Aircraft include many systems that facilitate operation and safety of the aircraft. For example, engines provide power, either directly or indirectly, to other systems such as rotor systems, gear boxes, flight control systems, interior environmental control systems, and the like. Such systems include liquids, such as fuel and lubricants, to facilitate operations. For example, fuel is burned to power components and lubricants are employed to reduce wear on components and to transfer heat away from components. These flammable liquids can sometimes escape from their respective systems, which increases the risk of fire in an aircraft engine compartment. Aircraft typically have an onboard system designed to extinguish fires, such as fire bottles located in the fuselage with tubing that brings a fire extinguishing agent into the engine compartment where the agent is disbursed by discharge nozzles. The fire bottles are typically electrically operated after manual selection by the flight crew based upon automatic fire detection.
Embodiments are directed to systems and methods for providing a fire extinguishing system having nozzles for distributing a fire extinguishing agent, wherein the nozzles are oriented to prevent accumulation of water, rain, humidity, or other liquids and foreign object debris/damage (FOD).
In one example embodiment, a rotorcraft comprises an airframe having an engine compartment, an engine disposed within the engine compartment, a fire bottle configured to hold a fire extinguishing agent, at least one agent tube coupled to the fire bottle and configured to carry the fire extinguishing agent to the engine compartment, and a nozzle on the at least one agent tube, the nozzle positioned above the engine and oriented in a downward-facing direction. The nozzle has at least one opening and is configured to allow liquid or other FOD to drain out of the at least one opening instead of allowing the liquid or other FOD to flow into the at least one agent tube. The nozzle may have a chamfer opening that faces downward. The agent tubes may comprise an inverted trap section that is configured to allow liquid or other FOD to drain out of the at least one agent tube instead collecting in the at least one agent tube.
The rotorcraft may further comprise at least one vertical firewall enclosing the engine compartment, wherein the at least one agent tube penetrates the at least one vertical firewall. The fire bottle may be located above the engine.
The rotorcraft may further comprise an engine deck below the engine, wherein the at least one agent tube penetrates the engine deck, and wherein the at least one agent tube extends vertically upward to the nozzle, which is oriented facing down above most or all of the engine. The fire bottle may be located below the engine deck.
In another example embodiment, a rotorcraft comprises an airframe having an engine compartment, an engine disposed within the engine compartment, a fire bottle configured to hold a fire extinguishing agent, at least one agent tube coupled to the fire bottle and configured to carry the fire extinguishing agent to the engine compartment, and a nozzle on the at least one agent tube, the nozzle positioned below the engine and oriented in an upward-facing direction, wherein the nozzle is configured to prevent liquid from flowing into the at least one agent tube by a cover, valve, or membrane as discussed below.
The nozzle may comprise a hinged cover. The hinged cover may be held in a closed position by a spring. The spring may be configured to assert a force that is overcome by pressure generated by a fire extinguishing agent released from the fire bottle.
The nozzle may comprise a spring-loaded flapper valve.
The nozzle may comprise a discharge port, and a membrane configured to fit over the discharge port. The membrane may be configured to rupture or release when exposed to pressure generated by a fire extinguishing agent released from the fire bottle.
The nozzle may comprise a discharge port, and a cap configured to fit over the discharge port. The cap may be configured to expose the discharge port when subject to pressure generated by a fire extinguishing agent released from the fire bottle.
Having thus described the invention in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
While the system of the present application is susceptible to various modifications and alternative forms, specific embodiments thereof have been shown by way of example in the drawings and are herein described in detail. It should be understood, however, that the description herein of specific embodiments is not intended to limit the system to the particular forms disclosed, but on the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the present application as defined by the appended claims.
Illustrative embodiments of the system of the present application are described below. In the interest of clarity, not all features of an actual implementation are described in this specification. It will of course be appreciated that in the development of any such actual embodiment, numerous implementation-specific decisions must be made to achieve the developer's specific goals, such as compliance with system-related and business-related constraints, which will vary from one implementation to another. Moreover, it will be appreciated that such a development effort might be complex and time-consuming but would nevertheless be a routine undertaking for those of ordinary skill in the art having the benefit of this disclosure.
In the specification, reference may be made to the spatial relationships between various components and to the spatial orientation of various aspects of components as the devices are depicted in the attached drawings. However, as will be recognized by those skilled in the art after a complete reading of the present application, the devices, members, apparatuses, etc. described herein may be positioned in any desired orientation. Thus, the use of terms such as “above,” “below,” “upper,” “lower,” or other like terms to describe a spatial relationship between various components or to describe the spatial orientation of aspects of such components should be understood to describe a relative relationship between the components or a spatial orientation of aspects of such components, respectively, as the device described herein may be oriented in any desired direction.
A tail boom 104 is depicted that further includes tail rotor and anti-torque system 105. The tail structure 104 may be used as a horizontal stabilizer. Aircraft 100 further includes a rotor mast 106, which connects the main rotor 102 to a main rotor gearbox 107. The main rotor gearbox 107 is connected to one or more accessory gear boxes 108 and one or more reduction gearboxes 109a, 109b. Each reduction gearbox 109a, 109b is connected to one or more engines 110a, 110b, which are within an engine compartment 111. A tail rotor drive shaft 112 is connected to the main rotor gearbox 107 and transmits mechanical rotation to the tail rotor gear box 113 via tail rotor drive shaft 114 and intermediate gear box 115.
Engines 110a, 110b are the primary source of power for aircraft 100. Torque is supplied to the rotor system 102 and the anti-torque system 105 using engines 110a and 110b. One or both of the engines 110a, 110b may leak or otherwise expel liquids into the compartment 111. Such liquids are often flammable and may include, for example, petroleum-based fuel, coolant, heat-transfer fluid, hydraulic fluid, and/or a lubricant. Fire suppression in aircraft 100 may use both passive and active systems to reduce and eliminate fires. Passive methods include, for example, the use of noncombustible materials, separation by firewalls, compartmentalization, isolation, ventilation and cooling, and proper drainage. Active methods include fire detection and extinguishing systems. One or more engine fire bottles 116 and associated engine fire extinguishing tubing 117 are mounted inside fuselage 101 and below engine compartment 111. Engine fire bottles 116 contain a fire extinguishing agent, such hydrofluorocompounds (HFCs), that may be released into engine compartment 111 upon activation by a pilot.
It should be appreciated that the aircraft 100 of
In addition to passive fire protection, engine 110a also has an active fire extinguishing system comprising extinguishing agent tubes 202, 203 that are coupled to fire bottle 204 below engine deck 205. Agent tubes 202, 203 rise from engine deck 205 along and around opposite sides of engine 110a. Agent tubes 202, 203 terminate in nozzles 206, 207, which are positioned above engine 110a and configured to maximize distribution of fire extinguishing agent in the event of an engine fire. Nozzles 206 and 207 are generally downward facing so that water and other fluids that drip or splash on tubes 202 and 203 do not get captured by nozzles 206 and 207.
Although
The deployment of agent tubes 202, 203 and nozzles 206, 207 above engine 110a is an improvement over prior fire suppression systems. Traditionally, engine fire extinguishing discharge nozzles for a helicopter are positioned below the engine and direct agent upwards to fill compartment. The orientation of prior designs is prone to accumulating moisture and FOD in the agent tubes due to water from engine wash, rain, and humidity. As a result, prior fire suppression systems were at risk of fire bottle failures, for example, due to corrosion resulting from wash fluid entering the tubes and back flowing to bottle. Extinguishing agent nozzles that are positioned below the engine are also susceptible to water and soap residue entering the agent tubes, which will corrode the agent tubes and fire bottles. By re-orienting the extinguishing agent nozzles, this can prevent accumulation of water, rain, humidity, and other FOD that could compromise the fire extinguishing system.
The configuration illustrated in
In other embodiments, nozzles 405 and 406 are positioned below fire bottle 401, which gives the agent lines 403, 404 a downward slope relative to the fire bottle 401. The downward slope will cause any water that does enter nozzles 405, 406 to drain back out of the agent tubes 403, 404 over time. This slope away from bottle 401 ensures that water does not collect in agent tubes 403 and 404 or at fire bottle 401, which minimizes corrosion, blockages, and other damage.
The embodiment illustrated in
Nozzle 511 has a chamfer end 512 that is cut so that fire extinguishing agent is directed downward toward engine 501. Water, liquids, and FOD that fall on nozzle 511 is prevented from entering opening 513 due to the downward orientation of the opening 513 on the chamfer end 512. As result, water, liquid, and FOD do not enter agent tube 510 and do not flow back to fire bottle 509, which prevents corrosion and other damage to fire suppression system 508.
Although fire bottles 509 and 602 are shown as being on approximately the same level as nozzles 511 and 605, respectively, it will be understood that in other embodiments the fire bottle may be located above or below the discharge nozzle. Agent tubing 510, 603 may be routed as appropriate to connect fire bottles 509 and 602 to nozzles 511 and 605. For example, in other embodiments, the fire bottle may be located below engine deck 506 and the agent tubing may penetrate deck 506 and extend upward to position the nozzle 511 or 605 above engine 501.
In other embodiments, nozzle 705 and agent tubes 704, 703 may be protected by a closure that is held in a closed position by a mechanical device. The mechanical device is configured to assert a closing force that may be overcome by pressure generated by a fire extinguishing agent that is released from a fire bottle. The closure may be a hinged cover that is held in the closed position by a spring, a spring-loaded flapper valve, a spring-loaded check valve, or any other mechanically activated valve that is spring loaded whereby valve opens when pressure/force exceeds a certain specified threshold.
Alternatively, cap 706 may be connected to agent tube 704 by a tether or cable 708 so that cap 706 is blown off of agent tube 704 when the fire extinguishing agent is deployed. The tether or cable 708 keeps cap 706 attached to agent tube 704 so that cap 706 does not become FOD and tumble loosely in engine compartment 500.
In a further embodiment, spring-loaded cap 706 may be replaced with a disposable rupture membrane over the discharge port 705. The membrane may be thin stainless steel, for example, that would prevent water, liquid, and FOD from entering agent tube 704. The thin membrane will rupture easily on discharge of fire bottle 702 due to the pressure of the fire extinguishing agent in tube 704.
The foregoing has outlined rather broadly the features and technical advantages of the present invention in order that the detailed description of the invention that follows may be better understood. Additional features and advantages of the invention will be described hereinafter which form the subject of the claims of the invention. It should be appreciated that the conception and specific embodiment disclosed may be readily utilized as a basis for modifying or designing other structures for carrying out the same purposes of the present invention. It should also be realized that such equivalent constructions do not depart from the invention as set forth in the appended claims. The novel features which are believed to be characteristic of the invention, both as to its organization and method of operation, together with further objects and advantages will be better understood from the following description when considered in connection with the accompanying figures. It is to be expressly understood, however, that each of the figures is provided for the purpose of illustration and description only and is not intended as a definition of the limits of the present invention.
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Number | Date | Country | |
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20220233898 A1 | Jul 2022 | US |