Claims
- 1. An induction heating system that is at least partially powered by a source of substantially clean DC current, said system comprising a high frequency inverter with an input connected to said substantially clean DC current source, a first current conductive path including a first capacitor and a first switch closed to cause one half cycle of AC current to flow in said first path by discharging said first capacitor, a second current conductive path including a second capacitor and a second switch closed to cause a second half cycle of AC current to flow in said second path by discharging said second capacitor, a single load inductor in both of said paths with AC current flowing in a first direction through said inductor when said first switch is closed and in a second opposite direction through said inductor when said second switch is closed and a gating circuit to alternately close said switches at a driven frequency between 10 KHz and 20 KHz to control heating by said load inductor, each of said paths having a given natural frequency, and said driven frequency being adjustable to a value about the natural frequency of said load, said high frequency inverter being contained in a housing having a volume of less than about 100 cubic inches, and an air cooling system, said air cooling system being a natural air cooling system that is absent the use of cooling fans.
- 2. The induction heating system as defined in claim 1, wherein said substantially clean DC current source is less than about 100 volts.
- 3. The induction heating system as defined in claim 2, wherein said substantially clean DC current source is less than about 50 volts.
- 4. The induction heating system as defined in claim 3, wherein said substantially clean DC current source is less than about 24 volts.
- 5. The induction heating system as defined in claim 1, wherein said high frequency inverter is substantially fully powered by said substantially clean DC current source.
- 6. The induction heating system as defined in claim 1, wherein said substantially clean DC current source is a storage battery used in association with an internal combustion engine.
- 7. The induction heating system as defined in claim 1, wherein said load inductor heats fluid.
- 8. The induction heating system as defined in claim 1, wherein said driven frequency is adjustable between a value less than said natural frequency of said load.
- 9. The induction heating system as defined in claim 1, wherein said driven frequency is adjustable between a value greater than said natural frequency of said load.
- 10. The induction heating system as defined in claim 1, wherein said inductor is an induction heating coil.
- 11. The induction heating system as defined in claim 1, wherein said inductor is a primary winding of an output transformer having a secondary winding in the form of an induction heating coil.
- 12. The induction heating system as defined in claim 1, including an adjustable counter to adjust said driven frequency to control the heat output of said system.
- 13. The induction heating system as defined in claim 1, wherein said gating circuit includes a circuit which creates alternate gate pulses for said first and second switches with a dead time between said gate pulses.
- 14. An induction heating system for heating a fluid that is powered by a source of substantially clean DC current, said system comprising a high frequency inverter with an input connected to said substantially clean DC current source that is less than about 50 volts, a first current conductive path including a first capacitor and a first switch closed to cause one half cycle of AC current to flow in said first path by discharging said first capacitor, a second current conductive path including a second capacitor and a second switch closed to cause a second half cycle of AC current to flow in said second path by discharging said second capacitor, a single load inductor in both of said paths with AC current flowing in a first direction through said inductor when said first switch is closed and in a second opposite direction through said inductor when said second switch is closed and a gating circuit to alternately close said switches at a driven frequency between 10 KHz and 20 KHz to control heating by said load inductor, each of said paths having a given natural frequency, said driven frequency being adjustable to a value about the natural frequency of said load, said high frequency inverter being contained in a housing having a volume of less than about 100 cubic inches, an air cooling system, said air cooling system being a natural air cooling system that is absent the use of cooling fans, said inductor including an induction heating coil.
- 15. The induction heating system as defined in claim 14, including an adjustable counter to adjust said driven frequency to control the heat output of said system.
- 16. The induction heating system as defined in claim 14, wherein said gating circuit includes a circuit which creates alternate gate pulses for said first and second switches with a dead time between said gate pulses.
- 17. The method of heating a fluid by an induction heating system that is at least partially powered by a source of substantially clean DC current comprising:a. providing a substantially clean DC current source that is less than about 100 volts; b. providing a high frequency inverter with an input to receive said substantially clean DC current source, said inverter including a first current conductive path having a first capacitor and a first switch closed to cause one half cycle of AC current to flow in said first path by discharging said first capacitor, a second current conductive path having a second capacitor and a second switch closed to cause a second half cycle of AC current to flow in said second path by discharging said second capacitor, and a gating circuit to alternately close said switches at a driven frequency of less than about 200 kHz; c. providing a single load inductor in both of said paths with AC current flowing in a first direction through said inductor when said first switch is closed and in a second opposite direction through said inductor when said second switch is closed, said inductor including an induction heating coil, said gating circuit controlling heating by said load inductor, said inductor including an induction heating coil, each of said paths having a given natural frequency, said driven frequency being adjustable to a value about the natural frequency of said load inductor, said high frequency inverter being contained in a housing having a volume of less than about 100 cubic inches, an air cooling system, said air cooling system being a natural air cooling system that is absent the use of cooling fans; and d. connecting said substantially clean DC current source to said high frequency inverter to cause said induction heating coil to heat said fluid.
Parent Case Info
The present invention is a continuation-in-part of U.S. patent application Ser. No. 09/925,408 filed Aug. 10, 2001 entitled “INDUCTION HEATING SYSTEM,” which is incorporated herein by reference.
US Referenced Citations (6)
Foreign Referenced Citations (5)
Number |
Date |
Country |
57-151021 |
Sep 1982 |
JP |
10272153 |
Apr 2000 |
JP |
2000-100586 |
Apr 2000 |
JP |
WO 9825014 |
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Non-Patent Literature Citations (1)
Entry |
U.S. patent application Ser. No. 09/925,408, filed Aug. 10, 2001. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09/925408 |
Aug 2001 |
US |
Child |
10/102384 |
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US |