POWDER SLUSH MOLDING SYSTEM
20190263029 ยท 2019-08-29
Assignee
Inventors
Cpc classification
B29C41/42
PERFORMING OPERATIONS; TRANSPORTING
B29C41/04
PERFORMING OPERATIONS; TRANSPORTING
B29K2105/251
PERFORMING OPERATIONS; TRANSPORTING
B29C41/18
PERFORMING OPERATIONS; TRANSPORTING
B29C41/003
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C41/18
PERFORMING OPERATIONS; TRANSPORTING
B29C41/42
PERFORMING OPERATIONS; TRANSPORTING
B29C41/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is a powder slush molding system that molds a slush skin by melting and adhering a powder resin material to an inner surface of a mold that is heated. The powder slush molding system includes a heating device, a rocking device, a cooling device, a demolding device, and a transfer device configured to transfer the mold between these devices. The cooling device includes a cooling bath and a table configured to turn upside down vertically above the cooling bath. The mold fixedly placed on an upper surface of the table faces the cooling bath side when the table is turned upside down. The table is configured to allow the mold to be placed also on a back surface of the table. The back surface faces upward when the table is turned upside down.
Claims
1. A powder slush molding system that molds a slush skin by melting and adhering a powder resin material to an inner surface of a mold that is heated, the powder slush molding system comprising: a heating device configured to heat the mold using a heating furnace; a rocking device configured to rock the mold, the rocking device configured to rock the mold in a state where the powder resin material is supplied to the mold that is heated; a cooling device configured to cool the mold to which the powder resin material is melted and adhered; a demolding device configured to remove the slush skin from the mold that is cooled; and a transfer device configured to transfer the mold between the heating device, the rocking device, the cooling device, and the demolding device, wherein: the cooling device includes a cooling bath and a table configured to turn upside down vertically above the cooling bath; the mold fixedly placed on an upper surface of the table faces a cooling bath side when the table is turned upside down; and the table is configured to allow the mold to be placed on a back surface of the table, the back surface facing upward when the table being turned upside down.
2. The powder slush molding system according to claim 1, wherein: the table has a shape of a rectangular parallelepiped and is configured to be rotatable about an axis passing through centers of a pair of side surfaces, facing each other, of the rectangular parallelepiped; a first guide for positioning the mold is provided on an upper surface side of the table; and a second guide for positioning the mold is provided on a back surface side of the table at a position that is the same as a positioning position of the mold on the upper surface of the table.
3. The powder slush molding system according to claim 1, wherein: the cooling device is coupled to the demolding device; and the demolding device includes a frame having an upper surface that is flush with the upper surface of the table and with the back surface of the table turned upside down, the frame configured to allow the mold to be placed on the upper surface of the frame, the powder slush molding system further comprising a transport device configured to move the mold between the table and the frame.
4. The powder slush molding system according to claim 3, wherein the cooling device is located between the transfer device and the demolding device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Features, advantages, and technical and industrial significance of exemplary embodiments will be described below with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
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DETAILED DESCRIPTION OF EMBODIMENTS
[0052] An embodiment of the disclosure will be described below with reference to the drawings.
[0053] Overall Configuration
[0054]
[0055] The first robot 50 and the second robot 60 are each a so-called articulated robot and are each configured to be rotatable by 360 degrees about the vertical direction. The first robot 50 and the second robot 60 are configured to respectively pick up and transfer a slush mold 3 and a resin box 5 using jigs 52, 62 attached to articulated arms 51, 61. According to predetermined operation programs and input commands, the first robot 50 and the second robot 60 are configured to respectively repeat operations of transferring a slush mold 3 and a resin box 5 from predetermined positions to predetermined positions.
[0056] Specifically, the first robot 50 is mainly configured to transfer a slush mold 3, having been subjected to demolding, from the cooling device 30 to the heating device 10, transfer a slush mold 3, having been subjected to heating, from the heating device 10 to the rocking device 20, and transfer a slush mold 3, having been subjected to formation of a resin layer 7, from the rocking device 20 to the cooling device 30. When molding a slush skin 8 having a different shape during the molding operation, the first robot 50 is configured to select an appropriate slush mold 3, according to an input command, from the mold placement stage 4 on which a plurality of slush molds 3 having different shapes is placed, and transfer the selected slush mold 3 to the heating device 10 while replacing a slush mold 3 having been subjected to demolding.
[0057] On the other hand, the second robot 60 is configured to select, from resin box groups containing powder resin materials 6 of different colors according to car models, a resin box 5 containing the powder resin material 6 of the appropriate color according to an input command, transfer the selected resin box 5 to the rocking device 20, and transfer a resin box 5 after formation of a resin layer 7 from the rocking device 20 to a material supply area (not shown).
[0058]
[0059] More specifically, in the heating device 10, as shown in
[0060]
[0061] These operations in the rocking device 20 are automatically performed according to a predetermined operation program and input command. The rocking time and so on are set per shape of slush mold 3 and per kind of powder resin material 6 so that even when the slush mold 3 is changed or the color (property) of the powder resin material 6 is changed, a slush skin 8 with optimal thickness can always be molded. The slush mold 3 formed with the resin layer 7 is transferred from the rocking device 20 to the cooling device 30 by the first robot 50, while the resin box 5 is transferred from the rocking device 20 to the material supply area by the second robot 60.
[0062]
[0063] Specifically, the table 32 has a generally rectangular parallelepiped shape, and a rotary shaft 34 is attached to the table 32 to pass through the centers of a pair of side surfaces 32c facing each other in a longitudinal direction of the table 32 (right-left direction in
[0064] Guides 39a (first guides) for positioning a slush mold 3 are provided on the upper surface 32a side of the table 32. As shown in
[0065] Further, clamps 38 for fixing the slush mold 3 are provided on the upper surface 32a side of the table 32. The clamps 38 are automatically driven to press a flange portion 3c of the slush mold 3 when a sensor (not shown) has detected that the slush mold 3 is placed on the upper surface 32a of the table 32, thereby fixing the slush mold 3 to the upper surface 32a of the table 32.
[0066] In the cooling device 30 thus configured, when a slush mold 3 is placed on the upper surface 32a of the table 32 by the first robot 50, the slush mold 3 is fixed to the upper surface 32a of the table 32 by the automatically driven clamps 38 as shown in
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[0068] Guides 46 for positioning a slush mold 3 are provided on the upper surface 41a side of the frame 41. As shown in
[0069] Further, clamps 45 for fixing the slush mold 3 are provided on the upper surface 41a side of the frame 41. The clamps 45 are automatically driven to press a flange portion 3c of the slush mold 3 when a sensor (not shown) has detected that the slush mold 3 is placed on the upper surface 41a of the frame 41, thereby fixing the slush mold 3 to the upper surface 41a of the frame 41.
[0070] In the demolding device 40 thus configured, when a slush mold 3 is placed on the upper surface 41a of the frame 41, the slush mold 3 is fixed to the upper surface 41a of the frame 41 by the automatically driven clamps 45. Then, the pivot mechanism 42 is driven to pivot the frame 41 counterclockwise by 90 degrees as indicated by a white arrow in
[0071] Then, as shown in
[0072] Temporary-Placement Space
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[0074] In a powder slush molding method, the process of heating a slush mold in a heating device usually takes the longest time, and therefore, as shown in
[0075] However, when performing the simultaneous production using the slush molds as many as the number of the working devices, one or more excess facilities are required.
[0076] For example, as shown in
[0077] For example, as shown in
[0078] However, with the configuration in which the transfer device 170 or the temporary-placement stage 180 is added as described above, there arises a problem that the installation space increases or a problem that the equipment investment becomes large depending on the scale of the transfer device 170 or the temporary-placement stage 180.
[0079] In view of this, in the powder slush molding system 1 of this embodiment, a temporary-placement (standby) space for a slush mold 3 having been subjected to demolding is secured using the existing working device. Specifically, as shown in
[0080] With this configuration, since the temporary-placement space for a slush mold 3 having been subjected to demolding is secured by the table 32 of the cooling device 30, the slush mold 3 can be smoothly transferred to the most time-consuming heating device 10 while suppressing an increase in installation space. Further, since the slush mold 3 can be placed on the back surface 32b of the table 32 that is turned upside down above the cooling bath 31, the existing facility can be used so that it is possible to suppress equipment investment.
[0081] In the powder slush molding system 1 of this embodiment, in order to make the most of the temporary-placement space provided by the back surface 32b of the table 32, various measures are taken as follows.
[0082] First, as shown in
[0083] Since, as described above, the table 32 is configured to be rotatable about the rotary shaft 34 passing through the centers of the pair of side surfaces 32c facing each other, the plane position and height of the upper surface 32a and the plane position and height of the back surface 32b when turned upside down can be made the same. Further, by providing the guides 39b on the back surface 32b side, the plane position and height of a slush mold 3 before and after cooling fixedly placed on the upper surface 32a and the plane position and height of a slush mold 3 after demolding temporarily placed on the back surface 32b turned upside down can be made the same. Therefore, even when transfer of the slush mold 3 is repeated by the automated first robot 50 as in this embodiment, the slush mold 3 can be reliably transferred between the devices, for example, without failing to pick up the slush mold 3 by the first robot 50.
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[0085] As shown in
[0086] In this way, the cooling device 30 and the demolding device 40 are coupled together, and the upper surface 32a (and the back surface 32b when turned upside down) of the table 32 of the cooling device 30 and the upper surface 41a of the frame 41 of the demolding device 40 are flush with each other, and therefore, the slush mold 3 can be freely transported between the cooling device 30 and the demolding device 40 using the simple transport units 72 that run on the rails 71, i.e. while suppressing equipment investment.
[0087] Since the cooling device 30 where the slush mold 3 after demolding is temporarily placed is located between the first robot 50 and the demolding device 40, compared to the case where the slush mold 3 after demolding is transferred directly from the demolding device 40, it is possible to downscale the first robot 50, i.e. suppress an increase in installation space and equipment investment.
[0088] Operation Sequence
[0089] Next, a description will be given of the operation sequence using the powder slush molding system 1 in the case where the sequence is configured such that the operations end in order of demolding, cooling, rocking, and heating.
[0090] As shown in
[0091] Then, as indicated by a white arrow in
[0092] When cooling of the slush mold 3B has ended while transferring the slush mold 3A to the heating device 10 by the first robot 50, the table 32 is turned upside down and then the slush mold 3B can be transported to the demolding device 40 by the transport mechanism 70 as shown in
[0093] Then, when the forming operation of the slush mold 3C has ended, the slush mold 3C can be transferred to the vacant cooling device 30 as shown in
[0094] Then, when heating of the slush mold 3D has ended so that the slush mold 3D is unloaded from the heating furnace 11 onto the upper placement stage 14, the slush mold 3A is loaded into the heating furnace 11 in turn and the slush mold 3D can be immediately transferred to the vacant rocking device 20 by the first robot 50 as shown in
[0095] As a result, as shown in
[0096] In the powder slush molding system 1 of this embodiment, since the lower placement stage 13 of the heating device 10 serves to provide a temporary-placement (standby) space, the temporary-placement space using the back surface 32b of the table 32 seems to be unnecessary. However, in the case where a slush mold 3 having been subjected to demolding is transferred directly from the demolding device 40 to the heating device 10 (the lower placement stage 13), it becomes difficult to downscale the first robot 50, and if, in order to solve it, the cooling device 30 and the demolding device 40 are arranged side by side (arranged in the right-left direction in
[0097] Further, in order to reduce the cycle to have no play in the configuration where the slush mold 3 having been subjected to demolding is transferred directly from the demolding device 40 to the heating device 10 (the lower placement stage 13), the sequence is formed such that the slush mold 3 having been subjected to demolding is transferred to the heating device 10 after waiting for the end of rocking or cooling, and therefore, a case may arise where there is no slush mold 3 on the lower placement stage 13 although heating can be started. That is, although it is possible to simply circulate slush molds 3 as many as the number of working devices by merely providing a temporary-placement (standby) space, it is not always possible to smoothly transfer the slush mold 3 to the most time-consuming heating device 10. Accordingly, also from this point of view, the temporary-placement space using the back surface 32b of the table 32 is significant.
Other Embodiments
[0098] The disclosure is not limited to the embodiment described above and can be carried out in various ways without departing from its spirit or its main features.
[0099] In the embodiment described above, the slush mold 3 is cooled in the cooling bath 31 storing water, but not limited thereto. For example, the slush mold 3 may be cooled in a cooling bath storing sand or in a cooling bath where cold water showers spout.
[0100] In the embodiment described above, the clamps 38 are provided only on the upper surface 32a side of the table 32, but not limited thereto. For example, clamps 38 may be provided also on the back surface 32b side of the table 32.
[0101] In this way, the embodiment disclosed above is for illustrative purposes only and should not be construed as being limitative in any aspect. Further, changes and modifications that fall within the range of equivalents of the claims are all within the scope of the disclosure.
[0102] According to the disclosure, it is possible to smoothly perform simultaneous production using molds as many as the number of working devices while suppressing an increase in installation space and equipment investment, and therefore, it is highly beneficial to apply the disclosure to a powder slush molding system.