IP Library Granted Patent US 10,476,085
Granted Patent B2
US 10,476,085 · App. 15/562,141 · Granted Nov 12, 2019

Separator for fuel cells and method for producing same

Inventors: Satoshi Oyama (Wako, JP); Go Morimoto (Wako, JP); Satoru Terada (Wako, JP); Shuhei Goto (Wako, JP); Akihito Giga (Wako, JP); Takahiro Hayashi (Fujisawa, JP); Takeshi Masaka (Kakegawa, JP); Satomi Yogo (Fujisawa, JP); Shotaro Koga (Kakegawa, JP)
Assignees: Honda Motor Co., Ltd.; NOK Corporation
H01M8/0221H01M8/0202H01M8/0206H01M8/0271H01M8/0273H01M8/0276H01M8/0286H01M8/04201H01M8/1018H01M8/0267H01M8/0284H01M8/10H01M2008/1095H01M2250/20Y02T90/32
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Quick Facts
Patent No.
US 10,476,085
App. No.
15/562,141
Granted
Nov 12, 2019
Kind
B2
Abstract

A unit cell that constitutes a fuel cell stack is obtained by sandwiching an electrolyte mem-brane/electrode structure with a cathode-side separator and an anode-side separator. A first resin member is provided along the entire periphery of the cathode-side separator in the outer peripheral portion of the cathode-side separator. Surfaces of the cathode-side separator are provided with sealing parts that cover a part of the first resin member and constitute a first sealing member.

Claims (33)

1. A fuel cell separator, sandwiching a membrane electrode assembly including electrodes and an electrolyte membrane interposed between the electrodes, an outer end of the fuel cell separator being formed integrally with a seal member formed of an elastic material, and a fluid passage being formed in a surface of the fuel cell separator for allowing at least a fuel gas, an oxygen-containing gas, or a coolant as fluid to flow in a stacking direction in which the fuel cell separator and the membrane electrode assembly are stacked together,

wherein a resin member is provided at an outer end of the fuel cell separator, outside the fluid passage, and over an entire perimeter of the fuel cell separator;

wherein the seal member covering part of the resin member is provided on both surfaces of the fuel cell separator;

wherein the seal member includes a ridge seal protruding farther than the resin member in a thickness direction of the fuel cell separator;

wherein the seal member is arranged on an inner side of the resin member;

wherein the fuel cell separator includes a gas flow field facing an electrode of the electrodes to allow the fluid to flow along the electrode;

wherein the ridge seal is disposed between the gas flow field and the inner side of the resin member and separates the inner side of the resin member from the gas flow field; and

wherein the resin member is positioned outside the outer end of the fuel cell separator, and the resin member includes a protrusion which protrudes in both sides in a thickness direction of the separator and is positioned outside the outer end of the fuel cell separator in the direction along which the surface of the fuel cell separator extends.

2. The fuel cell separator according to claim 1 , wherein the resin member includes an overlapping portion overlapped with the outer end of the seal member in the stacking direction.

3. The fuel cell separator according to claim 1 , wherein an outer edge of the fuel cell separator is positioned inside the protrusion in the direction along which the surface of the fuel cell separator extends.

4. A fuel cell separator, sandwiching a membrane electrode assembly including electrodes and an electrolyte membrane interposed between the electrodes, an outer end of the fuel cell separator being formed integrally with a seal member formed of an elastic material, and a fluid passage being formed in a surface of the fuel cell separator for allowing at least a fuel gas, an oxygen-containing gas, or a coolant as fluid to flow in a stacking direction in which the fuel cell separator and the membrane electrode assembly are stacked together,

wherein a resin member is provided at an outer end of the fuel cell separator, outside the fluid passage, and over an entire perimeter of the fuel cell separator;

wherein the seal member covering part of the resin member is provided on both surfaces of the fuel cell separator;

wherein the seal member includes a ridge seal protruding farther than the resin member in a thickness direction of the fuel cell separator;

wherein the seal member is arranged on an inner side of the resin member;

wherein the fuel cell separator includes a gas flow field facing an electrode of the electrodes to allow the fluid to flow along the electrode;

wherein the ridge seal is disposed between the gas flow field and the inner side of the resin member and separates the inner side of the resin member from the gas flow field;

wherein resin flow sections for forming the resin member are provided at a plurality of positions of the resin member; and

an expansion protruding outward in a direction parallel to a surface of the separator is provided between the adjacent resin flow sections.

5. A method of producing a fuel cell separator, sandwiching a membrane electrode assembly including electrodes and an electrolyte membrane interposed between the electrodes, an outer end of the fuel cell separator being formed integrally with a seal member formed of an elastic material, and a fluid passage being formed in a surface of the fuel cell separator for allowing at least a fuel gas, an oxygen-containing gas, or a coolant as fluid to flow in a stacking direction in which the fuel cell separator and the membrane electrode assembly are stacked together,

the method comprising the steps of:

providing a resin member at an outer end of the fuel cell separator, outside the fluid passage, and over an entire perimeter of the fuel cell separator; and

supplying a melted seal member in a state where the resin member is held between a pair of molds to form the seal member covering part of the resin member on both surfaces of the fuel cell separator,

wherein the seal member includes a ridge seal protruding farther than the resin member in a thickness direction of the fuel cell separator;

wherein the seal member is arranged on an inner side of the resin member;

wherein the fuel cell separator includes a gas flow field facing an electrode of the electrodes to allow the fluid to flow along the electrode; and

wherein the ridge seal is disposed between the gas flow field and the inner side of the resin member and separates the inner side of the resin member from the gas flow field.

6. The production method according to claim 5 , wherein the resin member is positioned outside the outer end of the fuel cell separator, and the resin member includes a protrusion which contacts the pair of molds and is positioned outside the outer end of the fuel cell separator in the direction along which the surface of the fuel cell separator extends.

7. The production method according to claim 5 , wherein the resin member includes an overlapping portion overlapped with the outer end of the seal member in the stacking direction.

8. The production method according to claim 5 , wherein, in a state where the fuel cell separator is held between a pair of resin member forming molds, a melted resin member is supplied from a direction in parallel to surfaces of the molds facing each other to form the resin member.

9. The production method according to claim 5 , wherein resin flow sections for forming a resin member are provided at a plurality of positions of the resin member; and

an expansion protruding outward in a direction parallel to the surface of the separator is provided between the adjacent resin flow sections.

10. The production method according to claim 6 , wherein an outer edge of the fuel cell separator is positioned inside the protrusion in the direction along which the surface of the fuel cell separator extends.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 27, 2017
From: OYAMA, SATOSHI; MORIMOTO, GO; TERADA, SATORU; GOTO, SHUHEI; GIGA, AKIHITO; HAYASHI, TAKAHIRO; MASAKA, TAKESHI; YOGO, SATOMI; KOGA, SHOTARO
To: HONDA MOTOR CO., LTD.; NOK CORPORATION
Reel/Frame 043714/0807 →
Priority Claims (1)
JP 2015-071327 · Mar 31, 2015 · national
Continuity (1)
Related Publication 20180083295A1 · Mar 22, 2018