System and method of enhanced automated welding of first and second workpieces

US2021237200A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2021237200-A1
Application numberUS-202016778870-A
CountryUS
Kind codeA1
Filing dateJan 31, 2020
Priority dateJan 31, 2020
Publication dateAug 5, 2021
Grant date

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  1. Title

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  2. Abstract

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  5. First independent claim

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Abstract

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A system and method of enhanced automated welding of a first workpiece and a second workpiece are provided. The method comprises providing a system for intelligent robot-based welding of the first workpiece and the second workpiece. The method further comprises determining a geometrical location of the first workpiece and the second workpiece to be welded at a welding sequence based a predetermined process variable. The method further comprises adjusting the predetermined process variable based on the geometrical location of the first and second workpieces to define an actual process variable. The method further comprises welding a first portion of the first and second workpieces with the actual process variable to define a first welded portion. The method further comprises determining a weld quality of the first welded portion.

First claim

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What is claimed is: 1 . A method of enhanced automated welding of a first workpiece and a second workpiece, the method comprising: providing a system for intelligent robot-based welding of the first workpiece and the second workpiece; determining a geometrical location of the first workpiece and the second workpiece to be welded at a welding sequence based a predetermined process variable; adjusting the predetermined process variable based on the geometrical location of the first and second workpieces to define an actual process variable; welding a first portion of the first and second workpieces with the actual process variable to define a first welded portion; and determining a weld quality of the first welded portion. 2 . The method of claim 1 further comprising: determining whether a part distortion of the first welded portion is within a distortion tolerance; adjusting one of the welding sequence and the actual process variable based on the part distortion of the first welded portion to define one of an adjusted welding sequence and an adjusted process variable, if the part distortion exceeds the distortion tolerance; and welding a second portion of the first and second workpieces with one of the adjusted welding sequences and the adjusted process variable to define a second welded portion, if the part distortion exceeds the distortion tolerance. 3 . The method of claim 1 wherein the predetermined process variable comprises at least one of robot path, weld speed, amplitude of weld path, wavelength of weld path, weld current, weld voltage, and weld wire diameter. 4 . The method of claim 1 wherein the actual process variable comprises at least one of robot path, weld speed, amplitude of weld path, wavelength of weld path, weld current, weld voltage, and weld wire diameter. 5 . The method of claim 2 wherein the adjusted process variable comprises at least one of robot path, weld speed, amplitude of weld path, wavelength of weld path, weld current, weld voltage, and weld wire diameter. 6 . The method of claim 1 wherein the step of determining the geometrical location of the first workpiece and the second workpiece comprises: determining whether the first and second workpieces are located within a location tolerance; and determining whether the first and second workpieces have a gap within a gap tolerance. 7 . The method of claim 6 wherein the step of adjusting the predetermined process variable comprises: adjusting the predetermined process variable if the first and second workpieces exceed the location tolerance; and adjusting the predetermined process variable if the gap exceeds the gap tolerance. 8 . The method of claim 1 wherein the system for intelligent robot-based welding of the first workpiece and the second workpiece comprises: a robot having a weld gun for welding the first and second workpieces based on a predetermined process variable; a controller in communication the robot and the weld gun; a vision sensor disposed on and in communication with the robot and the controller for sensing geometric location of the first and second workpieces and communicating the geometric location to the controller; a laser projector disposed on and in communication with the robot to project a laser on the first and second workpieces for sensing a gap between the first and second workpieces and communicating the gap to the controller; wherein the controller is programmed to adjust the predetermined process variable based on the geometric location and the gap of the first and second workpieces, defining the actual process variable, wherein the controller is programmed to control the weld gun to weld the first and second workpieces based on the actual process variable, wherein the controller is programmed to adjust the actual process variable based on the geometric location and the gap of the first and second workpieces, defining the adjusted process variable, wherein the controller is programmed to control the weld gun to weld the first and second workpieces based on the adjusted process variable. 9 . The method of claim 1 wherein the step of determining weld quality comprises: determining whether the weld quality of the first welded portion is within a quality tolerance, the quality tolerance being based on degrees of discrepancy; and repairing the first welded portion if the weld quality exceeds the quality tolerance. 10 . A system for intelligent robot-based welding of a first workpiece and a second workpiece, the system comprising: a robot having a weld gun for welding the first and second workpieces based on a predetermined process variable; a controller in communication the robot and the weld gun; a vision sensor disposed on and in communication with the robot and the controller for sensing geometric location of the first and second workpieces and communicating the geometric location to the controller; a laser projector disposed on and in communication with the robot to project a laser on the first and second workpieces for sensing a gap between the first and second workpieces and communicating the gap to the controller; wherein the controller is programmed to adjust the predetermined process variable based on the geometric location and the gap of the first and second workpieces, defining an adjusted process variable, wherein the controller is programmed to control the weld gun to weld the first and second workpieces based on the adjusted process variable. 11 . The system of claim 9 wherein the controller is programmed to adjust the actual process variable based on the geometric location and the gap of the first and second workpieces, defining the adjusted process variable, and wherein the controller is programmed to control the weld gun to weld the first and second workpieces based on the adjusted process variable. 12 . A method of enhanced automated welding of a first workpiece and a second workpiece, the method comprising: providing a system for intelligent robot-based welding of the first workpiece and the second workpiece, the system comprising: a robot having a weld gun for welding the first and second workpieces based on a predetermined process variable; a controller in communication the robot and the weld gun; a vision sensor disposed on and in communication with the robot and the controller for sensing geometric location of the first and second workpieces and communicating the geometric location to the controller; a laser projector disposed on and in communication with the robot to project a laser on the first and second workpieces for sensing a gap between the first and second workpieces and communicating the gap to the controller; determining a geometrical location of the first workpiece and the second workpiece to be welded at a welding sequence based a predetermined process variable; adjusting the predetermined process variable based on the geometrical location of the first and second workpieces to define an actual process variable; welding a first portion of the first and second workpieces with the actual process variable to define a first welded portion; determining whether a part distortion of the first welded portion is within a distortion tolerance; adjusting one of the welding sequence and the actual process variable based on the part distortion of the first welded portion to define one of an adjusted welding sequence and an adjusted process variable, if the part distortion exceeds the distortion tolerance; welding a second portion of the first and second workpieces with one of the adjusted welding sequences and the adjusted process variable to define a second welded portion,

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What does patent US2021237200A1 cover?
A system and method of enhanced automated welding of a first workpiece and a second workpiece are provided. The method comprises providing a system for intelligent robot-based welding of the first workpiece and the second workpiece. The method further comprises determining a geometrical location of the first workpiece and the second workpiece to be welded at a welding sequence based a predeterm…
Who is the assignee on this patent?
Gm Global Tech Operations Llc
What technology area does this patent fall under?
Primary CPC classification B23K9/16. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Thu Aug 05 2021 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).