Claims
- 1. A fuel cell power plant having a plurality of functionally integrated components including a fuel cell assembly provided with a fuel stream, an oxidant stream and a coolant stream, said fuel cell power plant further comprising:
a mass and heat recovery device for promoting a transfer of thermal energy and moisture between a first gaseous stream and a second gaseous stream; a burner for processing said fuel exhausted from said fuel cell assembly during operation thereof and exhausting a burner gaseous stream containing thermal energy and moisture; and a housing chamber in which said oxidant stream exhausted from said fuel cell assembly merges with said burner gaseous stream to form said first gaseous stream.
- 2. The fuel cell power plant having a plurality of functionally integrated components according to claim 1, wherein:
said coolant stream exhausted from said fuel cell assembly is provided to said housing chamber, wherein said oxidant stream exhausted from said fuel cell assembly merges with said burner gaseous stream in the presence of said exhausted coolant stream.
- 3. The fuel cell power plant having a plurality of functionally integrated components according to claim 2, wherein:
said oxidant stream is provided to said mass and heat recovery device prior to being provided to said fuel cell assembly; and said second gaseous stream is comprised of said oxidant stream.
- 4. The fuel cell power plant having a plurality of functionally integrated components according to claim 3, wherein:
said first gaseous stream is provided to said mass and heat recovery device in a counter-current manner to said second gaseous stream, wherein said second gaseous stream absorbs thermal energy and moisture from said first gaseous stream.
- 5. The fuel cell power plant having a plurality of functionally integrated components according to claim 2, wherein:
said housing chamber further comprising a degasifying portion and an accumulator portion.
- 6. The fuel cell power plant having a plurality of functionally integrated components according to claim 5, wherein:
said degasifying portion cleanses said exhausted coolant stream by promoting striping of contaminants from said exhausted coolant stream; and said accumulator collects said cleansed coolant stream.
- 7. The fuel cell power plant having a plurality of functionally integrated components according to claim 6, wherein:
said degasifiying portion comprising one of a packed bed, a wetted film and a spray tower.
- 8. The fuel cell power plant having a plurality of functionally integrated components according to claim 4, wherein:
said first gaseous stream is vented from said fuel cell power plant subsequent to interacting with said second gaseous stream
- 9. The fuel cell power plant having a plurality of functionally integrated components according to claim 1, wherein:
said mass and heat recovery device is comprised of a hydrophillic matrix having pores formed therein, said pores adapted to be filed with a liquid transfer medium; and said liquid transfer medium comprising one of an aqueous salt solution, an aqueous acid solution, an organic antifreeze solution and water.
- 10. The fuel cell power plant having a plurality of functionally integrated components according to claim 1, further comprising:
a nozzle assembly oriented within said housing chamber and adjacent an inlet opening of said burner gaseous stream, said nozzle assembly injecting a predetermined quantity of moisture into said burner gaseous stream during operation.
- 11. The fuel cell power plant having a plurality of functionally integrated components according to claim 10, wherein:
said predetermined quantity of moisture injected by said nozzle assembly is automatically controlled in dependence upon one of a moisture sensor in said fuel cell power plant and a load of said fuel cell power plant.
- 12. The fuel cell power plant having a plurality of functionally integrated components according to claim 10, wherein:
said predetermined quantity of moisture injected by said nozzle assembly is supplied at a substantially uniform rate.
- 13. A fuel cell power plant having a plurality of functionally integrated components including a cell stack assembly having a plurality of fuel cell assemblies in electrical communication with one another, wherein said cell stack assembly is provided with a fuel stream, an oxidant stream and a coolant stream, said fuel cell power plant comprising:
an mass and heat recovery device for promoting a transfer of thermal energy and moisture between a first gaseous stream and a second gaseous stream; a burner for processing said fuel exhausted from said cell stack assembly during operation thereof and exhausting a burner gaseous stream containing thermal energy and moisture; and a housing chamber in which said oxidant stream exhausted from said cell stack assembly merges with said burner gaseous stream to form said first gaseous stream.
- 14. The fuel cell power plant having a plurality of functionally integrated components according to claim 13, wherein:
said coolant stream exhausted from said cell stack assembly is provided to said housing chamber, wherein said oxidant stream exhausted from said cell stack assembly merges with said burner gaseous stream in the presence of said exhausted coolant stream.
- 15. The fuel cell power plant having a plurality of functionally integrated components according to claim 14, wherein:
said oxidant stream is provided to said mass and heat recovery device prior to being provided to said cell stack assembly; and said second gaseous stream is comprised of said oxidant stream.
- 16. The fuel cell power plant having a plurality of functionally integrated components according to claim 15, wherein:
said first gaseous stream is provided to said mass and heat recovery device in a counter-current manner to said second gaseous stream, wherein said second gaseous stream absorbs thermal energy and moisture from said first gaseous stream.
- 17. The fuel cell power plant having a plurality of functionally integrated components according to claim 14, wherein:
said housing chamber further comprising a degasifying portion and an accumulator portion.
- 18. The fuel cell power plant having a plurality of functionally integrated components according to claim 17, wherein:
said degasifying portion cleanses said exhausted coolant stream by promoting striping of contaminants from said exhausted coolant stream; and said accumulator collects said cleansed coolant stream.
- 19. The fuel cell power plant having a plurality of functionally integrated components according to claim 18, wherein:
said degasifiying portion comprising one of a packed bed, a wetted film and a spray tower.
- 20. The fuel cell power plant having a plurality of functionally integrated components according to claim 16, wherein:
said first gaseous stream is vented from said fuel cell power plant subsequent to interacting with said second gaseous stream.
- 21. The fuel cell power plant having a plurality of functionally integrated components according to claim 13, wherein:
said mass and heat recovery device is comprised of a hydrophillic matrix having pores formed therein, said pores adapted to be filed with a liquid transfer medium; and said liquid transfer medium comprising one of an aqueous salt solution, an aqueous acid solution, an organic antifreeze solution and water.
- 22. The fuel cell power plant having a plurality of functionally integrated components according to claim 13, further comprising:
a nozzle assembly oriented within said housing chamber and adjacent an inlet opening of said burner gaseous stream, said nozzle assembly injecting a predetermined quantity of moisture into said burner gaseous stream during operation.
- 23. The fuel cell power plant having a plurality of functionally integrated components according to claim 22, wherein:
said predetermined quantity of moisture injected by said nozzle assembly is automatically controlled in dependence upon one of a moisture sensor in said fuel cell power plant and a load of said fuel cell power plant.
- 24. The fuel cell power plant having a plurality of functionally integrated components according to claim 23, wherein:
said predetermined quantity of moisture injected by said nozzle assembly is supplied at a substantially uniform rate.
- 25. A method of functionally integrating components of a fuel cell power plant, said fuel cell power plant including a fuel cell assembly supplied with and exhausting a fuel stream, an oxidant stream and a coolant stream, and a burner for processing said exhausted fuel stream and issuing therefrom a burner gaseous stream, said method comprising the steps of:
merging said exhausted oxidant stream, said burner gaseous stream and said exhausted coolant stream in a common chamber, said common chamber exhausting a chamber gaseous stream therefrom; providing an mass and heat recovery device for promoting a transfer of thermal energy and moisture between adjacent gaseous streams; orientating said common chamber and said mass and heat recovery device to be in fluid communication with one another; passing said oxidant stream through said mass and heat recovery device prior to supplying said oxidant stream to said fuel cell assembly; and passing said chamber gaseous stream through said mass and heat recovery device in a counter-current manner to said oxidant stream.
- 26. A method of functionally integrating components of a fuel cell power plant according to claim 25, said method further comprising the steps of:
injecting a predetermined quantity of moisture within said common chamber and adjacent said burner gaseous stream, said predetermined quantity of moisture being provided at a substantially uniform rate.
- 27. A method of functionally integrating components of a fuel cell power plant, said fuel cell power plant including a cell stack assembly having a plurality of fuel cell assemblies in electrical communication with one another, wherein said cell stack assembly is supplied with and exhausts a fuel stream, an oxidant stream and a coolant stream, said fuel cell power plant further including a burner for processing said exhausted fuel stream and issuing therefrom a burner gaseous stream, said method comprising the steps of:
merging said exhausted oxidant stream, said burner gaseous stream and said exhausted coolant stream in a common chamber, said common chamber exhausting a chamber gaseous stream therefrom; providing a mass and heat recovery device for promoting a transfer of thermal energy and moisture between adjacent gaseous streams; orientating said common chamber and said mass and heat recovery device to be in fluid communication with one another; passing said oxidant stream through said mass and heat recovery device prior to supplying said oxidant stream to said cell stack assembly; and passing said chamber gaseous stream through said mass and heat recovery device in a counter-current manner to said oxidant stream.
- 28. A method of functionally integrating components of a fuel cell power plant according to claim 27, said method further comprising the steps of:
injecting a predetermined quantity of moisture within said common chamber and adjacent said burner gaseous stream, said predetermined quantity of moisture being provided at a substantially uniform rate.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of pending U.S. patent application Ser. No. 09/544,103, entitled “Functional Integration Of Multiple Components For A Fuel Cell Power Plant”, filed on Apr. 6, 2000 and herein incorporated by reference in its entirety.
Continuations (1)
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Number |
Date |
Country |
Parent |
09544103 |
Apr 2000 |
US |
Child |
09966978 |
Sep 2001 |
US |