A winding device and method for high-strength polyamide fiber
By designing the winding device of adjustment, linkage and cutting mechanism, the problem of uneven and loose winding of nylon high-strength wire is solved, precise control and convenient operation of winding thickness are achieved, and winding efficiency and the convenience of use of wire are improved.
Patent Information
- Application Number
- CN202311393241.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-10-25
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2043-10-25
AI Technical Summary
When the existing winding device winds the nylon high-strength wire, there are problems such as heavy winding quality, which leads to inconvenience in collecting and replacing the winding barrel, uneven winding thickness, and inconvenient fixation after cutting, resulting in loose and knotting of the nylon high-strength wire.
A winding device including an adjustment mechanism, a linkage mechanism and a cutting mechanism is designed to achieve uniform winding by adjusting the height of the guide tube; the linkage mechanism drives the guide tube to move and cuts, and automatically cuts and fixes the nylon high-strength wire through the cutting mechanism; the electric push rod and clamping assembly facilitate the installation and disassembly of the winding barrel.
It realizes precise control of winding thickness, reduces human resource waste, improves winding efficiency, ensures the uniformity and convenience of nylon high-strength wire, and solves the problems of looseness and knotting after winding.
Smart Images

Figure CN117185023B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of winding equipment, and particularly to a winding device and method for high-strength polyamide fiber filaments. Background Art
[0002] High-strength polyamide fiber filaments have excellent properties such as high strength, good elasticity, dyeability, and moth resistance, and are widely used with a large market demand. High-strength polyamide fiber filaments are mainly used to manufacture high-strength filaments for the production of socks, underwear, and can be applied to webbing: high-grade luggage belts, climbing belts, cordage for sports goods, seat belts, pet belts, high-grade medical abdominal belts, etc. Before making finished products, high-strength polyamide fiber filaments need to be woven into cloth. Before weaving, several high-strength polyamide fiber filaments need to be wound around a winding cylinder, and then the processed winding cylinder is placed on a weaving machine for weaving.
[0003] Most of the existing winding devices fix the winding cylinder on the bracket by screws when winding high-strength polyamide fiber filaments. However, after the high-strength polyamide fiber filaments are wound, the overall mass is relatively heavy, resulting in trouble in collecting and replacing a new winding cylinder. Moreover, the existing winding devices cannot accurately predetermine the winding thickness, resulting in different winding thicknesses each time. After winding, it needs to be cut manually, wasting human resources. After cutting, it is not convenient to fix the two cut ends, which will cause the wound high-strength polyamide fiber filaments to be loose and knotted, and is not convenient for subsequent use.
[0004] Based on this, a winding device and method for high-strength polyamide fiber filaments are provided now, which can eliminate the drawbacks of the existing devices. Summary of the Invention
[0005] The purpose of the present invention is to provide a winding device and method for high-strength polyamide fiber filaments to solve the problems in the background art.
[0006] To achieve the above purpose, the present invention provides the following technical solutions:
[0007] Material toggling mechanism, its both sides respectively have a cylinder pressure, and the cylinder pressure bar connects swing arm, and the swing arm end face has hook portion, and a bar passes position between the end of two swing arms and the hook portion. The driving member is a chain which has a first end fixed to the side panel that is located adjacent the first gear and a second end of the driving member is engaged with the first and second gears and is then connected to the transmission gear of the present invention.
[0008] On the basis of the above technical solutions, the present invention also provides the following optional technical solutions:
[0009] In an optional scheme: the clamping assembly includes two symmetrically arranged arc-shaped clamping plates, a T-shaped sliding rod is fixed on the arc-shaped clamping plate, a guide block is slidingly provided on the T-shaped sliding rod, the T-shaped sliding groove on one side of the guide block is inclined, the guide block is fixed on one side of the sliding plate, the sliding plate is slidably arranged in the mounting groove inside the clamping tube, one side of the sliding plate is fixedly connected to one end of the spring, the other end of the spring is fixedly connected to one side of the mounting groove, and an anti-slip layer is provided on the inner side of the arc-shaped clamping plate.
[0010] In an optional scheme: the adjusting mechanism includes two symmetrically arranged connecting rods, one end of the connecting rod is rotatably connected to the lower end of the lifting plate, and the other end of the connecting rod is rotatably provided with a threaded block, and a bidirectional screw is matched in the threaded hole on one side of the threaded block. The threads at both ends of the bidirectional screw have opposite rotation directions, and the bidirectional screw is rotatably arranged inside the adjusting box, and a rectangular through-hole is provided at the upper end of the adjusting box corresponding to the position of the connecting rod, one end of the bidirectional screw is fixedly connected to the clutch output shaft, the clutch input shaft is fixedly connected to the reducer output shaft, and the reducer is fixedly provided on the upper end of the mounting base plate, and a driving component is provided on the reducer input shaft to facilitate the rotation of the bidirectional screw.
[0011] In an optional solution: the driving assembly includes a second driven wheel fixed on the input shaft of the reducer, the second driven wheel is connected to the second driving wheel through a second belt, and the second driving wheel is fixed on the other output shaft of the double-headed motor.
[0012] In an optional scheme: the linkage mechanism includes an active bevel gear, which is fixed on the input shaft of the reducer, and a driven bevel gear is matched on the active bevel gear, and the driven bevel gear is fixed on the second rotating shaft, and a support frame is rotatably provided at one end of the second rotating shaft, one end of the support frame is fixed at the upper end of the mounting base plate, the other end of the second rotating shaft is provided with an external spline, and a second transmission tube is slidably provided at one end of the second rotating shaft, one end of the second transmission tube is provided with an internal spline, and one end of the second transmission tube is provided with an active friction wheel, and a driven friction wheel is matched on the active friction wheel, and the driven friction wheel is fixed at one end of the reciprocating screw, and a support plate is rotatably provided on the second rotating shaft, and one end of the support plate is provided on one side of the rotating plate.
[0013] In an optional scheme: the cutting mechanism includes a cutting plate, a cutting knife is provided at the lower end of the cutting plate, a T-shaped clamp is symmetrically provided at the lower end of the cutting plate, a connecting slider is fixedly provided at the upper end of the cutting plate, a guide slide rod is slidably provided in a circular through-hole on one side of the connecting slider, fixed support rods are fixed at both ends of the guide slide rod, one end of the fixed support rod is fixedly provided at the upper end of the adjusting box, a shear plate is provided on one side of the guide tube, a linkage rod is slidably provided in the circular through-hole on the upper end of the connecting slider, and one end of the linkage rod is fixedly provided at the upper end of the guide tube.
[0014] In an optional solution: a control button is fixedly provided on the connecting slider, and the electric push rod, double-headed motor, control button and clutch are all electrically connected to the controller at the upper end of the mounting base.
[0015] In an optional solution: a rotating disk is fixedly provided at one end of the bidirectional screw, and a rotating handle is provided at one side of the rotating disk.
[0016] In an optional solution: a plurality of rolling columns are provided at the upper end of the lifting frame.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] 1. The present invention uses an adjustment mechanism. When the bidirectional screw rotates, it drives the two threaded blocks to move. The threaded blocks push the lifting plate to move through the connecting rod. When the lifting plate moves, the guide height of the guide tube can be adjusted. At the same time, the speed is reduced under the action of the reducer, so that the lifting height of the guide tube and the winding thickness of the winding drum increase synchronously, which facilitates the winding of the nylon high-strength yarn by the winding drum and increases the practicality of the winding device.
[0019] 2. The present invention drives the reciprocating screw to rotate through a linkage mechanism. When the reciprocating screw rotates, it can drive the guide tube to move back and forth along the axis of the reciprocating screw, so that the nylon high-strength yarn is evenly wound onto the winding drum. At the same time, when the guide tube moves, it drives the linkage rod to move. Under the action of the linkage rod, when the guide tube moves, it drives the connecting slider to slide along the axis of the guide slider, so that the cutting knife can cut the nylon high-strength yarn at any position.
[0020] 3. The present invention uses a cutting mechanism to automatically cut the nylon high-strength yarn when the winding thickness of the winding drum reaches the set thickness. At the same time, the two T-shaped clamps at the lower end of the cutting plate can clamp and fix the two ends of the cut nylon high-strength yarn, reducing the entanglement of the nylon high-strength yarn and facilitating subsequent production and use.
[0021] 4. The present invention pushes the sliding rod to move through the output end of the electric push rod, and when the sliding rod moves, it drives the inclined block and the clamping tube to move. When the inclined block moves, it can push the lifting frame to slide in the rectangular slide groove at the upper end of the winding base, thereby lifting the winding drum. Then the arc-shaped clamping plate inside the clamping tube clamps the rotating shaft at one end of the winding drum. When the first rotating shaft rotates, it can drive the winding drum to rotate to wind the nylon high-strength yarn. When the winding is completed, the winding base can be restarted, the inclined block and the clamping tube return to the initial position, and the winding drum falls back to the upper end of the winding base, thereby solving the problem that the overall weight of the nylon high-strength yarn is heavy after winding, which makes it troublesome to collect and replace a new winding drum.
[0022] 5. The present invention sets a control button on the connecting slider. When the guide tube drives the cutting plate to move to cooperate with the cutting knife to cut the nylon high-strength yarn, the upper end of the guide tube touches the button on the control button, and then the controller controls the double-headed motor to stop rotating, thereby realizing the setting of the winding thickness, so that the winding thickness is the same each time. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a structural schematic diagram of the present invention.
[0024] Figure 2 This is a schematic diagram of the winding base structure of the present invention.
[0025] Figure 3Schematic diagram of the internal structure of the winding base of the present invention.
[0026] Figure 4 Schematic diagram of the structure of the first transmission pipe and the first rotating shaft of the present invention.
[0027] Figure 5 Schematic diagram of the internal structure of the clamping pipe of the present invention.
[0028] Figure 6 Schematic diagram of the internal structure of the adjustment box of the present invention.
[0029] Figure 7 Schematic diagram of the structure of the second transmission pipe and the second rotating shaft of the present invention.
[0030] Figure 8 Schematic diagram of the structure of the cutting board of the present invention.
[0031] Annotation of reference numerals: 11 winding cylinder, 12 winding base, 13 mounting base plate, 14 lifting bracket, 15 inclined block, 16 clamping pipe, 17 sliding plate, 18 spring, 19 guiding block, 20 arc-shaped clamping plate, 21 electric push rod, 22 first transmission pipe, 23 first rotating shaft, 24 adjustment box, 25 bidirectional screw rod, 26 connecting rod, 27 rotating disk, 28 clutch, 29 reducer, 30 lifting plate, 31 guiding pipe, 32 reciprocating screw rod, 33 second transmission pipe, 34 second rotating shaft, 35 cutting board, 36 control button, 37 guiding slide bar, 38 double-headed motor. Detailed implementation manners
[0032] In one embodiment, as Figures 1 - 8As shown, a winding device for nylon high-strength yarn includes a winding drum 11 and a guide tube 31. A lifting frame 14 is provided at both ends of the winding drum 11. A fixed tube is slidably provided on the lifting frame 14. The fixed tube is fixedly provided on the upper end of the winding base 12. The lifting frame 14 is slidably provided in a rectangular slide groove at the upper end of the winding base 12. A rotating wheel is provided at one end of the lifting frame 14. An inclined block 15 is provided on the rotating wheel. A fixed connecting rod is fixed between the two inclined blocks 15. A guide slide groove is provided at the position corresponding to the inclined block 15 inside the winding base 12. A clamping tube 16 is provided on the rotating shaft on one side of the winding drum 11. The clamping tube 16 is provided with a clamping assembly for clamping the rotating shaft at one end of the winding drum 11, and a bearing is fixed on the clamping tube 16, and a sliding rod is fixed on the bearing. One side of the sliding rod is fixedly connected to one end of the push rod, and the other end of the push rod is fixedly connected to the inclined block 15 near the clamping tube 16. One side of the sliding rod is fixedly connected to the output end of the electric push rod 21, and the electric push rod 21 is fixedly provided at the bottom end of the installation box. One end of the clamping tube 16 is fixed with a first transmission tube 22, and an internal spline is provided inside the first transmission tube 22. The first rotating shaft 23 is matched with the inside of the first transmission tube 22. , one end of the first rotating shaft 23 is provided with an external spline, and the other end of the first rotating shaft 23 is rotatably arranged on one side of the interior of the installation box, a first driven wheel is provided on the first rotating shaft 23, and the first driven wheel is connected to the first driving wheel through a first belt, and the first driving wheel is fixedly arranged on the output shaft on one side of the double-headed motor 38, and the double-headed motor 38 is fixedly arranged on a fixed mounting plate on one side of the installation box, a separating comb is provided inside the guide tube 31, and a reciprocating screw rod 32 is provided at the lower end of the guide tube 31 to facilitate driving the guide tube 31 to move back and forth, and a rotating plate is rotatably provided at both ends of the reciprocating screw rod 32, and the rotating plate is fixedly arranged on the lifting The upper end of the descending plate 30 and the lower end of the lifting plate 30 are provided with a plurality of supporting legs, one end of the supporting leg is provided with an adjustment box 24, and an adjustment mechanism is provided inside the adjustment box 24 for adjusting the guide height of the guide tube 31. A linkage mechanism is provided on one side of the rotating plate for driving the reciprocating screw rod 32 to rotate. The upper end of the adjustment box 24 is provided with a cutting mechanism for cutting the nylon high-strength yarn. The adjustment mechanism facilitates adjusting the guide height of the guide tube 31 according to the winding thickness of the winding drum 11. The linkage mechanism facilitates driving the reciprocating screw rod 32 to rotate. The cutting mechanism facilitates cutting and fixing the nylon high-strength yarn.
[0033] The clamping component includes two symmetrically arranged arc-shaped clamping plates 20. A T-shaped slide bar is fixedly arranged on the arc-shaped clamping plate 20. A guide block 19 is slidably arranged on the T-shaped slide bar. The T-shaped chute on one side of the guide block 19 is inclined. The guide block 19 is fixedly arranged on one side of the sliding plate 17. The sliding plate 17 is slidably arranged in the installation groove inside the clamping tube 16. One side of the sliding plate 17 is fixedly connected to one end of the spring 18. The other end of the spring 18 is fixedly connected to one side of the installation groove. An anti-slip layer is arranged on the inner side of the arc-shaped clamping plate 20. When in use, when it is necessary to rotate the winding cylinder 11 to wind the polyamide high-strength wire, the electric push rod 21 is started. The output end of the electric push rod 21 pushes the inclined block 15 and the clamping tube 16 to move through the sliding rod. The inclined block 15 pushes up the winding cylinder 11 through the lifting frame 14. When the rotating shaft at one end of the winding cylinder 11 is coaxial with the clamping tube 16, the rotating wheel at one end of the lifting frame 14 rolls on the upper end of the inclined block 15. At this time, the rotating shaft at one end of the winding cylinder 11 enters the inside of the clamping tube 16 and pushes the sliding plate 17 to slide. The sliding plate 17 drives the guide block 19 to move. The spring 18 is compressed. The inclined T-shaped chute at one end of the guide block 19 pushes the arc-shaped clamping plate 20 to move. When the inner side of the arc-shaped clamping plate 20 is in close contact with the rotating shaft at one end of the winding cylinder 11, the rotating shaft at one end of the winding cylinder 11 can be clamped. When the clamping tube 16 rotates, it can drive the winding cylinder 11 to rotate.
[0034] The adjusting mechanism includes two symmetrically arranged connecting rods 26. One end of the connecting rod 26 is rotatably connected to the lower end of the lifting plate 30. A threaded block is rotatably arranged at the other end of the connecting rod 26. A bidirectional screw rod 25 is fitted in the threaded hole on one side of the threaded block. The thread directions of the two ends of the bidirectional screw rod 25 are opposite. The bidirectional screw rod 25 is rotatably arranged inside the adjusting box 24. A rectangular through hole is arranged at the upper end of the adjusting box 24 corresponding to the position of the connecting rod 26. One end of the bidirectional screw rod 25 is fixedly connected to the output shaft of the clutch 28. The input shaft of the clutch 28 is fixedly connected to the output shaft of the reducer 29. The reducer 29 is fixedly arranged on the upper end of the installation base plate 13. A driving component for facilitating the rotation of the bidirectional screw rod 25 is arranged on the input shaft of the reducer 29. When in use, the driving component drives the input shaft of the reducer 29 to rotate. At the same time, the reducer 29 reduces the speed. Subsequently, the output shaft of the reducer 29 drives the input shaft of the clutch 28 to rotate. The output shaft of the clutch 28 drives the bidirectional screw rod 25 to rotate. When the bidirectional screw rod 25 rotates, it drives the two threaded blocks to move under the action of the thread. The moving directions of the two threaded blocks are opposite. When the threaded blocks move, they push the lifting plate 30 to move through the connecting rod 26. When the lifting plate 30 moves, it pushes the guide tube 31 to move, so as to adjust the guiding height of the guide tube 31.
[0035] The driving component includes a second driven wheel fixedly arranged on the input shaft of the reducer 29. The second driven wheel is in transmission connection with a second driving wheel through a second belt. The second driving wheel is fixedly arranged on the other output shaft of the double-headed motor 38. During use, when the double-headed motor 38 is started, the two output shafts of the double-headed motor 38 rotate simultaneously. The output shafts of the double-headed motor 38 respectively drive the first driving wheel and the second driving wheel to rotate. The second driving wheel drives the second driven wheel to rotate through the second belt, and the second driven wheel drives the input shaft of the reducer 29 to rotate.
[0036] The linkage mechanism includes a driving bevel gear fixedly arranged on the input shaft of the reducer 29. A driven bevel gear is arranged in cooperation with the driving bevel gear. The driven bevel gear is fixedly arranged on the second rotating shaft 34. One end of the second rotating shaft 34 is provided with a support frame in a rotatable manner. One end of the support frame is fixedly arranged on the upper end of the mounting base plate 13. The other end of the second rotating shaft 34 is provided with an external spline. A second transmission pipe 33 is arranged in a sliding manner at one end of the second rotating shaft 34. One end of the second transmission pipe 33 is provided with an internal spline. One end of the second transmission pipe 33 is provided with a driving friction wheel. A driven friction wheel is arranged in cooperation with the driving friction wheel. The driven friction wheel is fixedly arranged at one end of the reciprocating screw rod 32. A support plate is arranged in a rotatable manner on the second rotating shaft 34. One end of the support plate is arranged on one side of the rotating plate. During use, when the input shaft of the reducer 29 rotates, it drives the driving bevel gear to rotate. The driving bevel gear drives the driven bevel gear to rotate. The driven bevel gear drives the second rotating shaft 34 to rotate. When the second rotating shaft 34 rotates, the external spline at one end of the second rotating shaft 34 cooperates with the internal spline at one end of the second transmission pipe 33 to drive the second transmission pipe 33 to rotate. When the second transmission pipe 33 rotates, it drives the driving friction wheel to rotate. The driving friction wheel drives the driven friction wheel to rotate. The driven friction wheel drives the reciprocating screw rod 32 to rotate. When the lifting plate 30 drives the guide pipe 31 to move along the axial direction of the second rotating shaft 34, through the cooperation and connection of the internal spline and the external spline, the second rotating shaft 34 can drive the second transmission pipe 33 to rotate.
[0037] The cam 35 is fixed to the upper end of the adjusting box 24, and the guide tube 31 is fixed to the upper end of the adjusting box 24.
[0038] A control button 36 is fixed on the connecting slider, and the electric push rod 21, the double-headed motor 38, the control button 36 and the clutch 28 are all electrically connected to the controller at the upper end of the mounting base 13. When in use, when the guide tube 31 drives the cutting plate to move to cooperate with the cutting knife to cut the nylon high-strength yarn, the upper end of the guide tube 31 touches the button on the control button 36, and then the controller controls the double-headed motor 38 to stop rotating. At the same time, the controller controls the clutch 28 to disconnect one end of the bidirectional screw 25 from the output end of the reducer 29. When it is necessary to unload the winding drum 11, the controller controls the electric push rod 21 to move to the upper end of the control button 36. The push rod 21 restarts, and the output end of the electric push rod 21 pulls the clamping tube 16 and the inclined block 15 back to the initial position through the sliding rod. When the clamping tube 16 moves, the rotating shaft at one end of the winding drum 11 disengages from the inside of the clamping tube 16, and at the same time, the rotating wheel at one end of the lifting frame 14 rolls on the upper end of the inclined block 15. When the rotating shaft at one end of the winding drum 11 completely disengages from the inside of the clamping tube 16, the rotating wheel at one end of the lifting frame 14 rolls on the inclined surface of one side of the inclined block 15, and the winding drum 11 moves toward the upper end of the winding base 12. When the rotating wheel at one end of the lifting frame 14 disengages from the inclined block 15, the winding drum 11 falls on the upper end of the winding base 12.
[0039] A rotating disk 27 is fixedly provided at one end of the bidirectional screw 25 , and a rotating handle is provided on one side of the rotating disk 27 , which facilitates the rapid return of the lifting plate 30 to its initial position when in use.
[0040] The upper end of the lifting frame 14 is provided with a plurality of rolling columns, which facilitate the rotation of the winding drum 11 when in use.
[0041] The above embodiment discloses a winding device for high-strength polyamide filaments. When winding high-strength polyamide filaments, the winding cylinder 11 is placed on the upper end of the winding base 12. Then, the electric push rod 21 is started. The output end of the electric push rod 21 pushes the inclined block 15 and the clamping tube 16 to move through the sliding rod. The inclined block 15 lifts the winding cylinder 11 through the lifting frame 14. When the rotating shaft at one end of the winding cylinder 11 is coaxial with the clamping tube 16, the rotating wheel at one end of the lifting frame 14 rolls on the upper end of the inclined block 15. At this time, the rotating shaft at one end of the winding cylinder 11 enters the inside of the clamping tube 16 and pushes the sliding plate 17 to slide. The sliding plate 17 drives the guide block 19 to move, and the spring 18 is compressed. The T-shaped chute at one end of the guide block 19, which is inclined, pushes the arc-shaped clamping plate 20 to move. When the inner side of the arc-shaped clamping plate 20 is closely attached to the rotating shaft at one end of the winding cylinder 11, the rotating shaft at one end of the winding cylinder 11 can be clamped. A plurality of high-strength polyamide filaments are passed through the partition comb inside the guide tube 31 and fixed to the winding cylinder 11. Then, the double-headed motor 38 is started. The two output shafts of the double-headed motor 38 rotate simultaneously. The output shafts of the double-headed motor 38 drive the first driving wheel and the second driving wheel to rotate respectively. The first driving wheel drives the first driven wheel to rotate through the first belt. The first driven wheel drives the first rotating shaft 23 to rotate. The first rotating shaft 23 drives the clamping tube 16 to rotate through the internal spline of the first transmission tube 22 in cooperation with the external spline at one end. When the clamping tube 16 rotates, it drives the winding cylinder 11 to rotate to wind the high-strength polyamide filaments. At the same time, the second driving wheel drives the second driven wheel to rotate through the second belt. The second driven wheel drives the input shaft of the reducer 29 to rotate. At the same time, the reducer 29 reduces the speed. Then, the output shaft of the reducer 29 drives the input shaft of the clutch 28 to rotate. The output shaft of the clutch 28 drives the bidirectional screw 25 to rotate. When the bidirectional screw 25 rotates, it drives two threaded blocks to move under the action of the thread. The moving directions of the two threaded blocks are opposite. When the threaded blocks move, they push the lifting plate 30 to move through the connecting rod 26. When the lifting plate 30 moves, it pushes the guide tube 31 to move, so as to adjust the guiding height of the guide tube 31. When the input shaft of the reducer 29 rotates, it drives the driving bevel gear to rotate. The driving bevel gear drives the driven bevel gear to rotate. The driven bevel gear drives the second rotating shaft 34 to rotate. When the second rotating shaft 34 rotates, the external spline at one end of the second rotating shaft 34 is in cooperation with the internal spline at one end of the second transmission tube 33 to drive the second transmission tube 33 to rotate. When the second transmission tube 33 rotates, it drives the driving friction wheel to rotate. The driving friction wheel drives the driven friction wheel to rotate. The driven friction wheel drives the reciprocating screw rod 32 to rotate. When the reciprocating screw rod 32 rotates, it can drive the guide tube 31 to reciprocate along the axis of the reciprocating screw rod 32, so that the high-strength polyamide filaments are evenly wound on the winding cylinder 11. Under the action of the linkage rod, when the guide tube 31 moves, it drives the connecting slider to slide along the axis of the guide slide rod 37. When the lifting plate 30 drives the guide tube 31 to move along the axis direction of the second rotating shaft 34, the second rotating shaft 34 can drive the second transmission tube 33 to rotate through the cooperation of the internal spline and the external spline. When the guide tube 31 moves to the set height, the upper end of the guide tube 31 is closely attached to the lower end of the connecting slider.Subsequently, the cutting scissors at the lower end of the clipboard 35 cut the high-strength nylon filament. At the same time, the T-shaped clamping plate at the lower end of the clipboard 35 can clamp and fix the two broken ends of the high-strength nylon filament. Meanwhile, the upper end of the guiding tube 31 touches the button on the control button 36. Subsequently, the controller controls the double-headed motor 38 to stop rotating, and the controller controls the clutch 28 to disconnect one end of the bidirectional screw 25 from the output end of the reducer 29. When it is necessary to remove the winding cylinder 11, the controller controls the electric push rod 21 to restart. The output end of the electric push rod 21 pulls the clamping tube 16 and the inclined block 15 back to the initial position through the sliding rod. When the clamping tube 16 moves, the rotating shaft at one end of the winding cylinder 11 disengages from the inside of the clamping tube 16. At the same time, the rotating wheel at one end of the lifting bracket 14 rolls on the upper end of the inclined block 15. When the rotating shaft at one end of the winding cylinder 11 completely disengages from the inside of the clamping tube 16, the rotating wheel at one end of the lifting bracket 14 rolls on the inclined surface on one side of the inclined block 15, and the winding cylinder 11 moves towards the upper end of the winding base 12. When the rotating wheel at one end of the lifting bracket 14 disengages from the inclined block 15, the winding cylinder 11 falls on the upper end of the winding base 12. Subsequently, the staff can quickly return the lifting plate 30 to the initial position by turning the rotating disk 27 through the handle.,
[0042] As described above, it is only the specific implementation manner of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present disclosure can easily think of changes or substitutions, which should all be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure shall be subject to the protection scope of the claims.,
Claims
1. A winding device for nylon high-strength yarn, comprising a winding drum (11) and a guide tube (31), wherein both ends of the winding drum (11) are provided with a lifting frame (14), a fixed tube is slidably provided on the lifting frame (14), the fixed tube is fixedly provided on the upper end of the winding base (12), and the lifting frame (14) is slidably provided in a rectangular slide groove at the upper end of the winding base (12), characterized in that: One end of the lifting frame (14) is provided with a rotating wheel, and an inclined block (15) is provided on the rotating wheel. A fixed connecting rod is fixed between the two inclined blocks (15). A guide groove is provided inside the winding base (12) at a position corresponding to the inclined block (15). A clamping tube (16) is provided on the rotating shaft on one side of the winding drum (11). A clamping assembly is provided inside the clamping tube (16) for clamping the rotating shaft at one end of the winding drum (11). A bearing is fixed on the clamping tube (16), and a sliding member is fixed on the bearing. A movable rod, one side of the sliding rod is fixedly connected to one end of the push rod, the other end of the push rod is fixedly connected to the inclined block (15) on the side close to the clamping tube (16), one side of the sliding rod is fixedly connected to the output end of the electric push rod (21), the electric push rod (21) is fixedly arranged at the bottom end inside the installation box, one end of the clamping tube (16) is fixedly provided with a first transmission tube (22), an internal spline is provided inside the first transmission tube (22), and a first rotating shaft (23) is matched inside the first transmission tube (22), and the first rotating shaft (23) One end is provided with an external spline, the other end of the first rotating shaft (23) is rotatably arranged on one side of the interior of the installation box, the first rotating shaft (23) is provided with a first driven wheel, the first driven wheel is connected to the first driving wheel through a first belt, the first driving wheel is fixed on the output shaft on one side of the double-headed motor (38), the double-headed motor (38) is fixed on the fixed mounting plate on one side of the installation box, the guide tube (31) is provided with a separating comb inside, the lower end of the guide tube (31) is provided with a reciprocating A screw rod (32) is provided with a rotating plate at both ends of the reciprocating screw rod (32), and the rotating plate is fixedly provided on the upper end of the lifting plate (30). The lower end of the lifting plate (30) is provided with a plurality of supporting legs, and one end of the supporting leg is provided with an adjustment box (24). The adjustment box (24) is provided with an adjustment mechanism for adjusting the guide height of the guide tube (31). A linkage mechanism is provided on one side of the rotating plate for driving the reciprocating screw rod (32) to rotate. The upper end of the adjustment box (24) is provided with a cutting mechanism for cutting the nylon high-strength yarn.
2. The winding device of the nylon high-strength yarn according to claim 1, characterized in that: The clamping assembly includes two symmetrically arranged arc-shaped clamping plates (20), a T-shaped slide bar is fixed on the arc-shaped clamping plate (20), a guide block (19) is slidably provided on the T-shaped slide bar, a T-shaped slide groove on one side of the guide block (19) is inclined, the guide block (19) is fixed on one side of the sliding plate (17), the sliding plate (17) is slidably provided in the internal mounting groove of the clamping tube (16), one side of the sliding plate (17) is fixedly connected to one end of the spring (18), and the other end of the spring (18) is fixedly connected to one side of the mounting groove, and an anti-slip layer is provided on the inner side of the arc-shaped clamping plate (20).
3. The winding device of the nylon high-strength yarn according to claim 2, characterized in that: The adjustment mechanism includes two symmetrically arranged connecting rods (26), one end of the connecting rod (26) is rotatably connected to the lower end of the lifting plate (30), and the other end of the connecting rod (26) is rotatably provided with a threaded block, and a bidirectional screw (25) is matched in a threaded hole on one side of the threaded block. The threads at both ends of the bidirectional screw (25) are rotated in opposite directions. The bidirectional screw (25) is rotatably arranged inside the adjustment box (24), and a rectangular through-hole is provided at the upper end of the adjustment box (24) corresponding to the position of the connecting rod (26). One end of the bidirectional screw (25) is fixedly connected to the output shaft of the clutch (28), and the input shaft of the clutch (28) is fixedly connected to the output shaft of the reducer (29). The reducer (29) is fixedly provided on the upper end of the mounting base (13), and the input shaft of the reducer (29) is provided with a driving component for driving the bidirectional screw (25) to rotate.
4. The winding device of the nylon high-strength yarn according to claim 3, characterized in that: The drive assembly includes a second driven wheel fixed on the input shaft of the reducer (29), the second driven wheel is connected to the second driving wheel through a second belt, and the second driving wheel is fixed on the other output shaft of the double-headed motor (38).
5. The winding device for high-strength nylon yarn according to claim 4, characterized in that: The linkage mechanism includes an active bevel gear, which is fixed on the input shaft of the reducer (29). A driven bevel gear is matched with the active bevel gear, and the driven bevel gear is fixed on the second rotating shaft (34). A support frame is rotatably provided at one end of the second rotating shaft (34). One end of the support frame is fixed on the upper end of the mounting base plate (13). The other end of the second rotating shaft (34) is provided with an external spline. A second transmission tube (33) is slidably provided at one end of the second rotating shaft (34). One end of the second transmission tube (33) is provided with an internal spline. One end of the second transmission tube (33) is provided with an active friction wheel. A driven friction wheel is matched with the active friction wheel. The driven friction wheel is fixed on one end of the reciprocating screw (32). A support plate is rotatably provided on the second rotating shaft (34). One end of the support plate is provided on one side of the rotating plate.
6. The winding device for high-strength nylon yarn according to claim 5, characterized in that: The cutting mechanism comprises a cutting plate (35), a cutting knife is provided at the lower end of the cutting plate (35), a T-shaped clamp is symmetrically provided at the lower end of the cutting plate (35), a connecting slider is fixedly provided at the upper end of the cutting plate (35), a guide slide rod (37) is slidably provided in a circular through-hole on one side of the connecting slider, fixed struts are fixedly provided at both ends of the guide slide rod (37), one end of the fixed strut is fixedly provided at the upper end of the adjustment box (24), a shear plate is provided at one side of the guide tube (31), a linkage rod is slidably provided in the circular through-hole on the upper end of the connecting slider, and one end of the linkage rod is fixedly provided at the upper end of the guide tube (31).
7. The winding device for high-strength nylon yarn according to claim 6, characterized in that: A control button (36) is fixedly provided on the connecting slider, and the electric push rod (21), the double-headed motor (38), the control button (36) and the clutch (28) are all electrically connected to the controller at the upper end of the mounting base plate (13).
8. The winding device for high-strength nylon yarn according to claim 7, characterized in that: A rotating disk (27) is fixedly provided at one end of the bidirectional screw (25), and a rotating handle is provided on one side of the rotating disk (27).
9. The winding device for high-strength nylon yarn according to claim 8, characterized in that: The upper end of the lifting frame (14) is provided with a plurality of rolling columns.
10. A method for using the winding device for high-strength nylon yarn according to claim 9, characterized in that: The following steps are involved: Step 1: Place the winding drum (11) on the upper end of the winding base (12), and then start the electric push rod (21). The output end of the electric push rod (21) pushes the inclined block (15) and the clamping tube (16) to move through the sliding rod. The inclined block (15) pushes the winding drum (11) through the lifting frame (14). When the rotating shaft at one end of the winding drum (11) is coaxial with the clamping tube (16), the rotating wheel at one end of the lifting frame (14) is at the upper end of the inclined block (15). Rolling, at this time, the rotating shaft at one end of the winding drum (11) enters the inside of the clamping tube (16) and pushes the sliding plate (17) to slide, the sliding plate (17) drives the guide block (19) to move, the spring (18) is compressed, and the T-shaped slide groove inclined at one end of the guide block (19) pushes the arc clamping plate (20) to move, and when the inner side of the arc clamping plate (20) is in close contact with the rotating shaft at one end of the winding drum (11), the rotating shaft at one end of the winding drum (11) can be clamped; Step 2: Pass a plurality of nylon high-strength yarns through the internal separation comb of the guide tube (31) and fix them to the winding drum (11), then start the double-headed motor (38), and the two output shafts of the double-headed motor (38) rotate simultaneously. The output shafts of the double-headed motor (38) respectively drive the first driving wheel and the second driving wheel to rotate, and the first driving wheel drives the first rotating shaft (23) to rotate through the first belt, and the first rotating shaft (23) drives the clamping tube (16) to rotate. When the clamping tube (16) rotates, it drives the winding drum (11) to rotate to wind the nylon high-strength yarn, and at the same time, the second driving wheel drives the first rotating shaft (23) to rotate through the first belt. The two belts drive the input shaft of the reducer (29) to rotate, and at the same time the reducer (29) reduces the speed. The output shaft of the reducer (29) drives the input shaft of the clutch (28) to rotate. The output shaft of the clutch (28) drives the bidirectional screw (25) to rotate. When the bidirectional screw (25) rotates, it drives the two thread blocks to move under the action of the thread. The two thread blocks move in opposite directions. When the thread blocks move, they push the lifting plate (30) to move through the connecting rod (26). When the lifting plate (30) moves, it pushes the guide tube (31) to move, thereby adjusting the guide height of the guide tube (31). Step 3: When the input shaft of the reducer (29) rotates, the driving bevel gear rotates, the driving bevel gear rotates, the driven bevel gear rotates, the driven bevel gear rotates the second rotating shaft (34), the second rotating shaft (34) rotates, the second transmission tube (33) rotates, the second transmission tube (33) rotates, the driving friction wheel rotates, the driving friction wheel rotates the driven friction wheel, the driven friction wheel rotates the reciprocating screw rod (32), and the reciprocating screw rod (32) rotates. When the reciprocating screw rod (32) rotates, it can drive the guide tube (31) to reciprocate along the axis of the reciprocating screw rod (32), so that the nylon high-strength yarn is evenly wound on the winding drum (11). Under the action of the linkage rod, when the guide tube (31) moves, it drives the connecting slider to slide along the axis of the guide slide rod (37); Step 4. When the guide tube (31) moves to the set height, the upper end of the guide tube (31) is in close contact with the lower end of the connecting slider, and then the cutting knife at the lower end of the cutting plate (35) cuts the nylon high-strength yarn. At the same time, the T-shaped clamping plate at the lower end of the cutting plate (35) can clamp and fix the broken ends of the nylon high-strength yarn. At the same time, the upper end of the guide tube (31) touches the upper button of the control button (36), and then the controller controls the double-headed motor (38) to stop rotating. The controller controls the clutch (28) to disconnect one end of the bidirectional screw (25) from the output end of the reducer (29). Then the staff rotates the rotating disk (27) by the handle to quickly return the lifting plate (30) to the initial position.
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