Cable supporting device for cable manufacturing equipment
Through the combined structure of the limiter, radiator and support, the shaking, heat and friction damage problems during the cable manufacturing process are solved, and the cable is stable, clean and horizontally rewinding are achieved.
Patent Information
- Application Number
- CN202510474099.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-07-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the existing cable manufacturing process, there are problems such as cable shaking affecting the operation of equipment, processing debris and heat dissipation, and cable surface friction damage.
The combined structure of the limiter, radiator and support is adopted. The limiter stabilizes the cable through the limiter roller and magnetic block, the radiator absorbs heat and cools through the spiral tube, and the support is winded through the plug rod sheet and the magnet buffer cable.
Effectively stabilize cable movement, remove impurities, reduce heat, avoid cable damage, and ensure horizontal winding and buffering winding process.
Smart Images

Figure CN120261056A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cable manufacturing equipment supports, and specifically relates to a cable support device for cable manufacturing equipment. Background Art
[0002] Power engineering is related to the production, transmission, and distribution of electric energy. In a broad sense, it also includes engineering applications of electricity as power and energy in various fields. At the same time, it can be understood as the power transmission and transformation and power expansion project. Most cables are large in volume and weight. Therefore, it is inevitable to support them during the cable processing process.
[0003] However, there are the following problems with the existing cable supports: 1. During the processing of the cable manufacturing process on the assembly line, the cable will shake during processing, and seriously, it will affect the other operating equipment; 2. After the cable processing is completed, there will be some processing debris left, and at the same time, a large amount of heat will be dissipated on the cable surface, which is not conducive to the subsequent winding operation; 3. During the winding support process, the cables will be damaged due to mutual extrusion or unevenness between the cables, resulting in surface friction damage. Summary of the Invention
[0004] To achieve the above objectives, the present invention is realized through the following technical solutions: A cable support device for cable manufacturing equipment includes a limiter, a radiator, and a support. The limiter is arranged beside the support, and the radiator is arranged on the other side of the limiter; The limiter includes a support base. A U-shaped platform is fixedly connected to the outside of the support base. A chute is opened inside the U-shaped platform. A bearing is slidably installed inside the chute. A second magnetic block is fixedly connected to the outside of the bearing. A rotating shaft is press-fitted inside the bearing. A limiting roller is fixedly connected to the outside of the rotating shaft; The cable is frictionally connected to the two limiting rollers. At this time, the limiting rollers will rotate relatively due to the movement of the cable. At this time, the limiting rollers not only play a role in removing impurities on the cable surface but also play a role in limiting the movement of the cable.
[0005] The radiator includes a grooved frame. A sliding rod is slidably installed inside the grooved frame. A perforated plate is sleeved on the outside of the sliding rod. A puller is fixedly connected to the bottom of the perforated plate in a linear array. A spiral tube is fixedly connected to the bottom of the puller. The spiral tube is fixedly connected to a bottom plate on the side away from the puller. The bottom plate is fixedly connected inside the grooved frame.
[0006] Preferably, a pressure rotating plate is rotatably installed inside the U-shaped table. A return rod is fixedly connected to the bottom of the pressure rotating plate. A first magnetic block is arranged on the outer side of the pressure rotating plate. The first magnetic block is fixedly installed inside the sliding groove. The pressure rotating plate is arranged between the first magnetic block and the second magnetic block. The outer side of the bearing is slidably installed inside the sliding groove, and a second magnetic block is also fixedly connected to the outer side of the bearing. The second magnetic block repels the first magnetic block at another location, and their function is to limit the positions of the limiting roller and the rotating shaft.
[0007] Preferably, the supporter includes a top frame. A pressing rod and a spring are respectively fixedly connected to the inner side of the top frame. The ends of the pressing rod and the spring away from the top frame are both fixedly connected to a side block. A moving rod is fixedly connected to the inside of the side block.
[0008] Preferably, both ends of the moving rod are slidably installed on the inner side of the top frame. A flat pressing plate is fixedly connected to the outer side of the moving rod. The side blocks are symmetrically arranged at both ends of the flat pressing plate. A supporting assembly is arranged directly below the flat pressing plate. The supporting assembly is fixedly connected to the bottom of the top frame. A supporting frame is fixedly connected to the bottom of the supporting assembly. As the side blocks and the moving rod move downward along the inner wall of the top frame, the flat pressing plate fixed at the central part of the moving rod will always keep pressing on the pressing rod. Therefore, the pressed pressing rod will horizontally press the cable placed below it to keep the coiled cable in a horizontal state and avoid unevenness.
[0009] Preferably, the puller includes a pull rod. The pull rod is fixedly connected to the bottom of the through plate. A piston is fixedly connected to the bottom of the pull rod. The outer side of the piston is slidably installed in a sleeve. The lower half of the sleeve is fixedly connected inside the spiral tube. As the piston is pulled upward, suction forces will be generated in the space at the bottom of the sleeve and the space inside the spiral tube respectively. The suction forces will suck the processing residual heat and floating impurities on the surface of the cable at the bottom of the sleeve. At the same time, the suction force generated inside the spiral tube will suck the cold air at both ends of the spiral tube into its interior to cool and dissipate the heat of the cable.
[0010] Preferably, the supporting assembly includes a first fixed shell. The top of the first fixed shell is fixedly connected to the top frame. The bottom of the first fixed shell is fixedly connected to the supporting frame. A first inserting rod piece is arranged on the outer side of the first fixed shell.
[0011] Preferably, a central shaft is rotatably installed inside the first fixed housing. A first grooved disc is rotatably installed outside the central shaft. One side of the first grooved disc away from the central shaft is fixedly connected inside the first fixed housing. A pressure rod is slidably installed on the side of the first grooved disc away from the first fixed housing. The support effect on the cable is achieved by one releasing and one winding. And between the two central shafts, the cable machine can be manufactured and processed, so as to facilitate the function of the rapid winding tooling after the cable processing is completed. Preferably, a second grooved disc is slidably installed at one end of the pressure rod away from the first grooved disc. The second grooved disc is slidably installed outside the second fixed housing. Both the second fixed housing and the second grooved disc are rotatably connected to the central shaft.
[0012] Preferably, a first magnet is fixedly connected to one end of the second grooved disc inside the second fixed housing. A second magnet is arranged at one end of the first magnet away from the second grooved disc. The second magnet is fixedly connected inside the second fixed housing. As the cable is squeezed and moves towards both ends, the second grooved disc will break through the repulsive force between the two magnets and continue to move towards the inside of the second fixed housing, thereby playing a role in relieving pressure and buffering the squeezed cable, and at the same time avoiding damage to the cable due to extrusion between cables.
[0013] Preferably, a limiting strip is fixedly connected to the outside of the second fixed housing. The second fixed housing is fixedly connected to the bottom of the top frame. A second inserting piece is arranged on the side of the second fixed housing away from the second grooved disc. When the cable winding is completed and the pressure rod moves to the outermost end of the grooved disc, the first inserting piece and the second inserting piece are respectively passed through the first fixed housing and the second fixed housing until they extend to both ends of the pressure rod to realize the stable support of the wound cable.
[0014] Preferably, a sealing housing is rotatably installed outside the central shaft. The sealing housing is inserted outside the second fixed housing. A bladder is fixedly connected to one end of the sealing housing away from the central shaft. A motor is arranged at one end of the bladder away from the sealing housing. The output end of the motor is connected to the central shaft through a coupling. When the sealing housing is squeezed by the second grooved disc and the gas inside it is filled into the bladder, the bladder will instantly bulge, thereby playing a role in squeezing and restricting the output shaft of the motor, and at the same time playing a role in reducing the winding speed of the cable and giving a certain buffering time when the cable is wound.
[0015] The present invention provides a cable support device for a cable manufacturing device. It has the following beneficial effects: 1. For the cable support device used in the cable manufacturing equipment, the cable is drawn out from the support device at one end and then passes through the position between two limiting rollers. The cable is frictionally connected to the two limiting rollers. At this time, the limiting rollers will rotate relatively due to the movement of the cable. At this time, the limiting rollers not only play a role in removing impurities on the surface of the cable, but also play a role in limiting the movement of the cable.
[0016] 2. For the cable support device used in the cable manufacturing equipment, it moves along the chute towards the pressing and rotating plate through the bearing until it squeezes the pressing and rotating plate. Subsequently, the pressing and rotating plate will rotate clockwise through the U-shaped platform, and the return rod fixed at its bottom will also rotate clockwise at the same time and play a role in returning and buffering the shaking cable, and at the same time avoid the cable being damaged due to collision with external equipment during the shaking process.
[0017] 3. For the cable support device used in the cable manufacturing equipment, by pulling the piston upward, suction will be generated in the space at the bottom of the sleeve and the space inside the spiral tube respectively. This suction will suck the processing residual heat and floating impurities on the surface of the cable at the bottom of the sleeve. At the same time, the suction generated inside the spiral tube will suck the cold air at both ends of the spiral tube into its interior to play a role in cooling and dissipating heat of the cable.
[0018] 4. For the cable support device used in the cable manufacturing equipment, since the inhaled heat is cooled in the sleeve, this heat does not have a high temperature. In addition, this blowing force will also discharge the heat originally absorbed in the spiral tube. The gas discharged from the sleeve will again play a role in cooling and removing impurities from the cable. Therefore, by moving the piston up and down, it plays a role in replacing cold and hot gases.
[0019] 5. For the cable support device used in the cable manufacturing equipment, when the cable winding is completed and the pressing rod moves to the outermost end of the grooved disc, the first inserting rod piece and the second inserting rod piece are respectively passed through the first fixed shell and the second fixed shell until they extend to both ends of the pressing rod to achieve the role of stabilizing and supporting the wound cable.
[0020] 6. For the cable support device used in the cable manufacturing equipment, the side block and the moving rod move downward along the inner wall of the top frame. At this time, the flat pressing plate fixed at the center of the moving rod will always maintain the extrusion effect on the pressing rod. Therefore, the pressed pressing rod will horizontally extrude the cable placed below it to play a role in keeping the wound cable in a horizontal state and avoiding unevenness.
[0021] VII. The cable support device for the cable manufacturing equipment is relatively stationary through the second fixed housing by the repulsive force between the first magnet and the second magnet. However, as the cable is extruded and moved towards both ends, the second slotted disc will break through the repulsive force between the two magnets and continue to move towards the inside of the second fixed housing, thereby playing a role in relieving pressure and buffering the extruded cable, and at the same time avoiding damage to the cable due to extrusion between cables.
[0022] VIII. The cable support device for the cable manufacturing equipment starts to extrude the sealing housing arranged at the innermost part of the second fixed housing through the second slotted disc. At this time, the sealing housing will fill the gas inside it into the airbag due to the extrusion force. At this time, the airbag will instantly bulge, thereby playing a role in extruding and restricting the output shaft of the motor, and at the same time playing a role in reducing the winding speed of the cable and giving a certain buffering time when the cable is wound. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 is a schematic external structure diagram of a cable support device for a cable manufacturing equipment of the present invention; Figure 2 is a schematic structure diagram of a limiter of the present invention; Figure 3 is a schematic cross-sectional structure diagram of a limiter of the present invention; Figure 4 is a schematic structure diagram of a radiator of the present invention; Figure 5 is a schematic cross-sectional structure diagram of a radiator of the present invention; Figure 6 is a schematic structure diagram of a support device of the present invention; Figure 7 is a schematic left partial cross-sectional structure diagram of a support device of the present invention; Figure 8 is a schematic right partial cross-sectional structure diagram of a support device of the present invention; Figure 9 For the present invention Figure 8 is an enlarged schematic structure diagram of part A in.
[0024] In the figure: 1. Limiter; 2. Radiator; 3. Support; 11. Support base; 12. U-shaped platform; 13. Pressing and rotating plate; 14. First magnet; 15. Limiting roller; 16. Rotating shaft; 17. Bearing; 18. Second magnet; 19. Chute; 10. Return rod; 21. Grooved frame; 22. Slide bar; 23. Through plate; 24. Drawer; 25. Spiral tube; 26. Bottom plate; 241. Drawer rod; 242. Piston; 243. Housing; 31. Top frame; 32. Pressing rod; 33. Spring; 34. Side block; 35. Shifting rod; 36. Flat pressing plate; 37. Support assembly; 38. Support frame; 371. First fixed housing; 372. First inserted rod piece; 373. First grooved disc; 374. Pressing rod; 375. Central shaft; 376. Second fixed housing; 377. Second grooved disc; 378. Limiting strip; 379. First magnet; 370. Second magnet; 3701. Second inserted rod piece; 3702. Sealing housing; 3703. Bladder; 3704. Motor. Detailed implementation mode
[0025] The present invention will be further described in detail below in conjunction with the accompanying drawings and the detailed implementation mode. The embodiments of the present invention are given for the purpose of illustration and description, and are not exhaustive or limited to the disclosed form. Many modifications and variations will be obvious to those of ordinary skill in the art. The embodiments are selected and described to better illustrate the principles and practical applications of the present invention, and enable those of ordinary skill in the art to understand the present invention and thus design various embodiments with various modifications suitable for specific purposes.
[0026] The first embodiment is as Figures 1 - 3 shown. The present invention provides a technical solution: a cable support device for a cable manufacturing device, including a limiter 1, a radiator 2 and a support 3. The limiter 1 is arranged beside the support 3, and the radiator 2 is arranged on the other side of the limiter 1.
[0027] The limiter 1 includes a support base 11. The outside of the support base 11 is fixedly connected with a U-shaped platform 12. A chute 19 is opened inside the U-shaped platform 12. A bearing 17 is slidably installed inside the chute 19. The outside of the bearing 17 is fixedly connected with a second magnet 18. A rotating shaft 16 is press-fitted inside the bearing 17. A limiting roller 15 is fixedly connected to the outside of the rotating shaft 16. A pressing and rotating plate 13 is rotatably installed inside the U-shaped platform 12. A return rod 10 is fixedly connected to the bottom of the pressing and rotating plate 13. A first magnet 14 is arranged outside the pressing and rotating plate 13. The first magnet 14 is fixedly installed inside the chute 19. The pressing and rotating plate 13 is arranged at a position between the first magnet 14 and the second magnet 18.
[0028] When the cable is drawn out from the support 3 at one end and then passes through the position between the two limiting rollers 15, where the cable is frictionally connected to the two limiting rollers 15, the limiting rollers 15 will rotate relatively due to the movement of the cable. At this time, the limiting rollers 15 not only play a role in removing impurities on the surface of the cable but also play a role in limiting the movement of the cable.
[0029] A rotating shaft 16 is fixedly connected inside the limiting roller 15. At the same time, both ends of the rotating shaft 16 are press-fitted with the inner sides of the bearings 17. The outer sides of the bearings 17 are slidably installed inside the sliding grooves 19, and a second magnetic block 18 is fixedly connected to the outer sides of the bearings 17. The second magnetic block 18 repels another first magnetic block 14, and their function is to limit the positions of the limiting roller 15 and the rotating shaft 16.
[0030] If the cable shakes during the conveying and processing process, the cable will impact the limiting roller 15, and at this time, the two mutually repulsive magnetic blocks will play a role in stabilizing and restricting the cable. If the cable shakes too violently and the repulsive force between the two magnetic blocks cannot offset it, the bearing 17 will move along the sliding groove 19 towards the direction of the pressing plate 13 until it presses against the pressing plate 13. Subsequently, the pressing plate 13 will rotate clockwise through the U-shaped platform 12, and the return rod 10 fixed to its bottom will also rotate clockwise to perform the functions of returning and buffering the shaking cable, and at the same time, avoid damage to the cable caused by impact with external equipment during the shaking process.
[0031] Second Embodiment, as Figures 4 - 5 shown, the radiator 2 includes a slotted frame 21. A sliding rod 22 is slidably installed inside the slotted frame 21. A through plate 23 is sleeved on the outer side of the sliding rod 22. The bottom of the through plate 23 is fixedly connected with pullers 24 in a linear array. The bottom of the puller 24 is fixedly connected with a spiral tube 25. One side of the spiral tube 25 away from the puller 24 is fixedly connected with a bottom plate 26, and the bottom plate 26 is fixedly connected inside the slotted frame 21.
[0032] The puller 24 includes a pull rod 241. The pull rod 241 is fixedly connected to the bottom of the through plate 23. A piston 242 is fixedly connected to the bottom of the pull rod 241. The outer side of the piston 242 is slidably installed in a housing 243. The lower half of the housing 243 is fixedly connected inside the spiral tube 25.
[0033] Apply a force to the slide bar 22 through an external driving device, causing the slide bar 22 to slide upward within the slotted frame 21. A through plate 23 is sleeved outside the slide bar 22, and a draw rod 241 is fixedly connected to the bottom of the through plate 23. Additionally, a piston 242 is fixedly connected to the bottom of the draw rod 241. Therefore, the piston 242 will move upward within the housing 243. Since the cross-sectional area of the upper half of the housing 243 is larger than the cross-sectional area fixedly connected inside the spiral tube 25, and the housing 243 passing through the spiral tube 25 is provided with small holes. Therefore, as the piston 242 is pulled upward, suction forces will be generated on the space at the bottom of the housing 243 and the space inside the spiral tube 25 respectively. This suction force will suck the processing waste heat and floating impurities on the surface of the cable at the bottom of the housing 243. At the same time, the suction force generated inside the spiral tube 25 will suck the cold air at both ends of the spiral tube 25 into its interior to cool and dissipate the heat of the cable.
[0034] When the piston 242 moves downward, blowing forces will be generated on the space at the bottom of the housing 243 and the space inside the spiral tube 25 respectively. This blowing force not only discharges the originally inhaled heat. Since the inhaled heat has been cooled inside the housing 243, this heat is not at a high temperature. Additionally, this blowing force will also discharge the heat originally absorbed inside the spiral tube 25. The gas discharged from the housing 243 will again cool the cable and remove impurities. Therefore, by the up and down movement of the piston 242, the replacement of hot and cold gases is achieved.
[0035] The third embodiment is as Figures 6 - 9 shown. The support 3 includes a top frame 31. Inside the top frame 31, a downward pressure rod 32 and a spring 33 are fixedly connected respectively. The ends of the downward pressure rod 32 and the spring 33 away from the top frame 31 are both fixedly connected to a side block 34. Inside the side block 34, a moving rod 35 is fixedly connected. Both ends of the moving rod 35 are slidably installed on the inside of the top frame 31. A flat pressing plate 36 is fixedly connected to the outside of the moving rod 35. The side blocks 34 are symmetrically arranged at both ends of the flat pressing plate 36. A support assembly 37 is provided directly below the flat pressing plate 36. The support assembly 37 is fixedly connected to the bottom of the top frame 31. The bottom of the support assembly 37 is fixedly connected to a support frame 38.
[0036] The bottoms of the pressing rod 32 and the spring 33 are both connected to the side block 34. Among them, the pressing rod 32 and the spring 33 are always in a stretched state. Therefore, they will drive the side block 34 and the moving rod 35 to move downward along the inner wall of the top frame 31. At this time, the flat pressing plate 36 fixed at the central part of the moving rod 35 will always keep pressing on the pressing rod 374. Therefore, the pressed pressing rod 374 will horizontally press the cable placed below it, so as to keep the coiled cable in a horizontal state and avoid unevenness.
[0037] The support assembly 37 includes a first fixed shell 371. The top of the first fixed shell 371 is fixedly connected to the top frame 31. The bottom of the first fixed shell 371 is fixedly connected to the support frame 38. A first inserting rod piece 372 is arranged on the outer side of the first fixed shell 371. A central shaft 375 is rotatably installed inside the first fixed shell 371. A first grooved disk 373 is rotatably installed on the outer side of the central shaft 375. One side of the first grooved disk 373 away from the central shaft 375 is fixedly connected inside the first fixed shell 371. A pressing rod 374 is slidably installed on one side of the first grooved disk 373 away from the first fixed shell 371. One end of the pressing rod 374 away from the first grooved disk 373 is slidably installed with a second grooved disk 377. The second grooved disk 377 is slidably installed on the outer side of a second fixed shell 376. Both the second fixed shell 376 and the second grooved disk 377 are rotatably connected to the central shaft 375. One end of the second grooved disk 377 inside the second fixed shell 376 is fixedly connected with a first magnet 379. One end of the first magnet 379 away from the second grooved disk 377 is provided with a second magnet 370. The second magnet 370 is fixedly connected inside the second fixed shell 376. A limiting strip 378 is fixedly connected to the outer side of the second fixed shell 376. The second fixed shell 376 is fixedly connected to the bottom of the top frame 31. A second inserting rod piece 3701 is arranged on one side of the second fixed shell 376 away from the second grooved disk 377. A sealing shell 3702 is rotatably installed on the outer side of the central shaft 375. The sealing shell 3702 is inserted through the outer side of the second fixed shell 376. One end of the sealing shell 3702 away from the central shaft 375 is fixedly connected with a bladder 3703. One end of the bladder 3703 away from the sealing shell 3702 is provided with a motor 3704. The output end of the motor 3704 is connected to the central shaft 375 through a coupling.
[0038] By starting the two motors 3704, the central shaft 375 connected to them through the coupling will rotate. Therefore, the cable placed on the central shaft 375 will be wound up, while the other central shaft 375 will release the cable. By one releasing and one winding up, the support function for the cable is realized. And between the two central shafts 375, cable processing can be carried out to facilitate the function of the quick winding tooling after the cable processing is completed.
[0039] By continuously winding the cable on the central shaft 375, the overall cross-sectional area of the cable will increase and squeeze the pressure rod 374, causing the two ends of the pressure rod 374 to move outward along the surfaces of the first slotted disk 373 and the second slotted disk 377 respectively. When the cable winding is completed and the pressure rod 374 moves to the outermost end of the slotted disk, the first plug piece 372 and the second plug piece 3701 are inserted into the two ends of the pressure rod 374 through the first fixed shell 371 and the second fixed shell 376 respectively, so as to stably support the wound cable.
[0040] If the cable segments are too crowded with each other during the winding process on the central shaft 375, and the flat pressing plate 36 cannot solve the problem of the uneven height of the cable segments, the cable will tend to be squeezed to both sides. The second slotted disk 377 is slidably installed inside the second fixed shell 376, and the second fixed shell 376 is kept relatively stationary by the repulsive force between the first magnet 379 and the second magnet 370. However, as the cable is squeezed and moves towards both ends, the second slotted disk 377 will break through the repulsive force between the two magnets and continue to move towards the inside of the second fixed shell 376, thus playing a role in relieving pressure and buffering the squeezed cable, and at the same time avoiding damage to the cable due to extrusion.
[0041] If the above cable extrusion phenomenon is too serious, and the second slotted disk 377 starts to squeeze the sealing shell 3702 arranged at the innermost part of the second fixed shell 376, at this time, the sealing shell 3702 will fill the gas inside it into the airbag 3703 due to the extrusion force. At this time, the airbag 3703 will instantly bulge, thus playing a role in squeezing and restricting the output shaft of the motor 3704, and at the same time playing a role in reducing the winding speed of the cable and giving a certain buffer time when the cable is wound.
[0042] Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art and related fields without creative efforts shall fall within the protection scope of the present invention. The structures, devices and operation methods not specifically described and explained in the present invention, unless otherwise specified and limited, are implemented according to the conventional means in the art.
Claims
1. A cable support device for a cable manufacturing equipment, comprising a stopper (1), a radiator (2) and a supporter (3), characterized in that: The limiter (1) is arranged beside the supporter (3), and the radiator (2) is arranged on the other side of the limiter (1); The limiter (1) includes a support base (11). A U-shaped platform (12) is fixedly connected to the outside of the support base (11). A chute (19) is formed inside the U-shaped platform (12). A bearing (17) is slidably installed inside the chute (19). A second magnetic block (18) is fixedly connected to the outside of the bearing (17). A rotating shaft (16) is press-fitted inside the bearing (17). A limiting roller (15) is fixedly connected to the outside of the rotating shaft (16); The radiator (2) includes a slotted frame (21). A slide bar (22) is slidably installed inside the slotted frame (21). A through plate (23) is sleeved on the outside of the slide bar (22). A drawer (24) is fixedly connected to the bottom of the through plate (23) in a linear array. A spiral tube (25) is fixedly connected to the bottom of the drawer (24). A bottom plate (26) is fixedly connected to the side of the spiral tube (25) away from the drawer (24). The bottom plate (26) is fixedly connected inside the slotted frame (21).
2. The cable support device for a cable manufacturing apparatus according to claim 1, wherein: A pressure rotating plate (13) is rotatably installed inside the U-shaped platform (12). A return rod (10) is fixedly connected to the bottom of the pressure rotating plate (13). A first magnetic block (14) is arranged on the outside of the pressure rotating plate (13). The first magnetic block (14) is fixedly installed inside the chute (19). The pressure rotating plate (13) is arranged between the first magnetic block (14) and the second magnetic block (18).
3. A cable support device for a cable manufacturing device according to claim 1, characterized in that: The supporter (3) includes a top frame (31). A downward pressure rod (32) and a spring (33) are respectively fixedly connected to the inside of the top frame (31). The ends of the downward pressure rod (32) and the spring (33) away from the top frame (31) are both fixedly connected to a side block (34). A moving rod (35) is fixedly connected to the inside of the side block (34).
4. The cable support device for a cable manufacturing device according to claim 3, characterized in that: Both ends of the moving rod (35) are slidably installed on the inside of the top frame (31). A flat pressing plate (36) is fixedly connected to the outside of the moving rod (35). The side blocks (34) are symmetrically arranged at both ends of the flat pressing plate (36). A support assembly (37) is arranged directly below the flat pressing plate (36). The support assembly (37) is fixedly connected to the bottom of the top frame (31). A support frame (38) is fixedly connected to the bottom of the support assembly (37).
5. The cable support device for a cable manufacturing apparatus according to claim 1, characterized in that: The drawer (24) includes a draw rod (241). The draw rod (241) is fixedly connected to the bottom of the through plate (23). A piston (242) is fixedly connected to the bottom of the draw rod (241). A housing (243) is slidably installed on the outside of the piston (242). The lower half of the housing (243) is fixedly connected to the inside of the spiral tube (25).
6. A cable support device for a cable manufacturing apparatus according to claim 4, wherein: The support assembly (37) includes a first fixed housing (371). The top of the first fixed housing (371) is fixedly connected to the top frame (31), the bottom of the first fixed housing (371) is fixedly connected to the support frame (38), and a first insertion rod piece (372) is arranged on the outer side of the first fixed housing (371).
7. The cable support device for a cable manufacturing device according to claim 6, characterized in that: A central shaft (375) is rotatably installed inside the first fixed housing (371). A first slotted disc (373) is rotatably installed on the outer side of the central shaft (375). One side of the first slotted disc (373) away from the central shaft (375) is fixedly connected inside the first fixed housing (371), and a pressure rod (374) is slidably installed on the side of the first slotted disc (373) away from the first fixed housing (371).
8. A cable support device for a cable manufacturing device according to claim 7, characterized in that: One end of the pressure rod (374) away from the first slotted disc (373) is slidably installed with a second slotted disc (377). A second fixed housing (376) is slidably installed on the outer side of the second slotted disc (377). Both the second fixed housing (376) and the second slotted disc (377) are rotatably connected to the central shaft (375).
9. A cable support device for a cable manufacturing apparatus according to claim 8, characterized in that: One end of the second slotted disc (377) inside the second fixed housing (376) is fixedly connected to a first magnet (379). A second magnet (370) is arranged at one end of the first magnet (379) away from the second slotted disc (377). The second magnet (370) is fixedly connected inside the second fixed housing (376).
10. A cable support device for a cable manufacturing apparatus according to claim 8, characterized in that: A limiting strip (378) is fixedly connected to the outer side of the second fixed housing (376). The second fixed housing (376) is fixedly connected to the bottom of the top frame (31). A second insertion rod piece (3701) is arranged on the side of the second fixed housing (376) away from the second slotted disc (377).