Claims
- 1. A compressible fluid compressing process comprising sequentially the steps of:
- opening an intake port or ports leading into a first compression chamber located between a piston, a body and spaced walls of a cylinder-piston, and axially spaced stationary walls by said cylinder-piston and said piston and as a result of planetary rotations of said cylinder-piston and said piston when said first compression chamber is at about its minimum volume;
- closing an intake port or ports leading to a second compression chamber located between said piston, said two spaced walls and an interconnecting wall of said cylinder-piston, and said axially spaced stationary walls by one of said spaced walls of said cylinder-piston and as a result of said panetary rotation of said cylinder-piston when said second compression chamber is at about its maximum volume;
- passing said compressible fluid to be compressed through said intake port or ports into said first compression chamber while:
- said volume of said first compression chamber increases as a result of said coordinated and opposite planetary rotations of said piston and said cylinder-piston with said distance between said piston and said body of said cylinder-piston increasing; and
- a discharge valve or valves of said first compression chamber are closed;
- compressing said compressible fluid in said second compression chamber by decreasing said volume of said second compression chamber as a result of said coordinated and opposite planetary rotations of said piston and said cylinder-piston while said distance between said piston and said wall interconnecting said two spaced walls of said cylinder-piston decreases;
- opening a discharge valve or valves of said second compression chamber when the pressure of said compressible fluid compressed in said second compression chamber reaches desired level, while continuing said intake process in said first compression chamber;
- passing said compressed compressible fluid from said second compression chamber through said discharge valve or valves and into a suitable receiver while said compression process in said second compression chamber continues, and while continuing said intake process in said first compression chamber;
- closing said intake port or ports of said first compression chamber by a second of said spaced walls of said cylinder-piston and as a result of said planetary rotation of said cylinder-piston when said first compression chamber is at about its maximum volume;
- closing said discharge valve or valves of said second compression chamber when said second compression chamber is at about its minimum volume;
- opening said intake port or ports leading into said second compression chamber by said cylinder-piston and said piston and as a result of said planetary rotations of said cylinder-piston and said piston when said second compression chamber is at about its minimum volume;
- compressing said compressible fluid in said first compression chamber by decreasing said volume of said first compression chamber as a result of said corrdinated and opposite planetary rotations of said piston and said cylinder-piston while said distance between said piston and said body of said cylinder-piston decreases;
- passing said compressible fluid to be compressed through said intake port or ports into said second compression chamber while:
- said volume of said second compression chamber increases as a result of said coordinated and opposite planetary rotations of said piston and said cylinder-piston with said distance between said piston and said wall interconnecting said two spaced walls of said cylinder-piston increasing; and
- said discharge valve or valves of said second compression chamber are closed;
- opening said discharge valve or valves of said first compression chamber when the pressure of said compressible fluid compressed in said first compression chamber reaches desired level, and while said intake process in said second compression chamber continues;
- passing said compressed compressible fluid from said first compression chamber through said discharge valve or valves and into a suitable receiver while said compression process in said first compression chamber continues, and while said intake process in said second compression chamber continues;
- closing said discharge valve or valves of said first compression chamber when said first compression chamber is at about its minimum volume; and
- repeating said cylcle in said first and in said second variable volume compression chambers.
- 2. A rotary compressor comprising:
- a cylinder-piston comprising a body, two spaced walls extending from one end of said body and having opposing parallel surfaces, and a wall interconnecting said two spaced walls at their ends remote from said body to form an opening in said cylinder-piston;
- said cylinder-piston further having two side faces;
- a piston positioned within said opening of said cylinder-piston and having spaced faces adjoining said opposing parallel surfaces of said spaced walls of said cylinder-piston;
- said piston further having two spaced side faces;
- two axially spaced walls adjoining said side faces of said cylinder-piston and said spaced side faces of said piston;
- a rotatable cylinder-piston shaft comprising an eccentric portion journaled in said body of said cylinder-piston;
- a rotatable piston shaft comprising an eccentric portion journaled in said piston;
- gearing means interconnecting said cylinder-piston shaft and said piston shaft so said shafts follow coordinated rotations in opposite directions and said cylinder-piston and said piston follow coordinated planetary rotations in opposite directions with and around said eccentric portions of said shafts;
- said cylinder-piston and said piston forming moveable surfaces, and said axially spaced walls forming stationary surfaces of two compression chambers located between said body of said cylinder-piston and said piston and between said piston and said wall interconnecting said two spaced walls of said cylinder-piston and varying in volumes upon said coordinated planetary rotations in opposite directions of said cylinder-piston and said piston;
- intake means comprising intake ports leading to said compression chambers; and
- discharge means leading from said compression chambers.
- 3. The compressor of claim 2 wherein said cylinder-piston shaft and said piston shaft are journaled in bearings located in said axially spaced walls.
- 4. The compressor of claim 2 wherein said gearing means comprise gears interconnecting said cylinder-piston and said piston shafts and having equal number of teeth so said shafts rotate with equal rotational speeds in opposite directions.
- 5. The compressor of claim 2 wherein said discharge means leading from said compression chambers comprise at least one discharge valve per each compression chamber located in at least one of said axially spaced walls.
- 6. The compressor of claim 2 which further comprises lubricating means, said lubricating means comprising a lubricant reservoir containing suitable lubricant lubricating coacting surfaces of said cylinder-piston, said piston, said axially spaced walls, further lubricating said gears interconnecting said cylinder-piston shaft and said piston shaft, and said bearings of said cylinder-piston shaft and said piston shaft.
- 7. The compressor of claim 2 which further comprises a cooling means, said cooling means comprising a plurality of passageways located in said spaced housing walls in which suitable coolant is circulated.
- 8. The compressor of claim 2 wherein said eccentric portion of said cylinder-piston shaft is journaled in a bearing located in said body of said cylinder-piston, and wherein said eccentric portion of said piston shaft is journaled in a bearing located in said piston.
- 9. The compressor of claim 8 wherein said cylinder-piston shaft and said piston shaft are crankshafts and wherein said eccentric portions of said cylinder-piston shaft and said piston shaft are cranks.
- 10. The compressor of claim 8 wherein said cylinder-piston shaft and said piston shaft are eccentric shafts and wherein said eccentric portions of said cylinder-piston shaft and said piston shaft are eccentrics.
- 11. The compressor of claim 8 which further comprises a balancing means, wherein said balancing means comprise cylinder-piston balancing means comprising a cylinder-piston balancing portion located in a part of said body of said cylinder-piston remote from said spaced walls and from said wall interconnecting said spaced walls, said balancing portion making the center of gravity of said cylinder-piston located on or close to the axis of said bearing located in said body of said cylinder-piston; and wherein said balancing means further comprise piston balancing means, said piston balancing means being such design of said piston so said piston has its center of gravity located on or close to the axis of said bearing located in said piston; and wherein said balancing means further comprise cylinder-piston shaft and piston shaft balancing means, said last mentioned means comprising balancing elements secured to said shafts and dynamically balancing said shafts with all elements assembled and journaled on said shafts.
- 12. The compressor of claim 2 wherein said cylinder-piston, said piston and said axially spaced walls are sealingly engaged in forming said compression chambers.
- 13. The compressor of claim 12 wherein said sealing engagement between said cylinder-piston, said piston and said axially spaced walls results from use of sealing means comprising sealing elements located with springs in grooves in said cylinder-piston and in said piston and wherein said sealing elements located in said grooves of said cylinder-piston and said piston are sealingly engaged with co-working surfaces of said cylinder piston and said axially spaced walls in forming a sealing path around said compression chambers.
- 14. The compressor of claim 12 wherein said sealing engagement between said cylinder-piston, said piston and said axially spaced walls results from a combination of suitable running clearances between said cylinder-piston and said piston and between said cylinder-piston, said piston and said axially spaced walls, suitable finish of coacting surfaces of said cylinder-piston, coacting surfaces of said piston and coacting surfaces of said axially spaced walls, and use of lubricant of suitable viscosity to lubricate said coacting surfaces of said cylinder-piston, said piston and said axially spaced walls.
- 15. The compressor of claim 2 wherein said intake means leading to said compression chambers comprise at least one intake port leading to each of said compression chambers, and located in at least one of said axially spaced walls, said intake ports being sequentially opened and closed by said cylinder-piston and said piston to allow for required flow of incoming charge into said compression chambers.
- 16. The compressor of claim 15 wherein said intake ports are opened by said cylinder-piston and said piston when said compression chambers are at about their minimum volumes, and wherein said intake ports are closed by said cylinder-piston when said compression chambers are at about their maximum volumes.
- 17. A rotary compressor comprising:
- at least two cylinder-pistons each comprising a body, two spaced walls extending from one end of said body and having opposing parallel surfaces, and a wall interconnecting said two spaced walls at their ends remote from said body to form openings in said cylinder-pistons;
- each of said cylinder-pistons further having two side faces;
- at least two pistons positioned within said openings of said cylinder-pistons and having spaced faces adjoining said opposing parallel surfaces of said spaced walls of said cylinder-pistons;
- each of said pistons further having two spaced side faces;
- at least three axially spaced walls adjoining said side faces of said cylinder-pistons and said spaced side faces of said pistons;
- a rotatable cylinder-piston shaft comprising eccentric portions journaled in said bodies of said cylinder-pistons;
- a rotatable piston shaft comprising eccentric portions journaled in said pistons;
- gearing means interconnecting said cylinder-pistons shaft and said pistons shaft so said shafts follow coordinated rotations in opposite directions and said cylinder-pistons and said pistons follow coordinated planetary rotations in opposite directions with and around said eccentric portions of said shafts;
- said cylinder-pistons and said pistons forming moveable surfaces, and said axially spaced walls forming stationary surfaces of at least four compression chambers located between said bodies of said cylinder-pistons and said pistons and between said pistons and said walls interconnecting said two spaced walls of each of said cylinder-pistons and varying in volumes upon said coordinated planetary rotations in opposite directions of said cylinder-pistons and said pistons;
- intake means comprising an intake port leading to each of said compression chambers; and
- discharge means leading from said compression chambers.
- 18. The compressor of claim 17 wherein said cylinder-piston shaft and said piston shaft are journaled in bearings located in said axially spaced walls.
- 19. The compressor of claim 17 wherein said gearing means comprise gears interconnecting said cylinder-pistons and said pistons shafts and having equal number of teeth so said shafts rotate with equal rotational speeds in opposite directions.
- 20. The compressor of claim 17 wherein said discharge means leading from said compression chambers comprise at least one discharge valve per compression chamber, said discharge valves located in said axially spaced walls.
- 21. The compressor of claim 17 which further comprises lubricating means, said lubricating means comprising a lubricant reservoir containing suitable lubricant lubricating coacting surfaces of said cylinder-pistons, said pistons, said axially spaced walls, further lubricating said gears interconnecting said cylinder-pistons shaft and said pistons shaft, and said bearings of said cylinder-pistons shaft and said pistons shaft.
- 22. The compressor of claim 17 which further comprises a cooling means, said cooling means comprising a plurality of passageways located in said spaced housing walls in which suitable coolant is circulated.
- 23. The compressor of claim 17 wherein said eccentric portions of said cylinder-piston shaft are journaled in bearings located in said bodies of said cylinder-pistons, and wherein said eccentric portions of said piston shaft are journaled in bearings located in said pistons.
- 24. The compressor of claim 23 wherein said cylinder-pistons shaft and said pistons shaft are crankshafts and wherein said eccentric portions of said cylinder-pistons shaft and said pistons shaft are cranks.
- 25. The compressor of claim 23 wherein said cylinder-pistons shaft and said pistons shaft are eccentric shafts and wherein said eccentric portions of said cylinder-pistons shaft and said pistons shaft are eccentrics.
- 26. The compressor of claim 23 which further comprises a balancing means, wherein said balancing means comprise cylinder-pistons balancing means comprising cylinder-pistons balancing portions located in parts of said bodies of said cylinder-pistons remote from said spaced walls and from said walls interconnecting said spaced walls, said balancing portions making the centers of gravity of said cylinder-pistons located on or close to the axes of said bearings located in said bodies of said cylinder-pistons; and wherein said balancing means further comprise pistons balancing means, said pistons balancing means being such designs of said pistons so said pistons have their centers of gravity located on or close to the axes of said bearings located in said pistons; and wherein said balancing means further comprise cylinder-pistons shaft and pistons shaft balancing means, said last mentioned means comprising balancing elements secured to said shafts and dynamically balancing said shafts with all elements assembled and journaled on said shafts.
- 27. The compressor of claim 17 wherein said cylinder-pistons, said pistons and said axially spaced walls are sealingly engaged in forming said compression chambers.
- 28. The compressor of claim 27 wherein said sealing engagement between said cylinder-pistons, said pistons and said axially spaced walls results from use of sealing means comprising sealing elements located with springs in grooves in said cylinder-pistons and in said pistons and wherein said sealing elements located in said grooves of said cylinder-pistons and said pistons are sealingly engaged with co-working surfaces of said cylinder pistons and said axially spaced walls in forming a sealing path around said compression chambers.
- 29. The compressor of claim 27 wherein said sealing engagement between said cylinder-pistons, said pistons and said axially spaced walls results from a combination of suitable running clearances between said cylinder-pistons and said pistons and between said cylinder-pistons, said pistons and said axially spaced walls, suitable finish of coacting surfaces of said cylinder-pistons, coacting surfaces of said pistons and coacting surfaces of said axially spaced walls, and use of lubricant of suitable viscosity to lubricate said coacting surfaces of said cylinder-pistons, said pistons and said axially spaced walls.
- 30. The compressor of claim 17 wherein said intake means leading to said compression chambers comprise at least one intake port leading to each of said compression chambers, and located in at least one of said axially spaced walls, said intake ports being sequentially opened and closed by said cylinder-pistons and said pistons to allow for required flow of incoming charge into said compression chambers.
- 31. The compressor of claim 30 wherein said intake ports are opened by said cylinder-pistons and said pistons when said compression chambers are at about their minimum volumes, and wherein said intake ports are closed by said cylinder-pistons when said compression chambers are at about their maximum volumes.
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of my pending prior application Ser. No. 692,199, filed on June 2, 1976, now abandoned which is a continuation-in-part of my prior application Ser. No. 659,430, filed on Feb. 19, 1976, now abandoned which is a continuation-in-part of my earlier application Ser. No. 610,159, filed on Sept. 4, 1975, now U.S. Pat. No. 4,010,675, which is a continuation of prior application Ser. No. 523,958, filed Nov. 14, 1974 now abandoned.
US Referenced Citations (8)
Continuations (1)
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Date |
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Parent |
523958 |
Nov 1974 |
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Continuation in Parts (3)
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692199 |
Jun 1976 |
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659430 |
Feb 1976 |
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610159 |
Sep 1975 |
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