A vacuum laminating platform device for ultra-thin film

The vacuum bonding platform device, which combines a steel mesh assembly with a vacuum pump, solves the problem of low product yield caused by vacuum hole imprinting, and achieves efficient film bonding and continuous production.

CN120572728BActive Publication Date: 2025-10-03SHENZHEN PINGXIAN OPTOELECTRONICS EQUIP
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Patent Information

Application Number
CN202511074567.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-01
Publication Date
2025-10-03
Estimated Expiration
2045-08-01

AI Technical Summary

Technical Problem

Existing vacuum lamination platforms easily leave vacuum hole marks when adsorbing ultra-thin film materials, resulting in low product yield and requiring additional degassing steps, affecting efficiency.

Method used

The steel mesh assembly is used for film adsorption, combined with a vacuum pump and sealing structure to ensure that the film is tightly fitted in a vacuum environment. The force-bearing components are used to achieve convenient unloading and storage, avoiding vacuum hole marks and improving the bonding yield and efficiency.

Benefits of technology

It achieves membrane adsorption without pore imprinting, improves product yield, and improves production efficiency through continuous operation, simplifies the process, and improves overall production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of vacuum bonding technology for ultra-thin film materials, and discloses a vacuum bonding platform device for ultra-thin film materials, comprising a base, a cylindrical rod fixedly connected to the top of the base, a heating rack fixedly connected to the top of the cylindrical rod, a support plate fixedly connected to the surface of the heating rack, a loading rack and a storage rack fixedly connected to the top of the support plate, an air pump fixedly connected to the top of the base, and a bonding component provided on the top of the heating rack. After the present invention places the film material inside the loading rack, it starts the power device to start the operation. The power device drives the threaded rod to rotate inside the slide rack. When the threaded rod rotates, it pushes the slider to move inside the slide rack and drives the disc to move. When the disc moves to the top of the loading rack, it starts the electric push rod to push the sealing plate downward. When the sealing plate moves downward, it pushes the steel mesh assembly to the inside of the loading rack. Then, it starts the air pump to start the operation. The suction generated by the air pump is transmitted to the inside of the vertical pipe through the air inlet pipe.
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Description

Technical Field

[0001] The present invention relates to the technical field of vacuum lamination of ultra-thin film materials, and in particular to a vacuum lamination platform device for ultra-thin film materials. Background Art

[0002] Vacuum lamination of membrane materials is a process that achieves a tight fit between the membrane material and the substrate in a vacuum environment. Specifically, the membrane material is heated and softened in a vacuum environment, and then a vacuum pump is used to remove the air between the membrane material and the substrate, allowing the two to fit tightly together under atmospheric pressure.

[0003] The vacuum bonding platforms currently on the market mainly rely on suction holes to adsorb ultra-thin film materials. However, when the material is thin, the product will be adsorbed with vacuum hole marks, resulting in a low product yield. The next step requires degassing treatment, which affects the yield and efficiency. Summary of the Invention

[0004] The object of the present invention is to provide a vacuum lamination platform device for ultra-thin film materials to solve the problems raised in the above background technology.

[0005] To solve the above technical problems, the present invention is achieved through the following technical solutions:

[0006] The present invention discloses a vacuum laminating platform device for ultra-thin film materials, comprising a base, a cylindrical rod fixedly connected to the top of the base, a heating rack fixedly connected to the top of the cylindrical rod, a carrying plate fixedly connected to the surface of the heating rack, a loading rack and a storage rack fixedly connected to the top of the carrying plate, respectively, an air pump fixedly connected to the top of the base, a laminating component provided on the top of the heating rack, a carrying component provided on the surface of the heating rack, and a force-bearing component provided on the surface of the carrying component;

[0007] The fitting component includes a fixing plate, an end portion of the fixing plate is fixedly connected to the surface of the heating frame, an end of the fixing plate away from the heating frame is fixedly connected to a slide frame, the surface of the fixing plate is fixedly connected to a support plate, an end of the support plate away from the fixing plate is fixedly connected to a power device, the inner wall of the slide frame is slidably connected to a slider, the surface of the slider is fixedly connected to a disc, the top of the disc is fixedly connected to a bent plate, the end of the bent plate away from the disc is fixedly connected to an electric push rod, a limiting hole is provided at the bottom of the disc, the bottom of the electric push rod is fixedly connected to a sealing plate, the bottom of the sealing plate is fixedly connected to a steel mesh assembly, and the bottom of the sealing plate is provided with a through hole.

[0008] Furthermore, a vertical pipe is fixedly connected to the bottom of the heating rack, an air intake pipe is fixedly connected to the bottom of the vertical pipe, an end of the air intake pipe is connected to the air intake end of the air pump, a curved pipe is connected to the surface of the curved pipe, an end of the curved pipe away from the vertical pipe is connected to a telescopic circular pipe, an end of the telescopic circular pipe away from the curved pipe is connected to a telescopic pipe, the bottom of the telescopic pipe is connected to the top of the sealing plate, a threaded rod is rotatably connected to the inner wall of the slide frame, and an end of the threaded rod is fixedly connected to the output end of the power device.

[0009] Furthermore, there are two slide racks, which are symmetrically arranged with the heating rack as the center. The slide rack is located above the heating rack, and the end of the threaded rod close to the power device passes through the slide rack and extends to the outer end of the slide rack.

[0010] Furthermore, the disc is located at one end where the two slide frames are close to each other, the inner wall of the slider is threadedly connected to the surface of the threaded rod, the surface of the sealing plate is in contact with the inner wall of the limiting hole, the steel mesh assembly is connected to the sealing plate through a through hole, and the bottom of the electric push rod passes through the disc and extends to the inside of the limiting hole.

[0011] Furthermore, the supporting component includes a suction hole plate, the bottom of the suction hole plate is fixedly connected to a sliding rod, the bottom of the sliding rod is fixedly connected to a linkage plate, the surface of the linkage plate is fixedly connected to a synchronization plate, the top of the synchronization plate is fixedly connected to an elastic rod, the top of the elastic rod is fixedly connected to the bottom of the heating rack, a sealing groove is provided on the top of the heating rack, and a fitting groove is provided inside the heating rack.

[0012] Furthermore, the surface of the suction hole plate contacts the inner wall of the fitting groove, the surface of the sealing plate matches the inner wall of the sealing groove, and the bottom of the sliding rod passes through the heating rack and extends to the outer end of the heating rack.

[0013] Furthermore, there are four sliding rods, which are located at the four corners of the bottom of the heating rack. The bottom of the suction plate contacts the bottom of the inner wall of the bonding groove, and the top of the vertical tube is connected to the interior of the bonding groove.

[0014] Furthermore, the force-bearing component includes a force-bearing plate, the end of the force-bearing plate is fixedly connected to the surface of the linkage plate, the top of the force-bearing plate is fixedly connected to a bracket, the inner wall of the bracket is rotatably connected to a roller rod, the bottom of the slider is fixedly connected to a mounting plate, the surface of the mounting plate is fixedly connected to a positioning plate, the end of the positioning plate away from the mounting plate is fixedly connected to an inclined plate, the surface of the disc is fixedly connected to a movable plate, and the end of the movable plate away from the disc is fixedly connected to a push plate.

[0015] Furthermore, the top of the rolling rod and the top of the heating rack are arranged horizontally, and the top of the rolling rod contacts the bottom of the inclined panel.

[0016] Furthermore, there are two inclined panels, which are symmetrically arranged with the disc as the center, the bottom of the push plate corresponds to the top of the heating rack, and the inclined surface of the inclined panel is located at one end of the inclined panel close to the push plate.

[0017] The present invention has the following beneficial effects:

[0018] After the film material is placed inside the loading rack, the power device is started to start the operation. The power device drives the threaded rod to rotate inside the slide rack. When the threaded rod rotates, it pushes the slider to move inside the slide rack and drives the disc to move. When the disc moves to the top of the loading rack, the electric push rod is started to push the sealing plate downward. When the sealing plate moves downward, it pushes the steel mesh assembly to the inside of the loading rack, and the air pump is started to start the operation. The suction generated by the air pump is transmitted to the inside of the vertical pipe through the air inlet pipe, and the suction is transmitted to the inside of the sealing plate through the connection between the bent pipe and the telescopic pipe. The suction is transmitted to the inside of the steel mesh assembly through the through hole. At this time, the steel mesh assembly can suck the film material by suction. The attachment is fixed to improve the convenience of loading the membrane material. The steel mesh assembly has the effect of no obvious vacuum holes. The adsorbed product can leave no hole marks, avoiding the residual vacuum hole marks on the surface of the membrane material, which leads to a decrease in the yield of the product. When the disc moves to the top of the heating rack, the product that needs to be bonded to the membrane material is placed inside the heating rack. The electric push rod is started again to push the steel mesh assembly into the interior of the heating rack. The membrane material is bonded to the surface of the product through the steel mesh assembly. At the same time, the surface of the sealing plate will contact the inner wall of the sealing groove to seal the heating rack, so that the gas in the heating rack will enter the interior of the air pump through the vertical pipe and be discharged, so that the interior of the heating rack is a vacuum environment, thereby improving the product bonding yield.

[0019] When the disc of the present invention moves to the top of the heating rack, it will drive the force-bearing component to squeeze the bearing component. The force-bearing component pushes the synchronous plate to move downward through the connecting plate. When the synchronous plate moves, it will pull the elastic rod to move downward. At the same time, the connecting plate pushes the suction hole plate to move downward through the sliding rod. The product is supported and limited by the suction hole plate. The suction hole plate moves to the top of the heating rack to facilitate unloading of the bonded product. The suction force in the vertical pipe will enter the interior of the bonding groove through the suction hole plate. The air in the bonding groove will be discharged through the suction hole plate to form a vacuum chamber.

[0020] After the steel mesh assembly of the present invention has bonded the film material to the surface of the product, the air pump operation is stopped, and the electric push rod will push the steel mesh assembly upward and separate from the inside of the heating rack. At this time, the threaded rod pushes the disc to move in the direction of the upper material rack. When the disc moves, it pushes the inclined plate to separate from the top of the roller rod through the positioning plate. At this time, the elastic rod uses its elasticity to push the synchronous plate upward, and the suction hole plate pushes the product to the top of the heating rack as the synchronous plate moves. When the bottom of the push plate contacts the top of the heating rack, the push plate pushes the bonded product into the interior of the storage rack for storage as the disc moves, thereby improving the convenience of product unloading, so that the film material can be continuously bonded to improve work efficiency.

[0021] Of course, any product implementing the present invention does not necessarily need to achieve all of the advantages described above at the same time. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0024] Figure 2 This is a schematic diagram of the structure of the load-bearing plate of the present invention;

[0025] Figure 3 Schematic diagram of the overall structure of the bonding component of the present invention;

[0026] Figure 4 This is another structural schematic diagram of the laminating component of the present invention;

[0027] Figure 5 This is a schematic diagram of the cross-sectional structure of the disc of the present invention;

[0028] Figure 6 This is a schematic diagram of the overall structure of the load-bearing component of the present invention;

[0029] Figure 7 Schematic diagram of the overall structure of the load-bearing component of the present invention;

[0030] Figure 8 For the present invention Figure 7 A magnified schematic diagram of part A in FIG.

[0031] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0032] In the figure: 1. Heating rack; 2. Base; 3. Cylindrical rod; 4. Loading plate; 5. Storage rack; 6. Loading rack; 7. Air pump; 8. Laminating component; 9. Loading component; 10. Force-bearing component; 20. Fixing plate; 21. Support plate; 22. Power device; 23. Bending plate; 24. Telescopic round tube; 25. Bending tube; 26. Electric push rod; 27. Disc; 28. Slide rack; 29. ​​Threaded rod; 30. Telescopic tube; 31. Limiting hole; 32. Air intake pipe; 33. Vertical pipe; 34. Steel mesh assembly; 35. Sealing plate; 36. Slider; 37. Through hole; 40. Sealing groove; 41. Suction plate; 42. Fitting groove; 43. Slide rod; 44. Elastic rod; 45. Synchronous plate; 46. Interlocking plate; 50. Push plate; 51. Mounting plate; 52. Moving plate; 53. Positioning plate; 54. Inclined plate; 55. Force plate; 56. Bracket; 57. Rolling rod. DETAILED DESCRIPTION

[0033] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0034] See also Figures 1-8 As shown, the present invention is a vacuum bonding platform device for ultra-thin film materials, comprising a base 2, a cylindrical rod 3 fixedly connected to the top of the base 2, a heating rack 1 fixedly connected to the top of the cylindrical rod 3, a carrying plate 4 fixedly connected to the surface of the heating rack 1, a loading rack 6 and a storage rack 5 fixedly connected to the top of the carrying plate 4, an air pump 7 fixedly connected to the top of the base 2, a bonding component 8 provided on the top of the heating rack 1, a carrying component 9 provided on the surface of the heating rack 1, and a force-bearing component 10 provided on the surface of the carrying component 9;

[0035] The laminating component 8 includes a fixed plate 20, the end of the fixed plate 20 is fixedly connected to the surface of the heating frame 1, and the end of the fixed plate 20 away from the heating frame 1 is fixedly connected to the slide frame 28. After the film material is placed inside the loading rack 6, the power device 22 is started to start the operation. The power device 22 will drive the threaded rod 29 to rotate inside the slide frame 28. The surface of the fixed plate 20 is fixedly connected to the support plate 21, and the end of the support plate 21 away from the fixed plate 20 is fixedly connected to the power device 22. When the threaded rod 29 rotates, it pushes the slider 36 to move inside the slide frame 28 and drives the disc 27 to move. When the disc 27 moves to the top of the loading rack 6, the inner wall of the slide frame 28 is slidably connected to the slider 36. The surface of the slider 36 The surface is fixedly connected with a disc 27, and the top of the disc 27 is fixedly connected with a bent plate 23. The electric push rod 26 is started to push the sealing plate 35 to move downward. When the sealing plate 35 moves downward, it pushes the steel mesh assembly 34 to move to the inside of the loading rack 6. The end of the bent plate 23 away from the disc 27 is fixedly connected with the electric push rod 26. A limiting hole 31 is provided at the bottom of the disc 27. The bottom of the electric push rod 26 is fixedly connected with the sealing plate 35. The air pump 7 is started to start operation. The suction generated by the air pump 7 is transmitted to the inside of the vertical pipe 33 through the air inlet pipe 32. The suction is transmitted to the inside of the sealing plate 35 through the connection between the bent pipe 25 and the telescopic tube 30. The bottom of the sealing plate 35 is fixedly connected with the steel mesh assembly 34, and the bottom of the sealing plate 35 is provided with a through hole 37.

[0036] The bottom of the heating frame 1 is fixedly connected to a vertical pipe 33, and the bottom of the vertical pipe 33 is fixedly connected to an air intake pipe 32. The end of the air intake pipe 32 is communicated with the air intake end of the air pump 7, and the suction force is transmitted to the interior of the steel mesh assembly 34 through the through hole 37. At this time, the steel mesh assembly 34 can adsorb and fix the film material by suction.

[0037] There are two slide racks 28, which are symmetrically arranged with the heating rack 1 as the center. The slide rack 28 is located above the heating rack 1. The film material is attached to the surface of the product through the steel mesh assembly 34. At the same time, the surface of the sealing plate 35 will contact the inner wall of the sealing groove 40 to seal the heating rack 1. The end of the threaded rod 29 close to the power device 22 passes through the slide rack 28 and extends to the outer end of the slide rack 28.

[0038] The disc 27 is located at one end where the two slide frames 28 are close to each other. The inner wall of the slider 36 is threadedly connected to the surface of the threaded rod 29. The surface of the sealing plate 35 contacts the inner wall of the limiting hole 31. The steel mesh assembly 34 is connected to the sealing plate 35 through the through hole 37. The bottom of the electric push rod 26 passes through the disc 27 and extends to the inside of the limiting hole 31.

[0039] The bearing component 9 includes a suction hole plate 41, the bottom of the suction hole plate 41 is fixedly connected to a slide rod 43, the bottom of the slide rod 43 is fixedly connected to a linkage plate 46, when the disc 27 moves to the top of the heating rack 1, it will drive the force-bearing component 10 to squeeze the bearing component 9, the surface of the linkage plate 46 is fixedly connected to a synchronization plate 45, the top of the synchronization plate 45 is fixedly connected to an elastic rod 44, the force-bearing component 10 pushes the synchronization plate 45 to move downward through the linkage plate 46, and the synchronization plate 45 will pull the elastic rod 44 downward when moving, and the top of the elastic rod 44 is fixedly connected to the bottom of the heating rack 1, a sealing groove 40 is provided on the top of the heating rack 1, and a fitting groove 42 is provided inside the heating rack 1.

[0040] The surface of the suction plate 41 contacts the inner wall of the fitting groove 42, and at the same time the linkage plate 46 pushes the suction plate 41 downward through the slide rod 43, and the product is supported and limited by the suction plate 41. The surface of the sealing plate 35 is adapted to the inner wall of the sealing groove 40, and the bottom of the slide rod 43 passes through the heating rack 1 and extends to the outer end of the heating rack 1.

[0041] There are four sliding bars 43, which are located at the four corners of the bottom of the heating rack 1. The suction plate 41 moves to the top of the heating rack 1 to facilitate unloading of the bonded product. The suction force in the vertical tube 33 will enter the interior of the bonding groove 42 through the suction plate 41. The bottom of the suction plate 41 contacts the bottom of the inner wall of the bonding groove 42, and the top of the vertical tube 33 is connected to the interior of the bonding groove 42.

[0042] The force-bearing component 10 includes a force-bearing plate 55, the end of the force-bearing plate 55 is fixedly connected to the surface of the linkage plate 46, and the top of the force-bearing plate 55 is fixedly connected to a bracket 56. After the steel mesh assembly 34 adheres the film material to the surface of the product, the air pump 7 stops operating, and the electric push rod 26 pushes the steel mesh assembly 34 to move upward and separate from the inside of the heating rack 1. The inner wall of the bracket 56 is rotatably connected to a roller 57, and the bottom of the slider 36 is fixedly connected to the mounting plate 51, and the surface of the mounting plate 51 is fixedly connected to the positioning plate 53. At this time, the threaded rod 29 pushes the disc 27 to move in the direction of the upper material rack 6. When the disc 27 moves, it pushes the inclined plate 54 to separate from the top of the roller 57 through the positioning plate 53. The end of the positioning plate 53 away from the mounting plate 51 is fixedly connected to the inclined plate 54, and the surface of the disc 27 is fixedly connected to the moving plate 52, and the end of the moving plate 52 away from the disc 27 is fixedly connected to the push plate 50.

[0043] The top of the roller 57 is horizontally arranged with the top of the heating rack 1. At this time, the elastic rod 44 uses its elasticity to push the synchronous plate 45 upward. The suction hole plate 41 pushes the product to the top of the heating rack 1 as the synchronous plate 45 moves. The top of the roller 57 contacts the bottom of the inclined plate 54.

[0044] There are two inclined panels 54. When the bottom of the push plate 50 contacts the top of the heating rack 1, the push plate 50 pushes the bonded product into the storage rack 5 for storage as the disc 27 moves. The two inclined panels 54 are symmetrically arranged with the disc 27 as the center. The bottom of the push plate 50 corresponds to the top of the heating rack 1, and the inclined surface of the inclined panel 54 is located at the end of the inclined panel 54 close to the push plate 50.

[0045] When in use, after placing the film material inside the loading rack 6, start the power device 22 to start operation. The power device 22 will drive the threaded rod 29 to rotate inside the slide rack 28. When the threaded rod 29 rotates, it pushes the slider 36 to move inside the slide rack 28 and drives the disc 27 to move. When the disc 27 moves to the top of the loading rack 6, the electric push rod 26 is started to push the sealing plate 35 to move downward. When the sealing plate 35 moves downward, it pushes the steel mesh assembly 34 to move to the inside of the loading rack 6. Then, start the air pump 7 to start operation. The suction generated by the air pump 7 is transmitted to the inside of the vertical pipe 33 through the air inlet pipe 32. The suction is transmitted to the inside of the sealing plate 35 through the connection between the elbow 25 and the telescopic tube 30. The suction is transmitted to the inside of the sealing plate 35 through the through hole 37. The steel mesh assembly 34 can absorb and fix the membrane material by suction, thereby improving the convenience of loading the membrane material. The steel mesh assembly 34 has the effect of no obvious vacuum holes, and the adsorbed product can have no hole imprint, thereby avoiding the imprint of vacuum holes remaining on the surface of the membrane material, which leads to a decrease in the yield of the product. After the disc 27 moves to the top of the heating rack 1, the product to be laminated with the membrane material is placed inside the heating rack 1, and the electric push rod 26 is started again to push the steel mesh assembly 34 into the interior of the heating rack 1. The membrane material is laminated to the surface of the product through the steel mesh assembly 34, and at the same time, the surface of the sealing plate 35 contacts the inner wall of the sealing groove 40 to seal the heating rack 1, so that the gas in the heating rack 1 enters the interior of the air pump 7 through the vertical pipe 33 and is discharged. The interior of the heating rack 1 is in a vacuum environment, which improves the product bonding yield. When the disc 27 moves to the top of the heating rack 1, it drives the force-bearing component 10 to squeeze the bearing component 9. The force-bearing component 10 pushes the synchronous plate 45 downward through the linkage plate 46. The synchronous plate 45 pulls the elastic rod 44 downward when it moves. At the same time, the linkage plate 46 pushes the suction plate 41 downward through the slide bar 43, and the product is supported and limited by the suction plate 41. The suction plate 41 moves to the top of the heating rack 1 to facilitate the unloading of the bonded product. The suction force in the vertical pipe 33 enters the interior of the bonding groove 42 through the suction plate 41. The air in the bonding groove 42 is discharged through the suction plate 41 to form a vacuum cavity. The steel mesh assembly 34 bonds the film material After the surface of the product, stop the air pump 7, the electric push rod 26 will push the steel mesh assembly 34 to move upward and separate from the inside of the heating rack 1. At this time, the threaded rod 29 pushes the disc 27 to move in the direction of the upper material rack 6. When the disc 27 moves, it pushes the inclined plate 54 to separate from the top of the roller 57 through the positioning plate 53. At this time, the elastic rod 44 uses its elasticity to push the synchronous plate 45 upward, and the suction hole plate 41 pushes the product to the top of the heating rack 1 as the synchronous plate 45 moves. When the bottom of the push plate 50 contacts the top of the heating rack 1, the push plate 50 pushes the bonded product into the storage rack 5 for storage as the disc 27 moves, thereby improving the convenience of the product when unloading, so that the film material can be continuously bonded to improve the working efficiency.

[0046] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to the specific embodiments described. Obviously, many modifications and variations are possible based on the content of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. A vacuum laminating platform device for ultra-thin film materials, comprising a base (2), the top of the base (2) is fixedly connected to a cylindrical rod (3), the top of the cylindrical rod (3) is fixedly connected to a heating rack (1), the surface of the heating rack (1) is fixedly connected to a carrying plate (4), the top of the carrying plate (4) is respectively fixedly connected to a loading rack (6) and a storage rack (5), the top of the base (2) is fixedly connected to an air pump (7), characterized in that: The top of the heating frame (1) is provided with a fitting component (8), the surface of the heating frame (1) is provided with a bearing component (9), and the surface of the bearing component (9) is provided with a force-bearing component (10); The fitting component (8) includes a fixed plate (20), an end of the fixed plate (20) is fixedly connected to the surface of the heating frame (1), an end of the fixed plate (20) away from the heating frame (1) is fixedly connected to a chute frame (28), a surface of the fixed plate (20) is fixedly connected to a support plate (21), an end of the support plate (21) away from the fixed plate (20) is fixedly connected to a power device (22), an inner wall of the chute frame (28) is slidably connected to a slider (36), a surface of the slider (36) is fixedly connected to a disk (27), a top of the disk (27) is fixedly connected to a bent plate (23), an end of the bent plate (23) away from the disk (27) is fixedly connected to an electric push rod (26), a bottom of the disk (27) is provided with a limiting hole (31), and the bottom of the electric push rod (26) is fixedly connected to a sealing plate (35 ), the bottom of the sealing plate (35) is fixedly connected to a steel mesh assembly (34), the bottom of the sealing plate (35) is provided with a through hole (37), the bottom of the heating frame (1) is fixedly connected to a vertical pipe (33), the bottom of the vertical pipe (33) is fixedly connected to an air intake pipe (32), the end of the air intake pipe (32) is connected to the air intake end of the air pump (7), the surface of the vertical pipe (33) is connected to a bend pipe (25), the end of the bend pipe (25) away from the vertical pipe (33) is connected to a telescopic circular pipe (24), the end of the telescopic circular pipe (24) away from the bend pipe (25) is connected to a telescopic pipe (30), the bottom of the telescopic pipe (30) is connected to the top of the sealing plate (35), the inner wall of the slide frame (28) is rotatably connected to a threaded rod (29), the end of the threaded rod (29) is fixedly connected to the output end of the power device (22); The bearing component (9) includes a suction hole plate (41), the bottom of the suction hole plate (41) is fixedly connected to a slide rod (43), the bottom of the slide rod (43) is fixedly connected to a linkage plate (46), the surface of the linkage plate (46) is fixedly connected to a synchronization plate (45), the top of the synchronization plate (45) is fixedly connected to an elastic rod (44), the top of the elastic rod (44) is fixedly connected to the bottom of the heating frame (1), the top of the heating frame (1) is provided with a sealing groove (40), and the interior of the heating frame (1) is provided with a fitting groove (42); The force-bearing component (10) includes a force-bearing plate (55), the end of the force-bearing plate (55) is fixedly connected to the surface of the linkage plate (46), the top of the force-bearing plate (55) is fixedly connected to a bracket (56), the inner wall of the bracket (56) is rotatably connected to a roller (57), the bottom of the slider (36) is fixedly connected to a mounting plate (51), the surface of the mounting plate (51) is fixedly connected to a positioning plate (53), the end of the positioning plate (53) away from the mounting plate (51) is fixedly connected to an inclined plate (54), the surface of the disc (27) is fixedly connected to a movable plate (52), and the end of the movable plate (52) away from the disc (27) is fixedly connected to a push plate (50).

2. The vacuum laminating platform device for ultra-thin film according to claim 1, characterized in that: There are two slide racks (28), and the two slide racks (28) are symmetrically arranged with the heating rack (1) as the center. The slide rack (28) is located above the heating rack (1), and the end of the threaded rod (29) close to the power device (22) passes through the slide rack (28) and extends to the outer end of the slide rack (28).

3. The vacuum laminating platform device for ultra-thin film according to claim 2, characterized in that: The disc (27) is located at one end where the two slide frames (28) are close to each other, the inner wall of the slider (36) is threadedly connected to the surface of the threaded rod (29), the surface of the sealing plate (35) is in contact with the inner wall of the limiting hole (31), the steel mesh assembly (34) is connected to the sealing plate (35) through the through hole (37), and the bottom of the electric push rod (26) passes through the disc (27) and extends to the inside of the limiting hole (31).

4. The vacuum laminating platform device for ultra-thin film according to claim 3, characterized in that: The surface of the suction hole plate (41) contacts the inner wall of the fitting groove (42), the surface of the sealing plate (35) matches the inner wall of the sealing groove (40), and the bottom of the sliding rod (43) passes through the heating rack (1) and extends to the outer end of the heating rack (1).

5. The vacuum laminating platform device for ultra-thin film according to claim 4, characterized in that: There are four slide bars (43), which are located at the four corners of the bottom of the heating rack (1). The bottom of the suction plate (41) contacts the bottom of the inner wall of the bonding groove (42), and the top of the vertical tube (33) is connected to the inside of the bonding groove (42).

6. The vacuum laminating platform device for ultra-thin film according to claim 5, characterized in that: The top of the rolling rod (57) and the top of the heating rack (1) are arranged horizontally, and the top of the rolling rod (57) contacts the bottom of the inclined panel (54).

7. The vacuum laminating platform device for ultra-thin film according to claim 6, characterized in that: There are two inclined panels (54), which are symmetrically arranged with the disk (27) as the center. The bottom of the push plate (50) corresponds to the top of the heating rack (1), and the inclined surface of the inclined panel (54) is located at one end of the inclined panel (54) close to the push plate (50).

Citation Information

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