IP Library › Granted Patent US 12,388,321
Granted Patent B2
US 12,388,321 · App. 17/488,696 · Granted Aug 12, 2025

Gas turbine engine equipped with a control system for management of rotor modes using an electric machine

Inventors: Richard Schmidt (Loveland, OH); Darek Tomasz Zatorski (Fort Wright, KY); Rangasai Madoor Comandore (Bangalore, IN); Mohamed Osama (Garching, DE)
Assignees: GENERAL ELECTRIC COMPANY; GENERAL ELECTRIC DEUTSCHLAND HOLDING GMBH
H02K7/1823F01D15/10H02P9/008B64D27/026F05D2220/76F05D2270/053H02P2101/30
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Quick Facts
Patent No.
US 12,388,321
App. No.
17/488,696
Granted
Aug 12, 2025
Kind
B2
Abstract

A turbomachine is provided. In one aspect, the turbomachine includes a rotating component and an electric machine that includes a stator assembly and a rotor assembly rotatable with the rotating component relative to the stator assembly. Further, the turbomachine includes an actuator coupled with the rotor assembly, the stator assembly, or both for moving the rotor assembly, the stator assembly, or both relative to one another. In addition, the turbomachine includes a controller configured to receive data indicating an operating state of the rotating component and cause the actuator to adjust a position of at least one of the stator assembly and the rotor assembly based at least in part on the operating state of the rotating component.

Claims (52)

1. A turbomachine, comprising:

a rotating component rotatable about an axis of rotation;

an electric machine, comprising:

a stator assembly;

a rotor assembly rotatable with the rotating component relative to the stator assembly;

an actuator operatively coupled with at least one of the rotor assembly and the stator assembly for moving the rotor assembly, the stator assembly, or both relative to one another; and

a controller communicatively coupled with the actuator, the controller being configured to:

receive data indicating an operating state of the rotating component; and

cause the actuator to adjust a position of at least one of the stator assembly and the rotor assembly based at least in part on the operating state of the rotating component;

wherein the controller is further configured to:

determine whether a parameter value received as part of the data has passed a threshold, and

wherein when the parameter value has passed the threshold, the controller is configured to cause the actuator to adjust the position of the at least one of the stator assembly and the rotor assembly to control a vibration response of the rotating component to which the electric machine is coupled and to change a stiffness of the electric machine, and

wherein in causing the actuator to adjust the position of the at least one of the stator assembly and the rotor assembly, the position of the at least one of the stator assembly and the rotor assembly is moved such that an air gap defined between the rotor assembly and the stator assembly is changed and the stiffness of the electric machine is changed.

2. The turbomachine of claim 1 , wherein the air gap is tapered, and wherein in causing the stiffness of the electric machine to be changed, a modal response of the rotor assembly is controlled.

3. The turbomachine of claim 1 , wherein the operating state of the rotating component is indicated by a speed of the rotating component, and wherein when the air gap defined between the rotor assembly and the stator assembly is decreased, a stiffness magnitude applied on the rotor assembly by the electric machine is increased.

4. The turbomachine of claim 1 , wherein when the parameter value has passed the threshold, the controller is configured to cause the actuator to adjust the position of the at least one of the stator assembly and the rotor assembly such that the stator assembly and the rotor assembly are positioned closer to one another.

5. The turbomachine of claim 1 , wherein when the parameter value has passed the threshold, the controller is configured to cause the actuator to adjust the position of the at least one of the stator assembly and the rotor assembly such that the stator assembly and the rotor assembly are positioned further away from one another.

6. The turbomachine of claim 1 , wherein the rotor assembly and the stator assembly together define the air gap, and wherein the air gap defines an angle relative to a centerline defined by the electric machine that is greater than zero degrees and less than 90 degrees.

7. The turbomachine of claim 6 , wherein the angle defined by the air gap relative to the centerline is greater than 10 degrees and less than 45 degrees.

8. The turbomachine of claim 1 , wherein the controller causes the actuator to adjust the position of the rotor assembly relative to the stator assembly.

9. The turbomachine of claim 1 , wherein the controller causes the actuator to adjust the position of the stator assembly relative to the rotor assembly.

10. The turbomachine of claim 1 , wherein the turbomachine is a core engine of an aviation gas turbine engine and the rotating component is one of a high pressure rotor and a low pressure rotor of the core engine.

11. The turbomachine of claim 1 , wherein the controller is further configured to:

generate a control command that indicates instructions for the actuator to adjust the position of the at least one of the stator assembly and the rotor assembly based at least in part on the operating state of the rotating component, and

wherein the position of the at least one of the stator assembly and the rotor assembly is adjusted based at least in part on the control command.

12. The turbomachine of claim 11 , wherein the controller is further configured to:

receive feedback data indicating a current position of the actuator, and

wherein the control command is generated based at least in part on the feedback data.

13. The turbomachine of claim 11 , wherein the controller is further configured to:

receive an electrical power demand that indicates electrical power demanded by one or more electrical loads electrically coupled with the electric machine, and

wherein the control command is generated based at least in part on the electrical power demand.

14. The turbomachine of claim 13 , wherein the controller is further configured to:

determine whether the electrical power demand passes a demand threshold, and

wherein when the electrical power demand passes the demand threshold, the controller causes the actuator to adjust the position of the at least one of the stator assembly and the rotor assembly so that the air gap between the rotor assembly and the stator assembly is decreased.

15. A method of operating a turbomachine, the method comprising:

receiving data indicating an operating state of a rotating component of the turbomachine, the turbomachine including an electric machine having a stator assembly and a rotor assembly, the rotor assembly being rotatable and operatively coupled with the rotating component;

moving a position of at least one of the stator assembly and the rotor assembly based at least in part on the operating state of the rotating component so that an air gap defined between the rotor assembly and the stator assembly is changed and a stiffness of the electric machine is changed; and

determining whether a parameter value received as part of the data has passed a threshold, and wherein when the parameter value has passed the threshold, adjusting the position of the at least one of the stator assembly and the rotor assembly to control a vibration response of the rotating component to which the electric machine is coupled and to change the stiffness of the electric machine.

16. The method of claim 15 , further comprising:

receiving feedback data indicating a current position of an actuator operatively coupled with the at least one of the stator assembly and the rotor assembly;

receiving an electrical power demand that indicates electrical power demanded by one or more electrical loads electrically coupled with the electric machine; and

generating a control command that indicates instructions for the actuator to move the position of the at least one of the stator assembly and the rotor assembly based on the operating state of the rotating component, the current position of the actuator, and the electrical power demand, and

wherein the position of the at least one of the stator assembly and the rotor assembly is moved based at least in part on the control command,

wherein in causing the stiffness of the electric machine to be changed, a modal response of the rotor assembly is controlled, and

wherein when the air gap defined between the rotor assembly and the stator assembly is decreased, a stiffness magnitude applied on the rotor assembly by the electric machine is increased.

17. The method of claim 15 , wherein the moving comprises moving the position of the rotor assembly relative to the stator assembly.

18. The method of claim 15 , wherein the moving comprises moving the position of the stator assembly relative to the rotor assembly.

19. A non-transitory computer readable medium comprising computer-executable instructions, which, when executed by one or more processors of a controller, cause the one or more processors to:

receive data indicating an operating state of a rotating component of a turbomachine, the turbomachine including an electric machine having a stator assembly and a rotor assembly, the rotor assembly being rotatable and operatively coupled with the rotating component;

generate a control command for an actuator to adjust a position of at least one of the stator assembly and the rotor assembly based at least in part on the operating state of the rotating component;

cause the actuator to adjust the position of the at least one of the stator assembly and the rotor assembly based at least in part on the control command; and

determine whether a parameter value received as part of the data has passed a threshold, and wherein when the parameter value has passed the threshold, cause the actuator to adjust the position of the at least one of the stator assembly and the rotor assembly to control a vibration response of the rotating component to which the electric machine is coupled and to change a stiffness of the electric machine.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 29, 2021
From: SCHMIDT, RICHARD; ZATORSKI, DAREK TOMASZ; COMANDORE, RANGASAI MADOOR
To: GENERAL ELECTRIC COMPANY
Reel/Frame 057639/0395 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 29, 2021
From: OSAMA, MOHAMED
To: GENERAL ELECTRIC DEUTSCHLAND HOLDING GMBH
Reel/Frame 057639/0433 →
Priority Claims (1)
IN 202111013074 · Mar 25, 2021 · national
Continuity (1)
Related Publication 20230291278A1 · Sep 14, 2023
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