Claims
- 1. A two-stroke mechanism with rotary cylinder-piston and piston movements comprising:
- a U-shaped cylinder-piston element having polyhedral body and spaced, parallel arms with parallel, flat opposing surfaces, means for rotatable mounting to an eccentric shaft and means for balancing said cylinder-piston element;
- a polyhedral piston element having spaced, parallel sides adjoining said cylinder-piston flat, opposing surfaces of said spaced, parallel arms and means for rotatable mounting to a second eccentric shaft;
- said cylinder-piston and piston elements forming movable walls of two variable volume chambers;
- two axially spaced, stationary parallel walls adjoining opposite sides of said piston and cylinder-piston elements forming stationary walls of said first variable volume chamber;
- sealing means on said cylinder-piston and said piston elements sealing said first variable volume chamber;
- a peripheral wall interconnecting said spaced, stationary parallel walls to form with said spaced, stationary parallel walls the stationary walls of a second variable volume chamber;
- a rotatable cylinder-piston eccentric shaft mounted in said cylinder-piston element and in said spaced, stationary parallel walls;
- balancing means, balancing said cylinder-piston eccentric shaft;
- a rotatable piston eccentric shaft mounted in said piston element and in said spaced, stationary parallel walls;
- balancing means, balancing said piston eccentric shaft;
- gearing means interconnecting said eccentric shafts so said eccentric shafts and their cylinder-piston and piston elements follow opposite and coordinated rotary paths within said second variable volume chamber;
- intake means in said spaced parallel walls and in said cylinder-piston element and discharge means in said spaced parallel walls;
- cooling means for cooling said spaced, parallel stationary walls and said piston and cylinder-piston elements;
- lubricating means for lubricating coacting surfaces; and
- lubricating means for lubricating said gearing means.
- 2. The mechanism of claim 1 wherein said mechanism is an internal combustion prime mover.
- 3. The internal combustion prime mover of claim 2 wherein said first variable volume chamber is a combustion chamber and second variable volume chamber is a precompression chamber.
- 4. An internal combustion prime mover of claim 3 wherein said prime mover is spark fired.
- 5. An internal combustion prime mover of claim 3 wherein said prime mover is a compression ignition prime mover.
- 6. The mechanism of claim 1 wherein said mechanism is a compressor.
- 7. The mechanism of claim 1 wherein said mechanism is an external combustion engine and said first variable volume chamber is an expansion chamber.
- 8. The mechanism of claim 1 wherein said means for rotatable mounting of said cylinder-piston element to an eccentric shaft comprises a bearing mounted in a passageway in said polyhedral body of said cylinder-piston element.
- 9. The mechanism of claim 1 wherein said balancing means of said cylinder-piston element comprises balancing elements located in a part of said polyhedral body remote from the said spaced, parallel arms making the center of gravity of said cylinder-piston element located on or close to the axis of said bearing, mounted in said cylinder-piston element.
- 10. The mechanism of claim 1 wherein said means for rotatable mounting of piston element on said piston eccentric shaft comprises a bearing mounted in a passageway in said polyhedral piston element.
- 11. The mechanism of claim 10 wherein said polyhedral piston element is balanced and has its center of gravity on or close to the axis of said piston bearing.
- 12. The mechanism of claim 1 wherein said axially spaced, stationary walls have flat surfaces adjoining said opposite sides of said piston and cylinder-piston elements.
- 13. The mechanism of claim 12 wherein said flat surfaces of said axially spaced, stationary parallel walls are sufficiently hard for long lasting operation.
- 14. The mechanism of claim 13 wherein said axially spaced, stationary parallel walls are built of hard material.
- 15. The mechanism of claim 13 wherein said flat surfaces of said axially spaced, stationary walls are hard coated.
- 16. The rotary mechanism of claim 1 wherein said parallel, flat opposing surfaces of said spaced, parallel arms of said U-shaped cylinder-piston element, coacting with said spaced, parallel sides of said piston element are sufficiently hard for long lasting operation.
- 17. The mechanism of claim 16 wherein said spaced parallel arms of said U-shaped cylinder-piston element are made of hard material.
- 18. The mechanism of claim 16 wherein said spaced, parallel arms are built of soft material and have hard coated said parallel, flat opposing surfaces.
- 19. The mechanism of claim 1 wherein each eccentric shaft has an eccentric portion, said eccentric portion of each eccentric shaft moving the respective cylinder-piston and piston elements in opposed rotary motions around the axes of said eccentric shafts.
- 20. The mechanism of claim 19 wherein one of said eccentric shafts operates as a drive shaft for a work output.
- 21. The mechanism of claim 19 wherein both of said eccentric shafts operate as drive shafts for a work output.
- 22. The mechanism of claim 19 wherein each said eccentric shaft is journaled in bearings located in each of said axially spaced, stationary, parallel walls.
- 23. The mechanism of claim 22 wherein said balancing means of said cylinder-piston eccentric shaft include balancing elements rigidly mounted on both sides of said eccentric portion making the center of gravity of said cylinder-piston eccentric shaft with said cylinder-piston element located on or close to the axis of said cylinder-piston eccentric shaft.
- 24. The mechanism of claim 22 wherein said balancing means of said piston eccentric shaft including balancing elements rigidly mounted on both sides of said eccentric portion and making the center of gravity of said piston eccentric shaft with its piston element located on or close to the axis of said piston eccentric shaft.
- 25. The mechanism of claim 1 wherein said gearing means is used for balancing.
- 26. The mechanism of claim 1 wherein said sealing means on said cylinder-piston element comprises a set of three grooves with spring loaded sealing elements located in said grooves, said grooves being located on each of said opposite side of said cylinder-piston element and alongside the edges of said movable walls of said first variable volume chamber.
- 27. The mechanism of claim 26 in which said seals are pushed by said springs against said flat, hard surfaces of said axially spaced, stationary, parallel walls.
- 28. The mechanism of claim 27 in which each of the sealing elements have an interlocking connection with adjacent sealing elements to maintain an uninterrupted seal.
- 29. The mechanism of claim 28 in which grooves located alongside and in the said spaced, parallel arms have apertures in their ends outwardly from said polyhedral part of said cylinder-piston element and in which sealing elements, located in said grooves have flange portions corresponding in shape and size to said apertures, and in which one of the surfaces of said flange portion is in the same plane, when said seals are inserted in their grooves, with said parallel, flat opposing surfaces of said spaced, parallel arms.
- 30. The mechanism of claim 1 wherein said piston element sealing means comprises a set of eight grooves, and eight spring loaded sealing strips, located alongside the four edges of the movable wall of said first variable volume chamber and alongside the corners made by walls normal to said movable wall in which each of the sealing elements have an interlocking connection with adjacent sealing elements to maintain a closed seal.
- 31. The mechanism of claim 30 in which said sealing elements are pushed by their springs against the said flat sides of said axially spaced, stationary flat walls and against said flat, opposing surfaces of said spaced, parallel arms of said cylinder-piston element and against said surfaces of said flange portions of said sealing strips of said cylinder-piston element to form a closed sealing system, sealing the said first variable volume chamber.
- 32. The mechanism of claim 1 wherein said sealing means of said first variable volume chamber are made of materials selected from the group of cast iron, steel and ferrous based materials.
- 33. The mechanism of claim 1 in which said cylinder-piston element comprises in said opposite sides recesses with spring loaded plates, sealing intake and exhaust ports of said axially spaced, stationary walls during the operation of the engine.
- 34. The mechanism of claim 1 in which said intake means comprise intake channels and ports located in said axially spaced stationary walls and connecting the source of suitable charge with said second variable volume chamber, said intake ports being sequentially opened and closed during the operation of the engine by said plates, sealing said intake ports and located in the said opposite sides of said cylinder-piston element.
- 35. The mechanism of claim 1 wherein said intake means comprises transfer ports, located in said spaced, parallel arms of said cylinder-piston element and connecting the said first variable volume chamber with said second variable volume chamber and are opened and closed sequentially during the operation of the mechanism by said piston element.
- 36. The mechanism of claim 1 wherein said discharge means comprises exhaust channels and ports, located in said axially spaced stationary walls, connecting said first variable volume chamber with outside of the said rotary mechanism and said exhaust ports being sequentially opened and closed during the operation of the said two-stroke mechanism by said cylinder-piston element.
- 37. The mechanism of claim 1 wherein said cooling means comprises cooling chambers, located in said axially spaced, stationary walls and connected to a source of cooling medium.
- 38. The mechanism of claim 1 wherein said cooling means include cooling of said cylinder-piston and piston elements by fresh charge incoming into said second variable volume chamber.
- 39. The mechanism of claim 1 wherein sealing of said second variable volume chamber is obtained by sealing elements located between coacting walls of said axially spaced, stationary walls and said peripheral wall, and by sealing eccentric shafts in their bearings located in said axially spaced, stationary walls.
- 40. The mechanism of claim 1 wherein said gearing means interconnecting said eccentric shafts are covered by a cover, and within said cover is provided oil bath for lubricating said gearing means.
- 41. The mechanism of claim 1 wherein said shafts balancing elements have separate cover.
- 42. The mechanism of claim 1 wherein said axially spaced, stationary walls, said peripheral wall, said gearing means cover and said shafts balancing elements cover have a plurality of openings with bolts securing together all of the above said elements.
CROSS REFERENCE TO RELATED APPLICATIONS
This is a continuation of application Ser. No. 523,958, filed Nov. 14, 1974, now abandoned which is a continuation-in-part of my co-pending application Ser. No. 506,613 filed Sept. 16, 1974, which is a continuation-in-part of Ser. No. 425,507 filed Dec. 17, 1973, which is a continuation-in-part of Ser. No. 361,472 filed May 18, 1973, which is a continuation-in-part of Ser. No. 221,198 filed Jan. 27, 1972 all now abandoned.
US Referenced Citations (9)
Foreign Referenced Citations (1)
Number |
Date |
Country |
740,703 |
Oct 1943 |
DT |
Continuations (1)
|
Number |
Date |
Country |
Parent |
523958 |
Nov 1974 |
|
Continuation in Parts (4)
|
Number |
Date |
Country |
Parent |
506613 |
Sep 1974 |
|
Parent |
425507 |
Dec 1973 |
|
Parent |
361472 |
May 1973 |
|
Parent |
221198 |
Jan 1972 |
|