IP Library Granted Patent US 8,783,278
Granted Patent B2
US 8,783,278 · App. 13/693,410 · Granted Jul 22, 2014

Back pressure valve with inductively heated flap

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Quick Facts
Patent No.
US 8,783,278
App. No.
13/693,410
Granted
Jul 22, 2014
Kind
B2
Abstract

A back pressure valve for a fuel cell stack assembly is disclosed, wherein the valve includes a solenoid disposed thereon, an energization of the solenoid causing a generation of heat in a valve flap to facilitate a melting of ice that has formed in the valve.

Claims (21)

1. A method for heating a valve flap comprising the steps of:

providing a valve including a housing and a plastic valve flap adapted to selectively permit and militate against a flow of fluid through the housing, a portion of the valve flap formed from metal, wherein the portion of the valve flap formed from metal is a metal ring surrounding the valve flap along an outer edge thereof, and wherein the housing includes a solenoid disposed thereon, the solenoid in communication with a source of electrical power; and

energizing the solenoid to result in a generation of heat in the portion of the valve flap formed from metal, wherein the heat is generated by an induction of an alternating current in the portion of the valve flap formed from metal.

2. The method for heating a valve flap according to claim 1 , wherein the portion of the valve flap formed from metal is formed from a ferromagnetic material.

3. The method for heating a valve flap according to claim 2 , wherein the heat is generated by an alternating magnetization of the ferromagnetic material.

4. The method for heating a valve flap according to claim 1 , wherein the step of energizing the solenoid is commenced upon at least one of a starting of a fuel cell system and a temperature within the fuel cell system reaching a predetermined level.

5. The method for heating a valve flap according to claim 1 , wherein the solenoid is formed integrally with the housing.

6. A method for heating a valve flap comprising the steps of:

providing a valve in a cathode exhaust conduit, the valve including a housing and a valve flap adapted to selectively permit and militate against a flow of fluid through the housing, a portion of the valve flap formed from metal, wherein the portion of the valve flap formed from metal is a metal ring surrounding the valve flap along an outer edge thereof, wherein the housing includes a solenoid disposed thereon, the solenoid in communication with a source of electrical power; and

energizing the solenoid to result in a generation of heat in the portion of the valve flap formed from metal, wherein the heat is generated by an induction of an alternating current in the portion of the valve flap formed from metal.

7. The method for heating a valve flap according to claim 6 , wherein the portion of the valve flap formed from metal is formed from a ferromagnetic material.

8. The method for heating a valve flap according to claim 7 , wherein the heat is generated by an alternating magnetization of the ferromagnetic material.

9. The method for heating a valve flap according to claim 6 , wherein the step of energizing the solenoid is commenced upon at least one of a starting of a fuel cell system and a temperature within the fuel cell system reaching a predetermined level.

10. The method for heating a valve flap according to claim 6 , wherein the solenoid is formed integrally with the housing.

11. A method for heating a valve flap comprising the steps of:

providing a valve in a cathode exhaust conduit, the valve including a housing and a plastic valve flap adapted to selectively permit and militate against a flow of fluid through the housing, a portion of the valve flap formed from metal, wherein the portion of the valve flap formed from metal is a metal ring surrounding the valve flap along an outer edge thereof, and wherein the housing includes a solenoid disposed thereon, the solenoid in communication with a source of electrical power; and

energizing the solenoid to result in a generation of heat in the portion of the valve flap formed from metal, wherein the heat is generated by an induction of an alternating current in the portion of the valve flap formed from metal.

12. The method for heating a valve flap according to claim 11 , wherein the portion of the valve flap formed from metal is formed from a ferromagnetic material.

13. The method for heating a valve flap according to claim 12 , wherein the heat is generated by an alternating magnetization of the ferromagnetic material.

14. The method for heating a valve flap according to claim 11 , wherein the step of energizing the solenoid is commenced upon at least one of a starting of a fuel cell system and a temperature within the fuel cell system reaching a predetermined level.

15. The method for heating a valve flap according to claim 11 , wherein the solenoid is formed integrally with the housing.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Nov 7, 2014
From: WILMINGTON TRUST COMPANY
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 034287/0601 →
SECURITY AGREEMENT Recorded Jun 26, 2013
From: GM GLOBAL TECHNOLOGY OPERATIONS LLC
To: WILMINGTON TRUST COMPANY
Reel/Frame 030694/0591 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 31, 2013
From: HILD, THOMAS; KOENEKAMP, ANDREAS
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 029731/0414 →