Claims
- 1. An engine, comprising:
an input system for compressing a combustion fluid and feeding the combustion fluid into a combustion chamber of the engine; a first turbine connected to a pressure output of the combustion chamber and driving a load; and a second turbine connected to the pressure output of the combustion chamber and connected to drive said input system; whereby a decrease in a speed of said first turbine results in an increase of a speed of said second turbine.
- 2. The engine according to claim 1, wherein said input system is a rotary input system and whereby an increase and a decrease in an input speed of the input system respectively cause a corresponding increase and a decrease in a pressure output of combustion chamber.
- 3. The engine according to claim 1, which comprises a mechanical feedback link connecting said second turbine to said input system and driving said input system.
- 4. The engine according to claim 1, which comprises an electrical feedback link converting a power output of said second turbine to electrical energy and for driving said input system.
- 5. An engine, comprising:
an input system for compressing a combustion fluid and feeding the combustion fluid into a combustion chamber of the engine; a first turbine connected to a pressure output of the combustion chamber and driving a load; and a second turbine connected to the pressure output of the combustion chamber and connected to drive said input system; whereby a given output pressure from the combustion chamber drives said first and second turbines at a given, substantially constant combined speed, and the combined speed is formed by a speed of said first turbine and a speed of said second turbine.
- 6. The engine according to claim 5, wherein said input system is a rotary input system and whereby an increase and a decrease in an input speed of the input system respectively cause a corresponding increase and a decrease in a pressure output of combustion chamber.
- 7. The engine according to claim 5, which comprises a mechanical feedback link connecting said second turbine to said input system and driving said input system.
- 8. The engine according to claim 1, which comprises an electrical feedback link converting a power output of said second turbine to electrical energy and for driving said input system.
- 9. An engine, comprising:
an input system for compressing a combustion fluid and feeding the combustion fluid into a combustion chamber of the engine; a first turbine connected to a pressure output of the combustion chamber and driving a load; and a second turbine connected to the pressure output of the combustion chamber and connected to drive said input system; whereby a given output pressure from the combustion chamber drives said first and second turbines with a given, substantially constant combined output power, and the combined output power is formed by adding an output power of said first turbine and an output power of said second turbine.
- 10. The engine according to claim 9, wherein an increased load acting on said first turbine results in an increase in a power output of said second turbine.
- 11. The engine according to claim 9, wherein an increase and a decrease in the power output of said input system respectively cause a corresponding increase and a decrease in a power output of said combustion chamber.
- 12. The engine according to claim 9, which comprises a mechanical feedback link connecting said second turbine to said input system and driving said input system.
- 13. The engine according to claim 9, which comprises an electrical feedback link converting a power output of said second turbine to electrical energy and for driving said input system.
- 14. An engine, comprising:
an input system for compressing a combustion fluid and feeding the combustion fluid into a combustion chamber of the engine; a turbine connected to a pressure output of the combustion chamber; a differential connected to and driven by said turbine, said differential having a first output for driving a load and a second output linked to said input system and driving said input system.
- 15. The engine according to claim 14, wherein said input system is a rotary input system and whereby an increase and a decrease in an input speed of the input system respectively cause a corresponding increase and a decrease in a pressure output of combustion chamber.
- 16. The engine according to claim 14, which comprises a mechanical feedback link connecting said second output of said differential to said input system and driving said input system.
- 17. The engine according to claim 14, wherein said differential is a mechanical differential drive with said first and second outputs.
- 18. The engine according to claim 14, wherein said differential is an electrical drive system.
- 19. A combined input and output system for an internal combustion engine, comprising:
an input system disposed to propel a combustion fluid into a combustion chamber of the internal combustion engine; a first output system connected to a pressure output of the combustion chamber and driving a load; and a second output system connected to the pressure output of the combustion chamber and driving the rotary input system; whereby an increase in the load automatically causes a higher proportion of the pressure output of the combustion chamber to act on said second output system, to increase the input speed of said input system, and to increase the pressure output of the combustion chamber.
- 20. The engine according to claim 19, wherein said input system is a rotary input system and whereby an increase and a decrease in an input speed of the input system respectively cause a corresponding increase and a decrease in a pressure output of combustion chamber.
- 21. The combination according to claim 19, which comprises a mechanical feedback link connecting said power output system to said input system and driving said input system.
- 22. The combination according to claim 19, which comprises an electrical feedback link converting a power output of said power output system to electrical energy and for driving said input system.
- 23. The combination according to claim 19, wherein said output system includes two sets of turbines, wherein a first set of turbines is connected to the load and provides a power output of the internal combustion engine, and a second set of turbines is connected via a feedback link to said input system for driving said input system.
- 24. A combined input and output system for an internal combustion engine, comprising:
a rotary input system disposed to propel a fluid flow along a given input direction, said input system including an impeller having a rotary axis extending substantially parallel to the given input direction; an input conduit connecting said input system to a combustion chamber of the internal combustion engine; a rotary output system connected to a pressure output of the combustion chamber and being subjected to a pressurized gas flow from the combustion chamber flowing along a given output direction, said output system having a turbine driven by the pressurized gas flow and disposed to rotate about an axis substantially perpendicular to the given output direction.
- 25. The combination according to claim 24, wherein said input system includes a fluid displacement pump having:
a housing formed with a chamber having walls defined by two parallel, mutually intersecting cylindrical openings defining respective cylinder axes; and a double helix spindle impeller for pumping a fluid through said chamber, said double helix spindle impeller including two rotatable, substantially cylindrical axles each carrying a helically rising blade substantially sealing against said walls of said chamber and formed to pump fluid through said chamber upon being rotated.
- 26. The combination according to claim 25, wherein said blades of said double helix spindle impeller have a radius substantially equal to a spacing distance between said cylindrical axles.
- 27. The combination according to claim 25, wherein said blades enclose an angle of between approximately 45° and almost 90° with said cylindrical axles.
- 28. The combination according to claim 24, wherein said input conduit is a helically winding pipe.
- 29. The combination according to claim 24, which comprises a feedback link connecting said power output system to said input system and driving said input system.
- 30. The combination according to claim 24, wherein said output system includes two sets of turbines, a first set of turbines providing a power output of the internal combustion engine, and a second set of turbines being connected via a feedback link to said input system for driving said input system.
Priority Claims (1)
Number |
Date |
Country |
Kind |
10/2083 |
May 1999 |
NL |
|
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This is a continuation-in-part of my copending application No. 09/780,302, filed Feb. 9, 2001; which was a division of my earlier application No. 09/503,665, filed Feb. 14, 2000, now U.S. Pat. No. 6,257,195. The entire contents of my earlier documents are herein incorporated by reference.
Divisions (1)
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Number |
Date |
Country |
Parent |
09503665 |
Feb 2000 |
US |
Child |
09780302 |
Feb 2001 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09780302 |
Feb 2001 |
US |
Child |
10075537 |
Feb 2002 |
US |