Claims
- 1. A fuel cell, comprising:
a fuel vessel that comprises a source of fuel; an oxidant vessel comprising a source of oxidant; a reaction zone that comprises at least one cathode, at least one anode, and electrolyte between each anode and cathode; a closed water vessel that is connected to the reaction zone by at least one capillary flow path; a fuel conduit that connects the fuel vessel and the reaction zone, and comprises a fuel pressure control apparatus adapted to maintain a static pressure of fuel in the reaction zone; an oxidant conduit that connects the oxidant vessel and the reaction zone, and comprises an oxidant pressure control apparatus adapted to maintain a static pressure of oxidant in the reaction zone; and electrical conductors connected to anode and cathode and adapted to conduct electricity to an external device.
- 2. The fuel cell of claim 1, wherein the fuel pressure control apparatus and the oxidant pressure control apparatus are pressure regulator valves.
- 3. The fuel cell of claim 1, wherein the water vessel is located within a cathode.
- 4. The fuel cell of claim 1, wherein the water vessel is located external to the reaction zone.
- 5. The fuel cell of claim 1, wherein neither fuel, oxidant, nor water dynamically flows in a closed loop through the reaction zone.
- 6. The fuel cell of claim 1, wherein the fuel cell comprises neither a fuel pump, an oxidant pump, nor a water pump.
- 7. The fuel cell of claim 1, wherein the reaction zone comprises as its only openings for fluid flow:
at least one aperture connected to the fuel conduit for admitting fuel into the reaction zone; at least one aperture connected to the oxidant conduit for admitting oxidant into the reaction zone; and the at least one capillary flow path that connects the reaction zone to the water vessel.
- 8. The fuel cell of claim 1, wherein the static pressure in the reaction zone is high enough to cause any water vapor formed in the fuel cell to condense.
- 9. The fuel cell of claim 1, wherein the pressure in the reaction zone is between about 40-400 psig.
- 10. The fuel cell of claim 1, further comprising at least one additional fuel cell that comprises an anode, cathode, and electrolyte, wherein the fuel cells are arranged in a stack configuration.
- 11. The fuel cell of claim 10, comprising at least one bipolar plate that comprises the anode of one fuel cell in the stack and the cathode of an adjacent fuel cell in the stack.
- 12. The fuel cell of claim 11, wherein the bipolar plate comprises two substantially planar surfaces, the anode being located on one of the surfaces and the cathode being located on the other surface.
- 13. The fuel cell of claim 1, wherein the fuel cell is selected from the group consisting of a phosphoric acid fuel cell and alkaline fuel cell.
- 14. The fuel cell of claim 1, wherein the fuel cell is a proton exchange membrane fuel cell.
- 15. The fuel cell of claim 14, wherein the electrolyte comprises a polymer.
- 16. The fuel cell of claim 1, wherein the fuel vessel comprises a source of hydrogen gas.
- 17. The fuel cell of claim 16, wherein the fuel cell is a solid oxide fuel cell.
- 18. The fuel cell of claim 17, wherein the water vessel comprises a metal hydride material and is in communication with the at least one anode.
- 19. The fuel cell of claim 18, wherein the metal hydride material within the water vessel is capable of releasing hydrogen gas when contacted with water.
- 20. The fuel cell of claim 19, further comprising:
a fuel recycle conduit that connects the water vessel to the fuel conduit.
- 21. The fuel cell of claim 17, wherein a fuel regeneration vessel is connected to the anode portion of the reaction zone by at least one flow path.
- 22. The fuel cell of claim 21, wherein the fuel regeneration vessel is capable of receiving produced water from the reaction zone through the at least one flow path.
- 23. The fuel cell of claim 22, wherein the fuel regeneration vessel comprises metal hydride material that is capable of reacting with water and producing hydrogen gas.
- 24. The fuel cell of claim 23, wherein the fuel regeneration vessel is connected to the fuel conduit by a regenerated fuel conduit.
- 25. The fuel cell of claim 24, wherein the fuel regeneration vessel comprises a pump capable of transporting hydrogen gas from the fuel regeneration vessel into the fuel conduit.
- 26. The fuel cell of claim 21, wherein the fuel regeneration vessel and the water vessel are the same vessel.
- 27. The fuel cell of claim 21, wherein the fuel regeneration vessel is located within the water vessel.
- 28. The fuel cell of claim 17, wherein the electrolyte comprises a solid ceramic.
- 29. The fuel cell of claim 1, wherein the fuel vessel comprises at least one metal hydride capable of releasing hydrogen gas.
- 30. The fuel cell of claim 1, wherein the oxidant vessel comprises oxygen gas at a pressure of at least 1,000 psig.
- 31. The fuel cell of claim 14, wherein the oxidant vessel comprises oxygen gas at a pressure of at least 5,000 psig.
- 32. The fuel cell of claim 1, wherein the fuel cell has a power output of at least about 1 watt for a period of more than one day.
- 33. The fuel cell of claim 1, further comprising:
a housing which encloses at least part of the reaction zone and comprises a cylindrical outer wall.
- 34. The fuel cell of claim 33, wherein the housing further comprises a cylindrical inner wall which defines an open longitudinal bore in the fuel cell.
- 35. The fuel cell of claim 33, further comprising a downhole electrical device which is electrically connected to the fuel cell.
- 36. The fuel cell of claim 33, wherein the fuel cell is electrically connected to a battery to form a hybrid power source.
- 37. The fuel cell of claim 33, wherein the fuel vessel, oxidant vessel, reaction zone and water vessel are enclosed within the housing.
- 38. The fuel cell of claim 33, wherein the entire fuel cell is enclosed within the housing except for the electrical connectors.
- 39. The fuel cell of claim 33, wherein the fuel cell is located within a wellbore and is electrically connected to a downhole tool.
- 40. The fuel cell of claim 33, wherein the fuel cell contains no internal moving parts.
- 41. A downhole assembly, comprising:
a downhole structure located in a subterranean borehole; a fuel cell attached to the downhole structure, the fuel cell comprising:
a fuel vessel that comprises a source of fuel; an oxidant vessel comprising a source of oxidant; a reaction zone that comprises at least one cathode, at least one anode, and electrolyte between each anode and cathode; a closed water vessel that is connected to the reaction zone by at least one capillary flow path; a fuel conduit that connects the fuel vessel and the reaction zone, and comprises a fuel pressure control apparatus adapted to maintain a static pressure of fuel in the reaction zone; an oxidant conduit that connects the oxidant vessel and the reaction zone, and comprises an oxidant pressure control apparatus adapted to maintain a static pressure of oxidant in the reaction zone; electrical conductors connected to anode and cathode and adapted to conduct electricity to an external device; and a downhole electrical device which is electrically connected to the fuel cell.
- 42. The downhole assembly of claim 41, wherein the downhole structure comprises a drillstring.
- 43. The downhole assembly of claim 41, wherein the downhole structure comprises at least one of well casing or well tubing.
- 44. The downhole assembly of claim 41, wherein the fuel cell comprises no internal moving parts.
- 45. The downhole assembly of claim 41, wherein the fuel cell is electrically connected to a battery to form a hybrid power source.
- 46. A fuel cell, comprising:
a housing; at least one membrane within the housing, the membrane having opposing surfaces; a supply of oxygen communicating with one surface of the at least one membrane; a supply of hydrogen communicating with the other surface of the at least one membrane; and at least one capillary member extending from a position proximal at least one of the membrane surfaces to a position distal the membrane surface.
- 47. The fuel cell of claim 46, wherein the at least one capillary member is attached to the membrane.
- 48. The fuel cell of claim 46, wherein the at least one capillary member lying on at least one membrane surface.
- 49. The fuel cell of claim 46, wherein the at least one capillary member comprises a tube.
- 50. The fuel cell of claim 46, wherein the at least one capillary member comprises a thread.
- 51. The fuel cell of claim 46, wherein the at least one capillary member comprises a conduit.
- 52. A power supply, comprising:
a fuel cell defining at least one passageway therethrough.
- 53. The power supply of claim 52, wherein the fuel cell has an annular shape.
- 54. The power supply of claim 52, wherein the fuel cell has an arcuate cross-sectional shape.
- 55. The power supply of claim 52, wherein the fuel cell has an outer body with a cross sectional shape that is at least a portion of an annular shape, the body adapted to fit within an annular area.
- 56. The power supply of claim 52, further comprising:
a battery connected to the fuel cell forming a hybrid power supply.
- 57. The power supply of claim 52, wherein the fuel cell comprises no internal moving parts.
- 58. A fuel cell, comprising:
a housing; at least one membrane within the housing, the membrane having opposing surfaces; a supply of oxygen communicating with one surface of the at least one membrane; a supply of hydrogen communicating with the other surface of the at least one membrane; and the at least one membrane having at least one slanted surface.
- 59. The fuel cell of claim 58, wherein:
the at least one membrane has a shape selected from the group comprising frustoconical, conical, hemispherical, bowl-shaped, and curved.
- 60. The fuel cell of claim 58, wherein the fuel cell is electrically connected to a battery forming a hybrid power supply.
- 61. The fuel cell of claim 58, wherein the fuel cell comprises no internal moving parts.
- 62. A fuel cell, comprising:
a housing; at least one membrane within the housing, the membrane having opposing surfaces; a supply of oxygen communicating with one surface of the at least one membrane; a supply of hydrogen communicating with the other surface of the at least one membrane; at least one separator plate adjacent the at least one membrane; the at least one separator plate defining at least one groove therein; and the at least one groove having a hydrophobic material coating.
- 63. The fuel cell of claim 62, wherein:
the hydrophobic material is selected from the group comprising wax and grease.
- 64. A fuel cell, comprising:
a housing; at least one membrane within the housing, the membrane having opposing surfaces; a supply of oxygen communicating with one surface of the at least one membrane; a supply of hydrogen communicating with the other surface of the at least one membrane; and at least one reservoir in fluid communication with an area proximal at least one surface of the at least one membrane.
- 65. The fuel cell of claim 64, wherein the fuel cell is electrically connected to a battery forming a hybrid power supply.
- 66. The fuel cell of claim 64, wherein the fuel cell comprises no internal moving parts.
- 67. The fuel cell of claim 64, further comprising:
a reservoir positioned below the at least one membrane.
- 68. The fuel cell of claim 64, further comprising:
a reservoir positioned to receive steam.
- 69. The fuel cell of claim 68, wherein:
the reservoir positioned to receive steam further comprises: a screen intermediate the inlet and the outlet; a desiccant within the reservoir; and a water chamber.
- 70. The fuel cell of claim 68, further comprising:
a pump communicating with the reservoir outlet.
- 71. The fuel cell of claim 64, wherein the at least one reservoir comprises a metal hydride material that is capable of releasing hydrogen gas when contacted with water.
- 72. The fuel cell of claim 71, wherein the at least one reservoir is connected to the fuel conduit by a regenerated fuel conduit.
- 73. The fuel cell of claim 72, wherein the at least one reservoir comprises a pump capable of transporting hydrogen gas from the at least one reservoir, through the regenerated fuel conduit, into the fuel conduit.
- 74. A power supply system, comprising:
a fuel cell; and a rechargeable battery electrically connected to the fuel cell such that the fuel cell recharges the rechargeable battery during periods of non-use.
- 75. The power supply system of claim 74, wherein the fuel cell is enclosed within a housing that is capable of storing produced water generated within the fuel cell.
- 76. The power supply system of claim 74, wherein the fuel cell and battery are sized to fit within a wellbore.
- 77. The power supply system of claim 74, wherein the fuel cell and battery are electrically connected to a downhole tool.
- 78. A method for supplying power to a well, the method comprising:
providing a fuel cell in or near the well; and connecting the fuel cell to a battery to form a hybrid power source.
- 79. The method of claim 78, further comprising:
electrically connecting the fuel cell to a downhole electrical device.
- 80. The method of claim 78, further comprising:
connecting the fuel cell to a tubular string and inserting the fuel cell and tubular string into the well.
- 81. A method for completing a wellbore comprising:
providing a fuel cell comprising:
a fuel vessel that comprises a source of fuel; an oxidant vessel comprising a source of oxidant; a reaction zone that comprises at least one cathode, at least one anode, and electrolyte between each anode and cathode; a closed water vessel that is connected to the reaction zone by at least one capillary flow path; a fuel conduit that connects the fuel vessel and the reaction zone, and comprises a fuel pressure control apparatus adapted to maintain a static pressure of fuel in the reaction zone; an oxidant conduit that connects the oxidant vessel and the reaction zone, and comprises an oxidant pressure control apparatus adapted to maintain a static pressure of oxidant in the reaction zone; and electrical conductors connected to the anode and cathode and adapted to conduct electricity to an external device, connecting the fuel cell to an electrical device; and inserting the fuel cell and electrical device into the wellbore.
- 82. The method of claim 81, further comprising:
electrically connecting the fuel cell to a battery, forming a hybrid power source.
- 83. The method of claim 81, wherein the fuel cell defines at least one passageway therethrough.
- 84. The method of claim 83, further comprising:
producing formation fluids from the wellbore, the formation fluids flowing through at least one passageway defined by the fuel cell.
- 85. A method of supplying power to an electrical circuit of a downhole tool comprising:
providing a fuel cell comprising a housing, a fuel vessel, an oxidant vessel, a reaction zone and electrical connectors, wherein the fuel cell is enclosed within the housing except for the electrical connectors; electrically connecting the fuel cell to the electrical circuit of the downhole tool; inserting the downhole tool and fuel cell into a wellbore; and generating electricity within the wellbore from the fuel cell and supplying at least some of the electricity to energize the electrical circuit of the downhole tool.
- 86. The method of claim 85, wherein the fuel cell further comprises a battery electrically connected to the fuel cell, thus forming a hybrid power supply capable of storing a portion of the electricity generated by the fuel cell.
- 87. The method of claim 85, wherein the fuel cell comprises no internal moving parts.
- 88. The method of claim 85, further comprising:
contacting water produced within the fuel cell with metal hydride material and producing hydrogen gas.
- 89. The method of claim 85, further comprising:
injecting the produced hydrogen gas into a fuel supply line supplying fuel to the fuel cell reaction zone.
- 90. A fuel cell, comprising:
a proton exchange membrane; a closed end chamber on an oxygen side of the membrane; and a closed end chamber on a hydrogen side of the membrane.
- 91. The fuel cell of claim 90, further comprising:
a water vessel connected to at least one of the closed end chambers by at least one capillary flow path.
- 92. A fuel cell, comprising:
a proton exchange membrane; a pressurized oxygen supply communicating with a first side of the membrane; and a pressurized hydrogen supply communicating with a second side of the membrane.
- 93. The fuel cell of claim 92, wherein the pressurized supply of oxygen and hydrogen are capable of maintained the first and second membranes within a pressure range of 30 to 300 psi.
- 94. The fuel cell of claim 92, wherein the fuel cell comprises a water vessel and a capillary flow path capable of transporting liquid water from the first side of the membrane to the water vessel.
- 95. A method for use with a fuel cell, comprising:
providing a proton exchange membrane fuel cell; and operating the fuel cell at a temperature equal to or greater than 90° C.
- 96. The method of claim 95, wherein the fuel cell is operated at a temperature equal to or greater than 100° C.
- 97. The method of claim 95, wherein the fuel cell is operated at a temperature equal to or greater than 120° C.
- 98. A method for use with a fuel cell, comprising:
providing a proton exchange membrane fuel cell which generates water vapor in operation; and condensing the water within the fuel cell.
- 99. The method of claim 98, wherein the fuel cell comprises a reaction zone and the condensing of the water occurs within the reaction zone.
- 100. The method of claim 99, wherein the fuel cell comprises a water vessel and some of the liquid water is removed from the reaction zone by a capillary flow path to the water vessel.
- 101. A power source for use in a well, comprising:
a proton exchange membrane-type fuel cell.
- 102. A method for powering a tool in a well, comprising:
operatively connecting a proton exchange-type fuel cell to the tool.
- 103. A power source for use in a well, comprising:
a solid oxide-type fuel cell.
- 104. A method for powering a tool in a well, comprising:
operatively connecting a solid oxide-type fuel cell to the tool.
- 105. A method for providing power in a high temperature well, comprising:
providing a fuel cell capable of operating temperatures at or above 600° C.
- 106. The method of claim 105, wherein the fuel cell can operate in environments with temperatures from 0° C. to 1,000° C.
- 107. A fuel cell comprising:
at least one capillary member.
- 108. The fuel cell of claim 107, further comprising:
at least one membrane/electrode assembly; and at least one water vessel.
- 109. The fuel cell of claim 108, wherein the at least one capillary member is capable of transporting water from the membrane/electrode assembly to the water vessel.
- 110. The fuel cell of claim 109, wherein one end of the at least one capillary member is located on the surface of the membrane/electrode assembly and extending away from the surface of the membrane/electrode assembly while the other end of the capillary member is in contact with the water vessel, wherein the at least one capillary member is capable of communicating water from the membrane/electrode surface to the water vessel.
- 111. The fuel cell of claim 110, wherein more than one capillary member communicates water from the membrane/electrode surface to a common water vessel.
Parent Case Info
[0001] The present application claims priority from provisional application No. 60/204,676 filed on May 17, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60204676 |
May 2000 |
US |