Claims
- 1. A fuel cell system, comprising:
a fuel processing assembly adapted to produce a product hydrogen stream from a feedstock; a fuel cell stack assembly adapted to receive at least a portion of the product hydrogen stream from the fuel processing assembly and to produce an electric current therefrom to at least partially satisfy an applied load having a magnitude, wherein the fuel cell stack assembly includes a plurality of fuel cell stacks that each have a maximum rated power output, wherein each of the fuel cell stacks has a plurality of operational states that include at least a first operational state, in which the fuel cell stack receives at least a portion of the product hydrogen stream from the fuel processing assembly and produces an electric current therefrom, and a second operational state, in which the fuel cell stack is not producing an electric current, wherein each of the fuel cell stacks has a maximum rated power output, and further wherein each of the fuel cell stacks is adapted to selectively receive at least a portion of the product hydrogen stream and to produce an electric current therefrom.
- 2. The fuel cell system of claim 1, wherein each of the fuel cell stacks is adapted to receive at least a portion of the product hydrogen stream and to produce an electric current therefrom regardless of the operational state of the other fuel cell stacks.
- 3. The fuel cell system of claim 1, wherein each of the fuel cell stacks is adapted to receive at least a portion of the product hydrogen stream and to produce an electric current therefrom independent of the operational state of the other fuel cell stacks.
- 4. The fuel cell system of claim 1, wherein the fuel cell system is adapted to satisfy an applied load by supplying up to a maximum desired power output.
- 5. The fuel cell system of claim 4, wherein the fuel cell stack assembly has a total rated power output that is equal to the maximum desired power output.
- 6. The fuel cell system of claim 4, wherein the fuel cell stack assembly has a total rated power output that is greater than the maximum desired power output.
- 7. The fuel cell system of claim 6, wherein the total rated power output of the fuel cell stack assembly is greater than the maximum desired power output by at least the maximum rated power output of one of the plurality of fuel cell stacks.
- 8. The fuel cell system of claim 6, wherein the total rated power output of the fuel cell stack assembly is greater than the maximum desired power output by at least a sum of the maximum rated power outputs of at least two of the plurality of fuel cell stacks.
- 9. The fuel cell system of claim 4, wherein each of the fuel cell stacks has a maximum rated power output that is at least as great as the maximum desired power output.
- 10. The fuel cell system of claim 1, wherein the fuel cell stack assembly has a plurality of operational states that include at least a first operational state in which all of the fuel cell stacks are receiving at least a portion of the product hydrogen stream from the fuel processing assembly and producing an electric current therefrom, a second operational state, in which none of the fuel cell stacks are producing an electric current, and a third operational state, in which at least one of the plurality of fuel cell stacks is receiving at least a portion of the product hydrogen stream from the fuel processing assembly and producing an electric current therefrom, and at least one of the plurality of fuel cell stacks is not producing an electric current.
- 11. The fuel cell system of claim 10, wherein in the third operational state, the fuel cell stack assembly is adapted to produce an electric current sufficient to satisfy the applied load.
- 12. The fuel cell system of claim 10, wherein in the third operational state, the fuel cell stack assembly is adapted to produce an electric current sufficient to satisfy an applied load that corresponds to a maximum desired power output of the fuel cell stack assembly.
- 13. The fuel cell system of claim 10, wherein in the third operational state, the fuel cell stack assembly is adapted to produce an electric current sufficient to satisfy an applied load that exceeds a maximum desired power output of the fuel cell stack assembly.
- 14. The fuel cell system of claim 1, wherein the fuel cell system further includes means for controlling the operational states of the plurality of fuel cell stacks.
- 15. The fuel cell system of claim 1, wherein the fuel cell system further includes means for limiting the magnitude of the applied load.
- 16. The fuel cell system of claim 1, wherein the fuel cell system further includes means for selectively delivering at least one of a portion of the product hydrogen stream, an air stream and a cooling fluid stream to the plurality of fuel cell stacks.
- 17. The fuel cell system of claim 1, wherein the fuel cell system further includes means for regulating the current produced by the fuel cell stack assembly.
- 18. The fuel cell system of claim 1, wherein the fuel cell system further includes a power management module adapted to receive the electric current produced by the fuel cell stack assembly and to produce an output current therefrom.
- 19. The fuel cell system of claim 18, wherein the power management module includes a DC-DC converter adapted to selectively regulate the voltage of the current.
- 20. The fuel cell system of claim 19, wherein the converter is adapted to receive the current from the fuel cell stack assembly and to regulate the current to produce a current having a predetermined voltage.
- 21. The fuel cell system of claim 19, wherein the converter is adapted to increase the voltage of the current.
- 22. The fuel cell system of claim 19, wherein the converter is adapted to decrease the voltage of the current.
- 23. The fuel cell system of claim 18, wherein the power management module includes at least one inverter adapted to convert the current produced by the fuel cell stack assembly to an AC current.
- 24. The fuel cell system of claim 18, wherein the power management module includes a battery assembly adapted to receive and selectively store at least a portion of the current produced by the fuel cell stack assembly.
- 25. The fuel cell system of claim 24, wherein the battery assembly includes at least one battery and at least one charger.
- 26. The fuel cell system of claim 1, wherein the fuel cell system further includes a control system with a controller adapted to selectively regulate the operational states of the plurality of fuel cell stacks.
- 27. The fuel cell system of claim 26, wherein the controller is adapted to regulate the operational states of the plurality of fuel cell stacks responsive at least in part to the magnitude of the applied load.
- 28. The fuel cell system of claim 26, wherein the controller is adapted to regulate the operational states of the plurality of fuel cell stacks responsive at least in part to the flow rate of the product hydrogen stream.
- 29. The fuel cell system of claim 26, wherein the control system further includes a plurality of sensor assemblies associated with each of the fuel cell stacks, and further wherein the controller is adapted to regulate the operational states of the plurality of fuel cell stacks responsive at least in part to inputs from the sensor assemblies.
- 30. The fuel cell system of claim 1, wherein the fuel cell system includes a plurality of contactors, wherein each of the fuel cell stacks is associated with one of the plurality of contactors, and further wherein each of the plurality of contactors includes a plurality of operational states that include at least a first operational state, in which the corresponding fuel cell stack is isolated from the applied load, and a second operational state, in which the corresponding fuel cell stack is not isolated from the applied load.
- 31. The fuel cell system of claim 30, wherein the fuel cell system includes a control system with a controller in communication with the plurality of contactors and adapted to selectively control the operational states of the contactors.
- 32. The fuel cell system of claim 1, wherein the fuel cell system includes a manifold assembly adapted to receive at least a portion of the product hydrogen stream and to selectively distribute the portion of the product hydrogen stream to the plurality of fuel cell stacks.
- 33. The fuel cell system of claim 32, wherein the fuel cell system further includes a control system with a controller adapted to selectively regulate the operational states of the plurality of fuel cell stacks, and further wherein the controller communicates with the manifold assembly to selectively regulate the distribution of the product hydrogen stream between the plurality of fuel cell stacks.
- 34. The fuel cell system of claim 33, wherein the manifold assembly is further adapted to receive an air stream from an air delivery system and to selectively distribute the air stream to the plurality of fuel cell stacks, and further wherein the controller is adapted to selectively regulate the distribution of the air stream to the plurality of fuel cell stacks.
- 35. The fuel cell system of claim 32, wherein the manifold assembly is further adapted to receive an air stream from an air delivery system and to selectively distribute the air stream to the plurality of fuel cell stacks.
- 36. The fuel cell system of claim 35, wherein the fuel cell system includes a control system with a controller adapted to selectively regulate the distribution of the air stream by the manifold assembly to the plurality of fuel cell stacks.
- 37. The fuel cell system of claim 32, wherein the manifold assembly is further adapted to receive a cooling fluid stream from a cooling fluid delivery system and to selectively distribute the cooling fluid stream to the plurality of fuel cell stacks.
- 38. The fuel cell system of claim 37, wherein the fuel cell system includes a control system with a controller adapted to selectively regulate the distribution of the cooling fluid stream by the manifold assembly to the plurality of fuel cell stacks.
- 39. The fuel cell system of claim 1, wherein the fuel cell system further includes a manifold assembly adapted to receive an air stream from an air delivery system and to selectively distribute the air stream to the plurality of fuel cell stacks.
- 40. The fuel cell system of claim 39, wherein the manifold assembly is further adapted to only distribute the air stream to the fuel cell stacks that are in their first operational state.
- 41. The fuel cell system of claim 39, wherein the fuel cell system further includes a control system with a controller in communication with the manifold assembly, and further wherein the controller is adapted to regulate the distribution of the air stream to the fuel cell stacks.
- 42. The fuel cell system of claim 1, wherein the fuel cell system further includes a manifold assembly adapted to receive a cooling fluid stream from an air delivery system and to selectively distribute the cooling fluid stream to the plurality of fuel cell stacks.
- 43. The fuel cell system of claim 42, wherein the fuel cell system further includes a control system with a controller in communication with the manifold assembly, and further wherein the controller is adapted to regulate the distribution of the cooling fluid stream to the fuel cell stacks.
- 44. The fuel cell system of claim 1, wherein the fuel cell system further includes a control system with a controller adapted to selectively limit the magnitude of the applied load.
- 45. The fuel cell system of claim 44, wherein the control system is adapted to regulate the magnitude of the applied load responsive at least in part to the sum of the maximum rated power outputs of the fuel cell stacks in the fuel cell stack assembly.
- 46. The fuel cell system of claim 44, wherein the control system is adapted to regulate the magnitude of the applied load responsive at least in part to the sum of the maximum rated power outputs of the fuel cell stacks that are in their first operational state.
- 47. The fuel cell system of claim 1, wherein the fuel cell system includes an energy-consuming device adapted to apply at least a portion of the applied load to the fuel cell stack assembly.
- 48. The fuel cell system of claim 47, wherein the energy-consuming device includes a plurality of devices that are each adapted to apply a portion of the applied load, wherein each of the plurality of devices has a plurality of operational states that include at least a first operational state, in which the device is applying a portion of the applied load, and a second operational state, in which the device is not applying a portion of the applied load.
- 49. The fuel cell system of claim 48, wherein each of the plurality of devices includes a switching module and further wherein the switching modules are adapted to communicate with each other to regulate the operational states of the devices.
- 50. The fuel cell system of claim 49, wherein each of the plurality of devices has a priority relative to the rest of the plurality of devices, and further wherein the switching modules are adapted to selectively control the operational states of the devices responsive at least in part to the priority of the devices.
- 51. The fuel cell system of claim 1, wherein each of the fuel cell stacks includes a plurality of fuel cells.
- 52. The fuel cell system of claim 1, wherein each of the fuel cell stacks includes a plurality of fuel cells connected between common end plates.
- 53. The fuel cell system of claim 1, wherein the system further includes an air delivery system adapted to deliver air streams to each of the fuel cell stacks.
- 54. The fuel cell system of claim 1, wherein the system further includes a cooling fluid delivery system adapted to deliver a cooling fluid stream to each of the fuel cell stacks.
- 55. The fuel cell system of claim 1, wherein each of the fuel cell stacks is in fluid communication with a cooling fluid delivery system adapted to deliver a cooling fluid stream to a respective one of the fuel cell stacks.
- 56. The fuel cell system of claim 1, wherein the fuel processing assembly includes at least one fuel processor.
- 57. The fuel cell system of claim 1, wherein the fuel processing assembly includes at least one steam reformer.
- 58. A load control system for an energy-consuming device, the load control system comprising:
an energy-consuming device adapted to apply an applied load having a magnitude to an energy-producing device, wherein the energy-consuming device includes a plurality of devices that each have a plurality of operational states that include a first operational state, in which the device is applying at least a portion of the applied load, and a second operational state, in which the device is not applying at least a portion of the applied load; and a switching module assembly in communication with the plurality of devices and adapted to selectively control the operational states of the plurality of devices responsive at least in part to a predetermined hierarchy.
- 59. The load control system of claim 58, wherein the predetermined hierarchy is stored by the switching module assembly.
- 60. The load control system of claim 58, wherein the predetermined hierarchy includes at least two levels of hierarchy.
- 61. The load control system of claim 58, wherein the switching module assembly is adapted to control the operational states of the plurality of devices responsive at least in part to the magnitude of the applied load.
- 62. The load control system of claim 61, wherein responsive to an applied load having a magnitude that exceeds an available power output of the energy-producing device, the switching module assembly is adapted to switch at least one of the plurality of devices from its first operational state to its second operational state.
- 63. The load control system of claim 58, wherein the switching module assembly includes a plurality of switching modules associated with the plurality of devices.
- 64. The load control system of claim 63, wherein each of the plurality of devices communicates directly with one of the plurality of switching modules.
- 65. The load control system of claim 63, wherein each of the plurality of devices is electrically connected to one of the plurality of switching modules.
- 66. The load control system of claim 63, wherein each of the plurality of devices includes a plug and each of the plurality of switching modules is adapted to receive a plug.
- 67. The fuel cell system of claim 63, wherein each of the plurality of devices includes an integrated switching module.
- 68. The load control system of claim 58, wherein the switching module assembly communicates with a controller adapted to selectively control the operational state of the devices responsive at least in part to the magnitude of the applied load.
- 69. The load control system of claim 68, wherein responsive to an applied load having a magnitude that exceeds an available power output of the energy-producing device, the controller is adapted to switch at least one of the plurality of devices from its first operational state to its second operational state.
- 70. The load control system of claim 58, wherein the device includes a motor vehicle.
- 71. The load control system of claim 58, wherein the device includes a household.
- 72. The load control system of claim 58, wherein the device includes a sailboat.
- 73. A fuel cell system with stack redundancy, the system comprising:
a fuel processing assembly adapted to produce a product hydrogen stream from a feedstock; and a fuel cell stack assembly adapted to receive at least a portion of the product hydrogen stream from the fuel processing assembly and to produce an electric current therefrom to at least partially satisfy an applied load having a magnitude, wherein the fuel cell stack assembly includes a plurality of fuel cell stacks that each have a maximum rated power output, and further wherein the sum of the maximum rated power outputs of the plurality of fuel cell stacks is greater than a maximum desired power output of the fuel cell stack assembly.
- 74. The fuel cell system of claim 73, wherein the sum of the maximum rated power outputs of the plurality of fuel cell stacks is greater than the maximum desired power output of the fuel cell stack assembly by at least the maximum rated power output of one of the fuel cell stacks.
- 75. The fuel cell system of claim 73, wherein the sum of the maximum rated power outputs of the plurality of fuel cell stacks is greater than the maximum desired power output of the fuel cell stack assembly by at least the sum of the maximum rated power outputs of two of the fuel cell stacks.
- 76. A fuel cell system with fuel processor redundancy, the system comprising:
a fuel processing assembly adapted to produce a product hydrogen stream from a feedstock, wherein the fuel processing assembly includes a plurality of fuel processors that are each adapted to receive at least a portion of the feedstock and to produce at least a portion of the product hydrogen stream therefrom, wherein the fuel processing assembly is adapted to produce a maximum desired flow rate of the product hydrogen stream, wherein each of the plurality of fuel processors is adapted to produce an output stream having a maximum flow rate and forming at least a portion of the product hydrogen stream, and further wherein the sum of the maximum flow rates of the output streams is greater than the maximum desired flow rate of the product hydrogen stream. at least one fuel cell stack adapted to receive at least a portion of the product hydrogen stream and to produce an electric current therefrom.
- 77. The fuel cell system of claim 76, wherein the sum of the maximum flow rates of the output streams is greater than the maximum desired flow rate of the product hydrogen stream by at least the maximum flow rate of one of the fuel processors.
- 78. The fuel cell system of claim 76, wherein the sum of the maximum flow rates of the output streams is greater than the maximum desired flow rate of the product hydrogen stream by at least the sum of the maximum flow rates of two of the fuel processors.
RELATED APPLICATION
[0001] This application claims priority to U.S. Provisional Patent Application Serial No. 60/193,052, which was filed on Mar. 29, 2000, is entitled “Fuel Cell System,” and the complete disclosure of which is hereby incorporated by reference for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
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60193052 |
Mar 2000 |
US |