Resin molded product and welding apparatus
10974461 ยท 2021-04-13
Assignee
Inventors
Cpc classification
B29C66/301
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/0058
PERFORMING OPERATIONS; TRANSPORTING
B29C66/73365
PERFORMING OPERATIONS; TRANSPORTING
B29C65/1635
PERFORMING OPERATIONS; TRANSPORTING
F21S43/237
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29L2031/30
PERFORMING OPERATIONS; TRANSPORTING
F21S43/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C65/1667
PERFORMING OPERATIONS; TRANSPORTING
B29C66/116
PERFORMING OPERATIONS; TRANSPORTING
B29C66/3452
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/304
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/44
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/2607
PERFORMING OPERATIONS; TRANSPORTING
B29C65/1629
PERFORMING OPERATIONS; TRANSPORTING
B29C66/118
PERFORMING OPERATIONS; TRANSPORTING
B29C65/8253
PERFORMING OPERATIONS; TRANSPORTING
B29C65/169
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/34
PERFORMING OPERATIONS; TRANSPORTING
B29C65/1661
PERFORMING OPERATIONS; TRANSPORTING
B29C65/1658
PERFORMING OPERATIONS; TRANSPORTING
F21S43/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S43/237
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S43/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C65/00
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/34
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/26
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/00
PERFORMING OPERATIONS; TRANSPORTING
F21S43/27
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Q1/44
PERFORMING OPERATIONS; TRANSPORTING
Abstract
There is provided a resin molded product including a first member and a second member which are laser welded. A laser welded portion includes a first welding portion which is welded by laser welding of galvano method and a second welding portion which is welded by laser welding of flash method or laser welding of scanning method.
Claims
1. A resin molded product comprising: a first member; and a second member that is laser welded to the first member at a laser welded portion therebetween, wherein the laser welded portion includes: a first welding portion formed by laser welding using a galvano method, and a second welding portion formed by laser welding using a flash method or a scanning method, wherein the flash method comprises emitting a laser beam from each of a plurality of laser heads arranged along a welding surface onto the second welding portion, wherein the scanning method comprises emitting a laser beam from a laser head that moves along the second welding portion, wherein the second member comprises: a translucent member including: a first leg portion having a first height, and a second leg portion having a second height that is greater than the first height, wherein the first welding portion is provided on the first leg portion, wherein the second welding portion is provided on the second leg portion, wherein the first member is a lamp body, wherein the second member is a translucent front cover welded to an opening of the lamp body at the laser welded portion, and wherein the front cover comprises first and second leg portions that are disposed at a periphery of the front cover, and that are welded to the lamp body, the resin molded product further comprising: another lamp body arranged adjacently to the lamp body, and another translucent front cover that is arranged adjacently to the front cover, and that is laser welded to another opening of the another lamp body at another laser welded portion therebetween, wherein the another laser welded portion includes: a third welding portion formed by laser welding using the galvano method, and a fourth welding portion formed by laser welding using the flash method or the scanning method, wherein the another front cover comprises third and fourth leg portions that are disposed at a periphery of the another front cover, and that are welded to the lamp body, and wherein the second leg portion faces the fourth leg portion, and has a height greater than the first leg portion.
2. The resin molded product according to claim 1, wherein an overlapping portion disposed at a boundary between the first welding portion and the second welding portion is formed by laser welding using the galvano method and either the flash method or the scanning method.
3. A resin molded product comprising: a light absorbing lamp body; and a translucent cover that is laser welded to the light absorbing lamp body at first and second welding portions therebetween, wherein the translucent cover comprises: a first leg portion of a leg wall at an outer periphery of the translucent cover protruding in a thickness direction of the translucent cover and having a first height in the thickness direction, and a second leg portion of the leg wall at the outer periphery protruding in the thickness direction and having a second height in the thickness direction, wherein the second height is greater than the first height, wherein a first welding portion provided on the first leg portion is formed by laser welding using a galvano method, wherein a second welding portion provided on the second leg portion is formed by laser welding using a flash method or a scanning method, wherein the flash method comprises emitting a laser beam from each of a plurality of laser heads arranged along a welding surface onto the second welding portion, and wherein the scanning method comprises emitting a laser beam from a laser head that moves along the second welding portion, wherein the first member is a lamp body, wherein the second member is a translucent front cover welded to an opening of the lamp body at the laser welded portion, and wherein the front cover comprises first and second leg portions that are disposed at a periphery of the front cover, and that are welded to the lamp body, the resin molded product further comprising: another lamp body arranged adjacently to the lamp body, and another translucent front cover that is arranged adjacently to the front cover, and that is laser welded to another opening of the another lamp body at another laser welded portion therebetween, wherein the another laser welded portion includes: a third welding portion formed by laser welding using the galvano method, and a fourth welding portion formed by laser welding using the flash method or the scanning method, wherein the another front cover comprises third and fourth leg portions that are disposed at a periphery of the another front cover, and that are welded to the lamp body, and wherein the second leg portion faces the fourth leg portion, and has a height greater than the first leg portion.
4. The resin molded product according to claim 1, wherein the second member is formed as a curved surface along a shape of a vehicle body.
5. The resin molded product according to claim 3, wherein the translucent cover is formed as a curved surface along a surface shape of a vehicle body.
6. The resin molded product according to claim 1, wherein the second leg portion extends in the direction of a vehicle body.
7. The resin molded product according to claim 3, wherein the second leg portion extends in the direction of a vehicle body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other aspects of the present invention will become more apparent and more readily appreciated from the following description of illustrative embodiments of the present invention taken in conjunction with the attached drawings, in which:
(2)
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(8)
DETAILED DESCRIPTION
(9) An illustrative embodiment of the present invention will be described with reference to the drawings. According to this illustrative embodiment, a lamp housing of a seamless rear combination lamp RCL of an automobile is an example of a resin molded product according to the present invention.
(10) The seamless lamps appear to be one integral lamp such that the boundary of the two independent lamps is inconspicuous when arranged adjacently. According to the illustrative embodiment, the rear combination lamp RCL includes an outside unit OSU disposed on the vehicle body VB at an outside in a vehicle width direction, and an inside unit ISU disposed on a rear trunk RT at an inside in the vehicle width direction. The outside unit OSU and the inside unit ISU are arranged close to each other in a left-right direction, so that the rear combination lamp RCL appears to be an integral one with two lamp units seamlessly connected together.
(11) In this illustrative embodiment, the outside unit OSU includes an upper area configured by a tail lamp TL and a stop lamp SL shown by dashed lines, and a lower area configured by a turn signal lamp TSL. The inside unit ISU includes an upper area configured by a tail lamp TL and a stop lamp SL shown by dashed lines, and a lower area configured by a backup lamp BUL.
(12) The rear combination lamp RCL is configured such that the lamp bodies at the portion where both the units OSU and ISU face each other are not exposed when viewed from the front, so that the boundary of the front covers at the portion where both the units OSU and ISU face each other is inconspicuous and appears continuous. Further, it is desirable that light emitted from each unit appears to be blended when both units are lit on.
(13) For forming the lamp housing, a leg portion is provided to stand on the edge of the front cover, and the front cover is welded to the lamp body with this leg portion. In order to form a seamless structure, a leg wall is provided such that the height at the seamless portion is higher than at other portions, and an end surface of the leg wall is welded to the lamp body. That is, at the portion where both units face each other, a peripheral wall of each lamp body is replaced by a translucent leg wall, and the lamp body is not exposed from the front side of the lamp at this portion. Further, light can pass through the leg walls of both units mutually so as to achieve the seamless structure.
(14) However, in such a combination lamp, the position of the welding portion of the leg wall is away from the surface of the front cover by the height of the leg wall. Therefore, as described above, it is difficult to use one galvano head to laser weld the entire welding portion, including the welding portion of the leg wall, on the periphery of the front cover.
(15)
(16) The lamp housing 1 is configured such that the surface of the front cover 3 is exposed at the edge 1a of the side facing the inside unit ISU arranged adjacently therewith and is optically coupled to the inside unit ISU at the edge 1a, as described below. Herein, the edge 1a of the side facing the inside unit ISU is referred to as a seamless portion.
(17)
(18) The lamp body 2 is formed as a shallow plate-shaped container having a front opening and a peripheral wall 21 extending along the opening. A partition wall 22 is arranged to stand in the lamp body 2 to partition an upper room 1u for configuring the tail lamp TL and the stop lamp SL, and a lower room 1d for configuring the turn signal lamp TSL in the lamp housing 1. The seamless portion 1a has a cutout portion 23 by cutting a portion of the peripheral wall 21 at the inner side of the upper room 2a in the vehicle width direction. The upward end surface of the peripheral wall 21 in
(19) The front cover 3 is formed as a curved surface along a surface shape of the vehicle body VB of the automobile CAR, and a peripheral portion 31 of the inner surface of the front cover 3 is in close contact with the end surface of the peripheral wall 21 of the lamp body 2. In a portion corresponding to the seamless portion 1a, a leg wall 32 stands to extend backward (downward in
(20) The welding of the lamp body 2 and the front cover 3 will be described below. The peripheral portion 31 of the front cover 3 is in close contact with the end surface of the peripheral wall 21 of the lamp body 2, and the end surface of the leg wall 32 of the front cover 3 abuts against the inner surface of the cutout portion 23 of the lamp body 2 to be in close contact therewith. Then, the lamp housing 1 is formed by laser welding these closely contacted portions.
(21) As shown in
(22) As shown in
(23) A turn signal light source which emits amber light is disposed in the lower room 1d of the lamp housing of the outside unit OSU, but the drawing is omitted herein. Accordingly, the turn signal lamp TSL is configured in the lower room 1d.
(24) As shown in the cross-sectional view of
(25) Although the drawing is omitted, the inside of the lamp housing 1 of the inside unit ISU is also divided into an upper room and a lower room. A light guide body and a tail light source are installed in the upper room in the same manner as the outside unit OSU to configure the tail lamp TL as shown in
(26) Since the outside unit OSU and the inside unit ISU are configured as described above, both units OSU and ISU are arranged to face each other in a state where the leg walls 32 of front covers 3 are close to each other when both units OSU and ISU are installed in the automobile CAR as shown in
(27) The light of the tail lamp TL and the stop lamp SL are mutually incident and emitted through the seamless portion 1a of both units, i.e., the leg walls 32 provided on the front covers 3 of the units OSU and ISU, when the tail lamp TL or the stop lamp SL of the inside unit ISU and the outside unit OSU is lit on. Therefore, the inside unit ISU and the outside unit OSU are optically coupled to each other to configure a seamless rear combination lamp.
(28) That is, both tail light sources 5 of the outside unit OSU and the inside unit ISU emit light when the tail lamp TL is lit on. The red light from each tail light source 5 is incident to one end surface of the light guide body 4, is emitted from the side facing the front side of the lamp while being guided inside the light guide body, and is emitted to the outside through the front cover 3. Therefore, the tail lamp TL appears to be two line-shaped light emitting surfaces horizontally extending in upper and lower of the outside unit OSU and the inside unit ISU respectively when it is lit on.
(29) At this time, the other end surface of each light guide body 4 of the units OSU and ISU extends to the seamless portion 1a where the light emitted from the other end surface of each light guide body 4 is separately incident on the opposite unit through the leg wall 32 of the front cover 3. Accordingly, the light is emitted forward as a whole from the seamless portion 1a through the front cover 3, and the light guide bodies 4 of both units OSU and ISU appear to be a continuous line-shaped light emitting surface in the seamless portion 1a.
(30) Both the stop light sources 6 of the outside unit OSU and the inside unit ISU emit light when the stop lamp SL is lit on. Thus the entire upper room 1u of each lamp housing 1 of the units OSU and ISU turns on in red with high luminosity. In this case, the light is also emitted forward as a whole through the seamless portion 1a of the front cover 3 since the light inside the lamp housings 1 of the units OSU and ISU is incident on the opposite unit respectively through the leg wall 32 of the front cover 3. Therefore, the stop lamps SLs of the units OSU and ISU appear to be continuous light emitting surfaces.
(31) An area corresponding to the lower room of the front cover 3 of the outside unit OSU emits amber light when the turn signal lamp TSL is lit on. An area corresponding to the lower room of the front cover 3 of the inside unit ISU emits white light when the backup lamp BUL is lit on. These lamps are lit on independently since no seamless portion is provided in the lower areas of the units OSU and ISU.
(32)
(33) The welding apparatus 100 includes a galvano laser projection unit 103 disposed over the base 101 and a flash laser projection unit 104 disposed on one side of the base 101.
(34) The galvano laser projection unit 103 simply uses the known laser projection apparatus, so the drawing and detailed description are omitted. The galvano laser projection unit 103 includes a laser light source (laser oscillator) and a galvano mirror which is configured to deflection-control the projection direction of laser beams from the laser light source and is configured to project laser beams to scan at a high speed the portion where the lamp body 2 is in close contact with the front cover 3 except for the seamless portion 1a.
(35) The flash laser projection unit 104 includes a laser light source 105, a plurality of optical fibers 106 optically coupled to the laser light source 105 at one end, and projection heads 107 connected to the other ends of the optical fibers 106, respectively. The flash laser projection unit 104 is configured such that light from the laser light source 105 is incident on one end of the optical fiber 106 and guided in the optical fiber 106 to the other end such that the light is projected while being focused or radiated by the projection head 107. The projection head 107 includes an optical system such as lens for focusing or radiating light from the optical fiber 106 in its original circular beam shape, but the description is omitted here.
(36) The flash laser projection unit 104 includes one or more projection heads 107. Four projection heads 107 are shown in order to simplify the illustration. The flash laser projection unit 104 is disposed to face the seamless portion 1a of the lamp housing 1 and projects laser beams from each projection head 107 onto the area where the leg wall 32 of the front cover 3 is formed.
(37) Incidentally, the four projection heads 107 of the flash laser projection unit 104 may be configured as four flash laser projection units with independent laser light sources. In the present illustrative embodiment, as described above, one flash laser projection unit 104 includes one laser light source 105 for the four projection heads 107.
(38) In the welding apparatus 100, the front cover 3 is mounted and positioned on the lamp body 2 placed on the base 101 and is in close contact with the lamp body 2 by the pressing mechanism (not described). Then, the galvano laser projection unit 103 performs scanning to project laser beams to the portion except for the seamless portion 1a.
(39) In this welding, if the laser beams La were scanned by the galvano laser projection unit 103 toward the portion where the leg wall 32 of the front cover 3 is in close contact with the cutout portion 23 of the lamp body 2, i.e., a second welding portion X2, it should be difficult to perform suitable welding since the laser beams La would be not effectively projected to the second welding portion X2. That is, as shown in
(40) In the illustrative embodiment of the present invention, the laser beams Lb are separately projected onto the seamless portion 1a from the four projection heads 107 of the flash laser projection unit 104 in parallel with the projection of the laser beams by the galvano laser projection unit 103. As shown in
(41) In this way, since the laser beams La emitted from the galvano laser projection unit 103 are effectively projected onto the first welding portion X1 through the front cover 3, high quality welding can be performed on the first welding portion X1 except for the seamless portion 1a of the welding portions on which the front cover 3 and the lamp body 2 are welded. Further, since laser beams Lb linearly incident from the four projection heads 107 of the flash laser projection unit 14 are projected onto the second welding portion X2 through the leg wall 32, high quality welding can be achieved on the second welding portion X2 using the laser beam energy with less attenuation.
(42) In the welding apparatus 100, since the first welding portion extending across a wide area of the front cover 3 is welded by the galvano laser projection unit 103, welding can be performed taking advantage of the rapidity of the galvano laser projection unit 103. In addition, since the second welding portion X2, which is difficult for the galvano laser projection unit 103 to weld, is welded by the flash laser projection unit 104, welding can be performed taking advantage of high quality of the flash laser projection unit 104. Therefore, compared to welding the entire welding portion by the flash laser projection unit 104, the number of the flash laser projection units 104 or the projection heads 107 can be limited to a necessary minimum, so that the cost of the welding apparatus 100 can be reduced.
(43) The flash laser projection unit 104 is not limited to having four projection heads, and the number of projection heads may be designed according to the relationship between the diameter of the laser beams Lb and the length of the second welding portion X2 so as to suitably perform welding the welding portion. In a case where one flash laser projection unit includes one projection head, the number of the flash laser projection units may be provided by the same number as the number of the above projection heads.
(44) Herein,
(45) In the present invention, the flash laser projection unit 104 of the welding apparatus 100 may be replaced by a scanning laser projection unit. The laser welding of scanning method may be not suitable for a large or long welding portion as described above but suitable for the second welding portion of the seamless portion. As shown in
(46) In the illustrative embodiment of the present invention, at the boundary of the first welding portion X1 and the second welding portion X2, each welding area may be set to have an overlapping portion X3, on which both the laser welding of galvano method and the laser welding of flash method are performed. For example, as shown in
(47) As shown in
(48) In the above illustrative embodiment, the present invention is applied to an automobile seamless rear combination lamp in which a plurality of lamps are integrated, but not limited to the lamps described in the illustrative embodiment. It can be applied to a case where at least two lamps are formed as a seamless lamp.
(49) Further, the present invention is not limited to lamps of vehicles including automobiles, and can be applied to a lamp which includes a housing formed by laser welding a lamp body and a front cover, in particular, to a lamp having leg portions at the edge of the front cover with different heights.
(50) Further, the present invention is not limited to lamps, and can be applied to a resin molded product formed by laser welding at least two members.