GAS TURBINE ENGINE STARTER REDUCTION GEAR TRAIN WITH GEARED ROTARY ACTUATOR
20180010523 ยท 2018-01-11
Inventors
- Benjamin T. Harder (DeKalb, IL, US)
- Brian McMasters (Caledonia, IL, US)
- James Vandung Nguyen (Rockford, IL, US)
- Dwayne Leon Wilson (Rockford, IL, US)
- Paul F. Fox (Loves Park, IL, US)
- Richard Alan Davis (Stillman Valley, IL, US)
- Richard R. Hergert (Rockton, IL, US)
- Jeffrey Todd Roberts (Winnebago, IL, US)
- Jeff A. Brown (Cherry Valley, IL, US)
- Daniel Richard Walker (Rockford, IL, US)
- Matthew Allen Slayter (Rockford, IL, US)
- William G. Sheridan (Southington, CT)
Cpc classification
F02C7/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/85
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/275
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/277
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/40311
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D21/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02C7/275
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
According to an aspect, a system for a gas turbine engine includes a reduction gear train operable to drive rotation of a starter gear train that interfaces to an accessory gearbox of the gas turbine engine. The reduction gear train includes a starter interface gear that engages the starter gear train and a core-turning clutch operably connected to the starter interface gear. The reduction gear train also includes a geared rotary actuator including a primary planetary gear system, where the geared rotary actuator is operably connected to the core-turning clutch. The reduction gear train further includes a secondary planetary gear system operably connected to the primary planetary gear system and a core-turning input. The system also includes a mounting pad with an interface to couple a core-turning motor to the core-turning input of the reduction gear train.
Claims
1. A system for a gas turbine engine comprising: a reduction gear train operable to drive rotation of a starter gear train that interfaces to an accessory gearbox of the gas turbine engine, the reduction gear train comprising: a starter interface gear that engages the starter gear train; a core-turning clutch operably connected to the starter interface gear; a geared rotary actuator comprising a primary planetary gear system, the geared rotary actuator operably connected to the core-turning clutch; and a secondary planetary gear system operably connected to the primary planetary gear system and a core-turning input; and a mounting pad comprising an interface to couple a core-turning motor to the core-turning input of the reduction gear train.
2. The system of claim 1, wherein the starter interface gear engages a planet gear of the starter gear train, and the starter gear train is operably connected to the accessory gearbox through a starter clutch.
3. The system of claim 1, wherein the core-turning clutch is an overrunning clutch.
4. The system of claim 1, wherein the geared rotary actuator further comprises a ring gear driven by a carrier system.
5. The system of claim 4, wherein the ring gear is operably connected to a splined shaft that interfaces with the core-turning clutch.
6. The system of claim 4, wherein the primary planetary system comprises a sun gear operably connected to at least one planet gear that is operably connected to the carrier system.
7. The system of claim 6, wherein each of the at least one planet gear is operably connected to an intermediate gear on a respective intermediate shaft, and the intermediate gear is operably connected to the ring gear.
8. An integrated starter and core-turning system for a gas turbine engine, the integrated starter and core-turning system comprising: a starter comprising a starter gear train that interfaces to an accessory gearbox of the gas turbine engine; and a reduction gearbox comprising: a reduction gear train operable to drive rotation of the starter gear train, the reduction gear train comprising: a starter interface gear operably connected to the starter gear train; a core-turning clutch operably connected to the starter interface gear; a geared rotary actuator comprising a primary planetary gear system, where the geared rotary actuator operably connected to the core-turning clutch; and a secondary planetary gear system operably connected to the primary planetary gear system and a core-turning input; and a mounting pad comprising an interface to couple a core-turning motor to the core-turning input of the reduction gear train.
9. The integrated starter and core-turning system of claim 8, wherein the starter interface gear engages a planet gear of the starter gear train, and the starter gear train is operably connected to the accessory gearbox through a starter clutch.
10. The integrated starter and core-turning system of claim 8, wherein the core-turning clutch is an overrunning clutch, the starter comprises a turbine that drives the starter gear train, and the core-turning motor is an electric motor.
11. The integrated starter and core-turning system of claim 8, wherein the geared rotary actuator further comprises a ring gear driven by a carrier system.
12. The integrated starter and core-turning system of claim 11, wherein the ring gear is operably connected to a splined shaft that interfaces with the core-turning clutch.
13. The integrated starter and core-turning system of claim 11, wherein the primary planetary system comprises a sun gear operably connected to at least one planet gear that is operably connected to the carrier system.
14. The integrated starter and core-turning system of claim 13, wherein each of the at least one planet gear is operably connected to an intermediate gear on a respective intermediate shaft, and the intermediate gear is operably connected to the ring gear.
15. The integrated starter and core-turning system of claim 8, wherein the starter and the reduction gearbox are integrally formed within an outer housing.
16. A method of transmitting torque in a system for a gas turbine engine, the method comprising: transmitting torque output of a core-turning motor through a core-turning input of a reduction gear train of the system; transmitting torque at the core-turning input through a secondary planetary gear system and a primary planetary gear system of the reduction gear train, wherein the primary planetary gear system comprises a portion of a geared rotary actuator; transmitting torque from the geared rotary actuator through a starter interface gear operably connected to a core-turning clutch; and transmitting torque from the starter interface gear to drive rotation of a starter gear train that interfaces to an accessory gearbox of the gas turbine engine.
17. The method of claim 16, further comprising: transmitting torque from a starter turbine through the starter gear train to the accessory gearbox.
18. The method of claim 17, further comprising: decoupling, by the core-turning clutch, engagement of the reduction gear train with the starter gear train in response to the torque from the starter turbine.
19. The method of claim 18, wherein the starter interface gear engages a planet gear of the starter gear train, and the starter gear train is operably connected to the accessory gearbox through a starter clutch.
20. The method of claim 16, wherein the geared rotary actuator further comprises a ring gear driven by a carrier system, the ring gear is operably connected to a splined shaft that interfaces with the core-turning clutch, the primary planetary system comprises a sun gear operably connected to at least one planet gear that is operably connected to the carrier system, each of the at least one planet gear is operably connected to an intermediate gear on a respective intermediate shaft, and the intermediate gear is operably connected to the ring gear.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The subject matter is particularly pointed out and distinctly claimed at the conclusion of the specification. The foregoing and other features, and advantages of the present disclosure are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
[0019]
[0020]
[0021]
[0022] The detailed description explains embodiments of the present disclosure, together with advantages and features, by way of example with reference to the drawings.
DETAILED DESCRIPTION
[0023] Referring now to
[0024] The system 100 includes a reduction gearbox 120 and a starter 140 that may be integrally formed within an outer housing 121. The system 100 is operably connected to the engine 54 through an accessory gear box 70 and drive shaft 60 (e.g., a tower shaft), as shown in
[0025] A starter turbine 136 of the starter 140 is configured to initiate a startup process of the engine 54 by getting a rotor shaft 59 of engine core 55 (e.g., a starting spool) of the engine 54 rotating. The rotor shaft 59 operably connects an engine compressor 56 to an engine turbine 58. Thus, once the engine compressor 56 starts spinning, air is pulled into combustion chamber 57 and mixes with fuel for combustion. Once the air and fuel mixture combusts in the combustion chamber 57, a resulting compressed gas flow drives rotation of the engine turbine 58, which rotates the engine turbine 58 and subsequently the engine compressor 56. Although only a single instance of an engine compressor-turbine pair is depicted in the example of
[0026] The starter 140 is further operable to drive rotation of the rotor shaft 59 at a lower speed for a longer duration than typically used for engine starting in a motoring mode of operation (also referred to as dry motoring) to prevent/reduce a bowed rotor condition. The core-turning motor 110 is operable to slowly rotate the rotor shaft 59 at a much slower speed than is typically used for motoring or engine starting, for instance, less than 10 revolutions per minute as compared to greater than 1000 revolutions per minute. The core-turning motor 110 can be used to prevent or slowly reduce a bowed rotor condition. If a bowed rotor condition has developed, for instance, due to a hot engine shutdown and without taking further immediate action, motoring may be performed by the starter 140 to more rapidly reduce a bowed rotor condition but may reduce service life of some starter system components. If a bowed rotor condition has not yet developed, the rotor shaft 59 can be slowly rotated by the core-turning motor 110 while allowing time for substantially even cooling within the engine 54.
[0027] As depicted in the example of
[0028] The starter 140 can be implemented as a pneumatic starter that receives compressed air at starter turbine 130, which is attached to a gear G4 through starter input shaft 136 supported by bearings B4A and B4B. The starter turbine 130 reaction transmits torque through the gear G4 to one or more planet gears G3. In
[0029] To turn the engine core 55 in a bowed rotor prevention mode after engine shutdown, core-turning motor 110 is turned on, which drives one or more planetary gear systems and a series of gears and carriers to reduce rotational speed and multiply the torque output of the core-turning motor 110. Torque can be transmitted through the core-turning clutch 124 and starter interface gear G5 to planet gear G3 of the starter gear train 132 (i.e., G5/G3 gear mesh), and the starter gear train 132 can be used to deliver torque to turn the engine core 55 at a targeted speed.
[0030] As depicted in the example of
[0031] Referring now to
[0032] While the above description has described the flow process of
[0033] Embodiments can be integrated with an existing pneumatic starter, providing dual function for a single gearbox-mounted component. The core-turning clutch and the starter clutch allow normal engine starting and motoring operation and prevent rotation when not required. The various gear trains provide a compact design to allow for optimization of the physical system envelope. The possible gear ratios obtained in embodiments allow a compact motor to be used at typical motor operating speeds, while still meeting the starter output torque requirements for turning an engine core. The number of gear elements and sizing can be adjusted to optimize speed and output torque for a specific engine application. Enabling a motor-driven operating mode allows finer control of the engine rotor speed, and reduces both the speed and loading of the starter gear train, which reduces the operating mode impact on product life.
[0034] While the present disclosure has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the present disclosure is not limited to such disclosed embodiments. Rather, the present disclosure can be modified to incorporate any number of variations, alterations, substitutions, combinations, sub-combinations, or equivalent arrangements not heretofore described, but which are commensurate with the scope of the present disclosure. Additionally, while various embodiments of the present disclosure have been described, it is to be understood that aspects of the present disclosure may include only some of the described embodiments. Accordingly, the present disclosure is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.