Claims
- 1. A gas flow field for use in a fuel cell comprising a three-dimensional, open-cell, foamed structure including at least one corrugation.
- 2. The gas flow field of claim 1, wherein the three-dimensional, open-cell, foamed structure proximate to each of at least one of the corrugations defines a microchannel.
- 3. The gas flow field of claim 1, wherein the three-dimensional, open-cell, foamed structure has a plurality of corrugations.
- 4. The gas flow field of claim 3, wherein the corrugations each have a pitch and a run, the pitch for each corrugation being at least equal to two-thirds of the run for that corrugation.
- 5. The gas flow field of claim 3, wherein a first subset of the corrugations are substantially located in a first plane, a second subset of the corrugations are substantially located in a second plane, the first plane is substantially parallel to the second plane, and neighboring corrugations belong to different subsets.
- 6. The gas flow field of claim 1, wherein each corrugation has an internal angle of approximately 120°.
- 7. The gas flow field of claim 3, wherein the plurality of corrugations includes at least 20 corrugations.
- 8. The gas flow field of claim 1, wherein the three-dimensional, open-cell, foamed structure has a thickness, the corrugations each have a pitch, and the pitch of the corrugations is less than twice the thickness of the structure.
- 9. The gas flow field of claim 1, wherein the three-dimensional, open-cell, foamed structure comprises at least one material chosen from the group consisting of carbon filament, stainless steel, derivatives of stainless steel, epitaxial substrates, nickel, nickel alloys, gold, gold alloys, copper, copper alloys, thermoplastics, and iridium.
- 10. The gas flow field of claim 9, wherein the three-dimensional, open-cell, foamed structure is microplated with gold, iridium, copper, or silver.
- 11. The gas flow field of claim 1, wherein the open cells of the three-dimensional, open-cell, foamed structure are five-sided substantially geometrically shaped orifices.
- 12. A gas flow field for use in a fuel cell assembly, comprising a three-dimensional, open-cell, foamed structure including a plurality of deformations from a planar orientation that define at least one microchannel.
- 13. The gas flow field of claim 12, wherein the deformations from a planar orientation are corrugations.
- 14. The gas flow field of claim 13, wherein the corrugations each have a pitch and a run, the pitch for each corrugation being at least equal to two-thirds of the run for that corrugation.
- 15. The gas flow field of claim 12, wherein at least one deformation has an internal angle of approximately 120°.
- 16. The gas flow field of claim 12, wherein the plurality of deformations includes at least 20 deformations.
- 17. The gas flow field of claim 12, wherein the three-dimensional, open-cell, foamed structure is constructed of at least one material chosen from the group consisting of carbon filament, stainless steel, derivatives of stainless steel, epitaxial substrates, nickel, nickel alloys, gold, gold alloys, copper, copper alloys, thermoplastics, and iridium.
- 18. The gas flow field of claim 17, wherein the three-dimensional, open-cell, foamed structure is microplated with gold, iridium, copper, or silver.
- 19. The gas flow field of claim 12, wherein the open cells of the three-dimensional, open-cell, foamed structure are five-sided substantially geometrically shaped orifices.
- 20. The gas flow field of claim 12, wherein the three-dimensional, open-cell, foamed structure has a thickness, the deformations each have a pitch, and the pitch of the deformations is less than twice the thickness of the structure.
- 21. A method of preparing a gas flow field comprising the steps of:
a. applying metal to a particulate thermoplastic resinous material; b. removing the particulate resinous structure to produce a three-dimensional, open-cell, foamed structure; and c. deforming the three-dimensional, open-cell, foamed structure to define at least one microchannel.
- 22. The method of preparing a gas flow field according to claim 21 further comprising the additional step of adding cobalt to the metal.
- 23. The method of preparing a gas flow field according to claim 21 further comprising the additional step of microplating the deformed three-dimensional, open-cell, foamed structure.
- 24. A gas flow field made according to the method of claim 21.
- 25. A method of operating a flow field, comprising the steps of:
a. supplying a reactant through a flow field; and b. removing a product via a microchannel defined by at least one deformation from a plane in the flow field.
RELATED REFERENCES
[0001] This application is a continuation of application Ser. No. 09/669,344, filed Sep. 26, 2000.
Continuations (1)
|
Number |
Date |
Country |
Parent |
09669344 |
Sep 2000 |
US |
Child |
10267559 |
Oct 2002 |
US |