US2015217404A1PendingUtilityA1

Dual Fillet Welding Methods And Systems

Assignee: LINCOLN GLOBAL INCPriority: Jul 14, 2006Filed: Apr 15, 2015Published: Aug 6, 2015
Est. expiryJul 14, 2026(expired)· nominal 20-yr term from priority
B23K 9/1043B23K 9/025B23K 26/348B23K 9/092B23K 9/00B23K 26/242B23K 9/1735B23K 26/20B23K 26/1429B23K 26/243
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Claims

Abstract

A system and method of hybrid welding a dual fillet weld. The system includes a laser system that leads a first torch and preheats at least one workpiece. The system also includes a first welding power supply that supplies a first welding waveform to a first wire via the first torch. The first welding waveform creates a first arc between the first wire and the at least one workpiece. The system further includes a second welding power supply that supplies a second welding waveform to a second wire via a second torch. The second welding waveform creates a second arc between the second wire and the at least one workpiece. A controller in the system is operatively coupled to the first power supply, the second power supply and the laser system. The controller synchronizes the first welding waveform and the second welding waveform such that welding current pulses of the second welding waveform at the second torch are not in phase with welding current pulses of the first welding waveform at the first torch. The system is set up such that the first arc and the second arc are across from each other on opposite sides of a weld.

Claims

exact text as granted — not AI-modified
1 . (canceled) 
     
     
         2 . A method for hybrid welding a dual fillet weld, said method comprising:
 providing a laser beam that leads a first torch and preheats at least one of a first workpiece and a second workpiece;   supplying a first welding waveform to a first wire via said first torch to form a first arc between said first wire and at least one of said first workpiece and said second workpiece;   supplying a second welding waveform to a second wire via a second torch to form a second arc between said second wire and at least one of said first workpiece and said second workpiece;   synchronizing said first welding waveform and said second welding waveform such that welding current pulses of said second welding waveform at said second torch are not in phase with welding current pulses of said first welding waveform at said first torch; and   disposing said first torch and said second torch such that said first arc and said second arc are across from each other on opposite sides of a weld between said first workpiece and said second workpiece.   
     
     
         3 . The method of  claim 2 , further comprising:
 shifting a phase angle between said welding current pulses of said first welding waveform said welding current pulses of said second welding waveform so as to control magnetic interference between said first arc and said second arc.   
     
     
         4 . The method of  claim 2 , further comprising:
 shifting a phase angle between said welding current pulses of said first welding waveform and said welding current pulses of said second welding waveform to be in a range between 90 to 270 degrees.   
     
     
         5 . The method of  claim 4 , wherein said range is between 175 to 185 degrees. 
     
     
         6 . The method of  claim 2 , further comprising:
 regulating at least one of an arc length of said first arc and an arc length of said second arc by controlling at least a power level if said laser beam.   
     
     
         7 . The method of  claim 2 , further comprising:
 creating a keyhole in said at least one workpiece.   
     
     
         8 . The method of  claim 2 , wherein said first workpiece and said second workpiece are disposed such that said first workpiece and said second workpiece form a T-joint, and
 wherein said weld comprises fillet welds on each side of said T-joint.   
     
     
         9 . The method of  claim 8 , further comprising:
 creating a keyhole in a base of said T-joint,   wherein said keyhole extends in a range of 60 to 100 percent of a thickness of said T-joint.   
     
     
         10 . The method of  claim 8 , further comprising:
 concurrently welding said fillet welds on each side of said T-joint.   
     
     
         11 . A method for hybrid welding a dual fillet weld, said method comprising:
 providing a laser beam that leads a first torch and preheats at least one workpiece;   supplying a first welding waveform to a first wire via said first torch, said first welding waveform creating a first arc between said first wire and said at least one workpiece;   supplying a second welding waveform to a second wire via a second torch, said second welding waveform creating a second arc between said second wire and said at least one workpiece;   synchronizing said first welding waveform and said second welding waveform such that welding current pulses of said second welding waveform at said second torch are not in phase with welding current pulses of said first welding waveform at said first torch;   disposing said first torch and said second torch such that said first arc and said second arc are across from each other on opposite sides of a weld; and   setting a distance between a centerline of a laser beam from said laser system and said first arc is to be in a range of 1 to 5 mm.

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