Next Patent: Air purification unit
Next Patent: Air purification unit
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[0001] The present invention generally relates to a method and system for inerting aircraft fuel tanks by providing a nitrogen enriched air supply, and specifically to a system for increasing working air pressures to optimize efficiency of an air separation module by using exhaust gases to power a second compressor.
[0002] It is recognized that fuel vapors within fuel tanks create become combustible in the presence of oxygen. The possibility of explosion or fire can be substantially reduced by reducing or eliminating the amount of oxygen present within the fuel tank. It is known in the art to equip aircraft with onboard inert gas generating systems. The inert gas generating system supplies nitrogen enriched air to the vapor space within the fuel tank. The nitrogen-enriched air has a substantially reduced oxygen content that reduces or eliminates combustible conditions within the fuel tank.
[0003] Typically, the inert gas generating system includes a compressor powered by a motor that draws in air at a first pressure and exhausts air at a second pressure. The second pressure being much higher than the first pressure in order to obtain an optimal working pressure required for an air separation module. It is understood by workers in the art that air separation modules operate most efficiently at elevated pressures above pressure typically available from other on board systems. Therefore, a compressor elevates the pressure of air to the air separation module. The compressor and motor to drive the compressor contribute a substantial amount of weight to an aircraft. Weight and space on an aircraft are at a premium and any reduction or increase has a substantial effect on aircraft operation.
[0004] Accordingly, it is desirable to develop an inerting system for producing inert gas on board an aircraft that obtain optimal working pressures for air separation modules while reducing overall system weight and size.
[0005] An embodiment of this invention is an inerting system for reducing the oxygen content within an air stream including a second compressor driven by exhaust to increase air pressure to optimal working pressure of an air separation module.
[0006] The inerting system of this invention includes a first compressor elevating cabin air a second pressure. The second pressure is at an intermediate level below an optimal air pressure level for an air separation module. Air exhausted from the first compressor is routed to a second compressor. The second compressor is driven by a turbine powered by oxygen depleted air exiting to the fuel distribution system. The second compressor elevates air pressure from the intermediate pressure exiting the first compressor to the optimal working pressure level for the air separation module.
[0007] The first compressor is only used to raise air pressure to an intermediate pressure and therefore the compressor and motor driving the compressor is smaller and lighter than a single compressor configured to elevate air pressure to the optimal working pressures for the air separation module.
[0008] Air exhausting from the second compressor is at the optimal working pressure for the air separation module. Air enters the air separation module and oxygen is substantially reduced or eliminated from the air stream. Air exiting the air separation module is then routed to the turbine that drives the second compressor. The pressure of air exiting the air separation module and driving the turbine is at a pressure much higher than that required by the fuel distribution system. Therefore, the excess energy available within the high-pressure air is used to drive the second compressor. Driving the second compressor with the energy provided in the high-pressure air utilizes energy that would otherwise simply be exhausted to atmosphere to allow a substantial reduction in capacity and weight of the first compressor that in turn provides an overall weight and size reduction of the inerting system.
[0009] Accordingly, the inerting system of this invention provides a compact and lightweight system by utilizing excess energy input into the system to drive a second compressor to optimize oxygen reduction in gases used to inert fuel tanks.
[0010] The various features and advantages of this invention will become apparent to those skilled in the art from the following detailed description of the currently preferred embodiment.
[0011] Referring to
[0012] A second compressor
[0013] The inerting system
[0014] In operation, the inerting system
[0015] Exhaust air from the first compressor
[0016] Air exiting the primary heat exchanger
[0017] The second compressor
[0018] Air exiting the second compressor
[0019] Air exiting the bypass circuit
[0020] Air exiting the water collector
[0021] Air exiting the air separation module
[0022] Air exiting the turbine
[0023] The inerting system
[0024] The foregoing description is exemplary and not just a material specification. The invention has been described in an illustrative manner, and should be understood that the terminology used is intended to be in the nature of words of description rather than of limitation. Many modifications and variations of the present invention are possible in light of the above teachings. The preferred embodiments of this invention have been disclosed, however, one of ordinary skill in the art would recognize that certain modifications are within the scope of this invention. It is understood that within the scope of the appended claims, the invention may be practiced otherwise than as specifically described. For that reason the following claims should be studied to determine the true scope and content of this invention.