Automatic production equipment for printing plates
By combining the lifting and feeding mechanisms, automatic vertical stacking and loading of substrates can be achieved, solving the problems of labor waste and low efficiency in existing equipment and improving the efficiency and accuracy of printed board production.
Patent Information
- Application Number
- CN202510996525.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-18
- Publication Date
- 2025-10-10
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The loading method of existing automatic printing plate production equipment leads to labor waste and low loading efficiency, and is particularly unsuitable for small production equipment.
The lifting mechanism and feeding mechanism are used, and the substrates are stacked in the vertical direction. The cooperation of the lifting drive component and the feeding mechanism realizes the automatic loading of the substrates, and the position of the substrates is adjusted by the aligning component to improve the loading efficiency and accuracy.
Save space, improve substrate loading efficiency, ensure accurate substrate positioning, reduce tipping, and improve overall production efficiency.
Smart Images

Figure CN120756923A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of printing plate production, and in particular to an automatic printing plate production device. Background Art
[0002] Automatic printing plate production equipment is a special equipment used to print patterns on substrates. It is widely used in the printing process of materials such as circuit boards and ceramic substrates. The equipment can perform cutting, coating photosensitive adhesive, exposure, development, etching, film stripping and cleaning processes, and can carry out small-scale substrate printing production.
[0003] The automatic production equipment for printed boards is provided with a feed port, and the substrate needs to be loaded from the feed port of the equipment. After that, the equipment prints the substrate. The common loading method on the market is to arrange multiple substrates in an orderly manner and place them on the top surface of the conveyor belt. After that, multiple substrates enter the equipment through the feed port in turn. However, the conveyor belt of this loading method will take up a large space and is not suitable for small production equipment. Therefore, the current loading method for substrates is that the staff puts multiple substrates through the feed port in turn, and this method will cause a waste of labor, and will lead to unstable loading efficiency, resulting in low loading efficiency, thereby affecting the production efficiency of the printed board. Summary of the Invention
[0004] In order to improve the loading efficiency of substrates, the present application provides an automatic production device for printed circuit boards.
[0005] This application provides an automatic printing plate production device, which adopts the following technical solutions: An automatic production device for printing plates, comprising: Machine body: There is a feed port at the feed end of the machine body; Lifting mechanism: The lifting mechanism is set at the feeding end of the machine body. Multiple substrates are stacked vertically on the top surface of the lifting mechanism. The lifting mechanism is used to drive the stacked substrates to move up and down; Feeding mechanism: The feeding mechanism is set on the side of the feeding end of the machine body and the feeding mechanism is located on the side of the lifting mechanism. The feeding mechanism is used to move the substrate from the feeding port into the machine body; Alignment component: The alignment component is set on the top of the lifting mechanism, and is used to align the multiple substrates on the top.
[0006] By adopting the above-mentioned technical solution, the present application stacks multiple substrates in a vertical direction. Compared with the horizontal arrangement and transmission method, the present application can save the space occupied by placing multiple substrates. Under the action of the feeding mechanism, the stacked multiple substrates can be transferred into the machine body in turn, thereby improving the efficiency of substrate loading. Moreover, under the action of the lifting drive assembly, when the top substrate is moved, the lifting drive assembly drives the multiple substrates to move upward, thereby keeping the top surfaces of the stacked multiple substrates in the same position, which is convenient for the feeding mechanism to move the substrates. Under the action of the aligning assembly, the top multiple substrates can be aligned, which is convenient for the feeding mechanism to take materials and also makes the position of the substrate more accurate when it is moved into the machine body.
[0007] Preferably, the lifting mechanism includes a lifting drive assembly and a telescopic assembly, the output end of the lifting drive assembly is connected to one end of the telescopic assembly, the substrate is placed on the top of the telescopic assembly, and the lifting drive assembly is used to drive the telescopic assembly to extend and retract.
[0008] By adopting the above technical solution, the lifting drive component can drive the telescopic component to extend and retract. When the lifting drive component drives the telescopic component to extend, it drives the substrate placed on the top of the telescopic component to move upward. When the lifting drive component drives the telescopic component to shorten, it can drive the substrate placed on the top of the telescopic component to move downward.
[0009] Preferably, the lifting drive assembly includes a rotating unit and a telescopic frame. The rotating unit can rotate up and down around one end. The output end of the rotating unit is connected to one end of the telescopic frame. The rotation of the rotating unit can drive the telescopic frame to extend and retract.
[0010] By adopting the above technical solution, when the rotating unit rotates upward around one end, the telescopic frame can be extended, thereby driving the substrate to move upward. Correspondingly, when the rotating unit rotates downward around one end, the telescopic frame can be shortened, thereby driving the substrate to move downward, making the lifting and lowering of the substrate easier.
[0011] Preferably, the feeding mechanism includes a mobile drive component, an adjustment component and a suction cup component. The output end of the mobile drive component is connected to one end of the adjustment component. The suction cup component is installed at the bottom of the adjustment component. The mobile drive component can drive the adjustment component to move horizontally, and the adjustment component can drive the suction cup to move vertically.
[0012] By adopting the above technical solution, the mobile driving component can drive the adjustment component to move horizontally, and the adjustment component can drive the suction cup to move vertically. Under the action of the mobile driving component and the adjustment component, the suction cup component can be driven to move vertically and horizontally.
[0013] When the substrate needs to be transferred into the machine body, the adjustment component is started, and the adjustment component drives the suction cup component to move downward until the suction cup component is located on the top surface of the substrate. After that, the suction cup component adsorbs the top surface of the substrate, and the adjustment component is started again, and the adjustment component drives the suction cup component to move upward. After that, the mobile drive component is started, and the mobile drive component drives the suction cup assembly to move toward the feed port of the machine body, thereby driving the suction cup with the substrate adsorbed thereon to enter the machine body from the feed port. Finally, the adjustment component drives the suction cup assembly to move downward, and the suction cup assembly releases the substrate, thereby transferring the substrate into the machine body. After that, the suction cup assembly is restored to its original position to transfer the next substrate.
[0014] Preferably, a stop plate is fixed to the feed end of the machine body, the top surface of the stop plate is lower than the bottom surface of the feed port, and one side of the stacked multiple substrates abuts against one side of the stop plate.
[0015] By adopting the above technical solution, one side of the stacked substrates abuts against one side of the abutment plate, and the side of the substrate close to the feeding mechanism abuts against the side wall of the machine body, thereby limiting the position of the substrates and reducing the possibility of the stacked substrates tipping over.
[0016] Preferably, there are two tidying components, one tidying component is arranged opposite to the retaining plate, and the other tidying component is arranged opposite to the moving drive component.
[0017] By adopting the above technical solution, one aligning component is arranged opposite to the stop plate, and the other aligning component is arranged opposite to the mobile drive component. One aligning component aligns and adjusts the multiple substrates on the top with one side of the stop plate, and the other aligning component aligns and adjusts the multiple substrates on the top with one side of the body, so that the suction cup component can adjust the position of the substrate before adsorbing the substrate, which facilitates the adsorption of the suction cup and makes the position of the substrate more accurate when it is moved into the body.
[0018] Preferably, a support frame is installed on the side of the machine body away from the feeding mechanism, and the tidying component is detachably installed on the top surface of the support frame.
[0019] By adopting the above technical solution, the aligning component and the mounting frame are detachably connected, so that the position of the aligning component can be adjusted. The adjusting component can adjust its position according to the size of the substrate, thereby improving the applicability of the aligning component.
[0020] Preferably, the aligning component includes a driving member and an aligning plate. The driving member is arranged on the top of the support frame. The output end of the driving member is assembled with one side of the aligning plate. The side wall of the aligning plate corresponds to one side of the multiple substrates stacked on the top.
[0021] By adopting the above technical solution, before the suction cup assembly absorbs the substrate, the pushing drive member is started, and the pushing drive member drives the aligning plate to move toward the side of the substrate. The side wall of the aligning plate pushes one side of the multiple substrates stacked on the top, so that one side of the multiple substrates on the top is abutted against the side of the retaining plate or the side of the machine body, and the positions of the multiple substrates on the top are adjusted to reduce the situation where the top substrate does not abut against the side of the retaining plate, and the multiple substrates on the top are aligned.
[0022] Preferably, the telescopic assembly includes a placement plate, the placement plate is installed on the top surface of the telescopic frame, and the substrate is placed on the top surface of the placement plate.
[0023] By adopting the above technical solution, under the action of the placement plate, the placement plate plays the role of placing and accommodating multiple substrates, so that the multiple substrates can be stacked and placed more stably.
[0024] Preferably, there are four telescopic frames, which are distributed in a rectangular shape on the bottom surface of the placement plate.
[0025] By adopting the above technical solution, there are four telescopic frames. When the four telescopic frames are extended, the four telescopic frames respectively lift the four corners of the bottom surface of the placement plate, driving the placement plate to move upward, so that the load on the placement plate can be distributed to the four telescopic frames, reducing the pressure on one telescopic frame. At the same time, the movement of the base plate can be made more stable.
[0026] In summary, this application includes at least one of the following beneficial technical effects: 1. The present application stacks multiple substrates in a vertical direction. Compared with the horizontal arrangement and transmission method, the present application can save the space occupied by placing multiple substrates. Under the action of the feeding mechanism, the stacked multiple substrates can be transferred into the machine body in sequence, thereby improving the efficiency of substrate loading. Moreover, under the action of the lifting drive assembly, when the top substrate is transferred, the lifting drive assembly drives the multiple substrates to move upward, thereby keeping the top surfaces of the stacked multiple substrates in the same position, which is convenient for the feeding mechanism to transfer the substrates. Under the action of the aligning assembly, the top multiple substrates can be aligned, which is convenient for the feeding mechanism to take the materials and also makes the position of the substrates more accurate when they are moved into the machine body.
[0027] 2. Start the adjustment component, which drives the suction cup component to move downward until the suction cup component is located on the top surface of the substrate. After that, the suction cup component adsorbs the top surface of the substrate. Start the adjustment component again, which drives the suction cup component to move upward. After that, start the mobile drive component, which drives the suction cup component to move toward the feed port of the machine body, thereby driving the suction cup with the substrate adsorbed thereon into the machine body from the feed port. Finally, the adjustment component drives the suction cup component to move downward, and the suction cup component releases the substrate, thereby transferring the substrate into the machine body. After that, the suction cup component is restored to its original position to transfer the next substrate. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present application.
[0029] Figure 2 It is a structural diagram of the lifting mechanism of an embodiment of the present application.
[0030] Figure 3 yes Figure 1 A magnified view of the middle panel.
[0031] Figure 4 It is a schematic diagram of the local structure of an embodiment of the present application.
[0032] Figure 5 It is a schematic diagram of the local structure from another perspective of an embodiment of the present application.
[0033] Explanation of the accompanying drawings: 1. Machine body; 11. Feed inlet; 12. Baffle plate; 13. Support frame; 2. Lifting mechanism; 21. Lifting drive assembly; 211. Lifting drive unit; 2111. Lifting motor; 2112. Worm; 212. Rotating unit; 2121. Worm gear; 2122. Rotating shaft; 2123. Support rod; 22. Telescopic assembly; 221. Telescopic frame; 2211. Fixed rod; 2212. Moving rod; 222. Placement plate; 3. Feeding mechanism; 31. Moving drive assembly; 32. Moving seat; 33. Adjustment assembly; 331. Connecting seat; 34. Mounting plate; 35. Suction cup assembly; 4. Alignment assembly; 41. Stabilizing seat; 42. Push cylinder; 43. Alignment plate; 5. Base plate. DETAILED DESCRIPTION
[0034] The following is combined with Figure 1-5 This application is described in further detail.
[0035] The embodiment of the present application discloses an automatic production device for printing plates.
[0036] Reference Figure 1 and Figure 2, an automatic printing plate production equipment includes an organic body 1, a feeding port 11 is opened at the feeding end of the body 1, and a cutting structure, a coating structure, an exposure structure, a developing structure, an etching structure and a cleaning structure are sequentially arranged in the body 1. The substrate 5 enters the body 1 through the feeding port 11. The substrate 5 entering the body 1 is sequentially subjected to the steps of cutting, coating with photosensitive resin, exposure, development, etching, film stripping and cleaning, thereby completing the production of the printing plate.
[0037] A loading structure is provided at the feed end of the body 1, and the output end of the loading structure is aligned with the feed port 11. The loading structure is used to transfer the substrate 5 from the feed port 11 to the inside of the body 1. The loading structure includes a lifting mechanism 2, and the lifting mechanism 2 includes a lifting drive assembly 21. The lifting drive assembly 21 includes a lifting drive unit 211. The lifting drive unit 211 includes a lifting drive member and a worm 2112. In the embodiment of the present application, the lifting drive member is a lifting motor 2111. A mounting seat is fixed at the bottom of the feed end of the body 1. The lifting motor 2111 is installed at the bottom of the body 1. The lifting motor 2111 is located at the bottom of the mounting seat. One end of the worm 2112 is rotatably connected to the top surface of the mounting seat. The bottom end of the worm 2112 passes through the top surface of the mounting seat. The worm 2112 passes through the mounting seat part and is assembled with the lifting motor 2111.
[0038] The lifting drive assembly 21 also includes a rotating unit 212, which includes a worm gear 2121, a rotating shaft 2122 and a supporting rod 2123. The worm gear 2121 is installed on the top of the mounting seat, and the outer wall of the worm gear 2121 is meshed with the outer wall of the worm 2112. One end of the rotating shaft 2122 passes through the side wall of the mounting seat and the side wall of the worm gear 2121 at the same time. The rotating shaft 2122 is rotatably connected to the mounting seat, and the rotating shaft 2122 and the worm gear 2121 are fixedly connected. There are two supporting rods 2123, which are respectively fixed at both ends of the rotating shaft 2122. The lifting motor 2111 is started, and the lifting motor 2111 drives the worm 2112 to rotate. With the cooperation of the worm gear 2121 and the worm 2112, the rotating shaft 2122 is driven to rotate, and the rotation of the rotating shaft 2122 drives the supporting rod 2123 to rotate.
[0039] Reference Figure 2There are two rotating units 212, and the two rotating units 212 are distributed at both ends of the mounting seat. The four supporting rods 2123 are distributed in a rectangular shape. The lifting mechanism 2 also includes a telescopic component 22, and the telescopic component 22 includes a telescopic frame 221 and a placement plate 222. The number of telescopic frames 221 is adapted to the number of supporting rods 2123. There are four telescopic frames 221, and the four telescopic frames 221 are respectively connected to the supporting rods 2123 close to them. The telescopic frame 221 includes a fixed rod 2211 and a mobile rod 2212. The fixed rod 2211 is fixedly installed at the bottom of the body 1, and the mobile The bottom end of the rod 2212 is movably inserted into the cavity of the fixed rod 2211, and the movable rod 2212 can move up and down along the inside of the fixed rod 2211. A guide groove is provided through the side wall of the fixed rod 2211, and the guide groove is arranged along the vertical direction of the fixed rod 2211. The end of the supporting rod 2123 away from the rotating shaft 2122 can move through the guide groove, and the end of the supporting rod 2123 away from the rotating shaft 2122 is hinged to the bottom of the movable rod 2212. The placement plate 222 is set at the top of the telescopic frame 221, and the four corners of the bottom surface of the placement plate 222 are respectively fixed to the top of the movable rod 2212 close to it.
[0040] Start the lifting drive assembly 21, the rotating shaft 2122 drives the supporting rod 2123 to rotate, and when the supporting rod 2123 rotates upward near one end of the moving rod 2212, the supporting rod 2123 drives the moving rod 2212 to move upward, so that the four moving rods 2212 drive the placement plate 222 to move upward. Correspondingly, when the supporting rod 2123 rotates downward near one end of the moving rod 2212, the supporting rod 2123 drives the moving rod 2212 to move downward, and the four moving rods 2212 drive the placement plate 222 to move downward.
[0041] Multiple substrates 5 are stacked in the vertical direction and placed on the top surface of the placement plate 222. The substrate 5 at the top corresponds to the feed port 11. A feeding mechanism 3 is provided on one side of the feed end of the body 1. The feeding mechanism 3 is located on one side of the lifting drive assembly 21. The feeding mechanism 3 includes a moving drive assembly 31 and a moving seat 32. The moving seat 32 is slidably connected to one side of the body 1. The moving drive assembly 31 is arranged inside the body 1. The moving drive assembly 31 includes a moving motor and a screw rod. The moving motor is installed in the body 1. The screw rod is connected in the body 1. The long side of the screw rod is parallel to the long side of the body 1. The output end of the moving motor is assembled with one end of the screw rod, and the other end of the screw rod is rotatably connected to the body 1. The bottom of the moving seat 32 is threadedly connected to the screw rod. Start the moving motor, and the moving motor drives the screw rod to rotate. The rotation of the screw rod can drive the moving seat 32 to move along the long side direction of the body 1.
[0042] Reference Figure 1 and Figure 3The feeding mechanism 3 also includes an adjustment component 33, and the adjustment component 33 includes a lifting drive member and a connecting seat 331. In the embodiment of the present application, the lifting drive member is a lifting cylinder, and one side of the lifting cylinder is installed on the side wall of the moving seat 32. One side of the connecting seat 331 is slidingly connected to the side wall of the moving seat 32. The connecting seat 331 can move up and down along the moving seat 32, and the output end of the lifting cylinder is assembled with the top of the connecting seat 331.
[0043] Start the lifting cylinder, the lifting cylinder can drive the connecting seat 331 to move up and down. Correspondingly, start the moving motor, the moving motor drives the screw rod to rotate, thereby driving the lifting cylinder to move along the long side direction of the screw rod, and then driving the connecting seat 331 to move along the long side direction of the screw rod. Under the action of the moving drive component 31 and the adjustment component 33, the connecting seat 331 can be driven to move in the vertical and horizontal directions.
[0044] A mounting plate 34 is installed at the outer end of the connecting seat 331, and the mounting plate 34 is vertically arranged on one side of the connecting seat 331. The mounting plate 34 is located on the top of the placement plate 222. The feeding mechanism 3 also includes a suction cup assembly 35. The suction cup assembly 35 is arranged on the bottom surface of the mounting plate 34 away from the end of the connecting seat 331. The suction cup assembly 35 includes a suction cup. The number of suction cups depends on the specific situation. In the embodiment of the present application, there are two suction cups, and the two suction cups are distributed at both ends of the mounting plate 34. The two suction cups correspond to the two corners of the top surface of the substrate 5 respectively. There are two suction cup assemblies 35, and the two suction cup assemblies 35 are arranged in parallel, so that the four suction cups correspond to the four corners of the top surface of the substrate 5 respectively.
[0045] Reference Figure 1 and Figure 4 When the substrate 5 needs to be transferred into the machine body 1, the lifting cylinder is started, and the lifting cylinder drives the connecting seat 331 to move downward until the suction cup is located on the top surface of the substrate 5. After that, the four suction cups adsorb the four corners of the top surface of the substrate 5, and then the lifting cylinder is started again. The lifting cylinder drives the connecting seat 331 to move upward, and then the moving drive component 31 is started. The moving drive component 31 drives the connecting seat 331 to move toward the feed port 11 of the machine body 1, thereby driving the suction cup with the substrate 5 adsorbed thereon to enter the machine body 1 from the feed port 11. Finally, the lifting cylinder drives the connecting seat 331 to move downward, and the suction cup releases the substrate 5, thereby transferring the substrate 5 into the machine body 1. After that, the suction cup is restored to its original position to transfer the next substrate 5.
[0046] The present application stacks multiple substrates 5 in a vertical direction. Compared with the horizontal arrangement and transmission method, the present application can save the space occupied by the multiple substrates 5. Under the action of the feeding mechanism 3, the multiple stacked substrates 5 can be transferred to the machine body 1 in sequence, thereby improving the efficiency of loading the substrates 5. Moreover, under the action of the lifting drive component 21, when the top substrate 5 is transferred, the lifting drive component 21 drives the multiple substrates 5 to move upward, thereby keeping the top surfaces of the stacked multiple substrates 5 in the same position, facilitating the transfer of the substrates 5 by the feeding mechanism 3.
[0047] Reference Figure 4 and Figure 5 A stop plate 12 is fixed to the feed end of the machine body 1, and the top surface of the stop plate 12 is lower than the bottom surface of the feed port 11. One side of the multiple stacked substrates 5 abuts against one side of the stop plate 12, and the side of the substrate 5 close to the feeding mechanism 3 abuts against the side wall of the machine body 1, thereby limiting the position of the substrate 5 and reducing the possibility of multiple stacked substrates 5 tipping over.
[0048] A support frame 13 is installed on the side of the machine body 1 away from the feeding mechanism 3, and a tidying component 4 is provided on the top surface of the support frame 13. The tidying component 4 includes a stabilizing seat 41, a pushing driving member and a tidying plate 43. The stabilizing seat 41 is slidably connected to the top surface of the support frame 13. The stabilizing seat 41 and the support frame 13 are connected by bolts. In the embodiment of the present application, the pushing driving member is a pushing cylinder 42, which is installed on the top surface of the stabilizing seat 41. One side of the tidying plate 43 is assembled with the output end of the pushing cylinder 42, and the side wall of the tidying plate 43 is aligned with the stacking On one side of the stacked multiple substrates 5, the aligning plate 43 is located on the opposite side of the retaining plate 12. Before the suction cup absorbs the substrate 5, the pushing cylinder 42 is started, and the pushing cylinder 42 drives the aligning plate 43 to move toward the side of the substrate 5. The side wall of the aligning plate 43 pushes one side of the multiple substrates 5 stacked on the top, and abuts one side of the multiple substrates 5 on the top with the side of the retaining plate 12, adjusts the position of the multiple substrates 5 on the top, reduces the situation where the top substrate 5 does not abut against the side of the retaining plate 12, and aligns the multiple substrates 5 on the top.
[0049] In the embodiment of the present application, there are two aligning components 4, one aligning component 4 is arranged opposite to the retaining plate 12, and the other aligning component 4 is arranged opposite to the moving drive component 31. One aligning component 4 aligns and adjusts the multiple substrates 5 on the top with one side of the retaining plate 12, and the other aligning component 4 aligns and adjusts the multiple substrates 5 on the top with one side of the body 1, so that the suction cup can adjust the position of the substrate 5 before adsorbing the substrate 5, which facilitates the adsorption of the suction cup and makes the position of the substrate 5 more accurate when it is moved into the body 1.
[0050] The above are all preferred embodiments of the present application. These embodiments are only explanations of the present application and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be covered within the scope of protection of the present application.
Claims
1. An automatic production equipment for printing plates, characterized in that: include: Machine body (1): a feed port (11) is provided at the feed end of the machine body (1); Lifting mechanism (2): The lifting mechanism (2) is arranged at the feeding end of the machine body (1), and a plurality of substrates (5) are stacked and placed on the top surface of the lifting mechanism (2) in a vertical direction. The lifting mechanism (2) is used to drive the stacked plurality of substrates (5) to move up and down; Feeding mechanism (3): The feeding mechanism (3) is arranged on one side of the feeding end of the machine body (1), and the feeding mechanism (3) is located on one side of the lifting mechanism (2). The feeding mechanism (3) is used to transfer the substrate (5) from the feeding port (11) into the machine body (1); Alignment component (4): The alignment component (4) is arranged on the top of the lifting mechanism (2), and the alignment component (4) is used to align the multiple substrates (5) on the top.
2. The automatic printing plate production equipment according to claim 1, characterized in that: The lifting mechanism (2) includes a lifting drive component (21) and a telescopic component (22). The output end of the lifting drive component (21) is connected to one end of the telescopic component (22). The base plate (5) is placed on the top of the telescopic component (22). The lifting drive component (21) is used to drive the telescopic component (22) to extend and retract.
3. The automatic printing plate production equipment according to claim 2, characterized in that: The lifting drive assembly (21) includes a rotating unit (212) and a telescopic frame (221). The rotating unit (212) can rotate up and down around one end. The output end of the rotating unit (212) is connected to one end of the telescopic frame (221). The rotation of the rotating unit (212) can drive the telescopic frame (221) to extend and retract.
4. The automatic printing plate production equipment according to claim 1, characterized in that: The feeding mechanism (3) comprises a mobile driving component (31), an adjusting component (33) and a sucker component (35). The output end of the mobile driving component (31) is connected to one end of the adjusting component (33). The sucker component (35) is installed at the bottom of the adjusting component (33). The mobile driving component (31) can drive the adjusting component (33) to move horizontally, and the adjusting component (33) can drive the sucker to move vertically.
5. The automatic printing plate production equipment according to claim 1, characterized in that: A baffle plate (12) is fixed to the feed end of the machine body (1), the top surface of the baffle plate (12) is lower than the bottom surface of the feed port (11), and one side of the stacked plurality of substrates (5) abuts against one side of the baffle plate (12).
6. The automatic printing plate production equipment according to claim 5, characterized in that: There are two tidying components (4), one tidying component (4) is arranged opposite to the baffle (12), and the other tidying component (4) is arranged opposite to the moving drive component (31).
7. The automatic printing plate production equipment according to claim 1, characterized in that: A support frame (13) is installed on the side of the machine body (1) away from the feeding mechanism (3), and the tidying component (4) is detachably installed on the top surface of the support frame (13).
8. The automatic printing plate production equipment according to claim 7, characterized in that: The aligning assembly (4) includes a driving member and an aligning plate (43). The driving member is arranged on the top of the support frame (13). The output end of the driving member is assembled with one side of the aligning plate (43). The side wall of the aligning plate (43) corresponds to one side of the multiple substrates (5) stacked on the top.
9. The automatic printing plate production equipment according to claim 3, characterized in that: The telescopic assembly (22) includes a placement plate (222), the placement plate (222) is installed on the top surface of the telescopic frame (221), and the base plate (5) is placed on the top surface of the placement plate (222).
10. The automatic printing plate production equipment according to claim 9, characterized in that: There are four telescopic frames (221), and the four telescopic frames (221) are distributed in a rectangular shape on the bottom surface of the placement plate (222).