor assembly 4. Cross-beam bracket 1-17. What component secures the seat in the aircraft? 1. Top latch mechanism 2. Time-release mechanism 3. Drogue gun assembly 4. Main beam assembly 1-18. The time-release mechanism provides auto- matic harness release separation at what altitude range? 1. 10,500 to 13,000 feet 2. 11,000 to 15,000 feet 3. 11,500 to 14,500 feet 4. 12,000 to 14,500 feet 1-19. What component provides visual indication of a properly installed MK-GRUEA-7 ejection seat? 1. Murphy-proof bracket 2. Top latch mechanism 3. Drogue gun assembly 4. Time-release mechanism 1-20. The SEAW ARS is designed to release the parachute from the crewmember during sea- water entry within how many seconds? 1. 1 2. 2 3. 3 4. 4 1-21. Which of the following is NOT a main assembly of the NACES? 1. Main beams 2. Catapult assembly 3. Parachute assembly 4. Rocket motor assembly 1-22. What component secures the NACES to the aircraft? 1. Main beams 2. Catapult assembly 3. Seat bucket assembly 4. Tie rods 1-23. Smooth movement of the seat bucket is provided by what component? 1. Seat bucket slippers 2. Roller bearings 3. Guide arms 4. Guide bushings 1-24. What component takes the full thrust of the catapult during ejection? 1. Inner tube 2. Outer tube 3. Main cross-beam 4. Top cross-beam 1-25. The seat structure is secured to the catapult by what component? 1. Top latch assembly 2. Inner tube 3. Outer tube 4. Interference arms 1-26. The drogue deployment catapult is mounted at what location? 1. Inboard of the RH main beam 2. Outboard of the RH main beam 3. Outboard of the center cross-beam 4. Inboard of the center cross-beam 2

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1-27. What controls the firing of the drogue catapult? 1. Altitude 2. Airspeed 3. Time release mechanism 4. Electronic sequencer 1-28. What is the diameter of the drogue chute? 1. 36 in. 2. 48 in. 3. 57 in. 4. 72 in. 1-29. The PDRM is mounted at what location? 1. Underside of the parachute assembly 2. Left side of the main beam 3. Left side of the catapult 4. Right side of the catapult 1-30. Which of the following is NOT a component of the electronic sequencing system? 1. Two thermal couples 2. Two thermal batteries 3. Two pitot assemblies 4. Two sequencer start switches 1-31. The sequencer controls which of the following ejection events? 1. Canopy deployment 2. Seat deployment 3. Man/seat separation 4. Emergency oxygen activation 1-32. What component(s) supplies/y gas pressure to operate the underseat rocket motor? 1. Electronic sequencer 2. Time release mechanism 3. Catapult assembly 4. Multipurpose initiators 1-33. What component ensures the seat occupant is correctly positioned and locked in for ejection? 1. Shoulder harness reel 2. Lap belt assembly 3. Occupant retaining assembly 4. G-limiter assembly 1-34. Due to aircraft installation requirements, what different characteristics, if any, do the SJU-17(V)1/A, 2/A, and 9/A seat buckets have compared to the SJU-17(V)3/A thru 6/A as- semblies? 1. Different color 2. 1 inch wider 3. 1 inch taller 4. None 1-35. The underseat rocket motor has which of the following differences in features to prevent incorrect installation between forward and aft seats on the F-18 aircraft? 1. Angle alignments 2. Shear pin sizes 3. Mounting bolt sizes 4. Colors 1-36. The SAFE/ARMED handle shows what color when in the ARMED position? 1. Yellow and black 2. Black and red 3. Yellow and red 4. Red 1-37. What difference, if any, do the canopy penetrators on the forward seat have between the aft seats? 1. Width 2. Length 3. Color 4. None 1-38. How many different NACES seat bucket survival kit variations are there? 1. One 2. Two 3. Three 4. Four 1-39. The emergency oxygen system is auto- matically activated during ejection by what component or event? 1. Time release mechanism 2. Extension of a lanyard 3. Altitude reaches 5,000 feet 4. Altitude reaches 13,500 feet 1-40. What color are the manual deployment handles on the survival kit? 1. White 2. Green 3. Orange 4. Yellow 1-41. When the ejection control handle is pulled, the sears are withdrawn from the seat initiator firing mechanisms followed by what event? 1. Two impulse cartridges are fired 2. Electronic sequencer is activated 3. Time release mechanism is activated 4. Rocket motor initiates 3

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1-42. During ejection, what component withdraws a piston from engagement in the lower operat- ing link of the emergency restraint release mechanism? 1. Rocket motor 2. Time delay mechanism 3. RH cartridge 4. LH cartridge 1-43. During ejection, what feature provides an even increase in gas pressure to eliminate excessive g-forces? 1. Telescopic design of the rocket 2. Delayed firing of the rocket cartridges 3. Tubular rings in the catapult 4. Staggered firing of the catapult cartridges 1-44. During ejection, once the leg restraint lines are freed from the aircraft, what component or condition restrains the remaining lines, pre- venting forward movement of the legs? 1. Harness locks 2. Snubbers 3. Negative g’s 4. Positive g’s 1-45. During ejection, sequencer timing commences during what condition? 1. Closure of the start switches 2. When the catapult reaches 23-inch exten- sion 3. When the catapult reaches 36-inch exten- sion 4. At 350 knots 1-46. When ejecting in MODE 3 between 500-600 keas, at what time interval does the sequencer fire the drogue deployment catapult? 1. 0.14 seconds 2. 0.22 seconds 3. 0.31 seconds 4. 0.33 seconds 1-47. When ejecting in MODE 1 between 0-300 keas, at what time interval does the sequencer fire the barostatic release unit cartridge and release harness locks? 1. 0.65 seconds 2. 1.30 seconds 3. 1.50 seconds 4. 3.10 seconds 1-48. When the ejection seat is fired, two onboard thermal batteries are immediately energized, supplying usable electrical power to the sequencer within what time frame? 1. 0.19 seconds 2. 0.23 seconds 3. 0.27 milliseconds 4. 100 milliseconds 1-49. At approximately what distance of seat travel are the two pyrotechnic cartridges actuated? 1. 18 inches 2. 24 inches 3. 32 inches 4. 42 inches 1-50. To maintain a uniform vertical acceleration profile on the seat and occupant, what component begins to operate just as the seat separates from the catapult? 1. Underseat rocket motor 2. Time delay mechanism 3. Sequencer start switch 4. Altitude sensor 4

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5 ASSIGNMENT 2 Textbook Assignment: Chapter 3 – Canopy Systems and Chapter 4 – Explosives Handling Personnel Qualification and Certification Program 2-1. On the F-14 aircraft, what force provides normal opening and closing of the canopy? 1. Electric 2. Manual 3. Hydraulic 4. Pneumatic 2-2. The externally serviced reservoirs that supply power for the different modes of canopy operation contain what type of pressure? 1. Freon 2. Hydraulic 3. Oxygen 4. Pneumatic 2-3. How many acrylic panels make up the F-14 canopy? 1. One 2. Two 3. Three 4. Four 2-4. What locks the canopy in the closed position? 1. Locking hooks 2. Detent pins 3. Clevis bolts 4. Metal straps 2-5. What component actually opens and closes the canopy? 1. Pneumatic actuator 2. Piston assembly 3. Hydraulic actuator 4. Hydraulic valve 2-6. What component locks and unlocks the canopy? 1. Lock actuator restrictor 2. Canopy lock pneumatic actuator 3. Canopy hydraulic actuator 4. Canopy lock and unlock switch 2-7. What is the function of the lock actuator restrictor? 1. To lock the canopy in the open position 2. To lock the canopy in the closed position 3. To prevent inadverdent closing of the canopy 4. To regulate the speed during locking and unlocking of the canopy 2-8. The canopy pneumatic control module contains how many pressure reducers? 1. One 2. Two 3. Three 4. Four 2-9. The canopy pneumatic reservoir is serviced to what maximum pressure? 1. 1,000 psi 2. 2,000 psi 3. 3,000 psi 4. 3,500 psi 2-10. What is the total cubic inch capacity of the canopy pneumatic reservoir? 1. 225 2. 275 3. 325 4. 375 2-11. The reservoir relief valve opens at what minimum pressure? 1. 2,500 psi 2. 3,200 psi 3. 4,500 psi 4. 4,700 psi 2-12. The auxiliary pneumatic reservoir is serviced to what maximum pressure? 1. 1,500 psi 2. 2,000 psi 3. 3,000 psi 4. 3,500 psi 2-13. What component reduces pneumatic pressure to the auxiliary unlock pneumatic release valve? 1. Auxiliary bypass valve 2. Auxiliary pressure reducer 3. Auxiliary check valve 4. Auxiliary flow valve 2-14. How many ports are there on the unlock shuttle valve? 1. One 2. Two 3. Three 4. Four

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6 2-15. What component prevents nitrogen from venting overboard? 1. Auxiliary pressure reducer 2. Unlock pneumatic release valve 3. Unlock shuttle valve 4. Lock actuator check valve 2-16. How many control handles are there for use in canopy operation? 1. One 2. Two 3. Three 4. Four 2-17. Which of the following is NOT a method of canopy operation? 1. Emergency mode 2. Holding mode 3. Boost closing mode 4. Normal opening mode 2-18. During normal opening mode, the shutoff valves in the open and close modules are vented to atmosphere through what port of the actuator? 1. C5 2. C2 3. C3 4. C4 2-19. During normal opening mode, nitrogen on the opposite side of the piston is vented overboard through what valve of the control module? 1. No. 5 2. No. 2 3. No. 3 4. No. 4 2-20. During the BOOST closing mode, valve no. 4 in the control module is positioned to direct what maximum pressure through the C2 port? 1. 475 psi 2. 560 psi 3. 645 psi 4. 790 psi 2-21. After 3 minutes in BOOST closing mode, the nitrogen pressure will decrease to what minimum pressure on a system serviced to 3,000 psi? 1. 1,000 psi 2. 800 psi 3. 600 psi 4. 500 psi 2-22. When should you use the auxiliary opening mode to unlock the canopy? 1. No electrical power 2. Anytime 3. Pneumatic system pressure drops below 225 psi 4. Emergency 2-23. What air source is used to inflate the canopy seal system? 1. Cooled engine bleed air 2. Vented cabin air 3. Ram air 4. Ambient air 2-24. Where is the canopy seal pressure regulator located? 1. Under the pilot’s seat 2. In the nose wheelwell 3. In the port wheelwell 4. On the turtledeck 2-25. The canopy pressure seal receives cooled engine bleed air at approximately what pressure? 1. 40 psi 2. 60 psi 3. 80 psi 4. 100 psi 2-26. How many types of pyrotechnic cords are used in the F-14 canopy emergency jettison system? 1. One 2. Two 3. Three 4. Four 2-27. The term XSMDC stands for what type of pyrotechnic cord? 1. Explosive shielded mild detonating cord 2. Expanding shielded mild detonating cord 3. Extreme shielded mild detonating cord 4. Extra shielded max detonating cord 2-28. What component prevents the explosive signal provided by the canopy jettison initiator from entering the SMDC lines of the seat ejection system? 1. One-way explosive transfer 2. Manifold check valve 3. Jettison relief valve 4. SMDC relief valve

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7 2-29. The S-3 frangible escape system uses what type of explosives instead of hot gas? 1. SMDC 2. FSDC 3. MK 90 4. MK 53 2-30. Instead of safety pins, the external jettison handle uses what item to protect from inadvertent firing? 1. Clevis bolts 2. Safety guard 3. 10-foot lanyard 4. Trigger switch lock 2-31. The window-severance explosive charge is actuated by what crewmember(s)’s initiator? 1. TACCO 2. Pilot only 3. Copilot only 4. Either the pilot or copilot 2-32. Why is an SMDC explosive system more favorable than a hot gas system? 1. Cost effective 2. More reliable 3. Slower 4. Higher initiating pressure 2-33. Which of the following was a factor in the ordnance mishap onboard the USS ORISKANY? 1. Faulty ordnance 2. Faulty maintenance 3. Lack of training 4. Fatigue 2-34. DELETED 2-35. What instruction governs the Qual/Cert program? 1. OPNAVINST 8020 2. OPNAVINST 9600.2 3. NAVAIR 11-100-1 4. NAVAIR 11-85-1 2-36. What term refers to the physcial act of transporting or moving explosives/explosive devices afloat or ashore? 1. Storage/stowage 2. Handling 3. Load/download 4. Assembly/disassembly 2-37. Which of the following individuals may NOT sign as board chairman on the ordnance certification form? 1. CO 2. OIC 3. Division officer 4. XO 2-38. DELETED 2-39. Which of the following is required on the ordnance certification form when an individual certification is revoked? 1. Revoked stamped in red on form 2. Signature of individual in red pen 3. Signature of board chairmen in red pen 4. Diagonal red line on Qual/Cert form 2-40. DELETED 2-41. The Qual/Cert program is NOT applicable to which of the following personnel? 1. Security force 2. Contractors 3. Civilians 4. EOD 2-42. What individual may revoke certification? 1. CO 2. XO 3. MO 4. LPO 2-43. What is required when an explosive mishap is caused by an individual’s failure to follow authorized procedures? 1. Reduction in paygrade 2. Forfeiture of pay 3. Page 13 record entry 4. Assignment to administrative duties 2-44. Qual/Cert is valid for how many years? 1. 1 2. 2 3. 3 4. 4 2-45. In the Qual/Cert program, which of the following individuals must the CO certify in writing? 1. Certification board members 2. Team members 3. Team leaders 4. All of the above

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8 2-46. The Qual/Cert board consists of which of the following individuals? 1. Department head 2. At least two E-7 and above personnel 3. Quality assurance representative 4. LPO 2-47. If seniority requirements cannot be met on the Qual/Cert board within a command, what activity may grant a waiver? 1. CNO 2. Local wing 3. TYCOM 4. NAVAIR

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ASSIGNMENT 3 Textbook Assignment: Chapter 5 – Utility Systems 3-1. Which of the following systems does NOT get its air from an auxiliary bleed air system? 1. Air-conditioning 2. Pressurization 3. Anti-icing 4. Liquid oxygen 3-2. A bleed air system can reach up to what tem- perature? 1. 100°F 2. 250°F 3. 375°F 4. 400°F 3-3. An S-3 aircraft bleed air leak detection system consists of how many loops? 1. 5 2. 2 3. 3 4. 4 3-4. The sensing elements for a bleed air leak detec- tion system are mounted between ducts and the aircraft structure for what reason? 1. The bleed air temperature is high 2. The bleed air temperature is low 3. The clearance is greater 4. The accessibility is greater 3-5. In a bleed air leak detection system, what causes a chemical reaction in the sensing element? 1. Humidity 2. Moisture 3. Heat 4. Pressure 3-6. An S-3 bleed air leak detection system is powered by what bus? 1. Essential ac 2. Essential dc 3. Auxiliary generator 4. 200-Hz 3-7. During a test of an S-3 bleed air leak detection system, a ground circuit is completed to turn on which of the following lights? 1. 1A BL LEAK 2. 2 BL LEAK 3. FLT LB LEAK 4. AUX BL LEAK 3-8. Which of the following is NOT a component of a bleed air leak detection system? 1. Leak detector control 2. Sensing elements 3. Flow valves 4. Engine start port leak detector 3-9. Bleed air sensing elements are mounted within what distance of ducts? 1. 1-2 inches 2. 1-3 inches 3. 2-5 inches 4. 2-8 inches 3-10. The engine start port leak detector completes a ground circuit in excess of what temperature? 1. 150°F 2. 175°F 3. 200°F 4. 225°F 3-11. What type of ice on aircraft surfaces is smooth and hard to detect visually? 1. Glazed 2. Rime 3. Black 4. Clear 3-12. Frost is a result of which of the following factors? 1. Ice crystals are oxidized 2. The air is thin 3. The air is heavy 4. Water vapor is turned into a solid 9

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3-13. Which of the following systems is designed to remove ice after it has formed? 1. Deice boot system 2. Anti-ice system 3. Removal ice system 4. Hot air system 3-14. A P-3 aircraft gets its air source for anti-icing from what stage of an engine compressor? 1. 10th 2. 12th 3. 14th 4. 16th 3-15. A P-3 aircraft ice detector warning light is located where? 1. Pilot’s instrument panel 2. Copilot’s instrument panel 3. Center instrument panel 4. Monitorial ac bus panel 3-16. The shutoff valve for a wing deice system has an indicator to show valve position. Where is this indicator located? 1. In the nosewheel well 2. In the flight station indicator gauge 3. On the valve flywheel 4. On top of the valve housing 3-17. What component controls the valve opening for an anti-ice modulating valve? 1. Thermostat 2. Overheat caution circuit 3. Plenum probe 4. Modulating valve sensor 3-18. The thermostats in the outboard leading edge plenum areas are set at what temperature? 1. 95°F 2. 110°F 3. 125°F 4. 145°F 3-19. The wing inboard and center section thermostat are set at what temperature? 1. 120°F 2. 140°F 3. 160°F 4. 180°F 3-20. The airfoil temperature sensor amplifier is powered by what component? 1. LEAD EDGE TEMP 2. LE HOT 3. OVHT W ARNING 4. WING LEADING EDGE SKIN 3-21. High temperature within the leading edge is generally caused by which of the following conditions? 1. Faulty probe 2. Faulty modulator valve 3. Condensation 4. Humidity 3-22. Which of the following positions is NOT a selection for the ice protection panel rotary switch? 1. INBD 2. CTR 3. OUTBD 4. WING 3-23. The OPEN light on the ice protection panel illuminates when what condition occurs? 1. Bleed air valve opens 2. Modulating valve opens 3. Thermostat opens 4. Overheat in wing occurs 3-24. The fuselage bleed air shutoff valves are normally in what position during normal deicing operation? 1. Fully open 2. Open 2 degrees 3. Open 8 degrees 4. Closed 3-25. When performing a leak test on the anti-ice system, the time delay relay will illuminate the ACCEPT light after how many seconds? 1. 6 2. 8 3. 10 4. 12 3-26. The warm air temperature control valve for a windshield anti-ice system is modulated by what type of force? 1. Hydraulic 2. Electrical 3. Muscle 4. Suction 10

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3-27. The flow/temperature limiting anti-ice valve is what type of valve? 1. Single function 2. Dual function 3. Temperature sensitive 4. Manual 3-28. The warm air over temperature sensor opens if duct temperature reaches what temperature, ±25°F? 1. 200°F 2. 250°F 3. 325°F 4. 375°F 3-29. The windshield overheat temperature sensor closes when airflow drops to what tem- perature? 1. 225°F ±5°F 2. 280°F ±5°F 3. 320°F ±10°F 4. 380°F ±10°F 3-30. The windshield anti-ice/rain removal switch has how many positions? 1. One 2. Two 3. Three 4. Four 3-31. An EA-6B aircraft windshield washing system uses what percentage of methyl alcohol? 1. 50 percent 2. 20 percent 3. 30 percent 4. 40 percent 3-32. The EA-6B windshield washing system has how many nozzles? 1. 5 2. 6 3. 7 4. 8 3-33. What component is NOT a part of the windshield washing shutoff valve? 1. Pressure reducer 2. Check valve 3. Dump valve 4. Temperature solenoid 3-34. When the windshield washing shutoff valve is energized, how much air pressure is regulated to the windshield washing tank? 1. 8 ±1 psig 2. 10 ±1 psig 3. 13 ±0.5 psig 4. 15 ±1 psig 3-35. The windshield switch is what type of switch? 1. Single-pole, two-position 2. Single-pole, three-position 3. Double-pole, two-position 4. Double-pole, three-position 3-36. Holding the WINDSHIELD switch to W ASH routes what amount of voltage to open the shutoff valve? 1. 20 Vdc 2. 24 Vdc 3. 28 Vdc 4. 32 Vdc 3-37. The anti-g internal relief valve maintains what maximum pressure? 1. 5 psi 2. 7 psi 3. 9 psi 4. 11 psi 3-38. Pressing the button on top of an anti-g valve performs which of the following functions? 1. Manually operates the anti-g valve 2. Closes the anti-g valve 3. Causes emergency shutdown of system 4. Releases hose assembly 3-39. Where is the vent suit temperature sensor located? 1. Downstream of the vent suit regulating valve 2. Downstream of the heat exchanger 3. Upstream of the vent suit valve 4. Downstream of the vent suit valve 3-40. The vent suit pressure regulating valve limits flow rate to how many cfm? 1. 10 2. 14 3. 18 4. 22 11

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3-41. The vent suit pressure relief valve begins to open at what pressure? 1. 10 psi 2. 12 psi 3. 16 psi 4. 18 psi 3-42. The vent suit pressure relief valve is fully open at what pressure? 1. 12 psi 2. 15 psi 3. 18 psi 4. 21 psi 3-43. How is the radar liquid cooling system airflow valve operated? 1. Electrically 2. Manually 3. Hydraulically 4. Pneumatically 3-44. Which of the following is NOT a characteristic of CF 3BR? 1. Odorless 2. Tasteless 3. Toxic 4. Non-corrosive 3-45. The ram air scoop for the radar liquid cooling system closes from a signal from what com- ponent? 1. Air data computer 2. Airflow valve 3. Liquid coolant pump 4. Scoop controller 3-46. The P-3 fire extinguisher container assembly is pressurized with what amount of nitrogen? 1. 400 psi 2. 600 psi 3. 800 psi 4. 875 psi 3-47. A safety disc plug on the fire extinguisher container has a burst range of what pressure? 1. 1000 to 1350 psi 2. 1450 to 1800 psi 3. 1850 to 2000 psi 4. 2050 to 2200 psi 3-48. When operating the APU TEST switch, which of the following is an indication that the system is working properly? 1. Horn sounds 2. Gauge fluctuates 3. Warning light goes off 4. Circuit switch is energized 3-49. The avionics pressurization filter removes what percentage of particles larger than 10 microns? 1. 88 percent 2. 93 percent 3. 95 percent 4. 98 percent 3-50. A waveguide air desiccator turns what color when moisture is present? 1. Blue 2. Red 3. Pink 4. White 3-51. The missile cold air modulating valve receives electrical signals from what component? 1. Heat exchanger 2. Solenoid motor 3. Temperature valve 4. Missile controller 3-52. A pressure switch on the missile coolant pump opens when the output pressure drops to which of the following pressures? 1. 35 psi 2. 48 psi 3. 62 psi 4. 72 psi 12

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13 ASSIGNMENT 4 Textbook Assignment: Chapter 6 – Air-Conditioning and Pressurization Systems 4-1. At 18,000 feet, the density of the Earth’s atmosphere is about what amount compared to that at sea level? 1. One-quarter 2. One-half 3. Three-quarters 4. No difference 4-2. What is the atmospheric pressure at sea level? 1. 9.7 psi 2. 12.2 psi 3. 14.7 psi 4. 14.9 psi 4-3. What is the atmospheric pressure at 60,000 feet? 1. 1 psi 2. 2 psi 3. 3 psi 4. 4 psi 4-4. At approximately 37,000 feet, what is the outside air temperature? 1. –65°C 2. –55°C 3. –30°C 4. –20°C 4-5. The lowest outside air temperature that an aircraft can encounter could occur at what height? 1. 10,000 feet 2. 20,550 feet 3. 32,650 feet 4. 37,000 feet 4-6. An aircraft flying at supersonic speed at an altitude of 35,000 feet may generate what temperature on its skin? 1. 120°F 2. 200°F 3. 280°F 4. 320°F 4-7. Which of the following is NOT a heat source that will raise cabin/cockpit temperature? 1. Solar heat 2. Heat from electrical units 3. Body heat 4. Aileron heat 4-8. Experiments have proven that a person can withstand and maintain efficiency for extended periods at what maximum temperature? 1. 80°F 2. 87°F 3. 92°F 4. 98°F 4-9. How many requirements are there for the successful functioning of a pressurization and air- conditioning system? 1. 6 2. 5 3. 3 4. 4 4-10. On all jet aircraft, the air used for an ECS is taken from what section of the jet engine? 1. Turbine 2. Fan 3. Compressor 4. Inlet 4-11. The cooling of bleed air before it enters the cabin is provided by what component? 1. Discharge valve 2. Bleed air cooling valve 3. Bleed air mixture unit 4. Refrigeration unit 4-12. The term air-to-air comes from the principle of cooling the air without the use of what component or additive? 1. Compressors 2. Cooling valves 3. Refrigerants 4. Antifreeze 4-13. A P-3 air-conditioning system is comprised of how many independent air cycle cooling systems? 1. One 2. Two 3. Three 4. Four

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14 4-14. Which of the following components is a fresh air source for a P-3 ACS? 1. AMP 2. Bleed valve 3. Turbine shutoff valve 4. Refrigeration cooling valve 4-15. EDCs are what type of compressor units? 1. Single stage 2. Dual stage 3. Multi-stage 4. Manual stage 4-16. What component is the primary air source for the ACS during static ground operations? 1. Refrigeration unit 2. No. 2 engine 3. No. 3 engine 4. AMP 4-17. The EDCs are adjusted for a maximum power requirement of what horsepower? 1. 69 hp 2. 76 hp 3. 81 hp 4. 94 hp 4-18. The air volume in the APU/AMP divides at what section? 1. Distribution duct 2. Spread out duct 3. Outflow duct 4. ACS interconnection duct 4-19. When the APU/AMP is the air supply source, what component is used to balance airflow? 1. Equalizer valve 2. Flow-limiting venturi 3. Combination valve 4. Back-pressure valve 4-20. What component in the ACS removes moisture from the air prior to its entering the cabin? 1. Water separator 2. Water remover 3. Water extractor 4. Water drain 4-21. The flow-limiting venturi is sized to limit airflow to what amount per minute? 1. 32 pounds 2. 43 pounds 3. 56 pounds 4. 67 pounds 4-22. On a flow-limiting venturi, reverse EDC airflow is prevented by what component? 1. Block off plate 2. Mesh screen 3. Check valve 4. Reverse valve 4-23. Which of the following is NOT a component of a cabin temperature control system? 1. Master temp sensor 2. Duct rate sensor 3. Control temp sensor 4. Ice-limiting sensor 4-24. The temperature control system selector-indicator has how many sets of dot markings? 1. One 2. Two 3. Three 4. Four 4-25. Rotating the push-pull knob counterclockwise on the selector-indicator performs what function? 1. Provides cooler air 2. Provides warmer air 3. Increases airflow 4. Decreases airflow 4-26. The temperature controller is composed of what number of modules? 1. One 2. Two 3. Three 4. Four 4-27. What component in the temperature controller controls the automatic mode control circuitry? 1. Selector amplifier 2. Automatic amplifier 3. Programming amplifier 4. Passive amplifier 4-28. The cabin master temperature sensor is at what location? 1. Above pilot 2. Above copilot 3. Above sensor operator 4. Above TACCO 4-29. Elimination of EDC back-pressure is provided by what component? 1. Pressure ratio limiter 2. Ice limiter 3. Back-pressure valve 4. Relief valve

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15 4-30. The pressure ratio limiter is intended to function at what altitude? 1. Below 10,000 feet 2. Between 11,200 and 13,300 feet 3. Between 12,600 and 14,800 feet 4. Above 18,000 feet 4-31. In order for aircrew personnel to operate at the same level of efficiency as at sea level, what solution was developed? 1. Increasing oxygen capacity 2. Pressurizing the cockpit/cabin area 3. Modifying outflow valve 4. Modifying air-to-air system 4-32. The area of an aircraft that is pressurized must be free from which of the following things? 1. FOD 2. Personnel 3. Heated components 4. Air leaks 4-33. The S-3 pressurization system regulates what type of air to control cabin pressure? 1. Inflow 2. Outflow 3. Pneumatic 4. Pressurized 4-34. The S-3 pressurization system consist of how many modes of operation? 1. Five 2. Two 3. Three 4. Four 4-35. Which of the following is NOT a mode of pressurization operation? 1. Unpressurized 2. Isobaric 3. Dump 4. Constant 4-36. At a flight altitude of 15,000 feet, what is the minimum cabin pressure differential? 1. 3.02 psi 2. 3.56 psi 3. 3.94 psi 4. 4.19 psi 4-37. At a flight altitude of 25,000 feet, what is the maximum cabin pressure altitude? 1. 5,000 feet 2. 5,380 feet 3. 5,600 feet 4. 5, 869 feet 4-38. At a flight altitude of 40,000 feet, what is the minimum cabin pressure altitude? 1. 8,340 feet 2. 9,600 feet 3. 11,520 feet 4. 12,050 feet 4-39. During flight operations between 5,000 and 24,000 feet, what mode of operation is in effect? 1. Unpressurized 2. Isobaric 3. Differential 4. Repressurization 4-40. The differential mode of operation overrides the isobaric mode when the aircraft is flying in excess of what altitude? 1. 10,000 feet 2. 14,000 feet 3. 18,000 feet 4. 24,000 feet 4-41. During the dump mode of operation, the re- circulation valve is actuated to what position? 1. 45° open 2. 65° open 3. Full open 4. Closed 4-42. The repressurization mode of operation is used for what purpose? 1. When returning from the dump mode 2. When returning from the isobaric mode 3. When returning from the differential mode 4. To close the outflow valve 4-43. The S-3 pressurization system will begin to pressurize whenever the ground elevation is above what altitude? 1. 2,300 feet 2. 3,200 feet 3. 4,000 feet 4. 5,000 feet

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16 4-44. To ensure adequate cooling of the avionics system during ground operations at altitudes above 5,000 feet, which of the following is a step that must be adherred to? 1. Set CABIN PRESS to isobaric mode 2. Set CABIN PRESS to flight mode 3. Turn AUX VENT selector to ON 4. Turn OUTFLOW selector to OFF 4-45. How is the cabin pressure regulator valve actuated? 1. Pneumatically 2. Hydraulically 3. Electrically 4. Manually 4-46. How many ports lead into the pressure regulator valve diaphragm chamber? 1. One 2. Two 3. Three 4. Four 4-47. Which of the following is NOT a position on the cabin pressure regulator control? 1. ALL OFF 2. AUX 3. FLIGHT 4. DIFF ON 4-48. The cabin pressure regulator control has how many pneumatic ports? 1. One 2. Two 3. Three 4. Four 4-49. The cabin low-pressure switch closes at what altitude? 1. 11,000 (±500) feet 2. 12,000 (±250) feet 3. 13,000 (±500) feet 4. 14,000 (±250) feet 4-50. The cabin air pressure sensing filter traps dust particles greater than what minimum diameter? 1. 2 microns 2. 4 microns 3. 8 microns 4. 10 microns

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ASSIGNMENT 5 Textbook Assignment: Chapter 7 – Oxygen Systems 5-1. A minimum of 50 psi must be maintained in a gaseous oxygen supply cylinder. What could be the result of not maintaining this pressure? 1. The oxygen regulators would not function properly 2. The crewmember’s mask would not function properly 3. Cockpit odors would be allowed to enter the oxygen cylinders 4. Moisture would be allowed to accumulate in the cylinders 5-2. Personnel servicing or maintaining oxygen sys- tems and components must be very careful to protect systems from which of the following substances? 1. Grease and oil 2. Hydraulic fluid 3. Both 1 and 2 4. Type 1 trichlorotrifluoroethane 5-3. All high-pressure oxygen cylinders are painted what color in accordance with the established color codes? 1. Gray 2. Green 3. Blue 4. Yellow 5-4. Oxygen cylinder valves are equipped with a safety plug filled with a fusible metal designed to melt within what temperature range? 1. 190°F to 207°F 2. 208°F to 220°F 3. 222°F to 245°F 4. 246°F to 270°F 5-5. The self-opening (automatic) oxygen cylinder valve is automatically opened under what conditions? 1. When the pilot inhales 2. When a lever is positioned to ON 3. When the pressure is over 500 psi 4. When it is connected to the oxygen line 5-6. Which of the following regulator maintenance tasks are NOT performed by AMEs? 1. Removal 2. Installation 3. Repairs 4. Operational checks 5-7. The tubing used in aircraft high-pressure oxy- gen systems is made from which of the following types of material? 1. Copper 2. Steel 3. Bronze 4. Cadmium 5-8. What lines run from the oxygen cylinders to the regulators? 1. Filler 2. Cylinder 3. Regulator 4. Distribution 5-9. Oxygen lines are identified by strips of what color paint and/or tape? 1. White paint 2. Green paint 3. Green and white tape 4. Blue and white tape 5-10. For which of the following connections is high-pressure tubing NOT used? 1. The cylinder valve and the regulator inlet in high-pressure systems 2. The cylinder valve and the pressure reducer in reduced high-pressure sys- tems 3. The pressure reducer and the outlets in reduced high-pressure systems 4. The oxygen cylinder valve and the filler connection in both high- and low-pressure systems 17

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5-11. Adapters and fittings are connected to the ends of copper tubing in high-pressure oxygen systems in what manner? 1. Silver soldered 2. Flared 3. Electric arc welded 4. Tin and lead soldered 5-12. If a line in a gaseous oxygen system ruptures, the loss of the entire oxygen supply is prevented by which of the following valves? 1. Filler 2. Check 3. Shutoff 4. Pressure-reducing 5-13. Check valve castings have arrows embossed on them to provide what information? 1. The direction of the master oxygen supply 2. The direction of the flow through the valve 3. The section of the valve to be mounted facing aft 4. The section of the valve to be mounted facing forward 5-14. In some oxygen systems, high cylinder pres- sure is changed to a low working pressure by which of the following valves? 1. Pressure-reducing 2. Manifold control 3. Cylinder control 4. Filler control 5-15. Pressure reducers are always in what location? 1. Oxygen distribution lines 2. Cylinder outlet caps 3. Filler valve inlets 4. Regulator outlets 5-16. What valve, located within the common filler valve, opens during the oxygen system filling operation and closes when filling is complete? 1. Regulator 2. Shutoff 3. Check 4. Pressure-reducing 5-17. If the pressure gauge on a 500 psi low-pressure system indicates 125 psi, what fractional part of the oxygen is left? 1. One-fourth 2. One-half 3. Two-thirds 4. Three-fourths 5-18. High-pressure gaseous oxygen system pres- sure gauges mounted at each flight station are calibrated to indicate pressure ranging from 0 to what maximum pressure? 1. 500 psi 2. 1,500 psi 3. 1,800 psi 4. 2,000 psi 5-19. In the reduced high-pressure oxygen system, a malfunctioning pressure reducer will be indicated by which of the following actions? 1. Rapid decline of quantity on the quantity gauge 2. Illumination of the low quantity light 3. Both 1 and 2 4. Rupture of the green disc in the discharge indicator 5-20. What items or devices should be used as a handle to carry the portable oxygen walkaround unit? 1. Regulator 2. Straps 3. Breathing tube 4. Copper tubing 5-21. Liquid oxygen will remain a liquid under normal atmospheric pressure at what minimum temperature? 1. –182°F 2. –220°F 3. –297°F 4. –320°F 5-22. What is the expansion ratio of liquid oxygen to gaseous oxygen? 1. 962:1 2. 862:1 3. 782:1 4. 692:1 5-23. The combustion-supporting potential of oxy- gen is a greater danger than freezing. 1. True 2. False 18

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5-24. When transferring LOX from one container to another, which of the following precautions should be taken? 1. Pour slowly to avoid splashing the liquid out of the container 2. Pour slowly to allow the receiving receptacle to cool sufficiently without thermal breakage 3. Both 1 and 2 4. Minimize LOX from venting into the atmosphere by pouring as rapidly as pos- sible 5-25. How many psi of pressure will LOX generate if it is allowed to evaporate at atmospheric pressure in a sealed container that has no relief provisions? 1. 10,000 psi 2. 12,000 psi 3. 14,000 psi 4. 16,000 psi 5-26. The pressure relief assembly in a LOX system storage vessel consists of which of the follow- ing items? 1. A rupture disc 2. A reseatable relief valve 3. Both 1 and 2 above in series 4. Both 1 and 2 above in parallel 5-27. Which of the following statements is correct concerning the stowage of LOX containers? 1. Hydrocarbons in the vicinity of stowed LOX containers do not present a hazardous condition 2. LOX containers should not be stowed in the vicinity of flammable gases or liquids 3. Because of the insulation in LOX con- tainers, open outside stowage is desirable 4. Stowage of LOX containers must be in refrigeration spaces 5-28. When dealing with LOX leakage or spillage, which of the following actions should be taken? 1. Immediately mop up the LOX and hose down with water 2. Immediately hose the area with water 3. Dilute the LOX with a caustic soda and hose down with water 4. Ventilate the leakage or spillage to allow LOX to evaporate into the atmosphere 5-29. What action should be taken when an article of clothing you are wearing comes in contact with LOX? 1. Separate the article of clothing from skin contact immediately, and thoroughly air clothing to allow dilution of the oxygen 2. Apply large quantities of water to the clothing area that has come in contact with the LOX 3. Remove the contaminated article of cloth- ing and discard 4. Remove the contaminated article of cloth- ing for washing 5-30. For what reason must a completely empty aircraft LOX converter be serviced slowly? 1. To allow the system to be completely filled 2. To prevent possible damage to the converter by thermal shock 3. To allow the safety valves in the system time to adjust to the servicing 4. To prevent the thermal relief valve from operating prematurely 5-31. What is the advantage of using liquid oxygen systems over gaseous oxygen systems on aircraft? 1. Liquid systems are less dangerous 2. One LOX converter replaces several of gaseous oxygen 3. Liquid systems are more efficient 4. Liquid oxygen is more economical to manufacture 5-32. An explosion could occur if a leak should develop in the inner shell of a LOX converter. Which of the following components prevents an explosion from occurring? 1. Pressure isolating valve 2. Two-way check valve 3. Filler valve 4. Blowout disc 5-33. During servicing of an aircraft LOX system, a means for venting is needed. What valve in the oxygen system provides this venting? 1. Filler valve 2. Pressure relief valve 3. Vent valve 4. Spring-loaded check valve 19

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5-34. What is the purpose of the heat exchanger in a LOX system? 1. To cool the LOX leaving the servicing cart to prevent damage to the aircraft’s LOX converter 2. To increase the temperature of the LOX leaving the aircraft’s converter 3. To prevent damage to the lungs of the crewmember breathing the oxygen 4. To convert the LOX to gaseous oxygen 5-35. What is the purpose of the low-pressure switch in an aircraft’s oxygen supply line? 1. To operate the oxygen caution light 2. To cut off oxygen servicing when the air- craft system is full 3. To warn personnel servicing the aircraft that the system is approaching full 4. To complete the electrical circuit to the LOX quantity indicator 5-36. How does a crewmember know when the LOX system is in a low state? 1. By checking the quantity indicator 2. By the illumination of a low quantity light 3. By both 1 and 2 4. By checking the oxygen pressure gauge 5-37. What is incorporated in the LOX system to protect the pressure regulator and crewmember from excessive pressure should the LOX con- verter malfunction? 1. A thermal expansion valve located be- tween the LOX converter and the oxygen regulator 2. A thermal expansion valve located in the LOX converter 3. A relief valve located in the LOX converter 4. A relief valve located in the oxygen shutoff valve 5-38. Which of the following types of tubing is used in LOX systems aboard aircraft? 1. Low-pressure aluminum alloy 2. High-pressure aluminum alloy 3. Low-pressure stainless steel 4. High-pressure stainless steel 5-39. Which of the following type of aircraft would use a miniature oxygen regulator? 1. P-3 2. C-130 3. F-18 4. MH-53 5-40. The miniature oxygen regulator will deliver 100 percent oxygen automatically when the inlet pressure does not exceed what psi? 1. 120 psi 2. 130 psi 3. 140 psi 4. No pressure limitations; will deliver 100 percent at any psi 5-41. What is the operating pressure of the MD-1 regulator? 1. 0 to 500 psi 2. 50 to 500 psi 3. 0 to 2000 psi 4. 50 to 2000 psi 5-42. Oxygen flow on an MD-type regulator is indicated by what type of action? 1. Fluctuation quantity gauge 2. Light illuminated 3. Horn sounded 4. Blinking action on FLOW indicator 5-43. Which of the following is NOT a toggle position on the emergency pressure control lever of an MD-2 regulator? 1. EMERGENCY 2. NORMAL 3. 100% OXYGEN 4. TEST MASK 5-44. On an MD-type regulator, at what minimum altitude will the regulator provide 100 percent oxygen? 1. 15,000 feet 2. 23,000 feet 3. 28,000 feet 4. 33,000 feet 5-45. An MD-type regulator is protected against overpressure by what component? 1. First stage relief valve 2. Second stage relief valve 3. Flow limiting valve 4. Overpressure valve 5-46. Which of the following is NOT a probable cause if the panel light on an MD-1 regulator fails? 1. Burned out lamp 2. Over-serviced system 3. Faulty light assembly 4. Faulty electrical hookup to power source 20

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5-47. The buildup sequence on a LOX converter begins when what action occurs? 1. The filler hose is removed from the con- verter 2. The filler hose is connected to the con- verter 3. Pressure reaches 100 psi 4. Pressure drops to 50 psi 5-48. At approximately what pressure will the pressure-opening valve unseat and allow gaseous oxygen to flow from the converter to the supply system? 1. 32 psi 2. 50 psi 3. 63 psi 4. 82 psi 5-49 Scheduled preventive maintenance for an OBOGS occurs at what time interval? 1. 28 days 2. 256 days 3. 2000 hours 4. 3000 hours 5-50. Which of the following is a position on an OBOGS control panel assembly? 1. OXY FLOW 2. 100% OXYGEN 3. STANDBY 4. EXHAUST 21

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22 ASSIGNMENT 6 Textbook Assignment: Chapter 8 – Oxygen Support Equipment 6-1. Open flames and smoking should be kept what minimum distance from a LOX handling area? 1. 10 feet 2. 25 feet 3. 35 feet 4. 50 feet 6-2. What may occur, if anything, if LOX is mixed with gasoline, kerosene, oil, or other hydrocarbons? 1. Spontaneous ignition 2. Strong odor 3. High fume content 4. Nothing will happen 6-3. What type of LOX system was developed to eliminate the safety hazards of venting oxygen? 1. Low loss, open loop 2. Low loss, closed loop 3. High loss, closed loop 4. High loss, open loop 6-4. What is the capacity of the transfer tank for the TMU-70/M? 1. 25 liters 2. 15 liters 3. 25 gallons 4. 15 gallons 6-5. What it the primary purpose of the TMU-70/M LOX cart? 1. To store LOX 2. To convert LOX to gaseous oxygen 3. To service oxgyen bottles 4. To service LOX converters 6-6. On the TMU-70/M, the vented oxygen vapors are returned to what component? 1. Transfer tank 2. Transfer lines 3. Storage tank 4. Storage lines 6-7. The storage tank on the TMU-70/M is what type of walled system? 1. Single 2. Double 3. Titanium 4. Vacuum cooled 6-8. The safe operating pressure on the storage tank pressure gauge is indicated by what psi? 1. 0 to 25 psi 2. 0 to 50 psi 3. 0 to 75 psi 4. 0 to 100 psi 6-9. On the TMU-70/M, what component indicates the level of liquid oxygen in the inner tank? 1. Storage tank pressure gauge 2. Storage tank oxygen gauge 3. Storage tank liquid pressure gauge 4. Storage tank liquid level gauge 6-10. What component controls the flow of oxygen gas vapors from the transfer tank to the vapor space of the storage tank? 1. Transfer tank vent line shutoff valve 2. Transfer tank fill line shutoff valve 3. Transfer tank pressure buildup valve 4. Converter vent line shutoff valve 6-11. On the TMU-70/M, what component controls the flow of oxygen from the bottom of the transfer tank to the pressure buildup coil? 1. Transfer tank vent line shutoff valve 2. Transfer tank fill line shutoff valve 3. Transfer tank pressure buildup valve 4. Converter vent line shutoff valve 6-12. The transfer tank pressure gauge is indicated by a green band and what psig reading? 1. 0 to 30 psig 2. 0 to 60 psig 3. 0 to 90 psig 4. 0 to 120 psig

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23 6-13. During transfer of liquid to a converter, the converter full indicator gauge displays what reading? 1. Gas 2. Liquid 3. Servicing 4. Full 6-14. During filling, the fill-drain line shutoff valve is set in what position? 1. Liquid 2. Gas 3. Open 4. Closed 6-15. Controlling the release of gaseous vapors from the storage tank to the vent piping manifold is the responsibility of what component? 1. Transfer tank fill line shutoff valve 2. Transfer tank pressure buildup valve 3. Fill-drain line shutoff valve 4. Storage tank vent line shutoff valve 6-16. During filling operations on the TMU-70/M, the storage tank should not be allowed to rise above what pressure? 1. 25 psi 2. 38 psi 3. 55 psi 4. 73 psi 6-17. When the storage tank liquid level gauge indicates 50 gallons, what component should be closed? 1. Transfer tank shutoff valve 2. Transfer tank buildup valve 3. Transfer tank servicing valve 4. Supply tank servicing valve 6-18. Under normal conditions and 30 psi transfer pressure, the storage tank should fill within what time period? 1. 2 to 5 minutes 2. 2 to 10 minutes 3. 5 to 10 minutes 4. 5 to 15 minutes 6-19. Which of the following valves should be opened to allow the transfer tank to fill? 1. Transfer tank fill line shutoff valve 2. Fill-drain line shutoff valve 3. Converter vent line check valve 4. Converter vent line shutoff valve 6-20. As soon as the converter full indicator gauge reads LIQUID, which of the following valves should be closed? 1. Transfer tank fill line shutoff valve 2. Fill-drain line shutoff valve 3. Converter vent line check valve 4. Converter vent line shutoff valve 6-21. The transfer tank pressure buildup coil is used to increase the pressure in the transfer tank to what psi? 1. 70 psi 2. 90 psi 3. 110 psi 4. 123 psi 6-22. Maintenance information for the TMU-70/M is found in what publication? 1. A6-32AO-GYD-000 2. NAVAIR 19-25D-14 3. NAVAIR 19-25D-22 4. NAVAIR 19-25D-26 6-23. Which of the following fire agents is NOT prohibited for use on LOX-enriched fires? 1. Water 2. Soda-acid extinguishers 3. Mechanical (liquid) foam 4. Methyl bromide 6-24. Which of the following contamination tests is NOT required to be performed at a laboratory? 1. Sampling 2. Density 3. Volume 4. Odor 6-25. When performing a LOX odor test, how much of the LOX is needed? 1. 100 milliliters 2. 200 milliliters 3. 300 milliliters 4. 400 milliliters 6-26. When performing a LOX odor test, when will an odor be most prevalent? 1. As soon as the LOX is poured into a beaker 2. When the beaker has warmed to nearly room temperature 3. When the beaker has reached –20°F 4. When the LOX has set for 24 hours

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24 6-27. Which of the following is the most dangerous contaminate of LOX? 1. Hydrocarbons 2. Water 3. Dust 4. Pollen 6-28. Which of the following is a method used in purging oxygen containers? 1. Oil-based nitrogen 2. Oil-based oxygen 3. LOX wash 4. LOX drying 6-29. The type No-2 cart contains how many oxygen cylinders? 1. Six 2. Eight 3. Three 4. Four 6-30. On the type No-2 cart, what valve is used to control the flow of oxygen from the cylinders to the system being serviced? 1. Cross control valve 2. Manifold control valve 3. Servicing control valve 4. Recharge valve 6-31. Which of the following components is NOT mounted on the upper manifold? 1. Recharge valve 2. Manifold control valve 3. Gauges 4. Drier assembly 6-32. How many shutoff valves does the type No-2 cart have? 1. One 2. Two 3. Three 4. Four 6-33. On the type No-2 cart, what component is used to remove moisture from the system? 1. Filter assembly 2. Drier assembly 3. Vent assembly 4. Moisture removal assembly 6-34. What amount of residual pressure should be kept in an oxygen cylinder? 1. 10 psi 2. 15 psi 3. 30 psi 4. 50 psi 6-35. When installing full cylinders on a type No-2 cart, which of the following is an ideal safety practice? 1. The cart should be connected to a towing vehicle 2. There should be a total of four personnel involved 3. Quality assurance personnel should be present 4. The installation should occur when the outside temperature is a maximum of 75°F 6-36. The two top cylinders on a type No-2 cart are attached by what means? 1. Cylinder wheel 2. Spot tie 3. Harness locks 4. Single strap 6-37. Interchanging of components with air/nitrogen equipment is authorized during what event, if any? 1. War time 2. Operational necessity 3. Parts ordered are not available from supply 4. Never 6-38. The chemical drying agent on the type No-2 cart should be inspected after how many cylinders are used? 1. 8 2. 12 3. 14 4. 16 6-39. What color will the chemical drying agent turn when moisture is present? 1. Pink 2. Blue 3. Green 4. Yellow

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25 6-40. Which of the following components is NOT a major component on the A/U26U-1A oxygen servicing unit? 1. Trailer assembly 2. Gas storage system 3. Gas servicing system 4. Moisture removal assembly 6-41. The A/U26U-1A oxygen trailer contains how many wheels? 1. One 2. Two 3. Three 4. Four 6-42. The parking brake on the A/U26U-1A is operated by what means? 1. Hydraulic 2. Pneumatic 3. Electrical 4. Mechanical 6-43. The gas storage system on A/U26U-1A consists of how many oxygen bottles? 1. One 2. Two 3. Three 4. Four 6-44. The oxygen storage system on the A/U26U-1A is designed to operate at what maximum pressure? 1. 2000 psig 2. 2430 psig 3. 2640 psig 4. 2935 psig 6-45. The nitrogen storage system on the A/U26U-1A is designed to operate at what minimum pressure? 1. 125 psig 2. 175 psig 3. 200 psig 4. 225 psig 6-46. When compressed air is not available on the A/U26U-1A, what source, if any, can be used as an alternative? 1. Oxygen 2. Nitrogen 3. Helium 4. No other source is authorized 6-47. Compressed air used to drive the oxygen gas boost pump on the A/U26U-1A must be what percent moisture free? 1. 100 percent 2. 90 percent 3. 80 percent 4. 75 percent 6-48. The aviators oxygen used on the A/U26U-1A must conform to what military specification? 1. MIL-0-13270 2. MIL-0-27210 3. MIL-0-37420 4. MIL-0-48320 6-49. The gaseous nitrogen module on the A/U26U-1A supplies what minimum amount of unregulated compressed air? 1. 35 psig 2. 50 psig 3. 75 psig 4. 90 psig 6-50. The low pressure service adapter burst disc prevents the low pressure aircraft oxygen gas storage system from exceeding what pressure? 1. 600 psig 2. 800 psig 3. 1000 psig 4. 1200 psig

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