A core stranding machine for power cable production
Patent Information
- Application Number
- CN202522204461.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-19
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2035-10-19
AI Technical Summary
[0006]本实用新型的目的是克服现有电力电缆线芯束丝装置存在的电力电缆线芯传输松紧程度不易控制、易出现电力电缆松散或崩断的情况、不能调整电力电缆线芯传输位置、电力电缆线芯收卷均匀性不佳的问题,提供一种结构设计合理、电力电缆线芯传输稳定性好、电力电缆线芯不易崩断、能调整电力电缆线芯传输位置、电力电缆线芯收卷均匀性好的用于电力电缆生产的线芯束丝机
[0018] 1. The drive motor drives the drive shaft and the drive gear on the drive shaft to rotate in the forward or reverse direction. The drive gear pushes the connecting rack to move, which in turn pushes the first and second bearing seats to move on the base. This can expand or reduce the distance between the first and second bearing seats, thereby adjusting the tightness of the power cable core transmission after bundling, so that the power cable core after bundling can be transmitted smoothly, thereby improving the bundling quality of the power cable core and the winding quality of the power cable core after bundling.
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Figure CN224759181U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cable production technology, specifically a wire core bundling machine for power cable production. Background Technology
[0002] A cable is a device for transmitting electrical energy or signals, and it has a wide range of applications in many fields. A power cable bundling machine, also known as a wire bundling machine or stranding machine, primarily functions to twist multiple thin power cable cores together to form a thicker power cable, enabling the power cable to be used in various application scenarios.
[0003] For example, utility model patent application number 202321053107.3 discloses a cable processing wire bundling machine, including a support base, a take-up belt, and a rotating shaft. A circular plate is fixedly installed at the top of the support base, and wire holes are evenly opened inside the circular plate. A fixing frame is fixedly installed inside the wire holes of the circular plate, and a take-up belt is fixedly installed at the bottom of the fixing frame. The rotating shaft is located inside the take-up belt and is rotatably installed inside the wire holes of the support base. A telescopic threaded head is provided at the rear end of the rotating shaft, and a mounting frame is spirally installed on the outer side of the telescopic threaded head. The mounting frame is fixedly installed inside the wire holes of the support base. In this utility model, by setting up a take-up belt, a fixing frame, a rotating shaft, and an indicator rotating head, rotating the indicator rotating head drives the take-up belt to tighten through the rotating shaft, thereby reducing or increasing the diameter of the auxiliary wire hole. It is convenient to use and the operation process is simple.
[0004] The above-mentioned device has the following problems when bundling power cable cores: it is difficult to control the tightness of the power cable core transmission, the power cable is prone to loosening or breaking, the transmission position of the power cable cores cannot be adjusted, and the winding uniformity of the power cable cores is poor.
[0005] Based on this, this application proposes a wire core bundling machine for the production of power cables. Utility Model Content
[0006] The purpose of this invention is to overcome the problems of existing power cable core bundling devices, such as difficulty in controlling the tightness of power cable core transmission, easy occurrence of power cable loosening or breakage, inability to adjust the transmission position of power cable cores, and poor uniformity of power cable core winding. The invention provides a core bundling machine for power cable production that features a reasonable structural design, good power cable core transmission stability, resistance to power cable core breakage, adjustable power cable core transmission position, and good uniformity of power cable core winding.
[0007] The technical solution adopted by this utility model to solve the technical problem is as follows:
[0008] A wire core bundling machine for power cable production includes a base, a first support seat, a second support seat, a rotating cylinder, a mounting cover, and a placement plate. A support frame is mounted on the base, and a drive structure is also mounted on the base. The first and second support seats are mounted on the base on both sides of the drive structure and are respectively connected to the drive structure. A first upright plate is mounted on the first support seat, and a fixing ring and a rotary motor are mounted on the first upright plate. A rotating shaft is mounted on the rotary motor, and a rotating gear is mounted on the rotating shaft. The bearing seat two is provided with upright plate two and upright plate three. An adjustment structure is provided between upright plate two and upright plate three. A winding structure is provided between upright plate three. The two ends of the rotating cylinder pass through the fixing ring. A bundled wire cylinder is provided at one end of the rotating cylinder. A toothed ring that meshes with the rotating gear is provided on the outer wall of the rotating cylinder. The mounting cover is movably mounted on the rotating cylinder. The placement plate is movably mounted on the mounting cover. The placement plate is provided with a bearing plate, a through hole, and a placement groove. The coil of the power cable core before bundled wire is wound. Both ends of the shaft are placed in the mounting slots on the support plate. The shaft is fixed to the support plate with bolts. One end of the power cable core is passed through the through hole into the rotating drum and the bundled wire tube. The rotating motor drives the rotating shaft and the rotating gear on the rotating shaft to rotate. The rotating gear drives the gear ring meshing with it to rotate, thereby driving the rotating drum to rotate. The rotating drum drives the mounting cover and the bundled wire tube to rotate. Multiple power cable cores that have entered the bundled wire tube are wound and bundled, which can improve the bundling efficiency of the power cable cores. The power cable cores removed from the bundled wire tube are then passed through the adjustment mechanism. The bundled wires are then wound onto a take-up structure. The take-up structure takes up the bundled power cable cores, pulling them to move and allowing multiple individual power cable cores to enter the rotating drum and bundle drum for bundling. This improves the bundling efficiency and effect of the power cable cores. The positioning structure allows for lateral adjustment of the position of the bundled power cable cores, enabling them to be wound at different positions on the take-up structure for uniform winding and improving the winding quality of the power cable cores.
[0009] Preferably, the drive structure includes a drive motor and a drive gear, with the drive motor configured as a servo motor. The drive motor is located at the bottom of the base, and a drive shaft is mounted on the drive motor, extending into the base. The drive gear is mounted on the drive shaft. Connecting gears are provided on the outer walls of both the first and second bearing seats, meshing with the drive gears. The drive motor drives the drive shaft and the drive gear on the drive shaft to rotate forward or in the opposite direction. The drive gear pushes the connecting gears to move, causing the connecting gears to push the first and second bearing seats to move on the base. This can increase or decrease the distance between the first and second bearing seats, thereby adjusting the tightness of the power cable core transmission after bundling, ensuring smooth transmission of the bundled power cable cores, and thus improving the bundling quality and winding quality of the power cable cores.
[0010] Preferably, the base has a limiting groove on its side wall, and the bearing seats one and two have limiting rods on their opposite outer walls. The limiting rods pass through the limiting grooves. The drive motor drives the drive shaft and the drive gear on the drive shaft to rotate in the forward or reverse direction. The drive gear pushes the connecting gear to move, causing the connecting gear to push the bearing seats one and two to move on the base. The limiting rods on the bearing seats one and two move back and forth in the limiting grooves, so that the limiting rods and limiting grooves can limit the position of the bearing seats one and two during the adjustment process, preventing the bearing seats one and two from lateral shaking during the adjustment process, thereby improving the stability of the power cable core transmission process.
[0011] Preferably, the inner wall of the rotating cylinder is provided with a fixing plate, and a steering wheel is provided between the fixing plates via a pin shaft. The steering wheel and the placement plate are configured in a one-to-one correspondence. One end of a single power cable core on the placement plate passes through a through hole and a wire hole into the rotating cylinder. After being turned by the steering wheel, it enters the bundled wire cylinder for bundled wire processing. The steering wheel enables the power cable core to be smoothly turned and bundled. The one-to-one correspondence between the steering wheel and the placement plate allows the steering wheel to limit the movement of each power cable core in the rotating cylinder, preventing the power cable core from becoming scattered during transmission, thereby improving the bundled wire quality of the power cable core.
[0012] Preferably, the mounting cover is designed to be removable from the rotating cylinder. A fixing groove is provided on the mounting cover, and the placement plate is movably placed in the fixing groove. A wire-passing hole communicating with the through hole is provided on the mounting cover in the fixing groove. The mounting cover and the rotating cylinder are connected by threads, which facilitates the installation or removal of the mounting cover on the rotating cylinder and facilitates the assembly and maintenance of the wire bundling machine.
[0013] Preferably, the placement plate is installed in the fixing groove by mounting bolts, and the placement plate is designed to be replaceable in the fixing groove. According to the size of the reel of the power cable core before bundling, a placement plate with a corresponding bearing plate is selected. The placement plate is installed in the fixing groove on the mounting cover by mounting bolts, which improves the stability of the placement plate on the mounting cover. On the other hand, selecting the appropriate placement plate according to different power cable cores can improve the versatility of the bundling machine, expand the application range of the bundling machine, and reduce the cost of manufacturing multiple bundling machines.
[0014] Preferably, the adjustment structure includes an adjustment motor and an adjustment ring, with the adjustment motor configured as a servo motor. A bearing is mounted on the second vertical plate, and the adjustment motor is also mounted on the second vertical plate. A rotating stud is mounted on the adjustment motor, with one end of the rotating stud inserted into the bearing. The adjustment ring is fitted onto the rotating stud, and an adjustment ring is positioned on top of the adjustment ring. The adjustment motor drives the rotating stud to rotate forward or backward, causing the rotating stud to push the adjustment ring back and forth on the rotating stud. The adjustment ring on the adjustment ring causes the bundled power cable core within the adjustment ring to move laterally, allowing the bundled power cable core to be wound at different positions on the winding shaft, thus uniformly winding the power cable core and improving the winding quality of the bundled power cable core.
[0015] Preferably, a crossbar is provided between the two vertical plates, and a slider is provided at the bottom of the adjusting screw ring. A sliding cylinder is provided on the slider, and the crossbar is inserted horizontally into the sliding cylinder. Under the action of the adjusting motor, the adjusting screw ring moves back and forth along the rotating stud, and the sliding cylinder on the slider at the bottom of the adjusting screw ring moves back and forth along the crossbar. This allows the limiting rod and the sliding cylinder to limit the adjusting screw ring during the adjustment process, thereby improving the stability of the power cable core during the adjustment process and enhancing the winding quality of the power cable core after bundling.
[0016] Preferably, the winding structure includes a winding motor and a winding shaft. A bearing is provided on the vertical plate three. The winding motor is mounted on the vertical plate three. One end of the winding shaft is connected to the winding motor, and the other end is inserted into the bearing two. Baffles are provided at both ends of the winding shaft. The winding motor drives the winding shaft to rotate, and the winding shaft winds up multiple power cable cores, pulling the power cable cores to move them. This allows the power cable cores on the mounting cover to enter the bundled yarn tube for bundled processing, which can improve the bundled efficiency and quality of the power cable cores. The baffles on the winding shaft can limit the winding of the power cable cores, preventing them from scattering on the winding shaft, thereby improving the winding quality of the power cable cores.
[0017] Beneficial effects:
[0018] 1. The drive motor drives the drive shaft and the drive gear on the drive shaft to rotate in the forward or reverse direction. The drive gear pushes the connecting rack to move, which in turn pushes the first and second bearing seats to move on the base. This can expand or reduce the distance between the first and second bearing seats, thereby adjusting the tightness of the power cable core transmission after bundling, so that the power cable core after bundling can be transmitted smoothly, thereby improving the bundling quality of the power cable core and the winding quality of the power cable core after bundling.
[0019] 2. Pass one end of a single power cable core on the placement plate through the through hole and the wire hole into the rotating cylinder. After being turned by the steering wheel, it enters the bundled tube for bundled processing. The steering wheel can smoothly turn the power cable core into bundled strands. The steering wheel and the placement plate are set to correspond one-to-one, so that the steering wheel can limit the position of each power cable core in the rotating cylinder, so as to prevent the power cable core from being scattered during transmission, thereby improving the bundled strand quality of the power cable core.
[0020] 3. Adjust the motor to drive the rotating stud to rotate in the forward or reverse direction. The rotating stud pushes the adjusting ring to move back and forth on the rotating stud. The adjusting ring on the adjusting ring drives the bundled power cable core inside the adjusting ring to move laterally, so that the bundled power cable core is wound up at different positions on the winding shaft, and the power cable core is wound up evenly, thereby improving the winding quality of the bundled power cable core. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the structure of this utility model.
[0022] Figure 2 This is a partial structural schematic diagram of the present invention, illustrating the connection structure between the support base and the rotating cylinder.
[0023] Figure 3 This is a partial structural diagram of the present invention, illustrating the connection structure between the mounting cover and the fixing groove.
[0024] Figure 4 This is a partial structural diagram of the present invention, illustrating the connection structure between the placement plate and the upright plate.
[0025] Figure 5 This is a partial structural diagram of the present invention, illustrating the connection structure between the rotating cylinder and the steering wheel.
[0026] Figure 6 This is a partial structural schematic diagram of the present invention, illustrating the connection structure between the bearing seat two and the connecting toothed rod.
[0027] Figure 7 This is a partial structural schematic diagram of the present invention, illustrating the connection structure between the adjusting screw ring and the rotating stud.
[0028] Figure 8 This is a partial structural diagram of the present invention, illustrating the connection structure between the winding shaft and the baffle.
[0029] Figure 9 This is a schematic diagram of another embodiment of the present invention.
[0030] Figure 10 This is a utility model Figure 9 A partial structural diagram illustrating the connection structure between the support frame and the limiting ring.
[0031] In the diagram: 1. Base, 2. Bearing seat one, 3. Bearing seat two, 4. Rotating cylinder, 5. Mounting cover, 6. Placement plate, 7. Bracket, 8. Limiting groove, 9. Drive motor, 10. Drive gear, 11. Drive shaft, 12. Limiting rod, 13. Connecting rack, 14. Vertical plate one, 15. Fixing ring, 16. Rotary motor, 17. Rotary gear, 18. Rotating shaft, 19. Vertical plate two, 20. Vertical plate three, 21. Bearing one, 22. Bearing two, 23. Adjusting motor, 24. 25. Adjusting screw ring, 26. Rotating stud, 27. Adjusting ring, 28. Crossbar, 29. Slider, 30. Slide cylinder, 31. Rewinding motor, 32. Rewinding shaft, 33. Baffle, 34. Gear ring, 35. Wire bundle tube, 36. Fixing plate, 37. Pin, 38. Steering wheel, 39. Fixing groove, 40. Wire hole, 41. Mounting bolt, 42. Bearing plate, 43. Through hole, 44. Placement groove, 45. Bearing frame, 46. Limiting ring, 47. Alarm, 48. Pressure sensor. Detailed Implementation
[0032] The present invention will now be described in more detail with reference to the accompanying drawings.
[0033] Example 1:
[0034] As attached Figure 1-8As shown, a wire core bundling machine for power cable production includes a base 1, a first bearing seat 2, a second bearing seat 3, a rotating cylinder 4, a mounting cover 5, and a placement plate 6. A bracket 7 is mounted on the base 1, and a drive structure is also mounted on the base 1. The first bearing seat 2 and the second bearing seat 3 are mounted on the base 1 on both sides of the drive structure and are respectively connected to the drive structure. A first upright plate 14 is mounted on the first bearing seat 2, and a fixing ring 15 and a rotary motor 16 are mounted on the first upright plate 14. A rotating shaft 18 is mounted on the rotary motor 16, and rotating teeth are mounted on the rotating shaft 18. Wheel 17, bearing seat 2 3 is provided with upright plate 2 19 and upright plate 3 20. An adjustment structure is provided between upright plate 2 19 and upright plate 2 19, and a winding structure is provided between upright plate 3 20 and upright plate 3 20. The two ends of the rotating cylinder 4 pass through the fixing ring 15. A bundle tube 34 is provided at one end of the rotating cylinder 4. A toothed ring 33 that meshes with the rotating gear 17 is provided on the outer wall of the rotating cylinder 4. The mounting cover 5 is movably mounted on the rotating cylinder 4. The placement plate 6 is movably mounted on the mounting cover 5. The placement plate 6 is provided with a bearing plate 41 and a through hole 42. The bearing plate 41 is provided with a placement groove 43.
[0035] The drive structure includes a drive motor 9 and a drive gear 10. The drive motor 9 is configured as a servo motor and is located at the bottom of the base 1. A drive shaft 11 is mounted on the drive motor 9 and extends into the base 1. The drive gear 10 is mounted on the drive shaft 11. Connecting gears 13 are provided on the outer walls of the first bearing seat 2 and the second bearing seat 3, and the connecting gears 13 are meshed with the drive gear 10. A limit groove 8 is provided on the side wall of the base 1. Limit rods 12 are provided on the outer walls of the first bearing seat 2 and the second bearing seat 3 on opposite sides, and the limit rods 12 pass through the limit grooves 8.
[0036] The inner wall of the rotating cylinder 4 is provided with a fixing plate 35, and a steering wheel 37 is provided between the fixing plates 35 via a pin 36, and the steering wheel 37 and the placement plate 6 are configured to correspond one-to-one.
[0037] The mounting cover 5 is designed to be removable from the rotating cylinder 4. A fixing groove 38 is provided on the mounting cover 5. The placement plate 6 is movably placed in the fixing groove 38. A wire hole 39 communicating with the through hole 42 is provided on the mounting cover 5 in the fixing groove 38. The placement plate 6 is installed in the fixing groove 38 by mounting bolts 40. The placement plate 6 is designed to be replaceable in the fixing groove 38 by mounting bolts 40.
[0038] The adjustment structure includes an adjustment motor 23 and an adjustment ring 24. The adjustment motor 23 is configured as a servo motor. A bearing 21 is provided on the second vertical plate 19. The adjustment motor 23 is mounted on the second vertical plate 19. A rotating stud 25 is provided on the adjustment motor 23, and one end of the rotating stud 25 is inserted into the bearing 21. The adjustment ring 24 is sleeved on the rotating stud 25, and an adjustment ring 26 is provided on the top of the adjustment ring 24. A crossbar 27 is provided between the second vertical plates 19. A slider 28 is provided at the bottom of the adjustment ring 24. A slide cylinder 29 is provided on the slider 28, and the crossbar 27 is inserted laterally into the slide cylinder 29.
[0039] The winding structure includes a winding motor 30 and a winding shaft 31. A bearing 22 is provided on the vertical plate 3 20. The winding motor 30 is located on the vertical plate 3 20. One end of the winding shaft 31 is connected to the winding motor 30, and the other end is inserted into the bearing 22. Baffles 32 are provided at both ends of the winding shaft 31.
[0040] Example 2:
[0041] Further explanation is provided based on Example 1, as shown in the appendix. Figure 9-10 As shown, a wire core bundling machine for power cable production has a support frame 44 on a base 1. A limit ring 45 and an alarm 46 are mounted on the support frame 44. Pressure sensors 47 are located at the top and bottom of the limit ring 45 and are connected to the alarm 46 via connecting wires. After bundling, the power cable cores pass through the bundling tube 34 and enter the limit ring 45. When the power cable cores are too tight, they move upwards, putting pressure on the pressure sensor 47 at the top of the limit ring 45. When the power cable core is too loose during transmission, it moves downwards and presses against the pressure sensor 47 at the bottom of the limit ring 45. When the pressure sensor 47 is pressed, the alarm 46 is activated to alert the staff, allowing them to start the drive motor 9 and adjust the distance between the first bearing seat 2 and the second bearing seat 3. This prevents the power cable core from being too tight or too loose during transmission, ensuring that the power cable core can be transmitted smoothly for winding, thereby improving the bundle quality and winding quality of the power cable core.
[0042] Working principle: Check the integrity of the wiring of the wire core bundling machine used for power cable production; check the normal operation of the drive motor 9, rotary motor 16, adjusting motor 23, and winding motor 30; select a placement plate 6 with a corresponding bearing plate 41 according to the size of the power cable core reel before bundling; install the placement plate 6 in the fixing groove 38 on the mounting cover 5 using mounting bolts 40; install the mounting cover 5 on one end of the rotating drum 4; place both ends of the power cable core reel in the placement groove 43 on the bearing plate 41; fix the reel to the bearing plate 41 with bolts; pass one end of the power cable core through the through hole 42 and the wire hole 39 into the rotating drum 4; After turning via the steering wheel 37, the cable cores enter the bundled wire drum 34. After exiting the bundled wire drum 34, the cable cores pass through the adjusting ring 26. Multiple cable cores are wound around the winding shaft 31. The winding motor 30 is started, driving the winding shaft 31 to rotate. The winding shaft 31 winds up the multiple cable cores, pulling them forward so that the cable cores on the mounting cover 5 and the placement plate 6 enter the bundled wire drum 34. The rotary motor 16 is started, driving the rotary shaft 18 and the rotary gear 17 on the rotary shaft 18 to rotate. The rotary gear 17 drives the gear ring 33, which meshes with it, to rotate, thereby driving the rotary drum 4 to rotate. The rotary drum 4 drives the mounting cover 5 to rotate. Cover 5, the bundle tube 34 rotates, and multiple power cable cores entering the bundle tube 34 are wound and bundled. The take-up shaft 31 pulls the bundled power cable cores forward to take them up. The adjusting motor 23 is started, which drives the rotating stud 25 to rotate in the forward or reverse direction. The rotating stud 25 pushes the adjusting ring 24 to move back and forth on the rotating stud 25. The adjusting ring 26 on the adjusting ring 24 drives the bundled power cable cores inside the adjusting ring 26 to move laterally, so that the bundled power cable cores are wound up at different positions on the take-up shaft 31, and the power cable cores are wound up evenly. During the winding process of the power cable cores... During the process, if the transmission of the power cable core is too tight or too loose, the drive motor 9 is started. The drive motor 9 drives the drive shaft 11 and the drive gear 10 on the drive shaft 11 to rotate in the forward or reverse direction. The drive gear 10 pushes the connecting rack 13 to move, so that the connecting rack 13 pushes the first bearing seat 2 and the second bearing seat 3 to move on the base 1. This can expand or reduce the distance between the first bearing seat 2 and the second bearing seat 3, thereby adjusting the tightness of the transmission of the power cable core after bundling. After the power cable core bundling is completed, the winding motor 30 is turned off, and the winding shaft 31 and the power cable core wound on the winding shaft 31 are removed from between the vertical plate 3 and the vertical plate 3, thus completing the bundling of the power cable core.
[0043] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
[0044] In the description of this utility model, it should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. The connection relationship of the various components involved in this utility model is based on the prior art. Different materials can be selected to adopt corresponding connection relationships. For example, if technical materials are selected, welding can be used for connection, and if stone is selected, connectors can be used for connection, etc.
[0045] The parts not covered in this utility model are the same as or can be implemented using existing technologies.
Claims
1. A wire core bundling machine for power cable production, comprising a base, a first bearing seat, a second bearing seat, a rotating cylinder, a mounting cover, and a placement plate, characterized in that: The base is equipped with a support and a drive structure. Bearing seats one and two are mounted on the base on both sides of the drive structure and connected to the drive structure. Bearing seat one has a vertical plate one, a fixing ring, and a rotary motor. A rotating shaft and a rotating gear are mounted on the rotary motor. Bearing seat two has two vertical plates two and three. An adjustment structure is located between vertical plates two and a winding structure is located between vertical plates three. The rotating cylinder extends from both ends through the fixing ring. A bundled yarn tube is located at one end of the rotating cylinder, and a toothed ring that meshes with the rotating gear is located on the outer wall of the rotating cylinder. The mounting cover is movably mounted on the rotating cylinder, and a placement plate is movably mounted on the mounting cover. The placement plate has a bearing plate, a through hole, and a placement groove.
2. The wire core bundling machine for power cable production according to claim 1, characterized in that: The drive structure includes a drive motor and a drive gear. The drive motor is configured as a servo motor and is located at the bottom of the base. A drive shaft is mounted on the drive motor and extends into the base. The drive gear is mounted on the drive shaft. Connecting gears are provided on the outer walls of both the first and second bearing seats and are meshed with the drive gear.
3. The wire core bundling machine for power cable production according to claim 2, characterized in that: The base has a limiting groove on its side wall, and the bearing seat one and bearing seat two have limiting rods on their opposite outer walls, with the limiting rods passing through the limiting grooves.
4. The wire core bundling machine for power cable production according to claim 1, characterized in that: The inner wall of the rotating cylinder is provided with a fixing plate, and a steering wheel is provided between the fixing plates through a pin shaft, and the steering wheel and the placement plate are configured to correspond one-to-one.
5. The wire core bundling machine for power cable production according to claim 1, characterized in that: The mounting cover is designed to be removable from the rotating cylinder. A fixing groove is provided on the mounting cover, and the placement plate is movably placed in the fixing groove. A wire through hole communicating with the through hole is provided on the mounting cover in the fixing groove.
6. The wire core bundling machine for power cable production according to claim 5, characterized in that: The placement plate is installed in the fixing groove by mounting bolts, and the placement plate is designed to be replaceable in the fixing groove by mounting bolts.
7. The wire core bundling machine for power cable production according to claim 1, characterized in that: The adjustment structure includes an adjustment motor and an adjustment screw ring. The adjustment motor is set as a servo motor. A bearing is provided on the second vertical plate. The adjustment motor is set on the second vertical plate. A rotating stud is provided on the adjustment motor. One end of the rotating stud is inserted into the bearing. The adjustment screw ring is sleeved on the rotating stud. An adjustment ring is provided on the top of the adjustment screw ring.
8. The wire core bundling machine for power cable production according to claim 7, characterized in that: A crossbar is provided between the two vertical plates, and a slider is provided at the bottom of the adjusting screw ring. A sliding cylinder is provided on the slider, and the crossbar is inserted horizontally into the sliding cylinder.
9. The wire core bundling machine for power cable production according to claim 1, characterized in that: The winding structure includes a winding motor and a winding shaft. A bearing is provided on the vertical plate three. The winding motor is located on the vertical plate three. One end of the winding shaft is connected to the winding motor, and the other end is inserted into the bearing two. Baffles are provided at both ends of the winding shaft.
Citation Information
Patent Citations
Wire bundling machine for cable processing
CN219696146U