Claims
- 1. A capacitive discharge ignition system for internal combustion engines comprising an ignition circuit for firing an ignitor element including at least one energy storage and discharge capacitor of capacitance Cp, and one ignition coil T per ignitor element of primary turns Np, secondary turns Ns, and with turns ratio N=Ns/Np, wherein coil T has a coil primary current switch means S which can be actively turned off, said capacitor Cp, primary winding of said coil T and switch S comprising a primary ignition discharge circuit of Topology Type II wherein said discharge capacitor means Cp is in series with the coil T primary winding, one end of which is grounded, the system powered by an electrical power source Eps for supplying power to the ignition system for charging capacitor Cp to a voltage Vc, the ignition system firing the ignitor to produce ignition sparks in a spark gap in the secondary winding of said coil T by discharging said capacitor means through actuation of said primary current switch means S, the improvement comprising:a) a series combination of shunt diode means D and switch SD placed across the coil's primary winding with a voltage dropping element Vdb placed across switch SD, b) the system being constructed and arranged for producing an initial capacitive ignition spark discharge, through actuation of switch means S, of duration Tci which can be less than a quarter period of oscillation Tc defined by resonance oscillation of said capacitor Cp with the coil T primary leakage inductance Lpe, said initial discharge followed by an essentially triangular distribution decaying spark discharge of a longer period T which is initiated upon switch S turn-off resulting in diversion of the current flowing in switch S to the series combination shunt diode D and switch SD which is in the turned-on state, and c) the system further being constructed and arranged for turning off switch SD near spark current zero or after spark current zero to divert residual primary discharge current through said voltage dropping element Vdb.
- 2. An ignition system as defined in claim 1 constructed and arranged such that following triggering of said switch S for ignition firing said switch S is turned off prior to first full discharge of said capacitor Cp at most operating conditions.
- 3. An ignition system as defined in claim 2 constructed and arranged such that power source Eps is turned on following turn-off of said switch S to recharge said capacitor Cp through series combination of diode D and switch SD when SD is on, and through voltage dropping element Vdb when switch SD is off.
- 4. An ignition system as defined in claim 1 wherein said switch SD is low voltage, low RDS, N-type FET transistor.
- 5. An ignition system as defined in claim 1 wherein said voltage dropping element Vdb is a Zener diode.
- 6. An ignition system as defined in claim 1 wherein said voltage dropping element Vdb is a battery with an isolating diode in series.
- 7. An ignition system as defined in claim 1 wherein said voltage dropping element Vdb is a battery which powers a DC to DC converter with an isolating diode in series.
- 8. An ignition system as defined in claim 1 wherein said switches S is IGBT transistor.
- 9. An ignition system as defined in claim 1 constructed and arranged such that said electrical power source Eps is a DC to DC power converter which is turned off during turn-on of switch S and turned on during turn-off of said switch S to charge said capacitor Cp through diode D.
- 10. An ignition system as defined in claim 1 wherein signal for initial turning off of said switch SD is obtained from a sense resistor at the ground end of the secondary winding.
- 11. An ignition system as defined in claim 10 wherein said sense resistor at the ground end of the secondary winding is used in conjunction with a transistor which is turned on and off to provide the initial turn-on and turn-off signals to switch SD when the sense voltage at the sense resistor end goes above and below the transistor base-emitter voltage.
- 12. An ignition system as defined in claim 11 wherein the base of the transistor is connected to the sense resistor for the more common negative secondary current and the emitter is connected to the sense resistor, with base to ground, for positive current.
- 13. An ignition system as defined in claim 1 constructed and arranged such that switch S is turned off when the voltage Vci on said capacitor Cp drops to 20% to 40% of said voltage Vc.
- 14. An ignition system as defined in claim 1 wherein signal for turning off switch S is obtained, following triggering of the switch S, from the negative voltage available at the capacitor plate on the primary winding side of the coil T.
- 15. An ignition system as defined in claim 14 wherein signal for turning off switch S is obtained from a voltage divider resistor pair placed across the coil T primary winding.
- 16. An ignition system as defined in claim 1 wherein said power supply Eps is a battery power source and a DC to DC power converter for raising the battery voltage Vb to a higher voltage Vc to charge the CD capacitor of capacitance Cp, the power converter being a low electrical noise flyback type with input filter operating at a very high efficiency with one layer of primary transformer winding tightly wound over more than one layer of secondary winding magnet wire for high efficiency and low leakage inductance.
- 17. The ignition system of claim 1 wherein said coil T is an E-core with side-by-side primary and secondary windings.
- 18. The ignition system as defined in claim 17 wherein said coil T has primary turns Np between 40 and 60 turns and turns ratio N of 40 to 70.
- 19. The ignition system as defined claim 1 wherein the coil primary leakage inductance Lpe is between 200 uH and 500 uH.
- 20. The ignition system as defined in claim 1 wherein the voltage doubling parameter VDP defined by N2·Cs/Cp, where Cs is the total coil output capacitance including the coil secondary winding capacitance and that of the spark plug boot and spark plug, is less than 0.25.
- 21. The ignition system as defined in claim 1 wherein said capacitor Cp is 400 voltage rating capacitor of capacitance Cp between 2 and 6 uF.
- 22. The ignition system as defined in claim 1 wherein the quarter period Tc is about 50 usecs.
- 23. The ignition system as defined in claim 17 wherein coil T is comprised of a bobbin with a single primary winding bay and secondary winding bays numbering between 7 and 10 bays.
- 24. An ignition system as defined in claims 1 wherein the spark plug used for creating the spark discharge has a built in high capacitance Cp1 above 20 pF.
- 25. An ignition system with spark plug as defined in claim 24 wherein high capacitance of the spark plug is obtained by metal coating one or both surfaces of the spark plug insulator along the spark plug body of length lc.
- 26. An ignition system with spark plug as defined in claim 24 wherein the high plug capacitance is obtained by using an insulator material composed of a combination of alumina and one or more other higher dielectric constant materials.
- 27. An ignition system with spark plug as defined in claim 26 wherein the insulator material of the spark plug is a combination of alumina and 15% to 40% zirconia.
- 28. An ignition system as defined in claims 1 wherein inductive spark plug wire is used for the spark plug wire.
- 29. An ignition system as defined in claim 28 wherein high capacitance spark plug is used with capacitance above 30 pF.
- 30. An ignition system as defined in claim 24 wherein said high capacitance spark plug includes an inductor placed inside the top insulating end connected to the spark plug.
- 31. An ignition system as defined in claim 1 and wherein the coil primary turns Np is approximately 50 turns and the turns ratio N is approximately 65.
- 32. An ignition system as defined in claim 1 wherein the peak primary current is approximately 40 amps and the peak secondary current is between 400 ma and 700 ma.
- 33. An ignition system as defined in claim 1 wherein the coil primary winding turns Np are between 40 and 60 and leakage inductance Lpe is between 200 and 500 uH.
CROSS-REFERENCE TO RELATED PATENT APPLICATIONS
This application has 35 U.S.C. 119 and Paris Convention priority from my U.S. provisional patent application No. 60/075,627, filed Feb. 21, 1998.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US99/03564 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO99/42722 |
8/26/1999 |
WO |
A |
US Referenced Citations (3)
Foreign Referenced Citations (1)
Number |
Date |
Country |
WO 9513470 |
May 1995 |
WO |