Claims
- 1. A combustion engine comprised of (i) at least one compression stage, (ii) at least one combustion unit, and (iii) at least one expansion stage, wherein:a) the compression stage is comprised of a first housing portion defining two or more overlapping cylindrical bores and two or more cylindrical compression rotors which are disposed within the first housing portion and concentrically aligned within the bores respectively so that the compression rotors are in substantially sealing relation with one another at their respective pitch diameters, the compression stage being configured to (1) receive a fluid volume through a fluid inlet in the first housing portion, (2) compress the fluid volume, and (3) convey at least a portion of the compressed fluid volume to the combustion unit, and b) the expansion stage is comprised of a second housing portion defining two or more overlapping cylindrical bores and two or more cylindrical expansion rotors which are disposed within the second housing portion and concentrically aligned within the bores respectively so that the expansion rotors are in substantially sealing relation with one another at their respective pitch diameters, the expansion stage being configured to receive an expanding combustion volume from the combustion unit and to convey the combustion volume out of the second housing portion through an exhaust port, the combustion volume imparting a force to the expansion rotors, the force urging the expansion rotors to rotate.
- 2. A combustion engine according to claim 1 wherein the second housing portion and associated expansion rotors are cooled by a circulating fluid.
- 3. A combustion engine according to claim 1 wherein each of the compression and expansion rotors is comprised of at least two male lobes diametrically opposed from one another, each lobe extending the entire axial length of its associated rotor and extending radially from the rotor axis of rotation beyond the rotor pitch diameter so as to be in sufficiently close proximity to an adjacent surface of the respective cylindrical bore so that a seal may be formed between the lobe and the adjacent surface of the respective cylindrical bore during rotor rotation.
- 4. A combustion engine according to claim 3 wherein each of the rotors further defines at least two female grooves extending inwardly toward the rotational axis from their respective rotor pitch diameter, the grooves of each rotor being diametrically opposed from one another and configured for receiving a respective lobe on the adjacent rotor.
- 5. A combustion engine according to claim 4 wherein each of the female grooves is circumferentially disposed in the range of about 0° to about 90° from an adjacent lobe.
- 6. A combustion engine according to claim 5 wherein each of the female grooves is circumferentially disposed in the range of about 45° to about 90° from an adjacent lobe.
- 7. A combustion engine according to claim 6 wherein each of the female grooves is circumferentially disposed about 90° from an adjacent lobe.
- 8. A combustion engine according to claim 1 wherein a portion of the compressed fluid volume from the compression stage is circulated through at least a portion of the second housing portion.
- 9. A combustion engine according to claim 8 wherein a portion of the compressed fluid volume from the compression stage is circulated through at least one of the corresponding expansion rotors.
- 10. A combustion engine according to claim 1 wherein the fluid volume displaced by the engine may be circulated through the engine via an open cycle.
- 11. A combustion engine according to claim 1 wherein the fluid volume displaced by the engine may be circulated through the engine via a closed cycle.
- 12. A combustion engine according to claim 1 wherein the compression stage is comprised of a series of two or more compression sub-stages, the compression sub-stages being comprised of progressively smaller clearance volumes, each clearance volume being defined by the respective sub-stage overlapping housing bores and the corresponding compression rotors therein.
- 13. A combustion engine according to claim 12 wherein the expansion stage is comprised of a series of two or more expansion sub-stages, the expansion sub-stages being comprised of progressively larger clearance volumes, each clearance volume being defined by the respective sub-stage overlapping housing bores and the corresponding expansion rotors therein.
- 14. A combustion engine according to claim 13 wherein each of the compression and expansion rotors is comprised of at least two male lobes diametrically opposed from one another, each lobe extending the entire axial length of its associated rotor and extending radially from the rotor axis of rotation beyond the rotor pitch diameter so as to be in sufficiently close proximity to an adjacent surface of the respective cylindrical bore so that a seal may be formed between the lobe and the adjacent surface of the respective cylindrical bore during rotor rotation.
- 15. A combustion engine according to claim 14 wherein each of the rotors further defines at least two female grooves extending inwardly toward the rotational axis from their respective rotor pitch diameter, the grooves of each rotor being diametrically opposed from one another and configured for receiving a respective lobe on the adjacent rotor.
- 16. A combustion engine according to claim 15 wherein a portion of the compressed fluid volume from the compression stage is circulated through at least a portion of the second housing portion.
- 17. A combustion engine according to claim 16 wherein a portion of the compressed fluid volume from the compression stage is circulated through at least one of the corresponding expansion rotors.
- 18. A combustion engine according to claim 15 wherein the fluid volume displaced by the engine may be circulated through the engine via an open cycle.
- 19. A combustion engine according to claim 15 wherein the fluid volume displaced by the engine may be circulated through the engine via a closed cycle.
- 20. A combustion engine according to claim 1 wherein the expansion stage is comprised of a series of two or more expansion sub-stages, the expansion sub-stages being comprised of progressively larger clearance volumes, each clearance volume being defined by the respective sub-stage overlapping housing bores and the corresponding expansion rotors therein.
- 21. A combustion engine according to claim 1 wherein the rotors of at least one pair of rotors are asymmetrical with respect to their respective lobe and groove configuration and/or pitch diameters.
- 22. A method of imparting rotational force to a drive shaft, the method comprising:a) introducing a fluid volume into a compression stage comprised of a first housing portion which defines two or more overlapping cylindrical bores and two or more cylindrical compression rotors disposed within the first housing portion and concentrically aligned within the bores respectively so that the compression rotors may be in substantially sealing relation with one another at their respective pitch diameters during rotation, b) compressing the fluid volume, c) conveying at least a portion of the compressed fluid volume to a combustion unit, wherein the compressed fluid volume is mixed with a fuel which is then ignited to form an expanding combustion volume, d) introducing the expanding combustion volume into an expansion stage comprised of a second housing portion defining two or more overlapping cylindrical bores and two or more cylindrical expansion rotors which are disposed within the second housing portion and concentrically aligned within the bores respectively so that the expansion rotors may be in substantially sealing relation with one another at their respective pitch diameters during rotation, the expansion rotors being operatively coupled to the drive shaft so that rotation of the expansion rotors urges rotation of the drive shaft, and e) conveying the expanding combustion volume through the second housing portion exhaust port while the combustion volume imparts a force to the expansion rotors urging the rotors to rotate.
- 23. A method according to claim 22 wherein the compression stage is comprised of a series of two or more compression sub-stages, the compression sub-stages being comprised of progressively smaller clearance volumes, each clearance volume being defined by respective sub-stage overlapping housing bores and the corresponding compression rotors therein.
- 24. A method according to claim 23 wherein the expansion stage is comprised of a series of two or more expansion sub-stages, the expansion sub-stages being comprised of progressively larger clearance volumes, each clearance volume being defined by respective sub-stage overlapping housing bores and the corresponding expansion rotors therein.
REFERENCE TO RELATED APPLICATION
This application claims the benefit of U.S. Provisional Patent Application No. 60/132,442 filed on May 4, 1999.
US Referenced Citations (11)
Provisional Applications (1)
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Number |
Date |
Country |
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60/132442 |
May 1999 |
US |