IP Library Patent Application 11490746
Patent Application
App. No. 11/490,746

Reduced rating output rectifier snubber for plasma cutting power supply

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Quick Facts
Patent No.
US None
App. No.
11/490,746
Abstract

A snubber circuit for absorbing reverse recovery current in a power supply is featured comprising a dissipative snubber circuit and a non-dissipative snubber circuit coupled in parallel to a source of reverse recovery current and a load. The dissipative snubber circuit is capable of dissipating a first amount of reverse recovery current from the reverse recovery current source and the non-dissipative snubber circuit recovering a second amount of reverse recovery current from the reverse recovery current source, resulting in the reverse recovery current being absorbed with reduced power dissipation.

Claims (70)

1 . A snubber circuit for absorbing reverse recovery current in a power supply, comprising:

a dissipative snubber circuit and a non-dissipative snubber circuit coupled in parallel to a source of reverse recovery current and a load;

the dissipative snubber circuit dissipating a first amount of reverse recovery current from the reverse recovery current source; and

the non-dissipative snubber circuit recovering a second amount of reverse recovery current from the reverse recovery current source, resulting in the reverse recovery current being absorbed with reduced power dissipation.

2 . The snubber circuit of claim 1 wherein the dissipative snubber circuit comprises:

a snubber resister coupled in series to a snubber capacitor, the snubber resister having a resistance value sufficient to dissipate the first amount of reverse recovery current from the reverse recovery current source, the first amount of reverse recovery current being less than the total amount of reverse recovery current.

3 . The snubber circuit of claim 2 wherein the snubber resistor has a power rating for dissipating the first amount of reverse recovery current being less than a power rating sufficient for dissipating the total amount of reverse recovery current.

4 . The snubber circuit of claim 1 wherein the non-dissipative snubber circuit comprises:

a resonant circuit including a resonant inductor; and

a resonant capacitor having a capacitance sufficient to limit a voltage spike across the reverse recovery current source.

5 . The snubber circuit of claim 4 wherein the non-dissipative snubber circuit further comprises:

a zenor diode coupled in parallel across the resonant capacitor to further limit the voltage spike across the reverse recovery current source.

6 . The snubber circuit of claim 4 wherein the non-dissipative snubber circuit further comprises:

a winding being coupled in parallel to the load, the winding being magnetically coupled to the resonant inductor, resulting in variations in the voltage spike being reduced in response to changes in an output voltage across the load.

7 . The snubber circuit of claim 1 wherein the source of reverse recovery current comprises:

a diode rectifier circuit coupled in parallel between a transformer and the load, the transformer storing reverse recovery current from the diode rectifier circuit.

8 . The snubber circuit of claim 7 wherein the diode rectifier circuit further comprises:

a forward diode and a freewheeling diode, the forward diode being coupled in series to the transformer, the freewheeling diode being coupled in parallel to the series-coupled transformer and forward diode;

the non-dissipative snubber circuit comprising a resonant circuit, the resonant circuit including a resonant inductor and a resonant capacitor, the resonant capacitor having a capacitance sufficient to limit a voltage spike across the freewheeling diode.

9 . The snubber circuit of claim 1 wherein the power supply is a power supply for a high temperature metal processing torch.

10 . A method of absorbing reverse recovery current in a power supply, the power supply comprising a dissipative snubber circuit and a non-dissipative snubber circuit coupled in parallel to a source of reverse recovery current and a load, the method further comprising:

dissipating a first amount of reverse recovery current from the reverse recovery current source through the dissipative snubber circuit; and

recovering a second amount of reverse recovery current from the reverse recovery current source through the non-dissipative snubber circuit, resulting in the reverse recovery current being absorbed with reduced power dissipation.

11 . The method of claim 10 wherein the dissipative snubber circuit comprises a snubber resister coupled in series to a snubber capacitor, the method further comprising:

dissipating the first amount of reverse recovery current from the reverse recovery current source through the snubber resister, the snubber resister having a resistance value sufficient to dissipate an amount of reverse recovery current which is less than the total amount of reverse recovery current.

12 . The method of claim 10 wherein the dissipative snubber circuit comprises a snubber resister coupled in series to a snubber capacitor, the method further comprising:

dissipating the first amount of reverse recovery current from the reverse recovery current source through the snubber resister, the snubber resister having a power rating for dissipating an amount of reverse recovery current which is less than a power rating sufficient for dissipating the total amount of reverse recovery current.

13 . The method of claim 10 wherein the non-dissipative snubber circuit comprises a resonant circuit that includes a resonant inductor and a resonant capacitor, the method further comprising:

recovering the second amount of reverse recovery current from the reverse recovery current source through the non-dissipative snubber circuit, the resonant capacitor having a capacitance sufficient to limit a voltage spike across the reverse recovery current source.

14 . The method of claim 10 wherein the source of reverse recovery current comprises a diode rectifier circuit coupled in parallel between a transformer and the load, the transformer storing reverse recovery current from the diode rectifier circuit.

15 . The method of claim 14 wherein the non-dissipative snubber circuit comprises a resonant circuit that includes a resonant inductor and a resonant capacitor, the method further comprising:

recovering the second amount of reverse recovery current from the transformer through the non-dissipative snubber circuit, the resonant capacitor having a capacitance sufficient to limit a voltage spike across the diode rectifier circuit.

16 . The method of claim 15 wherein the non-dissipative snubber circuit further comprises a zenor diode coupled in parallel across the resonant capacitor to further limit the voltage spike across the reverse recovery current source.

17 . The method of claim 15 wherein the non-dissipative snubber circuit further comprises a winding being coupled in parallel to the load, the winding being magnetically coupled to the resonant inductor, resulting in variations in the voltage spike being reduced in response to changes in an output voltage across the load.

18 . A method of manufacturing a snubber circuit that absorbs reverse recovery current in a power supply, comprising:

coupling a dissipative snubber circuit and a non-dissipative snubber circuit in parallel to a source of reverse recovery current and a load;

wherein the dissipative snubber circuit is capable of dissipating a first amount of reverse recovery current from the reverse recovery current source through the dissipative snubber circuit and the non-dissipative snubber circuit is capable of recovering a second amount of reverse recovery current from the reverse recovery current source through the non-dissipative snubber circuit, resulting in the reverse recovery current being absorbed with reduced power dissipation.

19 . The method of claim 18 further comprising:

providing the dissipative snubber circuit comprising a snubber resister coupled in series to a snubber capacitor, the snubber resister having a resistance value sufficient to dissipate an amount of reverse recovery current from the reverse recovery current source which is less than the total amount of reverse recovery current.

20 . The method of claim 18 further comprising:

providing the dissipative snubber circuit comprising a snubber resister coupled in series to a snubber capacitor, the snubber resistor having a power rating for dissipating an amount of reverse recovery current which is less than a power rating sufficient for dissipating the total amount of reverse recovery current.

21 . The method of claim 18 further comprising:

providing the non-dissipative snubber circuit comprising a resonant circuit, the resonant circuit including a resonant inductor and a resonant capacitor, the resonant capacitor having a capacitance sufficient to limit a voltage spike across the reverse recovery current source.

22 . The method of claim 18 wherein the source of reverse recovery current comprises a diode rectifier circuit coupled in parallel between a transformer and the load, the transformer storing reverse recovery current from the diode rectifier circuit.

23 . The method of claim 22 further comprising:

providing the non-dissipative snubber circuit comprising a resonant circuit, the resonant circuit including a resonant inductor and a resonant capacitor, the resonant capacitor having a capacitance sufficient to limit a voltage spike across the diode rectifier circuit.

24 . The method of claim 22 further comprising:

providing the diode rectifier circuit comprising a forward diode and a freewheeling diode, the forward diode being coupled in series to the transformer, the freewheeling diode being coupled in parallel to the series-coupled transformer and forward diode; and

providing the non-dissipative snubber circuit comprising a resonant circuit, the resonant circuit including a inductor, the resonant circuit further including a capacitor having a capacitance sufficient to limit a voltage spike across the freewheeling diode.

25 . The method of claim 21 further comprising:

coupling a zenor diode in parallel across the resonant capacitor to further limit the voltage spike across the reverse recovery current source.

26 . The method of claim 21 further comprising

coupling a winding in parallel to the load, the winding being magnetically coupled to the resonant inductor, resulting in variations in the voltage spike being reduced in response to changes in an output voltage across the load.

27 . A snubber circuit for absorbing reverse recovery current in a power supply, the snubber circuit including a passive circuit for dissipating a first amount of reverse recovery current from the reverse recovery current source, the snubber circuit further comprising:

a non-dissipative snubber circuit coupled in parallel to a source of reverse recovery current and a load, the non-dissipative snubber circuit recovering a second amount of reverse recovery current from the reverse recovery current source, resulting in the reverse recovery current being absorbed with reduced power dissipation.

28 . The snubber circuit of claim 27 wherein the non-dissipative snubber circuit includes a resonant circuit that recovers the second amount of reverse recovery current and maintains the voltage stress across a diode rectifier circuit within a rated range of the diode rectifier circuit.

29 . A method of manufacturing a snubber circuit for absorbing reverse recovery current in a power supply, the snubber circuit comprising a dissipative snubber circuit coupled in parallel to a source of reverse recovery current and a load, the dissipative snubber circuit dissipating a first amount of reverse recovery current from the reverse recovery current source, the method comprising:

coupling to the snubber circuit a non-dissipative snubber circuit in parallel to the source of reverse recovery current and the load, the non-dissipative snubber circuit recovering a second amount of reverse recovery current from the reverse recovery current source, resulting in the reverse recovery current being absorbed with reduced power dissipation.

30 . The method of claim 29 wherein the non-dissipative snubber circuit includes a resonant circuit that recovers the second amount of reverse recovery current and maintains the voltage stress across a diode rectifier circuit within a rated range of the diode rectifier circuit.

31 . A power supply comprising:

a power source coupled to a transformer;

a diode rectifier circuit coupled in parallel between the transformer and a load, the transformer storing reverse recovery current from the diode rectifier circuit.

a snubber circuit for absorbing reverse recovery current in the power supply, the snubber circuit comprising a dissipative snubber circuit and a non-dissipative snubber circuit coupled in parallel to the transformer and the load;

the dissipative snubber circuit dissipating a first amount of reverse recovery current;

the non-dissipative snubber circuit recovering a second amount of reverse recovery current, resulting in the reverse recovery current being absorbed with reduced power dissipation.

32 . The power supply of claim 31 wherein the non-dissipative snubber circuit includes a resonant circuit that recovers the second amount of reverse recovery current and maintains the voltage stress across the diode rectifier circuit within a rated range of the diode rectifier circuit.

33 . A snubber circuit for absorbing reverse recovery current in a power supply, comprising:

means for dissipating a first amount of reverse recovery current from a source of reverse recovery current in a power supply; and

means for recovering a second amount of reverse recovery current in the power supply, resulting in the reverse recovery current being absorbed with reduced power dissipation.

34 . The snubber circuit of claim 33 wherein means for recovering a second amount of reverse recovery current maintains the voltage stress across a diode rectifier circuit within a rated range of the diode rectifier circuit.

Assignments (7)
CORRECTIVE ASSIGNMENT TO CORRECT THE COLLATERAL AGENT/ASSIGNEE'S ADDRESS PREVIOUSLY RECORDED AT REEL: 058573 FRAME: 0832. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY INTEREST. Recorded Feb 8, 2022
From: HYPERTHERM, INC.
To: BANK OF AMERICA, N.A.
Reel/Frame 058983/0459 →
SECURITY INTEREST Recorded Jan 5, 2022
From: HYPERTHERM, INC.
To: BANK OF AMERICA, N.A.
Reel/Frame 058573/0832 →
SECURITY INTEREST Recorded Jan 5, 2022
From: HYPERTHERM, INC.
To: BANK OF AMERICA, N.A.
Reel/Frame 058982/0425 →
SECURITY INTEREST Recorded Jan 5, 2022
From: HYPERTHERM, INC.
To: BANK OF AMERICA, N.A.
Reel/Frame 058982/0480 →
SECURITY AGREEMENT Recorded Jan 2, 2014
From: HYPERTHERM, INC.
To: BANK OF AMERICA, N.A. AS COLLATERAL AGENT
Reel/Frame 031896/0642 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 20, 2006
From: KAMATH, GIRISH R.
To: HYPERTHERM, INC.
Reel/Frame 018418/0108 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 31, 2006
From: COGENT CHIP WARE, INC.
To: SCHISM ELECTRONICS LLC
Reel/Frame 018146/0112 →