Claims
- 1. A rotary device, comprising:
a housing defining at least one chamber having a shape defined by two or more partially overlapping circles, one or more inlet ports in fluid communication with the chamber, and one or more outlet ports in fluid communication with the chamber; two or more rotors that cooperate to temporarily define one or more compression sub-chambers and one or more suction sub-chambers as the rotors rotate synchronously within the chamber; and a linkage for synchronously rotating the rotors.
- 2. The rotary device of claim 1, wherein the rotors rotate non-eccentrically in the chamber.
- 3. The rotary device of claim 2, wherein the rotors are trochoidal-shaped.
- 4. The rotary device of claim 2, wherein the rotors have curved sides with the same radius as the circles defining the chamber.
- 5. The rotary device of claim 1, wherein the chamber is epitrochoidal-shaped.
- 6. The rotary device of claim 5, wherein each one of the partially overlapping circles defining the chamber intersects a center of an adjacent one of the circles.
- 7. The rotary device of claim 5, wherein each one of the partially overlapping circles has the same radius.
- 8. The rotary device of claim 1, wherein the rotors continuously contact or remain in close proximity with each other to provide rotor-to-rotor sealing throughout a 360 degree rotary cycle.
- 9. The rotary device of claim 1, wherein the rotors remain in close proximity with a side wall of the housing to provide rotor-to-housing sealing when the rotors turn through non-overlapping parts of the circles defining the chamber.
- 10. The rotary device of claim 1, wherein the compression sub-chamber is formed by an outer side of a leading one of the rotors, a leading side of a trailing one of the rotors, and a chamber side wall.
- 11. The rotary device of claim 1, wherein the suction sub-chamber is formed by a trailing side of a leading one of the rotors, an outer side of a trailing one of the rotors, and a chamber side wall.
- 12. The rotary device of claim 1, wherein the compression sub-chamber and the suction sub-chamber are not formed by the rotors when the rotors turn through non-overlapping parts of the circles defining the chamber.
- 13. The rotary device of claim 1, wherein at least one of the inlet ports or the outlet ports is positioned in a corner of a non-overlapping part of one of the circles defining the chamber, the corner defined by a side wall of the housing and an arc of an overlapping part of an adjacent one of the circles.
- 14. The rotary device of claim 1, wherein the inlet ports and the outlet ports are positioned in the chamber so that as the rotors turn they alternatingly cover and then uncover the inlet ports and the outlet ports.
- 15. The rotary device of claim 1, wherein, as the rotors turn to collapse the compression sub-chamber, another part of the chamber is expanding, and the inlet ports are positioned in the other part of the chamber.
- 16. The rotary device of claim 1, wherein the rotary machine comprises three or more rotors and the chamber has the shape of three or more partially overlapping circles.
- 17. The rotary device of claim 1, wherein the rotary machine comprises two or more sets of the rotors arranged side-by-side and offset from each other for balance.
- 18. The rotary device of claim 1, wherein the inlet ports are connected together and the outlet ports are connected together.
- 19. The rotary device of claim 1, wherein each of the rotors has at least one seal.
- 20. The rotary device of claim 19, wherein the seal comprises at least one fluid pressure-operated plunger seal.
- 21. The rotary device of claim 19, wherein the seal comprises a plunger that moves between a retracted position and an extended position relative to the corresponding rotor, the plunger having a head for sealing and a foot, wherein the rotor has a retaining channel defined therein that receives and is oversized relative to the foot, one or more outer apertures defined therein from a radially outer part of the retaining channel through a side of the rotor, and one or more inner apertures defined therein from a radially inner part of the retaining channel through another side of the rotor, wherein the plunger seal is moved to and held in the extended position in response to a greater pressure at the inner apertures than the outer apertures.
- 22. The rotary device of claim 19, wherein the seal comprises at least one spring-operated plunger seal.
- 23. The rotary device of claim 19, wherein the seal comprises at least one flexible blade seal.
- 24. The rotary device of claim 19, wherein the seal comprises at least one centrifugal force-operated plunger seal.
- 25. The rotary device of claim 19, wherein the seal comprises at least one flange seal for rotor-to-housing sealing.
- 26. A compressor including one or more of the rotary devices of claim 1, a rotary linkage mechanism operably coupled to the rotors of the rotary device, a drive device operably coupled to the linkage mechanism, a valve operably coupled to the outlet port, and a control system for operating the valve.
- 27. A pump including one or more of the rotary devices of claim 1, a rotary linkage mechanism operably coupled to the rotors of the rotary device, and a drive device operably coupled to the linkage mechanism.
- 28. A rotary actuator including one or more of the rotary devices of claim 1, a rotary linkage mechanism operably coupled to the rotors of the rotary device, and a drive device operably coupled to the fluid inlet ports.
- 29. An internal combustion engine including one or more of the rotary devices of claim 1, a rotary linkage mechanism operably coupled to the rotors of the rotary device, an ignition system, and a control system for operating the ignition system.
- 30. A rotary device, comprising:
a housing having a side wall defining at least one chamber with an epitrochoidal shape defined by two partially overlapping circles, wherein each one of the circles intersects a center of an adjacent one of the circles and both of the circles have the same radius; one or more inlet ports and one or more outlet ports defined in the housing in fluid communication with the chamber, wherein the inlet ports and the outlet ports are positioned in corners of non-overlapping parts of the circles, each of the corners being defined by the housing side wall and an arc of an overlapping part of an adjacent one of the circles; two non-eccentric rotors each having a trochoidal shape with curved outer, leading, and trailing sides all having the same radius as the circles defining the chamber, the rotors cooperating to temporarily define two compression sub-chambers and two suction sub-chambers as the rotors rotate synchronously within the chamber through a 360-degree rotary cycle, wherein the compression sub-chambers are formed by the outer side of a leading one of the rotors, the leading side of a trailing one of the rotors, and the chamber side wall, wherein the suction sub-chambers are formed by the trailing side of a leading one of the rotors, the outer side of a trailing one of the rotors, and the chamber side wall, and wherein the compression sub-chambers and the suction sub-chambers are not formed by the rotors when the rotors turn through non-overlapping parts of the circles in two neutral phases; and a linkage for synchronously rotating the rotors.
- 31. The rotary device of claim 30, wherein the rotors continuously contact or remain in close proximity with each other to provide rotor-to-rotor sealing throughout the 360 degree rotary cycle.
- 32. The rotary device of claim 30, wherein the rotors remain in close proximity with the housing side wall to provide rotor-to-housing sealing when the rotors turn through the non-overlapping parts of the circles defining the chamber.
- 33. The rotary device of claim 30, wherein each of the rotors has at least one fluid pressure-operated plunger seal, at least one spring-operated plunger seal, at least one flexible blade seal, at least one centrifugal force-operated plunger seal, or at least one flange seal.
- 34. The rotary device of claim 30, wherein the two compression phases are offset by 180 degrees, the two suction phases are offset by 180 degrees, and the two neutral phases are offset by 180 degrees.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the priority benefit of U.S. Provisional Patent Application Serial No. 60/372,949, filed Apr. 16, 2002, the entire scope and content of which is hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60372949 |
Apr 2002 |
US |