IP Library › Granted Patent US 9,421,712
Granted Patent B2
US 9,421,712 · App. 14/363,174 · Granted Aug 23, 2016

Laser joining method

Inventors: Satoshi Arai (Tokyo, JP); Takeshi Senda (Tokyo, JP)
Assignee: Hitachi, Ltd.
B29C65/16B23K26/0054B23K26/324B29C59/16B29C65/1606B29C65/1635B29C66/028B29C66/0246B29C66/02245B29C66/1122B29C66/242B29C66/30322B29C66/53461B29C66/71B29C66/73161B29C66/73162B29C66/73366B29C66/73921B29C66/81267B23K2203/30B29C59/10B29C59/14B29C65/1609B29C66/0016B29C66/712B29C66/73118B29C66/73771B29C66/73772B29C66/73775B29C66/73776B29C66/73941B29C66/9592B29C2035/0827B29C2035/0838B29K2025/06B29K2045/00B29K2069/00B29K2995/0027B29K2995/0029B29L2011/00B29L2011/0016B29L2031/756
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Quick Facts
Patent No.
US 9,421,712
App. No.
14/363,174
Granted
Aug 23, 2016
Kind
B2
Abstract

The present invention provides a method for stably and robustly laser-welding transparent resins together without compromising transparency. Before laser welding, the joining surface of at least a second transparent resin is subjected to photooxidation, thereby reducing the laser transmittance without reducing the visible light transmittance. A laser beam in the ultraviolet region at a wavelength of 400 nm or less, or a laser beam with a pulse width of 10 ps or less is irradiated while the second transparent resin is pressurized to perform laser welding.

Claims (51)

1. A laser joining method, comprising:

a photooxidation-processing step of applying a photooxidation processing onto a second light-translucent resin; and

a joining step of causing the photooxidation-processing applied surface of the second light-translucent resin to be opposed to a first light-translucent member, and joining the first light-translucent member and the second light-translucent resin with each other by irradiating the joining surface of the first light-translucent member and the second light-translucent resin with laser light;

wherein the laser-light irradiation is performed over an area that is wider than an area of the second light-translucent resin over which the photooxidation processing has been applied.

2. The laser joining method according to claim 1 , wherein

the first light-translucent member and the second light-translucent resin are transparent, transmittances of visible light and infrared-region light through the first light-translucent member and the second light-translucent resin being equal to 70% or more.

3. The laser joining method according to claim 2 , wherein

the transmittances of the visible light and the infrared-region light through the second light-translucent resin after being subjected to the photooxidation processing are equal to 70% or more as compared with the transmittances before being subjected to the photooxidation processing.

4. The laser joining method according to claim 2 , wherein

the laser light is ultraviolet-region laser light whose wavelength is equal to 400 nm or less.

5. The laser joining method according to claim 2 , wherein

the laser light is ultrashort pulse-wave laser light whose pulse width is equal to 10 ps or less.

6. The laser joining method according to claim 1 , wherein

transmittances of visible light and infrared-region light through the second light-translucent resin after being subjected to the photooxidation processing are equal to 70% or more as compared with the transmittances before being subjected to the photooxidation processing.

7. The laser joining method according to claim 6 , wherein

the laser light is ultraviolet-region laser light whose wavelength is equal to 400 nm or less.

8. The laser joining method according to claim 1 , wherein

the laser light is ultraviolet-region laser light whose wavelength is equal to 400 nm or less.

9. The laser joining method according to claim 1 , wherein

the laser light is ultrashort pulse-wave laser light whose pulse width is equal to 10 ps or less.

10. The laser joining method according to claim 1 , wherein

the photooxidation processing is an UV ozone processing or excimer processing where ultraviolet-region light is used.

11. The laser joining method according to claim 1 , wherein,

at the joining step, the first light-translucent member and the second light-translucent resin are joined with each other while the joining surface of the first light-translucent member and the second light-translucent resin is being pressurized.

12. The laser joining method according to claim 1 , wherein

the first light-translucent member is a first light-translucent resin,

the first light-translucent resin and the second light-translucent resin being thermoplastic resins, the thermoplastic resins being composed of one and the same-type material, and being equipped with mutual miscibility.

13. The laser joining method according to claim 1 , wherein

the first light-translucent member is a first light-translucent resin,

the first light-translucent resin and the second light-translucent resin being thermoplastic resins, the thermoplastic resins being composed of different-type materials, and being not equipped with mutual miscibility,

the first light-translucent resin and the second light-translucent resin being joined with each other in a state where the surface energy on the joining-surface side of the first light-translucent resin is made higher than the surface energy on the joining-surface side of the second light-translucent resin.

14. The laser joining method according to claim 1 , wherein

the first light-translucent member is a first light-translucent resin,

the first light-translucent resin and the second light-translucent resin being thermoplastic resins, the thermoplastic resins being composed of different-type materials, and being not equipped with mutual miscibility,

the first light-translucent resin and the second light-translucent resin being joined with each other in a state where the glass transition temperature or melting point of the second light-translucent resin is higher as compared with the glass transition temperature or melting point of the first light-translucent resin.

15. The laser joining method according to claim 1 , wherein

the first light-translucent member is a first light-translucent resin,

the laser joining method, further comprising:

a surface quality-improvement processing step of carrying out a surface quality-improvement processing onto the first light-translucent resin, the surface quality-improvement processing being any one of plasma processing, corona processing, and laser processing,

the photooxidation processing applied surface of the second light-translucent resin, and the surface of the first light-translucent resin onto which the surface quality-improvement processing is carried out being laser-joined with each other.

16. The laser joining method according to claim 1 , wherein

the first light-translucent member is a first light-translucent resin,

the photooxidation processing being applied onto the joining surface of the first light-translucent resin as well.

17. The laser joining method according to claim 1 , wherein

the first light-translucent member and the second light-translucent resin are joined with each other in a state where microscopic concave/convex portions are formed on the joining interfacial-surface side of at least the second light-translucent resin.

18. The laser joining method according to claim 1 , wherein

the first light-translucent member and the second light-translucent resin are joined with each other by performing the laser-light irradiation from the side of the first light-translucent member, and in a state where the optical absorptance of the second light-translucent resin is made higher than that of the first light-translucent member.

19. A laser joining method, comprising:

a photooxidation-processing step of applying a photooxidation processing onto a second light-translucent resin; and

a joining step of causing the photooxidation-processing applied surface of the second light-translucent resin to be opposed to a first light-translucent member, and joining the first light-translucent member and the second light-translucent resin with each other by irradiating the joining surface of the first light-translucent member and the second light-translucent resin with laser light;

wherein the first light-translucent member and the second light-translucent resin are joined with each other by performing the laser-light irradiation in a state where light-translucent and liquid-state substance is deployed between the first light-translucent member and the second light-translucent resin.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 6, 2014
From: ARAI, SATOSHI; SENDA, TAKESHI
To: HITACHI, LTD.
Reel/Frame 033050/0668 →
Priority Claims (1)
JP 2011-269559 · Dec 9, 2011 · national
Continuity (1)
Related Publication 20140332157A1 · Nov 13, 2014