Claims
- 1. A method for operating an internal combustion engine having a cylinder and a slidable piston located within a combustion chamber, a spark means for providing a timed ignition spark-like burst of electrical energy for igniting a fuel-air mixture in the combustion chamber during a combustion portion of a power stroke, the method of operation comprising the steps of:
- firing numerous electrical bursts of high electrical intensity for a short duration;
- ionizing the fuel-air mixture to liberate negative ions which thereby scatter throughout the combustion chamber and ignite separately; and
- controlling the time of application and the electrical intensity of each burst by utilizing as a switch means an electric power source circuit and its momentary electrical characteristic conditions of mass moving and ions igniting.
- 2. The method of claim 1 further comprising the step of recirculating the fuel-air mixture that was not combusted in the combustion chamber and mixing the recirculated air-fuel mixture with fresh fuel to be later combusted in the combustion chamber.
- 3. An electromagnetic pulsating circuit for providing a spark to a cylinder of an internal combustion engine comprising:
- a rechargeable inductor capable of nearly instantaneously releasing its stored energy;
- a power source for rapidly recharging the inductor; and
- a field of matter that absorbs and dissipates the inductor's energy and controls the timing and frequency of the inductor's discharge.
- 4. The circuit as in claim 3 wherein said field of matter is connected in series to a polarizer.
- 5. The circuit as in claim 3 wherein said inductor is formed of a magnetically permeable core having primary windings and a secondary winding.
- 6. The circuit as in claim 3 wherein the resistance of said inductor is about 500 ohms or less at room temperature.
- 7. The circuit as in claim 3 wherein said power source is operable to recharge said inductor about every 300 microseconds.
- 8. The circuit as in claim 6 wherein said power source includes:
- a pair of transistors connected the primary windings;
- a low voltage battery;
- an on-off switch in series with said battery that activates and deactivates said circuit;
- a capacitor shunt connected across the battery; and
- a variable resistor that controls the average current level into the transistors from the battery,
- whereby said power source is operable to nearly instantaneously repeatedly recharge the inductor.
- 9. The circuit as in claim 3 further comprising an anode and cathode that are spaced apart and have said field of matter therebetween.
- 10. The circuit as in claim 3 wherein said field of matter is a mixture of air and hydrocarbon fuel.
- 11. The circuit as in claim 9 wherein said inductor continues to recharge until its level of stored energy exceeds the dielectric strength of the field of matter between said anode and cathode.
- 12. The circuit as in claim 3 wherein said inductor has sufficient capacity to discharge about one joule up to 15,000 joules at about 10,000 times per second.
- 13. The circuit as in claim 3 wherein said power source has sufficient capacity to charge said inductor about 1-15,000 joules at about 1,000 times per second.
- 14. The circuit as in claim 3 wherein said field of matter changes with each cycle of the engine.
- 15. The pulsating circuit further comprising:
- a piston for an internal combustion engine including:
- a first cylindrical body having a top surface and a lower surface;
- a second cylindrical body having a top surface;
- a plurality of springs nestled between said bodies; and
- a fastening structure connecting said bodies and springs together.
- 16. A plasma ignition system comprising:
- a combustion chamber having intake and outlet ports;
- a fluid delivery system for delivering a supply of fresh combustible fluid to the combustion chamber;
- a plasma recirculation system in communication with the combustion chamber and operable to receive and circulate not yet combusted plasma; and
- an electrical source for energizing the fuel in the combustion chamber.
- 17. The plasma ignition system as claimed in claim 16, wherein the plasma recirculation system includes an intake line that delivers not yet combusted plasma to a fluid pump, and a mixing conduit for mixing pressurized plasma with fresh fuel and for delivering the mixed pressurized plasma to the combustion chamber.
- 18. The plasma ignition system as claimed in claim 16, wherein the fluid delivery system includes a pump that increases fluid pressure and further includes a heater for increasing the temperature of the combustible fluid.
- 19. The plasma ignition system as claimed in claim 16, wherein the electrical source includes a current enhancing device, and a distributor that selectively distributes the enhanced current to the combustion chamber.
- 20. The plasma ignition system as claimed in claim 16, further comprising a plasma housing assembly located in the combustion chamber, the housing assembly including an ignition housing, an electrode, and an anode that delivers high energy impulses to the electrode.
CROSS-REFERENCE TO RELATED APPLICATIONS
This is a division of U.S. patent application Ser. No. 08/141,235, filed Oct. 22, 1993, now U.S. Pat. No. 5,423,306.
US Referenced Citations (7)
Divisions (1)
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Number |
Date |
Country |
Parent |
141235 |
Oct 1993 |
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