A processing device for a flexible safety net

By using a follower roller and a synchronization plate to separate components, a wire clamping roller and adhesive tape for fixing, a toothed plate for locking, and an electric slider for assistance, the problems of uneven wire winding and wear are solved, achieving efficient and uniform wire winding and fixing.

CN117533869BActive Publication Date: 2026-05-19SHANDONG BINZHOU LUPENG CHEM FIBER PROD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SHANDONG BINZHOU LUPENG CHEM FIBER PROD CO LTD
Filing Date
2023-11-22
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

The existing winding method cannot adjust the wire height in real time, which causes changes in the wire angle to affect the winding uniformity. In addition, the wire is prone to wear, resulting in low processing efficiency and poor fixing effect.

Method used

The system employs a combination of a follower roller and a synchronous plate to separate components, ensuring that the wire is wound horizontally. A wire clamping roller is used to prevent friction, while the separator plate and adhesive tape fix the wire, and a cutter cuts the wire. A toothed plate locks the position of the follower roller, and an electric slider assists in replenishing the adhesive tape.

Benefits of technology

This ensures the uniformity and quality of wire winding, improves processing efficiency, ensures consistent wire spacing, and simplifies the wire coil replacement process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the field of safety net processing equipment, specifically is a kind of flexible safety net's processing equipment, including bottom plate, bottom plate upper left side symmetry is equipped with support frame, the rotating motor of line roll is arranged on the upper rear side of rear support frame, the telescopic resistance rod of line roll is arranged on the upper front side of front support frame, the height of wire is adjusted in real time on the upper part of bottom plate, the upper part of support frame is provided with the processing component for quickly fixing and cutting wire, the outer side of line roll is always adhered to by follow-up roller, so that follow-up roller moves downward with the increase of wire thickness on line roll, so that follow-up roller drives separation assembly to move upward synchronously by synchronous plate, so that separation assembly drives wire to keep horizontal posture around the outer side of line roll, so as to ensure the uniformity of wire winding.
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Description

Technical Field

[0001] This invention relates to the field of safety net processing equipment, specifically a processing equipment for flexible safety nets. Background Technology

[0002] Flexible safety nets are protective systems used to prevent hazards such as landslides, rockfalls, and flying rocks. They mainly consist of rope nets, anchor bolts, and support ropes, and can cover or intercept slopes or rocks requiring protection to limit or control the movement of soil and rock masses. During processing, the rope nets are generally woven using a horizontal weaving machine. To facilitate rapid weaving on the horizontal weaving machine, avoid tangling or damage to the wires, and ensure the balance of the wires, multiple strands of wire are typically wound onto a coil before weaving.

[0003] In existing winding methods, when multiple strands of wire are wound onto the same spool, the wires are typically passed through a splitter and then wound onto the spool. The wires are then wound around the outside of the spool by rotating it. However, this winding method cannot adjust the height of the wires in real time according to the thickness of the wires wound on the spool. This causes the angle of the wires to gradually change during the winding process, affecting the uniformity of the winding. Furthermore, when the angle of the wires changes, they are prone to friction with the edge of the splitter, leading to accidental wear and reducing the processing quality of the rope net. In addition, when the spool needs to be replaced, the existing technology does not require manual fixing and cutting of the wires, resulting in low processing efficiency. At the same time, when the wires are manually fixed, it is impossible to accurately ensure that the spacing between the wires is consistent, resulting in poor fixing effect and further affecting the uniformity of the winding. Summary of the Invention

[0004] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is: a processing equipment for flexible safety nets, including a base plate, with support frames symmetrically installed on the upper left side of the base plate, a rotating motor for rotating the wire roll on the upper rear side of the rear support frame, a telescopic abutment rod for fixing the wire roll on the upper front side of the front support frame, a height adjustment component for real-time adjustment of the wire height on the upper part of the base plate, and a processing component for quickly fixing and cutting the wire between the upper parts of the support frames.

[0005] The height adjustment component includes a sliding block that slides up and down inside the support frame. A return spring is provided between the lower part of the sliding block and the base plate. A follower roller is rotatably arranged between the front and rear sliding blocks. A wire divider is installed on the upper right side of the base plate. A dividing component for dividing and adjusting the height of the wires is slidably arranged inside the wire divider. An active component is slidably arranged on the lower outer side of the wire divider. The active component is connected to the dividing component through a pull rod. A synchronization plate is symmetrically hinged to the upper middle part of the base plate. The synchronization plate has slots symmetrically opened on the left and right sides that respectively cooperate with the corresponding slots of the follower roller and the active component.

[0006] The processing component includes processing racks symmetrically arranged front to back and rotatably mounted on the upper part of two support frames, close to each other. A placement plate is installed between the outer sides of the two processing racks. Dividers are evenly spaced along the front-back direction on the placement plate. Each divider has an inclined groove. A pressure plate is slidably mounted on the side of the divider away from the wire splitter along the inclined groove. A lower adhesive tape is rotatably mounted on the rear side of the placement plate. A support plate is mounted on the upper left side of the support frame via an L-shaped support plate. An active push plate is slidably mounted on the right side of the support plate. A backing plate is slidably mounted on the right side of the active push plate via a spring guide post. An upper adhesive tape is symmetrically arranged on the rear side of the backing plate and rotatably mounted. An adhesive tape cutter is mounted on the rear side of the active push plate. A wire cutter is mounted on the right side of the active push plate.

[0007] The follower roller is pushed downward by the wire wound around the outside of the coil, causing the follower roller to move upward through the synchronous plate, so that the wire is always wound horizontally on the coil. Then, the wire is separated and placed by rotating the processing frame and the wire is pressed by the pressure plate. The abutment plate moves to the right and moves the upper and lower adhesive tapes to fix the wire. The separated and fixed wire is cut by the adhesive tape cutter and the wire cutter.

[0008] As a preferred embodiment of the present invention, the separating component includes a separating frame that is slidably disposed inside the upper side of the wire separating frame. The separating frame is provided with wire-passing openings at equal intervals along the front-back direction. Each wire-passing opening has a first wire-clamping roller that is symmetrically disposed on both the left and right sides and rotates to be disposed on both sides. Each wire-passing opening has a second wire-clamping roller that is symmetrically disposed on both sides and rotates to be disposed on both sides in the middle.

[0009] As a preferred embodiment of the present invention, the front part of the support frame on the front side is provided with a toothed plate that is elastically slidable left and right by a pushing spring, and a blocking block is installed on the left side of the sliding block on the front side.

[0010] As a preferred embodiment of the present invention, a push rod is slidably arranged inside the placement plate, and slotted plates are installed at equal intervals along the front-back direction on the push rod, with the slotted plates cooperating with the corresponding slots of the pressure plate.

[0011] As a preferred embodiment of the present invention, a tensioning rod is slidably arranged radially along the processing frame on the side of the placement plate away from the splitter frame. A push cylinder for driving the tensioning rod is installed on the placement plate. The telescopic rod of the push cylinder is connected to the tensioning rod. Separation plates are installed at equal intervals along the front-back direction on the upper part of the tensioning rod. A linkage rod is slidably arranged in the front-back direction inside the tensioning rod. Pressure blocks are arranged at equal intervals on the upper part of the linkage rod. The pressure blocks slide inside the separation plates at corresponding positions. An active cylinder is installed on the front side of the placement plate. A driven rod is installed at the telescopic rod of the active cylinder. The driven rod slides inside the placement plate. The placement plate is fixedly connected to the push rod. The placement plate is connected to the linkage rod through a telescopic column.

[0012] As a preferred embodiment of the present invention, an electric slider is slidably arranged on the placement plate, and an adhesive plate is slidably arranged on the electric slider through a guide post. A slide rail is arranged on the placement plate at the position corresponding to the adhesive plate, and the end of the adhesive plate near the electric slider slides along the trajectory of the slide rail.

[0013] As a preferred embodiment of the present invention, a top extension cylinder is installed on the left side of the support plate, and the extension rod of the top extension cylinder is connected to the active push plate.

[0014] As a preferred embodiment of the present invention, an execution motor is installed on the upper part of the support plate on the front side, and the execution motor drives the processing frame located on the front side to rotate through gear transmission.

[0015] The beneficial effects of this invention are as follows:

[0016] 1. The present invention employs a follower roller that is always in contact with the outside of the coil, so that the follower roller moves downward as the thickness of the wire on the coil increases. This allows the follower roller to drive the separator assembly to move upward synchronously through the synchronization plate, thereby ensuring that the separator assembly drives the wire to always maintain a horizontal posture when winding around the outside of the coil, thus guaranteeing the uniformity of the wire winding.

[0017] Second, the present invention uses a first clamping roller and a second clamping roller arranged in different directions to drive the wire, so that the wire can always move with the separator frame. The rotating first clamping roller and the second clamping roller can avoid sliding friction with the wire, thereby avoiding wear on the wire and ensuring the processing quality of the rope net.

[0018] Third, this invention uses a separator plate to automatically separate the wires, and a pressure plate and a pressure block to press the wires together, thereby ensuring that the wires are evenly spaced and fixedly distributed. Then, the wires are adhered and fixed by the lower and upper adhesive tapes. Finally, the wires are cut by the adhesive tape cutter and the wire cutter, thus maintaining the evenly spaced distribution of the wires. This facilitates faster winding of the wires onto the coil when changing coils, speeds up the processing efficiency of the rope net, and can accurately ensure the consistency of the spacing between the wires, further ensuring the quality of the wire winding.

[0019] Fourth, the present invention uses a toothed plate to lock the position of the follower roller in real time. On the one hand, it can prevent the follower roller from jumping up and down, which would cause the wire position to change rapidly and affect the uniformity of wire winding. On the other hand, it can lock the follower roller in a position away from the wire roll when changing the wire roll, thus facilitating the replacement of the wire roll.

[0020] Fifth, the present invention uses an electric slider to drive the adhesive plate to slide along the track of the slide rail, which enables the adhesive plate to automatically move the two lower adhesive strips to the front end of the placement plate, thereby automatically replenishing the cut lower adhesive strips and further improving the winding efficiency. Attached Figure Description

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention.

[0023] Figure 2 This is a partial structural diagram of the follower roller, base plate, support frame, rotating motor, telescopic abutment rod, toothed plate and sliding block in this invention.

[0024] Figure 3 This is a partial structural diagram of the base plate, synchronization plate, active component, separation assembly, and distribution frame in this invention.

[0025] Figure 4 This is a partial structural diagram of the separator component in this invention.

[0026] Figure 5 This is a schematic diagram of the structure of the processing rack, placement plate, partition plate, pressure plate, lower adhesive tape and separation plate in this invention.

[0027] Figure 6 This is a partial cross-sectional view of the partition plate, pressure plate, push rod, slotted plate, tension rod, push cylinder, linkage rod, pressure block, active cylinder, driven rod and separation plate in this invention.

[0028] Figure 7 This is a cross-sectional view of the placement plate and the lower adhesive tape in this invention.

[0029] Figure 8 yes Figure 7 A magnified view of a portion of point A in the middle.

[0030] Figure 9 This is a partial structural diagram of the support plate, active push plate, abutment plate, upper adhesive tape, top extension cylinder and wire cutter in this invention.

[0031] Figure 10 This is a partial cross-sectional view of the active push plate, the abutment plate, the adhesive tape cutter, and the wire cutter in this invention.

[0032] In the diagram: 1. Base plate; 2. Height adjustment component; 3. Processing component; 11. Support frame; 12. Rotary motor; 13. Telescopic abutment rod; 21. Sliding block; 22. Follower roller; 23. Separator frame; 24. Separating assembly; 25. Active component; 26. Synchronizing plate; 27. Toothed plate; 30. Electric slider; 31. Processing frame; 32. Placement plate; 33. Separating plate; 34. Pressure plate; 35. Lower adhesive tape; 36. Support plate; 37. Active push plate; 38. Abutment plate; 39. Upper adhesive tape; 211 241. Blocking block; 242. Separator; 243. Threading port; 244. No. 1 clamping roller; 245. No. 2 clamping roller; 301. Adhesive plate; 302. Slide rail; 321. Push rod; 322. Groove plate; 323. Tensioning rod; 324. Push cylinder; 325. Linkage rod; 326. Pressing block; 327. Active cylinder; 328. Driven rod; 329. Separating plate; 331. Inclined chute; 361. Top extension cylinder; 362. Actuating motor; 371. Adhesive tape cutter; 372. Wire cutter. Detailed Implementation

[0033] The embodiments of the present invention are described in detail below. The embodiments described below are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention. Where specific techniques or conditions are not specified in the embodiments, they shall be performed in accordance with the techniques or conditions described in the literature in the art or in accordance with the product manual.

[0034] See Figure 1 A processing device for flexible safety nets includes a base plate 1. Support frames 11 are symmetrically installed on the upper left side of the base plate 1. A rotary motor 12 for rotating the wire coil is installed on the rear side of the upper part of the rear support frame 11. A telescopic abutment rod 13 for fixing the wire coil is installed on the front side of the upper part of the front support frame 11. A height adjustment component 2 for real-time height adjustment of the wire is installed on the upper part of the base plate 1. A processing component 3 for quickly fixing and cutting the wire is installed between the upper parts of the support frames 11. When it is necessary to weave the safety net... When the wire required for the net is wound onto the coil, the coil is first installed on the upper part of the support frame 11. Then, the telescopic abutment rod 13 is extended to fix the coil. The wire is then connected to the coil through the height adjustment component 2. The rotating motor 12 is started to drive the coil to rotate, so that the coil winds the wire to its outer side. The position of the wire is adjusted in real time through the height adjustment component 2. After the coil is wound, the wire is separated, fixed and cut by the processing component 3. Finally, the coil is replaced, thereby improving the winding efficiency of the coil.

[0035] See Figure 1 , Figure 2 and Figure 3The height adjustment component 2 includes a sliding block 21 that slides vertically inside the support frame 11. A return spring is provided between the lower part of the sliding block 21 and the base plate 1. A follower roller 22 is rotatably arranged between the front and rear sliding blocks 21. A wire separator 23 is installed on the upper right side of the base plate 1. A separator component 24 for separating and adjusting the height of the wire is slidably arranged inside the wire separator 23. An active component 25 is slidably arranged on the lower outer side of the wire separator 23. The active component 25 is connected to the separator component 24 through a pull rod. A synchronization plate 26 is symmetrically hinged to the upper middle part of the base plate 1. The synchronization plate 26 has slots symmetrically opened on the left and right sides that respectively cooperate with the corresponding slots of the follower roller 22 and the active component 25. After the wire coil is installed between the support frames 11, the wire is passed through the separator component 24 and pulled onto the wire coil. The component 24 separates the wire into sections, and then the wire coil is rotated to gradually wind the wire onto its outer side, so that the thickness of the wire on the coil gradually increases, thereby pushing the follower roller 22 downward. When the follower roller 22 moves downward, it drives the left end of the synchronization plate 26 to move downward synchronously, and the right end of the synchronization plate 26 to move upward synchronously. Since the center of the synchronization plate 26 is hinged to the base plate 1, the moving height of the left and right ends of the synchronization plate 26 is always equal. The right end of the synchronization plate 26 drives the driving component 25 to move vertically upward along the outer side of the wire separator 23. The driving component 25 drives the separating component 24 to move upward synchronously through the pull rod. The separating component 24 uniformly drives the wire to move upward, so that the part of the wire located between the wire coil and the wire separator 23 is always in a horizontal state, thereby ensuring the uniformity of the wire winding.

[0036] See Figure 3 and Figure 4 To prevent excessive wear on the wires, this embodiment incorporates the following design: The separating component 24 includes a separating frame 241 that slides vertically inside the upper side of the wire separator 23. The separating frame 241 has equally spaced wire-passing openings 242 along the front-to-back direction. Each wire-passing opening 242 has a first wire-clamping roller 243 symmetrically and rotatably arranged on both the left and right sides, and a second wire-clamping roller 244 symmetrically and rotatably arranged in the center of each wire-passing opening 242. Each strand of wire is pre-passed through the wire-passing openings 242 on the separating frame 241, so that the first and second wire-clamping rollers 243 and 244 inside the wire-passing openings 242 clamp the corresponding positions on the outer side of the wire. When the wire moves, it drives the first and second wire-clamping rollers 243 and 244 to rotate, thereby preventing sliding friction between the first and second wire-clamping rollers 243 and the wire, thus preventing wire wear.

[0037] See Figure 1 , Figure 2 and Figure 3The front of the support frame 11 is equipped with a toothed plate 27 that slides left and right elastically via a push spring. A blocking block 211 is installed on the left side of the sliding block 21 on the front side. When the wire pushes the follower roller 22 downward, the follower roller 22 drives the sliding blocks 21 on both sides to move downward synchronously. This causes the sliding block 21 on the front side to drive the blocking block 211 to move downward synchronously. As a result, the blocking block 211 contacts the toothed inclined surface on the toothed plate 27 and pushes it to the left. When the blocking block 211 moves downward to the distance of one tooth, the toothed plate 27 moves to the right under the push spring force. This allows the toothed plate 27 to block the blocking block 211 through the horizontal surface of the caliper, preventing the blocking block 211 from moving upward. This prevents the follower roller 22 from jumping up and down, further ensuring the uniformity of the wire winding. After the wire winding is completed, the toothed plate 27 can lock the follower roller 22 in the lower position of the support frame 11, which facilitates the replacement of the wire coil.

[0038] See Figure 1 , Figure 5 and Figure 6 The processing component 3 includes processing racks 31 that are symmetrically arranged on the upper part of two support frames 11 and close to each other. A placement plate 32 is installed between the outer sides of the two processing racks 31. Divider plates 33 are evenly spaced along the front-back direction on the placement plate (32). Figure 5 As shown, the separator plate 33 is specifically installed on the upper side of the placement plate 32. A tension rod 323 is slidably arranged radially along the processing frame 31 on the side of the placement plate 32 away from the splitter frame 23. Separating plates 329 are evenly spaced on the upper part of the tension rod 323 in the front-rear direction. An actuator motor 362 is installed on the upper part of the front support plate 36. The actuator motor 362 drives the processing frame 31 located on the front side to rotate via gear transmission. In the initial state, the processing frame 31 drives the placement plate 32 to be located on the lower right side of the wire coil. When further adjustment is needed... When changing the wire coil, the start-up motor 362 drives the placement plate 32 to rotate directly above the wire coil via the processing frame 31. As the placement plate 32 rotates, it drives the separator plate 33 to insert into the gap between the wires, thus separating the wires. At the same time, the placement plate 32 drives the separation plate 329 to be inserted into the gap between the wires via the tension rod 323. This allows the separation plate 329 and the separator plate 33 to place the corresponding positions of each strand of wire between each other, thereby separating and placing each strand of wire.

[0039] Continue reading Figure 1 , Figure 5 and Figure 6Each partition plate 33 is provided with an inclined sliding groove 331. A pressure plate 34 is slidably mounted on the side of the partition plate 33 away from the cable divider 23 along the inclined sliding groove 331. A push rod 321 is slidably mounted inside the placement plate 32. A slotted plate 322 is installed on the push rod 321 at equal intervals along the front-back direction. The slotted plate 322 mates with the slot of the pressure plate 34 at the corresponding position. A linkage rod 325 is slidably mounted inside the tension rod 323. The upper part of the linkage rod 325 is provided with equal intervals. There are pressure blocks 326, which slide inside the corresponding separation plates 329. An active cylinder 327 is installed on the front side of the placement plate 32. A driven rod 328 is installed at the telescopic rod of the active cylinder 327, and the driven rod 328 slides inside the placement plate 32. The placement plate 32 is fixedly connected to the push rod 321. The placement plate 32 is connected to the linkage rod 325 via a telescopic column. A push cylinder 324 for driving the tension rod 323 is installed on the placement plate 32. Figure 6 As shown, the push cylinder 324 is specifically installed on the lower side of the placement plate 32, and the telescopic rod of the push cylinder 324 is connected to the tension rod 323. When the strands of wire are placed separately on one side of the placement plate 32, the telescopic rod of the extended active cylinder 327 drives the driven rod 328 to move backward. The driven rod 328 drives the push rod 321 to move backward synchronously. The push rod 321 drives all the slot plates 322 to move backward, so that the slot plates 322 push the pressure plate 34 to move backward and downward along the trajectory of the inclined slide groove 331, thereby making the pressure plate 34 press the wire at the corresponding position against the side of the placement plate 32. At the same time, the driven rod 328 drives the extension column to move backward and downward. The linkage rod 325 moves backward synchronously, driving the pressure block 326 to move backward. This causes the pressure block 326 to push the wire backward and press it against the front side of the separation plate 329 at the corresponding position on the rear side. This allows the pressure block 326 to work with the separation plate 329 to clamp the wire. Then, the extension rod of the push cylinder 324 extends and drives the tension rod 323 to move towards the wire coil. The tension rod 323 drives the pressure block 326 and the separation plate 329 to move synchronously, causing the pressure block 326 and the separation plate 329 to pull the wire to straighten it. This prevents the part of the wire located on the side of the placement plate 32 from bending, thus ensuring that the spacing between each strand of wire is consistent.

[0040] See Figure 5 , Figure 6 , Figure 9 and Figure 10A lower adhesive tape 35 is rotatably mounted on the rear side of the placement plate 32. A support plate 36 is mounted on the upper left side of the support frame 11 via an L-shaped support plate. An active push plate 37 is slidably mounted on the right side of the support plate 36. A backing plate 38 is slidably mounted on the right side of the active push plate 37 via a spring guide post. An upper adhesive tape 39 is symmetrically mounted on the rear side of the backing plate 38 and rotates. An adhesive tape cutter 371 is mounted on the rear side of the active push plate 37. A wire cutter 372 is mounted on the right side of the active push plate 37. A top extension cylinder 361 is mounted on the left side of the support plate 36. The extension rod of the top extension cylinder 361 is connected to the active push plate 37. The lower adhesive tape 35 and the upper adhesive tape 39 are pre-pulled to cover the sides of the placement plate 32 and the backing plate 38, respectively. After the wires are separated and fixed, the extension rod of the top extension cylinder 361 extends to drive the active push plate 37 to move to the right. The active push plate 37 drives the backing plate 38 via the spring guide post. 8. Simultaneously move to the right, the abutment plate 38 drives the upper adhesive tape 39 covering its side to move to the right until it presses against the side of the lower adhesive tape 35, so that the lower adhesive tape 35 and the upper adhesive tape 39 adhere and fix the separated wires. Then, the extension rod of the top extension cylinder 361 continues to extend, so that the extension rod of the top extension cylinder 361 drives the adhesive tape cutter 371 and the wire cutter 372 to move to abut against the placement plate 32 through the active push plate 37. Thus, the adhesive tape cutter 371 cuts the rear ends of the lower adhesive tape 35 and the upper adhesive tape 39. At the same time, the wire cutter 372 cuts all the wires located in the middle position of the lower adhesive tape 35 and the upper adhesive tape 39, so that the wires are separated with a consistent spacing, which is convenient for winding the wires after the wire roll is replaced. Then, the extension rods of the top extension cylinder 361 and the active cylinder 327 retract and no longer fix the wires, and then the wire roll is replaced.

[0041] In this embodiment, the width of the upper adhesive tape 39 is greater than that of the lower adhesive tape 35. This allows the lower adhesive tape 35 and the upper adhesive tape 39 to adhere and fix the wire, while the upper adhesive tape 39 can adhere the end of the wire to the coil by extending beyond the lower adhesive tape 35. This quickly fixes the end of the wound wire to prevent it from unraveling and quickly fixes the wire to the outside of a new coil, thereby improving the winding efficiency.

[0042] See Figure 7 and Figure 8To automatically place the lower adhesive tape 35, the following design is implemented in this embodiment: an electric slider 30 is slidably mounted on the placement plate 32, and an adhesive plate 301 is slidably mounted on the electric slider 30 via a guide post. A slide rail 302 is provided on the placement plate 32 at the position corresponding to the adhesive plate 301, and the end of the adhesive plate 301 near the electric slider 30 slides along the track of the slide rail 302. When it is necessary to pull the lower adhesive tape 35 to cover the placement plate 32, the electric slider 30 is moved backward, so that the electric slider 30 drives the adhesive plate 301 to move backward along the track of the slide rail 302 via the guide post. This allows the adhesive plate 301 to move and adhere to the lower adhesive tape 35 when it moves to the upper side of the lower adhesive tape 35. Then, the electric slider 30 is moved forward, so that the adhesive plate 301 pulls the lower adhesive tape 35 to cover the placement plate 32, thereby reducing manual operation and further improving the winding efficiency.

[0043] It should be noted that in this embodiment, the pulling of the upper adhesive tape 39 can adopt the same design as when pulling the lower adhesive tape 35, in order to improve efficiency.

[0044] In this invention: First, the wire spool is installed on the upper part of the support frame 11. Then, the telescopic abutment rod 13 is extended to fix the wire spool. Next, the wire is passed through the separator assembly 24 and pulled onto the wire spool. The wire is separated by the separator assembly 24. Then, the rotating motor 12 is started to drive the wire spool to rotate and gradually wind the wire around its outer side, so that the thickness of the wire on the wire spool gradually increases. This causes the wire to gradually push the follower roller 22 downward. When the follower roller 22 moves downward, the separator assembly 24 moves upward synchronously through the synchronization plate 26. The separator assembly 24 uniformly drives the wire to move upward, so that the part of the wire located between the wire spool and the wire separator 23 is always in a horizontal state.

[0045] The second step is to start the execution motor 362 to drive the placement plate 32 to rotate directly above the wire roll through the processing frame 31. When the placement plate 32 rotates, it drives the separation plate 329 and the partition plate 33 to place the corresponding positions of each strand of wire between each other, thereby separating and placing each strand of wire.

[0046] Third, the extension rod of the active cylinder 327 drives the slot plate 322 to push the pressure plate 34 to move backward and downward along the trajectory of the inclined slide 331, so that the pressure plate 34 presses the wire at the corresponding position onto the side of the placement plate 32. At the same time, the pressure block 326 pushes the wire backward and presses it onto the front side of the separation plate 329 at the corresponding position on the rear side, so that the pressure block 326 and the separation plate 329 clamp the wire. Then, the extension rod of the push cylinder 324 drives the pressure block 326 and the separation plate 329 to move synchronously, so that the wire is pulled straight, thereby preventing the part of the wire located on the side of the placement plate 32 from bending.

[0047] In the fourth step, the telescopic rod of the top extension cylinder 361 moves the upper adhesive tape 39 to the right until it presses against the side of the lower adhesive tape 35, so that the lower adhesive tape 35 and the upper adhesive tape 39 adhere and fix the separated wires. Then, the telescopic rod of the top extension cylinder 361 continues to extend, moving the adhesive tape cutter 371 and the wire cutter 372 to abut against the placement plate 32, so that the adhesive tape cutter 371 cuts the rear ends of the lower adhesive tape 35 and the upper adhesive tape 39, while the wire cutter 372 cuts all the wires located in the middle position between the lower adhesive tape 35 and the upper adhesive tape 39, so that the wires are separated with a consistent spacing, which is convenient for winding the wires after the wire spool is replaced. Then, the telescopic rods of the top extension cylinder 361 and the active cylinder 327 are retracted, and the wires are no longer fixed. Then the wire spool is replaced.

[0048] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention, which are still covered within the protection scope of the present invention.

Claims

1. A processing device for a flexible safety net, comprising a base plate (1), wherein support frames (11) are symmetrically installed on the upper left side of the base plate (1), a rotary motor (12) for rotating a wire coil is provided on the upper rear side of the rear support frame (11), and a telescopic abutment rod (13) for fixing the wire coil is provided on the upper front side of the front support frame (11), characterized in that, The upper part of the base plate (1) is provided with a height adjustment component (2) for real-time adjustment of the height of the wire, and the upper part of the support frame (11) is provided with a processing component (3) for quick fixing and cutting of the wire. The height adjustment component (2) includes a sliding block (21) that is slidably disposed inside the support frame (11). A return spring is provided between the lower part of the sliding block (21) and the base plate (1). A follower roller (22) is rotatably disposed between the two sliding blocks (21). A wire divider (23) is installed on the upper right side of the base plate (1). A dividing component (24) for dividing and adjusting the height of the wire is slidably disposed inside the wire divider (23). An active component (25) is slidably disposed on the lower outer side of the wire divider (23). The active component (25) is connected to the dividing component (24) through a pull rod. A synchronous plate (26) is symmetrically hinged to the upper middle part of the base plate (1). The synchronous plate (26) is respectively engaged with the corresponding slots of the follower roller (22) and the active component (25) through symmetrical slots on the left and right sides. The processing component (3) includes processing racks (31) symmetrically arranged on the upper part of two support frames (11) and rotatably mounted close to each other. A placement plate (32) is installed between the outer sides of the two processing racks (31). Dividers (33) are evenly spaced on the placement plate (32) along the front-back direction. Inclined grooves (331) are provided on each of the dividers (33). A pressure plate (34) is slidably mounted on the side of the divider (33) away from the wire divider (23) along the inclined groove (331). The rear side of the placement plate (32) The lower adhesive tape (35) is rotatably mounted. A support plate (36) is installed on the upper left side of the support frame (11) via an L-shaped support plate. An active push plate (37) is slidably mounted on the right side of the support plate (36). A backing plate (38) is slidably mounted on the right side of the active push plate (37) via a spring guide column. An upper adhesive tape (39) is symmetrically mounted on the rear side of the backing plate (38) and rotatably mounted. An adhesive tape cutter (371) is mounted on the rear side of the active push plate (37). A wire cutter (372) is mounted on the right side of the active push plate (37). The follower roller (22) is pushed downward by the wire wound around the outside of the coil, so that the follower roller (22) drives the separator assembly (24) to move upward through the synchronization plate (26), so that the wire is always wound horizontally on the coil. Then, the separator plate (33) is driven by the rotating processing frame (31) to separate the wire and place it. The wire is pressed by the pressure plate (34). The abutment plate (38) is moved to the right to drive the upper adhesive tape (39) to cooperate with the lower adhesive tape (35) to fix the wire. The separated and fixed wire is cut by the adhesive tape cutter (371) and the wire cutter (372).

2. The processing equipment for a flexible safety net according to claim 1, characterized in that, The separating component (24) includes a separating frame (241) that is slidably disposed inside the upper side of the wire separator (23). The separating frame (241) is provided with wire-passing openings (242) at equal intervals along the front-back direction. Each wire-passing opening (242) has a first wire-clamping roller (243) that is symmetrically disposed on the left and right sides and rotates to be disposed on the front and back. Each wire-passing opening (242) has a second wire-clamping roller (244) that is symmetrically disposed on the middle part and rotates to be disposed on the top and bottom.

3. The processing equipment for a flexible safety net according to claim 1, characterized in that, The front part of the support frame (11) on the front side is provided with a toothed plate (27) that slides elastically left and right by pushing spring, and a blocking block (211) is installed on the left side of the sliding block (21) on the front side.

4. The processing equipment for a flexible safety net according to claim 1, characterized in that, The placement plate (32) is provided with a push rod (321) that slides back and forth inside. The push rod (321) is provided with slotted plates (322) at equal intervals along the front and back direction. The slotted plates (322) cooperate with the slots of the pressure plate (34) at the corresponding positions.

5. The processing equipment for a flexible safety net according to claim 4, characterized in that, A tension rod (323) is slidably arranged radially along the processing rack (31) on the side of the placement plate (32) away from the splitter frame (23). A push cylinder (324) for driving the tension rod (323) is installed on the placement plate (32). The telescopic rod of the push cylinder (324) is connected to the tension rod (323). Separation plates (329) are evenly spaced on the upper part of the tension rod (323) in the front-back direction. A linkage rod (325) is slidably arranged inside the tension rod (323). (325) The upper part is provided with pressure blocks (326) at equal intervals. The pressure blocks (326) slide inside the separation plate (329) at the corresponding position. An active cylinder (327) is installed on the front side of the placement plate (32). A driven rod (328) is installed at the telescopic rod of the active cylinder (327). The driven rod (328) slides inside the placement plate (32). The placement plate (32) is fixedly connected to the push rod (321). The placement plate (32) is connected to the linkage rod (325) through the telescopic column.

6. The processing equipment for a flexible safety net according to claim 1, characterized in that, An electric slider (30) is slidably mounted on the placement plate (32). An adhesive plate (301) is slidably mounted on the electric slider (30) via a guide post. A slide rail (302) is mounted on the placement plate (32) at a position corresponding to the adhesive plate (301). The end of the adhesive plate (301) near the electric slider (30) slides along the trajectory of the slide rail (302).

7. The processing equipment for a flexible safety net according to claim 1, characterized in that, A top extension cylinder (361) is installed on the left side of the support plate (36), and the extension rod of the top extension cylinder (361) is connected to the active push plate (37).

8. The processing equipment for a flexible safety net according to claim 1, characterized in that, An actuator motor (362) is installed on the upper part of the support plate (36) on the front side. The actuator motor (362) drives the processing frame (31) located on the front side to rotate through gear transmission.