CA2971056A1 - A multi-spool gas turbine engine architecture - Google Patents
A multi-spool gas turbine engine architecture Download PDFInfo
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- CA2971056A1 CA2971056A1 CA2971056A CA2971056A CA2971056A1 CA 2971056 A1 CA2971056 A1 CA 2971056A1 CA 2971056 A CA2971056 A CA 2971056A CA 2971056 A CA2971056 A CA 2971056A CA 2971056 A1 CA2971056 A1 CA 2971056A1
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- Prior art keywords
- compressor
- shaft
- spool
- gas turbine
- agb
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- Y—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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02T—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
- Y02T50/00—Aeronautics or air transport
- Y02T50/60—Efficient propulsion technologies, e.g. for aircraft
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Abstract
pressure spool has an LP compressor and an LP turbine. The HP spool has an HP turbine and an HP compressor. An accessory gear box (AGB) is drivingly connected to the HP
spool. The LP compressor is disposed axially between the HP compressor and the AGB. A gear train drivingly couples the LP compressor to the LP turbine. The gear train is integrated to the AGB.
Description
TECHNICAL FIELD
[0001] The application relates generally to gas turbine engine and, more particularly, to a multi-spool engine architecture.
BACKGROUND OF THE ART
SUMMARY
a low pressure (LP) spool and a high pressure (HP) spool rotatable independently about an engine axis; the LP spool comprising an LP turbine, an LP compressor and an LP shaft drivingly connected to the LP turbine, the LP turbine disposed forward of the LP compressor relative to a direction of travel of the engine; the HP spool comprising an HP turbine, an HP compressor and an HP shaft drivingly connecting the HP
turbine to the HP compressor, the HP compressor disposed forward of the LP compressor and in fluid communication therewith, the HP turbine disposed aft of the LP
turbine and in fluid communication therewith; an accessory gear box (AGB) drivingly connected to the HP spool, the LP compressor disposed axially between the HP compressor and the AGB, and a gear train drivingly coupling the LP shaft to the LP compressor, the gear train disposed aft of the LP compressor.
spool and the HP spool being independently rotatable about a central axis, the LP
pressure spool comprising an LP compressor and an LP turbine, the HP spool comprising an HP
turbine and an HP compressor; an accessory gear box (AGB) drivingly connected to the HP spool, the LP compressor disposed axially between the HP compressor and the AGB, and a gear train drivingly coupling the LP compressor to the LP turbine, the gear train disposed on an AGB facing side of the LP compressor.
DESCRIPTION OF THE DRAWINGS
compressor;
compressor;
compressor;
shaft is not interrupted to accommodate a support for the LP shaft.
DETAILED DESCRIPTION
Depending on the intended use, the engine 10 can be configured as a turboprop engine or a turboshaft engine. Fig. 1 illustrates a turboprop configuration. The gas turbine engine 10 has a centerline or longitudinal center axis 17 about which the compressor and turbine rotors rotate.
The exemplary embodiment shown in Fig. 1 is a "reverse-flow" engine because gases flow through the gaspath 18 from the air inlet 11 at a rear portion thereof, to the exhaust outlet 15 at a front portion thereof. This is in contrast to "through-flow"
gas turbine engines in which gases flow through the core of the engine from a front portion to a rear portion. The direction of the flow of gases through the gaspath 18 of the engine 10 disclosed herein can be better appreciated by considering that the gases flow through the gaspath 18 in the same direction D as the one along which an aircraft engine travels during flight. Stated differently, in the non-limitative example shown in Fig.
1, gases flow through the engine 10 from a rear end thereof towards the output shaft 16.
used herein refer to the relative disposition of components of the engine 10, in correspondence to the "forward" and "aft" directions of the engine 10 and aircraft including the engine 10 as defined with respect to the direction of travel. In the embodiment shown, a component of the engine 10 that is "forward" of another component is arranged within the engine 10 such that it is located closer to output shaft 16 (e.g. closer to the propeller in a turboprop application). Similarly, a component of the engine 10 that is "aft"
of another component is arranged within the engine 10 such that it is further away from the output shaft 16.
The term "spool" is herein intended to broadly refer to drivingly connected turbine and compressor rotors and is, thus, not limited to a compressor and turbine assembly on a single shaft. As will be seen hereinbelow, it also includes a rotary assembly with multiple shafts geared together.
[0017] The LP spool 20 includes at least one component to compress the air that is part of the compressor section 12, and at least one component to extract energy from the combustion gases that is part of the turbine section 14. More particularly, the LP
spool 20 has an LP turbine 21, also known as a power turbine, which may include different number of stages (three stages in the illustrated embodiment), and which drives an LP compressor 22 (also referred to as a boost). The LP turbine 21 drives the LP compressor 22, thereby causing the LP compressor 22 to pressurize incoming air from the air inlet 11. The LP compressor 22 is disposed just forward of the air inlet 11.
Both the LP turbine 21 and the LP compressor 22 are disposed along the center axis 17. In the depicted embodiment, both the LP turbine 21 and the LP compressor include rotatable components having an axis of rotation that is coaxial with the center axis 17. It is understood that they may include one or more stages depending upon the desired engine thermodynamic cycle.
This arrangement of the LP turbine 21 and the LP compressor 22 provides for a reverse-flow engine 10 that has one or more LP compressor stages located at the rear of the engine 10, and which are driven by one or more low pressure turbine stages located at the front of the engine 10.
The LP turbine 21 is drivingly connected to the LP shaft 23. The LP shaft 23 allows the LP turbine 21 to drive the LP compressor 22 during operation of the engine 10.
As will be discussed in greater details hereinbelow, the LP shaft 23 is drivingly coupled to the LP compressor 22 via a gear train, thereby allowing the LP compressor 22 to run at a different rotational speed from the LP turbine 21. This can provide more flexibility in the selection of design points for the LP compressor 22 while at the same time allowing to drivingly connect an axially mounted accessory gear box (AGB) to the HP spool centrally through the LP compressor 22, thereby minimizing the engine envelope in a direction radial from the engine axis 17 as compared to conventional boosted engine with side-mounted AGBs driven via a tower shaft.
A rotatable load, a propeller (not shown) according to the illustrated example, is connectable to a front end of the output shaft 16. In this way, the LP turbine
[0021] The RGB 31 processes and outputs the rotational drive transferred thereto from the LP turbine 21 via the LP shaft 23 through known gear reduction techniques.
The RGB 31 allows for the load (e.g. the propeller according to the illustrated turboprop example) to be driven at its optimal rotational speed, which is different from the rotational speed of the LP turbine 21. The RGB 31 is axially mounted at the front end of the engine 10. The RGB 31 has an input and an output axis parallel (coaxial in the illustrated embodiment) to the central axis 17 of the engine 10.
31 may be omitted such that the output of the engine 10 is provided directly by the LP
shaft 23.
turbine 21 provides the engine 10 with bidirectional drive. Modularity criteria for gas turbine engines may motivate the use of distinct shaft sections in opposed axial directions from the LP turbine 21. The LP shaft sections may be directly or indirectly connected together. Alternately, as shown in Fig. 1, the LP shaft 23 can be integral with a first portion of the LP shaft extending axially rearwardly from the LP
turbine 21, and a second portion (a power turbine segment) extending between the RGB 31 and the LP
turbine 21 forwardly from the LP turbine 21. Whether the LP shaft 23 is integral or segmented, the LP turbine 21 provides rotational drive outputted at each end of the LP
shaft 23.
shaft 23 is a one piece shaft and extends axially through a central bore of the LP
compressor 22 to a location aft of the LP compressor 22 for connection with an axially mounted boost gear train disposed on an aft facing side of the LP compressor 22, as will discussed in further details hereinbelow. The use of such a one piece LP shaft 23 may allow the shaft to be introduced in the engine at the end of the assembly process in a single operation, thereby simplifying the assembly procedure.
turbine 21.
propeller, RGB
31, etc.) as well as to drive elements to the rear of the LP turbine (e.g. LP
compressor 22). This configuration of the LP turbine 21 allows it to simultaneously drive the rotatable load and the LP compressor 22.
turbine 41 (also referred to as the compressor turbine) drivingly engaged (e.g. directly connected) to an HP compressor 42 by an HP shaft 43 rotating independently of the LP
shaft 23. In the illustrated embodiment, the HP shaft 43 is a hollow shaft which rotates around the LP shaft 23. That is the LP shaft 23 extends axially through the HP shaft 43.
The HP
turbine 41 and the HP compressor 42 may include one or more stages of rotors, depending upon the desired engine thermodynamic cycle, for example. In the depicted embodiment, the HP compressor 42 includes a centrifugal compressor 42a or impeller and an axial compressor 42b, both of which are driven by the HP turbine 41.
During operation of the engine 10, torque is transferred from HP turbine 41 to the HP
compressor 42 via HP shaft 43.
turbine 41 and the HP compressor 42, it can be appreciated that during operation of the engine 10, the LP compressor 22 driven by the LP turbine 21 feeds pressurized air to the HP compressor 42. Therefore, the pressurized air flow produced by the LP
compressor 22 is provided to the HP compressor 42 and contributes to the work of both the LP turbine 21 and the HP turbine 41. This arrangement provides for a boosted reverse flow engine.
and HP spools 20, 40 provides the engine 10 with a "split compressor" arrangement.
More particularly, some of the work required to compress the incoming air is transferred from the HP compressor 42 to the LP compressor 22. In other words, some of the compression work is transferred from the HP turbine 41 to the more efficient LP turbine 21. This transfer of work may contribute to higher pressure ratios while maintaining a relatively small number of rotors. In a particular embodiment, higher pressure ratios allow for higher power density, better engine specific fuel consumption (SFC), and a lower turbine inlet temperature (sometimes referred to as "T4") for a given power.
These factors can contribute to a lower overall weight for the engine 10. The transfer of compression work from the HP compressor 42 to the LP compressor 22 contrasts with some conventional reverse-flow engines, in which the high pressure compressor (and thus the high pressure turbine) perform all of the compression work.
The LP turbine 21 is sometimes referred to as the "power turbine". The turbine rotors of the HP turbine 41 spin at a higher rotational speed than the turbine rotors of the LP
turbine 21 given the closer proximity of the HP turbine 41 to the outlet of the combustor 13. Consequently, the compressor rotors of the HP compressor 42 may rotate at a higher rotational speed than the compressor rotors of the LP compressor 22.
For example, and as shown in Fig. 1, the HP shaft 43 extends concentrically about the LP shaft 23 and is independently rotatable relative thereto. The relative rotation between the HP shaft 43 and the LP shaft 23 allow the shafts 23, 43 to rotate at different rotational speeds, thereby allowing the HP compressor 42 and the LP
compressor 22 to rotate at different rotational speeds. The HP shaft 43 can be mechanically supported by the LP shaft 23 using bearings or the like.
spool 40 and, in turn, drives accessories (e.g. fuel pump, starter-generator, oil pump, scavenge pump, etc.) that contribute to the functionality of the engine 10.
The AGB 50 can be designed with side-facing accessories, top-facing accessories, or rear-facing accessories depending on the installation needs.
mounted on a side of the engine and connected to the HP spool via a tower shaft. In the illustrated embodiment, the AGB 50 is accommodated within the envelope of the engine in a plane normal to the central axis 17.
compressor centerline and, thus, the engine axis 17. By so aligning the input axis of the AGB 50 relative to the LP compressor centerline, the drive input to the AGB 50 can be provided centrally through the LP compressor 22, thereby eliminating the need for a tower shaft and an externally mounted gear arrangement. However, unlike conventional reverse flow engines (like the well-known PT6 engine manufactured by Pratt &
Whitney Canada), which do not include a compressor boost, the presence of the LP
compressor 22 axially between the HP compressor 42 and the AGB 50 physically interferes with the connection of the AGB 50 with the HP spool 40, which is disposed on the opposed axially facing side of the LP compressor 22. In the illustrated embodiment, this particular problem is overcome by extending the HP shaft 43 through a central bore or passage in the LP compressor 22. The HP shaft 43 thus provides a drive input to the AGB 50 coaxial to the engine axis 17. According to the embodiment illustrated in Figs.
1-3, the HP shaft 43 is segmented between the HP compressor 42 and the LP
compressor 22 to allow for the introduction of a bearing 52 mounted to a support 53 to provide support to the LP shaft 23 between the HP compressor 42 and the LP
compressor 22. As best shown in Fig, 3, a gear 54 is provided to drivingly couple the HP compressor shaft segment 43a of the HP shaft 43 to an AGB drive input shaft segment 43b, which may also be viewed as being an extension of the HP shaft 43. The gear 54 may be provided in the form of a bevel gear having a 1:1 speed ratio.
As shown in Fig. 3, the bevel gear may be set to have a rotation axis perpendicular to the rotation axis of the HP shaft segments 43a, 43b. Such a gear arrangement allows for the installation of a support and bearing structure for supporting the LP
shaft 21. Such a support may be suitable when the LP shaft 43 is provided in the form of a one-piece shaft or in order to address specific shaft dynamic requirements.
50 can adopt various configurations, including multiple outputs and different gear ratios.
turbine 21 to the LP compressor 22. As mentioned herein above, the gear connection between the LP turbine 21 and the LP compressor 22 is advantageous in that it allows driving the LP
compressor 22 at a different speed than the LP turbine 21. It can thus allow for overall thermodynamic cycle performance improvement.
50 axially beyond the HP shaft 43 for connection with the gear train 62. The gear train 62 comprises an input gear 60 provided at the distal end portion of the LP
shaft 23, the end portion which projects outwardly of the HP shaft 43. The input gear 60 is in meshing engagement with a second gear 66 mounted at an aft end of a transfer shaft 68 having a rotation axis parallel to the engine axis 17. A third gear 70 is provided at an opposed forward end of the transfer shaft 68 for meshing engagement with a fourth gear 72 provided at the distal end of a LP compressor shaft 74 projecting axially from an aft facing surface of the LP compressor 22. As shown in Figs. 1 and 2, the LP
compressor shaft 74 is a hollow shaft extending concentrically about the HP
shaft 43.
The LP compressor shaft 74 ends at a location forward of the HP shaft 43, to thereby allow the HP shaft 43 to be drivingly connected to gear 58. It can be appreciated that the relative lengths of the shafts 23, 43, 74 projecting into the AGB 50 allows for the various gear connections (the innermost shaft having the deepest AGB
penetration).
shaft 23 and drivingly connected to the same input gear 60. The gears may be identical to the gears described above with respect to Figs. 1 and 2.
gears 56, 58 and the boost gear train 62. Such an integration of the AGB and the boost gear train in a common housing facilitate the access to the gears for adjustment purposes while minimizing part counts. However, it is understood that the boost gear train 62 could be provided as a separate unit on the AGB facing side of the LP
compressor 22 and, thus, axially aft of the LP compressor 22 in a reverse flow engine configuration.
The fact the boost gear train 62 has a drive input coaxial to the engine axis 17 also provides for a compact geared engine arrangement while at the same time contributing to ease the assembly process.
and the boost gear train 62 could be packaged as a stand-alone unit.
compressor
compressor 22 to the HP compressor 42. The adjacent guide vanes 83, 85 are, thus, part of two separate castings. The interface 86 may be provided in the form of axially facing flanges depending radially inwardly from the inner endwall of the separate vane castings. Any suitable fasteners may be used to releasably retain the casing sections together.
[0042] As shown in Fig. 5, the internal cavity 80 could also house a connecting structure (e.g. the spline 90) for drivingly connecting a first LP shaft section 23a to a second LP shaft section 23b axially between the HP compressor 42 and the LP
compressor 22. This would facilitate access different support and coupling structures all at once. Furthermore, as shown in Fig. 5, the bearing 52 may be provided at the spline connection 90.
50 and the gear 54 could be omitted.
spool 40.
Indeed, with this engine architecture, the HP shaft can be axially directly connected to the AGB, the AGB having an input axis coaxial to the engine axis 17. In this way no shaft has to be passed across the gaspath to drivingly connect the HP spool 40 to the AGB 50, thereby avoiding performances losses. The compressor aerodynamics can be improved by eliminating the service strut typically used to pass the tower shaft. The engine weight may be reduced by eliminating the need of an upstream transfer case.
The position of the hardware used to build the gear trains may be designed for an optimal clearance from the LP rotor center. It can also be appreciated that at least some embodiments allow to locate the AGB along the engine centerline aft of the LP
compressor. This may provide installation benefits, reduce cost and weight relative to an externally mounted tower shaft driven AGB.
Claims (26)
a low pressure (LP) spool and a high pressure (HP) spool rotatable independently of one another about an engine axis;
the LP spool comprising an LP turbine, an LP compressor and an LP shaft drivingly connected to the LP turbine, the LP turbine disposed forward of the LP
compressor relative to a direction of travel of the engine;
the HP spool comprising an HP turbine, an HP compressor and an HP shaft drivingly connecting the HP turbine to the HP compressor, the HP compressor disposed forward of the LP compressor and in fluid communication therewith, the HP turbine disposed aft of the LP turbine and in fluid communication therewith;
an accessory gear box (AGB) drivingly connected to the HP spool, the LP
compressor disposed axially between the HP compressor and the AGB, and a gear train drivingly coupling the LP shaft to the LP compressor, the gear train disposed aft of the LP compressor.
shaft extends axially through a central bore of the LP compressor and projects axially aft of the LP compressor.
shaft extends into the AGB.
shaft is a one piece shaft having a power turbine shaft portion extending forwardly of the LP
turbine and a LP compressor shaft portion extending rearwardly from the LP
turbine to a location aft of the LP compressor.
shaft extends centrally through the HP shaft, and wherein the LP shaft is supported by at least one bearing mounted in an internal cavity disposed between the HP
compressor and the LP compressor and radially inwardly of an annular gas path between the HP
compressor and LP compressor.
shaft comprises a first shaft section projecting aft of the HP compressor and a second shaft section projecting axially through the LP compressor into the AGB, and wherein a gear is disposed in the internal cavity to drivingly connect the first shaft section to the second shaft section.
shaft has a first shaft section projecting aft of the HP compressor and a second shaft section projecting axially through the LP compressor into the AGB, and wherein the first and second shaft sections are drivingly connected by a bevel gear housed in the internal cavity, the at least one bearing being disposed between said first and second shaft sections of the HP shaft.
has an input axis coaxial to the engine axis.
shaft extends axially through a central bore of the LP compressor and project axially aft of the LP compressor in driving engagement with the AGB.
compressor and an LP turbine, the HP spool comprising an HP turbine and an HP compressor; an accessory gear box (AGB) drivingly connected to the HP spool, the LP
compressor disposed axially between the HP compressor and the AGB, and a gear train drivingly coupling the LP compressor to the LP turbine, the gear train disposed on an AGB facing side of the LP compressor.
spool comprises an LP shaft extending axially from the LP turbine through a central bore of the LP compressor and in driving engagement with the gear train.
compressor has a hollow compressor shaft portion extending concentrically about the LP
shaft on the AGB facing side of the LP compressor, the hollow compressor shaft portion being drivingly connected to the LP shaft by the gear train.
spool comprises a HP shaft drivingly connected to the HP turbine and extending axially though the central bore of the LP compressor between the LP shaft and the hollow compressor shaft portion of the LP compressor, the HP shaft being drivingly connected to the AGB.
shaft extends into the AGB axially beyond the HP shaft and the hollow compressor shaft portion of the LP compressor.
shaft ends axially between the hollow compressor shaft portion of the LP compressor and the LP
shaft.
shaft comprises first and second shaft sections drivingly coupled by a bevel gear disposed in a cavity between the HP compressor and the LP compressor radially inwardly of a gas path between the HP and LP compressors.
shaft, the at least one bearing supporting the LP shaft.
compressor.
Applications Claiming Priority (20)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201662363949P | 2016-07-19 | 2016-07-19 | |
| US201662363955P | 2016-07-19 | 2016-07-19 | |
| US201662363956P | 2016-07-19 | 2016-07-19 | |
| US201662363947P | 2016-07-19 | 2016-07-19 | |
| US201662363952P | 2016-07-19 | 2016-07-19 | |
| US62/363,956 | 2016-07-19 | ||
| US62/363,947 | 2016-07-19 | ||
| US62/363,949 | 2016-07-19 | ||
| US62/363,952 | 2016-07-19 | ||
| US62/363,955 | 2016-07-19 | ||
| US15/384,959 | 2016-12-20 | ||
| US15/384,959 US10883424B2 (en) | 2016-07-19 | 2016-12-20 | Multi-spool gas turbine engine architecture |
| US15/407,439 US10690061B2 (en) | 2016-07-19 | 2017-01-17 | Gear train architecture for a multi-spool gas turbine engine |
| US15/407,439 | 2017-01-17 | ||
| US15/407,423 | 2017-01-17 | ||
| US15/407,414 | 2017-01-17 | ||
| US15/407,445 | 2017-01-17 | ||
| US15/407,423 US10393027B2 (en) | 2016-07-19 | 2017-01-17 | Gas turbine engine shaft architecture and associated method of disassembly |
| US15/407,445 US10767567B2 (en) | 2016-07-19 | 2017-01-17 | Multi-spool gas turbine engine architecture |
| US15/407,414 US10458340B2 (en) | 2016-07-19 | 2017-01-17 | Turbine shaft power take-off |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| CA2971056A1 true CA2971056A1 (en) | 2018-01-19 |
| CA2971056C CA2971056C (en) | 2026-04-07 |
Family
ID=60989330
Family Applications (4)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA2970389A Pending CA2970389A1 (en) | 2016-07-19 | 2017-06-09 | Gear train architecture for a multi-spool gas turbine engine |
| CA2971056A Active CA2971056C (en) | 2016-07-19 | 2017-06-15 | A multi-spool gas turbine engine architecture |
| CA2971053A Active CA2971053C (en) | 2016-07-19 | 2017-06-15 | Turbine shaft power take-off |
| CA2970978A Pending CA2970978A1 (en) | 2016-07-19 | 2017-06-15 | Gas turbine engine shaft architecture and associated method of disassembly |
Family Applications Before (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA2970389A Pending CA2970389A1 (en) | 2016-07-19 | 2017-06-09 | Gear train architecture for a multi-spool gas turbine engine |
Family Applications After (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA2971053A Active CA2971053C (en) | 2016-07-19 | 2017-06-15 | Turbine shaft power take-off |
| CA2970978A Pending CA2970978A1 (en) | 2016-07-19 | 2017-06-15 | Gas turbine engine shaft architecture and associated method of disassembly |
Country Status (1)
| Country | Link |
|---|---|
| CA (4) | CA2970389A1 (en) |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP3561263A1 (en) * | 2018-04-20 | 2019-10-30 | Pratt & Whitney Canada Corp. | Gear assembly for coaxial shafts in gas turbine engine |
| CN114651120A (en) * | 2019-11-11 | 2022-06-21 | Tns技术公司 | gas turbine engine |
Families Citing this family (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11415063B2 (en) | 2016-09-15 | 2022-08-16 | Pratt & Whitney Canada Corp. | Reverse-flow gas turbine engine |
| US10883424B2 (en) | 2016-07-19 | 2021-01-05 | Pratt & Whitney Canada Corp. | Multi-spool gas turbine engine architecture |
| US10465611B2 (en) | 2016-09-15 | 2019-11-05 | Pratt & Whitney Canada Corp. | Reverse flow multi-spool gas turbine engine with aft-end accessory gearbox drivingly connected to both high pressure spool and low pressure spool |
| US11035293B2 (en) | 2016-09-15 | 2021-06-15 | Pratt & Whitney Canada Corp. | Reverse flow gas turbine engine with offset RGB |
| US10815899B2 (en) | 2016-11-15 | 2020-10-27 | Pratt & Whitney Canada Corp. | Gas turbine engine accessories arrangement |
| US10808624B2 (en) | 2017-02-09 | 2020-10-20 | Pratt & Whitney Canada Corp. | Turbine rotor with low over-speed requirements |
| US10746188B2 (en) | 2017-03-14 | 2020-08-18 | Pratt & Whitney Canada Corp. | Inter-shaft bearing connected to a compressor boost system |
| EP4339440A3 (en) | 2018-08-08 | 2024-05-22 | Pratt & Whitney Canada Corp. | Multi-engine system and method |
-
2017
- 2017-06-09 CA CA2970389A patent/CA2970389A1/en active Pending
- 2017-06-15 CA CA2971056A patent/CA2971056C/en active Active
- 2017-06-15 CA CA2971053A patent/CA2971053C/en active Active
- 2017-06-15 CA CA2970978A patent/CA2970978A1/en active Pending
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP3561263A1 (en) * | 2018-04-20 | 2019-10-30 | Pratt & Whitney Canada Corp. | Gear assembly for coaxial shafts in gas turbine engine |
| US11225912B2 (en) | 2018-04-20 | 2022-01-18 | Pratt & Whitney Canada Corp. | Gear assembly for coaxial shafts in gas turbine engine |
| CN114651120A (en) * | 2019-11-11 | 2022-06-21 | Tns技术公司 | gas turbine engine |
Also Published As
| Publication number | Publication date |
|---|---|
| CA2970389A1 (en) | 2018-01-19 |
| CA2971053C (en) | 2025-09-02 |
| CA2970978A1 (en) | 2018-01-19 |
| CA2971056C (en) | 2026-04-07 |
| CA2970386A1 (en) | 2018-01-19 |
| CA2971053A1 (en) | 2018-01-19 |
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