IP Library Granted Patent US 8,518,160
Granted Patent B2
US 8,518,160 · App. 12/761,785 · Granted Aug 27, 2013

Turbine inlet heat transfer system

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Quick Facts
Patent No.
US 8,518,160
App. No.
12/761,785
Granted
Aug 27, 2013
Kind
B2
Abstract

A heat transfer system is provided for a filter house. The filter house is configured to channel air into a turbine engine. The heat transfer system includes at least one of an expansion device and a compressor, a circuit coupled to at least one of the expansion device and the compressor, at least one sensor that detects a parameter of at least one of air channeled through a filter house and the fluid channeled through the circuit, and a controller coupled to the at least one sensor. The controller is configured to selectively control flow of fluid through the circuit to change the parameter of air channeled through the filter house based on the parameter detected by the sensor.

Claims (29)

1. A method for regulating air channeled through a filter house, said method comprising:

coupling a heat transfer system to the filter house;

detecting a parameter of at least one of air channeled through the filter house and a fluid channeled through a circuit coupled to at least one of an expansion device and a compressor;

determining fluid flow of the fluid channeled through the circuit based on the parameter, wherein the fluid flow is in at least one of a first direction to heat the fluid and a second direction to cool the fluid; and

controlling flow of fluid through the circuit to change the parameter of air channeled through the filter house.

2. A method in accordance with claim 1 , wherein channeling the fluid further comprises channeling the fluid through the filter house, wherein the heat transfer system is integrated within a component of the filter house.

3. A method in accordance with claim 1 further comprising selectively actuating a valve coupled to the circuit between an open configuration and a closed configuration.

4. A method in accordance with claim 1 , further comprising coupling a plurality of pipes to the circuit, wherein the plurality of pipes are oriented in a parallel configuration.

5. A method in accordance with claim 4 , wherein determining a fluid flow further comprises determining a fluid flow through each of the plurality of pipes.

6. A method in accordance with 5 further comprising selectively controlling the fluid flow through each of the plurality of pipes.

7. A heat transfer system for a filter house, said heat transfer system comprising:

at least one of an expansion device and a compressor;

a circuit coupled to at least one of said expansion device and said compressor;

at least one sensor that detects a parameter of at least one of air channeled through a filter house and the fluid channeled through said circuit; and

a controller coupled to said at least one sensor, said controller configured to selectively control flow of fluid through said circuit to change the parameter of air channeled through the filter house based on the parameter detected by said sensor.

8. A heat transfer system in accordance with claim 7 , wherein said circuit channels the fluid through the filter house, wherein said heat transfer system is integrated within a component of the filter house.

9. A heat transfer system in accordance with claim 7 further comprising at least one valve coupled to said circuit, said at least one valve is selectively actuatable between an open configuration and a closed configuration.

10. A heat transfer system in accordance with claim 7 , wherein said circuit comprises a plurality of pipes oriented in a parallel configuration.

11. A heat transfer system in accordance with claim 10 , wherein said plurality of pipes channel fluid through the filter house.

12. A heat transfer system in accordance with claim 10 , wherein each of said plurality of pipes is coupled to a valve that is configured to selectively control fluid flow through said respective pipe.

13. A turbine engine system comprising:

a turbine engine;

a filter house configured to channel air into said turbine engine; and

a heat transfer system coupled to said filter house, said heat transfer system comprising at least one of an expansion device and a compressor, a circuit coupled to at least one of said expansion device and said compressor, at least one sensor that detects a parameter of at least one of air channeled through a filter house and the fluid channeled through said circuit, and a controller coupled to said at least one sensor, said controller configured to selectively control flow of fluid through said circuit to change the parameter of air channeled through the filter house based on the parameter detected by said sensor.

14. A turbine system in accordance with claim 13 , wherein said circuit channels the fluid through said filter house, wherein said heat transfer system is integrated within a component of said filter house.

15. A turbine system in accordance with claim 13 further comprising at least one valve coupled to said circuit, said at least one valve is selectively actuatable between an open configuration and a closed configuration.

16. A turbine system in accordance with claim 13 , wherein said circuit comprises a plurality of pipes that are oriented in a parallel configuration.

17. A turbine system in accordance with claim 16 , wherein said plurality of pipes channel fluid through said filter house.

18. A turbine system in accordance with claim 16 , wherein each of said plurality of pipes is coupled to a valve that is configured to selectively control fluid flow through said respective pipe.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 3, 2014
From: GENERAL ELECTRIC COMPANY; BHA GROUP, INC.; ALTAIR FILTER TECHNOLOGY LIMITED
To: BHA ALTAIR, LLC
Reel/Frame 031911/0797 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 16, 2010
From: MANN, RICHARD M. A.
To: GENERAL ELECTRIC COMPANY
Reel/Frame 024246/0216 →