Anti-sticking feeding structure for FPC automatic detection equipment

By designing an anti-adhesive loading structure in FPC automated detection equipment, and separating the electrostatically adsorbed FPC plates using vacuum and vibration mechanisms, the adsorption problem caused by static electricity is solved, and detection accuracy and production efficiency are improved.

CN222916294UActive Publication Date: 2025-05-27ZHUHAI WEITIAN ZHIKE PRECISION MASCH CO LTD
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Patent Information

Application Number
CN202422220730.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-10
Publication Date
2025-05-27
Estimated Expiration
2034-09-10

AI Technical Summary

Technical Problem

During the production process, FPC boards may adsorb each other due to electrostatic effects, affecting the detection results of the detection equipment and reducing production efficiency.

Method used

An anti-adhesive loading structure for FPC automated detection equipment is designed, including a detection device and a loading device. Through the use of moving parts and separation parts, the electrostatically adsorbed FPC plate is separated by a vacuum generator and a vibration mechanism to prevent it from entering the detection device.

Benefits of technology

It effectively prevents the electrostatic adsorption of FPC boards from adhering to each other, ensures the accuracy of the detection results, and improves the production efficiency of the FPC board.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an anti-sticking feeding structure for FPC automatic detection equipment, which relates to the technical field of FPC board production, and comprises a detection device and a feeding device, and the feeding device comprises a box body, a moving part and a separating part. When the FPC board needs to be detected, the FPC board is placed in the feeding device, then the FPC board is moved to the detection device through the feeding component, the rotating door is opened, the FPC board is placed in the storage box, the rotating door is closed, and the FPC board is moved from the storage box to the detection device through the moving component. The moving part and the separating part are used in cooperation to separate the FPC boards which are adsorbed together under the electrostatic action, the FPC boards which are adsorbed with each other are prevented from entering the detection device to affect the detection result, and therefore the production efficiency of the FPC boards is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of FPC board production, and particularly relates to an anti-sticking feeding structure for an FPC automatic detection device. Background Art

[0002] An FPC board (flexible printed circuit board) is a printed circuit made of a flexible insulating substrate. With its unique flexibility and high reliability, it has become an indispensable electrical connection solution in modern electronic devices. It has excellent electrical performance, can be freely bent and wound, and meets the requirements of miniaturization and mobility of electronic products. FPC boards are widely used in fields such as mobile devices, automotive electronics, and medical devices to achieve thin and light, highly integrated designs. Its manufacturing process includes multiple strictly controlled steps to ensure product quality and reliability.

[0003] Currently, during the production process of FPC boards, they generally need to be detected by machines to promptly discover and repair potential problems such as short circuits, open circuits, and poor soldering in the circuits, thereby ensuring the performance and quality of the final products. At the same time, problems in the production process can be discovered in a timely manner, preventing unqualified products from flowing into the next process, thereby reducing waste and improving production efficiency.

[0004] Generally, when detecting general PCB boards, feeding is carried out through a feeding structure. However, during the production process of FPC boards, static electricity may be generated. The main reasons include a dry environment, friction during operation and human static electricity transfer, static electricity generated by equipment, and inadequate static electricity measures. At the same time, the generation of static electricity will cause some PCB boards to adsorb to each other, which will affect the detection results of the detection equipment, thereby reducing the production efficiency of PCB boards. Summary of the Utility Model

[0005] The purpose of the utility model is to provide an anti-sticking feeding structure for an FPC automatic detection device to solve the problems raised in the above background art.

[0006] To solve the above technical problems, the technical solution adopted by the utility model is:

[0007] An anti-sticking feeding structure for an FPC automatic detection device includes a detection device and a feeding device. The detection device is located on one side of the feeding device. The feeding device includes a box body. A plurality of support legs are evenly and fixedly connected along the circumferential direction on the outer side of the box body. A rotating door is rotatably connected to the box body with damping. A handle is fixedly connected to the rotating door. A storage box is fixedly connected inside the box body. A chute is opened on the box body. A moving component for controlling the separation and movement of the FPC board is connected to the box body. A separation component for separating the mutually adsorbed FPC boards is connected inside the storage box.

[0008] When it is necessary to detect the FPC board, place the FPC board in the loading device, and then move the FPC board to the detection device through the loading component. At this time, open the rotating door, place the FPC board in the storage box, close the rotating door, and then move the FPC board from the storage box to the detection device through the moving component. During this process, the moving component will cooperate with the separating component to separate the FPC boards adsorbed together under the action of static electricity, preventing the mutually adsorbed FPC boards from entering the detection device and affecting the detection result, thereby improving the production efficiency of the FPC board.

[0009] A further improvement of the technical solution of the present utility model lies in that: the moving component includes a first moving assembly and a second moving assembly. The first moving assembly includes a first housing, the first housing is fixedly connected to the box body, a moving groove is opened in the first housing, a first motor is fixedly connected below the first housing, an output end of the first motor is fixedly connected to a first lead screw, the first lead screw is rotatably connected to the first housing, a slide rod is threadedly connected to the first lead screw, the slide rod is respectively slidably connected to the moving groove and the chute, the slide rod is slidably connected to the storage box, a first suction plate is fixedly connected to an end of the slide rod away from the first lead screw, a plurality of through holes are opened on a side of the first suction plate away from the slide rod, a plurality of vacuum generators are fixedly connected to a side of the first suction plate close to the slide rod, one end of the through hole is connected to the vacuum generator, and a sensor is arranged on the first suction plate.

[0010] Adopting the above technical solution, when loading, the first motor is started at this time, driving the first lead screw fixedly connected to its output end to rotate. The rotation of the first lead screw will cooperate with the moving groove to drive the slide rod threadedly connected to the first lead screw to move along the axis direction of the first lead screw. When the slide rod moves into contact with the storage box and the FPC board, the vacuum generator on one side of the first suction plate works at this time, using negative pressure to firmly fix the FPC board on the first suction plate, and then the first suction plate moves to move the FPC board.

[0011] A further improvement of the technical solution of the present utility model lies in that: the second moving assembly includes a second housing, a fixing groove is opened in the second housing, the second housing is fixedly connected to the box body, a second motor is fixedly connected to the outside of the box body, an output end of the second motor is fixedly connected to a second lead screw, the second lead screw is rotatably connected to the second housing, a fixing block is threadedly connected to the second lead screw, a fixing plate is fixedly connected to the fixing block, a rotating motor is fixedly connected to the fixing plate, an output end of the rotating motor is fixedly connected to a second suction plate, a through hole is opened on one side of the second suction plate, a plurality of vacuum generators are fixedly connected to the other side of the second suction plate, one end of the through hole is connected to the vacuum generator, and a sensor is arranged on the second suction plate.

[0012] With the above technical solution, when the first suction plate moves to the top of the box body, the second motor drives the second lead screw fixedly connected to its output end to rotate at this time. The rotation of the second lead screw will drive the fixed block threadedly connected to it to move along the axis of the second lead screw in cooperation with the fixed slot. At this time, the movement of the fixed block will drive the second suction plate to move through the fixed plate. At this time, the second suction plate will move below the first suction plate, and the vacuum generator on one side of the second suction plate will start to work. Here, the vacuum generators on both sides of the first suction plate and the second suction plate are in a working state. Then, after a period of time, the vacuum generator on one side of the first suction plate stops working. At this time, the PCB board will be sucked by the second suction plate, and the second suction plate will transport the PCB board to the detection device. During this process, the second suction plate will change its direction under the action of the rotation motor. At the same time, the sensors will respectively detect whether there is a PCB board on the first suction plate and the second suction plate to judge the situation. If there are PCB boards on both the first suction plate and the second suction plate, the vacuum generator on the first suction plate will not stop working, and the first suction plate will be in a stationary state. The second suction plate will repeat the operation until there is only a PCB board on the second suction plate. At this time, the first suction plate will work normally.

[0013] A further improvement of the technical solution of the present utility model lies in that: the separation component includes a limiting block, several limiting blocks are provided, the limiting blocks are fixedly connected to the storage box, and one side of the limiting block is provided with an inclined surface.

[0014] With the above technical solution, in this solution, by arranging the limiting block, it can be used in cooperation with the first moving component to make the PCB board vibrate during the movement process, so as to shake off the PCB boards adhered to its body, prevent the FPC boards adsorbed to each other from entering the detection device and affecting the detection result. At the same time, because the PCB board has a soft texture, it will not get stuck with the limiting block when used in cooperation with the first suction plate during normal operation, thereby improving the production efficiency of the FPC board.

[0015] A further improvement of the technical solution of the present utility model lies in that: a copper plate is fixedly connected to the inner wall of the storage box, and a wire is connected to the copper plate and grounded.

[0016] With the above technical solution, when the PCB board is placed in the storage box, the PCB board will come into contact with the copper plate at this time, and the static electricity on the PCB board will start to transfer to the ground through the copper plate and the wire connected to it, so as to achieve the purpose of eliminating static electricity.

[0017] A further improvement of the technical solution of the present utility model lies in that: the limiting block is provided with a rounded corner, and the material of the limiting block is rubber.

[0018] With the above technical solution, the rounded corners are provided in the solution to prevent the edges of the limiting block from scratching the PCB board. At the same time, the material of the limiting block is set as rubber, which can better protect the PCB board and prevent the PCB board from being worn, thereby improving the production efficiency of the PCB board.

[0019] A further improvement of the technical solution of the present utility model lies in that: a control panel is fixedly connected to the box body, and the control panel is electrically connected to the first motor, the second motor, the rotating motor and the sensor respectively.

[0020] With the above technical solution, the working states between the first motor, the second motor, the rotating motor and the sensor can be adjusted in time through the provided control panel, thereby improving the working efficiency of the device.

[0021] Due to the adoption of the above technical solution, the technical progress achieved by the present utility model compared with the prior art is:

[0022] 1. The present utility model provides an anti-sticking feeding structure for an FPC automatic detection device. When it is necessary to detect the FPC board, the FPC board is placed in the feeding device, and then the FPC board is moved to the detection device through the feeding component. At this time, the rotating door is opened, the FPC board is placed in the storage box, and the rotating door is closed. At this time, the FPC board is moved from the storage box to the detection device through the moving component. During this process, the moving component will cooperate with the separating component to separate the FPC boards adsorbed together under the action of static electricity, preventing the mutually adsorbed FPC boards from entering the detection device and affecting the detection result, thereby improving the production efficiency of the FPC board.

[0023] 2. The present utility model provides an anti-sticking feeding structure for an FPC automatic detection device. When the first suction plate moves to the top of the box body, the second motor drives the second lead screw fixedly connected to its output end to rotate. The rotation of the second lead screw drives the fixed block threaded thereto to move along the axis of the second lead screw in cooperation with the fixed slot. At this time, the movement of the fixed block drives the second suction plate to move through the fixed plate. At this time, the second suction plate will move below the first suction plate, and the vacuum generator on one side of the second suction plate will start to work. At this time, the vacuum generators on both sides of the first suction plate and the second suction plate are in working state. Then, after a period of time, the vacuum generator on one side of the first suction plate stops working. At this time, the PCB board will be sucked by the second suction plate, and the second suction plate will transport the PCB board to the detection device. During this process, the second suction plate will change its direction under the action of the rotation motor. At the same time, the sensors will respectively detect whether there is a PCB board on the first suction plate and the second suction plate to judge the situation. If there are PCB boards on both the first suction plate and the second suction plate, the vacuum generator on the first suction plate will not stop working, and the first suction plate will be in a static state. The second suction plate will repeat the operation until there is only a PCB board on the second suction plate, and then the first suction plate will work normally.

[0024] 3. The present utility model provides an anti-sticking feeding structure for an FPC automatic detection device. By setting a limiting block that can be used in cooperation with the first moving component, the PCB board will vibrate during movement, so as to shake off the adhered PCB board on it, prevent the mutually adsorbed FPC boards from entering the detection device and affecting the detection result. At the same time, because the PCB board is relatively soft, it will not get stuck with the limiting block when used in cooperation with the first suction plate during normal work, thus improving the production efficiency of the FPC board. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] The following further describes the present utility model with reference to the drawings.

[0026] Figure 1 is a schematic structural diagram of the present utility model;

[0027] Figure 2 is a schematic structural diagram of the feeding device of the present utility model;

[0028] Figure 3 is a schematic diagram of the first cross-sectional structure of the present utility model;

[0029] Figure 4 is a schematic diagram of the second cross-sectional structure of the present utility model;

[0030] Figure 5 is a schematic diagram of the partial structure of the present utility model;

[0031] Figure 6 is a schematic diagram of the structure of the limiting block of the present utility model;

[0032] In the figure: 1, detection device; 2, box body; 3, rotating door; 4, handle; 5, storage box; 6, first housing; 7, moving groove; 8, first motor; 9, first lead screw; 10, sliding rod; 11, first suction plate; 12, through hole; 13, vacuum generator; 14, second housing; 15, second motor; 16, second lead screw; 17, fixed block; 18, fixing plate; 19, rotating motor; 20, second suction plate; 21, limiting block; 22, inclined surface; 23, copper plate; 24, rounded corner; 25, control panel. Specific embodiments

[0033] The following further describes the present utility model in detail with reference to embodiments:

[0034] Embodiment

[0035] As Figure 1 shown, the present utility model provides an anti-sticking feeding structure for an FPC automatic detection device, including a detection device 1 and a feeding device. The detection device 1 is located on one side of the feeding device. The feeding device includes a box body 2. A plurality of support legs are evenly and fixedly connected to the outer side of the box body 2 along the circumferential direction. A rotating door 3 is rotatably connected to the box body 2 in a damped manner. A handle 4 is fixedly connected to the rotating door 3. A storage box 5 is fixedly connected inside the box body 2. A sliding groove is formed in the box body 2. A moving component for controlling the separation and movement of the FPC board is connected to the box body 2. A separation component for separating the mutually adsorbed FPC boards is connected inside the storage box 5.

[0036] In this embodiment, when it is necessary to detect the FPC board, the FPC board is placed in the feeding device, and then the FPC board is moved to the detection device 1 through the feeding component. At this time, the rotating door 3 is opened, the FPC board is placed in the storage box 5, and the rotating door 3 is closed. At this time, the FPC board is moved from the storage box 5 to the detection device 1 through the moving component. During this process, the moving component and the separation component cooperate to separate the FPC boards adsorbed together under the action of static electricity, preventing the mutually adsorbed FPC boards from entering the detection device 1 and thus affecting the detection result, thereby improving the production efficiency of the FPC board.

[0037] As Figure 2 , Figure 3 , Figure 4As shown, in this embodiment, preferably, the moving part includes a first moving component and a second moving component. The first moving component includes a first housing 6, and the first housing 6 is fixedly connected to the box body 2. A moving groove 7 is formed in the first housing 6. A first motor 8 is fixedly connected to the lower part of the first housing 6. The output end of the first motor 8 is fixedly connected to a first lead screw 9. The first lead screw 9 is rotatably connected to the first housing 6. A slide bar 10 is threadedly connected to the first lead screw 9. The slide bar 10 is slidably connected to the moving groove 7 and the chute respectively. The slide bar 10 is slidably connected to the storage box 5. One end of the slide bar 10 away from the first lead screw 9 is fixedly connected to a first suction plate 11. A plurality of through holes 12 are formed in one side of the first suction plate 11 away from the slide bar 10. A plurality of vacuum generators 13 are fixedly connected to one side of the first suction plate 11 close to the slide bar 10. One end of the through hole 12 is connected to the vacuum generator 13. A sensor is arranged on the first suction plate 11.

[0038] When loading materials, at this time, the first motor 8 is started to drive the first lead screw 9 fixedly connected to its output end to rotate. The rotation of the first lead screw 9 will cooperate with the moving groove 7 to drive the slide bar 10 threadedly connected to the first lead screw 9 to move along the axis direction of the first lead screw 9. When the slide bar 10 moves into contact with the FPC board in the storage box 5, at this time, the vacuum generator 13 on one side of the first suction plate 11 works, and uses negative pressure to firmly fix the FPC board on the first suction plate 11, and then the first suction plate 11 moves to move the FPC board.

[0039] As Figure 3 , Figure 4 As shown, preferably, the second moving component includes a second housing 14. A fixing groove is formed in the second housing 14. The second housing 14 is fixedly connected to the box body 2. A second motor 15 is fixedly connected to the outside of the box body 2. The output end of the second motor 15 is fixedly connected to a second lead screw 16. The second lead screw 16 is rotatably connected to the second housing 14. A fixing block 17 is threadedly connected to the second lead screw 16. A fixing plate 18 is fixedly connected to the fixing block 17. A rotating motor 19 is fixedly connected to the fixing plate 18. The output end of the rotating motor 19 is fixedly connected to a second suction plate 20. A through hole 12 is formed in one side of the second suction plate 20. A plurality of vacuum generators 13 are fixedly connected to the other side of the second suction plate 20. One end of the through hole 12 is connected to the vacuum generator 13. A sensor is arranged on the second suction plate 20.

[0040] When the first suction plate 11 moves to the top of the box body 2, at this time, the second motor 15 drives the second lead screw 16 fixedly connected to its output end to rotate. The rotation of the second lead screw 16 will drive the fixed block 17 threadedly connected to it to move along the axis of the second lead screw 16 in cooperation with the fixed slot. At this time, the movement of the fixed block 17 will drive the second suction plate 20 to move through the fixed plate 18. At this time, the second suction plate 20 will move to the lower part of the first suction plate 11. The vacuum generator 13 on one side of the second suction plate 20 will start to work. At this time, the vacuum generators 13 on both sides of the first suction plate 11 and the second suction plate 20 are in the working state. Then, after a period of time, the vacuum generator 13 on one side of the first suction plate 11 stops working. At this time, the PCB board will be sucked by the second suction plate 20. The second suction plate 20 will transport the PCB board to the detection device 1. During this process, the second suction plate 20 will change its direction under the action of the rotation motor 19. At the same time, the sensors will respectively detect whether there is a PCB board on the first suction plate 11 and the second suction plate 20 to judge the situation. If there are PCB boards on both the first suction plate 11 and the second suction plate 20, the vacuum generator 13 on the first suction plate 11 will not stop working, and the first suction plate 11 will be in a static state. The second suction plate 20 will repeat the operation until there is only a PCB board on the second suction plate 20. At this time, the first suction plate 11 will work normally.

[0041] As Figure 6 shown, preferably, the separating component includes a limiting block 21. A plurality of limiting blocks 21 are provided. The limiting blocks 21 are fixedly connected to the storage box 5. One side of the limiting block 21 is provided with an inclined surface 22.

[0042] By providing the limiting block 21, it can be used in cooperation with the first moving component to cause the PCB board to vibrate during the movement, so as to shake off the PCB boards adhered to its body, prevent the FPC boards that are adsorbed to each other from entering the detection device 1 and affecting the detection result. At the same time, because the PCB board is relatively soft, it will not get stuck with the limiting block 21 when used in cooperation with the first suction plate 11 during normal operation, thereby improving the production efficiency of the FPC board.

[0043] As Figure 5 shown, preferably, a copper plate 23 is fixedly connected to the inner wall of the storage box 5. The copper plate 23 is connected to a wire to be grounded.

[0044] When the PCB board is placed in the storage box 5, at this time, the PCB board will come into contact with the copper plate 23, and the static electricity on the PCB board will start to transfer to the ground through the copper plate 23 and the wire connected to it, so as to achieve the purpose of eliminating static electricity.

[0045] As Figure 6 shown, preferably, the limiting block 21 is provided with a rounded corner 24, and the material of the limiting block 21 is rubber.

[0046] The rounded corners 24 are provided to prevent the edges of the limiting block 21 from scratching the PCB board. At the same time, setting the material of the limiting block 21 to rubber can better protect the PCB board and prevent the PCB board from being worn, thereby improving the production efficiency of the PCB board.

[0047] As Figure 1 shown, preferably, a control panel 25 is fixedly connected to the box body 2, and the control panel 25 is electrically connected to the first motor 8, the second motor 15, the rotation motor 19, and the sensor respectively.

[0048] By providing the control panel 25, the working states among the first motor 8, the second motor 15, the rotation motor 19, and the sensor can be adjusted in a timely manner, thereby improving the working efficiency of the device.

[0049] Next, the working principle of the anti-sticking feeding structure for the FPC automatic detection device will be specifically described.

[0050] As Figures 1-6As shown, when it is necessary to detect the FPC board, place the FPC board in the feeding device, and then move the FPC board to the detection device 1 through the feeding component. At this time, open the rotating door 3, place the FPC board in the storage box 5, and close the rotating door 3. Then, move the FPC board from the storage box 5 to the detection device 1 through the moving component. During this process, the moving component will cooperate with the separating component to separate the FPC boards adsorbed together under the action of static electricity, preventing the mutually adsorbed FPC boards from entering the detection device 1 and thus affecting the detection result, thereby improving the production efficiency of the FPC board. When feeding, at this time, the first motor 8 starts, driving the first lead screw 9 fixedly connected to its output end to rotate. The rotation of the first lead screw 9 will cooperate with the moving groove 7 to drive the slide bar 10 threadedly connected to the first lead screw 9 to move along the axis of the first lead screw 9. When the slide bar 10 moves into contact with the FPC board in the storage box 5, at this time, the vacuum generator 13 on one side of the first suction plate 11 works, using negative pressure to firmly fix the FPC board on the first suction plate 11, and then the first suction plate 11 moves to move the FPC board. When the first suction plate 11 moves to the top of the box body 2, at this time, the second motor 15 drives the second lead screw 16 fixedly connected to its output end to rotate. The rotation of the second lead screw 16 will drive the fixed block 17 threadedly connected to it to move along the axis of the second lead screw 16 in cooperation with the fixed groove. At this time, the movement of the fixed block 17 will drive the second suction plate 20 to move through the fixed plate 18. At this time, the second suction plate 20 will move to the lower side of the first suction plate 11, and the vacuum generator 13 on one side of the second suction plate 20 will start to work. At this time, the vacuum generators 13 on both sides of the first suction plate 11 and the second suction plate 20 are in working state. Then, after an interval of time, the vacuum generator 13 on one side of the first suction plate 11 stops working. At this time, the PCB board will be sucked by the second suction plate 20, and the second suction plate 20 will transport the PCB board to the detection device 1. During this process, the second suction plate 20 will change direction under the action of the rotating motor 19. At the same time, the sensors will respectively detect whether there is a PCB board on the first suction plate 11 and the second suction plate 20 to judge the situation. If there are PCB boards on both the first suction plate 11 and the second suction plate 20, the vacuum generator 13 on the first suction plate 11 will not stop working, and the first suction plate 11 will be in a static state. The second suction plate 20 will repeat the operation until there is only a PCB board on the second suction plate 20, and then the first suction plate 11 will work normally. By setting the limiting block 21 to cooperate with the first moving component, the PCB board will vibrate during the movement process, so as to shake off the PCB boards adhered to its body, prevent the mutually adsorbed FPC boards from entering the detection device 1 and thus affecting the detection result. At the same time, because the PCB board is relatively soft, it will not get stuck with the limiting block 21 when cooperating with the first suction plate 11 during normal operation, thereby improving the production efficiency of the FPC board.When the PCB board is placed in the storage box 5, the PCB board will come into contact with the copper plate 23 at this time, and the static electricity on the PCB board will start to transfer to the ground through the copper plate 23 and the wires connected thereto, so as to achieve the purpose of eliminating static electricity. The rounded corners 24 are provided to prevent the edges of the limiting block 21 from scratching the PCB board. At the same time, setting the material of the limiting block 21 to rubber can better protect the PCB board and prevent the PCB board from being worn, thereby improving the production efficiency of the PCB board. By providing a control panel 25, the working states of the first motor 8, the second motor 15, the rotating motor 19 and the sensor can be adjusted in a timely manner, thereby improving the working efficiency of the device.

[0051] The above has generally described the present invention in detail, but based on the present invention, some modifications or improvements can be made, which are obvious to those of ordinary skill in the art. Therefore, the modifications or improvements made without departing from the spirit of the present invention are within the protection scope of the present invention.

Claims

1. An anti-sticking feeding structure for FPC automated testing equipment, comprising a testing device (1) and a feeding device, wherein the testing device (1) is located on one side of the feeding device; characterized in that: The loading device comprises a box body (2), the outer side of the box body (2) is evenly arranged and fixedly connected with a plurality of supporting legs in a circumferential direction, a rotating door (3) is connected to the box body (2) in a damped rotation manner, a handle (4) is fixedly connected to the rotating door (3), a storage box (5) is fixedly connected inside the box body (2), a sliding groove is provided on the box body (2), a moving component for controlling the separation and movement of FPC boards is connected to the box body (2), and a separation component for separating mutually adsorbed FPC boards is connected inside the storage box (5).

2. The anti-sticking feeding structure for FPC automated testing equipment according to claim 1, characterized in that: The moving component comprises a first moving assembly and a second moving assembly, wherein the first moving assembly comprises a first shell (6), the first shell (6) is fixedly connected to the box body (2), a moving groove (7) is provided in the first shell (6), a first motor (8) is fixedly connected below the first shell (6), a first screw rod (9) is fixedly connected to the output end of the first motor (8), the first screw rod (9) is rotatably connected to the first shell (6), a sliding rod (10) is threadedly connected to the first screw rod (9), and the sliding rod (10) The sliding rod (10) is slidably connected to the movable groove (7) and the sliding groove respectively, and the sliding rod (10) is slidably connected to the storage box (5). The end of the sliding rod (10) away from the first screw rod (9) is fixedly connected to the first suction plate (11). The side of the first suction plate (11) away from the sliding rod (10) is provided with a plurality of through holes (12). The side of the first suction plate (11) close to the sliding rod (10) is fixedly connected to a plurality of vacuum generators (13). One end of the through hole (12) is connected to the vacuum generator (13). A sensor is arranged on the first suction plate (11).

3. The anti-sticking feeding structure for FPC automated testing equipment according to claim 2, characterized in that: The second moving assembly comprises a second shell (14), a fixing groove is provided in the second shell (14), the second shell (14) is fixedly connected to the box (2), a second motor (15) is fixedly connected to the outer side of the box (2), the output end of the second motor (15) is fixedly connected to a second screw rod (16), the second screw rod (16) is rotatably connected to the second shell (14), a fixing block (17) is threadedly connected to the second screw rod (16), a fixing plate (18) is fixedly connected to the fixing block (17), a rotating motor (19) is fixedly connected to the fixing plate (18), the output end of the rotating motor (19) is fixedly connected to a second suction plate (20), a through hole (12) is provided on one side of the second suction plate (20), a plurality of vacuum generators (13) are fixedly connected to the other side of the second suction plate (20), one end of the through hole (12) is connected to the vacuum generator (13), and a sensor is arranged on the second suction plate (20).

4. The anti-sticking feeding structure for FPC automated testing equipment according to claim 3, characterized in that: The separation component comprises a limiting block (21), a plurality of limiting blocks (21) are provided, the limiting block (21) is fixedly connected to the storage box (5), and a slope (22) is provided on one side of the limiting block (21).

5. The anti-sticking feeding structure for FPC automated testing equipment according to claim 4, characterized in that: A copper plate (23) is fixedly connected to the inner wall of the storage box (5), and a wire is connected to the copper plate (23) for grounding.

6. The anti-sticking feeding structure for FPC automated testing equipment according to claim 5, characterized in that: The limiting block (21) is provided with a rounded corner (24), and the limiting block (21) is made of rubber.

7. The anti-sticking feeding structure for FPC automated testing equipment according to claim 6, characterized in that: A control panel (25) is fixedly connected to the box body (2), and the control panel (25) is electrically connected to the first motor (8), the second motor (15), the rotating motor (19) and the sensor respectively.