Claims
- 1. An electrochemical cell comprising:
(a) a proton exchange membrane, said proton exchange membrane having a first face and a second face; (b) an anode, said anode having an inner face and an outer face, said inner face of said anode being positioned along said first face of said proton exchange membrane and being electrically coupled thereto; (c) a cathode, said cathode having an inner face and an outer face, said inner face of said cathode being positioned along said second face of said proton exchange membrane and being electrically coupled thereto; (d) means for defining a porous anodic fluid cavity; (e) a compression pad for use in defining a cathodic fluid diffusion cavity, said compression pad being electrically-conductive, resiliently compressible and porous; (f) means for axially containing fluid present within said compression pad; and (g) means for peripherally containing fluid present within said compression pad.
- 2. The electrochemical cell as claimed in claim 1 wherein said electrochemical cell is an electrolysis cell.
- 3. The electrochemical cell as claimed in claim 1 wherein said electrochemical cell is a fuel cell.
- 4. The electrochemical cell as claimed in claim 1 wherein said compression pad comprises a mat of carbon fibers.
- 5. The electrochemical cell as claimed in claim 1 wherein said compression pad comprises a random mat of carbon fibers bound together using one or more binders.
- 6. The electrochemical cell as claimed in claim 5 wherein said one or more binders includes at least one thermoplastic binder.
- 7. The electrochemical cell as claimed in claim 6 wherein said at least one thermoplastic binder comprises a polyvinylidene fluoride (PVDF).
- 8. The electrochemical cell as claimed in claim 6 wherein said at least one thermoplastic binder comprises a combination of a PVDF and polytetrafluoroethylene (PTFE).
- 9. The electrochemical cell as claimed in claim 5 wherein said one or more binders includes a thermosetting binder.
- 10. The electrochemical cell as claimed in claim 5 wherein said compression pad further comprises a coating for modifying its wettability.
- 11. The electrochemical cell as claimed in claim 10 wherein said coating is applied to at least one side of said random mat and comprises PTFE.
- 12. The electrochemical cell as claimed in claim 11 wherein said coating further comprises electron-conducting carbon particles.
- 13. The electrochemical cell as claimed in claim 10 wherein said coating comprises electron-conducting carbon particles functionalized with hydrophobic organic groups.
- 14. The electrochemical cell as claimed in claim 1 wherein said compression pad comprises a stack of carbon fiber papers, each of said carbon fiber papers comprising a plurality of carbon fibers bound together with a first thermosetting binder, each of said carbon fiber papers being bound to an adjacent carbon fiber paper in said stack with a second thermosetting binder.
- 15. The electrochemical cell as claimed in claim 14 wherein said first thermosetting binder and said second thermosetting binder are the same.
- 16. The electrochemical cell as claimed in claim 1 wherein said compression pad has a density of about 0.2-1.5 g/cm3.
- 17. The electrochemical cell as claimed in claim 16 wherein said compression pad has a density of about 0.35-0.77 g/cm3.
- 18. The electrochemical cell as claimed in claim 17 wherein said compression pad has a density of about 0.55-0.77 g/cm3.
- 19. The electrochemical cell as claimed in claim 1 wherein said compression pad, after being compressed to pressures up to about 12,000 psi, has an uncompressed thickness of at least 70% of its original, pre-compressed thickness.
- 20. The electrochemical cell as claimed in claim 2 wherein said axially containing means comprises a separator placed in contact with said outer face of said compression pad.
- 21. The electrochemical cell as claimed in claim 20 wherein said separator is electrically-conductive.
- 22. The electrochemical cell as claimed in claim 2 wherein said peripherally containing means comprises a cell frame.
- 23. The electrochemical cell as claimed in claim 2 wherein said porous anodic fluid cavity defining means comprises a metal screen, said metal screen having an inner face and an outer face, said inner face of said metal screen being placed in contact with said outer face of said anode.
- 24. The electrochemical cell as claimed in claim 2 wherein said porous anodic fluid cavity defining means comprises a metal screen, a separator and a cell frame, said metal screen having an inner face and an outer face, said inner face of said metal screen being placed in contact with said outer face of said anode, said separator being placed in contact with said outer face of said metal screen and being dimensioned to axially contain fluid present within said metal screen, said cell frame peripherally surrounding said metal screen and being dimensioned to peripherally contain fluid present within said metal screen.
- 25. The electrochemical cell as claimed in claim 24 wherein said separator is a bipolar separator plate.
- 26. The electrochemical cell as claimed in claim 3 wherein said means for axially containing fluid present within said compression pad and said means for peripherally containing fluid present within said compression pad comprises a bipolar separator plate.
- 27. The electrochemical cell as claimed in claim 1 wherein said compression pad has an inner face facing towards said cathode and an outer face facing away from said cathode, said electrochemical cell further comprising an electrically-conductive member applied to said outer face of said cathode and having a comparable size to said outer face of said cathode.
- 28. The electrochemical cell as claimed in claim 27 wherein said electrically-conductive member is one of a less porous member than said compression pad and a more porous member than said compression pad, said less porous member being fabricated from solid sheets of materials selected from the group consisting of carbon, titanium, zirconium and composites thereof in particulate or fiber form, together with a polymeric binder, said more porous member being selected from the group consisting of multiple meshes, etched metals, and sinters.
- 29. An electrochemical cell stack comprising two electrochemical cells arranged in series in a bipolar configuration and electrically coupled to one another, each one of said two electrochemical cells comprising a proton exchange membrane having a first face and a second face, an anode positioned along said first face of said proton exchange membrane, a cathode positioned along said second face of said proton exchange membrane, and a compression pad for use in defining a cathodic fluid cavity, said compression pad being electrically-conductive, resiliently compressible and porous and having an inner face and an outer face.
- 30. The electrochemical cell stack as claimed in claim 29 wherein each of said electrochemical cells is an electrolysis cell.
- 31. The electrochemical cell stack as claimed in claim 29 wherein each of said electrochemical cells is a fuel cell.
- 32. The electrochemical cell stack as claimed in claim 29 wherein said compression pad comprises a random mat of carbon fibers bound together using one or more binders including at least one thermoplastic binder.
- 33. The electrochemical cell stack as claimed in claim 32 wherein said at least one thermoplastic binder comprises a polyvinylidene fluoride (PVDF).
- 34. The electrochemical cell stack as claimed in claim 32 wherein said at least one thermoplastic binder comprises a combination of a PVDF and polytetrafluoroethene (PTFE).
- 35. The electrochemical cell stack as claimed in claim 32 wherein said compression pad further comprises a waterproofing coating applied to at least one side of said random mat, said waterproofing coating comprising PTFE and electron-conducting carbon particles.
- 36. The electrochemical cell stack as claimed in claim 32 wherein said compression pad further comprises a waterproofing coating applied to at least one side of said random mat, said waterproofing coating comprising electron-conducting carbon particles functionalized with hydrophobic organic groups.
- 37. The electrochemical cell stack as claimed in claim 29 wherein said compression pad comprises a stack of carbon fiber papers, each of said carbon fiber papers comprising a plurality of carbon fibers bound together with a first thermosetting binder, each of said carbon fiber papers being bound to an adjacent carbon fiber paper in said stack with a second thermosetting binder.
- 38. The electrochemical cell stack as claimed in claim 29 wherein said compression pad has a density of about 0.2-1.5 g/cm3.
- 39. The electrochemical cell stack as claimed in claim 40 wherein said compression pad has a density of about 0.35-0.77 g/cm3.
- 40. The electrochemical cell stack as claimed in claim 41 wherein said compression pad has a density of about 0.55-0.77 g/cm3.
- 41. The electrochemical cell stack as claimed in claim 29 wherein said compression pad, after being compressed to pressures up to about 12,000 psi, has an uncompressed thickness of at least 70% of its original, pre-compressed thickness.
- 42. An electrolysis cell comprising:
(a) first and second separators, said first and second separators being electrically conductive, being spaced apart from one another and being generally parallel to one another; (b) a proton exchange membrane disposed between said first and second separators; (c) an anode, said anode being positioned between said proton exchange membrane and said first separator and being electrically coupled to said proton exchange membrane; (d) a cathode, said cathode being positioned between said proton exchange membrane and said second separator and being electrically coupled to said proton exchange membrane; (e) a metal screen, said metal screen being positioned between said anode and said first separator and being electrically coupled to each of said anode and said first separator; and (f) an electrically-conductive, resiliently compressible, porous pad, said electrically-coupled, resiliently compressible, porous pad being positioned between said cathode and said second separator and being electrically coupled to each of said cathode and said second separator, said electrically-conductive, resiliently compressible, porous pad having a density of about 0.2-1.5 g/cm3 and comprising a mat of carbon fibers bound together with at least one binding resin; and (g) a pair of cell frames, one of said cell frames being in peripheral contact with said metal screen, the other of said cell frames being in peripheral contact with said electrically-conductive, resiliently compressible, porous pad.
- 43. The electrolysis cell as claimed in claim 42 wherein said electrically-conductive, resiliently compressible, porous pad has a density of about 0.35-0.77 g/cm3.
- 44. The electrolysis cell as claimed in claim 42 wherein said at least one binding resin of said electrically-conductive, resiliently compressible, porous pad comprises a thermoplastic resin.
- 45. The electrolysis cell as claimed in claim 42 wherein said at least one binding resin of said electrically-conductive, resiliently compressible, porous pad comprises a PVDF.
- 46. The electrolysis cell as claimed in claim 42 wherein said at least one binding resin of said electrically-conductive, resiliently compressible, porous pad comprises a combination of PVDF and PTFE.
- 47. The electrolysis cell as claimed in claim 42 wherein said first and second separators are flat and serve to axially contain fluid present within said metal screen and said electrically-conductive, resiliently compressible, porous pad, respectively, wherein said first cell frame has a thickness approximately equal to the thickness of said metal screen so that said first cell frame serves to peripherally contain fluid within said metal screen, and wherein said second cell frame has a thickness approximately equal to the thickness of said electrically-conductive, resiliently compressible, porous pad so that said second cell frame serves to peripherally contain fluid within said electrically-conductive, resiliently compressible, porous pad.
- 48. The electrolysis cell as claimed in claim 42 wherein said first cell frame has an outer face and a thickness greater than that of said metal screen, wherein said second cell frame has an outer face and a thickness less than that of said electrically-conductive, resiliently compressible, porous pad, wherein said first separator is dished so that its periphery is coupled to the outer face of said first cell frame and its midsection is in contact with the outer face of said metal screen, and wherein said second separator is dished so that its periphery is coupled to the outer face of said second cell frame and its midsection is in contact with the outer face of said electrically-conductive, resiliently compressible, porous pad.
- 49. An electrolysis cell stack comprising:
(a) a first proton exchange membrane, said first proton exchange membrane having a first face and a second face; (b) a first anode, said first anode having an inner face and an outer face, said inner face of said first anode being positioned along said first face of said first proton exchange membrane and being electrically coupled thereto; (c) a first cathode, said first cathode having an inner face and an outer face, said inner face of said first cathode being positioned along said second face of said first proton exchange membrane and being electrically coupled thereto; (d) a first metal screen, said first metal screen having an inner face and an outer face, said inner face of said first metal screen being placed in contact with said outer face of said first anode; (e) a first compression pad, said first compression pad being electrically-conductive, resiliently compressible and porous and having an inner face and an outer face, said inner face of said first compression pad being placed in contact with said outer face of said cathode, said first compression pad having a density of about 0.2-1.5 g/cm3 and comprising a mat of carbon fibers; (f) a first cell frame, said first cell frame being in peripheral contact with said first metal screen, said first cell frame having a thickness greater than that of said first metal screen; (g) a second cell frame, said second cell frame being in peripheral contact with said first compression pad, said second cell frame having a thickness less than that of said first compression pad; (h) first and second separators, each of said first and second separators being electrically conductive wherein said first separator is dished so that its periphery is coupled to the outer face of said first cell frame and its midsection is in contact with the outer face of said metal screen, and wherein said second separator is dished so that its periphery is coupled to the outer face of said second cell frame and its midsection is in contact with the outer face of said electrically-conductive, resiliently compressible, porous pad; (i) a second proton exchange membrane, said second proton exchange membrane having a first face and a second face; (j) a second anode, said second anode having an inner face and an outer face, said inner face of said second anode being positioned along said first face of said second proton exchange membrane and being electrically coupled thereto; (k) a second cathode, said second cathode having an inner face and an outer face, said inner face of said second cathode being positioned along said second face of said second proton exchange membrane and being electrically coupled thereto; (l) a second metal screen, said second metal screen having an inner face and an outer face, said inner face of said second metal screen being placed in contact with said outer face of said second anode, said outer face of said second metal screen being placed in contact with the midsection of said second separator; (m) a second compression pad, said second compression pad being electrically-conductive, resiliently compressible and porous and having an inner face and an outer face, said inner face of said second compression pad being placed in contact with said outer face of said second cathode, said second compression pad having a density of about 0.2-1.5 g/cm3 and comprising a mat of carbon fibers; (n) a third cell frame, said third cell frame being in peripheral contact with said second metal screen, said third cell frame having a thickness greater than that of said second metal screen; (o) a fourth cell frame, said fourth cell frame being in peripheral contact with said second compression pad, said fourth cell frame having a thickness less than that of said second compression pad; and (p) a third separator, said third separator being electrically conductive and being dished so that its periphery is coupled to the outer face of said fourth cell frame and its midsection is in contact with the outer face of said second compression pad.
- 50. The electrolysis cell stack as claimed in claim 49 wherein each of said first and second compression pads has an uncompressed thickness that is about 5-10% greater than that of said first, second, third and fourth cell frames.
- 51. The electrolysis cell stack as claimed in claim 49 wherein each of said first and second compression pads has a density of about 0.35-0.77 g/cm3.
- 52. The electrolysis cell stack as claimed in claim 51 wherein each of said first and second compression pads has a density of about 0.55-0.77 g/cm3.
- 53. An electrically-conductive, resiliently compressible, fluid diffusion medium suitable for use in an electrochemical cell, said electrically-conductive, resiliently compressible, fluid diffusion medium comprising a first layer, said first layer comprising carbon fibers and one or more binders.
- 54. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 53 wherein said one or more binders comprise at least one thermoplastic binder.
- 55. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 wherein said at least one thermoplastic binder comprises PVDF.
- 56. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 wherein said at least one thermoplastic binder comprises a combination of PVDF and PTFE.
- 57. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 wherein said carbon fibers comprise chopped carbon fibers.
- 58. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 wherein said carbon fibers have a length in the range of about 100 microns to one inch with a diameter in the range of about 4 to 12 microns.
- 59. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 wherein said carbon fibers comprise a combination of chopped carbon fibers and milled carbon fibers.
- 60. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 59 wherein said chopped carbon fibers have a length of about one-eighth of an inch and a diameter of about 4-12 microns and wherein said milled carbon fibers having a length of about 200 microns and a diameter of about 4-12 microns.
- 61. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed 55 wherein said PVDF comprises about 5-40 wt % of said first layer.
- 62. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed 61 wherein said PVDF comprises about 10-25 wt % of said first layer.
- 63. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 wherein said first layer has a density of about 0.22-1.5 g/cm3.
- 64. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 63 wherein said first layer has a density of about 0.35-0.77 g/cm3.
- 65. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 64 wherein said first layer has a density of about 0.55-0.77 g/cm3.
- 66. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 wherein said electrically-conductive, resiliently compressible, fluid diffusion medium, after being compressed to pressures up to about 12,000 psi, has an uncompressed thickness of at least 70% of its original, pre-compressed thickness.
- 67. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 further comprises a waterproofing coating applied to at least one side of said first layer, said waterproofing coating comprising PTFE.
- 68. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 67 wherein said waterproofing coating further comprises electron-conducting carbon particles.
- 69. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 further comprising a waterproofing coating applied to at least one side of said first layer, said waterproofing coating comprising electron-conducting carbon particles functionalized with hydrophobic organic groups.
- 70. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 further comprising a second layer applied to a first side of said first layer, said second layer comprising carbon fibers and at least one thermoplastic binder for binding together said carbon fibers, said first layer and said second layer being different in composition.
- 71. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 further comprising a second layer applied to a first side of said first layer and a waterproofing coating applied to a second side of said first layer, said second layer comprising carbon fibers and at least one thermoplastic binder for binding together said carbon fibers, said first layer and said second layer being different in composition, said waterproofing coating comprising at least one of electron-conducting carbon particles and PTFE.
- 72. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 54 wherein said first layer further comprises electron-conducting carbon particles.
- 73. The electrically-conductive, resiliently compressible, fluid diffusion medium as claimed in claim 53 wherein said one or more binders comprise a thermosetting resin.
- 74. A method of preparing an electrically-conductive, resiliently compressible, fluid diffusion medium comprising the steps of:
(a) providing a plurality of carbon fibers; (b) providing at least one binder; (c) mixing together the carbon fibers and the at least one binder; (d) laying down said mixture; and (e) heating said mixture to a temperature sufficient to melt the binder under conditions of pressure sufficient to form a sheet of substantially uniform thickness.
- 75. The method as claimed in claimed in 74 wherein said at least one binder comprises one or more thermoplastic binders.
- 76. The method as claimed in claim 75 wherein said one or more thermoplastic binders comprise PVDF.
- 77. The method as claimed in claim 75 wherein said one or more thermoplastic binders comprise a combination of PVDF and PTFE.
- 78. The method as claimed in 75 wherein said at least one binder comprises one or more dry resins and wherein said mixing step comprises a dry blending of said carbon fibers and said one or more dry resins.
- 79. The method as claimed in claim 75 wherein said at least one binder is a resin solution and wherein said mixing step comprises treating the carbon fibers with said resin solution.
- 80. The method as claimed in claim 74 wherein said carbon fibers comprise chopped carbon fibers.
- 81. The method as claimed in claim 74 wherein said carbon fibers comprise a combination of chopped carbon fibers and milled carbon fibers.
- 82. The method as claimed in claim 74 further comprising the step of providing electron-conducting carbon particles and wherein said mixing step further comprises mixing said electron-conducting carbon particles with said carbon fibers and said at least one binder.
- 83. The method as claimed in claim 82 wherein said electron-conducting carbon particles are selected from the group consisting of carbon black, graphite particles and a combination thereof.
- 84. The method as claimed in claim 74 wherein said heating step comprises passing the laid-down mixture through a series of heated or heated and chilled rotating cylinders.
- 85. The method as claimed in claim 74 wherein said laying step comprises laying the mixture on top of a bed comprising electron-conducting carbon particles and PTFE.
- 86. A method of preparing an electrically-conductive, resiliently compressible, fluid diffusion medium comprising the steps of:
(a) providing a plurality of carbon fibers; (b) providing at least one thermoplastic binder; (c) mixing together the carbon fibers and the at least one thermoplastic binder; (d) heating the mixture until the thermoplastic binder begins to melt; (e) dispersing the product of step (d); (f) laying down the dispersed material to form a blanket-type product; and (g) heating said blanket-type product to a temperature sufficient to melt the thermoplastic binder under conditions of pressure sufficient to form a sheet of substantially uniform thickness.
- 87. The method as claimed in claim 86 wherein said dispersing step comprises using the product of step (d) to make a slurry with water.
- 88. The method as claimed in claim 86 wherein said laying step comprises laying down the dispersed material on top of a bed comprising electron-conducting carbon particles and PTFE.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of presently-pending U.S. patent application Ser. No. 09/827,368 filed Apr. 5, 2001, the disclosure of which is incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09827368 |
Apr 2001 |
US |
Child |
10335126 |
Dec 2002 |
US |