Claims
- 1. A hybrid electric vehicle comprising:
a hydrogen powered internal combustion engine; an electric engine supplementing said hydrogen internal combustion engine; a rechargeable battery; and a source of hydrogen.
- 2. The hybrid electric vehicle according to claim 1, wherein said hydrogen internal combustion engine operates without a throttle.
- 3. The hybrid electric vehicle according to claim 1, wherein said hydrogen internal combustion engine comprises a plurality of cylinders.
- 4. The hybrid electric vehicle according to claim 3, further comprising a hydrogen fuel control system.
- 5. The hybrid electric vehicle according to claim 4, wherein said hydrogen fuel control system provides a fuel control signal based on a first signal and a second signal.
- 6. The hybrid electric vehicle according to claim 5, wherein said first signal is representative of a position of an accelerator pedal.
- 7. The hybrid electric vehicle according to claim 5, wherein said second signal is representative of the speed of said hydrogen internal combustion engine.
- 8. The hybrid electric vehicle according to claim 4, wherein said control system comprises an electric governor strategy control adapted to control fuel delivery versus engine speed at engine idle and maximum accelerator pedal position.
- 9. The hybrid electric vehicle according to claim 5, wherein a primary air stream is continuously supplied to said hydrogen internal combustion engine.
- 10. The hybrid electric vehicle according to claim 9, wherein said primary air stream is divided into a plurality of secondary air streams.
- 11. The hybrid electric vehicle according to claim 10, wherein a hydrogen fuel injector is connected to each of said secondary air streams.
- 12. The hybrid electric vehicle according to claim 11, wherein said hydrogen fuel injectors inject an amount of hydrogen into said secondary air streams based upon said fuel control signal.
- 13. The hybrid electric vehicle according to claim 12, wherein said secondary streams have a λ value between 1 and 10.
- 14. The hybrid electric vehicle according to claim 13, wherein said secondary streams have a λ value between 3 and 8.
- 15. The hybrid electric vehicle according to claim 14, wherein said secondary streams have a λ value between 5 and 7.
- 16. The hybrid electric vehicle according to claim 12, wherein said secondary streams are compressed and combusted in said cylinders.
- 17. The hybrid electric vehicle according to claim 16, wherein said secondary streams have a compression ratio between 12:1 and 15:1.
- 18. The hybrid electric vehicle according to claim 17, wherein said secondary streams have a compression ratio of 13:1.
- 19. The hybrid electric vehicle according to claim 12, wherein said hydrogen internal combustion engine operates in a normal operation mode and a cylinder deactivation mode.
- 20. The hybrid electric vehicle according to claim 19, wherein said hydrogen internal combustion engine operates in said cylinder deactivation mode during idling or light load conditions.
- 21. The hybrid electric vehicle according to claim 20, wherein during cylinder deactivation mode one or more of said hydrogen fuel injectors cease injecting fuel into one or more of said secondary streams while maintaining a continuous flow of air to said cylinders.
- 22. The hybrid electric vehicle according to claim 1, wherein said rechargeable battery is adapted to compensate for power loss resulting from powering said hydrogen powered internal combustion engine with hydrogen instead of a hydrocarbon fuel.
- 23. The hybrid electric vehicle according to claim 22, wherein said rechargeable battery provides a voltage greater than or equal to 12 volts.
- 24. The hybrid electric vehicle according to claim 23, wherein said rechargeable battery provides a voltage greater than or equal to 24 volts.
- 25. The hybrid electric vehicle according to claim 24, wherein said rechargeable battery provides a voltage greater than or equal to 36 volts.
- 26. The hybrid electric vehicle of claim 1, wherein said rechargeable battery has a peak power density of at least 700 Watts/kilogram.
- 27. The hybrid electric vehicle of claim 1, wherein said rechargeable battery has an energy density of at least 70 Watt-hours/kilogram.
- 28. The hybrid electric vehicle of claim 1, wherein said rechargeable battery has a peak power density of at least 1000 Watts/kilogram.
- 29. The hybrid electric vehicle of claim 1, wherein said source of hydrogen is a pressure containment vessel at least partially filled with a hydrogen storage alloy.
- 30. The hybrid electric vehicle of claim 29, wherein a exhaust stream from said hydrogen powered internal combustion engine is in thermal contact with said hydrogen storage alloy.
- 31. A method for powering a hybrid electric vehicle comprising:
supplying a continuous primary stream of air to a hydrogen powered internal combustion engine; dividing said primary stream of air into a plurality of secondary streams of air; dispersing an amount of hydrogen into said secondary streams of air; combusting said hydrogen in a plurality of cylinders contained within said hydrogen powered internal combustion engine with a spark; and ceasing addition of hydrogen to one or more of said secondary streams during idling or light load conditions while maintaining continuous flow of air to said cylinders.
- 32. The method according to claim 31, further comprising supplementing said hydrogen powered internal combustion engine with an electric engine powered by a rechargeable battery.
- 33. The hybrid vehicle according to claim 32, wherein said rechargeable battery is adapted to compensate for power loss resulting from powering said hydrogen powered internal combustion engine with hydrogen instead of a hydrocarbon fuel.
- 34. The method according to claim 33, wherein said rechargeable battery provides a voltage greater than or equal to 12 volts.
- 35. The method according to claim 33, wherein said rechargeable battery provides a voltage greater than or equal to 24 volts.
- 36. The method according to claim 33, wherein said rechargeable battery provides a voltage greater than or equal to 36 volts.
- 37. The method of claim 33, wherein said rechargeable battery has a peak power density of at least 700 Watts/kilogram.
- 38. The method of claim 33, wherein said rechargeable battery has an energy density of at least 70 Watt-hours/kilogram.
- 39. The method of claim 33, wherein said rechargeable battery has a peak power density of at least 1000 Watts/kilogram.
- 40. A method of compensating for the power loss of an internal combustion engine resulting from fueling said internal combustion engine with hydrogen instead of a hydrocarbon fuel in a hybrid electric vehicle comprising:
supplementing said internal combustion engine with an electric motor powered by a rechargeable battery; and modifying said rechargeable battery by increasing power of said rechargeable battery by at least 10% over the power of a rechargeable battery utilized in a hydrocarbon powered hybrid electric vehicle.
- 41. The method according to claim 40, wherein said rechargeable battery is modified by increasing power of said rechargeable battery by at least 20% over the power of said rechargeable battery utilized in a hydrocarbon powered hybrid electric vehicle.
- 42. The method according to claim 40, wherein said rechargeable battery provides a voltage greater than or equal to 12 volts.
- 43. The method according to claim 40, wherein said rechargeable battery provides a voltage greater than or equal to 24 volts.
- 44. The method according to claim 40, wherein said rechargeable battery provides a voltage greater than or equal to 36 volts.
- 45. The method of claim 40, wherein said rechargeable battery has a peak power density of at least 700 Watts/kilogram.
- 46. The method of claim 40, wherein said rechargeable battery has an energy density of at least 70 Watt-hours/kilogram.
- 47. The method of claim 40, wherein said rechargeable battery has a peak power density of at least 1000 Watts/kilogram.
RELATED APPLICATIONS
[0001] The present invention is a continuation-in-part of co-pending U.S. patent application Ser. No. 09/963,864, which is assigned to the same assignee as the current application, entitled “A Very Low Emission Hybrid Vehicle Incorporating An Integrated Propulsion System Including A Hydrogen Powered Internal Combustion Engine And A High Power Ni-MH Battery Pack”, filed Sep. 25, 2001, the disclosure of which is hereby incorporated by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09963864 |
Sep 2001 |
US |
Child |
10170141 |
Jun 2002 |
US |