Claims
- 1. A method for operating a power generation system, comprising:
(a) supplying at least a first portion of fuel and a first portion of air to an engine, wherein said engine is configured to produce a hydrogen rich engine exhaust; (b) reacting said first portion of fuel and said first portion of air in said engine to produce a hydrogen rich engine exhaust; (c) introducing said hydrogen rich engine exhaust to a fuel intake of an SOFC, said SOFC having an air side having an air intake; (d) introducing a second portion of air to said air intake of said SOFC; and (e) ionizing oxygen in the second portion of air such that the ionized oxygen migrates from the air side to the fuel side of the SOFC where it reacts with said hydrogen rich engine exhaust produce to produce an SOFC effluent.
- 2. The method for operating a power generation system as in claim 1, further comprising:
directing said SOFC effluent through a catalytic converter having a converter exhaust.
- 3. The method for operating a power generation system as in claim 2, wherein said converter exhaust comprises negligible quantities of hydrocarbons, nitric oxide, carbon monoxide and particulates.
- 4. The method for operating a power generation system as in claim 1, further comprising:
using said SOFC effluent to heat said second portion of air prior to introduction into said air intake.
- 5. The method for operating a power generation system as in claim 1, further comprising:
introducing a second portion of fuel to the fuel intake.
- 6. The method for operating a power generation system as in claim 1, further comprising:
introducing said SOFC effluent to a turbine.
- 7. The method for operating a power generation system as in claim 1, further comprising:
compressing said first portion of air and said second portion of air.
- 8. The method for operating a power generation system as in claim 1, further comprising:
operating said engine to produce a hydrogen rich exhaust having a combined concentration of hydrogen and carbon monoxide greater than about 30% by volume, based on the total volume of said hydrogen rich exhaust.
- 9. The method for operating a power generation system as in claim 1, further comprising:
operating said system to produce a hydrogen rich exhaust having a combined concentration of hydrogen and carbon monoxide greater than about 70% by volume, based on the total volume of said hydrogen rich exhaust.
- 10. The method for operating a power generation system as in claim 1, further comprising:
directing said engine exhaust through at least one water shift catalyst device having an intake in fluid communication with said engine exhaust and an effluent in fluid communication with said SOFC fuel intake.
- 11. The method for operating a power generation system as in claim 8, wherein said engine comprises a free piston gas generator having a rich homogenous charge compression ignition.
- 12. The method for operating a power generation system as in claim 8, wherein said operating said engine to produce a hydrogen rich exhaust is with a member of the group consisting of an oxygen separator, a rich internal combustion engine cylinder system in at least part of said engine, a rich homogenous charge compression ignition, an optional dilute cylinder system in part of said engine, and combinations thereof.
- 13. The method for operating a power generation system as in claim 8, wherein said operating said engine to produce a hydrogen rich exhaust is with a turbo-generator system.
- 14. The method for operating a power generation system as in claim 13, wherein said turbo-generator system is selected from the group consisting of a turbo-generator system having a two stage combustor, and a turbo-generator system having a single stage combustor.
- 15. The method for operating a power generation system as in claim 1, further comprising:
generating a stream of oxygen rich effluent; supplying at least a portion of said oxygen rich effluent to said engine; and reacting said oxygen rich effluent with a portion of fuel to produce a hydrogen rich engine exhaust.
- 16. The method for operating a power generation system as in claim 15, wherein said generating is with a member of the group consisting of pressure swing absorption oxygen separators, SOFC oxygen separators, ceramic membrane oxygen separators, and combinations thereof.
- 17. A method for producing a hydrogen rich engine exhaust comprising:
(a) supplying at least a first portion of fuel and a first portion of air to an engine configured with a hydrogen rich exhaust device; and (b) reacting said first portion of fuel and said first portion of air in said engine to produce a hydrogen rich engine exhaust.
- 18. The method as in claim 17, wherein said hydrogen rich engine exhaust comprises a combined concentration of hydrogen and carbon monoxide greater than about 30%.
- 19. The method as in claim 17, wherein said hydrogen rich engine exhaust comprises a combined concentration of hydrogen and carbon monoxide greater than about 50%.
- 20. The method as in claim 17, further comprising:
operating said engine with a free piston gas generator.
- 21. The method as in claim 20, further comprising:
operating said engine with a rich homogenous charge compression ignition.
- 22. The method as in claim 17, further comprising:
operating said engine with an oxygen separator, a rich internal combustion engine cylinder system in at least part of said engine, a rich homogenous charge compression ignition, an optional dilute cylinder system in part of said engine, and combinations thereof.
- 23. The method as in claim 17, further comprising:
operating said engine with a turbo-generator system.
- 24. The method as in claim 23, further comprising:
operating said engine with a turbo-generator system selected from the group consisting of a turbo-generator system having a two stage combustor and a turbo-generator system having a single stage combustor, and combinations thereof.
- 25. The method as in claim 17, further comprising:
employing an oxygen separator to supply an oxygen stream effluent to an intake of said engine.
- 26. The method as in claim 25, wherein said oxygen separator is selected from the group consisting of pressure swing absorption oxygen separators, SOFC oxygen separators, ceramic membrane oxygen separators, and combinations thereof.
- 27. The method as in claim 25, wherein said hydrogen rich engine exhaust has a combined concentration of hydrogen and carbon monoxide greater than about 70%.
- 28. The method as in claim 22, wherein said rich cylinder system is operated with an oxygen enriched stream and said dilute cylinder system is run with an oxygen depleted stream.
- 29. The method as in claim 22, wherein said rich internal combustion engine cylinder system having said rich homogenous charge compression ignition is run at a rich equivalence ratio to generate said hydrogen rich exhaust.
- 30. The method as in claim 17, further comprising:
feeding an energy conversion device with said hydrogen rich exhaust.
- 31. The method as in claim 30, wherein said energy conversion device is selected from the group consisting of a fuel cell, a SOFC, a diesel engine, a gas turbine, a spark ignited engine, and a compression ignited engine.
- 32. The method as in claim 25, further comprising:
feeding an energy conversion device with said hydrogen rich exhaust.
- 33. The method as in claim 32, wherein said energy conversion device is selected from the group consisting of a fuel cell, a SOFC, a diesel engine, a gas turbine, a spark ignited engine, and a compression ignited engine.
- 34. A method for operating a power generation system comprising:
supplying at least a first portion of fuel and a first portion of air to an engine configured to produce a hydrogen rich engine exhaust; reacting said first portion of fuel and said first portion of air in said engine to produce a hydrogen rich engine exhaust; introducing said hydrogen rich engine exhaust, an alternate SOFC fuel, or a combination thereof, to a fuel intake of a SOFC, said SOFC having an air side having an air intake; introducing a second portion of air to said air intake of said SOFC; ionizing oxygen in the second portion of air such that the ionized oxygen migrates from the air side to the fuel side of said SOFC where it reacts with said hydrogen rich engine exhaust, said alternate SOFC fuel, or a combination thereof, to product an SOFC effluent, an oxygen depleted air stream, and electricity; utilizing said SOFC electricity to operate a base load of electrical accessories, provide traction power, recharge electrical sources, or a combination thereof, while said engine provides limited traction power.
- 35. A method for operating a power generation system as in claim 34 further comprising:
shutting down said engine; and supplying all of a vehicle's traction power, accessory power, or a combination thereof, from electricity produced by said SOFC.
- 36. A method for operating a power generation system as in claim 35, further comprising:
operating said system in a high power mode for providing high traction power, high accessory power, or a combination thereof, using electricity produced by said SOFC, using electricity produced by said SOFC in combination with a fast start-up reformer, using electricity produced by said SOFC in combination with turning on said engine for short cycles of engine operation, using electricity produced by said SOFC in combination with a battery, or a combination thereof.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a divisional application of and claims priority to U.S. patent application Ser. No. 09/294,679 (Attorney Docket No. DP-300006), of Jean Joseph Botti, et al., filed Apr. 19, 1999, entitled “Power Generation System and Method,” which is hereby incorporated by reference herein in its entirety.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09294679 |
Apr 1999 |
US |
Child |
10387663 |
Mar 2003 |
US |