Claims
- 1. A power converter comprising:
an input which receives an input voltage and an input current from a DC source; capacitors connected across the input and dividing the input voltage therebetween; transformer primary windings; switches which periodically switch the primary windings across respective capacitors; current feed circuitry that constrains current flow through the primary windings; and a secondary circuit driven by the primary windings to provide a DC output.
- 2. A converter as claimed in claim 1 comprising two capacitors connected across the input, each capacitor charging to about one-half the input voltage.
- 3. A converter as claimed in claim 2 wherein each of the switches conducts about twice the input current.
- 4. A converter as claimed in claim 1 wherein transformer secondary windings of the secondary circuit are not tightly coupled.
- 5. A converter as claimed in claim 4 wherein first and second pairs of primary and secondary windings are provided on separate transformers.
- 6. A converter as claimed in claim 1 wherein the current feed circuitry comprises at least one magnetic element.
- 7. A converter as claimed in claim 6 wherein the magnetic element is an inductor.
- 8. A converter as claimed in claim 6 wherein the magnetic element is a transformer.
- 9. A converter as claimed in claim 1 wherein current through the primary windings is constrained by a common component.
- 10. A converter as claimed in claim 1 further comprising a clamp coupled to each switch to limit voltage across the switch when the switch is turned off.
- 11. A converter as claimed in claim 10 wherein the clamp is a diode.
- 12. A converter as claimed in claim 1 wherein a capacitor, primary winding and switch are connected in series in different orders in each of plural legs across the input, the current feed circuitry including a current constraining component connecting nodes within each of respective legs.
- 13. A converter as claimed in claim 12 wherein the current constraining component is an inductor.
- 14. A converter as claimed in claim 13 wherein each leg includes a primary winding between a capacitor and switch.
- 15. A converter as claimed in claim 14 wherein the inductor connects nodes between the primary winding and capacitor of each leg.
- 16. A converter as claimed in claim 14 wherein the inductor connects nodes between the primary winding and switch of each leg.
- 17. A converter as claimed in claim 1 wherein the switches are turned on with a fixed duty cycle.
- 18. A converter as claimed in claim 1 wherein the secondary circuit comprises synchronous rectifiers.
- 19. A power converter comprising:
an input which receives an input voltage and an input current from a DC source; a first circuit leg comprising a capacitor, transformer primary winding and switch connected in series across the input; a second circuit leg comprising a capacitor, transformer primary winding and switch connected in series across the input in an opposite order relative to the series connection of the first circuit leg; an inductor interconnecting like nodes of the first and second circuit legs; and a secondary circuit driven by the primary windings to provide a DC output.
- 20. A converter as claimed in claim 19 wherein the switches are turned on with a fixed duty cycle.
- 21. A converter as claimed in claim 19 wherein the secondary circuit comprises synchronous rectifiers.
- 22. A method of converting voltage comprising:
providing an input voltage and an input current at an input; dividing the input voltage across plural capacitors; periodically switching transformer primary windings across the capacitors; constraining current flow through the primary windings; and driving a secondary circuit from the primary windings to provide an output.
- 23. A method as claimed in claim 22 wherein two capacitors are connected across the input, each capacitor charging to about one-half the input voltage.
- 24. A method as claimed in claim 23 wherein each of the switches conducts about twice the input current.
- 25. A method as claimed in claim 22 wherein transformer secondary windings of the secondary circuit are not tightly coupled.
- 26. A method as claimed in claim 25 wherein first and second pairs of primary and secondary windings are provided on separate transformers.
- 27. A method as claimed in claim 22 wherein the current is constrained by at least one magnetic element.
- 28. A method as claimed in claim 27 wherein the magnetic element is an inductor.
- 29. A method as claimed in claim 27 wherein the magnetic element is a transformer.
- 30. A method as claimed in claim 22 wherein current through the primary windings is constrained by a common component.
- 31. A method as claimed in claim 22 further comprising limiting voltage across the switch when the switch is turned off.
- 32. A method as claimed in claim 31 wherein the voltage is limited with a diode.
- 33. A method as claimed in claim 22 wherein a capacitor, primary winding and switch are connected in series in different orders in each of plural legs across the input, the current being constrained by a component connecting nodes within each of respective legs.
- 34. A method as claimed in claim 33 wherein the current constraining component is an inductor.
- 35. A method as claimed in claim 34 wherein each leg includes a primary winding between a capacitor and switch.
- 36. A method as claimed in claim 35 wherein the inductor connects nodes between the primary winding and capacitor of each leg.
- 37. A method as claimed in claim 35 wherein the inductor connects nodes between the primary winding and switch of each leg.
- 38. A method as claimed in claim 22 wherein the switches are turned on with a fixed duty cycle.
- 39. A method as claimed in claim 22 wherein the secondary circuit comprises synchronous rectifiers.
- 40. A power converter comprising:
an input which receives an input voltage and an input current from a DC source; capacitors connected across the input and dividing the input voltage therebetween; transformer primary windings; switch means for periodically switching the primary windings across respective capacitors; current feed means for constraining current flow through the primary windings; and a secondary circuit driven by the primary windings to provide a DC output.
RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application Nos. 60/338,658, filed on Nov. 13, 2001, 60/372,621, filed Apr. 12, 2002 and 60/406,272, filed Aug. 27, 2002. The entire teachings of the above applications are incorporated herein by reference.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60338658 |
Nov 2001 |
US |
|
60372621 |
Apr 2002 |
US |
|
60406272 |
Aug 2002 |
US |