Claims
- 2. An engine as recited in claim 1 wherein said first predetermined portion comprises a portion of a third stroke of the six-stroke cycle.
- 3. An engine as recited in claim 2 wherein the quantity of water is injected into the cylinder beginning at an end of said third stroke, said end of said third stroke defining the beginning of said second predetermined portion.
- 4. An engine as recited in claim 3 wherein said second predetermined portion further comprises at least a portion of a fourth stroke of the six-stroke cycle.
- 5. An engine as recited in claim 4 wherein the quantity of water is further injected during at least a majority of said fourth stroke.
- 6. An engine as recited in claim 5 wherein said sensor assembly is further disposed and structured to determine engine speed at least during said fourth stroke of the six-stroke cycle.
- 7. An engine as recited in claim 6 wherein said sensor assembly is further disposed and structured to determine the temperature of the water prior to its injection into said cylinder.
- 8. An engine as recited in claim 1 wherein said water supply comprises a water jacket mounted in heat transferring relation to the cylinder.
- 9. An engine as recited in claim 8 wherein said water supply comprises a substantially closed system including a condenser connected in receiving relation to said exhaust valve and a return pump connected to receive water from said condenser and direct the retrieved water to said water jacket.
- 10. An engine as recited in claim 9 wherein said closed system further includes an injector pump interconnected in fluid communication between said water jacket and said water injection assembly.
- 11. An engine as recited in claim 1 wherein said injection assembly comprises at least one injector structure operatively connected to said central processor and structured to inject water into said cylinder.
- 12. An engine as recited in claim 11 wherein said sensor assembly comprises at least two other sensor structures respectively disposed on the engine to determine the heat of the water being injected into the cylinder and the speed of the engine.
- 13. An engine as recited in claim 11 wherein said injection assembly comprises a plurality of injector structures each operatively connected to said central processor and structured to inject a quantity of water into the cylinder during said second predetermined portion of the six-stroke cycle.
- 14. An engine as recited in claim 15 wherein said central processor is structured for repetitive activation of each of said injector structures and periodic injection of water into said cylinder during said second predetermined portion of the six-stroke cycle.
- 15. An engine as recited in claim 16 wherein said second predetermined portion of the six-stroke cycle comprises the end of the third stroke and a majority of the duration of the forth stroke.
- 16. An engine as recited in claim 1 wherein central processor is structured for repetitive activation of said injector structure and successive injections of water into said cylinder beginning at the end of a third stroke of the six-stroke cycle.
- 17. An engine as recited in claim 16 wherein said second predetermined portion of the six-stroke cycle comprises the end of said third stroke and at least a portion of the duration of said fourth stroke of the six-stroke cycle.
- 18. An internal combustion engine designed to operate on a six-stroke cycle, said internal combustion engine comprising:
a) at least one piston and cylinder assembly including a piston reciprocally mounted within a cylinder and intake and exhaust valves cooperatively mounted to regulate fluid flow into and out of said cylinder and an ignition source structured to ignite a combustible mixture within said cylinder, b) a central processor responsive to energy content within said cylinder at least during a first predetermined portion of the six-stroke cycle and operatively connected to an injection assembly, c) said injection assembly disposed and structured to inject a quantity of water into said cylinder during a second predetermined portion of the six-stroke cycle based at least in part on said energy content, d) a first intake stroke wherein said inlet and exhaust valves are respectively opened and closed and during which a combustible fluid enters said cylinder, e) a second compression stroke and a third power stroke wherein said inlet and exhaust valves are closed and during which said combustible fluid is respectively compressed and ignited, f) a fourth compression stroke wherein said intake and exhaust valves are closed and during which water is injected into said cylinder and the water and ignited fluid are compressed, g) a fifth power stroke wherein said intake an exhaust valves are closed and during which the injected water converts to steam, h) a sixth stroke wherein said intake and exhaust valves are respectively closed and opened and during which the steam and ignited fluid are exhausted, and i) said first predetermined portion of the six-stroke cycle comprising a portion of said third stroke and said second predetermined portion of said six-stroke cycle comprising an end of said third stroke and at least a portion of the duration of said fourth stroke.
- 19. An engine as recited in claim 18 wherein said injection assembly is operatively activated by said central processor to inject the quantity of water into said cylinder periodically beginning at the end of said third stroke and over at least a majority of the duration of said fourth stroke.
- 20. An engine as recited in claim 18 wherein at least the total energy input to the cylinder, the thermal efficiency of the engine and the percentage of heat loss normally attributed to exhaust gasses are determinative of said energy content.
- 21. A method of operation of an internal combustion engine during a six-stroke cycle, said method comprising:
a) drawing a combustible fluid into a cylinder during a first stroke, b) compressing and igniting the combustible fluid respectively during a second stroke, c) determining a quantity of water to be injected by deriving the energy content within the cylinder during a portion of a third stroke, d) injecting the quantity of water into the cylinder beginning at the end of the third stroke without exhausting the ignited fluid and compressing the water and ignited fluid during a fourth stroke, e) converting the water into steam while reducing pressure within the cylinder and thereby defining a fifth stroke as a power stroke, and f) exhausting the steam and ignited fluid from the cylinder during a six-stroke.
- 22. A method as recited in claim 21 comprising further injecting the quantity of water throughout at least a portion of the duration of the fourth stroke.
- 23. A method as recited in claim 22 comprising further injecting the quantity of water periodically throughout at least a majority of the duration of the fourth stroke.
- 24. A method as recited in claim 23 comprising converting the water into steam gradually on a substantially continuous basis throughout a portion of the fifth stroke.
- 25. A method as recited in claim 24 comprising converting the water into steam throughout at least a majority of the duration of the fifth stroke.
- 26. A method as recited in claim 21 further comprising determining the quantity of water being injected by determining the energy content of the cylinder.
- 27. A method as recited in claim 26 comprising determining the energy content during a portion of the third stroke prior to the injection of water into the cylinder by utilizing the total energy input to the cylinder, the thermal efficiency of the engine and the percentage of heat loss normally attributed to exhaust gasses.
CLAIM OF PRIORITY
[0001] The present application is a continuation-in-part application of previously filed, now pending application having Ser. No. 09/465,329, filed on Dec. 17, 1999, which will mature into U.S. Pat. No. 6,311,651 on Nov. 6, 2001 and which is incorporated herein in its entirety by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09465329 |
Dec 1999 |
US |
Child |
10007012 |
Nov 2001 |
US |