IP Library › Granted Patent US 12,654,249
Granted Patent B2
US 12,654,249 · App. 17/847,672 · Granted Jun 16, 2026

Wire spool clutch

Inventors: Adam E. Link (Grafton, OH); Matthew A. Weeks (Walloon, AU)
Assignee: LINCOLN GLOBAL, INC.
B23K9/1336B33Y30/00F16D7/025
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Quick Facts
Patent No.
US 12,654,249
App. No.
17/847,672
Granted
Jun 16, 2026
Kind
B2
Abstract

A welding or additive manufacturing wire drive system includes a spindle. First and second welding wire spools are mounted on the spindle. The spools include a flange, a mounting hub, a barrel, and a wire electrode wound on the barrel. At least two drive rolls simultaneously draw first and second wire electrodes from the spools. A clutch disk is mounted on the spindle and has respective frictional surfaces in contact with one or both of the flange and mounting hub on the spools to frictionally engage the spools. The clutch disk allows the spools to slip relative to each other during an operation of the at least two drive rolls such that the spools rotate at different speeds while the wire electrodes are drawn from the spools.

Claims (40)

1 . A welding or additive manufacturing wire drive system, comprising:

a spindle;

a first welding wire spool mounted on the spindle and comprising:

a first flange;

a first mounting hub;

a first barrel; and

a first wire electrode wound on the first barrel;

a second welding wire spool mounted on the spindle and comprising:

a second flange;

a second mounting hub;

a second barrel; and

a second wire electrode wound on the second barrel;

at least two drive rolls that simultaneously draw the first wire electrode from the first welding wire spool at a wire feed speed and the second wire electrode from the second welding wire spool at the wire feed speed;

a variable speed drive motor that controls the wire feed speed; and

a clutch frictionally coupling one or both of the first flange and the first mounting hub to one or both of the second flange and the second mounting hub, wherein the clutch allows variation in a rotation rate of the first welding wire spool relative to the second welding wire spool during an operation of the at least two drive rolls while the first wire electrode is drawn from the first welding wire spool at the wire feed speed and the second wire electrode is drawn from the second welding wire spool at the wire feed speed,

wherein the clutch includes a first clutch plate located adjacent the first flange and having a first frictional surface, a second clutch plate located adjacent the second flange and having a second frictional surface that contacts the first frictional surface, and further wherein the first clutch plate includes a first drive pin inserted in a first alignment hole on the first welding wire spool, and the second clutch plate includes a second drive pin inserted in a second alignment hole on the second welding wire spool.

2 . The welding or additive manufacturing wire drive system of claim 1 , wherein the clutch is located between the first flange and the second flange.

3 . The welding or additive manufacturing wire drive system of claim 2 , wherein the clutch is mounted on the spindle.

4 . The welding or additive manufacturing wire drive system of claim 3 , wherein the clutch has an annular shape.

5 . A welding or additive manufacturing wire drive system, comprising:

a spindle;

a first welding wire spool mounted on the spindle and comprising:

a first flange;

a first mounting hub;

a first barrel; and

a first wire electrode wound on the first barrel;

a second welding wire spool mounted on the spindle and comprising:

a second flange;

a second mounting hub;

a second barrel; and

a second wire electrode wound on the second barrel;

at least two drive rolls that simultaneously draw the first wire electrode from the first welding wire spool at a wire feed speed and the second wire electrode from the second welding wire spool at the wire feed speed;

a variable speed drive motor that controls the wire feed speed; and

a clutch frictionally coupling one or both of the first flange and the first mounting hub to one or both of the second flange and the second mounting hub, wherein the clutch allows variation in a rotation rate of the first welding wire spool relative to the second welding wire spool during an operation of the at least two drive rolls while the first wire electrode is drawn from the first welding wire spool at the wire feed speed and the second wire electrode is drawn from the second welding wire spool at the wire feed speed,

wherein the clutch comprises a first clutch plate located adjacent the first flange and a second clutch plate located adjacent the second flange, and wherein the clutch further comprises an attachment hub extending through respective central openings in the first clutch plate and the second clutch plate, wherein the attachment hub attaches the first clutch plate to the second clutch plate while permitting rotation of the first clutch plate relative to the second clutch plate.

6 . The welding or additive manufacturing wire drive system of claim 5 , wherein the clutch comprises a first frictional surface that contacts the first flange and a second frictional surface that contacts the second flange.

7 . The welding or additive manufacturing wire drive system of claim 5 , wherein the clutch comprises a first frictional surface that contacts the first mounting hub and a second frictional surface that contacts the second mounting hub.

8 . The welding or additive manufacturing wire drive system of claim 5 , wherein the clutch is located between the first flange and the second flange.

9 . The welding or additive manufacturing wire drive system of claim 5 , wherein the clutch is mounted on the spindle.

10 . The welding or additive manufacturing wire drive system of claim 9 , wherein the clutch has an annular shape.

Continuity (2)
Provisional Application 63222516 · Jul 16, 2021
Related Publication 20230017476A1 · Jan 19, 2023
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