IP Library › Granted Patent US 12,735,993
Granted Patent B2
US 12,735,993 · App. 18/883,919 · Granted Sep 15, 2026

System and method for overspeed detection and protection in an engine

Inventors: Brandon W. Miller (Liberty Township, OH); Arthur W. Sibbach (Boxford, MA); Andrew Hudecki (Milford, OH); Patrick S. Sage (West Chester, OH); Eric Barre (Cincinnati, OH); Stefan Joseph Cafaro (Chapel Hill, NC); Gerardo Perez Perez (Queretaro, MX); Kevin Graziano (Liberty Township, OH)
Assignee: General Electric Company
F01D21/02F01D21/003F02C9/50F05D2270/021F05D2270/304
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Quick Facts
Patent No.
US 12,735,993
App. No.
18/883,919
Granted
Sep 15, 2026
Kind
B2
Abstract

An engine includes a gearbox coupled to a first element and a second element. The engine may include a first speed sensor positioned on an input side of the gearbox, the first speed sensor operable to detect a first speed of the first element. The engine may further include a second speed sensor positioned on an output side of the gearbox, the second speed sensor operable to detect a second speed of the second element. The engine includes a controller comprising a processor and a memory coupled to the processor. The processor may be configured to receive data from the first speed sensor and the second speed sensor. The processor is also configured to detect a trigger event based on the data from the first speed sensor and the data from the second speed sensor. Upon detecting the trigger event, the processor communicates a command to an engine operational system.

Claims (53)

1 . A gas turbine engine, comprising:

a gearbox coupled to a first element and a second element;

a first speed sensor positioned on an input side of the gearbox, the first speed sensor operable to detect a first speed of the first element;

a second speed sensor positioned on an output side of the gearbox, the second speed sensor operable to detect a second speed of the second element; and

a control system comprising a processor and a memory coupled to the processor, the processor configured to:

receive data from the first speed sensor; receive data from the second speed sensor;

detect a trigger event based on the data from the first speed sensor and the data from the second speed sensor, the trigger event comprising a divergence between the first speed and the second speed that is indicative of an overspeed condition of the gas turbine engine; and

upon detecting the trigger event, communicate a command to an engine operational system to operate a valve that dumps compressor discharge air pressure or to operate a variable turbine inlet vane to control air flow to a turbine of the gas turbine engine.

2 . The gas turbine engine of claim 1 , wherein the first element is an input shaft of the gearbox or a component coupled thereto, and wherein the second element is an output shaft of the gearbox or a component coupled thereto.

3 . The gas turbine engine of claim 2 , wherein the input shaft is a high-speed shaft, and wherein the output shaft is a low-speed shaft.

4 . The gas turbine engine of claim 1 , wherein the trigger event is at least one of:

exceeding a threshold difference between the first speed and the second speed; or

exceeding a threshold rate of change between the first speed and the second speed.

5 . The gas turbine engine of claim 1 , wherein the command is configured to stop the gas turbine engine.

6 . The gas turbine engine of claim 1 , wherein one or more of the first speed sensor or the second speed sensor comprises a variable reluctance sensor, a surface acoustic wave (SAW) sensor, a blade beta angle sensor, or an electrical machine.

7 . The gas turbine engine of claim 1 , wherein the processor is further configured to:

detect a first trigger event upon the divergence exceeding a first threshold; and

detect a second trigger event upon the divergence exceeding a second threshold, wherein the first trigger event prompts the processor to communicate a command to slow the gas turbine engine, and wherein the second trigger event prompts the processor to communicate a command to stop the gas turbine engine.

8 . A control system for a gas turbine engine, the control system comprising:

a memory; and

a processor coupled to the memory, the processor configured to:

receive data from a first speed sensor operable to detect a first speed of a first element coupled to a gearbox of the gas turbine engine, the first speed sensor positioned on an input side of the gearbox;

receive data from a second speed sensor operable to detect a second speed of a second element coupled to the gearbox, the second speed sensor positioned on an output side of the gearbox;

detect a trigger event based on the data from the first speed sensor and the data from the second speed sensor, the trigger event comprising a divergence between the first speed and the second speed that is indicative of an overspeed condition of the gas turbine engine; and

upon detecting the trigger event, communicate a command to an engine operational system to operate a valve that dumps compressor discharge air pressure or to operate a variable turbine inlet vane to control air flow to a turbine of the gas turbine engine.

9 . The control system of claim 8 , wherein the first element is an input shaft coupled to the gearbox or a component coupled thereto, and wherein the second element is an output shaft of the gearbox or a component coupled thereto.

10 . The control system of claim 9 , wherein the input shaft is a high-speed shaft, and wherein the output shaft is a low-speed shaft.

11 . The control system of claim 8 , wherein the trigger event is at least one of:

exceeding a threshold difference between the first speed and the second speed; or

exceeding a threshold rate of change between the first speed and the second speed.

12 . The control system of claim 8 , wherein the command is configured to stop the gas turbine engine.

13 . A method, comprising:

sensing a first speed of a first element from a first speed sensor positioned on an input side of a gearbox in an engine;

receiving data on a second speed of a second element from a second speed sensor positioned on an output side of the gearbox;

detecting a trigger event based on the first speed and the second speed, the trigger event comprising a divergence between the first speed and the second speed that is indicative of an overspeed condition of the engine; and

upon detecting the trigger event, communicating a command to an engine operational system to operate a valve that dumps compressor discharge air pressure, or to operate a variable turbine inlet vane to control air flow to a turbine of the engine.

14 . The method of claim 13 , wherein the first element is an input shaft of the gearbox or a component coupled thereto, and wherein the second element is an output shaft of the gearbox or a component coupled thereto.

15 . The method of claim 13 , wherein the command is configured to stop the engine.

16 . The method of claim 13 , further comprising:

determining a relationship between the first speed and the second speed; and

detecting the trigger event upon the relationship exceeding a threshold.

17 . The method of claim 13 , further comprising: determining a rate of change of the first speed; determining a rate of change of the second speed;

determining a relationship between the rate of change of the first speed and the rate of change of the second speed; and

detecting the trigger event upon the relationship exceeding a threshold.

18 . The method of claim 13 , further comprising:

determining a relationship between the first speed and the second speed;

determining a rate of change in the relationship; and

detecting the trigger event upon the rate of change in the relationship exceeding a threshold.

19 . The method of claim 13 , further comprising: determining a rate of change of the first speed; determining a rate of change of the second speed;

determining a relationship between the rate of change of the first speed and the rate of change of the second speed;

determining a rate of change of the relationship; and

detecting the trigger event upon the rate of change of the relationship exceeding a threshold.

20 . The method of claim 13 , further comprising determining a known relationship between the first speed and the second speed based on a reduction ratio of the gearbox, wherein detecting the trigger event comprises detecting the trigger event upon the divergence exceeding a threshold based on the known relationship.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2024
From: MILLER, BRANDON W.; SIBBACH, ARTHUR W.; HUDECKI, ANDREW; SAGE, PATRICK S.; BARRE, ERIC; CAFARO, STEFAN JOSEPH; PEREZ PEREZ, GERARDO; GRAZIANO, KEVIN
To: GENERAL ELECTRIC COMPANY
Reel/Frame 068645/0042 →
Continuity (2)
Provisional Application 63541010 · Sep 28, 2023
Related Publication 20250109695A1 · Apr 3, 2025
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