IP Library Granted Patent US 10,759,005
Granted Patent B2
US 10,759,005 · App. 16/301,670 · Granted Sep 1, 2020

Laser cutting and machining method for plated steel plate, laser cut-and-machined product, thermal cutting and machining method, thermal cut-and-machined product, surface-treated steel plate, laser cutting method, and laser machining head

Inventors: Hideo Hara (Kanagawa, JP); Masahito Ito (Kanagawa, JP); Masanori Uehara (Kanagawa, JP); Hiroshi Asada (Tokyo, JP); Hirokazu Sasaki (Tokyo, JP); Hiroshi Horikawa (Tokyo, JP)
Assignees: AMADA HOLDINGS CO., LTD.; NISSHIN STEEL CO., LTD.
B23K26/38B23K26/046B23K26/0853B23K26/14B23K26/1436B23K26/1464B23K26/1482B23K26/40B23K2101/34B23K2103/04B23K2103/172
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Quick Facts
Patent No.
US 10,759,005
App. No.
16/301,670
Granted
Sep 1, 2020
Kind
B2
Abstract

A laser cutting and machining method for plated steel plated, when irradiating a laser beam LB on to the upper surface of a plated steel plate W and laser cutting and machining same: a plating layer-containing metal that has been melted and/or evaporated by the irradiation of the laser beam LB is caused to flow on to a cut surface of the plated steel plate W as a result of assist gas that is jetted towards a laser machining units; and the plating layer-containing metal is coated on the cut surface.

Claims (31)

1. A laser cutting and machining method for a plated steel plate, the method comprising:

carrying out laser cutting and machining by irradiating a top surface of the plated steel plate with a laser beam emitted from a tip of a laser nozzle, and

while laser cutting and machining, an assist gas or an auxiliary gas is impinged from a gas nozzle surrounding the laser beam to a laser cutting part of the plated steel plate to guide plating-layer-containing metal of the top surface melted and/or evaporated by the laser beam toward a cut face of the plated steel plate so that the cut face is coated with the plating-layer-containing metal of the top surface.

2. The laser cutting and machining method according to claim 1 , comprising adjusting a focal position of the laser beam to be within a range of +0.5 mm to −4.5 mm.

3. The laser cutting and machining method according to claim 1 , further comprising providing a laser machining head that includes the laser nozzle,

adjusting a nozzle gap between the laser nozzle and the top surface of the plated steel plate to be within a range of 0.3 mm to 1.0 mm, and

adjusting an assist gas pressure to be within a range of 0.5 MPa to 1.2 MPa.

4. The laser cutting and machining method according to claim 1 , comprising adjusting a laser cutting and machining speed to be within a range of 1000 mm/min to 5000 mm/min.

5. The laser cutting and machining method according to claim 1 , comprising providing a diameter of the gas nozzle in a range of 2.0 mm to 7.0 mm.

6. The laser cutting and machining method according to claim 1 , wherein the assist gas is provided as a nitrogen gas or a mixture of 96% or higher nitrogen gas and 4% or lower oxygen gas.

7. The laser cutting and machining method according to claim 1 , comprising providing:

a plate thickness of 2.3 mm, a plating quantity of K14, a nozzle diameter of 2.0 mm to 7.0 mm, an assist gas pressure of 0.5 to 0.9 (MPa), and a cutting speed of 3000 to 5000 (mm/min).

8. The laser cutting and machining method according to claim 1 , comprising providing:

a plate thickness of 2.3 mm, a plating quantity of K27 or K35, a nozzle diameter of 2.0 mm to 7.0 mm, an assist gas pressure of 0.5 to 0.9 (MPa), and a cutting speed of 3000 to 5000 (mm/min).

9. The laser cutting and machining method according to claim 1 , comprising providing:

a plate thickness of 3.2 mm, a plating quantity of K27 or K35, a nozzle diameter of 7.0 mm, an assist gas pressure of 0.5 to 0.9 (MPa), and a cutting speed of 2000 to 3000 (mm/min).

10. The laser cutting and machining method according to claim 1 , comprising providing:

a plate thickness of 4.5 mm, a plating quantity of K27 or K35, a nozzle diameter of 7.0 mm, an assist gas pressure of 0.7 to 0.9 (MPa), and a cutting speed of 1500 to 2000 (mm/min).

11. The laser cutting and machining method according to claim 1 , further comprising:

providing a laser machining head that includes:

the gas nozzle for impinging the assist gas toward the laser machining part of the plated steel plate so that the assist gas jetted from the gas nozzle blows off melted metal to form the cut face, and

an auxiliary gas nozzle for jetting the auxiliary gas to guide plating-layer-containing metal that is in a melted state on the top surface of the plated steel plate toward the cut face.

12. The laser cutting and machining method according to claim 11 , wherein the auxiliary gas nozzle is configured to jet the auxiliary gas in a range larger than the width of a cut groove formed by laser cutting and machining toward the cut groove formed by the laser cutting and machining.

13. The laser cutting and machining method according to claim 1 , comprising coating the cut face with a surface coating layer formed only of the plating-layer-containing metal that is cut from the top surface.

14. The laser cutting and machining method according to claim 2 , comprising coating the cut face with a surface coating layer formed only of the plating-layer-containing metal that is cut from the top surface.

15. The laser cutting and machining method according to claim 3 , comprising coating the cut face with a surface coating layer formed only of the plating-layer-containing metal that is cut from the top surface.

16. The laser cutting and machining method according to claim 4 , comprising coating the cut face with a surface coating layer formed only of the plating-layer-containing metal that is cut from the top surface.

17. The laser cutting and machining method according to claim 1 , comprising providing the assist gas or the auxiliary gas to include at least one of: nitrogen and oxygen.

18. The laser cutting and machining method according to claim 2 , comprising providing the assist gas or the auxiliary gas to include at least one of: nitrogen and oxygen.

19. The laser cutting and machining method according to claim 3 , comprising providing the assist gas or the auxiliary gas to include at least one of: nitrogen and oxygen.

20. The laser cutting and machining method according to claim 4 , comprising providing the assist gas or the auxiliary gas to include at least one of: nitrogen and oxygen.

Assignments (3)
CHANGE OF NAME Recorded Sep 15, 2020
From: AMADA HOLDINGS CO., LTD.
To: AMADA CO., LTD.
Reel/Frame 053776/0287 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 14, 2019
From: HARA, HIDEO; ITO, MASAHITO; ASADA, HIROSHI; SASAKI, HIROKAZU; HORIKAWA, HIROSHI; UEHARA, MASANORI
To: AMADA HOLDINGS CO., LTD.; NISSHIN STEEL CO., LTD.
Reel/Frame 048599/0456 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 22, 2019
From: HARA, HIDEO; ITO, MASAHITO; ASADA, HIROSHI; SASAKI, HIROKAZU; HORIKAWA, HIROSHI; UEHARA, MASANORI
To: AMADA HOLDINGS CO., LTD.; NISSHIN STEEL CO., LTD.
Reel/Frame 048406/0523 →
Priority Claims (3)
JP 2016-099292 · May 18, 2016 · national
JP 2016-099867 · May 18, 2016 · national
JP 2017-095393 · May 12, 2017 · national
Continuity (1)
Related Publication 20190176270A1 · Jun 13, 2019