Claims
- 1. A fuel cell system comprising:
a fuel cell stack comprising a plurality of fuel cells, the fuel cells having a cathode gas diffusion barrier layer; a fuel system for supplying a fuel to the stack; a blower for supplying air to the stack at near-ambient pressure; a humidification device in fluid communication with an air stream supplied to the stack and a cathode exhaust stream exiting the stack for transferring water vapor from the cathode exhaust stream to the air stream; and a coolant loop for circulating a liquid coolant through the stack.
- 2. The fuel cell system of claim 1 wherein the blower is a variable-speed blower.
- 3. The fuel cell system of claim 1, further comprising an air filter located upstream of the humidification device and in fluid communication therewith.
- 4. The fuel cell system of claim 1 wherein the humidification device comprises a gas-exchange humidifier.
- 5. The fuel cell system of claim 1 wherein the humidification device comprises an enthalpy wheel.
- 6. The fuel cell system of claim 1 wherein the blower is located downstream of the humidification device.
- 7. The fuel cell system of claim 1, further comprising a cathode recycle loop for returning at least a portion of the cathode exhaust stream to the fuel cell stack.
- 8. The fuel cell system of claim 7, further comprising a damper disposed in the cathode recycle loop.
- 9. The fuel cell system of claim 7, further comprising a recycle blower disposed in the cathode recycle loop.
- 10. The fuel cell system of claim 7 wherein the cathode recycle loop is fluidly connected to the humidification device for supplying a remainder of the cathode exhaust stream thereto.
- 11. The fuel cell system of claim 1 wherein the fuel is substantially pure hydrogen.
- 12. The fuel cell system of claim 11 wherein the fuel supply system is dead-ended.
- 13. The fuel cell system of claim 11 wherein the fuel supply system comprises a hydrogen recycle loop.
- 14. The fuel cell system of claim 1 wherein the coolant loop further comprises a heat exchanger.
- 15. The fuel cell system of claim 14 wherein the heat exchanger comprises a radiator.
- 16. The fuel cell system of claim 1 wherein the coolant is selected from the group consisting of deionized water, ethylene glycol and mixtures thereof.
- 17. The fuel cell system of claim 1 wherein the gas diffusion barrier layer comprises an expanded graphite sheet material.
- 18. The fuel cell system of claim 1 wherein the gas diffusion barrier layer comprises a porous, electrically conductive material having a region filled with a solid, thereby reducing the porosity of the region.
- 19. The fuel cell system of claim 1 wherein the gas diffusion barrier layer comprises a laminate having a first layer interposed between a second layer and a fuel cell membrane, the first layer having a lower permeability to water vapor relative to the second layer.
- 20. The fuel cell system of claim 1 wherein the gas diffusion barrier layer comprises a microporous membrane.
- 21. A method of operating a fuel cell system, the system including a fuel cell stack and the fuel cell stack including a plurality of fuel cells having a cathode gas diffusion barrier layer, the method comprising:
supplying air to the stack at near-ambient pressure and a stoichiometry greater than 1; supplying a cathode exhaust stream to a humidification device; maintaining the relative humidity of the air below a stack inlet saturation point; maintaining the relative humidity of the cathode exhaust stream below a stack outlet saturation point; and operating the stack at a temperature greater than about 75° C.
- 22. The method of claim 21 wherein the air is supplied to the stack at a pressure of about 20 mbar to about 50 mbar.
- 23. The method of claim 21 wherein the air is supplied to the stack at a stoichiometry of about 1.2 to about 3.0.
- 24. The method of claim 21, further comprising increasing the air stoichiometry as a power output of the fuel cell system to an external load decreases.
- 25. The method of claim 21, further comprising decreasing the air stoichiometry as the stack temperature increases.
- 26. The method of claim 21, further comprising circulating a liquid coolant through the stack.
- 27. The method of claim 26, further comprising circulating the coolant through a heat exchanger.
- 28. The method of claim 21 wherein the air is supplied to the stack by a blower, the method further comprising:
monitoring an operating parameter of the stack indicative of the stack temperature; and varying the speed of the blower in response to the monitored parameter.
- 29. The method of claim 21, further comprising returning at least a portion of the cathode exhaust stream to the stack.
- 30. The method of claim 29, further comprising:
monitoring an operating parameter of the stack indicative of the stack temperature; and varying the portion of the cathode exhaust stream returned to the stack in response to the monitored parameter.
- 31. A fuel cell system comprising:
a fuel cell stack comprising a plurality of fuel cells, the fuel cells having a cathode gas diffusion barrier means; a fuel system for supplying a fuel to the stack; supply means for supplying air to the stack at near-ambient pressure; humidification means for transferring water vapor from a cathode exhaust stream exiting the stack with an air stream supplied to the stack; and a coolant loop for circulating a liquid coolant through the stack.
- 32. The fuel cell system of claim 31, further comprising:
a sensor for measuring an operating parameter indicative of an operating temperature of the stack; and control means adapted to receive an input from the sensor and control a stoichiometry of the air supplied to the stack by the supply means in response to the input.
- 33. The fuel cell system of claim 31, further comprising recycling means for returning at least a portion of the cathode exhaust stream to the stack.
- 34. The fuel cell system of claim 33, further comprising:
a sensor for measuring an operating parameter indicative of an operating temperature of the stack; and control means adapted to receive an input from the sensor and, in response to the input, control at least one of a stoichiometry of the air supplied to the stack by the supply means and the portion of the cathode exhaust stream returned to the stack by the recycling means.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Patent Application No. 60/451,943 filed Mar. 3, 2003, where this provisional application is incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60451943 |
Mar 2003 |
US |