IP Library Granted Patent US 12,270,713
Granted Patent B2
US 12,270,713 · App. 18/454,160 · Granted Apr 8, 2025

Heat exchanger differential oil temperature determination

Inventors: Kashif Mohammed (Brossard, CA); Robin Watt (Burlington, CA)
Assignee: PRATT & WHITNEY CANADA CORP.
G01K3/14F02C3/04F02C7/12G01K5/52F05D2260/20
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Quick Facts
Patent No.
US 12,270,713
App. No.
18/454,160
Granted
Apr 8, 2025
Kind
B2
Abstract

A gas turbine engine includes a compressor section and a turbine section. A heat exchanger is operable to cool a fluid utilized by a component of the gas turbine engine. The heat exchanger has an inlet and an outlet for the accessory fluid. A strain gauge is associated with the fluid inlet and operable to produce a signal indicative of a temperature of the fluid at the fluid inlet and a strain gauge is associated with the fluid outlet and operable to produce a signal indicative of a temperature of the fluid at the fluid outlet. A controller determines a temperature differential across the heat exchanger by utilizing the signal from the strain gauge at the fluid inlet and the signal from the strain gauge at the fluid outlet. A method and a heat exchanger are also disclosed.

Claims (29)

1. A gas turbine engine comprising:

a compressor section and a turbine section;

a heat exchanger operable to cool a fluid utilized by a component of the gas turbine engine, the heat exchanger having a fluid inlet and a fluid outlet;

a strain gauge associated with the fluid inlet and operable to produce a signal indicative of a temperature of the fluid at the fluid inlet and a strain gauge associated with the fluid outlet and operable to produce a signal indicative of a temperature of the fluid at the fluid outlet, and a controller for determining a temperature differential across the heat exchanger by utilizing the signal from the strain gauge at the fluid inlet and the signal from the strain gauge at the fluid outlet; and

wherein each of the strain gauges at the fluid inlet and the fluid outlet include a conductor member mounted on a substrate and a voltage applied across the conductor member, such that as the substrate expands and contracts the conductor member is deformed and a voltage change can be determined and a difference between a voltage change at the strain gauge associated with the fluid inlet compared to a voltage change at the strain gauge associated with the fluid outlet can be utilized to determine the temperature differential.

2. The gas turbine engine as set forth in claim 1 , wherein an accessory fluid for a component on the gas turbine engine is passed through the heat exchanger to be cooled by a cooling fluid.

3. The gas turbine engine as set forth in claim 2 , wherein the accessory fluid is oil and the cooling fluid is air.

4. The gas turbine engine as set forth in claim 1 , wherein the controller storing the temperature differential, the controller further being programmed to determine if the temperature differential is trending in a manner indicating a need for maintenance.

5. The gas turbine engine as set forth in claim 4 , wherein if the temperature differential is trending low an indication that the heat exchanger needs maintenance is made.

6. The gas turbine engine as set forth in claim 1 , wherein if the signal from the strain gauge associated with the fluid outlet indicates a higher temperature than the signal from the strain gauge associated with the fluid inlet, a determination may be made that there may be a fire associated with the gas turbine engine.

7. The gas turbine engine as set forth in claim 1 , wherein the temperature differential is utilized with other variables to determine an actual oil temperature.

8. A method of operating a gas turbine engine comprising:

moving an accessory fluid to a component in a gas turbine engine;

fluidly downstream of the component, passing the accessory fluid through a heat exchanger via a fluid inlet of the heat exchanger and out of a fluid outlet of the heat exchanger;

sensing a strain of the heat exchanger at the fluid inlet and sensing a strain of the heat exchanger at the fluid outlet;

determining a temperature differential across the heat exchanger based on the strains at the fluid inlet and the fluid outlet; and

utilizing the determined temperature differential for a diagnostic purpose; and

wherein the strain at each of the fluid inlet and fluid outlet is determined with a conductor member mounted on a substrate and a voltage applied across the conductor member, such that as the substrate expands and contracts the conductor member is deformed and a voltage change can be determined and a difference between a voltage change at the strain gauge at the inlet compared to a voltage change at the strain gauge at the outlet can be utilized to determine the temperature differential.

9. The method as set forth in claim 8 , wherein the accessory fluid is oil having lubricated the component.

10. The method as set forth in claim 9 , wherein air is passed over the heat exchanger to cool the oil.

11. The method as set forth in claim 8 , wherein the diagnostic purpose is determining if the temperature differential is trending in a manner indicating a need for maintenance.

12. The method as set forth in claim 11 , wherein if the temperature differential is trending low an indication that the heat exchanger needs maintenance is made.

13. The method as set forth in claim 8 , wherein if the strain of the heat exchanger at the fluid outlet indicates a higher temperature than the strain of the heat exchanger at the fluid inlet, the diagnostic purpose is a determining that there may be a fire associated with the gas turbine engine.

14. The method as set forth in claim 8 , wherein the diagnosis purpose is to determine an actual oil temperature.

15. A heat exchanger comprising:

a heat exchanger operable to cool a fluid and the heat exchanger having an inlet and an outlet for the fluid; and

a strain gauge associated with the fluid inlet and operable to produce a signal indicative of a temperature at the fluid inlet and a strain gauge associated with the fluid outlet and operable to produce a signal indicative of a temperature at the fluid outlet, and a controller for determining a temperature differential across the heat exchanger by utilizing the signals from the fluid inlet and fluid outlet; and

wherein each of the strain gauges at the fluid inlet and the fluid outlet include a conductor member mounted on a substrate and a voltage applied across the conductor member, such that as the substrate expands and contracts the conductor member is deformed and a voltage change can be determined and a difference between a voltage change at the strain gauge associated with the fluid outlet compared to a voltage change at the strain gauge associated with the fluid inlet can be utilized to determine the temperature differential.

16. The heat exchanger as set forth in claim 15 , wherein the controller storing the temperature differential, the controller further being programmed to determine if the temperature differential is trending in a manner indicating a need for maintenance.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 23, 2023
From: MOHAMMED, KASHIF; WATT, ROBIN
To: PRATT & WHITNEY CANADA CORP.
Reel/Frame 064676/0432 →
Continuity (1)
Related Publication 20250067602A1 · Feb 27, 2025
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