Full-automatic laminator for display screen assembly

The design of the fully automatic laminating machine has achieved full automation of the display screen adhesive application and lamination process, solving the problem of low automation level and improving production efficiency and quality.

CN224348408UActive Publication Date: 2026-06-12冠威科技(武汉)有限公司

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
冠威科技(武汉)有限公司
Filing Date
2025-06-09
Publication Date
2026-06-12

AI Technical Summary

Technical Problem

Existing screen adhesive and laminating equipment has a low degree of automation and requires a lot of manual intervention, resulting in low production efficiency and poor precision and quality.

Method used

Design a fully automatic laminating machine, including a frame, a feeding conveyor belt, a discharging conveyor belt, a platform assembly, an adhesive applicator, a laminating device, a flipping mechanism, a transfer device, and a rotating mechanism, to achieve fully automated processing of the display screen and reduce manual intervention and errors.

Benefits of technology

The process of applying adhesive and laminating film to the display screen has been fully automated, which has improved production efficiency, reduced errors introduced by manual operation, and ensured the accuracy and quality of adhesive application and lamination.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a full -automatic laminating machine for display screen assembly, including gantry, feeding belt line and discharging belt line. Still include platform subassembly, and its first platform and second platform can reciprocate along Y axle, and initial position is adjacent feeding belt line output respectively and discharging belt line input, and terminal position corresponds respectively to rubberizing device and laminating device, and turnover mechanism is located between first platform and second platform initial position, receives rubberizing display screen and turns over to second platform initial position, and transfer device is straddled feeding belt line output, first platform initial position and turnover mechanism top, can move display screen to corresponding position along X axle, and rotating mechanism is located between second platform initial position and discharging belt line input, and transfers display screen of laminating completion to discharging belt line input. The utility model discloses a full -automatic laminating machine for display screen assembly can realize display screen rubberizing, turning over, laminating and the automation process of transfer, improves production quality and assembly efficiency.
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Description

Technical Field

[0001] This application relates to the field of display assembly equipment technology, and in particular to a fully automatic laminating machine for display assembly. Background Technology

[0002] During the production and assembly of displays, adhesive application and film coating are typically performed to protect the display surface and facilitate subsequent assembly. Adhesive application involves applying tape to the bonding surfaces of the display to facilitate connection or fixation with other components. Film coating involves covering the display surface with a protective film to prevent scratches, contamination, or other damage during transportation and installation.

[0003] Currently, existing display screen adhesive application and lamination equipment has some shortcomings. For example, some equipment has a low degree of automation, requiring significant manual intervention in processes such as manual material loading and manual transfer of the display screen. This not only increases labor costs but also leads to low production efficiency. Furthermore, manual operation may introduce errors, affecting the accuracy and quality of adhesive application and lamination. In addition, some equipment has an unreasonable structural design, and the coordination between various functional components is not smooth, resulting in an incoherent production process and making it difficult to achieve efficient fully automated production. Utility Model Content

[0004] The purpose of this invention is to provide a fully automatic laminating machine for display screen assembly, which aims to solve the problems of low automation, low production efficiency and low quality in the process of applying adhesive and laminating film to display screens.

[0005] One technical solution disclosed in this utility model is:

[0006] A fully automatic laminating machine for display screen assembly includes a frame, an infeed conveyor belt for conveying the display screen at one end of the frame and an outfeed conveyor belt at the other end of the frame, and further includes:

[0007] The platform component includes a first platform and a second platform arranged in parallel and spaced apart. The first platform is initially positioned adjacent to the output end of the feeding conveyor belt, and the second platform is initially positioned adjacent to the input end of the unloading conveyor belt. The first platform and the second platform can reciprocate along the Y-axis direction.

[0008] An adhesive applicator is positioned at the end position of the first platform and is used to apply adhesive to the bonding surface of the display screen that has moved to the end position.

[0009] A film coating device is disposed at the end position of the second platform and is used to coat the display surface of the display screen that has been moved to the end position.

[0010] A flipping mechanism is located between the initial position of the first platform and the initial position of the second platform to receive the display screen that has been glued and flip it to the initial position of the second platform.

[0011] The transfer device is positioned across the output end of the feeding conveyor belt, the initial position of the first platform, and above the flipping mechanism. The transfer device can move the display screen to the corresponding position along the X-axis.

[0012] A rotating mechanism, located between the initial position of the second platform and the input end of the unloading conveyor belt, can transfer the laminated display screen to the input end of the unloading conveyor belt.

[0013] Optionally, the adhesive applicator further includes a first bonding component and a transparent adhesive supply component. The first bonding component is located above the end position of the first platform. The first platform can reciprocate between the transfer device and the first bonding component. The transparent adhesive supply component is disposed adjacent to the first bonding component and supplies transparent adhesive to the first bonding component. The first bonding component applies the transparent adhesive to the display screen bonding surface on the first platform.

[0014] Optionally, the first bonding component includes:

[0015] The first support is set on one side of the platform;

[0016] The first X-axis linear module is fixed on the crossbeam of the first bracket;

[0017] The first Z-axis linear module is slidably connected to the first X-axis linear module;

[0018] The first pressing component is connected to the output end of the first Z-axis linear module, and a first pressing block and a first roller are provided on the contact surface between the first pressing component and the display screen.

[0019] Optionally, the transparent adhesive feeding assembly includes a tape for supplying transparent adhesive and a first conveying mechanism;

[0020] The first conveying mechanism includes a feeding roller, a take-up roller, guide columns, a transfer column, a drive unit, and a pressing column. The feeding roller is located above the take-up roller. The drive unit synchronously drives the transfer column and the take-up roller. The material belt and several guide columns are disposed between the feeding roller and the take-up roller. The pressing column squeezes the material belt so that the transfer column drives the material belt.

[0021] Optionally, it also includes a camera module, which is provided with a first camera component and a second camera component. The first camera component is mounted above the first platform, and the second camera component is located below the movement path of the first X-axis linear module. The first camera component and the second camera component are provided with at least one shooting element driven by a lead screw.

[0022] Optionally, the laminating device further includes a second bonding component and a protective film supply component. The second platform carries the flipped display screen to the second bonding component. The protective film supply component is disposed adjacent to the second bonding component and supplies the protective film to the second bonding component. The second bonding component attaches the protective film to the display screen surface on the second platform.

[0023] Optionally, the second bonding component includes:

[0024] The second support is installed on one side of the platform;

[0025] The second X-axis linear module is fixed on the crossbeam of the first bracket;

[0026] The second Z-axis linear module is slidably connected to the second X-axis linear module;

[0027] The second pressing component is connected to the output end of the second Z-axis linear module, and a second pressing block and a second roller are provided on the contact surface between the second pressing component and the display screen.

[0028] Optionally, the protective film feeding assembly includes a feed belt for supplying the protective film and a second conveying mechanism;

[0029] The second conveying mechanism includes a feeding roller, a take-up roller, guide columns, a transfer column, a drive unit, and a pressing column. The feeding roller is located above the take-up roller. The drive unit synchronously drives the transfer column and the take-up roller. The material belt and several guide columns are disposed between the feeding roller and the take-up roller. The pressing column squeezes the material belt so that the transfer column drives the material belt.

[0030] Optionally, the transfer device is provided with a linear module that moves along the X-axis, a first rotary drive assembly, and at least two first adsorption assemblies. The linear module drives at least two of the first adsorption assemblies to move synchronously along the X-axis above the feeding conveyor belt, the adhesive applicator, and the flipping mechanism. The first rotary drive assembly is adjacent to the feeding conveyor belt to drive at least one first adsorption assembly to adsorb the display screen.

[0031] Optionally, the rotating mechanism is provided with a second rotating drive component and at least one second adsorption component, wherein the second rotating drive component drives the second adsorption component to rotate.

[0032] This utility model discloses a fully automatic laminating machine for display screen assembly, which integrates a series of processes such as feeding, applying adhesive, flipping, laminating, and unloading. Through the coordinated operation of components such as platform components, transfer devices, and rotating mechanisms, the machine realizes fully automated processing of the display screen from feeding to unloading, greatly reducing manual intervention and labor intensity, thereby improving production efficiency and effectively avoiding errors caused by manual operation. Attached Figure Description

[0033] Figure 1 This is a schematic diagram of the overall structure of the fully automatic laminating machine for display screen assembly according to this utility model;

[0034] Figure 2 This is a schematic diagram of the flipping mechanism in one embodiment of the fully automatic laminating machine for display screen assembly according to this utility model;

[0035] Figure 3 This is a schematic diagram of the transfer device in one embodiment of the fully automatic laminating machine for display screen assembly according to this utility model;

[0036] Figure 4 This is a schematic diagram of the rotating mechanism in one embodiment of the fully automatic laminating machine for display screen assembly according to this utility model;

[0037] Figure 5 This is a schematic diagram of the structure of the first platform component and the first photographing component in one embodiment of the fully automatic laminating machine for display screen assembly of this utility model;

[0038] Figure 6 This is a schematic diagram of the structure of the first bonding component and the second photographing component in one embodiment of the fully automatic laminating machine for display screen assembly of this utility model;

[0039] Figure 7 This is a schematic diagram of the structure of the first conveying mechanism in one embodiment of the fully automatic laminating machine for display screen assembly according to this utility model;

[0040] Figure 8 This is a schematic diagram of the structure of the second platform and the coating device in one embodiment of the fully automatic coating machine for display screen assembly of this utility model. Detailed Implementation

[0041] The solutions in the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this utility model.

[0042] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in this utility model embodiment are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.

[0043] It should also be noted that when a component is described as "fixed to" or "set on" another component, it can be directly on the other component or there may be an intervening component present. When a component is described as "connected to" another component, it can be directly connected to the other component or there may be an intervening component present.

[0044] Furthermore, the use of terms such as "first" and "second" in this utility model is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. Additionally, the technical solutions of the various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed by this utility model.

[0045] like Figure 1 As shown, this utility model proposes a fully automatic laminating machine for display screen assembly, including a frame 100, an loading conveyor belt 110 for conveying the display screen at one end of the frame 100 and an unloading conveyor belt 120 at the other end of the frame 100, and further including:

[0046] Platform component 200 includes a first platform 210 and a second platform 220 arranged in parallel and spaced apart. The first platform 210 is initially adjacent to the output end of the feeding conveyor belt 110, and the second platform 220 is initially adjacent to the input end of the unloading conveyor belt 120. The first platform 210 and the second platform 220 can reciprocate along the Y-axis direction.

[0047] The adhesive applicator 300 is disposed at the end position of the first platform 210 and is used to apply adhesive to the bonding surface of the display screen that has moved to the end position.

[0048] The coating device 400 is disposed at the end position of the second platform 220 and is used to coat the display surface of the display screen that has been moved to the end position.

[0049] The flipping mechanism 500 is located between the initial position of the first platform 210 and the initial position of the second platform 220, and receives the display screen that has been glued and flips it to the initial position of the second platform 220;

[0050] The transfer device 600 is positioned across the output end of the feeding conveyor belt 110, the initial position of the first platform 210, and the flipping mechanism 500. The transfer device 600 can move the display screen to the corresponding position along the X-axis.

[0051] The rotating mechanism 700 is located between the initial position of the second platform 220 and the input end of the unloading conveyor belt 120, and can transfer the laminated display screen to the input end of the unloading conveyor belt 120.

[0052] In the embodiments of this application, such as Figure 1 As shown, the fully automatic laminating machine includes a frame 100, a feeding conveyor belt 110 located at one end of the frame 100 for conveying the display screen to be processed, and a discharging conveyor belt 120 located at the other end of the frame 100 for conveying the display screen after adhesive application and lamination. A platform assembly 200 moves between the two sides of the frame 100 and includes a first platform 210 and a second platform 220 arranged in parallel at intervals. The first platform 210 is initially positioned close to the output end of the feeding conveyor belt 110, and the second platform 220 is initially positioned close to the input end of the discharging conveyor belt 120. The adhesive applicator 300 is positioned above the end position of the first platform 210, i.e., at the middle left side of the frame 100; the film coating device 400 is positioned above the end position of the second platform 220, i.e., at the middle right side of the frame 100; the flipping mechanism 500 is located between the initial position of the first platform 210 and the initial position of the second platform 220; the transfer device 600 is straddling the output end of the feeding conveyor belt 110, the initial position of the first platform 210, and above the flipping mechanism 500; and the rotating mechanism 700 is positioned between the initial position of the second platform 220 and the input end of the unloading conveyor belt 120.

[0053] The platform component 200 includes a first platform 210 and a second platform 220 arranged in parallel at intervals. The first platform 210 is initially positioned adjacent to the output end of the feeding conveyor belt 110, and the second platform 220 is initially positioned adjacent to the input end of the unloading conveyor belt 120. The first platform 210 and the second platform 220 can reciprocate along the Y-axis. Specifically, the first platform 210 and the second platform 220 achieve reciprocating motion along the Y-axis through a Y-axis linear guide rail 230 and a Y-axis drive motor 240 mounted on the frame 100. The Y-axis drive motor 240 is connected to the first platform 210 and the second platform 220 through a transmission mechanism such as a transmission belt or a lead screw, driving them to move in the Y-axis direction, thereby moving the display screen from the initial position to the end position, or from the end position back to the initial position.

[0054] like Figure 2As shown, the adhesive applicator 300 is positioned at the end position of the first platform 210 and is used to apply adhesive to the display screen bonding surface that has moved to the end position. The adhesive applicator 300 includes a first bonding component 310 and a transparent adhesive supply component 320. The first bonding component 310 is located above the end position of the first platform 210. The first platform 210 can reciprocate between the transfer device 600 and the first bonding component 310. The transparent adhesive supply component 320 is positioned adjacent to the first bonding component 310 and supplies transparent adhesive to the first bonding component 310. The first bonding component 310 is used to attach the transparent adhesive to the display screen bonding surface on the first platform 210.

[0055] In some embodiments, such as Figure 1 , Figure 2 and Figure 3 As shown, the adhesive applicator 300 includes a first bonding component 310 and a transparent adhesive supply component 320. The first bonding component 310 is located above the end position of the first platform 210. The first platform 210 can reciprocate between the transfer device 600 and the first bonding component 310. The transparent adhesive supply component 320 is disposed adjacent to the first bonding component 310 and supplies transparent adhesive to the first bonding component 310. The first bonding component 310 applies the transparent adhesive to the display screen bonding surface on the first platform 210.

[0056] Among them, such as Figure 2 As shown, the first bonding assembly 310 includes a first support 311 disposed on one side of the stand 100, a first X-axis linear module 312 fixed on the crossbeam of the first support 311, a first Z-axis linear module 313 slidably connected to the first X-axis linear module 312, and a first pressing member 314 connected to the output end of the first Z-axis linear module 313. A first pressing block 315 and a first roller 316 are disposed on the contact surface between the first pressing member 314 and the display screen. The arrangement of the first X-axis linear module 312 and the first Z-axis linear module 313 allows the first pressing member 314 to move in the X-axis and Y-axis directions, thereby precisely applying adhesive to the bonding surface of the display screen. The first pressing block 315 is used to press the transparent adhesive onto the bonding surface of the display screen, while the first roller 316 can roll during the pressing process, making the transparent adhesive adhere more smoothly and avoiding air bubbles.

[0057] In some embodiments, such as Figure 3As shown, the transparent adhesive feeding assembly 320 includes a transparent adhesive tape 321 for supplying transparent adhesive and a first conveying mechanism 322. The first conveying mechanism 322 includes a feeding roller 323, a take-up roller 324, guide posts 325, a transfer post 326, a drive unit 327, and a pressure post 328. The feeding roller 323 is located above the take-up roller 324. The drive unit 327 synchronously drives the transfer post 326 and the take-up roller 324. The transparent adhesive tape 321 and several guide posts 325 are disposed between the feeding roller 323 and the take-up roller 324. The pressure post 328 squeezes the transparent adhesive tape 321, so that the transfer post 326 drives the transparent adhesive tape 321. The drive unit 327 can be a motor, which drives the transfer post 326 and the take-up roller 324 to rotate through a transmission mechanism such as gears or belts, thereby realizing the conveying of the transparent adhesive tape 321. The guide post 325 is used to guide the direction of the transparent adhesive tape 321, while the pressure post 328 ensures that the transparent adhesive tape 321 maintains a certain tension during the conveying process, so as to ensure that the transparent adhesive can be supplied to the first bonding component 310.

[0058] In some embodiments, such as Figure 2 and Figure 4 As shown, the fully automatic laminating machine for display screen assembly also includes a camera module. The camera module comprises a first camera component 810 and a second camera component 820. The first camera component 810 is mounted above the first platform, and the second camera component 820 is located below the moving path of the first X-axis linear module 312. Each of the first and second camera components 810 and 820 has at least one camera element driven by a lead screw. Specifically, the first camera component 810 is fixed directly above the first platform by a cantilever bracket 811. Its shooting angle is vertically downward, covering the working area of ​​the first platform, and its planar direction can be adjusted via the first lead screw transmission mechanism 812. It includes a first industrial camera 813 and a second industrial camera 814 to adapt to the shooting focal length requirements of the display screen at different positions. The camera is mounted on the slide of the first lead screw transmission mechanism 812 via an L-shaped adapter. The slide of the first lead screw transmission mechanism 812 can reciprocate along the X-axis, and the travel distance covers the width of the display screen, so that the first camera component 810 can scan the entire area of ​​the display screen placed on the first platform to obtain the initial positioning image of the bonding surface and the overall quality image after the adhesive is applied.

[0059] The second imaging component 820 is mounted directly below the crossbeam of the first X-axis linear module 312 via a fixed bracket 821, and remains parallel to the movement path of the first pressing component 34. Specifically, the second imaging component 820 includes a first industrial camera 823 and a second industrial camera 824. The second lead screw transmission mechanism 822 of the second imaging component 820 is arranged along the Y-axis direction, enabling the first industrial camera 823 and the second industrial camera 824 to capture the material picking process of the transparent adhesive tape and the edge of the display screen in real time, and to adjust the position of the first pressing component 314 at the working end of the first bonding component based on the monitored information.

[0060] Display screen adhesive application process: Under the action of Y-axis linear guide 230 and Y-axis drive motor 240, the first platform 210 moves along the Y-axis direction to below the first bonding component 310 of the adhesive application device. During this process, the first imaging component takes pictures of the display screen, and the first industrial camera 813 and the second industrial camera 814 adjust their positions through lead screw transmission to obtain image information of the display screen. Simultaneously, the first conveying mechanism 322 of the transparent adhesive feeding assembly operates, and the driving component synchronously drives the transfer column 326 and the take-up roller 324. Under the guidance of the guide column, the transparent adhesive tape is conveyed from the release roller 323 to the appropriate position, and the air pipe starts blowing air. The first X-axis linear module 312, in conjunction with the first Z-axis linear module 313, drives the first pressing component 314 to pick up the material and return it to the top of the first platform 210. During this process, the second photographing component 820 takes a picture of the pressed block after picking up the material. The first Z-axis linear module 313 drives the first pressing component 314 to move downward. The first roller 316 first contacts the transparent adhesive for pre-pressing, and then the first pressing block 315 presses it to firmly attach the transparent adhesive to the bonding surface of the display screen.

[0061] In some embodiments, such as Figure 5 As shown, the laminating device 400 includes a second bonding component 410 and a protective film feeding component 420. The second platform 220 carries the flipped display screen to the second bonding component 410. The protective film feeding component 420 is disposed adjacent to the second bonding component 410 and supplies the protective film to the second bonding component 410. The second bonding component 410 attaches the protective film to the display surface of the display screen on the second platform 220.

[0062] The second bonding assembly 410 includes a second bracket 411 disposed on one side of the stand 100, a second X-axis linear module 412 fixed on the crossbeam of the second bracket 411, a second Z-axis linear module 413 slidably connected to the second X-axis linear module 412, and a second pressing member 414 connected to the output end of the second Z-axis linear module 413. A second pressing block 415 and a second roller 416 are disposed on the contact surface between the second pressing member 414 and the display screen. Its structure and working principle are similar to the first bonding assembly 310. The movement of the second X-axis linear module 412 and the second Z-axis linear module 413 enables the second pressing member 414 to move in the X-axis and Z-axis directions, thus attaching the protective film to the display surface of the display screen.

[0063] The protective film feeding assembly 420 includes a protective film strip 421 for supplying the protective film and a second conveying mechanism 422. The second conveying mechanism 422 includes a feeding roller 323, a take-up roller 324, guide posts 325, a transfer post 326, a drive unit 327, and a pressure post 328. The feeding roller 323 is located above the take-up roller 324. The drive unit 327 synchronously drives the transfer post 326 and the take-up roller 324. The protective film strip 421 and several guide posts 325 are positioned between the feeding roller 323 and the take-up roller 324. The pressure post 328 compresses the protective film strip 321, causing the transfer post 326 to drive the protective film strip 421. Its structure and working principle are similar to the first conveying mechanism 322 of the transparent adhesive feeding assembly 320, to achieve stable conveying of the protective film.

[0064] In some embodiments, such as Figure 6 As shown, the flipping mechanism 500 is positioned between the initial position of the first platform 210 and the initial position of the second platform 220. It receives the screen that has been glued and flips it to the initial position of the second platform 220. The flipping mechanism 500 includes structures such as a rotary motor 510 and a flipping arm 520. When the screen moves from the first platform 210 to the flipping mechanism 500, the rotary motor 510 drives the flipping arm 520 to rotate 180 degrees, so that the glued surface of the screen faces down and the display surface faces up, in order to facilitate subsequent lamination operations.

[0065] In some embodiments, such as Figure 7As shown, the transfer device 600 includes a linear module 610 that moves along the X-axis, a first rotary drive assembly 620, and at least two first adsorption assemblies 630. The linear module 610 drives at least two first adsorption assemblies 630 to move synchronously along the X-axis above the feeding conveyor belt 110, the adhesive applicator 300, and the flipping mechanism 500. The first rotary drive assembly 620 is adjacent to the feeding conveyor belt 110 to drive at least one first adsorption assembly 630 to adsorb the display screen. The first adsorption assembly 630 can employ vacuum adsorption, using a vacuum pump to generate negative pressure to adsorb the display screen onto the adsorption surface. The first rotary drive assembly 620 can be a rotary motor used to drive the first adsorption assembly 630 to rotate, thereby adjusting the angle of the first adsorption assembly 630 during the transfer process.

[0066] In some embodiments, such as Figure 8 As shown, the rotating mechanism 700 is equipped with a second rotating drive component 710 and at least one second adsorption component 720. The second rotating drive component 710 drives the second adsorption component 720 to rotate. The structure and working principle of the second adsorption component 720 are the same as those of the first adsorption component 630 of the transfer device 600. Through the rotation of the second rotating drive component 710, the coated display screen is transferred from the second platform 220 to the unloading conveyor belt 120. Specifically, the second adsorption component 720 of the rotating mechanism 700 moves above the second platform 220 under the drive of the second rotating drive component 710, adsorbs the coated display screen, and the second rotating drive component 710 drives the second adsorption component 720 to rotate, adjusting the display screen to a suitable angle and posture. Then, it moves above the input end of the unloading conveyor belt 120, places the display screen on the unloading conveyor belt 120, and the unloading conveyor belt 120 transports the coated display screen to the next process, completing the entire coating process.

[0067] In summary, this utility model provides a fully automatic laminating machine for display screen assembly. Through the fully automated processing of feeding, adhesive application, flipping, laminating, and unloading, it reduces manual intervention and errors, and improves production efficiency. The camera module obtains information about the display screen and the material on the pressure block from different angles through the first and second camera components and the lead screw, which can ensure that the transparent adhesive and protective film are adhered to the display screen in the predetermined position, reduce defects, and improve the yield rate.

[0068] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit the scope of protection of this utility model. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this utility model without departing from the essence and scope of the technical solutions of this utility model.

Claims

1. A fully automatic laminating machine for display screen assembly, comprising a frame, an infeed conveyor belt for conveying the display screen at one end of the frame, and an outfeed conveyor belt at the other end of the frame, characterized in that, Also includes: The platform component includes a first platform and a second platform arranged in parallel and spaced apart. The first platform is initially positioned adjacent to the output end of the feeding conveyor belt, and the second platform is initially positioned adjacent to the input end of the unloading conveyor belt. The first platform and the second platform can reciprocate along the Y-axis direction. An adhesive applicator is positioned at the end position of the first platform and is used to apply adhesive to the bonding surface of the display screen that has moved to the end position. A film coating device is disposed at the end position of the second platform and is used to coat the display surface of the display screen that has been moved to the end position. A flipping mechanism is located between the initial position of the first platform and the initial position of the second platform to receive the display screen that has been glued and flip it to the initial position of the second platform. The transfer device is positioned across the output end of the feeding conveyor belt, the initial position of the first platform, and the flipping mechanism. The transfer device can move the display screen to the corresponding position along the X-axis. A rotating mechanism, located between the initial position of the second platform and the input end of the unloading conveyor belt, can transfer the laminated display screen to the input end of the unloading conveyor belt.

2. The fully automatic laminating machine for display screen assembly according to claim 1, characterized in that, The adhesive applicator further includes a first bonding component and a transparent adhesive supply component. The first bonding component is located above the end position of the first platform. The first platform can reciprocate between the transfer device and the first bonding component. The transparent adhesive supply component is disposed adjacent to the first bonding component and supplies transparent adhesive to the first bonding component. The first bonding component applies the transparent adhesive to the display screen bonding surface on the first platform.

3. The fully automatic laminating machine for display screen assembly according to claim 2, characterized in that, The first bonding component includes: The first support is set on one side of the platform; The first X-axis linear module is fixed on the crossbeam of the first bracket; The first Z-axis linear module is slidably connected to the first X-axis linear module; The first pressing component is connected to the output end of the first Z-axis linear module, and a first pressing block and a first roller are provided on the contact surface between the first pressing component and the display screen.

4. The fully automatic laminating machine for display screen assembly according to claim 2 or 3, characterized in that, The transparent adhesive feeding assembly includes a tape for supplying transparent adhesive and a first conveying mechanism; The first conveying mechanism includes a feeding roller, a take-up roller, guide columns, a transfer column, a drive unit, and a pressing column. The feeding roller is located above the take-up roller. The drive unit synchronously drives the transfer column and the take-up roller. The material belt and several guide columns are disposed between the feeding roller and the take-up roller. The pressing column squeezes the material belt so that the transfer column drives the material belt.

5. The fully automatic laminating machine for display screen assembly according to claim 3, characterized in that, It also includes a camera module, which is provided with a first camera component and a second camera component. The first camera component is mounted above the first platform, and the second camera component is located below the movement path of the first X-axis linear module. The first camera component and the second camera component are provided with at least one shooting element driven by a lead screw.

6. The fully automatic laminating machine for display screen assembly according to claim 1, characterized in that, The coating device further includes a second bonding component and a protective film supply component. The second platform carries the flipped display screen to the second bonding component. The protective film supply component is disposed adjacent to the second bonding component and supplies the protective film to the second bonding component. The second bonding component attaches the protective film to the display screen surface on the second platform.

7. The fully automatic laminating machine for display screen assembly according to claim 6, characterized in that, The second bonding component includes: The second support is installed on one side of the platform; The second X-axis linear module is fixed on the crossbeam of the second bracket; The second Z-axis linear module is slidably connected to the second X-axis linear module; The second pressing component is connected to the output end of the second Z-axis linear module, and a second pressing block and a second roller are provided on the contact surface between the second pressing component and the display screen.

8. The fully automatic laminating machine for display screen assembly according to claim 6 or 7, characterized in that, The protective film feeding assembly includes a material belt for supplying the protective film and a second conveying mechanism; The second conveying mechanism includes a feeding roller, a take-up roller, guide columns, a transfer column, a drive unit, and a pressing column. The feeding roller is located above the take-up roller. The drive unit synchronously drives the transfer column and the take-up roller. The material belt and several guide columns are disposed between the feeding roller and the take-up roller. The pressing column squeezes the material belt so that the transfer column drives the material belt.

9. The fully automatic laminating machine for display screen assembly according to claim 1, characterized in that, The transfer device is provided with a linear module that moves along the X-axis, a first rotary drive assembly, and at least two first adsorption assemblies. The linear module drives at least two of the first adsorption assemblies to move synchronously along the X-axis above the feeding conveyor belt, the adhesive applicator, and the flipping mechanism. The first rotary drive assembly is adjacent to the feeding conveyor belt to drive at least one first adsorption assembly to adsorb the display screen.

10. The fully automatic laminating machine for display screen assembly according to claim 1, characterized in that, The rotating mechanism is provided with a second rotating drive component and at least one second adsorption component, wherein the second rotating drive component drives the second adsorption component to rotate.