Rotary piston engine
10458324 ยท 2019-10-29
Inventors
Cpc classification
F02B55/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01B3/0035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B53/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B53/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01B3/0041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B55/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B55/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02B53/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B53/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B55/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01B3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B55/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotary piston engine having a rotor with an output shaft and a plurality of longitudinally extending cylinder-forming bores, each having a slidable piston disposed therein. The rotor is contained in a housing that contains an elliptical cam track that interacts with the pistons, upon combustion, to cause rotation of the rotor. An opening in the housing end cap admits air into the cylinders on the rear side of the pistons and a port delivers air driven by the rear side of the pistons to an intake port in the side of the housing where, in response to the angular position of the rotor, the air is admitted to the front side of a piston for compression with injected fuel. The compressed fuel-air mixture is ignited and an exhaust port in the side of the housing opens to discharge the products of combustion.
Claims
1. A rotary piston engine comprising: a cylindrical rotor; an output shaft axially extending through the cylindrical rotor; a plurality of cylinders being mutually parallel to each other and to the output shaft; wherein each of the plurality of cylinders comprises a longitudinally extending cylinder-forming bore disposed on a perimeter of the cylindrical rotor; wherein said each of the plurality of cylinders has a front portion and a rear portion; a plurality of slidable pistons; wherein said each of the plurality of cylinders has one of the plurality of slidable pistons disposed therein; and an engine housing having a cylindrical interior encompassing the cylindrical rotor and further comprising: means for admitting ambient air into the rear portion of the plurality of cylinders; means for transferring compressed aft from the rear portion of the plurality of cylinders to the front portion of the plurality of cylinders in response to an angular position of the cylindrical rotor; means for injecting fuel into the compressed aft in the front portion of the cylinders; means for causing combustion of the fuel-air mixture in the front portion of the plurality of cylinders; means for exhausting combustion gas from the front portion of the plurality of cylinders in response to the angular position of the cylindrical rotor; and means for engaging the plurality of slidable pistons to rotate the rotor in response to combustion of the fuel-air mixture in the front portion of the plurality of cylinders.
2. The rotary piston engine of claim 1, wherein the means for engaging the plurality of slidable pistons is an elliptical cam track channel routed in an inside wall of the engine housing.
3. The rotary piston engine of claim 2, further including a rear end cap attached to the engine housing and where the means for admitting ambient air into the rear portion of said each of the plurality of cylinders comprises an arcuate slot in the rear end cap.
4. The rotary piston engine of claim 3, wherein the means for transferring compressed air from the rear portion of the cylinders further comprises: an additional arcuate slot in the rear end cap; an intake manifold attached to the rear end cap and covering the additional arcuate slot; and an air transfer manifold and an air intake port disposed in the engine housing in a position to communicate with the front portions of said each of the plurality of cylinders.
5. The rotary piston engine of claim 4, further including a front end cap attached to the engine housing and where the means for causing combustion of the fuel-air mixture comprises at least one spark plug carried by the front end cap and in communication with the front portion of said each of the plurality of cylinders.
6. The rotary piston engine of claim 5, wherein the means for injecting fuel comprises a fuel injector carried by the front end cap and in communication with the front portion of said each of the plurality of cylinders.
7. The rotary piston engine of claim 1, wherein the means for exhausting combustion gas from the front portion of said each of the plurality of cylinders includes an exhaust port disposed in the engine housing in a position to communicate with the front portion of said each of the plurality of cylinders.
8. A rotary piston engine comprising: a rotatable cylindrical rotor having a plurality of longitudinally extending cylinder-forming bores disposed on the perimeter of the cylindrical rotor which are mutually parallel to each other and to an output shaft axially extending through the cylindrical rotor; slidable pistons; wherein each of the plurality of longitudinally extending cylinder-forming bores has one of the slidable pistons disposed therein; an engine housing encompassing the rotatable cylindrical rotor; means interconnecting the engine housing and one of the slidable pistons for causing rotation of the rotatable cylindrical rotor; wherein the engine housing includes a cylindrical interior surface; wherein the means interconnecting the engine housing and one of the slidable pistons for causing rotation of the rotatable cylindrical rotor includes; an elliptical cam track channel routed in the cylindrical interior wall surface of the engine housing; and a follower pin extending from one of the slidable pistons and slidingly engaged with the cam track channel.
9. A rotary piston engine comprising: a rotatable cylindrical rotor having a plurality of longitudinally extending cylinder-forming bores disposed on the perimeter of the cylindrical rotor which are mutually parallel to each other and to an output shaft axially extending through the cylindrical rotor; slidable pistons; wherein each of the plurality of longitudinally extending cylinder-forming bores has one of the slidable pistons disposed therein; an engine housing encompassing the rotatable cylindrical rotor; means interconnecting the engine housing and one of the slidable pistons for causing rotation of the rotatable cylindrical rotor; wherein said each of the plurality of longitudinally extending cylinder-forming bore include a front portion and a rear portion; wherein the rotary piston engine further includes: means for inhaling ambient aft into the rear portion of a first half of said each of the plurality of longitudinally extending cylinder-forming bore in response to sliding movement of one of the slidable pistons in the first half of said each of the plurality of longitudinally extending cylinder-forming bores toward the front portion of said each of the plurality of longitudinally extending cylinder-forming bores and an angular position of the rotatable cylindrical rotor; means for injecting fuel; means for causing combustion of fuel-air mixture; and means for exhausting combustion gas from the front portion of a second half of said each of the plurality of longitudinally extending cylinder-forming bores in response to sliding movement of one of the slidable pistons in the second half of said each of the plurality of longitudinally extending cylinder-forming bores toward the rear portion of said each of the plurality of longitudinally extending cylinder-forming bores and the angular position of the rotatable cylindrical rotor.
Description
DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF A PREFERRED EMBODIMENT
(13) As seen in
(14) The rotor 4 is rotatably disposed within a housing 20 having a cylindrical inner surface which is relieved along an elliptical endless channel to form a cam track 16 to receive and engage the respective piston follower pins 17. An exhaust port 19 in the side of the housing serves to release the products of combustion from the front compression cylinders.
(15) A rear end cap 22 is attached by bolts or similar devices to the rear side of the housing 20. As shown in
(16) Closing the front end of the housing 20 is a front end cap 33 which is bolted or similarly attached to the front of the housing. The center of the front end cap contains an aperture and included bearing 35 for journaling the front end of the drive shaft 8. A spark plug 37 is carried by the front end plate and extends through the plate to expose the spark plug gap to the front of a cylinder 10 as it passes the spark plug in the rotation of the rotor. The spark plug is located at top dead center or the 0 degrees point of the engine, the angular orientation being based on the positions of the slots 25 and 28 as seen in
(17) The preferred form of the engine shown in
(18) The fundamental concept of the engine's operation is a simple two stroke process with the front sides of the engine's pistons 15 completing a combustion cycle while the back side of the pistons are completing an intake, compression and transfer of compressed air into the front side of the engine. Once the combustion process begins three pistons in front half of the engine are in some phase of the 180 degree combustion cycle. Combustion causes the pistons to move longitudinally in their respective cylinders 10 causing followers 17 to interact with the fixed cam track 16 in the rotor housing 20 using the applied leverage to turn the rotor counter clockwise within the rotor housing. During the combustion cycle of the cylinders on the front side of the pistons, the cylinders 10 on the rear side of the pistons are in a compression cycle and in communication with the compression port 28. The air is compressed in the rear portion of the cylinders and ducted out of the cylinders through the transfer manifold 30 and introduced into the cylinder in front of a piston at properly timed intervals (between 180 and 0 degrees). Once the front compression cylinders complete their combustion process and reach bottom dead center (180 degrees) the rear portion of the cylinders comes into communication with the air intake port 25 on the rear end cap 22 and the rear compression cylinders begin an intake cycle inhaling ambient air which fills the space in the cylinders at the rear of the pistons while the front side of the pistons receive an intake of air from the transfer manifold to begin the compression cycle between 180 and 0 degrees. When the front of a piston reaches its top dead center position at 0 degrees the compressed fuel-air mixture is ignited and that piston's combustion/compression cycle begins with combustion occurring in front of the piston and compression occurring in the rear of the same piston. This arrangement of pistons and cylinders permits a longer two stroke combustion process and when used with a direct injection system placed in the front cap there is no loss of combustible fuel in the exhaust cycle.
(19) The operation of the engine is further illustrated in diagrammatic
(20) Referring now to
(21) In
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(25) Examining
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(27) In