Claims
- 1. An internal combustion engine, comprising:at least one housing having an inner circumferential surface; a crankcase; a crankshaft extending from said crankcase; at least one cylinder positioned in said housing having its top portion rotatable substantially along said circumferential surface, said cylinder having a chamber and a piston movable longitudinally therein, a piston rod connecting said piston and extending from said cylinder to movably mount to said crankshaft so that said cylinder is rotatable about said crankshaft; at least one exhaust port formed in said housing to effect a passageway from the inside to the outside of said housing; at least one opening formed in said cylinder to enable gases in the chamber of said cylinder to be evacuated therefrom; and at least one channel formed at said cylinder through which fuel is fed into said chamber of said cylinder via said crankcase in an amount that relates to the positioning of said piston in said chamber; wherein when said cylinder is rotated to a particular portion along said circumferential surface, exhaust gases resulting from combustion in said chamber of said cylinder are evacuated through said one opening of said cylinder and said exhaust port of said housing to the outside of said housing.
- 2. The engine of claim 1, wherein said cylinder further comprises a second channel through which fuel is fed into the chamber of said cylinder.
- 3. The engine of claim 1, further comprising:an other housing having an inner circumferential surface; at least one other cylinder positioned in said other housing, said other cylinder having a chamber and a piston movable longitudinally therein, said piston having extending therefrom a piston rod movably mounted to said crankshaft so that said other cylinder is rotatable about said crankshaft; at least one opening formed in said other cylinder to enable exhaust gases therein to escape therefrom; said one and other housings being positioned relative to and working cooperatively with each other so that said one and other cylinders are rotated in unison, said one and other cylinders being rotated to respective locations along said corresponding circumferential surfaces to enable exhaust gases from said one and other cylinders to be evacuated from said respective openings formed in said cylinders and the corresponding exhaust ports in said one and other housings.
- 4. The engine of claim 1, further comprising:at least two cylinders positioned opposed to each other, each of said cylinders having a piston movable longitudinally therein and a piston rod extending therefrom movably coupled to said crankshaft so that said cylinders are rotatable at 180 degrees about said crankshaft.
- 5. The engine of claim 1, wherein said cylinder is rotated in a first direction relative to said crankshaft; andwherein said crankshaft is driven by said cylinder to rotate in a direction opposite to said first direction.
- 6. The engine of claim 1, wherein said crankshaft is fixedly coupled to a frame, further comprising:drive gear means directly coupled to either said frame or said cylinder so as to be movable with the rotation of said cylinder.
- 7. The engine of claim 1, wherein said crankshaft is fixedly mounted to a frame, said engine further comprising:drive means operationally connected to either said frame or said cylinder so as to be driven by said cylinder as it rotates about said crankshaft.
- 8. A valveless engine, comprising:a crankshaft; at least one cylinder rotatably coupled to said crankshaft, relative rotation being effected between said cylinder and said crankshaft; at least one opening in said cylinder wherefrom exhaust gases resulting from combustion in said cylinder can escape; a housing having an inner circumferential surface whereon said cylinder is movable about includes at least one exhaust port to mate with said opening of said cylinder at least once for every revolution of said cylinder about said inner circumferential surface of said housing to effect a passageway for the exhaust gases in said cylinder to be evacuated therefrom; and at least one channel formed at the lower portion of said cylinder through which fuel provided to an area below said cylinder is fed into said cylinder in an amount corresponding to the positioning of said cylinder in relation to its rotation relative to said crankshaft.
- 9. The engine of claim 8, further comprising:a crankcase wherefrom said one cylinder extends and whereinto fuel for said cylinder is fed from an input port; wherein said at least one channel is formed at the portion of said cylinder away from said opening through which fuel is input to said cylinder; and wherein said one cylinder comprises at least an other channel through which fuel is fed into said cylinder.
- 10. The engine of claim 9, further comprising:at least one input port at said housing for enabling the fuel to be supplied through said channel to said cylinder when or after a substantial portion of the exhaust gases are being evacuated.
- 11. The engine of claim 8, further comprising:another cylinder positioned opposed to said one cylinder so that said one and other cylinders are rotatable at 180 degrees about said crankshaft.
- 12. The engine of claim 8, wherein said cylinder is rotated in a first direction relative to said crankshaft; andwherein said crankshaft is driven by said cylinder to rotate in a direction opposite to said first direction.
- 13. The engine of claim 8, further comprising:a plurality of exhaust ports formed at said housing and positioned relative to said cylinder; and at least one channel formed at said cylinder wherethrough the fuel is input to said cylinder while exhaust gases resulting from combustion of said fuel in said cylinder are evacuated via each of said exhaust ports as said cylinder rotates about said crankshaft, so that said cylinder effects a plurality of work cycles per each full revolution it makes relative to said crankshaft.
- 14. The engine of claim 8, further comprising:at least an other cylinder positioned relative to said one cylinder rotatably coupled to said crankshaft; at least one opening in said other cylinder wherefrom exhaust gases resulting from combustion in said other cylinder can escape; and at least an other exhaust port formed at said housing positioned relative to said other cylinder to mate with said opening of said other cylinder at least once for every revolution of said other cylinder about said crankshaft; wherein said other cylinder works cooperatively with said one cylinder to provide additional output power from said engine.
- 15. The engine of claim 8, further comprising:a gear mechanism having a first gear cooperatively rotatable with the rotation of said cylinder about said crankshaft; a second gear cooperatively rotatable with the rotation of said crankshaft; a synchronizing gear movably coupling said first gear to said second gear; and a drive shaft fixedly coupled to said synchronizing gear so as to be rotatable with the rotation of said synchronizing gear.
- 16. The engine of claim 15, Wherein said first and second gears rotate in opposite directions.
- 17. A valveless engine comprising:a crankcase; a crankshaft movably extending from said crankcase; a plurality of cylinders extending from said crankcase each movably coupled and rotatable relative to said crankshaft; at least one opening in each of said cylinders wherefrom exhaust gases resulting from combustion in said each cylinder can escape; a housing having an inner circumferential surface whereon said cylinders are movable, said housing further having a plurality of exhaust ports each positioned relative to a corresponding one of said cylinders so that said each exhaust port is aligned with said one opening of said one cylinder at least once for every revolution of said one cylinder about said crankshaft to enable the exhaust gases in said one cylinder to be evacuated therefrom; and at least one channel in fluid communication with said crankcase formed at each of said cylinders away from said one opening to enable fuel to be fed into each of said cylinders to enhance the evacuation of the exhaust gases from said each cylinder as said each cylinder rotates about said crankshaft.
- 18. The engine of claim 17, further comprising:at least one input port at said crankcase for enabling the fuel to be supplied to said cylinders through the one channel of said each cylinder.
- 19. The engine of claim 17, wherein said one channel is provided at substantially the lower portion of said each cylinder while said opening is provided at substantially the upper portion of said each cylinder; andwherein each of said cylinders comprises at least an other channel.
- 20. The engine of claim 17, further comprising:a plurality of fuel input ports at said housing each positioned relative to a corresponding one of said cylinders to input fuel to said one cylinder while exhaust gases resulting from combustion of said fuel in said one cylinder are evacuated from the exhaust port aligned with said one cylinder as said one cylinder rotates about said crankshaft, said plurality of cylinders effecting a plurality of work cycles per each full revolution a leading one of said plurality of cylinders makes about said crankshaft.
- 21. The engine of claim 17, further comprising:a plurality of housings workingly coupled to each other, said housings each having positioned therein at least one of said plurality of cylinders, said cylinders working cooperatively to effect a multiple work cycle engine.
- 22. A method of increasing the efficiency of an internal combustion engine, comprising the steps of:a) coupling a crankshaft movably extending from a crankcase to a frame of said engine; b) movably mounting at least one cylinder via its piston rod about said crankshaft in a housing; c) effecting at least one opening to said cylinder to allow exhaust gases resulting from combustion therein to escape; d) forming at least one exhaust port in said housing in proximate relationship to said cylinder; e) effecting a relative rotational movement between said cylinder and said crankshaft to align said exhaust port with said opening to thereby evacuate the exhaust gases from said cylinder; and f) providing at least one channel at said cylinder away from said one opening to enable fuel to be fed to said cylinder via said crankcase in an amount in proportion to the rotational positioning of said cylinder relative to said crankshaft.
- 23. Method of claim 22, further comprising the step of:providing at least one other channel in said cylinder for inputting fuel to said cylinder.
- 24. Method of claim 22, wherein said step (e) further comprises the step of:effecting said crankshaft to rotate in a direction opposite to the rotation of said cylinder.
- 25. Method of claim 22, further comprising the steps of:providing a first gear to cooperatively rotate with the rotation of said cylinder about said crankshaft; providing a second gear to cooperatively rotate with the rotation of said crankshaft; providing a synchronizing gear to movably couple said first gear to said second gear; and fixedly coupling a drive shaft to said synchronizing gear so that said drive shaft is rotatable with the rotation of said synchronizing gear.
- 26. Method of claim 25, further comprising the step of;effecting said first and second gears to rotate in opposite directions.
- 27. Method of claim 22, further comprising the step of:positioning an other cylinder opposed to said one cylinder so that said one and other cylinders are rotatable at 180 degrees about said crankshaft.
- 28. Method of claim 22, further comprising the steps of:positioning a plurality of exhaust ports relative to said cylinder; positioning a plurality of fuel input ports relative to said cylinder; supplying fuel to said cylinder via each of said fuel input ports while evacuating exhaust gases resulting from combustion of said fuel in said cylinder via each of said exhaust ports as said cylinder rotates about said crankshaft for effecting said cylinder effects to perform a plurality of work cycles per each full revolution it makes about said crankshaft.
- 29. Method of claim 22, further comprising the step of:rotatably coupling to said crankshaft at least an other cylinder positioned relative to said one cylinder; providing at least one opening in said other cylinder wherefrom exhaust gases resulting from combustion in said other cylinder can escape; and mating at least an other exhaust port positioned relative to said other cylinder with said opening of said other cylinder at least once for every revolution of said other cylinder about said crankshaft; wherein said other cylinder works cooperatively with said one cylinder to provide additional output power from said engine.
- 30. The method of claim 22, further comprising the step of:closing said one opening of said cylinder when said cylinder is not mated to said exhaust port.
- 31. Method of claim 22, wherein said crankshaft is fixedly coupled to said frame and wherein said step e further comprises the step of rotating said cylinder about said crankshaft, said method further comprising the step of:operatively coupling a drive shaft to said cylinder so that said drive shaft rotates in unison with said cylinder.
- 32. Method of claim 22, wherein said step (e) further comprises the step of:effecting said crankshaft to rotate in the same direction as the rotation of said cylinder.
- 33. Method of claim 22, further comprising the step of:adjusting the size of the opening of said exhaust port of said cylinder to control the power output from said cylinder.
Parent Case Info
This application is a division of application Ser. No. 09/161,315, filed Sep. 28, 1998, now U.S. Pat. No. 6,240,884.
US Referenced Citations (5)