Stacked net trimming system

By designing a mesh stacking and edge trimming system, and utilizing components such as hydraulic cylinders, electric motors, and grating sensors, the problem of posture deviation caused by unstable mesh stacking was solved, achieving stable conveying and precise edge trimming of the mesh stacking, thus improving processing accuracy and efficiency.

CN121245936AInactive Publication Date: 2026-01-02ZHEJIANG YISHU PAPER GRP CO LTD
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Patent Information

Application Number
CN202511600338.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-04
Publication Date
2026-01-02
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing technologies struggle to achieve stable clamping and positioning on both sides of the mesh, and the mesh's attitude deviation can easily affect subsequent process connections.

Method used

A stacked wire mesh trimming system was designed, including a feeding component, a conveying component, a trimming component, and an output component. Through components such as hydraulic cylinders, electric motors, lead screws, and grating sensors, the system achieves stable clamping and positioning of the stacked wire mesh and precise conveying, ensuring the stability of the stacked wire mesh posture.

Benefits of technology

It achieves stable clamping and precise delivery of stacked wire mesh, improving the connection accuracy and efficiency of subsequent processes, and adapting to the processing needs of stacked wire mesh of different specifications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a net stacking and trimming system, and relates to the technical field of net stacking processing. A feeding component, a conveying component, an edge cutting component, a fixing frame and an output component are arranged on the bottom plate. The output component comprises a support, a rail plate, a supporting frame and a top plate. A conveying roller is driven by a ninth motor to achieve stable conveying, a sliding plate drives a supporting plate to move left and right, a first hydraulic cylinder drives the supporting plate to ascend and descend, a folded net obtained after edge cutting can be accurately borne, a rotating plate on a top plate drives double sliding bases to be synchronously opened and closed through a flower basket connecting rod, and therefore positioning rollers are attached to the two sides of the folded net to achieve positioning. Accurate connection with subsequent procedures is facilitated; the edge cutting component drives a moving plate to drive a beam rod to move left and right through a fourth lead screw, a seventh motor drives a gear to conduct transmission along a toothed plate to achieve front-back sliding of a movable seat, the position of an edge cutting blade can be flexibly adjusted in the plane, an eighth motor drives a fifth lead screw to drive a lifting plate to ascend and descend, and the edge cutting depth can be accurately controlled.
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Description

Technical Field

[0001] This invention relates to the field of wire mesh processing technology, and more particularly to a wire mesh trimming system. Background Technology

[0002] In industries such as papermaking, nonwoven fabrics, textiles, and filter materials, multilayered wire mesh, due to its superior mechanical strength, air permeability, stability, and structural compatibility resulting from multi-layered composites, has become a core substrate for end products such as packaging materials, medical protective equipment, and air purification filters. As downstream industries increasingly demand standardized product quality and large-scale production efficiency, the dimensional accuracy and processing continuity of multilayered wire mesh are gradually becoming key concerns for industrial upgrading. In the multilayered wire mesh production process, the edge trimming process is a crucial step connecting the forming and finished product stages. Its function is to trim the initially formed multilayered wire mesh to a preset size suitable for subsequent processing or direct use, ensuring the regularity and consistency of the wire mesh edges. This invention is a multilayered wire mesh edge trimming system.

[0003] Existing technologies make it difficult to achieve stable clamping and positioning on both sides of the mesh, and the mesh posture deviation can easily affect the connection of subsequent processes. Summary of the Invention

[0004] This invention relates to a mesh overlay and edge trimming system to solve the technical problems mentioned in the background section.

[0005] In a first aspect, the present invention provides a wire mesh trimming system, specifically comprising: a base plate; a feeding component, a conveying component, a trimming component, a fixing frame, and an output component respectively disposed on the base plate; the output component includes a support, a rail plate, a support frame, and a top plate; two supports are provided, each support having an array of conveying rollers, and a first rotating column is mounted between the two supports via a bearing; two rail plates are fixedly mounted on the base plate, each rail plate having a sliding plate that can slide left and right, and a lifting support plate that can be raised and lowered, and a first hydraulic... The piston rod of the first hydraulic cylinder is connected to the lower end of the support plate. The support frame is bolted to the base plate. There are two support frames. The top plate is fixedly installed between the two support frames. The lower end of the top plate is equipped with two sliding seats that can slide back and forth. The sliding seats are equipped with positioning frames and positioning rollers. The lower end of the top plate is equipped with a rotatable rotating plate. The rotating plate and the two sliding seats are connected by a basket connecting rod through a universal joint. The upper end of the top plate is equipped with a reducer. The rotating plate is installed on the output shaft of the reducer. The first motor is installed on the reducer.

[0006] Furthermore, the feeding component includes a bracket, a transverse plate, and a connecting seat; there are two brackets, the transverse plate slides left and right on the upper end of the two brackets, a first rail is fixedly installed on the transverse plate, the connecting seat slides back and forth on the first rail, and a first lead screw is installed on the first rail, the first lead screw is threadedly engaged with the connecting seat.

[0007] Furthermore, a second lead screw is mounted on a bracket near the rear side of the transverse plate via a bearing. The second lead screw is threaded into the transverse plate. A motor mount A is mounted on the bracket, and a second motor is mounted on motor mount A. The output shaft of the second motor is connected to the second lead screw via a coupling. A lifting frame is bolted to both brackets, and a lighting lamp is bolted to the lifting frame. A motor mount B is mounted at the rear end of the first rail frame, and a third motor is mounted on motor mount B. The output shaft of the third motor is connected to the rear end of the first lead screw via a coupling.

[0008] Furthermore, the feeding component also includes a second rail frame and a mounting base. A third lead screw is mounted on the second rail frame via bearings. A motor base C is mounted on the upper end of the second rail frame, and a fourth motor is mounted on the motor base C. The output shaft of the fourth motor is connected to the upper end of the third lead screw via a coupling. A lifting seat that can move up and down is mounted on the second rail frame. The lifting seat is threadedly engaged with the third lead screw. The mounting base is fixedly mounted on the lifting seat. A base frame is bolted to the lower end of the mounting base, and an suction nozzle is mounted on the base frame.

[0009] Furthermore, the conveying component includes rail seats and movable plates. Two rail seats are provided, each equipped with a movable plate that can move left and right. A second hydraulic cylinder is mounted on each movable plate, and a telescopic plate that can move back and forth is mounted on the second hydraulic cylinder. The piston rod inside the second hydraulic cylinder is connected to the telescopic plate. A support for placing the stacked net is mounted on the telescopic plate. Pulleys are mounted on both sides of the rail seats, and rollers are mounted on both rail seats. Adjusting plates are bolted to both rail seats, and each adjusting plate has a slotted groove and a tensioning wheel. A second rotating column is mounted between the two rail seats via bearings. Pulleys are mounted at both the front and rear ends of the second rotating column. A transmission belt connects the pulleys on the second rotating column, the two pulleys on the rail seats, the rollers, and the tensioning wheel on the adjusting plate. The movable plate is fixed to the transmission belt. A motor base D is mounted on the base plate, and a fifth motor is mounted on the motor base D. The output shaft of the fifth motor is connected to the second rotating column via a coupling.

[0010] Furthermore, the conveying component also includes a support base, of which there are two. Each support base is equipped with a vertically movable lifting seat. A third hydraulic cylinder is installed between the support base and the lifting seat. A lower pressure plate that can slide back and forth is installed on the lifting seat. A fourth hydraulic cylinder is installed between the lifting seat and the lower pressure plate.

[0011] Furthermore, the trimming component includes a mounting frame, a cross plate, a beam, and a movable seat. There are two mounting frames, each with a cross plate fixedly mounted on it. A movable plate that can slide left and right is mounted on the cross plate. A fourth lead screw is mounted on each of the two cross plates via bearings. The fourth lead screw is threadedly engaged with the movable plate. A sixth motor is mounted on the cross plate. The output shaft of the sixth motor is connected to the fourth lead screw via a coupling. The beam is fixedly mounted between the two movable plates. The movable seat moves back and forth on the beam. There are two movable seats.

[0012] Furthermore, a toothed plate is fixedly installed on the beam, and a seventh motor is installed on each of the two movable seats. A gear that meshes with the toothed plate is fixedly installed on the output shaft of the seventh motor. The trimming component also includes a fixed plate, which is bolted to the movable seat. A lifting plate with a movable rod is installed on the fixed plate. A fifth lead screw and an eighth motor are installed on the fixed plate. The eighth motor is connected to the upper end of the fifth lead screw through a coupling. The fifth lead screw is threadedly engaged with the lifting plate. A support arm is bolted to the lifting plate, and a drive motor is installed on the support arm. A trimming blade is installed on the output shaft of the drive motor.

[0013] Furthermore, the mounting bracket is fixed to the base plate, and a controller is installed on the front side of the mounting bracket.

[0014] Furthermore, a motor mount E is installed on the base plate, and a ninth motor is installed on the motor mount E. The output shaft of the ninth motor is connected to the first rotating column via a coupling. The pulley on the first rotating column drives the conveying roller on the support to rotate via a belt. A bearing seat is installed on the base plate, and a pulley is installed on the bearing seat. A motor mount F is installed on the base plate by bolts, and a tenth motor is installed on the motor mount F. A pulley is installed on the output shaft of the tenth motor. A connecting belt is installed between the pulley on the output shaft of the tenth motor and the pulley on the bearing seat. The connecting belt is fixedly connected to the lower end of the sliding plate. Support plates are installed on both support frames by bolts, and position grating sensors are installed on the support plates by bolts.

[0015] This invention provides a wire mesh trimming system, which has the following advantages: In this invention, the conveying rollers of the output component are driven by a ninth electric motor to achieve stable conveying. The sliding plate drives the pallet to move left and right, and the first hydraulic cylinder drives the pallet to rise and fall, which can accurately receive the stacked net after the edge is cut. The rotating plate on the top plate drives the double sliding seats to open and close synchronously through the basket connecting rod, so that the positioning rollers fit against both sides of the stacked net to achieve positioning. In conjunction with the position grating sensor, the position is detected in real time to ensure the stability of the stacked net posture during the output process, which is convenient for precise connection with subsequent processes.

[0016] Furthermore, in this invention, the feeding component achieves precise positioning in three-dimensional space through the left and right sliding of the transverse plate, the front and back sliding of the connecting seat, and the up and down movement of the lifting seat. It works in conjunction with the suction nozzle to achieve stable gripping and feeding of the stacked mesh. The second lead screw, the first lead screw, and the third lead screw are each driven by an independent motor, resulting in smooth transmission and high positioning accuracy. At the same time, the lighting on the hoisting frame can improve the operator's field of vision, further ensuring the accuracy of feeding and adapting to the feeding needs of stacked meshes of different specifications.

[0017] Furthermore, the edge-cutting component in this invention drives the moving plate via the fourth lead screw to move the beam rod left and right, and combines the seventh motor to drive the gear along the toothed plate to achieve the forward and backward sliding of the movable seat, so that the edge-cutting blade can be flexibly adjusted in the plane. The eighth motor drives the fifth lead screw to raise and lower the lifting plate, which can accurately control the edge-cutting depth. The double movable seat design can complete the edge-cutting on both sides at the same time, and each motion mechanism is driven independently, which can quickly adapt to the edge-cutting requirements of different sizes of stacked mesh, improving edge-cutting efficiency and accuracy. Attached Figure Description

[0018] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.

[0019] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.

[0020] In the attached diagram: Figure 1 A schematic diagram of the overall front structure of the present invention is shown.

[0021] Figure 2 A schematic diagram of the overall rear structure of the present invention is shown.

[0022] Figure 3 A schematic diagram of the feeding component of the present invention is shown.

[0023] Figure 4 The present invention is shown Figure 3 A magnified structural diagram of part A in the middle.

[0024] Figure 5 A schematic diagram of the structure of the second rail frame portion of the present invention is shown.

[0025] Figure 6 The present invention is shown Figure 5 A magnified structural diagram of part B.

[0026] Figure 7 A schematic diagram of the conveying component portion of the present invention is shown.

[0027] Figure 8 The present invention is shown Figure 7 A magnified structural diagram of section C.

[0028] Figure 9 A schematic diagram of the cutting edge component of the present invention is shown.

[0029] Figure 10 The present invention is shown Figure 9 A magnified structural diagram of part D in the middle.

[0030] Figure 11 A schematic diagram of the output component portion of the present invention is shown.

[0031] Figure 12 A schematic diagram of the track plate portion of the present invention is shown.

[0032] Figure 13 A schematic diagram of the top plate portion of the present invention is shown.

[0033] Figure 14 A system flowchart of the present invention is shown.

[0034] Figure label: 1. Base plate; 2. Feeding component; 21. Bracket; 211. Second lead screw; 212. Motor base A; 213. Second motor; 214. Lifting frame; 215. Lighting light; 22. Transverse plate; 221. First rail frame; 222. First lead screw; 223. Motor base B; 224. Third motor; 23. Connecting seat; 24. Second rail frame; 241. Third lead screw; 242. Lifting seat; 243. Motor base C; 244. Fourth motor; 25. Mounting seat; 251. Base frame; 2 52. Suction nozzle; 3. Conveying component; 31. Rail base; 312. Support roller; 313. Adjusting plate; 314. Tensioning roller; 315. Second rotating column; 316. Motor base D; 317. Fifth motor; 318. Transmission belt; 32. Movable plate; 321. Second hydraulic cylinder; 322. Telescopic plate; 323. Support base; 33. Support seat; 331. Lifting seat; 332. Third hydraulic cylinder; 333. Lower pressure plate; 334. Fourth hydraulic cylinder; 4. Edge trimming component; 41. Mounting bracket; 42. Horizontal plate; 421, Moving plate; 422, Fourth lead screw; 423, Sixth motor; 43, Beam rod; 431, Tooth plate; 44, Movable seat; 441, Seventh motor; 45, Fixed plate; 451, Fifth lead screw; 452, Lifting plate; 453, Eighth motor; 454, Support arm; 455, Drive motor; 4551, Cutting blade; 5, Fixed frame; 51, Controller; 6, Output component; 61, Support; 611, Conveyor roller; 612, First rotating column; 613, Motor base E; 6131, Ninth Electric Motor; 62, Rail Plate; 621, Sliding Plate; 622, Support Plate; 623, First Hydraulic Cylinder; 624, Bearing Housing; 625, Motor Housing F; 6251, Tenth Electric Motor; 626, Connecting Belt; 63, Support Frame; 631, Support Plate; 632, Position Grating Sensor; 64, Top Plate; 641, Rotating Plate; 642, Sliding Seat; 643, Flower Basket Connecting Rod; 644, Reducer; 645, First Electric Motor; 646, Positioning Frame; 647, Positioning Roller. Detailed Implementation

[0035] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, 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, not all, of the embodiments of the present invention. Based on the described 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.

[0036] Please refer to Figures 1 to 14 Example 1: This invention proposes a wire mesh trimming system, comprising: a base plate 1; a feeding component 2, a conveying component 3, a trimming component 4, a fixing frame 5, and an output component 6 respectively disposed on the base plate 1; the output component 6 includes a support 61, a rail plate 62, a support frame 63, and a top plate 64; two supports 61 are provided, each support 61 is equipped with an array of conveying rollers 611, and a first rotating column 612 is installed between the two supports 61 via a bearing; two rail plates 62 are fixedly installed on the base plate 1, and each rail plate 62 is equipped with a sliding plate 621 that can slide left and right, and a lifting support plate 622 is installed on the sliding plate 621; a first hydraulic cylinder 623 is installed at the lower end of the sliding plate 621. The piston rod is connected to the lower end of the support plate 622. The support frame 63 is bolted to the base plate 1. There are two support frames 63. The top plate 64 is fixedly installed between the two support frames 63. The lower end of the top plate 64 is equipped with two sliding seats 642 that can slide back and forth. The sliding seats 642 are equipped with positioning frames 646 and positioning rollers 647. The lower end of the top plate 64 is equipped with a rotatable rotating plate 641. The rotating plate 641 and the two sliding seats 642 are connected by a basket connecting rod 643 through a universal joint. The upper end of the top plate 64 is equipped with a reducer 644. The rotating plate 641 is installed on the output shaft of the reducer 644. The reducer 644 is equipped with a first motor 645. A motor mount E613 is mounted on the base plate 1. A ninth motor 6131 is mounted on the motor mount E613. The output shaft of the ninth motor 6131 is connected to the first rotating column 612 via a coupling. The pulley on the first rotating column 612 drives the conveying roller 611 on the support 61 to rotate via a belt. A bearing seat 624 is mounted on the base plate 1. A pulley is mounted on the bearing seat 624. A motor mount F625 is mounted on the base plate 1 via bolts. A tenth motor 6251 is mounted on the motor mount F625. A pulley is mounted on the output shaft of the tenth motor 6251. A connecting belt 626 is installed between the pulley on the output shaft of the tenth motor 6251 and the pulley on the bearing seat 624. The connecting belt 626 is fixedly connected to the lower end of the sliding plate 621. Support plates 631 are mounted on both support frames 63 via bolts. Position grating sensors 632 are mounted on the support plates 631 via bolts. The mounting bracket 5 is fixed on the base plate 1, and the controller 51 is installed on the front side of the mounting bracket 5.

[0037] In this embodiment of the invention, the feeding component 2 includes a bracket 21, a transverse plate 22, and a connecting seat 23. Two brackets 21 are provided. The transverse plate 22 slides left and right on the upper ends of the two brackets 21. A first rail frame 221 is fixedly installed on the transverse plate 22. The connecting seat 23 slides back and forth on the first rail frame 221. A first lead screw 222 is installed on the first rail frame 221, and the first lead screw 222 is threadedly engaged with the connecting seat 23. A second lead screw 211 is installed on the bracket 21 near the rear side of the transverse plate 22 via a bearing. The second lead screw 211 is threadedly engaged with the transverse plate 22. A motor mount A212 is installed on the bracket 21. A second motor 213 is mounted on the base A212. The output shaft of the second motor 213 is connected to the second lead screw 211 via a coupling. A lifting frame 214 is bolted to each of the two supports 21, and a lighting lamp 215 is bolted to the lifting frame 214. A motor mount B223 is mounted at the rear end of the first rail frame 221. A third motor 224 is mounted on the motor mount B223, and the output shaft of the third motor 224 is connected to the rear end of the first lead screw 222 via a coupling. The feeding component 2 also includes a second rail frame 24 and a mounting base 25. A third lead screw 241 is mounted on the second rail frame 24 via bearings. A motor mount C243 is installed on the upper end of the rail frame 24. A fourth motor 244 is mounted on the motor mount C243. The output shaft of the fourth motor 244 is connected to the upper end of the third lead screw 241 via a coupling. A movable lifting seat 242 is installed on the second rail frame 24. The lifting seat 242 is threadedly engaged with the third lead screw 241. A mounting base 25 is fixedly mounted on the lifting seat 242. A base frame 251 is bolted to the lower end of the mounting base 25. An suction nozzle 252 is installed on the base frame 251. Its function is to drive the second lead screw 211 to rotate via the second motor 213, thereby causing the transverse plate 22 to move along the left side of the bracket 21. Sliding to the right, the third motor 224 drives the first lead screw 222 to rotate, causing the connecting seat 23 to slide back and forth along the first rail frame 221. The fourth motor 244 drives the third lead screw 241 to rotate, causing the lifting seat 242 to move up and down along the second rail frame 24. The three motors work together to enable the suction nozzle 252 to move flexibly in three-dimensional space, which can accurately align with the stacked materials at different positions and stacking heights. The suction nozzle 252 can stably adsorb the stacked mesh, preventing the material from falling off or deforming during the feeding process. The lighting 215 on the hoisting frame 214 can improve the brightness of the working area, making it easier for operators to observe the feeding status and further ensuring the feeding accuracy.

[0038] In Embodiment Two, based on Embodiment One, the conveying component 3 includes a rail base 31 and a movable plate 32. Two rail bases 31 are provided, each equipped with a movable plate 32 that can move left and right. A second hydraulic cylinder 321 is mounted on each movable plate 32, and a telescopic plate 322 that can move back and forth is mounted on each second hydraulic cylinder 321. The piston rod inside the second hydraulic cylinder 321 is connected to the telescopic plate 322. A support 323 for placing the stacked net is mounted on the telescopic plate 322. Pulleys are mounted on both sides of the rail base 31, and rollers 312 are mounted on both rail bases 31. Adjustable rollers are bolted to both rail bases 31. Plate 313, with an oblong groove on the adjusting plate 313, and a tensioning wheel 314 mounted on the adjusting plate 313. A second rotating column 315 is mounted between the two rail seats 31 via bearings. Pulleys are mounted at both the front and rear ends of the second rotating column 315. A transmission belt 318 connects the pulleys on the second rotating column 315, the two pulleys on the rail seats 31, the support rollers 312, and the tensioning wheel 314 on the adjusting plate 313. A movable plate 32 is fixed on the transmission belt 318. A motor base D316 is mounted on the base plate 1, and a fifth motor 317 is mounted on the motor base D316. The output shaft of the fifth motor 317 is connected to the second rotating column 313 via a coupling. The rotating column 315 is connected, and the conveying component 3 also includes a support base 33. Two support bases 33 are provided, each equipped with a vertically movable lifting seat 331. A third hydraulic cylinder 332 is installed between the support base 33 and the lifting seat 331. A sliding lower pressure plate 333 is installed on the lifting seat 331. A fourth hydraulic cylinder 334 is installed between the lifting seat 331 and the lower pressure plate 333. Its function is as follows: a fifth motor 317 drives the second rotating column 315 to rotate, which in turn drives the transmission belt 318 through a pulley, thereby causing the movable plate 32 fixed on the transmission belt 318 to move left and right along the rail base 31, realizing the lifting... The main conveying action of seat 323 is achieved by adjusting the position of tension wheel 314 on adjusting plate 313 through waist groove to ensure that transmission belt 318 is always in a taut state, thus improving conveying stability. Second hydraulic cylinder 321 drives telescopic plate 322 to move back and forth, which can drive support 323 to make fine adjustments to its position. Third hydraulic cylinder 332 on support seat 33 can adjust the height of lifting seat 331. Fourth hydraulic cylinder 334 drives lower pressure plate 333 to move back and forth and press the stacked net. The pressing force can be adjusted according to the thickness of the stacked net, effectively preventing the stacked net from shifting, wrinkling or warping during the conveying process, ensuring that the stacked net enters the edge cutting process in a flat posture, and improving the subsequent edge cutting quality.

[0039] In Example 3, based on Examples 1 and 2, the trimming component 4 includes a mounting frame 41, a horizontal plate 42, a beam 43, and a movable seat 44. Two mounting frames 41 are provided, each with a horizontal plate 42 fixedly mounted on it. A movable plate 421, which can slide left and right, is mounted on each horizontal plate 42. A fourth lead screw 422 is mounted on each horizontal plate 42 via bearings, and the fourth lead screw 422 is threadedly engaged with the movable plate 421. A sixth motor 423 is mounted on the horizontal plate 42, and the output shaft of the sixth motor 423 is connected to the fourth lead screw 422 via a coupling. The beam 43 is fixedly installed between two movable plates 421. Two movable seats 44 are provided, each with a toothed plate 431 fixedly installed on it. A seventh motor 441 is installed on each of the two movable seats 44. A gear meshing with the toothed plate 431 is fixedly installed on the output shaft of the seventh motor 441. The trimming component 4 also includes a fixed plate 45, which is bolted to the movable seats 44. A lifting plate 452, capable of moving up and down, is installed on the fixed plate 45. A fifth lead screw 451 and a second lead screw 451 are also installed on the fixed plate 45. The eighth motor 453 is connected to the upper end of the fifth lead screw 451 via a coupling. The fifth lead screw 451 is threaded into the lifting plate 452. A support arm 454 is bolted to the lifting plate 452, and a drive motor 455 is mounted on the support arm 454. A cutting blade 4551 is mounted on the output shaft of the drive motor 455. Its function is to drive the fourth lead screw 422 to rotate, thereby causing the moving plate 421 to slide left and right along the horizontal plate 42, which in turn causes the beam 43 to move left and right as a whole, thus realizing the movement of the cutting blade 4551 in the left and right directions. The seventh motor 441 drives the gear along the toothed plate 431 on the beam 43 to mesh and drive the movable seat 44 to slide back and forth, thereby adjusting the position of the cutting blade 4551 in the front and back directions. The two work together to allow the cutting blade 4551 to move flexibly in the plane and accurately align with the cutting position of the stacked mesh. The eighth motor 453 drives the fifth lead screw 451 to rotate, which drives the lifting plate 452 to move up and down, and then drives the cutting blade 4551 to rise and fall through the support arm 454. The cutting depth can be precisely controlled according to the thickness of the stacked mesh to avoid incomplete cutting or over-cutting.

[0040] The working principle of this invention is as follows: First, the feeding component 2 completes the feeding of the stacked mesh. Specifically, the second motor 213 drives the second lead screw 211 to rotate, causing the transverse plate 22 to slide left and right along the support 21. The third motor 224 drives the first lead screw 222 to rotate, causing the connecting seat 23 to slide back and forth along the first rail frame 221. The fourth motor 244 drives the third lead screw 241 to rotate, causing the lifting seat 242 to move up and down along the second rail frame 24. The three motors work together to make the suction nozzle 252 on the base frame 251 move precisely to the stacked mesh material in three-dimensional space and suction and grab it. Then, the stacked mesh is transferred to the support 323 of the conveying component 3. The lighting 215 on the hoisting frame 214 can help observe the feeding status. Then, the conveying... The conveying component 3 starts conveying, and the fifth motor 317 drives the second rotating column 315 to rotate, which drives the transmission belt 318 to rotate through the pulley. This causes the movable plate 32, which is fixed on the transmission belt 318, to move left and right along the rail seat 31. The support roller 312 supports the transmission belt 318, and the tensioning wheel 314 on the adjusting plate 313 ensures that the transmission belt 318 is taut. At the same time, the second hydraulic cylinder 321 drives the telescopic plate 322 to move the support seat 323 back and forth for fine adjustment to accurately receive the stacked net. Then, the third hydraulic cylinder 332 on the support seat 33 adjusts the height of the lifting seat 331, and the fourth hydraulic cylinder 334 drives the lower pressure plate 333 to press the stacked net to prevent it from shifting and wrinkling during conveying. Then, the edge cutting component 4 performs edge cutting. The sixth motor 42... The fourth lead screw 422 drives the moving plate 421 to slide left and right along the horizontal plate 42, adjusting the overall position of the beam 43. The seventh motor 441 drives the gear to mesh along the toothed plate 431 on the beam 43, causing the movable seat 44 to slide back and forth, thus aligning the cutting blade 4551 below the fixed plate 45 with the cutting position. The eighth motor 453 drives the fifth lead screw 451 to rotate, raising and lowering the lifting plate 452. The height of the cutting blade 4551 is adjusted by the support arm 454. The drive motor 455 drives the cutting blade 4551 to rotate at high speed to complete the cutting. Finally, the cut mesh is conveyed to the output component 6. The tenth motor 6251 drives the pulley to rotate the connecting belt 626, making... The sliding plate 621 slides left and right along the track plate 62. The first hydraulic cylinder 623 drives the support plate 622 to rise and fall to receive the stacked net and place it on the conveyor roller 611. The ninth motor 6131 drives the first rotating column 612 to rotate, which drives the conveyor roller 611 on the support 61 to rotate via the belt. At the same time, the first motor 645 drives the rotating plate 641 to rotate via the reducer 644. The rotating plate 642 is driven to slide back and forth along the top plate 64 via the basket connecting rod 643, so that the positioning roller 647 on the positioning frame 646 presses the stacked net to position. The position grating sensor 632 on the support plate 631 detects the position to ensure stable output of the stacked net. The whole process is uniformly controlled by the controller 51 on the fixed frame 5.

[0041] The following points should be noted in this article: 1. The accompanying drawings of the embodiments of the present invention only involve the structures involved in the embodiments of the present invention; other structures can refer to general designs.

[0042] 2. Where there is no conflict, the embodiments of the present invention and the features thereof can be combined with each other to obtain new embodiments.

[0043] The above are merely specific embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any changes or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in the present invention should be included within the scope of protection of the present invention.

Claims

1. A cross-cutter system for a cross-cutter system, comprising: The bottom plate (1); characterized in that, the bottom plate (1) is respectively provided with feeding component (2), conveying component (3), edge cutting component (4), fixing frame (5) and output component (6); the output component (6) includes support (61), track plate (62), support frame (63) and top plate (64); the support (61) is provided with two, two supports (61) are all arrayed with conveying roller (611), two supports (61) are installed with first rotating column (612) through bearing between two supports (61), track plate (62) is fixedly installed on the bottom plate (1), track plate (62) is provided with two, track plate (62) is installed with the slidable sliding plate (621), the lifting tray (622) is installed on the sliding plate (621), the lower end of sliding plate (621) is installed with first hydraulic cylinder (623), the piston rod of first hydraulic cylinder (623) is connected with the lower end of tray (622), support frame (63) is installed on the bottom plate (1) through bolt, support frame (63) is provided with two, the top plate (64) is fixedly installed between two support frames (63), the lower end of top plate (64) is installed with two front and rear sliding seat (642), the positioning frame (646) is installed on the sliding seat (642), the positioning roller (647) is installed on the positioning frame (646), the lower end of top plate (64) is provided with rotatable rotary plate (641), the rotary plate (641) is connected with the flower basket connecting rod (643) through universal shaft between two sliding seats (642), the upper end of top plate (64) is installed with speed reducer (644), the rotary plate (641) is installed on the output shaft of speed reducer (644), the first motor (645) is installed on speed reducer (644).

2. A cut-to-length system according to claim 1, wherein, The feeding component (2) includes support (21), transverse moving plate (22) and connecting seat (23); the support (21) is provided with two, the transverse moving plate (22) is slidably arranged on the upper end of the two supports (21), and the first rail frame (221) is fixedly installed on the transverse moving plate (22); the connecting seat (23) is slidably arranged on the first rail frame (221), and the first lead screw (222) is installed on the first rail frame (221), and the first lead screw (222) is in threaded connection with the connecting seat (23).

3. A cut-to-length system according to claim 2, wherein, The bracket (21) close to the rear side of the horizontal moving plate (22) is provided with a second screw rod (211) through bearing, the second screw rod (211) is screwed with the horizontal moving plate (22), and the bracket (21) is provided with a motor seat A (212), the motor seat A (212) is provided with a second motor (213), the output shaft of the second motor (213) is connected with the second screw rod (211) through a shaft coupling, the two brackets (21) are provided with a lifting frame (214) through bolts, the lifting frame (214) is provided with a lighting lamp (215) through bolts, the rear end of the first rail frame (221) is provided with a motor seat B (223), the motor seat B (223) is provided with a third motor (224), the output shaft of the third motor (224) is connected with the rear end of the first screw rod (222) through a shaft coupling.

4. The system of claim 2, wherein, The feeding component (2) further comprises a second rail frame (24) and a mounting seat (25), the second rail frame (24) is provided with a third screw rod (241) through bearing, the upper end of the second rail frame (24) is provided with a motor seat C (243), the motor seat C (243) is provided with a fourth motor (244), the output shaft of the fourth motor (244) is connected with the upper end of the third screw rod (241) through a shaft coupling, the second rail frame (24) is provided with a lifting seat (242) which can move up and down, the lifting seat (242) is screwed with the third screw rod (241), and the mounting seat (25) is fixedly installed on the lifting seat (242), the lower end of the mounting seat (25) is provided with a bottom frame (251) through bolts, and the bottom frame (251) is provided with a suction nozzle (252).

5. The system of claim 1, wherein, The conveying component (3) comprises rail seats (31) and movable plates (32), the rail seats (31) are provided with two, the movable plates (32) are movably arranged on the two rail seats (31), the second hydraulic cylinders (321) are arranged on the movable plates (32), the telescopic plates (322) are movably arranged on the second hydraulic cylinders (321), the piston rods in the second hydraulic cylinders (321) are connected with the telescopic plates (322), the supporting seats (323) for placing the stacked nets are arranged on the telescopic plates (322), the belt pulleys are arranged on the left and right sides of the rail seats (31), the supporting wheels (312) are arranged on the two rail seats (31), the adjusting plates (313) are arranged on the two rail seats (31) through bolts, the waist-shaped grooves are arranged on the adjusting plates (313), the tension pulleys (314) are arranged on the adjusting plates (313), the second rotating columns (315) are arranged between the two rail seats (31) through bearings, the belt pulleys are arranged on the front and rear ends of the second rotating column (315), the transmission belts (318) are connected between the belt pulleys on the second rotating column (315), the two belt pulleys on the rail seats (31), the supporting wheels (312), the tension pulleys (314) on the adjusting plates (313) and the movable plates (32), the movable plates (32) are fixed on the transmission belts (318), the motor seats D (316) are arranged on the bottom plate (1), the fifth motors (317) are arranged on the motor seats D (316), the output shafts of the fifth motors (317) are connected with the second rotating column (315) through couplings.

6. A cut-to-length system according to claim 5, wherein, The conveying component (3) further comprises support seats (33), the support seats (33) are provided with two, the lifting seats (331) are movably arranged on the two support seats (33), the third hydraulic cylinders (332) are arranged between the support seats (33) and the lifting seats (331), the pressing plates (333) are slidably arranged on the lifting seats (331), the fourth hydraulic cylinders (334) are arranged between the lifting seats (331) and the pressing plates (333).

7. The system of claim 1, wherein, The trimming component (4) comprises mounting racks (41), cross plates (42), beam rods (43) and movable seats (44), the mounting racks (41) are provided with two, the cross plates (42) are fixedly arranged on the two mounting racks (41), the movable plates (421) are slidably arranged on the cross plates (42), the fourth lead screws (422) are arranged on the two cross plates (42) through bearings, the fourth lead screws (422) are threadedly matched with the movable plates (421), the sixth motors (423) are arranged on the cross plates (42), the output shafts of the sixth motors (423) are connected with the fourth lead screws (422) through couplings, the beam rods (43) are fixedly arranged between the two movable plates (421), the movable seats (44) are movably arranged on the beam rods (43), and the movable seats (44) are provided with two.

8. A cut-to-length system according to claim 7, wherein, The beam rod (43) is fixedly provided with a toothed plate (431), the two movable seats (44) are both provided with a seventh motor (441), the output shaft of the seventh motor (441) is fixedly provided with a gear engaged with the toothed plate (431), the trimming component (4) further comprises a fixed plate (45), the fixed plate (45) is installed on the movable seat (44) through bolts, the fixed plate (45) is provided with a lifter plate (452) which can move up and down, the fixed plate (45) is provided with a fifth lead screw (451) and an eighth motor (453), the eighth motor (453) is connected with the upper end of the fifth lead screw (451) through a shaft coupling, the fifth lead screw (451) is in threaded cooperation with the lifter plate (452), the lifter plate (452) is provided with a support arm (454) through bolts, the support arm (454) is provided with a drive motor (455), and the output shaft of the drive motor (455) is provided with a trimming blade (4551).

9. The system of claim 1, wherein, The fixed frame (5) is fixed on the bottom plate (1), and the front side of the fixed frame (5) is provided with a controller (51).

10. A cut-to-length system according to claim 9, wherein, The bottom plate (1) is provided with a motor seat E (613), the ninth motor (6131) is installed on the motor seat E (613), the output shaft of the ninth motor (6131) is connected with the first rotating column (612) through a shaft coupling, the belt pulley on the first rotating column (612) drives the conveying roller (611) on the support (61) to rotate through a belt, and the bottom plate (1) is provided with a bearing seat (624), the bearing seat (624) is provided with a belt pulley, the bottom plate (1) is provided with a motor seat F (625) through bolts, the tenth motor (6251) is installed on the motor seat F (625), the output shaft of the tenth motor (6251) is provided with a belt pulley, the belt pulley on the output shaft of the tenth motor (6251) and the belt pulley on the bearing seat (624) are provided with a connecting belt (626), the connecting belt (626) is fixedly connected with the lower end of the sliding plate (621), the two support frames (63) are both provided with a support plate (631) through bolts, and the support plate (631) is provided with a position grating inductor (632) through bolts.