Claims
- 1. A method of humidifying a process gas stream, the method comprising;
(a) humidifying the process gas stream at a first temperature so as to provide the process gas stream with excess humidity; (b) cooling the process gas stream at a second temperature, lower than the first temperature, to cause condensation of excess moisture; (c) removing excess condensed moisture from the process gas stream; and (d) delivering the process gas stream at a known temperature, whereby the relative humidity level in the process gas stream is determined from the ratio of the saturation pressures of the fifth and the said known temperatures.
- 2. A method as claimed in claim 1, which includes supplying the humidified process gas stream to a fuel cell, and providing the fuel cell with an outlet for exhausted process gas.
- 3. A method as claimed in claim 1, wherein step (d) includes heating the process gas stream to a third temperature greater than the second temperature.
- 4. A method as claimed in claim 3, which includes supplying the heated and humidified process gas stream to a fuel cell.
- 5. A method as claimed in claim 4, which includes delivering the process gas stream through a supply line to the fuel cell and heating the supply line with a heating element to maintain the process gas stream at the third temperature.
- 6. A method as claimed in claim 4, wherein said process gas stream comprises a fuel gas stream and wherein the method additionally includes:
(i) providing an oxidant gas stream; (ii) humidifying the oxidant gas stream at a fourth temperature, so as to provide the oxidant gas stream with excess humidity; (iii) cooling the oxidant gas stream to a fifth temperature lower than the fourth temperature, to cause condensation of excess moisture; (iv) removing excess condensed moisture from the oxidant gas stream; v) delivering the oxidant gas stream at a known temperature to the fuel cell, whereby the relative humidity level in the oxidant gas stream is determined from the ratio of the saturation pressures of the fifth and the said known temperatures.
- 7. A method as claimed in claim 6, in which step (v) includes heating the oxidant gas stream to a sixth temperature greater than the fifth temperature, and delivering the oxidant gas stream through a second supply line while maintaining the oxidant gas stream at the sixth temperature.
- 8. A method as claimed in claim 7, which includes heating the second supply line with a heating element, to maintain the temperature of the oxidant gas stream.
- 9. A method as claimed in any one of claims 1 to 8, which includes humidifying the process gas stream in step (a) by supplying steam into the process gas stream.
- 10. A method as claimed in claim 6, which includes supplying steam to both the fuel gas stream and the oxidant gas stream so as both to heat and to humidify the gas streams and so as to supersaturate the gas streams.
- 11. A method as claimed in claim 2, which includes recovering humidity from the exhausted process gas generated by the fuel cell power unit and using the recovered moisture to humidify the process gas stream.
- 12. A method as claimed in claim 11, wherein the fuel cell includes both a fuel gas stream and an oxidant stream, wherein the process gas stream comprises one of the fuel and oxidant streams, and wherein the method includes using the recovered humidity to humidify at least one of the fuel and oxidant streams upstream from the fuel cell.
- 13. A method as claimed in claim 12, wherein said process gas stream comprises the fuel gas stream, and wherein the method comprises recovering humidity from exhausted fuel gas and humidifying incoming fuel gas with the recovered humidity.
- 14. A method as claimed in any one of claims 1 to 5, wherein the first temperature is in the range 10° C. to 120° C.
- 15. A method as claimed in claim 14, wherein the second temperature is in the range 5° C. to 115° C.
- 16. A method as claimed in claim 3, 4 or 5, wherein the first temperature is in the range 10° C. to 120° C., wherein the second temperature is in the range 5° C. to 115° C., wherein the third temperature is in the range 10° C. to 120° C., and wherein the relative humidity of the process gas stream at the third temperature is in the range of 0 to 100%.
- 17. A method as claimed in claims 2, 4, 5 or 13, which includes providing the fuel cell with a proton exchange membrane.
- 18. An apparatus for humidifying a process gas stream, for a fuel cell, the apparatus comprising:
a first humidification unit having an inlet for the process gas stream, for adding humidity to the process gas stream at a first temperature, to a humidity in excess of a required humidity level; a first heat exchanger connected to the humidification unit, for cooling the process gas stream to a second, lower temperature, whereby excess moisture in the process gas stream condenses, and for removing the condensed moisture, whereby the process gas stream leaving the heat exchanger has a known temperature and a known relative humidity level.
- 19. An apparatus as claimed in claim 18, in combination with a fuel cell power unit having a first process gas inlet connected to the first heat exchanger, and an outlet for exhausted process gas.
- 20. An apparatus as claimed in claim 19, wherein each fuel cell of the fuel cell power unit includes a proton exchange membrane.
- 21. An apparatus as claimed in claim 18, which includes a first heater connected to the first heat exchanger, for heating the process gas stream to a third temperature, greater than the second temperature, whereby the process gas stream has a known relative humidity level.
- 22. An apparatus as claimed in claims 19, wherein the process gas comprises a fuel gas stream and wherein the fuel cell power unit includes a second inlet for an oxidant gas stream, wherein the first humidification unit, the first heat exchanger and the first heater are located in a first, fuel gas line connected to the first gas inlet of the fuel cell power unit, and wherein the apparatus includes a second, oxidant gas line and the apparatus includes, within the oxidant gas line:
a second humidification unit for humidifying the oxidant gas stream at a fourth temperature; and a second heat exchanger, connected to the second humidification unit, for cooling the oxidant gas stream to a fifth temperature lower than the fourth temperature, whereby excess moisture is condensed and separated from the oxidant gas stream.
- 23. An apparatus as claimed in claim 22, wherein the second, oxidant gas line includes a second heater connected to the second heat exchanger, for heating the oxidant gas stream to a sixth temperature greater than said fifth temperature.
- 24. An apparatus as claimed in claim 19, wherein the humidification unit includes a steam injector for injecting steam into the process gas stream.
- 25. An apparatus as claimed in claim 22, wherein each of the first and second humidification units includes a steam injector injecting steam in the respective gas stream.
- 26. An apparatus as claimed in claim 19, which includes a humidity recovery unit connected to the exhausted process gas outlet of the fuel cell power unit for recovering humidity in the exhausted gas generated by the fuel cell power unit and use the recovered humidity to humidify the process gas upstream of the fuel cell power unit.
- 27. An apparatus as claimed in claim 21 or 25, wherein the first heater and the second heater, when present, comprises an elongated heating means for maintaining the outlet line at the third temperature.
- 28. An apparatus as claimed in claim 22, wherein each of the first and second heat exchangers includes a first temperature control circuit, for controlling the temperature of the heat exchanger, the first temperature control circuit comprising a conduit for a fluid, a pump for pumping the fluid, and means for cooling the fluid.
- 29. An apparatus as claimed in claim 28, wherein each of the first temperature control circuits additionally includes a further heater for heating the respective fluid.
- 30. An apparatus as claimed in claim 28 or 29, wherein each of the first and second heaters comprises a further heat exchanger, and wherein a second temperature control circuit is provided for each further heat exchanger, for controlling the temperature thereof, each second temperature control circuit comprising a conduit for fluid, a pump for circulating the fluid and a third heater for heating the fluid.
- 31. An apparatus as claimed in claim 30, wherein each of the second temperature control circuits includes another heater for heating fluid therein.
RELATED APPLICATION
[0001] The following is a Continuation-in-Part Application to U.S. patent application Ser. No. 09/628,929, filed on Jul. 28, 2000.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09628929 |
Jul 2000 |
US |
Child |
09801916 |
Mar 2001 |
US |