Claims
- 1. A power converter circuit comprising:
a first half-bridge connected to a circuit input; a second half-bridge connected to a voltage storage device; a midpoint of each half-bridge connected to a resonant output stage; each half-bridge being operable to transfer power to the resonant output stage; and the resonant output stage operable to drive a resonant load, wherein the resonant load receives constant power.
- 2. The power converter of claim 1, wherein:
each half-bridge comprises two switches; and the resonant output stage is connected between the switches of each half-bridge.
- 3. The power converter of claim 1, wherein the voltage storage device is a capacitor.
- 4. A power converter circuit comprising:
a first switch connected to a circuit input; a second switch connected to a voltage storage device; the first and second switches being connected in series with a resonant output circuit; the resonant output circuit being operable to drive a resonant load; and a control circuit coupled to the first and second switches and being operable to drive the first and second switches to achieve constant power in the resonant load, the first and second switches being driven in accordance with calculated conduction angles.
- 5. The power converter circuit of claim 4, wherein the calculated conduction angles are given by the equation:
- 6. The power converter circuit according to claim 4, wherein the control circuit is further operable to drive the first switch to draw sinusoidal current in phase with an input voltage from said circuit input.
- 7. A power converter circuit comprising:
a first switch connected to a circuit input; a second switch connected to a voltage storage device; the first and second switches being coupled with a resonant output circuit; the resonant output circuit being operable to drive a resonant load; and a control circuit coupled to the first and second switches and being operable to drive the first and second switches to provide a frequency control of an output voltage of the resonant output circuit.
- 8. The power converter circuit according to claim 7 wherein the control circuit is operable to drive the first and second switches to provide input current wave shaping through phase control between the first and second switches.
- 9. The power converter circuit according to claim 7 wherein the control circuit is further operable to drive both the first and second switches at a calculated frequency.
- 10. A power converter circuit comprising:
a first switch connected to a circuit input; a second switch connected to a voltage storage device; the first and second switches being coupled with a resonant output circuit; the resonant output circuit being operable to drive a resonant load; and a control circuit coupled to the first and second switches and being operable to drive the first and second switches to provide input current wave shaping through phase control between the first and second switches.
- 11. The power converter circuit according to claim 10, further comprising:
a third and fourth switch, the third switch series with the first switch and the fourth switch in series with the second switch; and the resonant output circuit is connected between the first and third switch and the second and fourth switch.
- 12. The power converter according to claim 11, wherein:
the first and third switch operate complementary to each other with a 50% duty cycle; and the second and fourth switch operate complementary to each other with a 50% duty cycle.
- 13. A power converter circuit comprising:
four switches arranged in two half-bridges; each half bridge having two switches; a resonant output circuit connected between the two half-bridges between the two switches making up each half-bridge; one half-bridge connected to a power input line; another half-bridge connected to a bus capacitor; the resonant output circuit being coupled to a resonant load circuit; and a control circuit connected to each switch and operable to switch the switches to draw a sinusoidal input current in phase with an input voltage and provide a constant power to the resonant load circuit.
- 14. A method for controlling a power converter circuit having two switches, one switch being connected to a power line input, another switch being connected to a bus capacitor, the switches being in series with a resonant output circuit, the method comprising:
driving the one switch to have a conduction angle α according to the equation: 7α=3602π{arccos(-2π Pload(1-cos 2θ)&LeftBracketingBar;Vi npeak·sin θ&RightBracketingBar;·iload+1)}and driving the other switch to have a conduction angle β according to the equation: 8β=3602π{arccos(-2π&LeftBracketingBar;Ploadcos 2θ(Vcapacitor(t=0)-Ploadcos 2θVcapacitor(t=0)·C)iload+1&RightBracketingBar;)}wherein θ is an angular reference of related to a cycle of the power line input.
- 15. A method for controlling a power converter circuit to have a regulated output voltage and a shaped input current waveform, comprising:
controlling a switching frequency of two switches in the power converter circuit, one switch being connected to a power line input, another switch being connected to a bus capacitor, the switches being in series with a resonant output circuit, the switching frequency being controlled to regulate an output voltage of the resonant output circuit; and controlling a phase angle between the two switches to thereby shape the input current waveform.
RELATED APPLICATION
[0001] This application is based on and claims benefit of U.S. Provisional Application Serial No. 60/277,284, filed Mar. 21, 2001 entitled SINGLE-STAGE PFC+ BALLAST CONTROL CIRCUIT/GENERAL PURPOSE CONVERTER, to which a claim of priority is hereby made.
Provisional Applications (1)
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Number |
Date |
Country |
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60277284 |
Mar 2001 |
US |