Claims
- 1. A screen/frame integral assembly, comprising:
one or more screen layers having an interior portion with a porosity and having a periphery; and a frame disposed about the periphery of said screen layers while substantially maintaining the porosity of said interior portion, said frame having fluid conduits disposed therein.
- 2. A screen/frame integral assembly as in claim 1, comprising at least two screen layers, wherein said frame bonds said screen layers together.
- 3. A screen/frame integral assembly as in claim 2, wherein said screen layers comprise:
a first screen layer having first openings having a size of about 0.077 inches (1.96 mm) or less by about 0.033 inches (0.838 mm) or less and a thickness of less than about 0.005 inches (0.127 mm), wherein said size and said thickness are interrelated such that the combination of said size and said thickness enable the passage of water and a gas through said first openings; and at least one subsequent screen layer having second openings, wherein said subsequent screen layer is disposed parallel to and in contact with said first screen layer.
- 4. A screen/frame integral assembly as in claim 3, wherein said thickness is about 0.004 inches (0.102 mm) or less.
- 5. A screen/frame integral assembly as in claim 3, wherein said thickness is about 0.089 mm or less.
- 6. A screen/frame integral assembly as in claim 3, wherein at least a portion of said second openings having a larger size than said first openings size.
- 7. A screen/frame integral assembly as in claim 3, wherein at least a portion of said subsequent screen layers have second strands having a second thickness greater than said first thickness.
- 8. A screen/frame integral assembly as in claim 7, wherein said first thickness is about half of said second thickness.
- 9. A screen/frame integral assembly as in claim 1, wherein said screen layers have first openings which have a substantially elongated, diamond or oval shaped geometry.
- 10. A screen/frame integral assembly as in claim 9, wherein said openings in one screen layer are disposed generally orthogonal to said openings in a subsequent screen layer.
- 11. A screen/frame integral assembly as in claim 1, wherein frame is thermoplastic, thermosetting, or rubber materials, or mixtures thereof.
- 12. A screen/frame integral assembly as in claim 11, wherein said frame is polyetherimide, polysulfone, polyethersulfone, polyarylether ketone, ethylenepropylenediene monomer, ethylenepropylene rubber, or mixtures thereof.
- 13. A screen/frame integral assembly as in claim 1, wherein said screen layers comprise at least one woven layer.
- 14. A screen/frame intergral assembly as in claim 13, wherein said woven layer is disposed between and in intimate contact with two of said screen layers.
- 15. A screen/frame integral assembly as in claim 13, wherein said woven layer has a mesh size down to about 300 mesh.
- 16. A screen/frame integral assembly as in claim 15, wherein said woven layer has a mesh size down to about 200 mesh.
- 17. A screen/frame integral assembly as in claim 16, wherein said woven layer has a mesh size of about 20 to about 80 mesh.
- 18. An electrochemical cell stack, comprising:
an electrolyte membrane having a first gas side and a second gas side; a first gas electrode disposed on said first gas side of said membrane; a second gas electrode disposed on said second gas side of said membrane; and an integral screen/frame assembly disposed adjacent to and in intimate contact with said first gas electrode, comprising:
one or more screen layers having an interior portion with a porosity and having a periphery; and a frame disposed about the periphery of said screen layers while substantially maintaining the porosity of said interior portion, said frame having fluid conduits disposed therein.
- 19. An electrochemical cell stack as in claim 18, comprising at least two screen layers, wherein said frame bonds said screen layers together.
- 20. An electrochemical cell stack as in claim 19, wherein:
said screen/frame assembly has a first screen layer having first openings having a first size of about 0.077 inches (1.96 mm) or less by about 0.033 inches (0.838 mm) or less and a first thickness of less than about 0.005 inches (0.127 mm) and at least one subsequent screen layer having subsequent openings, wherein said subsequent screen layer is disposed parallel to and in contact with said first screen layer and said first size and said first thickness are interrelated such that the combination of said first size and said first thickness enable the passage of water and the first gas through said first openings; and a second gas screen assembly disposed adjacent to and in contact with said second gas electrode.
- 21. An electrochemical cell stack as in claim 20, wherein the electrochemical cell has a pressure differential across said membrane such that a pressure at said first gas side of said membrane is lower than pressure at said second gas side of said membrane.
- 22. An electrochemical cell stack as in claim 21, wherein said subsequent openings have a subsequent size and a subsequent thickness, wherein said first thickness is less than said subsequent thickness.
- 23. An electrochemical cell stack as in claim 22, wherein said first thickness is about half of said second thickness or less.
- 24. An electrochemical cell stack as in claim 20, wherein said first openings and said subsequent openings have a substantially elongated, diamond, or oval shaped geometry.
- 25. An electrochemical cell stack as in claim 24, wherein said first openings are disposed generally orthogonal to said subsequent openings.
- 26. An electrochemical cell as in claim 20, wherein said first thickness is about 0.0035 inches (0.089 mm) or less.
- 27. An electrochemical cell stack as in claim 18, wherein frame is thermoplastic, thermosetting, or rubber materials, or mixtures thereof.
- 28. An electrochemical cell stack as in claim 27, wherein said frame is polyetherimide, polysulfone, polyethersulfone, polyarylether ketone, ethylenepropylenediene monomer, ethylenepropylene rubber, or mixtures thereof.
- 29. An electrochemical cell as in claim 18, wherein said screen layers comprise at least one woven mesh.
- 30. An electrochemical cell as in claim29, wherein said woven mesh is disposed between and in intimate contact with two of said screen layers.
- 31. An electrochemical cell as in claim 29, wherein said woven mesh is from about 20 to about 80 mesh.
- 32. An electrochemical cell as in claim 27, wherein said screen/frame assembly is capable of providing structural integrity to said electrolyte membrane with a pressure differential across said electrolyte membrane of greater than 400 psi.
- 33. An electrochemical cell as is claim 27, wherein the pressure differential across said electrolyte is greater than 1,000 psig.
- 34. An electrochemical cell screen assembly, comprising one or more screen layers comprising at least one woven layer and having an interior portion with a porosity.
- 35. An electrochemical cell screen assembly as in claim 34, wherein said woven layer has a mesh size down to about 300 mesh.
- 36. An electrochemical cell screen assembly as in claim 34, wherein said woven layer has a mesh size down to about 200 mesh.
- 37. An electrochemical cell screen assembly as in claim 34, wherein said woven layer has a mesh size of about 20 to about 80 mesh.
- 38. A method for producing hydrogen, comprising:
a. introducing water to a first gas electrode in an electrochemical cell, said electrochemical cell comprising:
i. an electrolyte membrane disposed between the first gas electrode and a second gas electrode; and ii. an integral screen/frame assembly disposed adjacent to and in intimate contact with said first gas electrode, comprising: one or more screen layers having an interior portion with a porosity and having a periphery; and a frame disposed about the periphery of said screen layers while substantially maintaining the porosity of said interior portion, said frame having fluid conduits disposed therein; b. forming hydrogen ions, oxygen, and electrodes; c. passing said hydrogen ions through said electrolyte membrane to said second gas electrode; d. moving said electrons through an electrical load to said second gas electrode; and e. combining said hydrogen ions and said electrons to form hydrogen gas.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of U.S. application Ser. No. 09/464,143 filed on Dec. 16, 1999, which claims priority to and incorporates by reference U.S. Provisional Application Serial No. 60/114,355, filed on Dec. 29, 1998.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60114355 |
Dec 1998 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
09464143 |
Dec 1999 |
US |
Child |
09802191 |
Mar 2001 |
US |