INTEGRATED AIRCRAFT PROPULSION SYSTEM
20170057649 ยท 2017-03-02
Inventors
- Edward C. Rice (Indianapolis, IN, US)
- Richard K. Keller (Indianapolis, IN, US)
- William B. Bryan (Indianapolis, IN, US)
Cpc classification
F02K3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T50/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B64D27/20
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An integrated propulsion system comprising at least two gas turbine engines, at least one fan, and a transmission assembly coupling the at least two gas turbine engines to the at least one fan wherein the at least two gas turbine engines are disposed within a main body of an airframe comprising the main body and a pair of wings, and wherein the number of gas turbine engines is greater than the number of fans.
Claims
1. An integrated propulsion system comprising: at least two gas turbine engines; at least one fan; and a transmission assembly coupling said at least two gas turbine engines to said at least one fan; wherein said at least two gas turbine engines are disposed within a main body of an airframe comprising said main body and a pair of wings, and wherein the number of gas turbine engines is greater than the number of fans.
2. The system of claim 1, each of said gas turbine engines having an exclusive engine air flow duct comprising an engine inlet and an engine exhaust.
3. The system of claim 2, said fan having an exclusive fan air flow duct comprising a fan inlet and a fan exhaust.
4. The system of claim 3, wherein said fan exhaust comprises a fan exhaust duct and a thrust vectoring mechanism.
5. The system of claim 4, wherein each of said engine inlet and said fan inlet comprise an inlet duct extending radially outward from said main body of the airframe.
6. The system of claim 5, wherein said at least one fan is mounted within the main body of the airframe.
7. The system of claim 1, wherein said transmission assembly comprises a clutch mechanism.
8. The system of claim 7, wherein output power of said at least two gas turbine engines is distributed to said at least one fan when said clutch mechanism is engaged.
9. The system of claim 1, said fan having a fan exhaust duct and each of said gas turbine engines having an engine inlet duct connected to said fan exhaust duct.
10. An integrated propulsion system consisting of: a first gas turbine engine and a second gas turbine engine; a fan; and wherein a transmission assembly couples said first gas turbine engine and said second gas turbine engine to said fan.
11. The system of claim 10 wherein said first gas turbine engine, said second gas turbine engine, and said fan each have an exclusive air flow duct.
12. The system of claim 11 wherein the air flow duct of said fan comprises an inlet duct, exhaust duct, and thrust vectoring mechanism.
13. The system of claim 10 wherein each of said first gas turbine engine, said second gas turbine engine, and said fan have an axis of rotation which is parallel to a central axis of a main body of an airframe.
14. The system of claim 10 wherein said first gas turbine engine and said second gas turbine engine an axis of rotation which is disposed at an angle to a central axis of a main body of an airframe.
15. The system of claim 10 wherein said fan has an axis of rotation normal to a central axis of a main body of an airframe.
16. The system of claim 10 wherein said transmission assembly comprises a gearbox.
17. The system of claim 10 wherein said transmission assembly comprises a clutch.
18. A method of reducing drag in a turbofan aircraft comprising: reducing the required cross-sectional area of an aircraft body and reducing the total weight of the aircraft propulsion system by: disposing a first gas turbine engine on a first side of said aircraft body and a second gas turbine engine on a second side of said aircraft body; disposing a fan unit on said aircraft body, said fan unit coupled to said first gas turbine engine and said second gas turbine engine by a transmission assembly comprising a clutch and more than one rotating linkages; venting each of said first gas turbine engine and said second gas turbine engine via a respective exclusive engine duct comprising an engine inlet duct and an engine exhaust duct; and venting said fan unit via an exclusive fan duct comprising a fan inlet duct and a fan exhaust duct.
19. The method of claim 18 wherein said fan exhaust duct includes a thrust vectoring mechanism.
20. The method of claim 19 wherein each of said first gas turbine engine, said second gas turbine engine, and said fan unit have an axis of rotation which is parallel to a central axis of a main body of an airframe.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The following will be apparent from elements of the figures, which are provided for illustrative purposes and are not necessarily to scale.
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[0025] While the present disclosure is susceptible to various modifications and alternative forms, specific embodiments have been shown by way of example in the drawings and will be described in detail herein. It should be understood, however, that the present disclosure is not intended to be limited to the particular forms disclosed. Rather, the present disclosure is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the disclosure as defined by the appended claims.
DETAILED DESCRIPTION
[0026] For the purposes of promoting an understanding of the principles of the disclosure, reference will now be made to a number of illustrative embodiments illustrated in the drawings and specific language will be used to describe the same.
[0027] This disclosure presents embodiments to overcome the aforementioned deficiencies of conventional turbofan engines. More specifically, this disclosure is directed to an integrated propulsion system having a smaller volume, lighter weight, and greater range of placement options within an airframe when compared to conventional turbofan engines. The integrated propulsion system comprises gas turbine engines and at least one fan linked by a transmission assembly.
[0028]
[0029] Air enters the turbofan engine 100 via inlet fan 101. A first portion of the air flows through the bypass region 111 and into the exhaust mixing region 113. A second portion of the air flows into the compressor 103 where it is pressurized, then into the combustor where it is mixed with fuel and ignited. The ratio of the first portion of air flowing through the bypass region 111 to the second portion of air flowing through the engine core 115 is referred to as the bypass ratio.
[0030] The hot, high-pressure combustion gasses are directed sequentially into the high-pressure turbine 107 and low-pressure turbine 109, causing each turbine 107, 109 to rotate about a shaft which is connected to and drives the compressor 103 and the inlet fan 101. In multiple-spool designs, more than one concentric shafts are used to separately rotate various components. For example, in a standard two-spool turbofan engine the high-pressure turbine 107 and compressor 103 are connected using a first common shaft while the low-pressure turbine 109 and inlet fan 101 are connected using a second common shaft.
[0031] In the turbofan engine 100 presented in
[0032]
[0033] Transmission mechanism 205 transferred shaft power from engine core 115 to fan 209. In some embodiments, transmission mechanism 205 includes a clutch mechanism, a gearbox, a beveled gear, and/or an angled gearbox. In those embodiments in which transmission mechanism 205 comprises a clutch mechanism, output power of the first engine core 115A and second engine core 115B is distributed to the fan when the clutch mechanism is engaged.
[0034]
[0035]
[0036] In some embodiments, as illustrated in
[0037] Fan 209 is supplied with shaft power from first engine core 115A and second engine core 115B via transmission shafts 303A, 303B, and 303C. In some embodiments, transmission shafts 303 pass through a gearbox 301. In some embodiments, gearbox 301 further comprises a clutch mechanism for selectively engaging transmission shaft 303A from first engine core 115A, transmission shaft 303B from second engine core 115B, or both. Transmission shaft 303C couples gearbox 301 to fan 209. In some embodiments an additional transmission shaft 305 is output from gearbox 301 to drive an alternative load, such as an alternative means of propulsion, a lift rotor, a propeller, or a generator.
[0038] As with the embodiment of
[0039] The integrated propulsion system 300 illustrated in
[0040]
[0041] As illustrated in
[0042] In the illustrated embodiment, the fan inlet duct 405, fan 209, and fan exhaust duct 409 are positioned on the main body 401 above the wings 403. In some embodiments, the fan inlet duct 405, fan 209, and fan exhaust duct 409 are positioned further forward or further aft than the illustrated position. In some embodiments, the fan inlet duct 405, fan 209, and fan exhaust duct 409 are more elongated than illustrated, resulting in fan ducting which covers a longer portion of aircraft 400. Finally, in some embodiments the fan inlet duct 405, fan 209, and fan exhaust duct 409 are positioned on the underside of main body 401.
[0043] Similarly, in the illustrated embodiment the first engine inlet duct 201A is positioned on the main body 401 beneath a wing 403. In some embodiments, the first engine inlet duct 201A and second engine inlet duct 201B (not shown in
[0044]
[0045] In some embodiments a thrust vectoring mechanism 501 is attached to the aft portion of fan exhaust duct 409. Thrust vectoring mechanism 501 can comprise articulating nozzles, vanes, or paddles.
[0046] As illustrated in
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[0050] In some embodiments first engine core axis A2 and second engine core axis A3 are defined as the axes of rotation for the respective gas turbine engine cores.
[0051] In some embodiments, first engine core 115A and second engine core 115B are disposed along a radial edge of main body 401. In other embodiments, first engine core 115A and second engine core 115B are disposed radially inward from the exterior skin of main body 401. In some embodiments, angle 1 is between 5 and 25 degrees.
[0052] Similarly,
[0053] An additional embodiment of an integrated propulsion system 900 is presented in
[0054] Integrated propulsion system 900 comprises a fan 209, first engine core 115A, and second engine core 115B. Fan 209 is contained within a fan shroud 407 and is connected to a fan inlet duct 405 and fan exhaust duct 409. First engine core 115A is connected to a first engine inlet duct 201A and first engine exhaust duct 203A, while second engine core 115B is connected to a second engine inlet duct 203A and second engine exhaust duct 203B. As in the embodiment illustrated in
[0055] In integrated propulsion system 900 first engine inlet duct 201A and second engine inlet duct 201B draw air from fan exhaust duct 409. Because only a portion of fan exhaust is needed to meet the air intake requirements of first engine core 115A and second engine core 115B, some fan exhaust is discharged from the fan exhaust duct 409 into the surrounding atmosphere.
[0056] The illustrated embodiment of
[0057] The disclosed integrated propulsion systems provide numerous advantages over the prior art. The disclosed system requires a smaller volumetric footprint within the airframe because it uses a single fan unit vice multiple fan units or multiple turbofans. In previous configurations which required the use of multiple fan units a significant amount of cargo space was used by the fan units, leading to the use of blended wing body airframes to accommodate the configuration. In contrast, the present disclosure is capable of use with a conventional aircraft body comprising a main body and laminar flow wings extending from the main body. The smaller volumetric footprint also allows for easier packaging within the aircraft, and as a result can lead to use in a smaller cross-sectioned aircraft. The disclosed system additionally has improved drag performance over prior configurations (i.e. reduced aircraft aerodynamic drag) because a single fan unit, even when relatively larger than a fan unit of multiple fan unit configurations, weighs less than multiple fan units and their associated ducting. A smaller cross-sectioned aircraft would also display improved drag performance over prior configurations. Finally, the use of a single, larger fan unit provides greater fuel efficiency than multiple fan configurations.
[0058] Although examples are illustrated and described herein, embodiments are nevertheless not limited to the details shown, since various modifications and structural changes may be made therein by those of ordinary skill within the scope and range of equivalents of the claims.