Method and system to control heat input in a welding operation

US9333582B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9333582-B2
Application numberUS-201313797108-A
CountryUS
Kind codeB2
Filing dateMar 12, 2013
Priority dateNov 7, 2012
Publication dateMay 10, 2016
Grant dateMay 10, 2016

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A system for and method of controlling the heat input in a welding operation are provided. The system includes an arc welding power supply configured to output a welding waveform to a welding torch. The welding power supply includes a waveform generator to generate an output welding waveform. The power supply also includes a controller to optimize the output welding waveform based on one of a desired RMS voltage set point and a desired RMS voltage range. The optimization is performed by adjusting at least one of a power ratio and a duration ratio. The power ratio is a ratio of a power of a negative portion of the welding waveform to a power of a positive portion of the welding waveform, and the duration ratio is a ratio of a duration of a negative portion of the welding waveform to a duration of a positive portion of the welding waveform.

First claim

Opening claim text (preview).

The invention claimed is: 1. An arc welding power supply configured to output a welding waveform to a welding torch, the welding power supply comprising: a waveform generator to generate an output welding waveform; and a controller to optimize the output welding waveform based on one of a desired RMS voltage set point and a desired RMS voltage range, where said one of said desired RMS voltage set point and said desired RMS voltage range is utilized to reach a desired heat input for a welding operation where said desired heat input is determined by said controller based on user input information, wherein the optimization of the output welding waveform optimizes the heat input and is performed by adjusting at least one of a power ratio and a duration ratio, wherein the power ratio is a ratio of a power of a negative portion of the welding waveform to a power of a positive portion of the welding waveform, and wherein the duration ratio is a duration of a negative portion of the welding waveform to a duration of a positive portion of the welding waveform. 2. The arc welding power supply of claim 1 , wherein the controller is configured to receive an RMS voltage signal corresponding to an arc length, and wherein the controller is configured to compare the RMS voltage signal to the one of a desired RMS voltage set point and a desired RMS voltage range and perform the optimization based on the comparison. 3. The arc welding power supply of claim 1 , wherein the optimization is performed by adjusting the duration of the negative portion of the welding waveform while keeping a frequency of the welding waveform constant. 4. The arc welding power supply of claim 2 , wherein the one of a desired RMS voltage set point and a desired RMS voltage range is selected based on a desired arc length. 5. The arc welding power supply of claim 2 , wherein the desired RMS voltage range is between 15 volts and 30 volts. 6. The arc welding power supply of claim 2 , wherein the desired RMS voltage set point is 25 volts. 7. The arc welding power supply of claim 2 , wherein the one of a desired RMS voltage set point and a desired RMS voltage range is selected based on at least one of a welding current, a wire feed speed, a desired waveform function, electrode information, workpiece information, and welding voltage. 8. The arc welding power supply of claim 2 , wherein the controller adjusts a power of the negative portion of the waveform including adjusting at least one of a peak current magnitude, a peak current duration, a current ramp rate, and the duration of the negative portion of the waveform. 9. The arc welding power supply of claim 2 , wherein the negative portion of the waveform is ramped to a first peak level and then ramped to a second peak level that is different from the first peak level if the first peak levels fails to optimize the welding waveform. 10. The arc welding power supply of claim 2 , wherein the negative portion of the waveform is ramped to a peak level at a first ramp rate and then ramped at a second ramp rate that is different from the first ramp rate if the first ramp rate fails to optimize the welding waveform. 11. An arc welding system, comprising: a welding torch; a welding power supply comprising, a waveform generator to generate an output welding waveform, and a controller to optimize the output welding waveform based on one of a desired RMS voltage set point and a desired RMS voltage range, where said one of said desired RMS voltage set point and said desired RMS voltage range is utilized to reach a desired heat input for a welding operation where said desired heat input is determined by said controller based on user input information, wherein the optimization of the output welding waveform optimizes the heat input and is performed by adjusting at least one of a power ratio and a duration ratio, wherein the power ratio is a ratio of a power of a negative portion of the welding waveform to a power of a positive portion of the welding waveform, and wherein the duration ratio is a duration of a negative portion of the welding waveform to a duration of a positive portion of the welding waveform. 12. The arc welding system of claim 11 , wherein the controller is configured to receive an RMS voltage signal corresponding to an arc length, and wherein the controller is configured to compare the RMS voltage signal to the one of a desired RMS voltage set point and a desired RMS voltage range and perform the optimization based on the comparison. 13. The arc welding system of claim 11 , wherein the optimization is performed by adjusting the duration of the negative portion of the welding waveform while keeping a frequency of the welding waveform constant. 14. The arc welding system of claim 12 , wherein the one of a desired RMS voltage set point and a desired RMS voltage range is selected based on a desired arc length. 15. The arc welding system of claim 12 , wherein the desired RMS voltage range is between 15 volts and 30 volts. 16. The arc welding system of claim 12 , wherein the desired RMS voltage set point is 25 volts. 17. The arc welding system of claim 12 , wherein the desired RMS voltage set point or the desired RMS voltage range is selected based on at least one of a welding current, a wire feed speed, a desired waveform function, electrode information, workpiece information, and welding voltage. 18. The arc welding system of claim 12 , wherein the controller adjusts a power of the negative portion of the waveform including adjusting at least one of a peak current magnitude, a peak current duration, a current ramp rate, and the duration of the negative portion of the waveform. 19. The arc welding system of claim 12 , wherein the negative portion of the waveform is ramped to a first peak level and then ramped to a second peak level that is different from the first peak level if the first peak levels fails to optimize the welding waveform. 20. The arc welding system of claim 12 , wherein the negative portion of the waveform is ramped to a peak level at a first ramp rate and then ramped at a second ramp rate that is different from the first ramp rate if the first ramp rate fails to optimize the welding waveform.

Assignees

Inventors

Classifications

  • B23K9/095Primary

    Monitoring or automatic control of welding parameters · CPC title

  • and of a consumable electrode · CPC title

  • Power supply · CPC title

  • B23K9/092Primary

    characterised by the shape of the pulses produced · CPC title

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What does patent US9333582B2 cover?
A system for and method of controlling the heat input in a welding operation are provided. The system includes an arc welding power supply configured to output a welding waveform to a welding torch. The welding power supply includes a waveform generator to generate an output welding waveform. The power supply also includes a controller to optimize the output welding waveform based on one of a d…
Who is the assignee on this patent?
Lincoln Global Inc
What technology area does this patent fall under?
Primary CPC classification B23K9/095. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue May 10 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).