A winding device for cable processing

By introducing a reducer motor, gear transmission system and circulating cooling components into the cable machining and winding device, the problems of uneven cable winding and poor cooling effect are solved, and stable winding and efficient cooling of the cable are achieved.

CN119673563BActive Publication Date: 2025-08-15NANTONG TONGZHOU TONGSHENG ELECTRONIC CABLE CO LTD
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Patent Information

Application Number
CN202510014728.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-08
Publication Date
2025-08-15
Estimated Expiration
2044-10-08

AI Technical Summary

Technical Problem

The existing cable processing and winding devices are unevenly interwoven and winding during winding, and have poor cooling effect. The cable is difficult to fix at the beginning of winding, resulting in the problem of inability to wrap.

Method used

A winding device including a reducer motor, a gear transmission system, a circulating cooling assembly and a clamping assembly is adopted to achieve uniform winding of the cable through gear transmission, and the circulating cooling assembly is used to water-cool and cool the cable after heating sealing, and maintain stable winding of the cable through the clamping assembly.

Benefits of technology

The uniform winding of the cable on the surface of the winding disk is achieved, the cooling effect is improved, and the cable can be stabilized and fixed at the beginning of the winding, which facilitates the winding and disassembly of the cable.

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Abstract

The present invention discloses a winding device for cable processing, which relates to the field of cable processing winding devices, including a fixed base, the upper surface of the fixed base is fixedly connected to an L-shaped fixed plate, and the inner wall of the L-shaped fixed plate is fixedly connected to a reduction motor. The first bevel gear of the present invention rotates to drive the motion shaft to rotate in the semi-circular barrel, and the rotation of the motion shaft drives the wave groove to rotate. The rotation of the wave groove changes the overall height of the ball head and the driving rod, so that the driving rod and the water push plate as a whole slide up and down under the action of the U-shaped plate. When the water push plate moves upward, the cooling water in the rotating cylinder is sent into the upper water pipe. When the water push plate moves downward, the cooling water in the lower water pipe is pumped into the rotating cylinder. The cooling water in the upper water pipe enters the hollow annular plate and is discharged through multiple lower water holes. The cable heated and sealed by the heating and sealing device is water-cooled and shaped, which facilitates the subsequent winding of the shaped cable on the winding drum.
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Description

[0001] This application is a divisional application of the application filed on October 8, 2024, with application number 202411393673.8 and invention name “A winding device and method for cable processing”. Technical Field

[0002] The present invention relates to the field of cable processing and winding devices, in particular to a winding device used for cable processing. Background Art

[0003] Cable processing is the process of transforming electrical wire materials (such as metal conductors, insulation, and jacketing materials) into cables suitable for specific applications according to design requirements. Cable processing typically involves multiple steps to ensure the cable's performance and quality. These steps include raw material preparation, extrusion, insulation, braiding, jacketing, printing, and testing. This multi-step process, from raw material preparation to final inspection and packaging of the finished product, is designed to ensure consistent and reliable cable performance and quality.

[0004] The existing utility model patent with publication number "CN219489197U" relates to the field of cable processing and winding technology, including a base and a winding roller installed above the base, wherein mounting brackets for supporting the winding roller are fixed on both sides of the top surface of the base, mounting parts are fixed on the top of the two mounting brackets, and a motor for driving the winding roller to rotate is installed on the side wall of the mounting bracket, a threaded rod is rotatably provided between the two mounting parts, a positioning bracket is threadedly sleeved on the threaded rod, a positioning groove is provided at the center position of the bottom end surface of the positioning bracket, and a positioning rod embedded in the positioning groove is rotatably inserted at the top end of the positioning bracket, wherein the winding roller drives the threaded rod to rotate synchronously through an engaging assembly;

[0005] The existing utility model patent with the publication number of "CN211283215U" includes a supporting base, a fixing plate is provided on the top left side of the supporting base, a supporting plate is provided on the top right side of the supporting base, a mounting plate is installed on the top of the inner cavity of the supporting plate, a fixing device is provided between the supporting plate and the mounting plate, a winding cylinder is provided above the supporting base, mounting slots are symmetrically provided on the right side walls of the top and bottom of the winding cylinder, rotating shafts are provided on the left and right side walls of the winding cylinder, the outer wall of the left end of the left rotating shaft is rotatably connected to the fixing plate, the left end of the left rotating shaft is connected to a driving motor, a connecting shaft is rotatably connected to the top of the left wall of the mounting plate, a connecting piece is provided between the connecting shaft and the right rotating shaft, a connecting plate is provided between the left and right side walls of the inner cavity of the winding cylinder, and limiting devices are symmetrically provided on the top and bottom of the connecting plate;

[0006] The inventor believes that the patent with publication number "CN219489197U" avoids the cable from being always wound in a fixed position during winding, and makes it very uniform in various positions, but there are certain defects. This winding method is to wind the previously cooled cable on the winding roller. There are also multiple strands of wires inside the cable itself, and there is no mention of how to interweave and wind them, and there is no mention of how to cool the interwoven and wound cable; the patent with publication number "CN211283215U" can remove the cable conveniently and quickly after the winding is completed, reducing the difficulty of operation, but there are certain defects. When winding, the cable is difficult to fix on the winding roller at the beginning of winding, which will lead to the problem of not being able to wind at the beginning. Therefore, a winding device for cable processing is needed. Summary of the Invention

[0007] The object of the present invention is to provide a winding device for cable processing to solve the problems raised in the above background technology.

[0008] To achieve the above-mentioned object, the present invention provides the following technical solution: a winding device for cable processing, comprising a fixed base, the upper surface of the fixed base is fixedly connected to an L-shaped fixing plate, the inner wall of the L-shaped fixing plate is fixedly connected to a reduction motor, the output end of the reduction motor passes through one side of the L-shaped fixing plate and is fixedly connected to a first gear, the inner wall of the L-shaped fixing plate is rotatably connected to a second gear, the first gear is meshed with the second gear, one side of the second gear is rotatably connected to a rotating disk, one side of the rotating disk is fixedly connected to a plurality of placing shafts, the upper surface of the fixed base is fixedly connected to an arc-shaped support plate, the inner wall of the arc-shaped support plate is slidably connected to the surface of the rotating disk, one side of the rotating disk is fixedly connected to a plurality of connecting shafts, one end of the plurality of connecting shafts is fixedly connected to the same torsion disk, the surface of the torsion disk is provided with petal holes, the upper surface of the fixed base is fixedly connected to a pair of lifting plates, the opposite surfaces of the pair of lifting plates are slidably connected to the annular surface of the torsion disk, and the upper surface of the fixed base is fixedly connected to a heating covering device;

[0009] A pair of support plates are fixedly connected to the upper surface of the fixed base, the inner walls of the pair of support plates are rotatably connected to a driving shaft, the inner wall of the driving shaft is plugged with an insert plate, the insert plate and the inner wall of the driving shaft are threadedly connected to the same screw, and the opposite surfaces of the pair of insert plates are fixedly connected to the same winding disk;

[0010] The rotating disk is fixedly connected to a rotating ring on one side close to the L-shaped fixed plate, and a plurality of teeth are fixedly connected to the surface of the rotating ring. The upper surface of the fixed base is fixedly connected to the L-shaped positioning plate, and the inner wall of the L-shaped positioning plate is rotatably connected to a linkage shaft. One end of the linkage shaft is fixedly connected to a third gear, and the third gear is meshed with the teeth. The other end of the linkage shaft is fixedly connected to an adjustment disk, and a plurality of inclined grooves are opened on the surface of the adjustment disk.

[0011] A pair of L-shaped support plates are fixedly connected to the upper surface of the fixed base, and the inner walls of the pair of L-shaped support plates are rotatably connected to the same rotating shaft. The surface of the rotating shaft is fixedly connected to an inclined ring, and the surface of the rotating shaft is fixedly connected to a plurality of convex shafts, and the diameter of the convex shafts is adapted to the inner wall width of the inclined groove. A reciprocating component is provided on the surface of the L-shaped support plate, a circulating cooling component is fixedly connected to the upper surface of the fixed base, and a clamping component is provided on the surface of the winding disk.

[0012] The reciprocating assembly includes a slide groove opened on the surface of the L-shaped support plate, the inner wall of the slide groove is slidably connected to a slider, the opposite surfaces of a pair of sliders are fixedly connected to the same stable shaft, the surface of the stable shaft is slidably connected to a reciprocating block, the upper surface of the reciprocating block is fixedly connected to a C-shaped clamp, and the C-shaped clamp has toughness, one side of the reciprocating block is rotatably connected to a pair of friction shafts, the surface of the bevel ring is in extrusion contact with the surface of a pair of friction shafts, the surface of the rotating shaft is fixedly connected to a first synchronous wheel, the surface of the driving shaft is fixedly connected to a second synchronous wheel, and the surfaces of the second synchronous wheel and the first synchronous wheel are sleeved with the same synchronous belt.

[0013] The circulating cooling assembly includes a rotating cylinder fixedly connected to the upper surface of the fixed base, an upper water pipe is fixedly connected to the inner top wall of the rotating cylinder, a first one-way valve is fixedly connected to the surface of the upper water pipe, an annular hollow plate is fixedly connected to the lower surface of the upper water pipe, the annular hollow plate is communicated with the inner wall of the upper water pipe, and a plurality of water holes are opened on the inner wall of the annular hollow plate.

[0014] The circulating cooling assembly also includes a collecting cylinder fixedly connected to one side of the heating cover device, the collecting cylinder corresponds to the position of the annular hollow plate, the inner bottom wall of the collecting cylinder is fixedly connected to a downpipe, the surface of the downpipe is fixedly connected to a second one-way valve, the downpipe is connected to the inner wall of the transfer cylinder, the inner wall of the downpipe is fixedly connected to a plurality of cooling plates, and the plurality of cooling plates are staggered and fixedly installed.

[0015] The circulating cooling assembly also includes a semi-circular barrel fixedly connected to one side of the rotating drum, the inner wall of the semi-circular barrel is rotatably connected to a moving shaft, the surface of the moving shaft fits the inner wall of the semi-circular barrel, the surface of the moving shaft is provided with a wave groove, the top end of the moving shaft passes through the upper surface of the semi-circular barrel and is fixedly connected to a first bevel gear.

[0016] The circulating cooling assembly also includes a U-shaped plate slidably connected to the inner wall of the rotating cylinder, the inner wall of the U-shaped plate is fixedly connected to a driving rod, one end of the driving rod is fixedly connected to a ball head, the ball head is installed inside the wave groove, and the other end of the driving rod is fixedly connected to a water pushing plate, which is adapted to the inner wall of the rotating cylinder.

[0017] The circulating cooling assembly also includes a driving wheel fixedly connected to the surface of the rotating shaft, one side of the upper water pipe is rotatably connected to a driven wheel, the surfaces of the driven wheel and the driving wheel are covered with the same belt, one side of the driven wheel is fixedly connected to a second bevel gear, and the second bevel gear is meshed with the first bevel gear.

[0018] The clamping assembly includes a groove opened on the surface of the winding disk, the inner wall of the groove is rotatably connected to a torsion shaft, the surface of the torsion shaft is fixedly connected to an arched tube, the surface of the torsion shaft is fixedly sleeved with a torsion spring, and one end of the torsion spring is fixedly connected to the inner wall of the groove.

[0019] In summary, the technical effects and advantages of the present invention are as follows:

[0020] 1. In the present invention, when the rotating shaft rotates, it can drive the bevel ring to rotate. The surface of the bevel ring is always located between a pair of friction shafts during rotation, driving the reciprocating block to slide back and forth on the surface of the stabilizing shaft. At the same time, the stabilizing shaft is subjected to force to drive the slider to slide on the inner wall of the slide groove for adjustment. The movement of the reciprocating block drives the C-shaped clamp to move. Since the surface of the cable is installed inside the C-shaped clamp, the cable moves back and forth under the action of the C-shaped clamp, so that the cable is evenly wound on the surface of the winding drum, maintaining the uniformity of the cable at various positions on the surface of the winding drum.

[0021] 2. In the present invention, multiple cooling plates are staggered and fixedly installed. When the cooling water enters the rotating drum, it contacts the multiple cooling plates. The multiple cooling plates absorb heat to perform cooling operations, so that the cooling water after absorbing heat can better dissipate heat, which is convenient for circulating water cooling.

[0022] 3. In the present invention, the rotation of the first bevel gear drives the moving shaft to rotate in the semi-circular barrel, and the rotation of the moving shaft drives the wave groove to rotate. The rotation of the wave groove changes the overall height of the ball head and the driving rod, so that the driving rod and the water pushing plate as a whole slide up and down under the action of the U-shaped plate. When the water pushing plate moves upward, the cooling water in the rotating cylinder is sent to the upper water pipe. When the water pushing plate moves downward, the cooling water in the lower water pipe is pumped into the rotating cylinder, and the cooling water in the upper water pipe enters the annular hollow plate and is discharged through multiple water holes. The cable heated and sealed by the heating and sealing equipment is water-cooled and shaped, which is convenient for the subsequent winding of the shaped cable on the winding drum.

[0023] 4. In the present invention, the annular spring drives the multiple T-shaped plates and the arc-shaped clamping plates as a whole to move toward the center of the torsion disk. The multiple arc-shaped clamping plates squeeze the interwoven wire bundles to maintain the shape and stability during the interwoven winding. The torsion spring can drive the torsion shaft to rotate and reset during use, so that the arched tube always presses the surface of the cable extending into the arched tube, maintaining the stability of the arched tube pressing the surface of the cable at one end, making it convenient to fix one end of the cable to the winding disk and facilitate subsequent winding. When the winding disk needs to be disassembled and removed, the operator rotates the screw to pull the plug plate and the winding disk out of the driving shaft as a whole, making it convenient and quick to remove the winding disk. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without paying any creative work.

[0025] Figure 1 Schematic diagram of the three-dimensional structure of an embodiment of the present invention;

[0026] Figure 2 This is a schematic diagram of the three-dimensional structure of the placement shaft in an embodiment of the present invention;

[0027] Figure 3 Schematic diagram of the three-dimensional structure of the winding disk in an embodiment of the present invention;

[0028] Figure 4 Schematic diagram of the cross-sectional structure of the annular plate in an embodiment of the present invention;

[0029] Figure 5 Schematic diagram of the three-dimensional structure of the oblique circle in an embodiment of the present invention;

[0030] Figure 6 For the embodiment of the present invention Figure 5 Schematic diagram of the enlarged structure at A in the middle;

[0031] Figure 7 Schematic diagram of the three-dimensional structure of the synchronous belt in an embodiment of the present invention;

[0032] Figure 8 For the embodiment of the present invention Figure 7 Schematic diagram of the enlarged structure at B in the middle;

[0033] Figure 9 Schematic diagram of the planar structure of the bevel ring and the friction shaft in an embodiment of the present invention;

[0034] Figure 10 Schematic diagram of the cross-sectional structure of the rotating drum in an embodiment of the present invention;

[0035] Figure 11 Schematic diagram of the three-dimensional structure of the wave trough in an embodiment of the present invention;

[0036] Figure 12 Schematic diagram of the cross-sectional structure of a sewer pipe in an embodiment of the present invention;

[0037] Figure 13 This is a schematic cross-sectional view of a semi-circular barrel according to an embodiment of the present invention;

[0038] Figure 14 Schematic diagram of the three-dimensional structure of the annular plate in an embodiment of the present invention;

[0039] Figure 15 Schematic diagram of the three-dimensional structure of the driving shaft in an embodiment of the present invention.

[0040] In the figure: 1. Fixed base; 2. L-shaped fixing plate; 3. Reducer motor; 4. Arc-shaped support plate; 5. Rotating disk; 6. Rotating circle; 7. Teeth; 8. Second gear; 9. First gear; 10. L-shaped positioning plate; 11. Support plate; 12. Winding disk; 13. Heating cover device; 14. Torsion disk; 15. Lifting plate; 16. Linkage shaft; 17. Third gear; 18. Rotating shaft; 19. L-shaped support plate; 20. Connecting shaft; 21. Placement shaft; 22. T-shaped plate; 23. Annular plate; 24. Arc-shaped clamping plate; 25. Annular spring; 26. Petal hole; 27. Slide groove; 28. Slider; 29. Stabilizing shaft; 30. C-shaped clamp; 31. Reciprocating block; 32. Adjusting disk; 33. Bevel ring; 34. Synchronous belt ;35. Drive shaft;36. Second synchronous wheel;37. Screw;38. Second bevel gear;39. Bevel groove;40. Cam shaft;41. First synchronous wheel;42. Insert plate;43. Torsion shaft;44. Driven wheel;45. First bevel gear;46. Friction shaft;47. Driving wheel;48. Groove;49. Arched tube;50. Wave groove;51. Torsion spring;52. Belt;53. Water supply pipe;54. First one-way valve;55. Water hole;56. Hollow ring plate;57. Collecting cylinder;58. Cooling plate;59. Water supply pipe;60. Second one-way valve;61. Push plate;62. Transfer cylinder;63. Moving shaft;64. U-shaped plate;65. Drive rod;66. Ball head;67. Semi-circular barrel;68. Ring groove. DETAILED DESCRIPTION

[0041] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0042] Example: Reference Figures 1-15 The winding device for cable processing shown in the figure includes a fixed base 1, an L-shaped fixing plate 2 is fixedly connected to the upper surface of the fixed base 1, and a reduction motor 3 is fixedly connected to the inner wall of the L-shaped fixing plate 2, the output end of the reduction motor 3 passes through one side of the L-shaped fixing plate 2 and is fixedly connected to a first gear 9, the inner wall of the L-shaped fixing plate 2 is rotatably connected to the second gear 8, the first gear 9 is meshed with the second gear 8, and one side of the second gear 8 is rotatably connected to a rotating disk 5, and one side of the rotating disk 5 is fixedly connected to a plurality of placement shafts 21, the upper surface of the fixed base 1 is fixedly connected to an arc-shaped support plate 4, the inner wall of the arc-shaped support plate 4 is slidably connected to the surface of the rotating disk 5, and one side of the rotating disk 5 is fixedly connected to a plurality of connecting shafts 20, and one end of the plurality of connecting shafts 20 is fixedly connected to the same torsion disk 14, and the surface of the torsion disk 14 is provided with petal holes 26, the upper surface of the fixed base 1 is fixedly connected to a pair of lifting plates 15, and the opposite surfaces of the pair of lifting plates 15 are slidably connected to the annular surface of the torsion disk 14, and the upper surface of the fixed base 1 is fixedly connected to a heating cover device 13;

[0043] A pair of support plates 11 are fixedly connected to the upper surface of the fixed base 1. The inner walls of the pair of support plates 11 are rotatably connected to the driving shaft 35. The inner wall of the driving shaft 35 is plugged with an insert plate 42. The insert plate 42 and the inner wall of the driving shaft 35 are threadedly connected to the same screw 37. The opposite surfaces of the pair of insert plates 42 are fixedly connected to the same winding disk 12.

[0044] A rotating ring 6 is fixedly connected to one side of the rotating disk 5 close to the L-shaped fixed plate 2. A plurality of teeth 7 are fixedly connected to the surface of the rotating ring 6. An L-shaped positioning plate 10 is fixedly connected to the upper surface of the fixed base 1. A linkage shaft 16 is rotatably connected to the inner wall of the L-shaped positioning plate 10. One end of the linkage shaft 16 is fixedly connected to a third gear 17, which meshes with the teeth 7. The other end of the linkage shaft 16 is fixedly connected to an adjusting disk 32. A plurality of inclined grooves 39 are provided on the surface of the adjusting disk 32.

[0045] A pair of L-shaped support plates 19 are fixedly connected to the upper surface of the fixed base 1, and the inner walls of the pair of L-shaped support plates 19 are rotatably connected to the same rotating shaft 18. The surface of the rotating shaft 18 is fixedly connected to an inclined ring 33, and the surface of the rotating shaft 18 is fixedly connected to a plurality of protruding shafts 40. The diameter of the protruding shaft 40 is adapted to the inner wall width of the inclined groove 39. A reciprocating component is provided on the surface of the L-shaped support plate 19, a circulating cooling component is fixedly connected to the upper surface of the fixed base 1, and a clamping component is provided on the surface of the winding disk 12.

[0046] By means of the above structure, a reduction motor 3 is provided to drive the first gear 9 to rotate, and the rotation of the first gear 9 drives the second gear 8 to rotate, and the second gear 8 drives the rotating disk 5 to rotate, and a plurality of placement shafts 21 are provided to place the wires that need to be shaped and wound in multiple strands, and preparations before winding are made, a plurality of connecting shafts 20 are provided to maintain the connection support of the torsion disk 14, and petal holes 26 are provided to avoid space for the wound wires in multiple strands, and a lifting plate 15 is provided to maintain balanced support for the rotation of the torsion disk 14, and a heating sealing device 13 is provided. The heating sealing device 13 is an existing device and will not be elaborated. Its function is to melt the plastic particles and attach them to the wires after the multiple strands are intertwined and wound to perform a sealing operation, and a support plate 11 is provided to install a support driving shaft 35, and a screw 37 is provided to install and keep the plug plate 42 and the driving shaft 35 fixed, and a winding disk 12 is provided to wind the intertwined, wound and cooled wires on the surface of the winding disk 12;

[0047] By setting a plurality of teeth 7, the rotation of the rotating ring 6 drives the third gear 17 to rotate through the plurality of teeth 7, and by setting an L-shaped positioning plate 10, the rotation support of the linkage shaft 16 is maintained, and by setting the linkage shaft 16, the rotation of the linkage shaft 16 drives the adjustment disk 32 to rotate, and by setting a plurality of inclined grooves 39, the rotation drives the plurality of cam shafts 40 to rotate, and by setting a pair of L-shaped support plates 19, the rotation stability of the rotating shaft 18 is maintained, and by setting an inclined ring 33, the rotation of the inclined ring 33 can drive the reciprocating block 31 to reciprocate, and by setting the diameter of the cam shaft 40 to match the inner wall width of the inclined groove 39, it is ensured that the inclined groove 39 is stably adapted to the cam shaft 40 after rotation.

[0048] The reciprocating assembly includes a slide groove 27 opened on the surface of the L-shaped support plate 19, and a slider 28 is slidably connected to the inner wall of the slide groove 27. The opposite surfaces of a pair of sliders 28 are fixedly connected to the same stabilizing shaft 29. The surface of the stabilizing shaft 29 is slidably connected to a reciprocating block 31. The upper surface of the reciprocating block 31 is fixedly connected to a C-shaped clamp 30. The C-shaped clamp 30 has toughness. One side of the reciprocating block 31 is rotatably connected to a pair of friction shafts 46. The surface of the bevel ring 33 is in extrusion contact with the surface of the pair of friction shafts 46. The surface of the rotating shaft 18 is fixedly connected to the first synchronous wheel 41, and the surface of the driving shaft 35 is fixedly connected to the second synchronous wheel 36. The second synchronous wheel 36 and the surface of the first synchronous wheel 41 are sleeved with the same synchronous belt 34. By providing a slide groove 27, space is given to the slider 28 to slide and avoid, and by providing a stabilizing shaft 29, the sliding stability of the reciprocating block 31 is maintained. By providing a C-shaped clamp 30, the internal height of the C-shaped clamp 30 is consistent with the center height of the torsion disk 14. The C-shaped clamp 30 has toughness, ensuring the stable adaptation of the clamped cable, driving the cable to reciprocate, and making it evenly wound on the surface of the winding disk 12. By providing a pair of friction shafts 46, the rotation of the bevel ring 33 drives the pair of friction shafts 46 and the reciprocating block 31 to be subjected to force. The pair of friction shafts 46 reciprocate following the surface of the bevel ring 33. The reciprocating block 31 pushes the stabilizing shaft 29 to make the slider 28 slide and adjust in the slide groove 27. By providing a first synchronous wheel 41, the first synchronous wheel 41 drives the second synchronous wheel 36 to rotate through the synchronous belt 34, and the second synchronous wheel 36 causes the driving shaft 35 to rotate together with the winding disk 12.

[0049] The circulating cooling assembly includes a rotating drum 62 fixedly connected to the upper surface of the fixed base 1. The inner top wall of the rotating drum 62 is fixedly connected to an upper water pipe 53. A first one-way valve 54 is fixedly connected to the surface of the upper water pipe 53. An annular hollow plate 56 is fixedly connected to the lower surface of the upper water pipe 53. The annular hollow plate 56 is connected to the inner wall of the upper water pipe 53. The inner wall of the annular hollow plate 56 is provided with multiple drainage holes 55. The upper water pipe 53 is provided to discharge water from the rotating drum 62 through the upper water pipe 53. The first one-way valve 54 is provided to prevent liquid backflow. The multiple drainage holes 55 are provided to discharge the cooling water entering the annular hollow plate 56 through the multiple drainage holes 55 and pour it onto the surface of the cable after being covered for rapid shaping and cooling.

[0050] The circulating cooling assembly also includes a collection tube 57 fixedly connected to one side of the heating cover device 13. The collection tube 57 corresponds to the position of the annular hollow plate 56. The inner bottom wall of the collection tube 57 is fixedly connected to a downpipe 59. A second one-way valve 60 is fixedly connected to the surface of the downpipe 59. The downpipe 59 is connected to the inner wall of the transfer tube 62. The inner wall of the downpipe 59 is fixedly connected to a plurality of cooling plates 58. The plurality of cooling plates 58 are staggered and fixedly installed. The collection tube 57 collects the cooling water discharged from the annular hollow plate 56. The downpipe 59 is provided to transfer the cooling water in the collection tube 57 to the transfer tube 62 through the downpipe 59. The second one-way valve 60 prevents liquid backflow. The plurality of cooling plates 58 are staggered and fixedly installed. When the cooling water enters the transfer tube 62, it contacts the plurality of cooling plates 58. The plurality of cooling plates 58 absorb heat and cool the cooling water, thereby enabling the cooling water to dissipate heat better and facilitate circulating water cooling.

[0051] The circulating cooling assembly also includes a semi-circular barrel 67 fixedly connected to one side of the rotating drum 62. The inner wall of the semi-circular barrel 67 is rotatably connected to a motion shaft 63. The surface of the motion shaft 63 is in contact with the inner wall of the semi-circular barrel 67. The surface of the motion shaft 63 is provided with a wave groove 50. The top end of the motion shaft 63 passes through the upper surface of the semi-circular barrel 67 and is fixedly connected to the first bevel gear 45. By providing the motion shaft 63, the rotation of the motion shaft 63 drives the rotation of the wave groove 50. By providing the wave groove 50, the height position of the ball head 66 is changed.

[0052] The circulating cooling assembly also includes a U-shaped plate 64 slidably connected to the inner wall of the rotating drum 62. A driving rod 65 is fixedly connected to the inner wall of the U-shaped plate 64. One end of the driving rod 65 is fixedly connected to a ball head 66, which is installed inside the wave groove 50. The other end of the driving rod 65 is fixedly connected to a water pusher plate 61, which is adapted to the inner wall of the rotating drum 62. The U-shaped plate 64 maintains the stable installation of the driving rod 65, allowing the water pusher plate 61 to slide up and down. The ball head 66 cooperates with the wave groove 50 to achieve vertical movement. The water pusher plate 61 is provided to deliver the cooling water in the rotating drum 62 to the upper water pipe 53 through the water pusher plate 61.

[0053] The circulating cooling assembly also includes a driving pulley 47 fixedly connected to the surface of the rotating shaft 18. One side of the water supply pipe 53 is rotatably connected to the driven pulley 44. The surfaces of the driven pulley 44 and the driving pulley 47 are covered with the same belt 52. One side of the driven pulley 44 is fixedly connected to the second bevel gear 38, which meshes with the first bevel gear 45. By providing the belt 52, the driving pulley 47 rotates, which drives the driven pulley 44 to rotate. By providing the second bevel gear 38, the second bevel gear 38 rotates, which drives the first bevel gear 45 to rotate.

[0054] The clamping assembly includes a groove 48 formed on the surface of the winding drum 12. The inner wall of the groove 48 is rotatably connected to the torsion shaft 43. The surface of the torsion shaft 43 is fixedly connected to the arched tube 49. A torsion spring 51 is fixedly mounted on the surface of the torsion shaft 43, and one end of the torsion spring 51 is fixedly connected to the inner wall of the groove 48. The groove 48 provides space for the torsion shaft 43 and the arched tube 49 to be installed. The arched tube 49 presses on the surface of the cable to maintain stability during winding. The torsion spring 51 drives the torsion shaft 43 to rotate and reset, so that the arched tube 49 always presses on the surface of the cable extending into the arched tube 49.

[0055] An annular plate 23 is fixedly connected to one side of the torsion plate 14. An annular groove 68 is defined on the surface of the annular plate 23, and an annular spring 25 is sleeved within the annular groove 68. A T-shaped plate 22 is slidably connected to the inner wall of the annular plate 23. An arcuate clamping plate 24 is fixedly connected to one end of the multiple T-shaped plates 22 that are adjacent to each other. The provision of the annular groove 68 provides space for the annular spring 25 to be stably placed. The annular spring 25 drives the multiple T-shaped plates 22 and the arcuate clamping plate 24 toward the center of the torsion plate 14, thereby squeezing the intertwined wire harness through the multiple arcuate clamping plates 24.

[0056] A winding method for cable processing, comprising the following steps:

[0057] S1. Before use, the operator needs to place multiple strands of individual wire sleeves on the placement shaft 21, insert one end of the wire sleeve into the petal hole 26, and the other end is heated by the heating cover device 13, and passes through the hollow ring plate 56 and the inside of the C-shaped clamp 30. The arched tube 49 is connected to the torsion shaft 43. Under the action of the torsion spring 51, the arched tube 49 is kept pressing the cable surface at one end to maintain stability when the cable is wound.

[0058] S2. During winding, the output end of the reduction motor 3 drives the first gear 9 to rotate, the rotation of the first gear 9 drives the second gear 8 to rotate, the rotation of the second gear 8 drives the rotating disk 5 and the rotating ring 6 and the multiple placement shafts 21 and the connecting shaft 20 to rotate as a whole, the rotation of the connecting shaft 20 drives the torsion disk 14 to rotate, the rotation of the rotating ring 6 drives the multiple teeth 7 to rotate, the rotation of the multiple teeth 7 drives the third gear 17 to rotate, the rotation of the third gear 17 drives the linkage shaft 16 to rotate, the rotation of the linkage shaft 16 drives the adjusting disk 32 to rotate, the rotation of the adjusting disk 32 drives the multiple inclined slots 39 to rotate, the rotation of the multiple inclined slots 39 drives the convex shaft 40, and under the action of the inclined slots 39, the rotating shaft 18 rotates, and the rotation of the rotating shaft 18 drives the first synchronous wheel 41 to rotate The first synchronous wheel 41 rotates through the synchronous belt 34 to drive the second synchronous wheel 36 to rotate. The second synchronous wheel 36 rotates and drives the plug plate 42 and the winding disk 12 to rotate as a whole through the driving shaft 35. When the rotating shaft 18 rotates, it drives the bevel ring 33 and the driving wheel 47 to rotate. The bevel ring 33 rotates so that its surface is always located between a pair of friction shafts 46, driving the reciprocating block 31 to slide back and forth on the surface of the stabilizing shaft 29. At the same time, the stabilizing shaft 29 is subjected to force to drive the slider 28 to slide on the inner wall of the slide groove 27 for adjustment. The movement of the reciprocating block 31 drives the C-shaped clamp 30 to move. Since the surface of the cable is installed inside the C-shaped clamp 30, the cable moves back and forth under the action of the C-shaped clamp 30, so that it is evenly wound on the surface of the winding disk 12.

[0059] S3. After the cable passes through the heating cover device 13 to heat the cover, it needs to be water-cooled. The driving wheel 47 rotates and drives the driven wheel 44 to rotate through the belt 52. The driven wheel 44 rotates and drives the second bevel gear 38 to rotate. The second bevel gear 38 rotates and drives the first bevel gear 45 to rotate. The first bevel gear 45 rotates and drives the motion shaft 63 to rotate in the semi-circular barrel 67. The motion shaft 63 rotates and drives the wave groove 50 to rotate. The rotation of the wave groove 50 changes the overall height of the ball head 66 and the driving rod 65, so that the driving rod 65 and the water pushing plate 61 slide up and down as a whole under the action of the U-shaped plate 64. When the water pushing plate 61 moves upward, When the water source enters the lower water pipe 59, it contacts the surface of the plurality of cooling plates 58 installed at an angle. The plurality of cooling plates 58 increase the time that the cooling water stays on the surface of the cooling plates 58, which is used to absorb heat and dissipate it to the outside.

[0060] S4. When the cable is wound around the winding drum 12 and needs to be removed, the operator rotates the screw 37 to pull the inserting plate 42 and the winding drum 12 out of the driving shaft 35 as a whole.

[0061] The working principle of the present invention is: a winding device for cable processing, before use, the operator places multiple strands of individual wire sleeves on the placement shaft 21, and then inserts one end into the petal hole 26. The other end is heated by the heating cover device 13 and passes through the inside of the annular hollow plate 56 and the C-shaped clamp 30. The arched tube 49 is connected to the torsion shaft 43. Under the action of the torsion spring 51, the arched tube 49 is kept stable by pressing the surface of the cable at one end. At this time, the operator starts the reduction motor 3, and the output end of the reduction motor 3 drives the first gear 9 to rotate. The rotation of the first gear 9 drives the second gear 8 to rotate. The rotation of the second gear 8 drives the rotating disk 5 and the rotating ring 6 and the multiple placement shafts 21 and the connecting shaft 20 to rotate as a whole. The rotation of the connecting shaft 20 drives the torsion disk 14 to rotate. The rotation of the rotating circle 6 drives the multiple teeth 7 to rotate, and the rotation of the multiple teeth 7 drives the third gear 17 to rotate. The rotation of the third gear 17 drives the linkage shaft 16 to rotate. The rotation of the linkage shaft 16 drives the adjusting disk 32 to rotate. The rotation of the adjusting disk 32 drives the multiple inclined slots 39 to rotate. The rotation of the multiple inclined slots 39 drives the convex shaft 40. Under the action of the inclined slots 39, the rotating shaft 18 rotates. The rotation of the rotating shaft 18 drives the first synchronous wheel 41 to rotate. The rotation of the first synchronous wheel 41 drives the second synchronous wheel 36 to rotate through the synchronous belt 34. The rotation of the second synchronous wheel 36 drives the inserting plate 42 and the winding disk 12 to rotate as a whole through the driving shaft 35. When the rotating shaft 18 rotates, it drives the inclined ring 33 and the driving wheel 47 to rotate. The rotating surface of the inclined ring 33 is always located between a pair of friction shafts 46. The reciprocating block 31 is driven to slide back and forth on the surface of the stabilizing shaft 29, and at the same time, the stabilizing shaft 29 is subjected to force to drive the slider 28 to slide on the inner wall of the slide groove 27 for adjustment. The movement of the reciprocating block 31 drives the C-shaped clamp 30 to move. Since the surface of the cable is installed inside the C-shaped clamp 30, the cable moves back and forth under the action of the C-shaped clamp 30, so that it is evenly wound on the surface of the winding disk 12. During the winding process, the driving wheel 47 rotates and drives the driven wheel 44 to rotate through the belt 52. The driven wheel 44 rotates and drives the second bevel gear 38 to rotate. The second bevel gear 38 rotates and drives the first bevel gear 45 to rotate. The first bevel gear 45 rotates and drives the moving shaft 63 to rotate in the semi-circular barrel 67. The movement of the moving shaft 63 drives the wave groove 50 to rotate. The wave groove 50 rotates to change the ball head 6. 6 and the overall height of the driving rod 65, so that the driving rod 65 and the water pushing plate 61 slide up and down as a whole under the action of the U-shaped plate 64. When the water pushing plate 61 moves upward, the cooling water in the rotating cylinder 62 is sent to the upper water pipe 53. When the water pushing plate 61 moves downward, the cooling water in the lower water pipe 59 is pumped into the rotating cylinder 62. The cooling water in the upper water pipe 53 enters the hollow annular plate 56 and is discharged through multiple water holes 55 to cool the cable heated and sealed by the heating sealing device 13. After absorbing heat, the cooling water drips into the collecting cylinder 57. After the water source enters the lower water pipe 59, it contacts the surfaces of multiple cooling plates 58 installed obliquely. Multiple cooling plates 58 increase the time that the cooling water stays on the surface of the cooling plate 58, which is used to absorb heat and dissipate it to the outside.When the torsion disk 14 is interweaving and winding, the multiple T-shaped plates 22, under the action of the annular spring 25, drive the multiple arc-shaped clamping plates 24 toward the center to clamp and close together, maintaining the stability of the interweaving and winding of multiple strands of wire. When the winding disk 12 is wound on the surface of the cable and needs to be removed, the operator rotates the screw 37 to extract the plug plate 42 and the winding disk 12 as a whole from the drive shaft 35. With this structure, the multiple strands of wire are interwoven and wound, and then cooled and sealed after heating, and finally wound on the winding disk 12. During winding, ensure that one end of the wire remains fixed, which facilitates the wire to be curled and wound on the surface of the winding disk 12.

[0062] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A winding device for cable processing, comprising a fixed base (1), characterized in that: The upper surface of the fixed base (1) is fixedly connected to an L-shaped fixed plate (2), a reduction motor (3) is installed on the L-shaped fixed plate (2), the output end of the reduction motor (3) passes through the L-shaped fixed plate (2) and is fixedly connected to a first gear (9), the inner wall of the L-shaped fixed plate (2) is rotatably connected to a second gear (8) meshing with the first gear (9), one side of the second gear (8) is rotatably connected to a rotating disk (5), one side of the rotating disk (5) is fixedly connected to a plurality of placement shafts (21), the upper surface of the fixed base (1) is fixedly connected to an arc-shaped support plate (4), the inner wall of the arc-shaped support plate (4) is in contact with the rotating disk (5) is slidably connected to the surface of the rotating disk (5), a plurality of connecting shafts (20) are fixedly connected to one side of the rotating disk (5), one end of the plurality of connecting shafts (20) is fixedly connected to the same torsion disk (14), a petal hole (26) is provided on the surface of the torsion disk (14), a pair of lifting plates (15) are fixedly connected to the upper surface of the fixed base (1), the opposite surfaces of the pair of lifting plates (15) are slidably connected to the annular surface of the torsion disk (14), a heating cover device (13) is fixedly connected to the upper surface of the fixed base (1), and the heating cover device (13) is located on the side of the torsion disk (14) away from the rotating disk (5); A pair of support plates (11) are fixedly connected to the upper surface of the fixed base (1), and the pair of support plates (11) are located on a side of the heating cover device (13) away from the torsion disk (14). The inner walls of the pair of support plates (11) are rotatably connected to a driving shaft (35), and the inner wall of the driving shaft (35) is plugged with an insert plate (42). The insert plate (42) and the inner wall of the driving shaft (35) are threadedly connected to the same screw (37), and the opposite surfaces of the pair of insert plates (42) are fixedly connected to the same winding disk (12); The rotating disk (5) is fixedly connected to a rotating ring (6) on one side close to the L-shaped fixed plate (2), and a plurality of teeth (7) are fixedly connected to the surface of the rotating ring (6). The upper surface of the fixed base (1) is fixedly connected to the L-shaped positioning plate (10), and the inner wall of the L-shaped positioning plate (10) is rotatably connected to a linkage shaft (16). One end of the linkage shaft (16) is fixedly connected to a third gear (17), and the third gear (17) is meshed with the teeth (7). The other end of the linkage shaft (16) is fixedly connected to an adjustment disk (32), and a plurality of inclined grooves (39) are provided on the surface of the adjustment disk (32); A pair of L-shaped support plates (19) are fixedly connected to the upper surface of the fixed base (1), and the pair of L-shaped support plates (19) are located between the heating cover device (13) and the pair of support plates (11). The inner walls of the pair of L-shaped support plates (19) are rotatably connected to the same rotating shaft (18), and the surface of the rotating shaft (18) is fixedly connected to an inclined ring (33) and a plurality of convex shafts (40), and the diameter of the convex shaft (40) is adapted to the inner wall width of the inclined groove (39); The surface of the L-shaped support plate (19) is provided with a reciprocating assembly, and the reciprocating assembly includes a slide groove (27) provided on the surface of the L-shaped support plate (19), the inner wall of the slide groove (27) is slidably connected to a slider (28), and the opposite surfaces of a pair of sliders (28) are fixedly connected to the same stable shaft (29), and the surface of the stable shaft (29) is slidably connected to a reciprocating block (31), and the upper surface of the reciprocating block (31) is fixedly connected to a C-shaped clip (30), and the C-shaped clip (30) has toughness, and the inner height of the C-shaped clip (30) is the same as that of the torsion plate (14). The center height of the cable is kept consistent, and the cable is clamped and driven to reciprocate so that the cable is wound on the surface of the winding disk (12). One side of the reciprocating block (31) is rotatably connected to a pair of friction shafts (46). The surface of the bevel ring (33) is in extrusion contact with the surface of the pair of friction shafts (46). The surface of the rotating shaft (18) is fixedly connected to a first synchronous wheel (41). The surface of the driving shaft (35) is fixedly connected to a second synchronous wheel (36). The surfaces of the second synchronous wheel (36) and the first synchronous wheel (41) are sleeved with the same synchronous belt (34). A clamping assembly is provided on the surface of the winding disk (12), the clamping assembly comprising a groove (48) provided on the surface of the winding disk (12), the inner wall of the groove (48) being rotatably connected to a torsion shaft (43), the surface of the torsion shaft (43) being fixedly connected to an arched tube (49), the surface of the torsion shaft (43) being fixedly sleeved with a torsion spring (51), one end of the torsion spring (51) being fixedly connected to the inner wall of the groove (48).

2. A winding device for cable processing according to claim 1, characterized in that: A circulating cooling assembly for cooling the cable is fixedly connected to the upper surface of the fixed base (1), and the circulating cooling assembly is located between the heating cover device (13) and the pair of L-shaped support plates (19). The circulating cooling assembly includes a rotating cylinder (62) fixedly connected to the upper surface of the fixed base (1), an upper water pipe (53) is fixedly connected to the inner top wall of the rotating cylinder (62), a first one-way valve (54) is fixedly connected to the surface of the upper water pipe (53), and an annular hollow plate (56) is fixedly connected to the lower surface of the upper water pipe (53). The annular hollow plate (56) is connected to the inner wall of the upper water pipe (53), and a plurality of water holes (55) are opened on the inner wall of the annular hollow plate (56).

3. A winding device for cable processing according to claim 2, characterized in that: The circulating cooling assembly further comprises a collecting cylinder (57) fixedly connected to one side of the heating cover device (13), the collecting cylinder (57) corresponding to the position of the annular hollow plate (56), a downpipe (59) fixedly connected to the inner bottom wall of the collecting cylinder (57), a second one-way valve (60) fixedly connected to the surface of the downpipe (59), the downpipe (59) communicating with the inner wall of the transfer cylinder (62), a plurality of cooling plates (58) fixedly connected to the inner wall of the downpipe (59), and the plurality of cooling plates (58) being staggered and fixedly installed.

4. A winding device for cable processing according to claim 3, characterized in that: The circulating cooling assembly also includes a semi-circular barrel (67) fixedly connected to one side of the rotating cylinder (62), the inner wall of the semi-circular barrel (67) is rotatably connected to a moving shaft (63), the surface of the moving shaft (63) is in contact with the inner wall of the semi-circular barrel (67), a wave groove (50) is provided on the surface of the moving shaft (63), and the top end of the moving shaft (63) passes through the upper surface of the semi-circular barrel (67) and is fixedly connected to a first bevel gear (45).

5. The winding device for cable processing according to claim 4, characterized in that: The circulating cooling assembly also includes a U-shaped plate (64) slidably connected to the inner wall of the rotating cylinder (62), the inner wall of the U-shaped plate (64) is fixedly connected to a driving rod (65), one end of the driving rod (65) is fixedly connected to a ball head (66), and the ball head (66) is installed inside the wave groove (50), and the other end of the driving rod (65) is fixedly connected to a water push plate (61), and the water push plate (61) is adapted to the inner wall of the rotating cylinder (62).

6. The winding device for cable processing according to claim 5, characterized in that: The circulating cooling assembly further comprises a driving wheel (47) fixedly connected to the surface of the rotating shaft (18); one side of the upper water pipe (53) is rotatably connected to a driven wheel (44); the surfaces of the driven wheel (44) and the driving wheel (47) are sleeved with a same belt (52); one side of the driven wheel (44) is fixedly connected to a second bevel gear (38); the second bevel gear (38) is meshed with the first bevel gear (45).

Citation Information

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