Modular photovoltaic module recycling device

The modular photovoltaic module recycling device, with its preheating box and splitting mechanism, solves the problem of inconvenient photovoltaic module splitting, achieving stable splitting of glass plates and silicon wafers, and improving recycling efficiency and safety.

CN115924556BActive Publication Date: 2026-07-17ANHUI TIANDA NEW ENERGY CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
ANHUI TIANDA NEW ENERGY CO LTD
Filing Date
2022-12-05
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

When recycling existing photovoltaic modules, the glass panels and silicon wafers are difficult to separate, causing inconvenience and safety hazards, and affecting the recycling effect.

Method used

A modular photovoltaic module recycling device was designed, comprising a preheating box, a splitting mechanism, a clamping component, and a positioning component. The preheating box softens the adhesive, and the clamping component and the separation plate are used to achieve stable separation of the glass plate and the silicon wafer.

Benefits of technology

It improves the safety and efficiency of photovoltaic module recycling, reduces operational inconvenience, enhances the recycling effect of glass panels, and reduces safety hazards.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115924556B_ABST
    Figure CN115924556B_ABST
Patent Text Reader

Abstract

This invention relates to the field of photovoltaic module recycling technology, and more particularly to a modular photovoltaic module recycling device, comprising a recycling platform and a loading platform fixedly installed at one end of the recycling platform. A preheating box fixed to the recycling platform is located at one end of the loading platform. A conveyor body fixed to the recycling platform is located at the bottom of the preheating box. A splitting mechanism for separating photovoltaic module components is located at the end of the conveyor body away from the loading platform. The splitting mechanism includes a placement plate located at the bottom of one end of the preheating box and fixed to the recycling platform, and a movable frame slidably disposed outside the placement plate. A separation plate is located at the end of the placement plate away from the preheating box. This invention makes the recycling of photovoltaic modules safer, reduces safety hazards during recycling, improves the recycling efficiency of photovoltaic module glass panels, and avoids situations where the operation of recycling photovoltaic module glass panels and silicon wafers is inconvenient and causes trouble for workers.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of photovoltaic module recycling technology, and in particular to a modular combined photovoltaic module recycling device. Background Technology

[0002] Currently, it is necessary to recycle and reuse waste photovoltaic modules to avoid resource waste. When recycling photovoltaic modules, it is necessary to disassemble the modules and recycle each component separately. However, the glass panels and silicon wafers of photovoltaic modules are glued together, which is extremely troublesome to disassemble and brings great inconvenience to the workers. Moreover, when disassembling the glass panels, they are very easy to break, which not only affects the recycling effect of the glass panels, but also poses a safety hazard to the workers, making it difficult to meet the actual use needs. Summary of the Invention

[0003] To address the shortcomings of existing technologies, this invention provides a modular photovoltaic module recycling device, which solves the problem that the current method of recycling photovoltaic modules is extremely troublesome in terms of separating glass plates and silicon wafers, causing inconvenience to workers.

[0004] To solve the above technical problems, the present invention provides the following technical solution: a modular photovoltaic module recycling device, including a recycling platform and a loading platform fixedly installed at one end of the recycling platform. A preheating box fixed to the recycling platform is provided at one end of the loading platform. A conveyor body fixed to the recycling platform is provided at the bottom of the preheating box. A splitting mechanism for splitting photovoltaic module components is provided at the end of the conveyor body away from the loading platform.

[0005] The splitting mechanism includes a placement plate located at the bottom of one end of the preheating box and fixed to the recycling platform, and a movable frame slidably disposed outside the placement plate. The end of the placement plate away from the preheating box is provided with a separation plate. The separation plate is provided with a positioning component for fixing it to the recycling platform. The recycling platform is provided with a driving component for moving the movable frame. The splitting mechanism also includes a clamping component disposed on the movable frame for fixing the photovoltaic module.

[0006] Furthermore, the clamping assembly includes movable clamping plates disposed on both sides of the top of the placement plate and slidably connected to the movable frame, and a sliding horizontal groove opened on the top of the movable frame. Each of the two movable clamping plates has a sliding block fixed on its top and slidably connected to the sliding horizontal groove. The inner side of the sliding horizontal groove is provided with a bidirectional screw rod that is rotatably connected to the movable frame through a bearing. The two ends of the bidirectional screw rod pass through the two sliding blocks respectively and are threadedly connected to them. A motor is fixed on the top of the movable frame.

[0007] Furthermore, a worm gear is fixed in the middle of the bidirectional screw, and a worm is meshed with one side of the worm gear. A rotating vertical shaft is fixed at the center of the worm shaft and its bottom is rotatably connected to the movable frame through a bearing. The top of the rotating vertical shaft passes through the movable frame and is fixedly connected to one output end of the motor.

[0008] Furthermore, a wiping plate fixed to the movable frame is provided between the two movable clamps, with both ends of the wiping plate passing through the two movable clamps and slidably connected to them.

[0009] Furthermore, the drive assembly includes a limiting transverse groove formed on the recycling platform, and a movable rack slidably disposed inside the limiting transverse groove and fixed to the bottom of the movable frame. A transmission gear is engaged at the bottom of the movable rack, and a rotating transverse shaft is fixed at the center of the transmission gear shaft. A second motor for driving the rotating transverse shaft to rotate is fixedly embedded at the bottom of the recycling platform.

[0010] Furthermore, a controller electrically connected to motor one is fixed on the recycling platform, and the controller is electrically connected to a photoelectric sensor fixed to the movable frame. Motor two is electrically connected to the controller.

[0011] Furthermore, a conveyor belt one fixed to the recycling platform is provided at the top of the end of the separation plate away from the placement plate, and a conveyor belt two fixed to the recycling platform is provided at the bottom of the conveyor belt one.

[0012] Furthermore, the positioning component includes a limiting plate disposed at both ends of the separation plate and fixed to the recycling platform. A limiting stop bar that contacts the separation plate is fixed on one side of the limiting plate. Threaded holes are provided at both ends of the separation plate. A screw is provided on one side of the limiting plate, and the screw passes through the limiting plate and is threadedly connected to the threaded hole.

[0013] By employing the above technical solution, the present invention provides a modular photovoltaic module recycling device, which has at least the following beneficial effects:

[0014] 1. This invention separates the preheated glass plate and silicon wafer by setting up a splitting mechanism. The glass plate and silicon wafer of the photovoltaic module are preheated to a certain temperature by a preheating box, so that the adhesive between the glass plate and silicon wafer softens to a certain extent. Then, the clamping component holds the glass plate and silicon wafer and moves it through the separation plate to separate the glass plate and silicon wafer. The structure is reasonable, which helps to make the recycling of photovoltaic modules safer, reduces the safety hazards during the recycling of photovoltaic modules, improves the recycling effect of photovoltaic module glass plates, and avoids the situation where the operation of recycling photovoltaic module glass plates and silicon wafers is inconvenient and causes trouble for the workers.

[0015] 2. This invention uses a clamping assembly to hold the preheated glass plate and silicon wafer. When the glass plate and silicon wafer are conveyed to the placement plate by the conveyor, the photoelectric sensor senses the glass plate. The photoelectric sensor starts motor one through the controller. The output of motor one drives the rotating vertical shaft and worm gear to rotate. The worm gear drives the worm wheel and the bidirectional screw to rotate. The bidirectional screw drives two sliding blocks and two movable clamping plates to move towards the center. The two movable clamping plates hold the glass plate and silicon wafer, making it more stable when separating the glass plate and silicon wafer, making it easier to separate the photovoltaic module glass plate and silicon wafer, and improving the separation effect of the glass plate.

[0016] 3. The present invention fixes the separation plate by setting a positioning component. The separation plate is fixed together with the threaded connection of the screw and the threaded hole and the limiting plate by the screw, and the limiting stop provides a certain support for the separation plate, which makes the separation plate more stable when separating the glass plate and the silicon wafer. At the same time, when the separation effect of the separation end of the separation plate is not good, the separation plate can be removed and replaced. Attached Figure Description

[0017] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments of this application and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings:

[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0019] Figure 2 This is a front perspective sectional view of the present invention;

[0020] Figure 3 This is a side perspective sectional view of the present invention;

[0021] Figure 4 This is a partial structural diagram of the present invention;

[0022] Figure 5 This is a partial exploded view of the splitting mechanism of the present invention;

[0023] Figure 6 This is an exploded view of the positioning component of the present invention;

[0024] Figure 7 for Figure 5 A magnified structural diagram of part A;

[0025] Figure 8 This is a system control flowchart of the present invention.

[0026] In the diagram: 1. Recycling platform; 2. Feeding platform; 3. Preheating box; 4. Conveyor body; 5. Splitting mechanism; 51. Placement plate; 52. Movable frame; 53. Separation plate; 54. Positioning component; 541. Limiting plate; 542. Limiting stop bar; 543. Threaded hole; 544. Screw knob; 55. Drive component; 551. Limiting transverse groove; 552. Movable rack; 553. Transmission gear; 554. Rotating horizontal shaft; 555. Motor II; 556. Controller; 557. Photoelectric sensor; 56. Clamping component; 561. Movable clamping plate; 562. Sliding transverse groove; 563. Sliding block; 564. Bidirectional screw; 565. Motor I; 566. Worm gear; 567. Worm; 568. Rotating vertical shaft; 569. Wiping plate; 6. Conveyor belt I; 7. Conveyor belt II. Detailed Implementation

[0027] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0028] Example 1

[0029] Figure 1-5 and Figure 7-8 An embodiment of the present invention: a modular photovoltaic module recycling device includes a recycling platform 1 and a loading platform 2 fixedly installed at one end of the recycling platform 1. A preheating box 3 fixed to the recycling platform 1 is provided at one end of the loading platform 2. A conveyor body 4 fixed to the recycling platform 1 is provided at the bottom of the preheating box 3. A splitting mechanism 5 for splitting photovoltaic module components is provided at the end of the conveyor body 4 away from the loading platform 2.

[0030] The glass plate and silicon wafer on the photovoltaic module are fixed together by adhesive. A heater is fixed at the bottom of the preheating box 3 and is located directly above the conveyor body 4. The softening temperature of the adhesive between the glass plate and silicon wafer of different photovoltaic modules is different. The heater can be adjusted to a suitable temperature according to different adhesives to soften the adhesive between the glass plate and silicon wafer during the conveying process. A certain gap will be generated between the glass plate and silicon wafer when heated. At the same time, the conveyor body 4 is set as a roller conveyor.

[0031] The splitting mechanism 5 separates the preheated glass plate and silicon wafer. The preheating box 3 preheats the glass plate and silicon wafer of the photovoltaic module to a certain temperature, softening the adhesive between the glass plate and silicon wafer to a certain degree. Then, the clamping component 56 clamps the glass plate and silicon wafer and moves them through the separation plate 53 to separate the glass plate and silicon wafer. This makes the recycling of photovoltaic modules safer and improves the recycling efficiency of photovoltaic module glass plates.

[0032] The splitting mechanism 5 includes a placement plate 51 located at the bottom of one end of the preheating box 3 and fixed to the recycling platform 1, and a movable frame 52 slidably disposed outside the placement plate 51. A separation plate 53 is provided at the end of the placement plate 51 away from the preheating box 3. A positioning component 54 is provided on the separation plate 53 for fixing it on the recycling platform 1. A driving component 55 is provided on the recycling platform 1 for driving the movable frame 52 to move. The splitting mechanism 5 also includes a clamping component 56 disposed on the movable frame 52 for fixing the photovoltaic module. The separation end of the separation plate 53 near the placement plate 51 is flat and pointed. The separation end of the separation plate 53 can be inserted into the gap between the glass plate and the silicon wafer, thereby stably separating the glass plate and the silicon wafer.

[0033] The top of the separation plate 53, away from the placement plate 51, is equipped with a conveyor belt 6 fixed to the recycling platform 1. The bottom of the conveyor belt 6 is equipped with a conveyor belt 7 fixed to the recycling platform 1. The loading platform 2, preheating box 3, conveyor body 4, conveyor belt 6 and conveyor belt 7 on the recycling platform 1 are all detachably connected. This recycling device is assembled by modular combination. Since the glass plate is on the top of the silicon wafer, after complete separation, the glass plate and silicon wafer are transported to the glass plate recycling box by conveyor belt 6 and the silicon wafer is transported to the silicon wafer recycling box by conveyor belt 7, thereby completing the separate recycling process.

[0034] Specifically, the clamping assembly 56 includes movable clamping plates 561 disposed on both sides of the top of the placement plate 51 and slidably connected to the movable frame 52, and a sliding transverse groove 562 opened on the top of the movable frame 52. Each of the two movable clamping plates 561 has a sliding block 563 fixed to its top, which is slidably connected to the sliding transverse groove 562. A bidirectional screw 564 is provided inside the sliding transverse groove 562 and is rotatably connected to the movable frame 52 via a bearing. Both ends of the bidirectional screw 564 pass through the two sliding blocks 563 and are threadedly connected to them. A motor 565 is fixed to the top of the movable frame 52. A worm gear 566 is fixed to the middle of the bidirectional screw 564, and one side of the worm gear 566 meshes with… A worm gear 567 is connected to the movable frame 52. A rotating vertical shaft 568 is fixed at the center of the worm gear 567 and is rotatably connected to the movable frame 52 via a bearing. The top of the rotating vertical shaft 568 passes through the movable frame 52 and is fixedly connected to the output end of the motor 565. A wiping plate 569 is provided between the two movable clamping plates 561 and is fixed to the movable frame 52. The two ends of the wiping plate 569 pass through the two movable clamping plates 561 and are slidably connected to them. During the process of conveying the glass plate and silicon wafer to the bottom of the movable frame 52, the wiping plate 569 contacts the top of the glass plate and wipes away the stains on the glass plate, making the glass plate cleaner during recycling.

[0035] When the glass plate and silicon wafer are conveyed to the placement plate 51 by the conveyor body 4, the photoelectric sensor 557 starts the motor 565 through the controller 556. The output of the motor 565 drives the rotating vertical shaft 568 and the worm gear 567 to rotate. The worm gear 567 drives the worm wheel 566 and the bidirectional screw 564 to rotate. The bidirectional screw 564 drives the two sliding blocks 563 and the two movable clamping plates 561 to move towards the middle. The two movable clamping plates 561 hold the glass plate and silicon wafer. A protective soft pad is attached to one side of the movable clamping plate 561. The glass plate and silicon wafer are in contact with the two protective soft pads on both sides, which improves the stability of the glass plate and silicon wafer and makes it easier to separate the photovoltaic module glass plate and silicon wafer.

[0036] Specifically, the drive assembly 55 includes a limiting transverse groove 551 formed on the recycling platform 1, and a movable rack 552 slidably disposed inside the limiting transverse groove 551 and fixed to the bottom of the movable frame 52. A transmission gear 553 meshes with the bottom of the movable rack 552, and a rotating horizontal shaft 554 is fixed at the axis of the transmission gear 553. A second motor 555 for driving the rotating horizontal shaft 554 to rotate is fixedly embedded at the bottom of the recycling platform 1. A controller 556 electrically connected to the first motor 555 is fixed on the recycling platform 1. The controller 556 is electrically connected to a photoelectric sensor 557 fixed to the movable frame 52. The second motor 555 is electrically connected to the controller 556, and the photoelectric sensor 557 is located on the movable frame 52. At the inner center of position 2, when the glass panel and silicon wafer of the photovoltaic module are transported directly below the photoelectric sensor 557, the photoelectric sensor 557 transmits information to the controller 556. The controller 556 starts the first motor 565 to start running. After the first motor 565 finishes running, the controller 556 starts the second motor 555 to start running. The output end of the second motor 555 drives the rotating horizontal shaft 554 and the transmission gear 553 to rotate. The transmission gear 553 drives the movable rack 552 to slide inside the limiting horizontal groove 551. The movable rack 552 drives the movable frame 52 to move. The movable frame 52 drives the glass panel and silicon wafer on it to move towards the separation plate 53. The separation plate 53 separates the glass panel and silicon wafer.

[0037] In this implementation, during the operation of the device, the staff first neatly places the glass plate and silicon wafer of the photovoltaic module on the loading platform 2, then starts the preheating box 3, heats the preheating box 3 to a suitable temperature, and then turns on the conveyor body 4 to place the glass plate and silicon wafer of the photovoltaic module on the conveyor body 4 for conveying. The glass plate and silicon wafer enter the preheating box 3, and the adhesive between the glass plate and the silicon wafer begins to soften.

[0038] Next, the preheated glass plate and silicon wafer are conveyed to the placement plate 51 via the conveyor body 4. The glass plate and silicon wafer of the photovoltaic module move to the area directly below the photoelectric sensor 557. After the photoelectric sensor 557 senses the glass plate and silicon wafer, it transmits the information to the controller 556. The controller 556 starts the motor 565. The output end of the motor 565 drives the rotating vertical shaft 568 at its bottom to rotate. The rotating vertical shaft 568 drives the worm 567 at its axis to rotate. The worm 567 drives the worm wheel 566 meshing with it to rotate. The worm wheel 566 drives the bidirectional screw 564 at its axis to rotate. The bidirectional screw 564 drives the two sliding blocks 563 to slide towards the center inside the limiting transverse groove 551. The two sliding blocks 563 drive the two movable clamping plates 561 to move towards the center. The two movable clamping plates 561 clamp the glass plate and silicon wafer. After the two protective soft pads come into contact with the two sides of the glass plate and silicon wafer respectively.

[0039] Motor 1 (565) stops running, and controller 556 starts motor 2 (555). The output of motor 2 (555) drives the rotating horizontal shaft 554 to rotate. The rotating horizontal shaft 554 drives the transmission gear 553 at its end to rotate. The transmission gear 553 drives the movable rack 552 to slide inside the limiting horizontal groove 551. The movable rack 552 drives the movable frame 52 at its top to move. The movable frame 52 drives the glass plate and silicon wafer on it to move towards the separation plate 53. The separation plate 53 separates the glass plate and silicon wafer. After complete separation, the glass plate is transported to the glass plate recycling box by conveyor belt 1 (6), and the silicon wafer is transported to the silicon wafer recycling box by conveyor belt 2 (7), thus completing the separate recycling process.

[0040] Example 2

[0041] refer to Figure 6 The method is basically the same as in Embodiment 1, but with an optimization: the positioning component 54 includes a limiting plate 541 disposed at both ends of the separation plate 53 and fixed to the recycling platform 1. A limiting stop 542 that contacts the separation plate 53 is fixed on one side of the limiting plate 541. Threaded holes 543 are provided at both ends of the separation plate 53. A screw 544 is provided on one side of the limiting plate 541. The screw 544 passes through the limiting plate 541 and is threadedly connected to the threaded hole 543.

[0042] In this embodiment, the separation plate 53 is fixed together with the threaded connection between the screw 544 and the threaded hole 543 and the limiting plate 541. The limiting stop 542 on one side of the limiting plate 541 provides a certain support for the separation plate 53, making the separation plate 53 more stable when separating the glass plate and the silicon wafer. At the same time, when the separation effect of the separation end of the separation plate 53 is not good, the separation plate 53 can be removed and replaced by rotating and unscrewing the screw 544.

[0043] In actual use, the operator starts the preheating box 3, which heats the material to a suitable temperature. Then, the conveyor 4 is activated, and the glass plate and silicon wafer of the photovoltaic module are placed on the conveyor 4 for transport. As the glass plate and silicon wafer enter the preheating box 3, the adhesive between them begins to soften. The preheated glass plate and silicon wafer are then transported to the placement plate 51 via the conveyor 4. The photoelectric sensor 557 detects the glass plate and silicon wafer and transmits the information to the controller 556, which then starts the motor 56. 5. When the machine starts to operate, the output end of motor 565 drives the rotating vertical shaft 568 at its bottom to rotate. The rotating vertical shaft 568 drives the worm 567 at its axis to rotate. The worm 567 drives the worm wheel 566 meshing with it to rotate. The worm wheel 566 drives the bidirectional screw 564 at its axis to rotate. The bidirectional screw 564 drives the two sliding blocks 563 to slide towards the middle inside the limiting transverse groove 551. The two sliding blocks 563 drive the two movable clamping plates 561 to move towards the middle. The two movable clamping plates 561 hold the glass plate and the silicon wafer.

[0044] After the two protective pads come into contact with the glass plate and the silicon wafer on both sides respectively, motor 1 565 stops running, and controller 556 starts motor 2 555. The output end of motor 2 555 drives the rotating horizontal shaft 554 to rotate. The rotating horizontal shaft 554 drives the transmission gear 553 at its end to rotate. The transmission gear 553 drives the movable rack 552 to slide inside the limiting horizontal groove 551. The movable rack 552 drives the movable frame 52 at its top to move. The movable frame 52 drives the glass plate and silicon wafer on it to move towards the separation plate 53. The separation plate 53 separates the glass plate and silicon wafer. Since the glass plate and silicon wafer are in contact with the two protective pads on both sides respectively, the glass plate can move upward a certain distance, and the silicon wafer can move downward a certain distance.

[0045] After the glass plate and silicon wafer are completely separated, motor 565 starts running again. The output of motor 565 drives the rotating vertical shaft 568 at its bottom to rotate. The rotating vertical shaft 568 drives the worm 567 at its axis to rotate. The worm 567 drives the worm wheel 566 meshing with it to rotate. The worm wheel 566 drives the bidirectional screw 564 at its axis to rotate. The bidirectional screw 564 drives two sliding blocks 563 to slide to both ends. The two sliding blocks 563 drive two movable clamping plates 561 to move to both sides. Since the glass plate and silicon wafer are not clamped on both sides, the glass plate is transported to the glass plate recycling box by conveyor belt 6, and the silicon wafer is transported to the silicon wafer recycling box by conveyor belt 7, thus completing the separate recycling process.

[0046] It should be noted that, in this document, the terms “comprising,” “including,” or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0047] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A modular photovoltaic module recycling device, comprising a recycling platform (1) and a loading platform (2) fixedly installed at one end of the recycling platform (1), characterized in that: The loading platform (2) is provided with a preheating box (3) fixed to the recycling platform (1) at one end. The bottom of the preheating box (3) is provided with a conveyor body (4) fixed to the recycling platform (1). The end of the conveyor body (4) away from the loading platform (2) is provided with a splitting mechanism (5) for splitting photovoltaic module components. The splitting mechanism (5) includes a placement plate (51) disposed at the bottom of one end of the preheating box (3) and fixed to the recycling platform (1), and a movable frame (52) slidably disposed outside the placement plate (51). The placement plate (51) is provided with a separation plate (53) at the end away from the preheating box (3). The movable frame (52) drives the glass plate and silicon wafer on it to move toward the separation plate (53). The glass plate and silicon wafer are split by the separation plate (53). The separation plate (53) is provided with a positioning component (54) for fixing it on the recycling platform (1). The recycling platform (1) is provided with a driving component (55) for driving the movable frame (52) to move. The splitting mechanism (5) also includes a clamping component (56) for fixing the photovoltaic module disposed on the movable frame (52). The clamping assembly (56) includes movable clamping plates (561) disposed on both sides of the top of the placement plate (51) and slidably connected to the movable frame (52). The two movable clamping plates (561) clamp the glass plate and the silicon wafer. A sliding transverse groove (562) is opened on the top of the movable frame (52). A sliding block (563) is fixed on the top of each of the two movable clamping plates (561) and slidably connected to the sliding transverse groove (562). A bidirectional screw (564) is provided on the inner side of the sliding transverse groove (562) and rotatably connected to the movable frame (52) through a bearing. The two ends of the bidirectional screw (564) pass through the two sliding blocks (563) respectively and are threadedly connected to them. A motor (565) is fixed on the top of the movable frame (52).

2. The modular combined photovoltaic module recycling device according to claim 1, characterized in that: A worm gear (566) is fixed in the middle of the bidirectional screw (564). A worm (567) is meshed with one side of the worm gear (566). A rotating vertical shaft (568) is fixed at the center of the worm (567) and its bottom is rotatably connected to the movable frame (52) through a bearing. The top of the rotating vertical shaft (568) passes through the movable frame (52) and is fixedly connected to the output end of the motor (565).

3. The modular combined photovoltaic module recycling device according to claim 2, characterized in that: A wiping plate (569) fixed to the movable frame (52) is provided between the two movable clamps (561). The two ends of the wiping plate (569) pass through the two movable clamps (561) and are slidably connected to them.

4. The modular combined photovoltaic module recycling device according to claim 1, characterized in that: The drive assembly (55) includes a limiting transverse groove (551) opened on the recycling platform (1) and a movable rack (552) slidably disposed inside the limiting transverse groove (551) and fixed to the bottom of the movable frame (52). The bottom of the movable rack (552) is engaged with a transmission gear (553), and a rotating transverse shaft (554) is fixed at the axis of the transmission gear (553). The bottom of the recycling platform (1) is fixedly embedded with a second motor (555) for driving the rotating transverse shaft (554) to rotate.

5. The modular combined photovoltaic module recycling device according to claim 4, characterized in that: The recycling platform (1) is fixed with a controller (556) electrically connected to motor one (565). The controller (556) is electrically connected to a photoelectric sensor (557) fixed to the movable frame (52). The motor two (555) is electrically connected to the controller (556).

6. The modular combined photovoltaic module recycling device according to claim 1, characterized in that: The top of the separation plate (53) away from the placement plate (51) is provided with a conveyor belt one (6) fixed to the recycling platform (1), and the bottom of the conveyor belt one (6) is provided with a conveyor belt two (7) fixed to the recycling platform (1).

7. The modular photovoltaic module recycling device according to claim 1, characterized in that: The positioning component (54) includes a limiting plate (541) disposed at both ends of the separation plate (53) and fixed to the recycling platform (1). A limiting stop (542) in contact with the separation plate (53) is fixed on one side of the limiting plate (541). Threaded holes (543) are provided at both ends of the separation plate (53). A screw (544) is provided on one side of the limiting plate (541). The screw (544) passes through the limiting plate (541) and is threadedly connected to the threaded hole (543).