IP Library › Granted Patent US 12,708,962
Granted Patent B2
US 12,708,962 · App. 18/381,388 · Granted Aug 18, 2026

Methods for preparation of sheets to be used for fabrication of a welded steel blank and fabricating a welded blank

Inventors: Francis Schmit (Clermont, FR); Rene Vierstraete (Maisons-Laffitte, FR); Qingdong Yin (Montataire, FR); Wolfram Ehling (Ghent, BE)
Assignee: ArcelorMittal
B23K26/60B23K9/167B23K9/173B23K26/211B23K26/26B23K26/32B23K26/322B23K26/348B23K26/361B23K26/40B23K28/02B23K2101/006B23K2101/18B23K2101/34B23K2103/04B23K2103/08B23K2103/50
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Quick Facts
Patent No.
US 12,708,962
App. No.
18/381,388
Granted
Aug 18, 2026
Kind
B2
Abstract

A method for the preparation of steel sheets for fabricating a welded steel blank is provided. The method includes a step of removing at least part of the first and second metal alloy layers in first and second peripheral zones of pre-coated steel first and second sheets, respectively, by simultaneously ablating the first and second precoatings in the first and second peripheral zones of the pre-coated steel first and second sheets to define first and second ablation zones, the first and second peripheral zones being zones of the first and second principal faces closest to the median plane and located on either side of the median plane.

Claims (25)

1 . A method for fabricating a welded blank, the method comprising the steps of:

providing a pre-coated steel first sheet having a first steel substrate and a first pre-coating including a first intermetallic alloy layer in contact with the first steel substrate, the first intermetallic alloy layer topped by a first metal alloy layer of aluminum metal or aluminum alloy or aluminum-based alloy, the pre-coated steel first sheet comprising a first principal face, a first opposite principal face and a first secondary face;

providing a pre-coated steel second sheet having a second steel substrate and a second pre-coating including a second intermetallic alloy layer in contact with the second steel substrate, the second intermetallic alloy layer topped by a second metal alloy layer of aluminum metal or aluminum alloy or aluminum-based alloy, the pre-coated steel second sheet comprising a second principal face, a second opposite principal face and a second secondary face;

positioning the pre-coated steel first sheet and the pre-coated steel second sheet so that the first secondary face and the second secondary face face each other and define a median plane perpendicular to the first principal face and the second principal face;

simultaneously ablating the first metal alloy layer and the second metal alloy layer with a first laser beam in a first peripheral zone and a second peripheral zone of the pre-coated steel first sheet and the pre-coated steel second sheet, respectively, on the first principal face and the second principal face closest to the median plane; and

welding the pre-coated steel first sheet and the pre-coated steel second sheet in the first peripheral zone and the second peripheral zone with a second laser beam different from the first laser beam to create a weld along a plane defined by the median plane, the first secondary face and the second secondary face not being processed between the ablating and welding steps.

2 . The method as recited in claim 1 wherein the step of simultaneously ablating creates a first ablation zone and a second ablation zone on the first peripheral zone and the second peripheral zone.

3 . The method as recited in claim 2 wherein, during the step of simultaneously ablating, aluminum in the first metal alloy layer is liquidized and a liquid aluminum is expelled to the periphery of the first ablation zone.

4 . The method as recited in claim 3 wherein, during the step of simultaneously ablating, the liquid aluminum is expelled to the periphery of the first ablation zone without the occurrence of a flow along the first secondary face, the first secondary face facing the median plane.

5 . The method as recited in claim 2 wherein a total ablation width of the first ablation zone and the second ablation zone varies by less than 10% over the length of the weld.

6 . The method as recited in claim 1 wherein no mechanical bond is formed by the ablating between the pre-coated steel first and second sheets.

7 . The method as recited in claim 1 wherein the first and second precoated steel sheets are 1.2 mm thick.

8 . The method as recited in claim 1 wherein the first and second precoated steel sheets have a steel composition by weight of: 0.23% C, 1.19% Mn, 0.014% P, 0.001% S, 0.27% Si, 0.028% Al, 0.034% Ti, 0.003% B and 0.18% Cr, with the balance made up of iron and impurities resulting from processing.

9 . The method as recited in claim 1 wherein the first and second precoated steel sheets include a pre-coating 30 μm thick.

10 . The method as recited in claim 1 wherein the first and second precoated steel sheets include a pre-coating made up of an intermetallic layer 5 μm thick.

11 . The method as recited in claim 10 wherein the intermetallic layer is topped by a metallic layer 25 μm thick.

12 . The method as recited in claim 1 wherein in the positioning step the first secondary face and the second secondary face are positioned so that a gap exists.

13 . The method as recited in claim 1 wherein the simultaneous ablation is carried out simultaneously by the first laser beam and also by a second laser beam on the first and second opposite principle faces of the sheet.

14 . The method as recited in claim 1 wherein a width of the first peripheral zone and a width of the second peripheral zone are each between 0.25 and 2.5 mm.

15 . The method as recited in claim 14 wherein the width of the first peripheral zone and the width of the second peripheral zone are equal.

16 . The method as recited in claim 14 wherein the width of the first peripheral zone and the width of the second peripheral zone are different.

17 . The method as recited in claim 1 wherein a distance between the first laser beam and the second laser beam is less than 5 mm.

18 . The method as recited in claim 1 wherein the first laser beam is emitted from an ablation head and the second laser beam is emitted from a welding head, the ablation head and the welding head forming a single element.

19 . The method as recited in claim 1 wherein the first metallic alloy layer has from 8 to 11% by weight of silicon, from 2 to 4% by weight of iron, and a balance made up of aluminum and unavoidable impurities.

20 . The method as recited in claim 1 wherein the first laser is a Q-switched type laser which delivers pulses of a duration of 1/50 of a nanosecond with a maximum power in the range of 1 to 20 megawatts.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2023
From: EHLING, WOLFRAM; YIN, QINGDONG; SCHMIT, FRANCIS; VIERSTRAETE, RENE
To: ARCELORMITTAL
Reel/Frame 065267/0457 →
Continuity (4)
Division 17153980 · Jan 21, 2021
Continuation 16567562 · Sep 11, 2019
Continuation 15306735 · Apr 17, 2015
Related Publication 20240042556A1 · Feb 8, 2024
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