IP Library › Granted Patent US 12,427,596
Granted Patent B2
US 12,427,596 · App. 17/503,447 · Granted Sep 30, 2025

Hybrid projected and streaming pulse welding

Inventors: Matthew A. Albright (Thompson, OH); Steven R. Peters (Huntsburg, OH); Thomas Rastatter (Chagrin Falls, OH)
Assignee: LINCOLN GLOBAL, INC.
B23K9/092B23K9/04B23K9/091B23K9/1062B23K9/295B33Y30/00B23K9/1006
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Quick Facts
Patent No.
US 12,427,596
App. No.
17/503,447
Granted
Sep 30, 2025
Kind
B2
Abstract

An arc welding or additive manufacturing system includes a wire feeder, a torch, a wire electrode driven through the torch by the wire feeder, and an arc generation power supply operatively connected to the torch to deliver a pulse waveform to the wire electrode during a deposition operation. The pulse waveform includes a series of current pulses and interleaved background current portions such that each current pulse is separated from a prior current pulse by a prior background current portion and separated from a subsequent current pulse by a subsequent background current portion. During each current pulse a molten droplet is projected from a tip of the wire electrode followed by an axial spray of molten metal away from the tip of the wire electrode before the subsequent background current portion occurs.

Claims (18)

1. An arc welding or additive manufacturing system, comprising: a wire feeder; a torch; a wire electrode driven through the torch by the wire feeder; and an arc generation power supply operatively connected to the torch to deliver a pulse waveform to the wire electrode during a deposition operation, wherein the pulse waveform comprises a series of current pulses and interleaved background current portions such that each current pulse is separated from a prior current pulse by a prior background current portion and separated from a subsequent current pulse by a subsequent background current portion, and during each current pulse a molten droplet is projected from a tip of the wire electrode in a first metal transfer mode followed by an axial spray of molten metal away from the tip of the wire electrode in a second metal transfer mode different from the first metal transfer mode, before the subsequent background current portion occurs, wherein each current pulse comprises a peak current level that projects the molten droplet from the tip of the wire electrode, and a spray current level during which the axial spray of molten metal occurs, wherein the spray current level is less than the peak current level.

2. The arc welding or additive manufacturing system of claim 1 , wherein the subsequent background current portion stops the axial spray of molten metal.

3. The arc welding or additive manufacturing system of claim 1 , wherein the axial spray of molten metal is followed by a rotating spray transfer of molten metal before the subsequent background current portion occurs.

4. The arc welding or additive manufacturing system of claim 3 , wherein the subsequent background current portion stops the rotating spray transfer of molten metal.

5. The arc welding or additive manufacturing system of claim 1 , wherein a frequency of the pulse waveform is in the range of 120 Hz to 150 Hz, and a deposition rate of the deposition operation is greater than 16 pounds per hour.

6. The arc welding or additive manufacturing system of claim 5 , wherein an electrical arc from the wire electrode covers at least 80% of a molten weld pool surface area during the deposition operation.

7. An arc welding or additive manufacturing system, comprising: a wire feeder; a torch; a wire electrode driven through the torch by the wire feeder; and an arc generation power supply operatively connected to the torch to deliver a pulse waveform to the wire electrode during a deposition operation, wherein the pulse waveform comprises a series of current pulses and interleaved background current portions such that each current pulse is separated from a prior current pulse by a prior background current portion and separated from a subsequent current pulse by a subsequent background current portion, and during each current pulse a molten droplet is projected from a tip of the wire electrode in a first metal transfer mode and followed by one or both of a streaming spray and a rotating spray of molten metal away from the tip of the wire electrode in a metal transfer mode different from the first metal transfer mode, before the subsequent background current portion occurs, wherein each current pulse comprises a peak current level that projects the molten droplet from the tip of the wire electrode, and a spray current level during which said one or both of the streaming spray and the rotating spray of molten metal occurs, wherein the spray current level is less than the peak current level.

8. The arc welding or additive manufacturing system of claim 7 , wherein the subsequent background current portion stops one of the streaming spray and the rotating spray of molten metal.

9. The arc welding or additive manufacturing system of claim 7 , wherein the streaming spray is followed by the rotating spray of molten metal before the subsequent background current portion occurs.

10. The arc welding or additive manufacturing system of claim 9 , wherein the subsequent background current portion stops the rotating spray of molten metal.

11. The arc welding or additive manufacturing system of claim 7 , wherein a frequency of the pulse waveform is in the range of 120 Hz to 150 Hz, and a deposition rate of the deposition operation is greater than 16 pounds per hour.

12. The arc welding or additive manufacturing system of claim 11 , wherein an electrical arc from the wire electrode covers at least 80% of a molten weld pool surface area during the deposition operation.

13. An arc welding or additive manufacturing system, comprising: a wire feeder; a torch; a wire electrode driven through the torch by the wire feeder; and an arc generation power supply operatively connected to the torch to deliver a pulse waveform to the wire electrode during a deposition operation, wherein the pulse waveform comprises a series of current pulses separated by respective background current portions, and during each current pulse of the series of current pulses molten metal is transferred from the wire electrode to a workpiece by a projected spray transfer mode and a subsequent second spray transfer mode different from the projected spray transfer mode, wherein during the projected spray transfer mode a molten droplet is projected from a tip of the wire electrode toward the workpiece, and during the subsequent second spray transfer mode an axial spray of molten metal from the tip of the wire electrode toward the workpiece occurs before a next background current portion, wherein each current pulse comprises a peak current level that projects the molten droplet from the tip of the wire electrode, and a lower current level during which the axial spray of molten metal occurs, wherein the lower current level is less than the peak current level.

14. The arc welding or additive manufacturing system of claim 13 , wherein the next background current portion stops the axial spray of molten metal.

15. The arc welding or additive manufacturing system of claim 13 , wherein the axial spray of molten metal is followed by a third spray transfer mode different from the projected spray transfer mode and the second spray transfer mode, wherein during the third spray transfer mode a rotating spray of molten metal from the tip of the wire electrode toward the workpiece occurs before the next background current portion.

16. The arc welding or additive manufacturing system of claim 15 , wherein the next background current portion stops the rotating spray of molten metal.

17. The arc welding or additive manufacturing system of claim 13 , wherein a frequency of the pulse waveform is in the range of 120 Hz to 150 Hz, and a deposition rate of the deposition operation is greater than 16 pounds per hour.

18. The arc welding or additive manufacturing system of claim 17 , wherein an electrical arc from the wire electrode covers at least 80% of a molten weld pool surface area during the deposition operation.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2021
From: ALBRIGHT, MATTHEW A.; PETERS, STEVEN R.; RASTATTER, THOMAS
To: LINCOLN GLOBAL, INC.
Reel/Frame 057815/0366 →
Continuity (2)
Provisional Application 63129810 · Dec 23, 2020
Related Publication 20220193807A1 · Jun 23, 2022
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