Four-stroke rotary- piston engine with adjustable compression ratio and adjustable valve control times
11261733 · 2022-03-01
Inventors
Cpc classification
F01B13/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B57/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L7/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B57/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C20/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01B5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01B13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C20/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B57/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B75/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01B5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A four-stroke rotary-piston engine has an outer disk, and inner disk, at least one cylinder, at least one piston, at least one piston rod, a fixed gear engaged with a planet gear and a rotary gate valve positioned at a head of the cylinder. The inner disk is rotatable with respect to the outer disk by a compression control device. The planet gear rotates a crank situated on a shaft thereof. The shaft passes upwardly through the inner disk. The crank reciprocates a lever via the piston rod. The lever has an end pivoted on the outer disk so as to push the piston into and out of the cylinder.
Claims
1. A four-stroke rotary-piston engine comprising: an outer disk; an inner disk; at least one cylinder; at least one piston; at least one piston rod, said outer disk surrounding said inner disk such that said outer disk and said inner disk are in a common plane, wherein said inner disk is rotatable with respect to said outer disk by a compression control device that is adapted to adjust compression; a fixed gear engaged with a planet gear, said fixed gear and said planet gear arranged below said outer disk and said inner disk, said planet gear rotating a crank situated on a shaft thereof, the shaft passing upwardly through said inner disk, a length of the crank being equal to a radius of the planet gear, wherein the planet gear is rotatably mounted on said inner disk, wherein the crank reciprocates a lever via said at least one piston rod, the lever having one end pivoted on said outer disk so as to push said at least one piston into and out of said at least one cylinder affixed to said outer disk by a bar pivotally mounted on another end of the lever; and a rotary gate valve positioned at a head of said at least one cylinder.
2. The four-stroke rotary piston engine of claim 1, wherein due to a transmission ratio between said fixed gear and the planet gear and a length of the crank and due to a rotational movement of said inner disk and said outer disk, the crank rotates such that said at least one piston is moved into and out of said at least one cylinder via said at least one piston rod, the lever and the bar, wherein after said at least one piston reaches a bottom dead center position with respect to said at least one cylinder, said at least one cylinder moves further over said at least one piston until said at least one piston reaches a top dead center position, then the crank moves said at least one piston downwardly until reaching the bottom dead center position again.
3. The four-stroke rotary piston engine of claim 1, wherein the four-stroke rotary piston engine is a pump or a compressor.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF THE INVENTION
(7) A planet gear (2) rotates around a fixed gear (1) of the same size. The planet gear (2) is supported on an inner disk (3). This disk is supported at the center of the fixed gear (1). A crank (4), which is as long as the radius of the planet gear (2), moves the lever (6) via the piston rod (5). This lever (6) has one end supported on the outer disk (7). The other end is connected to the piston (9) via the bar (8). The cylinder (10) is affixed to the outer rotary disk (7). Using the compression control device (13), the inner disk (3) is shifted along the outer disk (7). Thereby, the piston rod (5) is pulled or pushed, the position of the lever (5) and the compression ratio are changed. (
(8) For a simple manufacture, instead of two gears, a gear diameter long lower bar (12), where two gears grip together to the housing, and another gear radius long crank (4) can be employed, as shown in
(9) The four-stroke rotary-piston engine has an outer disk, and inner disk, at least one cylinder, at least one piston, and at least one piston rod. The outer disk surrounds the inner disk such that the outer disk and the inner disk are in a common plane. The inner disk is rotatable with respect to the outer disk by a compression control device that is adapted to adjust compression. A lower bar is positioned above the outer disk and the inner disk. The lower bar is rotatably mounted to a shaft passing through the inner disk. The shaft has a first crank with a length equal to a radius of one of a pair of gears. The lower bar has a length equal to a diameter of at least one of the pair of gears. A second crank has a length equal to a radius of one of the pair of gears. The second crank is affixed to the shaft which passes through the inner disk and on which the first crank is located. The second crank is rotatably mounted to another end of the lower bar. The lower bar and the second crank move in a non-rotating manner such that when the outer disk and the inner disk are rotated, the first crank rotates so that the piston rod moves the piston via the lever and the lower bar in the same manner as the pair of gears into an out of the cylinder.
(10) A freewheel attached to the outer disk (7) prevents the disk from rotating backwards.
(11) By rotating the disks (3 and 7), the crank (4) is set in rotation, pushes the lever (6) via the piston rod (5), which pulls the piston (9) downwards towards the bottom dead center.
(12) When the piston (9) reaches the bottom dead center, it stands still in relation to the rotary movement, because the crank (4) pulls the piston rod (5) backwards. Yet, the cylinder (10) fastened to the outer disk (7) moves on until the piston (9) reaches the top dead center.
(13) When the piston (9) reaches the top dead center, the crank (4) pushes the piston rod (5) again, and in this way the piston (9) moves downwards until it reaches the bottom dead center.
(14) This procedure is repeated once every revolution. This means that the piston (9) moves from the top to the bottom dead center and back to the top dead center once per revolution.
(15) By repositioning the inner disk (3) in relation to the outer disk (7) using the screw/worm gear (13) of the compression control device, the position of the lever (6) and thus the compression ratio is changed.
(16) Every half revolution, the rotary gate valve (11) rotates by one quarter revolution (
(17) The rotary gate valve (
(18) The quarter valve rotation device is located on top of the rotary gate valve (11) (
(19) In this way, the rotary gate valve revolves twice each full revolution (
(20) By readjusting the quarter valve rotation device (
(21) Injection nozzles or spark plugs may be arranged at will. In a similar manner, the combustion chamber may take any form.
(22) It is possible to have engines with several cylinders, for example a two-cylinder engine as in
(23) TABLE-US-00001 Names of the parts 1. fixed gear 2. planet gear 3. inner disk 4. crank 5. piston rod 6. lever 7. outer disk 8. bar 9. piston 10. cylinder 11. rotary gate valve 12. lower bar 13. compression control device screw/worm gear 14. shaft