IP Library Granted Patent US 8,288,046
Granted Patent B2
US 8,288,046 · App. 10/953,778 · Granted Oct 16, 2012

Integrated current sensors for a fuel cell stack

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Quick Facts
Patent No.
US 8,288,046
App. No.
10/953,778
Granted
Oct 16, 2012
Kind
B2
Abstract

A current sensor assembly that monitors current flow through segments of a fuel cell stack. The current sensor assembly includes a first plate including a first non-conductive substrate having a first conductive path therethrough and that is in electrical communication with a first segment of the fuel cell stack. A second plate includes a second non-conductive substrate having a second conductive path therethrough and that is in electrical communication with a second segment of the fuel cell stack. A first current sensor is operably disposed between the first plate and the second plate and facilitates a first current flow between the first conductive path and the second conductive path. The first current sensor generates a first current signal based on the first current flow.

Claims (36)

1. A current sensor assembly that monitors current flow through segments of a fuel cell stack, comprising:

a first plate including a first non-conductive substrate having a first plurality of conductive pads each deployed on and defining a distinct segment of a first surface of the first non-conductive substrate and a first flow field formed in a surface of said first non-conductive substrate opposite said first surface, wherein each of the first plurality of conductive pads is in electrical communication with a plurality of conductive paths that are through the first non-conductive substrate;

a second plate including a second non-conductive substrate having a second plurality of conductive pads each deployed on and defining a distinct segment of a second surface of the second non-conductive substrate and a second flow field formed in a surface of said second non-conductive substrate opposite said second surface, wherein each of the second plurality of conductive pads is in electrical communication with a plurality of conductive paths that are through the second non-conductive substrate; and

a sensor unit operably disposed between said first surface of said first plate and said second surface of said second plate, wherein the sensor unit monitors current flow through the distinct segments on the surfaces of the first and second non-conductive substrates to provide a current distribution measurement, said sensor unit including:

a sensor plate including a third non-conductive substrate having a plurality of sensor plate conductive paths therethrough and that each are in electrical communication with one of the first plurality of conductive pads,

a spacer plate including a fourth non-conductive substrate having a plurality of spacer plate conductive paths therethrough and that each are in electrical communication with one of the second plurality of conductive pads, and

a plurality of no-load current sensors each establishes electrical continuity between one of the plurality of sensor plate conductive paths and one of the plurality of spacer plate conductive paths and each generates a current signal based on current flow through said sensor plate conductive path.

2. The current sensor assembly of claim 1 wherein each of said plurality of current sensors is a Hall effect current sensor.

3. The current sensor assembly of claim 1 wherein said plurality of current sensors generate a plurality of current signals independently of one another.

4. The current sensor assembly of claim 1 wherein said spacer plate defines a pocket for providing seat space for each of said plurality of current sensors.

5. A fuel cell stack, comprising:

a first fuel cell having a set of first fuel cell segments defined thereacross;

a second fuel cell having a set of second fuel cell segments defined thereacross; and

a current sensor assembly that monitors current flow through said set of first fuel cell segments and said set of second fuel cell segments to provide a current distribution measurement, said current sensor assembly including:

a first plate having a first non-conductive substrate having a first plurality of conductive pads each deployed on and defining a distinct segment of a first surface of the first non-conductive substrate and a first flow field formed in a surface of said first non-conductive substrate opposite said first surface, wherein each of the first plurality of conductive pads is in electrical communication with a plurality of conductive paths that are through the first non-conductive substrate and each of the first plurality of conductive pads is only in communication with one of the first fuel cell segments and one of the second fuel cell segments;

a second plate having a second non-conductive substrate having a second plurality of conductive pads each deployed on and defining a distinct segment of a second surface of the second non-conductive substrate and a second flow field formed in a surface of said second non-conductive substrate opposite said second surface, wherein each of the second plurality of conductive pads is in electrical communication with a plurality of conductive paths that are through the second non-conductive substrate, wherein each of the second plurality of conductive pads is only in communication with one of the first cell segments and one of the second fuel cell segments;

a sensor unit operably disposed between said first surface of said first plate and said second surface of said second plate including:

a sensor plate including a third non-conductive substrate having a plurality of sensor plate conductive paths therethrough and that each are in electrical communication with only one of the first plurality of conductive pads,

a spacer plate including a fourth non-conductive substrate having a plurality of spacer plate conductive paths therethrough and that each are in electrical communication with only one of the second plurality of conductive pads, and

a plurality of no-load current sensors each establishes a path of electrical continuity between one of the plurality of sensor plate conductive paths and one of the plurality of spacer plate conductive paths and generates a current signal based on a current flow through said sensor plate conductive path.

6. The fuel cell stack of claim 5 wherein each of said plurality of current sensors is a Hall effect current sensor.

7. The fuel cell stack of claim 5 wherein said plurality of current sensors generate a plurality of current signals independently of one another.

8. The current sensor assembly of claim 5 wherein said spacer plate defines a pocket for providing seat space for each of said plurality of current sensors.

9. A fuel cell stack, comprising:

a first fuel cell sub-stack including a plurality of fuel cells connected in electrical series to define a set of first segments;

a second fuel cell sub-stack including a plurality of fuel cells connected in electrical series to define a set of second segments; and

a current sensor assembly that monitors current flow through said set of first segments and said set of second segments, said current sensor assembly including:

a first plate having a first non-conductive substrate having a first plurality of conductive pads each deployed on and defining a distinct segment of a first surface of the first non-conductive substrate and a first flow field formed in a surface of said first non-conductive substrate opposite said first surface, wherein each of the first plurality of conductive pads is in electrical communication with a plurality of conductive paths that are through the first non-conductive substrate and each of the first plurality of conductive pads is only in communication with one of the first segments and one of the second segments;

a second plate having a second non-conductive substrate having a second plurality of conductive pads each deployed on and defining a distinct segment of a second surface of the second non-conductive substrate and a second flow field formed in a surface of said second non-conductive substrate opposite said second surface, wherein each of the second plurality of conductive pads is in electrical communication with a plurality of conductive paths that are through the second non-conductive substrate, wherein each of the second plurality of conductive pads is only in communication with one of the first segments and one of the second segments;

a sensor unit operably disposed between said first surface of said first plate and said second surface of said second plate for monitoring current flow through said set of first segments and said set of second segments to provide a current distribution measurement, said sensor unit including:

a sensor plate including a third non-conductive substrate having a plurality of sensor plate conductive paths therethrough and that each are in electrical communication with only one of the first plurality of conductive pads,

a spacer plate including a fourth non-conductive substrate having a plurality of spacer plate conductive paths therethrough and that each are in electrical communication with only one of the first plurality of conductive pads, and

a plurality of no-load current sensors each operable to establish electrical continuity between one of the plurality of sensor plate conductive paths and one of the plurality of spacer plate conductive paths and to generate a current signal based on a current flow through said sensor plate conductive path.

10. The fuel cell stack of claim 9 wherein each of said plurality current sensors is a Hall effect current sensor.

11. The fuel cell stack of claim 9 wherein said plurality of current sensors generate a plurality of current signals independently of one another.

12. The current sensor assembly of claim 9 wherein said spacer plate defines a pocket for providing seat space for each of said plurality of current sensors.

Assignments (13)
RELEASE OF SECURITY INTEREST Recorded Nov 7, 2014
From: WILMINGTON TRUST COMPANY
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 034371/0676 →
CHANGE OF NAME Recorded Feb 10, 2011
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 025780/0936 →
SECURITY AGREEMENT Recorded Nov 8, 2010
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: WILMINGTON TRUST COMPANY
Reel/Frame 025327/0001 →
RELEASE OF SECURITY INTEREST Recorded Nov 4, 2010
From: UNITED STATES DEPARTMENT OF THE TREASURY
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 025245/0442 →
RELEASE OF SECURITY INTEREST Recorded Nov 4, 2010
From: UAW RETIREE MEDICAL BENEFITS TRUST
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 025311/0770 →
SECURITY AGREEMENT Recorded Aug 28, 2009
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: UAW RETIREE MEDICAL BENEFITS TRUST
Reel/Frame 023162/0001 →
SECURITY AGREEMENT Recorded Aug 27, 2009
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: UNITED STATES DEPARTMENT OF THE TREASURY
Reel/Frame 023156/0052 →
RELEASE OF SECURITY INTEREST Recorded Aug 21, 2009
From: CITICORP USA, INC. AS AGENT FOR BANK PRIORITY SECURED PARTIES; CITICORP USA, INC. AS AGENT FOR HEDGE PRIORITY SECURED PARTIES
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 023127/0468 →
RELEASE OF SECURITY INTEREST Recorded Aug 20, 2009
From: UNITED STATES DEPARTMENT OF THE TREASURY
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 023124/0429 →
SECURITY AGREEMENT Recorded Apr 16, 2009
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: CITICORP USA, INC. AS AGENT FOR BANK PRIORITY SECURED PARTIES; CITICORP USA, INC. AS AGENT FOR HEDGE PRIORITY SECURED PARTIES
Reel/Frame 022553/0446 →
SECURITY AGREEMENT Recorded Feb 4, 2009
From: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
To: UNITED STATES DEPARTMENT OF THE TREASURY
Reel/Frame 022201/0610 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 13, 2009
From: GENERAL MOTORS CORPORATION
To: GM GLOBAL TECHNOLOGY OPERATIONS, INC.
Reel/Frame 022092/0737 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 29, 2004
From: MURPHY, MICHAEL W.; FUSS, ROBERT L.
To: GENERAL MOTORS CORPORATION
Reel/Frame 015850/0067 →