Claims
- 1. A method of ceasing operation of an electric power generating system comprising a fuel cell stack connectable to an external circuit for supplying power to the external circuit, the stack comprising at least one solid polymer fuel cell, the system further comprising a fuel passage for directing a fuel stream through the stack and an oxidant passage for directing an oxidant stream through the stack, the method comprising:
(a) establishing a drying condition in which there is a net outflux of water from the stack; (b) operating the stack under the drying condition until the water content in the stack has been reduced; prior to interrupting the supply of power from the stack to the external circuit.
- 2. The method of claim 1 wherein step (a) comprises adjusting at least one stack operating parameter to cause the stack to operate under a drying condition in which there is a net outflux of water from the stack.
- 3. The method of claim 1 wherein the method further comprises:
(c) reducing the power supplied to the external circuit; prior to interrupting the supply of power from the stack to the external circuit.
- 4. The method of claim 3 wherein the method further comprises after step (c):
(d) varying the power supplied to the external circuit; prior to interrupting the supply of power from the stack to the external circuit.
- 5. The method of claim 4 wherein in step (d) the supply of power to the external circuit is intermittently reduced to zero.
- 6. The method of claim 4 wherein in step (c) the supply of power to the external circuit is reduced from a first power output to a second power output, and in step (d) the supply of power is varied between the second power output and a third power output.
- 7. The method of claim 6 wherein the second power output is about five to ten percent of the first power output and the third power output is less than the second power output.
- 8. The method of claim 6 wherein the third power output is zero.
- 9. The method of claim 4 wherein in step (d) the power output is varied about every one to ten seconds.
- 10. The method of claim 9 wherein in step (d) the power output is varied at a substantially constant frequency.
- 11. The method of claim 1 wherein the method further comprises:
(c) varying the power supplied to the external circuit; prior to interrupting the supply of power from the stack to the external circuit.
- 12. The method of claim 11 wherein in step (c) the supply of power to the external circuit is intermittently reduced to zero.
- 13. The method of claim 11 wherein in step (c) the supply of power to the external circuit is varied about every one to ten seconds.
- 14. The method of claim 13 wherein in step (c) the power output is varied at a substantially constant frequency.
- 15. The method of claim 2 wherein the at least one stack operating parameter is selected from the group consisting of:
the relative humidity of at least one of the oxidant and fuel streams; the stoichiometry of at least one of the oxidant and fuel streams; the flow rate of at least one of the oxidant and fuel streams; the pressure of at least one of the oxidant and fuel streams; and the stack temperature.
- 16. The method of claim 15 wherein prior to establishing a drying condition, a coolant is circulated through the stack to maintain the temperature of the stack within a desired operating range, and wherein in step (a), the stack temperature is increased by stopping coolant circulation through the stack.
- 17. The method of claim 15 wherein prior to establishing a drying condition at least one of the oxidant and fuel streams directed to the stack is humidified, and wherein in step (a) the degree of humidification of at least one of the oxidant and fuel streams is reduced.
- 18. The method of claim 17 wherein the degree of humidification of at least one of the oxidant and fuel streams is reduced by directing at least some of the stream to the stack without humidification.
- 19. The method of claim 18 wherein the degree of humidification of the stream is reduced by directing at least some of the stream to the stack in fluid isolation from the humidifier.
- 20. The method of claim 15, wherein in step (a), at least one of the oxidant and fuel stoichiometries is increased.
- 21. The method of claim 15 wherein in step (a), at least one of the oxidant and fuel stream flow rates is increased.
- 22. The method of claim 15 wherein in step (a), at least one of the oxidant and fuel stream pressures is decreased.
- 23. The method of claim 1 wherein in step (b), a parameter indicative of stack performance is monitored and the operation of the system is ceased when the stack performance falls below a threshold value.
- 24. The method of claim 23 wherein the parameter indicative of stack performance is selected from the group consisting of:
the resistance of at least one fuel cell in the stack, the impedance of at least one fuel cell in the stack, and the voltage of at least one fuel cell in the stack.
- 25. The method of claim 23 wherein the at least one solid polymer fuel cell comprises a membrane electrolyte, and the threshold value corresponds to a critical membrane moisture level.
- 26. A method of ceasing operation of an electric power generating system comprising a fuel cell stack connectable to an external circuit for supplying power to the external circuit, and the stack comprising at least one solid polymer fuel cell, the system further comprising a fuel passage for directing a fuel stream through the stack and an oxidant passage for directing an oxidant stream through the stack, the method comprising in sequential order:
(a) interrupting the supply of power from the fuel cell stack to the external circuit; (b) establishing a drying condition in which there is a net outflux of water from the stack; and (c) flowing at least one of the fuel and oxidant streams through the stack under the drying condition until the water content in the stack has been reduced.
- 27. The method of claim 26 wherein step (b) comprises adjusting at least one of the stack temperature, the oxidant and fuel stream relative humidities, the oxidant and fuel stream flow rates, and the oxidant and fuel stream pressures.
- 28. The method of claim 27 wherein prior to establishing a drying condition, a coolant is circulated through the stack to maintain the temperature of the stack within a desired operating range, and wherein in step (b), the stack temperature is increased by stopping coolant circulation through the stack.
- 29. The method of claim 27 wherein prior to step (a) at least one of the oxidant and fuel streams directed to the stack is humidified, and wherein in step (b) the degree of humidification of at least one of the oxidant and fuel streams is reduced.
- 30. The method of claim 27 wherein in step (b), at least one of the oxidant and fuel stream flow rates is increased.
- 31. The method of claim 27 wherein in step (b), at least one of the oxidant and fuel stream pressures is decreased.
- 32. The method of claim 27 wherein in step (c), a parameter indicative of the water content of the stack is monitored and the flow of at least one of the oxidant and fuel streams through the stack under the drying condition is stopped when the water content of the stack falls below a threshold value.
- 33. The method of claim 32 wherein the parameter indicative of the water content of the stack is selected from the group consisting of:
the resistance of at least one fuel cell in the stack, the impedance of at least one fuel cell in the stack, the open circuit voltage of at least one fuel cell in the stack, and the relative humidity of at least one of the oxidant and fuel streams exiting the stack.
- 34. The method of claim 32 wherein the at least one solid polymer fuel cell comprises a membrane electrolyte, and the threshold value corresponds to a critical membrane moisture level.
- 35. An electric power generation system comprising:
(a) a fuel cell stack connectable to an external circuit for supplying electric power to the external circuit, the stack comprising at least one solid polymer fuel cell and fluid flow passages through the stack; (b) a sensor assembly connected to the stack for monitoring at least one parameter indicative of stack performance; (c) a controller for controlling at least one stack operating parameter; and (d) a control system communicative with the sensor assembly and the stack operating parameter controller, such that upon receipt of a shut down instruction from the control system, the stack operating parameter controller is operable to adjust at least one stack operating parameter such that the stack operates in a drying condition that causes a net outflux of water from the stack, until the water content in the stack has been reduced.
- 36. The electric power generation system of claim 35 wherein the sensor assembly comprises a sensor for monitoring a parameter indicative of stack performance selected from the group consisting of:
the resistance of at least one fuel cell in the stack, the impedance of at least one fuel cell in the stack, and the voltage of at least one fuel cell in the stack.
- 37. The electric power generation system of claim 35 wherein the sensor assembly comprises at least one sensor for monitoring the at least one stack operating parameter.
- 38. The electric power generation system of claim 37 wherein the sensor assembly comprises a sensor for monitoring a stack operating parameter selected from the group consisting of:
the relative humidity of at least one of the oxidant and fuel streams; the stoichiometry of at least one of the oxidant and fuel streams; the flow rate of at least one of the oxidant and fuel streams; the pressure of at least one of the oxidant and fuel streams; and the stack temperature.
- 39. The electric power generation system of claim 35 wherein the controller comprises apparatus to control at least one stack operating parameter selected from the group consisting of:
the relative humidity of at least one of the oxidant and fuel streams; the stoichiometry of at least one of the oxidant and fuel streams; the flow rate of at least one of the oxidant and fuel streams; the pressure of at least one of the oxidant and fuel streams; and the stack temperature.
- 40. The electric power generation system of claim 35 wherein the control system comprises a microcontroller.
- 41. The electric power generation system of claim 39 further comprising a humidifier for humidifying at least one of a fuel or oxidant stream supplied to the stack during normal operation, and wherein the relative humidity control apparatus comprises a humidifier bypass system having at least one bypass conduit for directing at least some of at least one of fuel or oxidant to the stack in fluid isolation from the humidifier.
- 42. The electric power generation system of claim 41 wherein upon receipt of a shut down instruction from the control system, the humidifier bypass system directs at least some of the oxidant or fuel streams through the associated bypass conduit.
- 43. The electric power generation system of claim 42 wherein the bypass conduit comprises an inlet end connected to one of the reactant stream passages at a location upstream of the humidifier, and an outlet end connected to the same reactant stream passage at a location downstream of the humidifier.
- 44. The electric power generation system of claim 42 wherein the bypass conduit comprises an inlet end connectable to a reactant supply, and an outlet end connected to one of the reactant stream inlet passages at a location downstream of the humidifier.
- 45. The electric power generation system of claim 42 wherein the humidifier bypass system comprises a bypass inlet valve connected to one of the reactant passages at a location upstream of the humidifier, and a bypass outlet valve connected to the same reactant passage at a location downstream of the humidifier, and wherein the bypass conduit is connected to the bypass inlet and outlet valves.
- 46. The electric power generation system of claim 39 wherein the oxidant stoichiometry control apparatus comprises a compressor connected to the oxidant inlet passage.
- 47. The electric power generation system of claim 39 wherein the pressure control apparatus comprises a pressure regulator on at least one of an oxidant and fuel passage.
- 48. The electric power generation system of claim 39 wherein the stack temperature control apparatus comprises a coolant system having a coolant passage through the stack and a coolant pump communicative with the control system.
- 49. The electric power generation system of claim 35 wherein the control system is operable such that the drying operation is discontinued after the parameter indicative of stack performance measured by the sensor assembly reaches a threshold value.
CROSS-REFERENCE TO RELATED APPLICATION(S)
[0001] This application is related to and claims priority benefits from U.S. patent application Ser. No. 09/819,506, filed Mar. 28, 2001, entitled “Methods and Apparatus for Improving the Cold Starting Capability of a Fuel Cell”, which was converted to a provisional application by a petition filed Mar. 22, 2002. The '506 application is incorporated herein by reference in its entirety.