Claims
- 1. A fuel cell, comprising:
a plurality of fuel cell elements, including electrical connection parts that include an anode and a cathode, said plurality of fuel cell elements extending along an extended axis; a fuel reservoir, extending along said extended axis; and a fuel delivery element, extending between said fuel reservoir and said anodes of all of said fuel cell elements, and supplying fuel to all of said anodes extending along said extended axis.
- 2. A fuel cell as in claim 1, wherein said fuel delivery element includes a wicking structure that provides fuel from said fuel reservoir to said anodes via capillary action.
- 3. A fuel cell as in claim 2, wherein said fuel reservoir extends along an entirety of said extended axis, from one end of said one electrical connection parts to the other end of said one electrical connection parts.
- 4. A fuel cell as in claim 3, wherein said anode is rendered hydrophilic, to allow liquid fuel to be more readily absorbed thereby.
- 5. A fuel cell as in claim 4, wherein said cathodes, are located on an opposite side of said plurality of fuel cell elements from said anode, and said said cathodes are rendered hydrophobic.
- 6. A fuel cell as in claim 5, further comprising a housing, said housing including air holes in a vicinity of said cathode.
- 7. A fuel cell as in claim 1, further comprising a plurality of interconnections between said fuel cell elements, said plurality of interconnections including electrical interconnections.
- 8. A fuel cell as in claim 7, wherein said plurality of interconnections are formed within said fuel cell, and are formed of a corrosion resistant and electrically conductive material.
- 9. A fuel cell as in claim 7, wherein each of said fuel cell elements includes an anode material, a cathode material, a catalyst, and a membrane electrolyte material formed between said anode material and said cathode material, and formed together to form a membrane electrode assembly.
- 10. A fuel cell as in claim 9, wherein said plurality of interconnections are formed through said membrane electrolyte material, between a membrane electrolyte material of one of said fuel cell elements, and a membrane electrolyte material of another of said fuel cell elements.
- 11. A fuel cell as in claim 10, wherein said interconnections are formed from a corrosion resistant electrically conductive material.
- 12. A fuel cell as in claim 7, wherein said interconnections include a connector plate connecting between portions of said electrodes.
- 13. A fuel cell as in claim 1, further comprising a second plurality of fuel cell elements, formed along a second extended axis parallel from but spaced from said extended axis, and also in connection with said fuel reservoir.
- 14. A fuel cell as in claim 13, wherein said fuel delivery element includes a first wicking structure which extends between said fuel reservoir and anodes of said plurality of fuel cell elements, and a second wicking structure extending between second plurality of fuel cell elements and anodes of the second plurality of fuel cell elements, wherein said first and second wicking structures are each in contact with the single fuel reservoir.
- 15. A fuel cell as in claim 7, wherein said interconnections extend between a cathode of a first fuel cell and an anode of a second fuel cell, effectively putting said first fuel cell and said second fuel cell electrically in series.
- 16. A method, comprising:
providing a plurality of fuel cell elements along an extended axis, each of said fuel cell elements including an anode, an electrolyte membrane, and a cathode; providing fuel from a fuel reservoir to each of said cathodes of each of said fuel cell elements directly, via capillary action.
- 17. A method as in claim 16, further comprising electrically connecting said plurality of fuel cell elements electrically in series with one another.
- 18. A method as in claim 17, wherein said electrically connecting comprises providing a corrosion resistant electrical interconnected between said fuel cell elements.
- 19. A method as in claim 17, further comprising a second plurality of fuel cell elements, extending along a second extended axis, and
providing fuel from said fuel reservoir to the other the second plurality of fuel cell elements, using capillary action from the single fuel in the fuel reservoir.
- 20. A method as in claim 19, wherein said second plurality of fuel cell elements are in parallel with said plurality of fuel cell elements.
- 21. A method as in claim 17, wherein said electrically connected comprises providing an interconnected tab between electrodes.
- 22. A method as in claim 16, further comprising rendering the anode hydrophilic, to facilitate fuel of sorption into the anode.
- 23. A method as in claim 16, further comprising rendering the cathode hydrophobic, to prevent fuel from absorbing into the anode.
- 24. A method as in claim 22, further comprising rendering the cathode hydrophobic, to prevent fuel from absorbing into he fcathode.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims priority from provisional application No. 60/211,444, filed Jun. 13, 2000.
FEDERAL RESEARCH STATEMENT
[0002] The invention described herein was made in the performance of work under a NASA contract, and is subject to the provisions of Public Law 96-517(35 USC 202) in which the contractor has elected to retain title.
Provisional Applications (1)
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Number |
Date |
Country |
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60211444 |
Jun 2000 |
US |