Claims
- 1. An improved rotary machine which includes:
a housing having formed therein a generally elongate cavity, said cavity being formed by a pair of adjoining, partially overlapping cylindrical bores, each said bore being separated from an adjoining bore by a pair of non-joining partition walls; a pair of non-cylindrical rotors arranged in said pair of adjoining bores, each said rotor having a curved outer surface formed of a plurality of contiguous mutually tangential curved portions, wherein each said rotor is disposed in one of said bores for synchronized, non-touching and same-directional rotation with the other of said pair of rotors; a pair of rotor shafts associated with each said pair of rotors, each said rotor shaft extending through one of said bores, and mounted transversely to each said rotor so as to provide eccentric rotation thereof in said bore; a gear assembly and a driver associated with said rotor shafts, said assembly and said driver, cooperating to provide synchronized same directional rotation of said rotor shafts; and a plurality of gas ports formed in said housing and communicating with said elongate cavity thereof, for permitting selectable intake and exhaust of working gases, wherein, introduction of a working gas into interactive association with said rotors causes rotation of said pair of rotors and thus also of said driver.
- 2. A machine according to claim 1, wherein each said bore has a geometric center, and each said rotor is mounted for rotation about a rotation axis spaced from said geometric center by a predetermined eccentricity;
each said cavity is bounded by a pair of parallel wall surfaces transverse to said rotation axis; said plurality of gas ports includes at least a pair of gas ports provided in communication with each said bore, wherein a first of said gas ports is arranged at a first radius from said geometric center and a second of said gas ports is arranged at a second radius from said geometric center, wherein said second radius has a magnitude smaller than that of said first radius; and wherein each said rotor is operative to rotate within one of said bores so as to periodically uncover said first port, thereby to enable a flow therethrough of a working gas.
- 3. A machine according to claim 2, wherein said pair of rotors is disposed in substantially equal angular orientation relative to said rotation axes thereof.
- 4. A machine according to claim 2, wherein each said rotor has a pair of flat, parallel surfaces disposed in dynamic, non-touching, sealing relation with said pair of parallel wall surfaces of each said cavity, and each said rotor has formed therein a throughflow portion which is formed so as to be brought periodically into communicative association with the interior of said cavity and with said second gas port, so as to facilitate gas communication therebetween.
- 5. A machine according to claim 4, wherein each said pair of rotors includes first and second rotors arranged for rotation within a predetermined pair of adjoining, respective, first and second bores such that said outer surfaces of said first and second rotors are always in dynamic, non-touching, sealing relation with each other.
- 6. A machine according to claim 5, wherein said machine is an internal combustion engine, and said rotors are operative, during said rotation thereof, to cooperate with said partition walls and predetermined portions of said side walls so as to periodically form combustion chambers therewith, and wherein said housing and said rotors are formed of a substantially non-heat conducting material, thereby to enable an elevated temperature to be sustained within said combustion chambers during operation of said engine.
- 7. A machine according to claim 6, wherein said elevated temperature, once attained during operation of said engine, is sufficient to cause combustion of an air-fuel mixture in said combustion chambers, even in the absence of an air compression ratio of greater than 1:19.
- 8. A machine according to claim 6, wherein said substantially non-heat conducting material is a ceramic material.
- 9. A machine according to claim 5, wherein said first port is a working gas intake port, and said second port is a working gas exhaust port, and wherein each said pair of rotors are operative to rotate through a working cycle having first and second portions,
wherein, during said first portion of said working cycle, said first and second rotors are operative to rotate into first positions whereat they are initially spaced from a first side of said cavity so as to define a first working space therewith, and said first rotor is operative to uncover said working gas intake port in said first bore thereby to admit air into said space;
said first rotors and second rotors are operative to rotate into second positions so as to reduce the volume of said first working space and thus compress the working gas therein; and said first rotors and second rotors are operative to be rotated into third positions in response to an expansion of the working gas in said first working space, and such that said second rotor is operative to bring said throughflow portion thereof into communicative association with the interior of said cavity and with said exhaust port in said second bore, so as to facilitate exhausting of working gas from said second working space. and wherein, during said second portion of said working cycle,
said first and second rotors are operative to rotate into fourth positions whereat they are initially spaced from a second side of said cavity, opposite said first side of said cavity, so as to define a second working space therewith, and said second rotor is operative to uncover said working gas intake port in said second bore thereby to admit air into said second working space; said first rotors and second rotors are operative to rotate into fifth positions so as to reduce the volume of said second working space and thus compress the working gas therein; and said first rotors and second rotors are operative to rotate into sixth positions so as to permit expansion of the working gas in said second working space, and such that said first rotor is operative to bring said throughflow portion thereof into communicative association with the interior of said cavity and with said exhaust port in said first bore, so as to facilitate exhausting of working gas from said second working space.
- 10. A machine according to claim 9, wherein, during said first portion of the working cycle, as said first rotors and second rotors rotate into said third positions, said first rotor is operative to uncover said intake port in said first bore, thereby to permit a throughflow between said intake port in said first bore, said first working space, said throughflow portion of said second rotor, and said exhaust port in said second bore;
and wherein, during said second portion of the working cycle, as said first rotors and second rotors rotate into said sixth positions, said second rotor is operative to uncover said intake port in said second bore, thereby to permit a throughflow between said intake port in said second bore, said second working space, said throughflow portion of said first rotor, and said exhaust port in said first bore.
- 11. A machine according to claim 10, wherein said machine is an internal combustion engine, said first and second working spaces are first and second combustion chambers, said working gas intake ports are air intake ports, and said working gas exhaust ports are combustion gas exhaust ports,
and wherein said machine also includes at least first and second fuel injectors for injecting fuel into said first and second combustion chambers so as to provide fuel-air mixtures therein and so also as to enable combustion of the fuel-air mixtures, thereby to provide a rotational force on said second rotor during said first portion of said working cycle, and on said first rotor during said second portion of said working cycle.
- 12. A machine according to claim 11, and also including ignition apparatus associated with said first and second combustion chambers, for selectably igniting the fuel-air mixtures therein.
- 13. A machine according to claim 1, wherein said machine is a motor, associable with an external source of pressurized working gas, wherein each said bore has a geometric center, and each said rotor is mounted for rotation about a rotation axis spaced from said geometric center by a predetermined eccentricity;
each said cavity is bounded by a pair of parallel wall surfaces transverse to said rotation axis; said plurality of gas ports includes at least a pair of gas ports provided in each said bore, wherein a first of said gas ports is arranged at a first radius from said geometric center and a second of said gas ports is arranged at a second radius from said geometric center, wherein said second radius has a magnitude larger than that of said first radius; and wherein each said rotor is operative to rotate within one of said bores so as to periodically uncover said second port, thereby to enable a flow therethrough of a working gas.
- 14. A machine according to claim 13, wherein each said rotor has a pair of flat, parallel surfaces disposed in dynamic, non-touching, sealing relation with said pair of parallel wall surfaces of each said cavity, and each said rotor has formed therein a throughflow portion which is formed so as to be brought periodically into communicative association with the interior of said cavity and with said first gas port, so as to facilitate gas communication therebetween.
- 15. A machine according to claim 14, wherein each said pair of rotors includes first and second rotors, each arranged for rotation within a predetermined pair of adjoining, respective, first and second bores such that said outer surfaces of said first and second rotors are always in dynamic, non-touching, sealing relation with each other.
- 16. A machine according to claim 15, wherein said first port is a pressurized working gas intake port, and said second port is a working gas exhaust port.
- 17. A machine according to claim 1, wherein said machine is a compressor, associable with an external source of working gas, wherein each said bore has a geometric center, and each said rotor is mounted for rotation about a rotation axis spaced from said geometric center by a predetermined eccentricity;
each said cavity is bounded by a pair of parallel wall surfaces transverse to said rotation axis; said plurality of gas ports includes at least a pair of gas ports provided in each said bore, wherein a first of said gas ports is arranged at a first radius from said geometric center and a second of said gas ports is arranged at a second radius from said geometric center, wherein said second radius has a magnitude larger than that of said first radius; and wherein each said rotor is operative to rotate within one of said bores so as to periodically uncover said second port, thereby to enable a flow therethrough of a working gas.
- 18. A machine according to claim 17, wherein each said rotor has a pair of flat, parallel surfaces disposed in dynamic, non-touching, sealing relation with said pair of parallel wall surfaces of each said cavity, and each said rotor has formed therein a throughflow portion which is formed so as to be brought periodically into communicative association with the interior of said cavity and with said first gas port, so as to facilitate gas communication therebetween.
- 19. A machine according to claim 18, wherein each said pair of rotors includes first and second rotors, each arranged for rotation within a predetermined pair of adjoining, respective, first and second bores such that said outer surfaces of said first and second rotors are always in dynamic, non-touching, sealing relation with each other.
- 20. A machine according to claim 19, wherein said second port is a working gas intake port, and said first port is a pressurized working gas exhaust port.
- 21. For use with a rotary machine, a rotor which includes:
a pair of parallel side surfaces; and a curved outer surface formed between said pair of parallel side surfaces, formed of a plurality of contiguous mutually tangential curved portions.
- 22. A rotor according to claim 1, wherein said curved outer surface includes:
a major portion defining a first major arc subtending a predetermined angle at a predetermined center of rotation, and having a first radius; a minor portion defining a first minor arc subtending a predetermined angle at the predetermined center of rotation, and having a second radius, shorter than said first radius, said major and minor arcs being arranged along an axis of symmetry; and a pair of similar, intervening curves portions extending tangentially between major and minor arcs.
- 23. A rotor according to claim 22, wherein each of said pair of intervening curves is formed of mutually tangential, a second major arc and a second minor arc, of predetermined radii.
REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of U.S. Ser. No. 09/099,521 entitled Rotary Machine, filed on Jun. 18, 1998, the contents of which is incorporated herein, by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09099521 |
Jun 1998 |
US |
Child |
09887060 |
Jun 2001 |
US |