Claims
- 1. A power distribution system comprising:
a plurality of power converter modules each having a current sharing signal terminal on an input side and power output terminals on an output side, the corresponding power output terminals of the several modules being connected together and adapted to power a common load; an interconnecting signal bus coupled across the current sharing signal terminals on the input side; a plurality of feedback circuits, each of which is associated with one of said modules, each feedback circuit comprising:
a comparator for comparing a feedback voltage on the output side with a reference voltage to provide an error signal to the input side; the error signal conditioned to provide a current command signal to said signal bus, wherein the signal bus provides a common current command signal to drive the power converter modules.
- 2. The power distribution system of claim 1 wherein said feedback circuits further comprise isolation circuitry.
- 3. The power distribution system of claim 2 wherein said isolation circuitry is provided to electrically isolate the error signal from the input side.
- 4. The power distribution system of claim 3 wherein said isolation circuitry comprises an opto-isolator apparatus.
- 5. The power distribution system of claim 1 wherein the comparator is an error amplifier.
- 6. The power distribution system of claim 5 wherein the error amplifier drives the input of an opto-isolator apparatus such that the error signal is electronically isolated from the input side.
- 7. The power distribution system of claim 1 wherein the error signal is conditioned by a first buffer to provide the current command signal.
- 8. The power distribution system of claim 7 wherein the first buffer comprises a first operational amplifier.
- 9. The power distribution system of claim 8 wherein an output of the first operational amplifier is the current command signal provided to the signal bus.
- 10. The power distribution system of claim 9 further comprising a diode seriesly coupled to the output of the first operational amplifier such that the highest current command signal of all power converter modules is provided to the signal bus.
- 11. The power distribution system of claim 10 wherein the diode results in a master-slave scheme for controlling the power converter modules.
- 12. The power distribution system of claim 7 further comprising a second buffer to condition the common current command signal from the signal bus.
- 13. The power distribution system of claim 12 wherein the second buffer comprises a second operational amplifier.
- 14. The power distribution system of claim 13 wherein an output of the second operational amplifier adjusts a control signal of the power converter module associated therewith.
- 15. The power distribution system of claim 14 wherein the power converter module is driven by a pulse-width modulated (PWM) controller having the output of the operational amplifier as an input thereto.
- 16. The power distribution system of claim 15 wherein the PWM controller further comprises a ramp compensation signal input and a current sense input thereto.
- 17. The power distribution system of claim 12 wherein the second buffer comprises a compensator that compares the common current command signal from the signal bus with a sensed signal related to output current.
- 18. The power distribution system of claim 17 wherein an output of the compensator adjusts a control signal of the power converter module associated therewith.
- 19. The power distribution system of claim 18 wherein the power converter module is controlled by a pulse-width modulated (PWM) controller having the output of the compensator as an input thereto.
- 20. The power distribution system of claim 19 wherein the PWM controller further comprises a ramp compensation signal input and a current sense input thereto.
- 21. The power distribution system of claim 8 wherein the first operational amplifier compares the error signal with a second reference voltage to provide the current command signal provided to the signal bus.
- 22. The power distribution system of claim 21 wherein the second reference voltage is generated from a bias voltage.
- 23. The power distribution system of claim 21 wherein the second reference voltage is generated from a reference voltage from a pulse-width modulated (PWM) controller.
- 24. The power distribution system of claim 21 wherein a time delay is introduced to the second reference voltage.
- 25. The power distribution system of claim 25 wherein the time delay is implemented as an R-C circuit.
- 26. The power distribution system of claim 17 wherein a time delay is introduced to a reference signal to the compensator.
- 27. A current share circuit for power converters in parallel operation, the circuit comprising:
an interconnecting signal bus coupled across current sharing signal terminals on an input side of said power converters; a plurality of feedback circuits, each of which is associated with one of said converters, each feedback circuit comprising:
a comparator for comparing a feedback voltage on an output side of the power converter with a reference voltage to provide an error signal to the input side; the error signal conditioned to provide a current command signal to said signal bus, wherein the signal bus provides a common current command signal to drive the power converters.
- 28. The current share circuit of claim 27 further comprising isolation circuitry to electrically isolate the error signal from the input side.
- 29. The current share circuit of claim 27 wherein the error signal is conditioned by a first operational amplifier to provide the current command signal to the signal bus as an output thereof.
- 30. The current share circuit of claim 29 further comprising a diode series coupled to the output of the first operational amplifier such that the highest current command signal of all power converters is provided to the signal bus.
- 31. The current share circuit of claim 29 further comprising a second buffer to condition the common current command signal from the signal bus.
- 32. The current share circuit of claim 31 wherein the power converter is controlled by a pulse-width modulated (PWM) controller having an output of the buffer as an input thereto.
- 33. The current share circuit of claim 31 wherein the second buffer comprises a compensator that compares the common current command signal from the signal bus with a sensed signal related to output current.
- 34. A method for current sharing in parallel operated power converters, the method comprising:
interconnecting a signal bus across current sharing signal terminals on an input side of said power converters; providing a plurality of feedback circuits, each of which is associated with one of said converters, each feedback circuit comprising: comparing a feedback voltage on an output side of the power converter with a reference voltage to provide an error signal to the input side; conditioning the error signal to provide a current command signal to said signal bus, and providing a common current command signal from the signal bus to drive the power converters.
- 35. The method for current sharing of claim 34 further comprising providing isolation circuitry to electrically isolate the error signal from the input side.
- 36. The method for current sharing of claim 34 wherein the error signal is conditioned by a first operational amplifier to provide the current command signal to the signal bus as an output thereof.
- 37. The method for current sharing of claim 36 further comprising providing a diode series coupled to the output of the first operational amplifier such that the highest current command signal of all power converters is provided to the signal bus.
- 38. The method for current sharing of claim 36 further comprising providing a second buffer to condition the common current command signal from the signal bus.
- 39. The method for current sharing of claim 38 wherein the power converter is controlled by a pulse-width modulated (PWM) controller having an output of the second buffer as an input thereto.
- 40. The method for current sharing of claim 38 wherein the second buffer comprises a compensator that compares the common current command signal from the signal bus with a sensed signal related to output current.
- 41. A current sense circuit for a power converter comprising:
a current sense transformer generating a current indicative of the current through the main switch of the power converter; and a transistor synchronized with the main power switch having a first port coupled to the current sense transformer for receiving a voltage that is indicative of the current through the main switch of the power converter and a second port for providing an output voltage across a sense resistor that is indicative of the current through the main switch.
- 42. The current protection circuit for a power converter comprising:
a first diode to sample and hold the peak value of the current sense signal; and comparison circuitry capable of comparing said peak value with a reference voltage and developing an over-current protection signal in accordance therewith.
- 43. The current sense circuit of claim 42 further comprising:
a second diode series coupled to the reference voltage and thermally communicating with the first diode to compensate for a voltage drop of the first diode as a function of temperature.
- 44. The power distribution system of claim 1 wherein the power converter modules comprise standard DC-DC converter modules.
- 45. The current share circuit of claim 27 wherein the power converters comprise standard DC-DC converter modules.
- 46. The current share method of claim 34 wherein the power converters comprise standard DC-DC converter modules.
- 47. The current sense circuit of claim 27 wherein the power converters comprise standard DC-DC converter modules.
Parent Case Info
[0001] This application claims the benefit of U.S. Patent Application serial No. 60/318,794 filed on Sep. 13, 2001, incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60318794 |
Sep 2001 |
US |