IP Library Granted Patent US 12,539,552
Granted Patent B2
US 12,539,552 · App. 18/609,850 · Granted Feb 3, 2026

Systems and methods to provide welding-type arc starting and stabilization with reduced open circuit voltage

Inventors: Bernard J. Vogel (Troy, OH); Michael D. Madsen (Freemont, WI)
Assignee: Illinois Tool Works Inc.
B23K9/067B23K9/0731B23K9/0732B23K9/0734B23K9/0735
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Quick Facts
Patent No.
US 12,539,552
App. No.
18/609,850
Granted
Feb 3, 2026
Kind
B2
Abstract

Systems and methods to provide welding-type arc starting and stabilization with reduced open circuit voltage are disclosed. An example welding-type power supply includes: power conversion circuitry configured to convert input power to welding-type power; and control circuitry configured to: control the power conversion circuitry to output a voltage pulse at a first voltage; determine whether the power conversion circuitry outputs current during the voltage pulse; in response to determining that there is less than a threshold output current during the voltage pulse, control the power conversion circuitry to turn off an output or output a second voltage that is less than the first voltage; and in response to determining that the power conversion circuitry outputs at least the threshold output current during the voltage pulse, control the power conversion circuitry to output the welding-type power.

Claims (18)

1 . A welding-type power supply, comprising:

power conversion circuitry configured to convert input power to welding-type power;

a current sensor configured to measure a current of the welding-type power; and

control circuitry configured to:

control one or more switching elements of the power conversion circuitry to output the welding-type power having an output voltage based on duty cycles of the one or more switching elements;

monitor an output current of the welding-type power; and

while the output current is less than a first threshold current:

output a first predetermined sequence of duty cycles to the one or more switching elements of the power conversion circuitry to cause the power conversion circuitry to output voltage pulses to increase the output current during the voltage pulses; and

determine whether the output current during the first predetermined sequence of duty cycles is greater than a threshold current;

in response to determining that the output current during the first predetermined sequence of duty cycles is less than the threshold current, output a second predetermined sequence of duty cycles following an interval of the output voltage being less than a second voltage; and

in response to determining that the output current during the first predetermined sequence of duty cycles is greater than the threshold current, control the one or more switching elements to output the welding-type power.

2 . The welding-type power supply as defined in claim 1 , wherein the control circuitry is configured to output the first predetermined sequence of duty cycles to the one or more switching elements of the power conversion circuitry to repeat the voltage pulses at intervals while the output current is less than the threshold current.

3 . The welding-type power supply as defined in claim 1 , wherein the control circuitry is configured to, in response to determining that the output current is less than a second threshold current for at least a threshold time duration, control the power conversion circuitry to decrease the voltage to less than the second voltage and control the power conversion circuitry to output the voltage pulses at intervals.

4 . The welding-type power supply as defined in claim 1 , wherein the second voltage is selected such that an average open circuit voltage is less than 12 volts.

5 . The welding-type power supply as defined in claim 1 , wherein the voltage pulses are each less than 50 microseconds in duration.

6 . The welding-type power supply as defined in claim 5 , wherein the voltage pulses are each less than 20 microseconds in duration.

7 . The welding-type power supply as defined in claim 1 , wherein the one or more switching elements comprise a plurality of switching devices configured to control the welding-type power, the control circuitry configured to control the plurality of switching devices via pulse width modulated signals having respective duty cycles, and the control circuitry configured to control the power conversion circuitry to output the voltage pulses at a first current by controlling the plurality of switching devices using 100% duty cycles.

8 . The welding-type power supply as defined in claim 1 , wherein the control circuitry is configured to control the one or more switching elements of the power conversion circuitry to output the welding-type power having the output voltage based on a control loop, and output the first predetermined sequence of duty cycles to the one or more switching elements of the power conversion circuitry outside of the control loop.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 2, 2026
From: VOGEL, BERNARD J.; MADSEN, MICHAEL D.
To: ILLINOIS TOOL WORKS INC.
Reel/Frame 073350/0843 →
Continuity (2)
Continuation 16670993 · Oct 31, 2019
Related Publication 20240261884A1 · Aug 8, 2024
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