IP Library Granted Patent US 10,589,380
Granted Patent B2
US 10,589,380 · App. 15/114,186 · Granted Mar 17, 2020

Lap welding method, lap joint, production method of lap joint, and an automobile part

Inventors: Hiroki Fujimoto (Tokyo, JP); Tohru Okada (Tokyo, JP); Takashi Imamura (Tokyo, JP)
Assignee: NIPPON STEEL CORPORATION
B23K26/28B23K26/244B23K26/32B62D27/023C21D1/09B23K2101/006B23K2103/04B62D25/02B62D25/04C21D1/673C21D9/50C21D2211/008C21D2251/00
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Quick Facts
Patent No.
US 10,589,380
App. No.
15/114,186
Granted
Mar 17, 2020
Kind
B2
Abstract

The present invention has as its object to inhibit fracture due to a HAZ softened part in substantially circular laser lap welding taking the place of resistance spot welding for joining a superposed plurality of steel sheets including a high strength steel sheet. To solve this problem, the inventors discovered lap welding comprising superposing a plurality of steel sheets and firing a laser to form a substantially circular laser weld ( 1 ), which lap welding firing the laser in a straight line through an outer edge of the substantially circular laser weld ( 1 ) so as to form a hardened part ( 8 ) at the steel sheets and thereby suppressing fracture arising from the HAZ softened part.

Claims (26)

1. Lap welding method comprising superposing a plurality of steel sheets and firing a laser to form a substantially circular laser weld, which lap welding method comprises scanning the laser in a straight line through an outer edge of said substantially circular laser weld so as to form a hardened part at the steel sheets,

wherein the hardened part is a reheated and hardened HAZ-softened part formed by the substantially circular laser weld,

wherein a laser scanning width is at least 10% and 50% or less of a diameter of the substantially circular laser weld,

wherein said straight line laser scanning operation scans the laser over at least 3 mm from the outer edge of said substantially circular laser weld, and

wherein at least one steel sheet among said plurality of steel sheets is a steel sheet having a martensite structure.

2. The lap welding method according to claim 1 wherein said straight line laser scanning operation scans the laser in a principal stress direction found in advance.

3. The lap welding method according to claim 2 wherein said substantially circular is a circular shape, oval shape, circular ring shape, oval ring shape, C-shape, long C-shape, or multiple circular ring shape.

4. The lap welding method according to claim 2 wherein a fired width of said straight line laser fired part is smaller than a curvature diameter of the part of the outer edge of said substantially circular laser weld through which said laser is fired in a straight line.

5. The lap welding method according to claim 1 wherein said substantially circular is a circular shape, oval shape, circular ring shape, oval ring shape, C-shape, long C-shape, or multiple circular ring shape.

6. The lap welding method according to claim 1 wherein a fired width of said straight line laser fired part is smaller than a curvature diameter of the part of the outer edge of said substantially circular laser weld through which said laser is fired in a straight line.

7. The lap welding method according to claim 1 wherein said steel sheet having a martensite structure is a steel sheet having a tensile strength of 1180 MPa or more.

8. A lap joint obtained by superposing a plurality of steel sheets and firing a laser to form substantially circular laser weld so as to join said plurality of steel sheets, which lap joint is provided with a hardened part formed in a straight line by firing the laser through an outer edge of said substantially circular laser weld,

wherein the hardened part is a reheated and hardened HAZ-softened part formed by the substantially circular laser weld,

wherein a laser scanning width is at least 10% and 50% or less of a diameter of the substantially circular laser weld,

wherein said straight line laser scanning operation scans the laser over at least 3 mm from the outer edge of said substantially circular laser weld, and

wherein at least one steel sheet among said plurality of steel sheets is a steel sheet having a martensite structure.

9. The lap joint according to claim 8 , wherein said straight line hardened part is formed in a principal stress direction found in advance.

10. The lap joint according to claim 8 wherein said substantially circular is a circular shape, oval shape, circular ring shape, oval ring shape, C-shape, long C-shape, or multiple circular ring shape.

11. The lap joint according to claim 8 wherein a width of said straight line hardened part is smaller than a curvature diameter of the part of the outer edge of said substantially circular laser weld through which said straight line hardened part crosses or contacts.

12. The lap joint according to claim 8 wherein said steel sheet having a martensite structure is a steel sheet having a tensile strength of 1180 MPa or more.

13. A method of production of a lap joint produced by superposing a plurality of steel sheets and firing a laser to form a substantially circular laser weld, which method of production of a lap joint comprises scanning the laser in a straight line through the outer edge of said substantially circular laser weld so as to form a hardened part at the steel sheets,

wherein the hardened part is a reheated and hardened HAZ-softened part formed by the substantially circular laser weld,

wherein a laser scanning width is at least 10% and 50% or less of a diameter of the substantially circular laser weld,

wherein said straight line laser firing operation fires the laser over at least 3 mm from the outer edge of said substantially circular laser weld, and

wherein at least one steel sheet among said plurality of steel sheets is a steel sheet having a martensite structure.

14. An automobile part provided with a lap joint according to claim 8 .

Assignments (2)
CHANGE OF NAME Recorded May 14, 2019
From: NIPPON STEEL & SUMITOMO METAL CORPORATION
To: NIPPON STEEL CORPORATION
Reel/Frame 049257/0828 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 26, 2016
From: FUJIMOTO, HIROKI; OKADA, TOHRU; IMAMURA, TAKASHI
To: NIPPON STEEL & SUMITOMO METAL CORPORATION
Reel/Frame 039262/0144 →
Priority Claims (1)
JP 2014-021638 · Feb 6, 2014 · national
Continuity (1)
Related Publication 20170008124A1 · Jan 12, 2017