This application claims the priority benefit of Taiwan application serial no. 104129600, filed on Sep. 8, 2015. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The technical field relates to a laser drilling apparatus adapted to a tempered glass and a laser drilling method for the tempered glass.
The drilling technologies for a glass use cutting tools to proceed a mechanical drilling process. With the quickly development of industry, the thickness of the glass in product is tending to thinning, and the request of the strength of the glass is higher and higher. Thus, it becomes popular to use a tempered glass in all kinds of products. When the cutting tools are used to proceed the mechanical drilling process, the damages or destroy of the cutting tools may be over severe. A laser drilling process is a non-contacting drilling process without damage problem of the cutting tools; therefore, the laser drilling process is gradually applied to the tempered glass.
During the laser drilling process, there is amassed debris in the hole to decrease the efficiency of the drilling. To solve the problem of the amassed debris, one of solutions is side-blown from the side of the working area to the hole by using the air flow to clean up the debris. However, when the depth of the drilling gets deeper, it is more difficult to clean up the debris at the bottom of the hole.
According to an embodiment of the disclosure, a laser drilling apparatus is adapted to a tempered glass. The laser drilling apparatus comprises a laser source, a drilling unit, a gas supply source, a heater and an air supplier. The laser source provides a laser beam. The drilling unit has a zoom lens set and a laser scanner unit. The laser beam passes through the zoom lens set and the laser scanner unit. The gas supply source supplies an air flow. The heater is disposed on a flow channel of the air flow and heats up the air flow. The air supplier has a nozzle. Both the air flow heated up and the laser beam reach an area to be machined of the tempered glass via the nozzle.
According to another embodiment of the disclosure, a laser drilling method for a tempered glass comprises: providing a laser beam and an air flow on the same location of a tempered glass to perform a laser drilling process; and moving a focal point of the laser beam by a three-dimensional way of surrounding several circles, and heating the tempered glass via the air flow heated up.
The foregoing will become better understood from a careful reading of a detailed description provided herein below with appropriate reference to the accompanying drawings.
Below, exemplary embodiments will be described in detail with reference to accompanying drawings so as to be easily realized by a person having ordinary knowledge in the art. The inventive concept may be embodied in various forms without being limited to the exemplary embodiments set forth herein. Descriptions of well-known parts are omitted for clarity, and like reference numerals refer to like elements throughout.
In an embodiment of the disclosure, a laser drilling method for a tempered glass may carry out by using the laser drilling apparatus 100, but the scope of the disclosure t is not limited thereto. In this embodiment, the laser drilling method for the tempered glass includes offering a laser beam L10 and a heated-up air flow G10 through the nozzle 122 of the air supplier 120 at the same time. Both of the laser beam L10 and the heated-up air flow G10 pass through the nozzle 122 and reach the tempered glass 50. The laser beam L10 drills the tempered glass 50 and the heated-up air flow G10 heats up the tempered glass 50 and cleans up the debris.
As aforementioned, both of the laser beam L10 and the heated-up air flow G10 reach an area to be machined of the tempered glass 50 through the nozzle 122, so the debris produced after drilling the tempered glass 50 by the laser beam L10 may actually be taken away from the air flow G10. This solves the problem of existing a dead space and incapable of cleaning the debris by the side-blown air flow in the conventional technology. Thus, the quality and the velocity of the drill is good and fast by using the laser drilling apparatus and the laser drilling method for a tempered glass in the embodiment of the disclosure.
In order to reach a good effect of discharging debris, and avoid too much gas pressure damaging the tempered glass 50, the air flow G10 may provide the tempered glass 50 with a fixed amount and a fixed temperature. The flow rate of the air flow G10 may have a range from 30 L/mm to 800 L/mm. The pressure of the air flow G10 may have a range from 1 bar to 30 bar. The laser source 110 may be an ultraviolet (UV) laser source, a green semiconductor laser source, a near-infrared (NIR) light source, or other laser sources. The scope of the disclosure is not limited thereto.
The air supplier 120 is a co-axis air supplier. The laser beam L10 and the heated air flow G10 co-axially pass through the nozzle 122. However, as long as both of the laser beam L10 and the heated air flow G10 pass through the nozzle 122, it is not necessary that the laser beam L10 and the heated air flow G10 are co-axial. Basically, both the laser beam L10 and the heated air flow G10 offered to the tempered glass 50 pass through the nozzle 122 along a same axis. Thus, the heating effect of the air flow G10 to the tempered glass 50 may extend from the focal point P of the laser beam L10 to outward. Because the heated-up air flow G10 heats up the tempered glass 50, it is not only a high temperature in the partial area of the tempered glass 50 where the laser beam L10 irradiated, but also a large area of the tempered glass 50 is heated up and has a gradual variation of the temperature gradient, as shown in
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The pressure and the temperature applied on the tempered glass 50 by the air flow G10 may vary. Therefore, in the embodiment of the disclosure, a working distance WD between the nozzle 122 and the surface of the tempered glass 50 may keep stable such as 3 mm during the drilling process. While the focal point P of the laser beam L10 requires to move down from the surface of the tempered glass 50.
Because the focal point P of the laser beam L10 has different traces to move in company with the laser drilling process, the depth of field of the heated-up air flow G10 needs to design in collocation with the optical zoom of the laser beam L10. In detail, when the heated-up air flow G10 passes through the air supplier 120 and jets out of the nozzle 122, the depth of field of the heated-up air flow G10 may cover the zoom range of the laser beam L10 zoomed by the drilling unit 150. Therefore, when the laser beam L10 is zoomed due to drilling, the air supplier 120 still supplies the air flow G10 sufficient to cover the speckle of the laser beam L10 to the tempered glass 50 machined by the laser beam L10. The laser beam L10 and the heated air flow G10 is co-axially supplied to the tempered glass 50.
In the embodiment of the disclosure, when the heated air flow G10 heats the tempered glass 50 as shown in
In the embodiments of the laser drilling apparatus and a laser drilling method for a tempered glass of the disclosure, the laser beam and the air flow substantially co-axially pass through the same nozzle and reach the tempered glass to be machined. Therefore, the air flow may substantially clean up the debris produced during the laser drilling process and increase the quality and the speed of the drill. Moreover, by using the heated-up air flow and/or including the sacrificed layer during the laser drilling process of heating the large area of the tempered glass, the variation of the temperature gradient may be mitigated after the tempered glass is heated. It may decrease the production of the rift and prevent the tempered glass from splitting by the subsequent machining processes.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments. It is intended that the specification and examples be considered as exemplars only, with a true scape of the disclosure being indicated by the following claims and their equivalents.
Number | Date | Country | Kind |
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104129600 | Sep 2015 | TW | national |