IP Library › Granted Patent US 12,528,138
Granted Patent B2
US 12,528,138 · App. 18/846,835 · Granted Jan 20, 2026

Friction stir welding device and maintenance method for same

Inventors: Masahiro Miyake (Kobe, JP); Ryoji Ohashi (Kobe, JP); Shuhei Yoshikawa (Kobe, JP); Naoki Takeoka (Kobe, JP)
Assignee: KAWASAKI JUKOGYO KABUSHIKI KAISHA
B23K20/126B23K20/125
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Quick Facts
Patent No.
US 12,528,138
App. No.
18/846,835
Granted
Jan 20, 2026
Kind
B2
Abstract

A friction stir welding device includes: a pin extending along an axis; a shoulder having a cylindrical shape and coaxially surrounding an outer periphery of the pin; and a driver that allows the pin and the shoulder to rotate about the axis and to advance and retract along the axis individually. The shoulder includes a shoulder main body having a distal end to be plunged into a welding target, and a shoulder adapter having a fit hole in which a proximal end of the shoulder main body is shrink-fitted and connecting the shoulder main body and the driver to each other.

Claims (23)

1 . A friction stir welding device, comprising:

a pin extending along an axis;

a shoulder having a cylindrical shape and coaxially surrounding an outer periphery of the pin;

a driver that allows the pin and the shoulder to rotate about the axis and to advance and retract along the axis individually, wherein

the shoulder includes a shoulder main body having a distal end to be plunged into a welding target, and a shoulder adapter having a fit hole in which a proximal end of the shoulder main body is shrink-fitted and connecting the shoulder main body and the driver to each other.

2 . The friction stir welding device according to claim 1 , wherein the shoulder adapter has a thermal expansion coefficient which is higher than a thermal expansion coefficient of the shoulder main body.

3 . The friction stir welding device according to claim 2 , wherein the shoulder main body is made of cemented carbide and the shoulder adapter is made of tool steel.

4 . The friction stir welding device according to claim 1 , wherein the proximal end of the shoulder main body that is shrink-fitted to the shoulder adapter has an outer diameter which is not larger than an outer diameter of the distal end to be plunged into the welding target.

5 . The friction stir welding device according to claim 1 , wherein the proximal end of the shoulder main body that is shrink-fitted to the shoulder adapter has an inner diameter and an outer diameter which are larger than an inner diameter and an outer diameter of the distal end to be plunged into the welding target, and

the shoulder main body has an inner surface having a tapered part with an inner diameter decreasing as advancing toward a leading end thereof.

6 . The friction stir welding device according to claim 1 , further comprising:

a clamp having a cylindrical shape and coaxially surrounding an outer periphery of the shoulder, wherein

the clamp includes a clamp main body to come into contact with the welding target, and a clamp adapter to which a proximal end of the clamp main body is connected, and

the shoulder main body has a maximum outer diameter which is smaller than a minimum inner diameter of the clamp main body.

7 . The friction stir welding device according to claim 1 , wherein the pin includes a pin main body having a distal end to be plunged into the welding target, and a pin adapter having a fit hole in which a proximal end of the pin main body is shrink-fitted and connecting the pin main body and the driver to each other.

8 . A maintenance method for replacement of the shoulder main body in the friction stir welding device according to claim 1 , the maintenance method comprising:

heating the shoulder adapter to increase a diameter of the fit hole of the shoulder adapter and detaching the shoulder adapter from the shoulder main body;

inserting a proximal end of a new shoulder main body in the fit hole of the heated shoulder adapter; and

cooling the shoulder adapter to decrease the increased diameter of the fit hole of the shoulder adapter and fixedly attaching the new shoulder main body to the shoulder adapter.

9 . The maintenance method for the friction stir welding device according to claim 8 , wherein,

in the inserting of the proximal end of the new shoulder main body, the shoulder adapter and the pin are made to approach the new shoulder main body facing the shoulder adapter in the axial direction so that the distal end of the pin is inserted in the new shoulder main body and the proximal end of the new shoulder main body is inserted in the fit hole of the shoulder adapter.

10 . The maintenance method for the friction stir welding device according to claim 9 , wherein the new shoulder main body has an inner surface having a tapered part with an inner diameter decreasing as advancing toward a leading end thereof, and,

in the inserting of the proximal end of the new shoulder main body, the pin is inserted in the new shoulder main body while an axial load applied to the pin is measured.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 13, 2024
From: MIYAKE, MASAHIRO; OHASHI, RYOJI; YOSHIKAWA, SHUHEI; TAKEOKA, NAOKI
To: KAWASAKI JUKOGYO KABUSHIKI KAISHA
Reel/Frame 068581/0437 →
Priority Claims (1)
JP 2022-062057 · Apr 1, 2022 · national
Continuity (1)
Related Publication 20250196253A1 · Jun 19, 2025
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