Claims
- 1. A power converter having a primary circuit and a secondary circuit coupled through a power transformer, comprising:
a) a swing node in the primary circuit; b) a driver circuit connected to the swing node, wherein the driver circuit includes at least one drive transformer providing isolation between the primary circuit and secondary circuit, wherein the isolation device is separate from the power transformer; and c) at least two secondary switches in the secondary circuit controlled by the driver circuit, wherein the at least one drive transformer has one secondary winding for driving each secondary switch.
- 2. The power converter of claim 1 wherein the primary circuit is selected from the group consisting of a full bridge circuit, an active clamp forward circuit, and an asymmetrical half bridge circuit.
- 3. The power converter of claim 1 wherein the secondary circuit is selected from the group consisting of a half-wave circuit, a center-tapped circuit, and a current-doubler circuit.
- 4. The power converter of claim 1 wherein the driver circuit includes a damping resistor.
- 5. The power converter of claim 4 wherein the damping resistor has a resistance of less than 10 Ohms.
- 6. The power converter of claim 1 further comprising a primary capacitor connected between the drive transformer and the swing node.
- 7. The power converter of claim 1 wherein the drive transformer has a leakage inductance less than 10 nanohenries.
- 8. The power converter of claim 1 wherein the drive transformer has a single primary winding coupled to two secondary windings, and each secondary winding provides gate drive for a switch in the secondary circuit.
- 9. The power converter of claim 8 further comprising two drive switches connected in a cross-coupled fashion for controlling the secondary side switches.
- 10. The power converter of claim 1 wherein the secondary circuit has two secondary switches, and each of the two secondary switches is controlled by a separate driver circuit.
- 11. The power converter of claim 1 wherein the driver circuit includes a clamping diode.
- 12. The power converter of claim 1 wherein the drive transformer is a piezotransformer, and wherein the piezotransformer is connected to the swing node through a primary capacitor.
- 13. The power converter of claim 1 further comprising a means for controlling the primary circuit according to a control scheme that provides zero-voltage switching.
- 14. The power converter of claim 1 wherein the drive transformer has a third winding, and the driver circuit includes a driver switch with a gate connected to the third winding, and the driver switch is connected across a secondary winding.
- 15. A power converter having a primary circuit and a secondary circuit coupled through a power transformer, comprising:
a) a swing node in the primary circuit; b) a driver circuit connected to the swing node, wherein the driver circuit includes:
a drive transformer providing isolation between the primary circuit and secondary circuit, wherein the drive transformer is separate from the transformer; a primary capacitor connected between the swing node and the drive transformer; c) at least two secondary switches in the secondary circuit controlled by the driver circuit, wherein the at least one drive transformer has one secondary winding for driving each secondary switch; and d) a damping resistor connected between the drive transformer and each secondary switch.
- 16. The power converter of claim 15 wherein the driver circuit includes a damping resistor.
- 17. The power converter of claim 15 wherein the damping resistor has a resistance of less than 5 Ohms.
- 18. The power converter of claim 15 wherein the drive transformer has a leakage inductance less than 5 nanoHenries.
- 19. The power converter of claim 15 wherein the drive transformer has a single primary winding coupled to two secondary windings, and each secondary winding provides gate drive for a secondary switch in the secondary circuit.
- 20. The power converter of claim 19 further comprising two drive switches connected in a cross-coupled fashion for controlling the secondary side switches.
- 21. The power converter of claim 15 wherein the secondary circuit has two secondary switches, and each of the two secondary switches is controlled by a separate driver circuit.
- 22. The power converter of claim 15 further comprising a means for controlling the primary circuit according to a control scheme that provides zero-voltage switching.
- 23. The power converter of claim 15 wherein the drive transformer has a third winding, and the driver circuit includes a driver switch with a gate connected to the third winding, and the driver switch is connected across a secondary winding.
- 24. A power converter having a primary circuit and a secondary circuit coupled through a power transformer, comprising:
a) a swing node in the primary circuit; b) a driver circuit connected to the swing node, wherein the driver circuit includes an optoisolator providing isolation between the primary circuit and secondary circuit; and c) at least two secondary switches in the secondary circuit controlled by the driver circuit, wherein the optoisolator directly powers gates of the secondary switches.
- 25. A power converter comprising:
a) a primary circuit with a swing node; b) a secondary circuit with at least a first switch and a second switch; c) a transformer coupling the primary and secondary circuits; d) on the transformer, a power primary winding connected to the swing node; e) on the transformer, a first primary drive winding connected to a swing node and connected to a ground or voltage supply; f) on the transformer, a first secondary drive winding coupled to the first primary drive winding; g) a primary capacitor in series with the first primary drive winding.
- 26. The power converter of claim 25 further comprising:
a) a second primary drive winding connected to a swing node and connected to a ground or voltage supply; b) a second secondary drive winding coupled to the second primary drive winding; c) a primary capacitor in series with the second primary drive winding.
- 27. The power converter of claim 26 wherein the transformer has a core with figure-8 topology and 3 yokes, and wherein:
a) the power primary winding is disposed on a first yoke; b) the first primary drive winding and first secondary drive winding are disposed on a second yoke; and c) the second primary drive winding and second secondary drive winding are disposed on a third yoke.
- 28. The power converter of claim 26 wherein the transformer has first and a second toroidal cores, and wherein:
a) the power primary winding comprises two separate windings, with one winding on each toroidal core, wherein the separate windings are connected in series or in parallel; b) the first primary drive winding and first secondary drive winding are disposed on the first toroidal core; c) the second primary drive winding and second secondary drive winding are disposed on the second toroidal core.
- 29. The power converter of claim 25 wherein the primary circuit is a circuit selected from the group consisting of a full bridge circuit, an active clamp forward circuit, and an asymmetrical half-bridge circuit.
- 30. The power converter of claim 25 wherein the secondary circuit is a circuit selected from the group consisting of a half wave circuit, a current doubler circuit, and a center-tapped circuit.
- 31. The power converter of claim 25 further comprising a damping resistor connected between the first secondary drive winding and the first switch.
- 32. The power converter of claim 31 wherein the damping resistor has a resistance less than 5 ohms.
- 33. The power converter of claim 25 further comprising a secondary capacitor connected between the first secondary drive winding and the first switch.
- 34. The power converter of claim 25 further comprising output inductors incorporated on the transformer.
- 35. The power converter of claim 25 further comprising a third winding on the transformer and comprising a driver switch connected across the secondary winding, wherein the third winding is connected to a gate of the driver switch.
- 36. A power converter comprising:
a) a primary circuit with a swing node; b) a secondary circuit with at least a first switch and a second switch; c) a transformer coupling the primary and secondary circuits, wherein the transformer has a figure-8 topology with 3 yokes; d) on a first yoke, a primary power winding; e) on a second yoke, primary and secondary drive windings for driving the first switch; and f) on a third yoke, primary and secondary drive windings for driving the second switch; wherein the primary drive windings are connected to the swing node and connected to a ground or voltage supply.
- 37. The power converter of claim 36 wherein the primary circuit is a circuit selected from the group consisting of a full bridge circuit, an active clamp forward circuit, and an asymmetrical half-bridge circuit.
- 38. The power converter of claim 36 wherein the secondary circuit is a circuit selected from the group consisting of half wave circuit, a current doubler circuit, and a center-tapped circuit.
- 39. The power converter of claim 36 further comprising a damping resistor connected between the first switch and secondary drive winding, and a second damping resistor connected between the second switch and secondary drive winding.
- 40. The power converter of claim 39 wherein the damping resistors each have a resistance less than 5 ohms.
- 41. The power converter of claim 36 further comprising output inductors incorporated on the transformer.
- 42. The power converter of claim 36 further comprising a third winding on the transformer and comprising a driver switch connected across one of the secondary windings, wherein the third winding is connected to a gate of the driver witch.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims the benefit of priority from co-pending application U.S. Ser. No. 10/350,330, filed Jan. 24, 2003, the complete contents of which is herein incorporated by reference
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
10350330 |
Jan 2003 |
US |
| Child |
10852683 |
May 2004 |
US |