Claims
- 1. A rotary engine comprising:
a combustion chamber; a semi-oblate cylindrical expansion chamber having a perimeter, the expansion chamber being in intermittent fluid communication with the combustion chamber; and a crescent-shaped piston cradled in a hub within the expansion chamber and motion controlled such that, as the hub rotates, a leading edge of the piston closely follows the perimeter of the expansion chamber whereby expanding gases from the combustion chamber drive the crescent-shaped piston in a generally continuous rotary motion.
- 2. The rotary engine of claim 1, further comprising a compressor to compress atmospheric pressure air and to direct the compressed air into the combustion chamber.
- 3. The rotary engine of claim 2, in which the compressor is a rotary compressor.
- 4. The rotary engine of claim 1, further comprising a pass gate sentry valve adapted to open when fuel combustion in the combustion chamber creates a predetermined pressure and to allow hot combustion gases produced thereby to expand into the expansion chamber.
- 5. The rotary engine of claim 1, further comprising a fuel injector to inject fuel into the combustion chamber.
- 6. The rotary engine of claim 1, further comprising a coolant injector to inject liquid coolant into the combustion chamber.
- 7. The rotary engine of claim 6, in which the liquid coolant comprises a solution of water and alkali solute.
- 8. The rotary engine of claim 6, in which the liquid coolant comprises a solution of water and calcium hydroxide.
- 9. The rotary engine of claim 1, in which the piston comprises a flat face, an arcuate face, and an indented contour in the flat face.
- 10. The rotary engine of claim 1, in which the piston further comprises a cam follower operably connected to the piston, the cam follower being adapted to guide the piston in its orientation in relation to the expansion chamber as the piston revolves.
- 11. A method for converting chemical energy to rotary motion, comprising:
compressing atmospheric air and forcing the compressed air into a combustion chamber; injecting fuel into the combustion chamber; burning the fuel; opening a pass gate sentry valve via application of pressure created by hot combustion gases created by the burning process; expanding the hot combustion gases into a semi-oblate combustion chamber; and forcing a crescent piston operably connected to a shaft to rotate by means of interaction with the hot combustion gases.
- 12. The method of claim 11, further comprising the step of injecting a liquid-based coolant into the combustion chamber.
- 13. The method of claim 12, further comprising the step of formulating the coolant of a solution of water and an alkali solute.
- 14. The method of claim 12, further comprising the step of formulating the coolant of a solution of water and calcium hydroxide.
- 15. A rotary engine comprising:
means for enclosing a combustion process and the combustion gases thereby produced; means for allowing expansion of the combustion gases; means for capturing the energy of the expanding combustion gases located within the expansion means, the energy capturing means being adapted to absorb energy throughout substantially the entirety of each revolution of the energy capture means; means for controlling the orientation of the energy capture means with relation to the expansion allowing means.
- 16. The rotary engine of claim 15, further comprising means for compressing atmospheric pressure air.
- 17. The rotary engine of claim 15, further comprising means for releasing hot combustion gases into the expansion means when the combustion gases reach a predetermined pressure.
- 18. The rotary engine of claim 15, further comprising means for injecting fuel into the enclosing means for combustion.
- 19. The rotary engine of claim 15, further comprising means for injecting coolant into the enclosing means.
- 20. A rotary engine comprising:
a compressor to compress atmospheric pressure air; a combustion chamber in which fuel combustion occurs, the combustion chamber being in controllable intermittent fluid communication with the compressor via a check valve; a pass gate sentry valve adapted to open when fuel combustion in the combustion chamber reaches a predetermined pressure; an expansion chamber having a generally circular-shaped perimeter flattened in one aspect, the expansion chamber being in intermittent fluid communication with the combustion chamber via the pass gate sentry valve; and a semicircular piston cradled in a hub and controlled such that, as the hub rotates, a leading edge of the piston closely follows the perimeter of the expansion chamber whereby expanding gases from the combustion chamber drive the semicircular piston in a generally continuous rotary motion.
- 21. A rotary engine, comprising:
a combustion chamber; an expansion chamber including a piston operably connected to a shaft, the piston being driven rotationally by expanding combustion gases, the piston and combustion chamber further being adapted such that the piston converts the energy of the expanding gases into rotational motion through substantially the entirety of each revolution of the piston.
- 22. The rotary engine of claim 21, further comprising a compressor to compress atmospheric pressure air and to direct the compressed air into the combustion chamber.
- 23. The rotary engine of claim 22, in which the compressor is a rotary compressor.
- 24. The rotary engine of claim 21, further comprising a pass gate sentry valve adapted to open when fuel combustion in the combustion chamber creates a predetermined pressure and to allow hot combustion gases produced thereby to expand into the expansion chamber.
- 25. The rotary engine of claim 21, further comprising a fuel injector to inject fuel into the combustion chamber.
- 26. The rotary engine of claim 21, further comprising a coolant injector to inject liquid coolant into the combustion chamber.
- 27. The rotary engine of claim 26, in which the liquid coolant comprises a solution of water and alkali solute.
- 28. The rotary engine of claim 26, in which the liquid coolant comprises a solution of water and calcium hydroxide.
- 29. The rotary engine of claim 21, further comprising a piston comprising a flat face, an arcuate face and a indented contour in the flat face.
- 30. The rotary engine of claim 29, in which the piston further comprises a cam follower operably connected to the piston, the cam follower being adapted to guide the piston in its orientation in relation to the expansion chamber as the piston revolves.
RELATED APPLICATION INFORMATION
[0001] This application claims benefit of U.S. Provisional Application No. 60/293,390, filed May 23, 2001, which is hereby incorporated by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60293390 |
May 2001 |
US |