IP Library › Granted Patent US 10,443,499
Granted Patent B2
US 10,443,499 · App. 14/706,062 · Granted Oct 15, 2019

Enhanced heat sink availability on gas turbine engines through the use of coolers

Inventor: Douglas J. Snyder (Carmel, IN)
Assignee: Rolls Royce North American Technologies, Inc.
F02C7/16F01D25/12F02C7/12F02C7/14F02C7/224F02K3/115H01L35/30H05K7/20163F05D2260/213Y02T50/676
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Quick Facts
Patent No.
US 10,443,499
App. No.
14/706,062
Granted
Oct 15, 2019
Kind
B2
Abstract

A cooling assembly for a gas turbine engine including a heat source at a first temperature, a heat sink at a second temperature, and a heat pump coupled to the first heat source and the first heat sink. The heat pump is configured to convey a quantity of heat from the heat source through the heat pump and to the heat sink.

Claims (36)

1. A cooling assembly for a gas turbine engine comprising:

a heat source at a first temperature;

a solid heat sink at a second temperature;

a heat pump coupled to the heat source and the solid heat sink, wherein the heat pump is configured to convey a quantity of heat from the heat source through the heat pump and to the solid heat sink;

a thermoelectric generator electrically coupled to the heat pump, wherein the thermoelectric generator is configured to power the heat pump;

wherein the thermoelectric generator is configured to have a first side coupled with a first fluid stream that is an air stream and a second side coupled with a second fluid stream that is a warm fuel stream, and wherein a temperature difference between the first fluid stream and the second fluid stream enables the thermoelectric generator to power the heat pump;

wherein one of the heat source and the solid heat sink is directly mounted to one of a fan case and an inner fan casing of the gas turbine engine; and

wherein the thermoelectric generator is mounted to an inner surface of the inner fan casing, a surface cooler heat exchanger is coupled to the thermoelectric generator and mounted to an outer surface of the inner fan casing, and the first fluid stream is a bypass air stream passing over the inner fan casing through or past the surface cooler heat exchanger such that heat is conveyed to the first fluid stream.

2. The cooling assembly of claim 1 , wherein the solid heat sink is configured to allow a fuel to pass therethrough, and wherein the second temperature is greater than the first temperature.

3. The cooling assembly of claim 1 , wherein the heat source is one of a full authority digital engine control (FADEC) and a heat exchanger having a material passing therethrough.

4. The cooling assembly of claim 3 , wherein the material is a heat transfer fluid.

5. The cooling assembly of claim 1 , wherein the heat pump is one of a thermionic cooler and a thermoelectric cooler.

6. A heat transfer system for a gas turbine engine comprising:

a surface cooler heat exchanger;

a generator;

a heat exchanger heat source coupled to the generator, wherein the heat exchanger heat source is configured to remove heat from a warm fuel stream passing therethrough, and wherein the generator is configured to cause a quantity of heat to pass from the heat exchanger heat source through the generator and to the surface cooler heat exchanger, and wherein a temperature difference between the heat exchanger heat source and the surface cooler heat exchanger enables the generator to generate electricity;

wherein the generator is mounted to an inner surface of an inner fan casing of the gas turbine engine, and the surface cooler heat exchanger is mounted to an outer surface of the inner fan casing such that heat conveys from the surface cooler heat exchanger to a bypass air stream passing over the inner fan casing through or past the surface cooler heat exchanger;

a heat sink mounted on one of a fan case or the inner fan casing of the gas turbine engine;

a heat pump coupled to the heat sink, the heat pump being powered by the generator; and

a full authority digital engine control (FADEC) in contact with the heat pump, wherein the heat pump is configured to convey a quantity of heat from the FADEC to the heat sink.

7. The heat transfer system for a gas turbine engine of claim 6 , wherein the heat sink is a cold plate with a fluid.

8. The heat transfer system of claim 6 , wherein the heat pump is one of a thermionic chip or a thermoelectric cooler.

9. A method of conveying heat in a gas turbine engine comprising:

coupling a heat pump on a first side thereof to an inner surface of an inner fan casing of the gas turbine engine;

coupling a second side of the heat pump to a heat source, wherein the first side of the heat pump is opposite the second side of the heat pump;

mounting a heat sink to an outer surface of the inner fan casing of the gas turbine engine;

electrically coupling a thermoelectric generator to the heat pump to power the heat pump;

mounting the thermoelectric generator to the inner surface of the inner fan casing;

coupling a surface cooler heat exchanger to the thermoelectric generator, and mounting the surface cooler heat exchanger to the outer surface of the inner fan casing, such a first side of the thermoelectric generator is thermally coupled to a bypass air stream passing over the inner fan casing through or past the surface cooler heat exchanger;

coupling a second side of the thermoelectric generator to a warm fuel stream, such that heat is conveyed through the thermoelectric generator from the warm fuel stream to the bypass air stream;

generating power with the thermoelectric generator by using a temperature difference between the bypass air stream and the warm fuel stream;

powering the heat pump using the thermoelectric generator so that the heat pump causes a quantity of heat to pass from the heat source to the heat sink; and

conveying heat from the heat sink to the bypass air stream passing over the inner fan casing through or past the heat sink.

10. The method of claim 9 , wherein the heat source is at a temperature different than the heat sink.

11. The method of claim 9 , wherein the heat source is a heat exchanger.

12. The method of claim 11 , further comprising passing a fluid through the heat exchanger.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 23, 2019
From: SNYDER, DOUGLAS J.
To: ROLLS-ROYCE NORTH AMERICAN TECHNOLOGIES, INC.
Reel/Frame 049832/0400 →
Continuity (2)
Provisional Application 61990223 · May 8, 2014
Related Publication 20160215696A1 · Jul 28, 2016
Cited By (2)
US 12,535,036 US 12,559,228