METHOD OF FORMING THROUGH HOLE
20210060708 ยท 2021-03-04
Assignee
Inventors
Cpc classification
International classification
Abstract
A method of forming a through hole, wherein a spot of a laser light scans along a predetermined path and forms a through hole includes a first process in which the spot of the laser light circulates along an inner path from a predetermined first point on the inner path and reaches a predetermined second point. The inner path is positioned at an inner side relative to an outer path. The predetermined second point is positioned before the spot of the laser light returns to the predetermined first point. The method includes a second process in which the spot of the laser light moves along a transition path and reaches a predetermined third point on the outer path. The method includes a third process in which the spot of the laser light circulates along the outer path from the predetermined third point and returns to the predetermined third point.
Claims
1. A method of forming a through hole, wherein a spot of a laser light scans along a predetermined path of a surface of a plate material and forms a through hole on the plate material, the method comprising: a first process in which the spot of the laser light circulates along an inner path from a predetermined first point on the inner path and reaches a predetermined second point, the inner path being positioned at an inner side by a predetermined distance relative to an outer path corresponding to an inner peripheral edge of the through hole, the predetermined second point being positioned before the spot of the laser light returns to the predetermined first point; a second process in which the spot of the laser light moves along a transition path extended from the predetermined second point towards the outer path and reaches a predetermined third point on the outer path; and a third process in which the spot of the laser light circulates along the outer path from the predetermined third point and returns to the predetermined third point.
2. The method of forming a through hole according to claim 1, wherein the predetermined distance is smaller than a plate thickness of the plate material.
3. The method of forming a through hole according to claim 1, wherein a crossing angle of an end portion of the transition path and an end portion of the outer path is equal to or larger than 90 degrees.
4. The method of forming a through hole according to claim 1, wherein a circulation direction of the spot of the laser light in the first process and a circulation direction of the spot of the laser light in the third process are same as each other.
5. The method of forming a through hole according to claim 1, wherein the predetermined distance between the inner path and the outer path is set to be a half of a plate thickness of the plate material.
6. The method of forming a through hole according to claim 1, wherein the transition path is provided to extend from the predetermined second point towards a side opposite to a moving direction on the inner path and towards an outer side of the inner path.
7. The method of forming a through hole according to claim 1, wherein an angle between the transition path and a tangent line at the predetermined third point of the outer path is larger than 90 degrees.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The foregoing and additional features and characteristics of this disclosure will become more apparent from the following detailed description considered with the reference to the accompanying drawings, wherein:
[0009]
[0010]
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[0014]
DETAILED DESCRIPTION
[0015] A method of forming a through hole, the method according to an embodiment disclosed here will be described. Specifically, processes of forming a through hole TH (refer to
[0016] Next, the process of forming the circular through hole TH on the inner wall portion 11 will be described. A diameter of the through hole TH is 8 mm, for example.
[0017] First, a laser irradiation apparatus is arranged in the vicinity of the inner wall portion 11. The laser irradiation apparatus is attached to a known robot arm and is moved by the robot arm in a direction which is parallel to a surface of the inner wall portion 11. That is, a spot of a laser light scans the surface of the inner wall portion 11 along a path R, which is a predetermined path, of the surface of the inner wall portion 11, as will be described later. The surface of the inner wall portion 11 is planar. An optical axis of the laser light is orthogonal to the surface of the inner wall portion 11 through the entire scanning process of the laser light. A spot diameter of the laser light is 0.05 mm in the embodiment.
[0018] As illustrated in
[0019] The inner path or inner circular route R1 corresponds to a portion arranged to circulate about the center O from the first point 1 and reach a second point P2 corresponding to a point arranged immediately before returning to the first point P1. The inner path R1 includes an arc shape (a substantially annular shape). A moving direction on the inner path R1 is the clockwise direction as illustrated in
[0020] The transition path or route R2 is a linear portion arranged from the second point P2 of the inner path R1 to reach a third point P3 on the outer path R3 which will be described below. The transition path R2 is provided to extend linearly towards a side opposite to the moving direction (that is, the clockwise direction) on the inner path R1 and towards an outer side of the inner path R1. An angle formed between a straight line L1 connecting the center O and the second point P2 to each other, and the transition path R2 is 30 degrees, for example (refer to
[0021] The outer path or outer circular route R3 coincides with an inner peripheral edge of the through hole TH. That is, the outer path R3 includes a circular shape and a diameter of the outer path R3 is 8 mm in the embodiment (which is identical to an inner diameter of the through hole TH). As illustrated in
[0022] As described above, the inner path R1 and the outer path R3 are arranged to be coaxial with each other, and a distance d (i.e., a predetermined distance) between the inner path R1 and the outer path R3 (a difference between the radiuses of the inner path R1 and the outer path R3) is 0.5 mm in the embodiment. The distance d from the inner path R1 to the outer path R3 is set to be equal to or less than the plate thickness (=0.9 mm).
[0023] The spot of the laser light is scanned along the above-described path R. That is, first, the laser light is irradiated at the center O. Then, the spot of the laser light scans towards the first point P1 along the preliminary path R0 (a preliminary process). Next, the spot of the laser light scans (circulates or moves) from the first point P1 towards the second point P2 along the inner path R1 in the clockwise direction in
[0024] Next, the spot of the laser light scans from the second point P2, which is immediately before returning to the first point P1, to the third point P3 along the transition path R2 (a second process).
[0025] Next, the spot of the laser scans (circulates) from the third point P3 along the outer path R3 in the clockwise direction in
[0026] In the first process, as the spot of the laser light scans along the inner path R1, an inner peripheral side of the outer path R3 which is positioned in the vicinity of the inner path R1 becomes high in temperature compared to an outer peripheral side. In a case where the laser light scans along the outer path R3 in this state, burr (dross) is likely to occur at an outer peripheral edge of the scrap S, and the burr (dross) is not likely to occur at an inner peripheral edge of the through hole TH. In each of the processes, compressed air is blown to the irradiation position of the spot. Thus, the portion of the inner wall portion 11, the portion at which the laser light is irradiated (that is, the position of the spot) is brought to a melting point in a short time or quickly, and heat input to a region around the portion is minimized.
[0027] As described above, by employing the method of forming a through hole according to the embodiment, one scrap S is generated when forming one through hole TH (refer to
[0028] The distance d between the inner path R1 and the outer path R3 is set to be substantially a half of the plate thickness in the embodiment. Accordingly, if the intensity (output) of the laser light is relatively small, the burr (dross) is restricted from occurring at the inner peripheral side of the through hole TH. Accordingly, a relatively inexpensive laser irradiation apparatus can be used. In such a case where the intensity of the laser light is relatively small, the outer wall portion 12 suffers little influence by the laser light (very few or almost no burn marks by the laser light), and accordingly an outer appearance of the door frame 10 for a vehicle is maintained appropriately.
[0029] As described above, the transition path R2 is provided to extend from the second point P2 towards the side that is opposite to the moving direction of the laser light spot on the inner path R1 and towards the outer side of the inner path R1. Thus, a crossing angle of an end portion of the transition path R2 and an end portion of the outer path R3 is larger than 90 degrees (refer to
[0030] As illustrated in
[0031] In contrast, according to the embodiment disclosed here, the crossing angle is set to be larger than 90 degrees, and thus the narrow region A described in the above-mentioned comparative example does not exist at the inner side of the end portion of the outer path R3 (refer to
[0032] Implementation of the present disclosure is not limited to the above-described embodiment and may be changed or modified in various ways without departing from the objective of the disclosure.
[0033] For example, the above-described embodiment explains the method of forming the through hole TH including a circular shape, however, the present disclosure is applicable to a method of forming a through hole including a polygonal shape, an oval shape, an elliptical shape and an elongated circular shape, for example. In this case, first, the spot of the laser light scans along the inner path R1 arranged at an inner side relative to the outer path R3 corresponding to the inner peripheral edge (sides) of the above-mentioned through hole by the distance d that is substantially a half of the plate thickness. Then, the spot of the laser light moves or transitions to the outer path R3 via the transition path R2, and scans along the outer path R3.
[0034] The scanning directions of the laser light spot on the inner path R1 and on the outer path R3 in the above-described embodiment are set to be the clockwise direction, however, the scanning directions may be the counter-clockwise direction. Alternatively, the scanning direction on the inner path R1 and the scanning direction on the outer path R3 may be the opposite directions to each other (refer to
[0035] In a case where the crossing angle is smaller than 90 degrees as in the example illustrated in
[0036] According to the aforementioned embodiment, the method of forming a through hole, wherein the spot of the laser light scans along the predetermined path R of the surface of the plate material and forms the through hole TH on the plate material, includes the first process in which the spot of the laser light circulates along the inner path R1 from the first point P1 on the inner path R1 and reaches the second point P2 (i.e., predetermined second point). The inner path R1 is positioned at the inner side by the distance d relative to the outer path R3 corresponding to the inner peripheral edge of the through hole TH. The second point P2 is positioned before the spot of the laser light returns to the predetermined first point P1. The method includes the second process in which the spot of the laser light moves along the transition path R2 extended from the second point P2 towards the outer path R3 and reaches the third point P3 (i.e., predetermined third point) on the outer path R3. The method includes the third process in which the spot of the laser light circulates along the outer path R3) from the third point P3 and returns to the third point P3.
[0037] According to the above-described configuration, only one scrap S is generated when forming one through hole TH. That is, the scrap S of the embodiment is in a state where the first position P1 and the second portion P2 are connected or joined to each other, but not in a state where the portion corresponding to the first scrap including the disc shape and the portion corresponding to the second scrap including the ring shape are separated from each other as in the above-mentioned known method of forming a through hole. Accordingly, the number of the scrap S generated when one through hole TH is formed is smaller than a case in which the above-mentioned known method of forming a through hole is used (the number of the scrap S in the embodiment is one-half of the above-mentioned known method). Accordingly, the workload for removing (collecting) the scrap S is reduced. Consequently, the productivity of the product is enhanced according to the embodiment.
[0038] According to the aforementioned embodiment, the distance d is smaller than the plate thickness of the plate material.
[0039] According to the aforementioned embodiment, the crossing angle of the end portion of the transition path R2 and the end portion of the outer path R3 is equal to or larger than 90 degrees.
[0040] According to the aforementioned embodiment, the circulation direction (the moving direction) of the spot of the laser light in the first process and the circulation direction (the moving direction) of the spot of the laser light in the third process are same as each other.
[0041] According to the aforementioned embodiment, the distance d between the inner path R1 and the outer path R3 is set to be a half of the plate thickness of the plate material.
[0042] According to the aforementioned embodiment, the transition path R2 is provided to extend from the predetermined second point P2 towards the side opposite to the moving direction on the inner path R1 and towards the outer side of the inner path R1.
[0043] According to the aforementioned embodiment, the crossing angle (i.e. angle) between the transition path R2 and the tangent line L2 at the third point P3 of the outer path R3 is larger than 90 degrees.
[0044] The principles, preferred embodiment and mode of operation of the present invention have been described in the foregoing specification. However, the invention which is intended to be protected is not to be construed as limited to the particular embodiments disclosed. Further, the embodiments described herein are to be regarded as illustrative rather than restrictive. Variations and changes may be made by others, and equivalents employed, without departing from the spirit of the present invention. Accordingly, it is expressly intended that all such variations, changes and equivalents which fall within the spirit and scope of the present invention as defined in the claims, be embraced thereby.