A three-dimensional mounting device for thermal conductive sheet

By designing a three-dimensional mounting equipment for heat conductors, the combination of the patch head and moving components can realize automatic adsorption and orderly compression of the thermal conductors on the intersection surface, solving the problem that traditional equipment is difficult to attach on the intersection surface, and improving the bonding quality and heat conduction effect of the thermal conductors.

CN119712685BActive Publication Date: 2025-05-16SUZHOU HUAGONG AUTOMATION TECH CO LTD
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Patent Information

Application Number
CN202510241049.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-03
Publication Date
2025-05-16
Estimated Expiration
2045-03-03

AI Technical Summary

Technical Problem

It is difficult for traditional heat conduction sheet mounting equipment to apply pressure on both sides of the intersection to complete the attachment, resulting in the heat conduction sheet stretching and deformation at the corner, and the glue layer cannot be continuously covered, which affects the heat conduction effect and is prone to generate bubbles that affect the uniformity of heat dissipation.

Method used

A three-dimensional mounting device for heat conductor sheets is designed, using a patch head and a moving assembly. Through the cooperation of the suction head and the presser, the automatic adsorption of the heat conductor sheets on the intersection surface and the orderly pressing from the root to the end are achieved, ensuring the close fit of the heat conductor sheets at the junction position.

Benefits of technology

The automatic attachment of the heat conducting sheet on the intersection surface is realized, ensuring the tight fit and continuous coverage of the heat conducting sheet, avoiding the generation of bubbles, and improving the heat conduction effect and heat dissipation uniformity.

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Abstract

The present invention relates to the technical field of automated transfer equipment, and specifically to a three-dimensional mounting device for heat-conducting sheets. In order to achieve the above-mentioned purpose, the present invention is implemented through the following technical scheme: a three-dimensional mounting device for heat-conducting sheets, used to attach the heat-conducting sheet to the target surface of a workpiece, the target surface includes surface A and surface B connected to surface A, the heat-conducting sheet includes sheet material 1 and sheet material 2 respectively adapted to and connected to surface A and surface B, there is an adhesive layer between the target surface and the heat-conducting sheet, and also includes: a mounting head, the mounting head includes a suction head and a presser, the suction head is provided with suction surface A and suction surface B respectively corresponding to surface A and surface B and provided with suction holes, the presser includes a butt plate, the butt plate includes a state 1 in which the front edge is located at the junction of suction surface A and suction surface B; a moving component for moving the mounting head and / or the workpiece; automatic attachment of the heat-conducting sheet is realized for a pair of intersecting target surfaces, and the bonding quality of the heat-conducting sheet is ensured.
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Description

Technical Field

[0001] The invention relates to the technical field of automated transfer equipment, and in particular to a three-dimensional mounting device for a thermal conductive sheet. Background Art

[0002] With the miniaturization of high-power electronic devices, the heat generated per unit volume has increased dramatically, and efficient heat dissipation design is urgently needed to avoid performance degradation. Thermal conductive sheets are widely used to fill the air gap between devices and housings to build heat conduction paths due to their high thermal conductivity and flexible bonding properties. Traditional thermal conductive sheet mounting equipment is mostly designed for flat or simple curved surfaces, using vacuum adsorption and roller pressing processes.

[0003] However, when the thermal conductive sheet needs to be attached to two intersecting surfaces (such as the outer shell of the charging head plug component), it is difficult to directly apply pressure to all surfaces at the same time to complete the attachment of the thermal conductive sheet. Moreover, when the target surface contains vertical or irregular intersecting surfaces, the traditional one-time flat mounting method will cause the thermal conductive sheet to stretch and deform at the corners, and the adhesive layer cannot be continuously covered, forming a heat conduction blind spot. In addition, bubbles are easily generated during the attachment process, affecting the uniformity of heat dissipation. Summary of the invention

[0004] In order to overcome the above-mentioned deficiencies of the prior art, the present invention provides a three-dimensional thermal conductive sheet mounting device, which realizes automatic attachment of the thermal conductive sheet to a pair of intersecting target surfaces and ensures the thermal conductive sheet attachment quality.

[0005] In order to achieve the above object, the present invention is implemented through the following technical solutions:

[0006] A thermal conductive sheet three-dimensional mounting device is used to attach the thermal conductive sheet to a target surface of a workpiece, the target surface includes a surface A and a surface B connected to the surface A, the thermal conductive sheet includes a sheet material 1 and a sheet material 2 respectively adapted to and connected to the surface A and the surface B, an adhesive layer is provided between the target surface and the thermal conductive sheet, and further includes:

[0007] The material pasting head comprises a suction head and a material presser, the suction head is provided with a suction surface A and a suction surface B respectively corresponding to the surface A and the surface B and provided with suction holes, the suction surface A and the suction surface B are used to adsorb the sheet material 1 and the sheet material 2 respectively, the material presser comprises a stop plate, the stop plate comprises a state 1 whose front edge is located at the junction of the suction surface A and the suction surface B;

[0008] A moving assembly for moving the placement head and / or the workpiece;

[0009] When the mounting head that absorbs the heat conducting sheet moves relatively to the point where the sheet 1 faces and fits the surface A, the heat conducting sheet corresponding to the front edge of the abutment plate is abutted against the junction of the surface A and the surface B, and then the mounting head moves relatively in the extension direction of the surface B so that the abutment plate can press the sheet 2 from the root to the end onto the surface B. Based on the above device, it is possible to attach a complete heat conducting sheet to a pair of intersecting surfaces.

[0010] Furthermore, in the present application, a three-dimensional mounting device for heat-conducting sheets has a corresponding state in which the front edge of a push plate protrudes from the suction surface B, and the presser also includes a plate frame, on which the push plate is rotatably mounted, and between the plate frame and the push plate, an elastic member 1 is provided, and in the process of the push plate pressing the sheet material 2 from the root to the end onto the suction surface B, the elastic member 1 is used to apply an elastic force to the push plate to rotate in the direction of contact with the suction surface B, and a limiting structure is also provided on the mounting head, and in the natural state, the elastic member 1 presses the push plate against the limiting structure. As a preferred solution of the present application, if the push plate is in hard contact with the sheet material 2, the stability of the pressure applied to the sheet material 2 needs to be precisely controlled by the trajectory of the moving mounting head, which is difficult to control and has poor stability. In the present application, the elastic member 1 is used to make the push plate press the sheet material 2 from the root to the end onto the suction surface B, and the push plate presses the sheet material 2 elastically against the suction surface B to ensure the stability of the pressure. The front edge of the abutment plate is convex to the second suction surface. On the one hand, when the sheet material is facing and in contact with the first surface, it can ensure that the second suction surface as a whole is not fully in contact with the second surface. On the other hand, it leaves space for the abutment plate to rotate in the direction of energy storage of the elastic member.

[0011] Furthermore, in the present application, a three-dimensional mounting device for thermal conductive sheets, in a natural state, sheet material 1 and sheet material 2 are coplanar, and also includes a folding frame, on which a folding roller adapted to the width of sheet material 2 is disposed, and after suction surface A absorbs sheet material 1, the folding roller is used to press sheet material 2 onto surface B. As a preferred solution of the present application, by first sucking sheet material 1 and then relatively moving the mounting head until sheet material 2 is above the folding roller, and the folding roller is facing the abutment plate, the mounting head is continuously moved to the folding roller to press sheet material 2 from the root to the end onto suction surface B, and suction surface B absorbs sheet material 2 to achieve folding operation, and the above operation can be achieved by driving the mounting head and / or the folding frame to move, thereby achieving the automatic folding and pressing of the thermal conductive sheet of the planar sheet, and adsorbing it onto suction surface A and suction surface B.

[0012] Furthermore, in the present application, a three-dimensional mounting device for heat-conducting sheets, the folding frame includes a frame body, a roller seat is slidably connected to the frame body in the horizontal direction, a folding roller is rotatably mounted at one end of the roller seat in the sliding direction, and an elastic member 2 is provided between the roller seat and the frame body, and the elastic member 2 is used to apply an elastic force toward one side of the folding roller to the roller seat. As a preferred embodiment of the present application, based on the above-mentioned device, during folding, in the process of the folding roller pressing the sheet material 2 onto the suction surface from the root to the end, the folding roller is horizontally squeezed by the mounting head, so that the roller seat is displaced toward the energy storage direction of the elastic member 2, and the elastic member 2 is used to roll the folding roller tightly onto the suction surface to ensure the flatness of the sheet material 2 attached to the suction surface.

[0013] Furthermore, a thermal conductive sheet three-dimensional mounting device in the present application also includes a tooling, which is provided with a groove cavity for receiving and locking the workpiece, and the workpiece is placed in the groove cavity at the mounting station with the upper side facing upward. As a preferred solution of the present application, the tooling is used to position the workpiece to ensure the mounting quality.

[0014] Furthermore, in the present application, a three-dimensional thermal conductive sheet mounting device, the mounting head includes a mounting frame, a suction head and a presser are mounted on the mounting frame, and the mounting frame is connected to the moving end of the moving component.

[0015] Furthermore, in a three-dimensional mounting device for a thermal conductive sheet in the present application, a presser includes a driver, which is transmission-connected to a plate frame, and the driver is used to drive the plate frame to move so that the contact plate switches between state one and state two. When the contact plate is in state two, the contact plate retracts into the inner side of suction surface A and suction surface B, and a corresponding suction head is provided with a groove for accommodating the contact plate. When the contact plate is in state one, the front edge extends out of the groove.

[0016] A three-dimensional mounting method for a thermal conductive sheet is based on a three-dimensional mounting device for a thermal conductive sheet, and comprises the following steps:

[0017] S1, taking the material, in the initial state, the sheet 1 and the sheet 2 are coplanar, and the mounting head is relatively moved until the suction surface A faces and is attached to the sheet 1 to absorb the thermal conductive sheet;

[0018] S2, folding, relatively moving the material pasting head until the second sheet is above the folding roller, and the folding roller is facing the abutment plate, relatively moving the material pasting head to the folding roller to press the second sheet from the root to the end onto the second suction surface, and the second sheet is sucked by the second suction surface;

[0019] S3, attach the bottom surface, move the mounting head of the moving assembly to the point where the sheet 1 is facing and attached to the surface A, and the heat conducting sheet corresponding to the front edge of the abutment plate is pressed against the junction of the surface A and the surface B. At this time, the sheet 2 and the surface B are in a pre-pressed state;

[0020] S4, stick the vertical surface, move the sticking head relatively to the front end of the abutment plate to press the second sheet of material onto the second surface from the root to the end.

[0021] It can be seen from the above technical solution that the present invention has the following beneficial effects:

[0022] 1. The present invention provides a three-dimensional mounting device for a heat conductive sheet, which can realize automatic transfer of the heat conductive sheet to the target surface of a workpiece, and press sheet material 1 and sheet material 2 onto surface A and surface B in sequence. By setting a stop plate and combining orderly pressing from the root to the end, the lamination quality can be ensured and bubbles can be avoided during the lamination process.

[0023] 2. The present invention provides a three-dimensional mounting method for a thermal conductive sheet, which can realize automatic folding of the thermal conductive sheet after the material is adsorbed, and sequentially mount the bottom surface and the vertical surface. It has the advantages of high automation, and orderly pressing from the root to the end avoids stress concentration, thereby ensuring the mounting quality. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 is a schematic diagram of a heat conducting sheet in an embodiment of the present application;

[0025] Figure 2 is a schematic diagram of a workpiece in an embodiment of the present application;

[0026] Figure 3 A schematic diagram of a three-dimensional mounting device for a heat conductive sheet in one embodiment of the present application;

[0027] Figure 4 for Figure 3 A partial enlarged view of the area A in the middle circle;

[0028] Figure 5 This is a schematic diagram of a mounting head in an embodiment of the present application;

[0029] Figure 6 It is a schematic diagram of the exploded components of a mounting head in one embodiment of the present application;

[0030] Figure 7 It is a schematic diagram of a moving component and a mounting head in an embodiment of the present application;

[0031] Figure 8 It is a schematic diagram of the three-dimensional structure of a feeder in one embodiment of the present application;

[0032] Fig. 9 This is a schematic diagram of the planar structure of a feeder in one embodiment of the present application;

[0033] Fig.10 A schematic diagram of a tool in an embodiment of the present application;

[0034] Fig.11 Schematic diagram of a folding frame in an embodiment of the present application.

[0035] In the figure: 1-heat conducting sheet; 101-sheet material 1; 102-sheet material 2;

[0036] 2-patch head; 20-suction head; 201-suction surface A; 202-suction surface B; 203-groove; 21-presser; 211-butt plate; 212-plate frame; 213-elastic member 1; 214-driver; 215-limiting block; 22-mounting frame;

[0037] 3- folding frame; 31- folding roller; 32- frame body; 33- roller seat; 34- elastic member 2;

[0038] 4-tooling; 40-slot cavity;

[0039] 5- Mobile components;

[0040] 6-loader; 60-bottom film; 61-material tray; 62-movable frame; 620-stripping knife; 63-material receiving platform; 64-material spreading roller; 65-winding roller; 66-film pressing device; 661-support plate; 662-pressing plate;

[0041] 9-workpiece; 90-target surface; 901-surface A; 902-surface B. DETAILED DESCRIPTION

[0042] Example 1

[0043] This embodiment provides Figure 3 A thermal conductive sheet three-dimensional mounting device is shown, which is used to Figure 1 The heat conducting sheet 1 is attached to Figure 2 On the target surface 90 of the workpiece 9 shown, the target surface 90 includes a surface A 901 and a surface B 902 connected to the surface A 901, the heat conducting sheet 1 includes a sheet 101 and a sheet 2 102 respectively adapted to and connected to the surface A 901 and the surface B 902, an adhesive layer is provided between the target surface 90 and the heat conducting sheet 1, and further includes:

[0044] like Figure 5 and Figure 6 The material pasting head 2 shown in the figure comprises a suction head 20 and a presser 21. The suction head 20 is provided with a suction surface A 201 and a suction surface B 202 which correspond to the surface A 901 and the surface B 902 respectively and are provided with suction holes. The suction surface A 201 and the suction surface B 202 are used to adsorb the sheet material 1 101 and the sheet material 2 102 respectively. The presser 21 comprises a stop plate 211. The stop plate 211 comprises a state 1 in which the front edge is located at the junction of the suction surface A 201 and the suction surface B 202.

[0045] A moving component 5 for moving the placement head 2 and / or the workpiece 9;

[0046] When the mounting head 2 that adsorbs the thermal conductive sheet 1 moves relatively to the point where the sheet 101 is facing and attached to the surface A 901, the thermal conductive sheet 1 corresponding to the front edge of the abutment plate 211 is pressed against the junction of the surface A 901 and the surface B 902. The moving component 5 is used to move the mounting head 2 relatively toward the extension direction of the surface B 902 so that the abutment plate 211 presses the sheet 2 102 onto the surface B 902 from the root to the end.

[0047] Based on the above device, it is possible to attach a complete heat conducting sheet to a pair of intersecting surfaces. Figure 2 As shown, in this embodiment, surface A 901 corresponds to the upper bottom surface of the inner cavity of the workpiece 9, and surface B 902 is a side surface perpendicular to surface A 901. Specifically, in one embodiment, the workpiece 9 is a plug component of a charging head, surface A 901 corresponds to the inner wall of the shell cavity of the plug component, and surface B 902 corresponds to the side wall of the electronic device in the shell cavity of the plug component. The heat on the electronic device is evenly transferred to the inner wall of the shell cavity of the plug component through the heat conductive sheet 1.

[0048] If the plate 211 is in hard contact with the sheet 2 102, the stability of the pressure applied to the sheet 2 102 needs to be precisely controlled by the trajectory of the mobile mounting head 2, which is difficult to control and has poor stability. Figure 6 As shown, in this embodiment, the front edge of the corresponding state-abutment plate 211 protrudes from the second suction surface 202, and the material presser 21 also includes a plate frame 212, and the butt plate 211 is rotatably mounted (corresponding to the rotating joint A) on the plate frame 212. An elastic member 213 is provided between the plate frame 212 and the butt plate 211. During the process of the butt plate 211 pressing the sheet material 102 from the root to the end on the second surface 902, the elastic member 213 is used to apply an elastic force to the butt plate 211 to rotate in the direction of contacting the second surface 902. A limiting structure is also provided on the material pasting head 2. In the natural state, the elastic member 213 presses the butt plate 211 against the limiting structure. In this application, the elastic member 213 is used to make the butt plate 211 press the sheet material 102 from the root to the end on the second surface 902, and the butt plate 211 presses the sheet material 102 elastically against the second surface 902 to ensure the stability of the pressure. The front edge of the abutment plate 211 is convex from the second suction surface 202. On the one hand, when the sheet 101 is facing and in contact with the first surface 901, it can ensure that the second suction surface 202 as a whole is not fully in contact with the second surface 902. On the other hand, a space is reserved for the abutment plate 211 to rotate in the direction of storing energy for the elastic member 1 213. In this embodiment, the elastic member 1 213 is a compression spring that abuts between the abutment plate 211 and the plate frame 212. In other embodiments, the elastic member 1 213 can be a torsion spring.

[0049] Furthermore, in this embodiment, combined with Figure 1 and Figure 4 As shown, in the natural state, the sheet 101 and the sheet 2 102 are coplanar, and also include Fig.11 The folding frame 3 shown in the figure is provided with a folding roller 31 adapted to the width of the sheet 2 102. After the suction surface 201 absorbs the sheet 1 101, the folding roller 31 is used to press the sheet 2 102 onto the surface 902 during the relative movement of the folding frame 3 and the material pasting head 2. The sheet 101 is first sucked and then the material pasting head 2 is relatively moved until the sheet 2 102 is above the folding roller 31, and the folding roller 31 is directly against the plate 211, and the material pasting head 2 is continuously moved to the folding roller 31 to press the sheet 2 102 from the root to the end onto the suction surface 202. The suction surface 202 absorbs the sheet 2 102, and the folding operation is realized. The above operation can be realized by driving the material pasting head 2 and / or the folding frame 3 to move. In this embodiment, the folding frame 3 is installed on the fixed frame body, and the moving assembly 5 drives the material pasting head 2 to move and perform the folding operation. Therefore, the thermal conductive sheet 1 of the flat sheet material is automatically folded and adsorbed on the first suction surface 201 and the second suction surface 202 .

[0050] In this embodiment, the folding frame 3 includes a frame body 32, on which a roller seat 33 is slidably connected in the horizontal direction, and a folding roller 31 is rotatably installed at one end of the roller seat 33 in the sliding direction, and an elastic member 2 34 is provided between the roller seat 33 and the frame body 32, and the elastic member 2 34 is used to apply an elastic force toward one side of the folding roller 31 to the roller seat 33. Based on the above device, when folding, the folding roller 31 is pressed from the root to the end of the sheet material 102 on the second suction surface 202 by the folding roller 31. The folding roller 31 is horizontally squeezed by the material attaching head 2, so that the roller seat 33 is displaced in the energy storage direction of the elastic member 2 34, and the elastic member 2 34 is used to roll the folding roller 31 tightly on the second suction surface 202 to ensure the flatness of the sheet material 102 attached to the second suction surface 202.

[0051] Combination Fig.10 As shown, in this embodiment, a tool 4 is also included, and a groove 40 is provided on the tool 4 for receiving and locking the workpiece 9. When the workpiece 9 is placed in the groove 40 at the mounting station, the first surface 901 faces upward. The tool 4 is used to position the workpiece 9 to ensure the quality of mounting. In this embodiment, the tool 4 is transferred and transported by the conveyor belt below, and a lifting mechanism is provided at the mounting station. Before mounting, the lifting mechanism lifts the tool 4 off the conveyor belt, and after mounting is completed, the lifting mechanism drops the tool 4 on the conveyor belt to perform overall transfer.

[0052] Combination Figure 5 As shown, in this embodiment, the mounting head 2 includes a mounting frame 22 , the suction head 20 and the presser 21 are mounted on the mounting frame 22 , and the mounting frame 22 is connected to the moving end of the moving component 5 .

[0053] Combination Figure 7 As shown, in this embodiment, the moving assembly 5 includes a three-axis robot arm for driving the mounting head 2 to move linearly along the x, y, and z axes. Specifically, the three-axis robot arm includes an x-direction moving module, a y-direction moving module, and a z-direction moving module. The y-direction moving module is installed on the moving assembly of the x-direction moving module, a pair of z-direction moving modules are installed on the moving assembly of the y-direction moving module, and a pair of arranged mounting heads 2 are respectively installed on the moving assemblies of a pair of z-direction moving modules. In this embodiment, a rotation drive device is also included between the moving assembly of the z-direction moving module and the mounting head 2. The rotation drive device is used to drive the mounting head 2 to rotate, and its rotation center line is parallel to the z direction. In one embodiment, the moving assembly 5 can be a joint robot arm. In other embodiments, the moving assembly 5 also includes a moving device for driving the workpiece 9 to move, and the mounting of the thermal conductive sheet is realized by moving the workpiece 9 to change the relative position relationship between the mounting head 2 and the workpiece 9.

[0054] Furthermore, in one embodiment (not shown), the mounting frame 22 is floatingly mounted on the moving end of the moving assembly 5 in a direction perpendicular to the nail suction surface 201, and an elastic element is provided between the mounting frame 22 and the moving end of the moving assembly 5, and the elastic element is used to apply an elastic force toward the nail suction surface 201 to the mounting frame 22. When the sheet material 101 is attached to the nail surface 901, the attachment head 2 moves as a whole toward the energy storage direction of the elastic element, and the attachment pressure applied by the elastic element can reduce the positioning accuracy when attaching the sheet material 101.

[0055] Combination Figure 5 and Figure 6 As shown, in this embodiment, the presser 21 includes a driver 214, which is transmission-connected to the plate frame 212. The driver 214 is used to drive the plate frame 212 to move so that the abutment plate 211 switches between state one and state two. When the abutment plate 211 is in state two, the abutment plate 211 retracts into the inner side of the suction surface A 201 and the suction surface B 202, and the corresponding suction head 20 is provided with a groove 203 for accommodating the abutment plate 211. When the abutment plate 211 is in state one, the front edge extends out of the groove 203.

[0056] In this embodiment, the driver 214 is a cylinder mounted on the mounting frame 22, the plate frame 212 is connected to the moving component of the driver 214 and is slidably connected to the fixed component of the driver 214, and a limit block 215 is installed on the plate frame 212. In this embodiment, the limit block 215 serves as a limit structure, and in a natural state, the elastic member 213 abuts against the limit block 215. In other embodiments, the plate frame 212 can be slidably connected to the mounting frame 22. In other embodiments, the inner edge of the groove 203 can serve as a limit structure.

[0057] A thermal conductive sheet three-dimensional mounting method based on a thermal conductive sheet three-dimensional mounting device comprises the following steps:

[0058] S1, taking materials, in the initial state, the sheet 1 101 and the sheet 2 102 are coplanar, and the attaching head 2 is relatively moved until the suction surface A 201 is facing and attached to the sheet 1 101, so as to absorb the thermal conductive sheet 1;

[0059] S2, folding edge, relatively moving the material attaching head 2 until the second sheet 102 is above the material folding roller 31, and the material folding roller 31 is facing the plate 211, relatively moving the material attaching head 2 to the material folding roller 31 to press the second sheet 102 from the root to the end onto the second suction surface 202, and the second sheet 102 is sucked by the second suction surface 202;

[0060] S3, stick the bottom surface, move the component 5 to move the sticking head 2 until the sheet 101 is facing and sticking to the surface A 901, and the heat conductive sheet 1 corresponding to the front edge position of the abutment plate 211 is pressed against the junction of the surface A 901 and the surface B 902. At this time, the sheet 2 102 and the surface B 902 are in a pre-pressing state; the pre-pressing state means that the sheet 2 102 and the surface B 902 are not tightly fitted or there is a gap.

[0061] S4, attaching the vertical surface, relatively moving the attaching head 2 to the front end of the abutment plate 211 to press the sheet 102 from the root to the end onto the second surface 902. During the attaching process of the vertical surface, the suction head 20 stops adsorbing the heat conducting sheet 1.

[0062] The adhesive layer may be pre-set on the thermal conductive sheet 1 or on the target surface 90 .

[0063] Combination Figure 3 , Figure 4 , Figure 8 and Fig. 9 As shown, in this embodiment, the adhesive layer is pre-set on the heat conductive sheet 1. The heat conductive sheet 1 is attached to the base film 60, the base film 60 is wound on the material tray 61, and the heat conductive sheet 1 is arranged along the extension direction of the base film 60.

[0064] It also includes a feeder 6, a material tray 61 is rotatably mounted on a frame of the feeder 6, and the feeder 6 includes:

[0065] The stripping knife 620 is mounted on the movable frame 62, and the bottom film 60 extends from the material tray 61 to cover the upper end surface and the front edge of the stripping knife 620;

[0066] A material receiving platform 63 is coplanar with the upper end surface of the stripping knife 620 and is located on the side of the front edge of the stripping knife 620, and a sensor is provided corresponding to the material receiving platform 63;

[0067] A pair of stretching rollers 64 are respectively mounted on the movable frame 62 and the frame of the feeder 6, and the base film 60 extending from the stripping knife 620 is wound around the pair of stretching rollers 64 in an S shape;

[0068] The reel 65 is driven to rotate, and the distal end of the base film 60 extending from the material roller 64 is wound around the reel 65 .

[0069] Based on the above device, the process of automatic loading includes the following steps:

[0070] S01: Pre-separation, the mobile frame 62 moves until the stripping knife 620 is close to the receiving platform 63, and the winding roller 65 rotates to drive the bottom film 60 to be transported toward the winding roller 65. During the transportation process, the bottom film 60 passing the front edge of the stripping knife 620 is separated from the thermal conductive sheet 1 attached to the upper end. The front end of the separated thermal conductive sheet 1 moves to a preset distance on the receiving platform 63 until it is detected by the sensor on the receiving platform 63, and the bottom film 60 is stopped from being transported;

[0071] S02: Sucking material, moving the mounting head 2 until the suction surface 201 is facing and attached to the sheet material 101, and sucking the thermal conductive sheet 1, at this time the mounting head 2 is pressed on the stripping knife 620 and the material receiving platform 63; in this process, the abutment plate 211 is in state two to prevent the abutment plate 211 from colliding with the upper end surface of the stripping knife 620; it should be noted that the abutment plate 211 is made of rigid material and the suction surface is made of flexible material.

[0072] S03: Stripping the material, the movable frame 62 moves toward the side away from the receiving platform 63 until the sucked thermal conductive sheet 1 is separated from the base film 60. During this process, a pair of tensioning rollers 64 move away from each other to tension the base film 60 to achieve automatic loading of the thermal conductive sheet 1.

[0073] Furthermore, the feeder 6 also includes a film pressing device 66 disposed between the material tray 61 and the movable frame 62. The film pressing device 66 includes a pair of plates driven to move relative to each other. The bottom film 60 passes through the pair of plates. After step S01 is executed, the pair of plates move relative to each other to press the bottom film 60 to limit the movement of the bottom film 60. Specifically, the pair of plates includes a support plate 661 fixed to the frame of the feeder 6 and a pressing plate 662 driven to move up and down by a cylinder. Specifically, the sensor on the material receiving platform 63 is an optical fiber sensor longitudinally disposed on the material receiving platform 63, and the material receiving platform 63 is provided with a perforation corresponding to the optical fiber sensor.

[0074] The technical principles of the present invention are described above in conjunction with specific embodiments. These descriptions are only for explaining the principles of the present invention and cannot be interpreted as limiting the scope of protection of the present invention in any way. Based on the explanations herein, those skilled in the art can associate other specific implementations of the present invention without creative work, and these methods will fall within the scope of protection of the present invention.

Claims

1. A thermal conductive sheet three-dimensional mounting device, characterized in that: Used to attach a heat conducting sheet (1) to a target surface (90) of a workpiece (9), the target surface (90) comprising a surface A (901) and a surface B (902) connected to the surface A (901), the heat conducting sheet (1) comprising a sheet material 1 (101) and a sheet material 2 (102) respectively adapted to and connected to the surface A (901) and the surface B (902), an adhesive layer being provided between the target surface (90) and the heat conducting sheet (1), and further comprising: A material pasting head (2), the material pasting head (2) comprising a suction head (20) and a material presser (21), the suction head (20) being provided with a first suction surface (201) and a second suction surface (202) corresponding to the first surface (901) and the second surface (902) and provided with suction holes, the first suction surface (201) and the second suction surface (202) being used to adsorb sheet material 1 (101) and sheet material 2 (102), respectively, the material presser (21) comprising a stop plate (211), the stop plate (211) comprising a state 1 in which the front edge is located at the junction of the first suction surface (201) and the second suction surface (202); A moving component (5) for moving the placement head (2) and / or the workpiece (9); When the attaching head (2) that absorbs the heat conducting sheet (1) moves relatively until the sheet (101) faces and fits the first surface (901), the heat conducting sheet (1) corresponding to the front edge of the abutment plate (211) is abutted against the junction of the first surface (901) and the second surface (902), and then the attaching head (2) moves relatively in the extension direction of the second surface (902) so that the abutment plate (211) presses the second sheet (102) from the root to the end onto the second surface (902); In the corresponding state, the front edge of the first push plate (211) protrudes from the second suction surface (202), and the material presser (21) further comprises a plate frame (212), the push plate (211) is rotatably mounted on the plate frame (212), and an elastic member (213) is provided between the plate frame (212) and the push plate (211). When the push plate (211) presses the second sheet (102) from the root to the end onto the second surface (902), the elastic member (213) is used to apply an elastic force to the push plate (211) to rotate in a direction of contacting the second surface (902). A limiting structure is also provided on the material pasting head (2), and in the natural state, the elastic member (213) pushes the push plate (211) against the limiting structure. In a natural state, the sheet material 1 (101) and the sheet material 2 (102) are coplanar, and further include a folding frame (3). The folding frame (3) is provided with a folding roller (31) adapted to the width of the sheet material 2 (102). After the suction surface A (201) absorbs the sheet material 1 (101), the folding roller (31) is used to press the sheet material 2 (102) onto the surface B (902) during the relative movement of the folding frame (3) and the material attaching head (2).

2. The thermal conductive sheet three-dimensional mounting device according to claim 1, characterized in that: The folding frame (3) comprises a frame body (32), a roller seat (33) being slidably connected to the frame body (32) in a horizontal direction, the folding roller (31) being rotatably mounted at one end of the roller seat (33) in a sliding direction, and a second elastic member (34) being provided between the roller seat (33) and the frame body (32), the second elastic member (34) being used to apply an elastic force to the roller seat (33) towards one side of the folding roller (31).

3. The thermal conductive sheet three-dimensional mounting device according to claim 1, characterized in that: It also includes a tool (4), on which a groove cavity (40) for receiving and locking a workpiece (9) is provided, and when the workpiece (9) is placed in the groove cavity (40) at the mounting station, the first surface (901) faces upward.

4. The thermal conductive sheet three-dimensional mounting device according to claim 1, characterized in that: The material attaching head (2) comprises a mounting frame (22), the suction head (20) and the material pressing device (21) are mounted on the mounting frame (22), and the mounting frame (22) is connected to the moving end of the moving component (5).

5. The thermal conductive sheet three-dimensional mounting device according to claim 1, characterized in that: The material press (21) comprises a driver (214) which is in transmission connection with the plate frame (212). The driver (214) is used to drive the plate frame (212) to move so that the abutting plate (211) switches between state one and state two. When the abutting plate (211) is in state two, the abutting plate (211) is retracted into the inner side of the first suction surface (201) and the second suction surface (202). A groove (203) for accommodating the abutting plate (211) is provided on the inner side suction head (20) corresponding to the first suction surface (201) and the second suction surface (202). When the abutting plate (211) is in state one, the front edge extends out of the groove (203).

6. A method for three-dimensional mounting of a thermal conductive sheet, based on the three-dimensional mounting device of a thermal conductive sheet according to claim 1, characterized in that: The steps include: S1, taking the material. In the initial state, the sheet material 1 (101) and the sheet material 2 (102) are coplanar, and the material attaching head (2) is relatively moved until the first suction surface (201) faces and attaches to the sheet material 1 (101), so as to absorb the heat conducting sheet (1); S2, folding the edge, relatively moving the material pasting head (2) until the second sheet (102) is above the material folding roller (31), and the material folding roller (31) is directly opposite to the abutment plate (211), relatively moving the material pasting head (2) until the material folding roller (31) presses the second sheet (102) onto the second suction surface (202) from the root to the end, and the second sheet (102) is sucked by the second suction surface (202); S3, attaching the bottom surface, the moving component (5) moves the attaching head (2) until the sheet material 1 (101) is facing and attached to the surface A (901), and the heat conducting sheet (1) corresponding to the front edge position of the abutment plate (211) is abutted against the junction of the surface A (901) and the surface B (902), and at this time, the sheet material 2 (102) and the surface B (902) are in a pre-pressed state; S4, pasting the vertical surface, relatively moving the pasting head (2) until the front end of the abutment plate (211) presses the second sheet (102) onto the second surface (902) from the root to the end.

Citation Information

Patent Citations

  • Automatic pasting processing system

    CN216343251U