Power cable winding device
By designing a cable winding device composed of limit slots, limit strips, shafts, motors, etc., the problem of the cable winding device sliding out during transportation is solved, and the stable winding and efficient operation of the cable is achieved.
Patent Information
- Application Number
- CN202510581833.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-07
- Publication Date
- 2025-08-01
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the transportation process of existing cable winding devices, the ends of the cable are prone to slide out due to shaking and impact forces, resulting in loose winding structure, affecting construction and use.
A cable winding device consisting of limiting slots, limit strips, rotating shafts, motors, limit discs, wiring mechanisms and anti-slip sleeves is designed. Through adaptive fixing structure, precise limits and uniform winding, the cable ends are ensured to be fixed and the winding is stable.
Adaptive fixation of cables of different diameters is achieved, the stability and quality of windings is improved, the labor intensity of operators is reduced, the equipment life is extended, and the performance and safety of cables are ensured.
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Figure CN120397831A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cable winding, and in particular, to a power cable winding device. Background Art
[0002] Power cables play a crucial role in the power transmission and distribution in modern society, and are widely used in fields such as urban underground power grids, outgoing lines of power stations, internal power supply of industrial and mining enterprises, and undersea power transmission lines across rivers and seas. With the continuous development of the power industry, the demand for power cables is increasing day by day, and the laying and recycling of cables have become more frequent. In the power construction, maintenance, and related production processes, a power cable winding device is an indispensable auxiliary device, and its main function is to wind the cable into a cylindrical shape to facilitate the movement, transportation, storage, and laying of the cable.
[0003] The current cable winding device adopts a fixed method of inserting the cable end into the hole of the winding disk and bending it, and only relies on the friction force after the cable is bent to maintain the fixation. During transportation, the shaking and impact forces generated by vehicle bumps, sudden braking, turning, etc. are very likely to cause the cable end to slip out of the hole. Once the end becomes loose, the winding structure of the entire coil of cable loses its restraint and quickly loosens under continuous vibration, seriously affecting subsequent construction and use. Summary of the Invention
[0004] The present invention aims to provide a power cable winding device to solve the problems raised in the above background art.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] A power cable winding device includes a base and a winding cylinder. The base is connected with a mounting table. The mounting table and the base are respectively connected with a first support plate and a second support plate. The second support plate is rotatably connected with a rotating shaft. The second support plate is connected with a first motor. The output end of the first motor is connected with the rotating shaft. The winding cylinder is provided with a connecting groove. The rotating shaft is slidably connected with the connecting groove. The rotating shaft is connected with a limiting strip. The winding cylinder is provided with a limiting groove. The limiting groove communicates with the connecting groove. The limiting strip is slidably connected with the limiting groove. The winding cylinder is rotatably connected with end plates. There are two groups of end plates. The mounting table is connected with a support. The end plates are in contact with the support. The end plates are provided with slots. Both the first support plate and the second support plate are connected with limiting columns. The limiting columns are matched with the slots. The two groups of end plates are provided with adjusting grooves. The inner wall of the adjusting groove is connected with a limiting rod. The limiting rod is slidably connected with a moving block. A first spring is sleeved outside the limiting rod. Two ends of the first spring are respectively connected with the moving block and the inner wall of the adjusting groove. The two groups of moving blocks are jointly connected with a sliding rod. An activity sleeve is sleeved outside the sliding rod. The activity sleeve is connected with a mounting block. The mounting block is provided with a sliding groove. The inner wall of the sliding groove is slidably connected with two groups of sliding blocks. The two groups of sliding blocks are symmetrically arranged. The inner wall of the sliding groove is connected with a second spring. The other end of the second spring is connected with the sliding block. The sliding block is connected with an arc-shaped plate. The winding cylinder is connected with a limiting device. The mounting table is connected with a moving mechanism. The base is connected with a wire arranging mechanism.
[0007] Preferably, the limiting device includes a limiting disc. The limiting disc is connected with the winding cylinder. The limiting disc is provided with bolt holes. Any one of the end plates is provided with several groups of bolt grooves. The several groups of bolt grooves are arranged in a circular array. The bolt grooves are matched with the bolt holes.
[0008] Preferably, the moving mechanism includes a driving block. The driving block is connected with the mounting table. The base is provided with a driving groove. The base is rotatably connected with a threaded rod. The base is connected with a second motor. The output end of the second motor is connected with the threaded rod. The driving block is in threaded connection with the threaded rod. The driving block is slidably connected with the driving groove.
[0009] Preferably, the mounting table is provided with several groups of activity grooves. The inner walls of the several groups of activity grooves are movably connected with balls. The balls are in contact with the base.
[0010] Preferably, the wire arranging mechanism includes a mounting plate. The mounting plate is connected with the base. There are two groups of mounting plates. The two groups of mounting plates are jointly rotatably connected with a reciprocating lead screw. Any one of the mounting plates is connected with a third motor. The output end of the third motor is connected with the reciprocating lead screw. The reciprocating lead screw is movably connected with a connecting block. The two groups of mounting plates are jointly connected with a guiding rod. The connecting block is slidably connected with the guiding rod. The connecting block is provided with a wire arranging hole.
[0011] Preferably, a wiping sponge is connected to the inner wall of the cable slot.
[0012] Preferably, an anti-slip sleeve is connected to the inner wall of the movable sleeve, and the anti-slip sleeve abuts against the sliding rod.
[0013] Preferably, an anti-slip pad is connected to the arc-shaped plate.
[0014] Preferably, a guide plate is connected to the arc-shaped plate.
[0015] Advantages of this technical solution compared with the prior art:
[0016] (1) This technical solution can achieve self-adaptive fixation of cables with different diameters through a fixed structure composed of components such as an adjustment groove, a limiting rod, a moving block, a first spring, a sliding rod, a movable sleeve, a mounting block, a chute, a slider, a second spring, and an arc-shaped plate. When the cable is placed between the two arc-shaped plates, the second spring will push the slider, causing the arc-shaped plates to tightly clamp the cable and automatically adjust the clamping force according to the diameter of the cable to ensure firm fixation of the cable end. The movable sleeve can slide on the sliding rod, and the moving block can slide on the limiting rod, which enables the position of the mounting block and the arc-shaped plate to be flexibly adjusted, facilitating the operator to adjust the fixed structure to the optimal position according to the actual winding situation and the end position of the cable for cable end fixation. By setting a connecting groove, a limiting groove, a rotating shaft, and a limiting strip, the winding drum can be quickly and accurately installed on the rotating shaft to achieve circumferential fixation of the winding drum and the rotating shaft, ensuring that the first motor can drive the winding drum to rotate synchronously and improving the installation efficiency. The end plates at both ends of the winding drum can not only prevent the cable from slipping off both ends of the winding drum but also play a good role in limiting and supporting the winding drum through the abutment with the support and the cooperation of the limiting column and the slot. During the winding process, the end plates can ensure the axial position stability of the winding drum, reduce the shaking and vibration of the winding drum, and improve the quality and stability of winding.
[0017] (2) By setting a limiting disk, bolt holes, and bolt slots, and by matching the bolts passing through the bolt holes of the limiting disk with the bolt slots on the end plate, the limiting disk can be accurately fixed on the end plate, thereby accurately limiting the position of the winding drum, avoiding relative rotation between the winding drum and the end plate during transportation, ensuring the stability of the winding drum, and preventing possible changes in the local tension of the cable, which may affect the performance and service life of the cable.
[0018] (3) By setting a second motor, a threaded rod, a driving groove, and a driving block, the driving block can slide along the driving groove to drive the mounting table to move, making it easy for the winding drum to approach the rotating shaft to complete the connection with the rotating shaft. When disassembling the winding drum, reverse operation can make the winding drum move away from the rotating shaft and smoothly remove it, without the need for manual laborious handling and adjustment of the winding drum position, greatly improving the loading and unloading efficiency and reducing the labor intensity of the operator.
[0019] (4) By providing movable grooves and balls, rolling friction replaces traditional sliding friction, reducing the friction between the mounting platform and the base, thereby reducing the energy consumption of Motor 2 and the load on Motor 2, thereby extending the service life of the motor. In addition, the movement of the mounting platform becomes smoother and more flexible, and it can quickly respond to the drive of the motor, thereby improving the operating efficiency of the equipment.
[0020] (5) By setting up a cable arrangement mechanism, the cable can be evenly wound on the winding drum, avoiding the chaos such as stacking and crossing of cables during the winding process, and ensuring the neatness and orderliness of the winding. The neat cable arrangement also helps to reduce the mutual squeezing and friction between cables, reduces the risk of cable damage, improves the winding quality, and ensures the performance and safety of the cable in subsequent use.
[0021] (6) By providing a wiping sponge, the cable surface can be wiped during the process of winding the cable through the cable arrangement hole to remove dust, oil and other impurities attached to the cable surface. This can keep the cable surface clean, prevent impurities from entering the winding drum during the winding process or affecting the winding quality, and also prevent impurities from causing adverse effects on the subsequent use of the cable.
[0022] (7) By providing an anti-slip sleeve, the friction between the movable sleeve and the slide bar can be increased, making the positioning of the movable sleeve on the slide bar more stable and less likely to slip due to external forces or equipment vibrations. This facilitates the operator to accurately position the movable sleeve according to the actual winding requirements, thereby improving the convenience and accuracy of the operation. In addition, the anti-slip sleeve can serve as a buffer layer between the movable sleeve and the slide bar, preventing the movable sleeve from directly contacting the slide bar and reducing the wear of the movable sleeve on the slide bar surface.
[0023] (8) By setting up the anti-slip pad, the friction between the curved plate and the cable can be increased, preventing the cable end from being displaced due to shaking, vibration or gravity, ensuring that the cable end is always in the correct position.
[0024] (9) By setting up the guide plate, the cable can be guided smoothly into the space between the curved plates without the need for the staff to manually adjust the position of the curved plates. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 A schematic structural diagram of the present invention;
[0026] Figure 2 for Figure 1 A magnified view of point A;
[0027] Figure 3 It is a front cross-sectional view of the present invention;
[0028] Figure 4 for Figure 3 Enlarged view of point B;
[0029] Figure 5 The bottom view of the mounting table provided by the present invention;
[0030] Reference numerals: base 1, second support plate 2, first motor 3, limiting strip 4, rotating shaft 5, limiting groove 6, slot 7, connecting groove 8, end plate 9, adjusting groove 10, limiting rod 11, first support plate 12, sliding rod 13, winding drum 14, support 15, mounting table 16, mounting plate 17, wire arranging hole 18, wiping sponge 19, connecting block 20, reciprocating lead screw 21, guide rod 22, third motor 23, movable sleeve 24, mounting block 25, sliding groove 26, slider 27, arc plate 28, guide plate 29, anti-slip pad 30, moving block 31, first spring 32, anti-slip sleeve 33, limiting column 34, bolt hole 35, limiting disc 36, bolt groove 37, second motor 38, threaded rod 39, driving groove 40, driving block 41, movable groove 42, ball 43, second spring 44. Specific embodiments
[0031] The present invention will be further described in detail below with reference to the drawings and embodiments:
[0032] As Figures 1-5 shown, a power cable winding device includes a winding drum 14, a base 1 and a mounting table 16. The mounting table 16 is connected with a moving mechanism, and the moving mechanism includes a driving block 41. The driving block 41 is connected to the bottom wall of the mounting table 16. A driving groove 40 is formed in the top wall of the base 1, and a threaded rod 39 is rotatably connected to the base 1. The threaded rod 39 is located inside the driving groove 40. A second motor 38 is connected to the side wall of the base 1, and the output end of the second motor 38 is connected to the threaded rod 39. The driving block 41 is threadedly connected to the threaded rod 39 and is slidably connected to the driving groove 40. A plurality of groups of movable grooves 42 are formed in the top wall of the mounting table 16, and balls 43 are movably connected to the inner walls of the plurality of groups of movable grooves 42. The balls 43 abut against the top wall of the base 1. When the second motor 38 is started, it drives the threaded rod 39 to rotate. The driving block 41 threadedly connected to the threaded rod 39 slides in the driving groove 40. Since the driving block 41 is connected to the mounting table 16, the mounting table 16 is driven to move left and right on the base 1. The balls 43 in the movable grooves 42 on the top wall of the mounting table 16 abut against the top wall of the base 1, reducing the friction when the mounting table 16 moves and making the movement smoother.
[0033] As Figures 1-4As shown in the figure, a first support plate 12 and a second support plate 2 are respectively connected to the top wall of the installation table 16 and the top wall of the base 1. The second support plate 2 is rotatably connected to a rotating shaft 5. A first motor 3 is connected to the outside of the second support plate 2, and the output end of the first motor 3 is connected to the rotating shaft 5. A connection groove 8 is formed at one end of the wire winding cylinder 14, and the rotating shaft 5 is slidably connected to the connection groove 8. A limiting strip 4 is connected to the outer side wall of the rotating shaft 5, a limiting groove 6 is formed in the wire winding cylinder 14, the limiting groove 6 communicates with the connection groove 8, and the limiting strip 4 is slidably connected to the limiting groove 6. When the first motor 3 is started, its output end drives the rotating shaft 5 to rotate. Since the limiting strip 4 on the rotating shaft 5 cooperates with the limiting groove 6 of the wire winding cylinder 14, and the rotating shaft 5 is slidably connected to the connection groove 8 of the wire winding cylinder 14, the rotation of the rotating shaft 5 can drive the wire winding cylinder 14 to rotate synchronously, providing power for cable winding. End plates 9 are rotatably connected to the outer side walls at both ends of the wire winding cylinder 14. Two groups of supports 15 are connected to the top wall of the installation table 16, and the outer side wall of the end plate 9 abuts against the support 15. A slot 7 is formed on the side of the end plate 9 away from the wire winding cylinder 14. Limiting columns 34 are connected to the sides of the first support plate 12 and the second support plate 2 close to the end plate 9, and the limiting columns 34 cooperate with the slot 7. Adjusting grooves 10 are formed on the opposite sides of the two end plates 9. A limiting rod 11 is jointly connected to the inner top wall and the inner bottom wall of the adjusting groove 10, and a moving block 31 is slidably connected to the limiting rod 11. A first spring 32 is sleeved on the outer side of the limiting rod 11, and the two ends of the first spring 32 are respectively connected to the moving block 31 and the inner bottom wall of the adjusting groove 10. The two moving blocks 31 are jointly connected to a sliding rod 13. A movable sleeve 24 is sleeved on the outer side of the sliding rod 13. An anti-slip sleeve 33 is connected to the inner wall of the movable sleeve 24, and the anti-slip sleeve 33 abuts against the sliding rod 13. An installation block 25 is connected to the outer side wall of the movable sleeve 24. A chute 26 is formed on the top wall of the installation block 25, and the longitudinal section of the chute 26 is convex. Two groups of sliding blocks 27 are slidably connected to the inner wall of the chute 26. The two groups of sliding blocks 27 are symmetrically arranged. Spring two 44 is connected to the left and right inner side walls of the chute 26, and the other end of the spring two 44 is connected to the sliding block 27. An arc-shaped plate 28 is connected to the top wall of the sliding block 27. An anti-slip pad 30 is connected to the inner side wall of the arc-shaped plate 28. A guide plate 29 is connected to the top of the arc-shaped plate 28. When the first motor 3 drives the wire winding cylinder 14 to rotate, the two side end plates 9 remain stationary under the restriction of the limiting columns 34. The cable rotates with the wire winding cylinder 14 and winds around the surface of the wire winding cylinder 14. As the number of winding turns increases, the thickness of the cable on the surface of the wire winding cylinder 14 becomes thicker, which will squeeze the sliding rod 13 downward, causing the sliding block 27 to overcome the elastic force of the first spring 32 and slide upward along the limiting rod 11. At this time, the installation block 25 is rotated above the sliding rod 13 to avoid interfering with cable winding. After winding is completed, the sliding rod 13 fits with the outer circle of the cable under the action of the first spring 32. By rotating the wire winding cylinder 14, the end of the cable can be moved near the sliding rod 13.The movable sleeve 24 can be slid to near the end of the cable, and the mounting block 25 is rotated downward, so that the end of the cable extrudes the two side guide plates 29 along the arc of the guide plate 29, driving the separation of the two arc-shaped plates 28 on both sides, causing the slider 27 to compress the second spring 44. When the end of the cable is located between the two arc-shaped plates 28, the second spring 44 rebounds, so that the anti-slip pads 30 on the inner walls of the arc-shaped plates 28 are closely attached to the end of the cable, thereby clamping the end of the computer.
[0034] As Figure 3 shown, the winding drum 14 is connected with a limiting device, and the limiting device includes a limiting disc 36, and the limiting disc 36 is connected to the end of the winding drum 14 far away from the rotating shaft 5. The limiting disc 36 is provided with a set of bolt holes 35, and the end plate 9 attached to the limiting disc 36 is provided with several sets of bolt grooves 37, and the several sets of bolt grooves 37 are arranged in a circular array. The bolt grooves 37 cooperate with the bolt holes 35. When the winding drum 14 is removed from the mounting table 16, the bolts can be rotated into the bolt holes 35 and the bolt grooves 37, so as to connect the limiting disc 36 with a corresponding set of end plates 9 together.
[0035] As Figure 1 shown, the base 1 is connected with a wire arranging mechanism, and the wire arranging mechanism includes a mounting plate 17, and the bottom wall of the mounting plate 17 is connected with the top wall of the base 1. There are two sets of mounting plates 17, and the two sets of mounting plates 17 are jointly rotatably connected with a reciprocating lead screw 21. The side wall of any one of the mounting plates 17 is connected with a third motor 23, and the output end of the third motor 23 is connected with the reciprocating lead screw 21. The length of the reciprocating lead screw 21 is the same as the length of the winding drum 14 and is arranged in parallel with the winding drum 14. The reciprocating lead screw 21 is movably connected with a connecting block 20, and the two sets of mounting plates 17 are jointly connected with a guide rod 22. The connecting block 20 is slidably connected with the guide rod 22. A wire arranging hole 18 is opened in the middle of the connecting block 20, and a wiping sponge 19 is connected to the inner wall of the wire arranging hole 18. The third motor 23 is started to drive the reciprocating lead screw 21 to rotate. The connecting block 20 movably connected with the reciprocating lead screw 21 makes a reciprocating linear motion along the reciprocating lead screw 21 under the guiding action of the guide rod 22. The cable passes through the wire arranging hole 18, and as the connecting block 20 reciprocates, the cable can be evenly wound on the winding drum 14. The wiping sponge 19 on the inner wall of the wire arranging hole 18 can clean the surface of the cable when the cable passes through.
[0036] The specific implementation process is as follows:
[0037] In use, place the end plate 9 on the support 15 so that one end of the wire winding cylinder 14 connected with the limit disk 36 is close to the first support plate 12. And align the slot 7 on the end plate 9 with the limit posts 34 on the first support plate 12 and the second support plate 2. Push the end plate 9 so that the limit posts 34 on the first support plate 12 are inserted into the corresponding slots 7 of the end plate 9. Rotate the wire winding cylinder 14 so that the limit strip 4 is aligned with the limit groove 6. Start the second motor 38 to drive the wire winding cylinder 14 to move towards the second support plate 2 until the rotating shaft 5 is completely inserted into the connection groove 8 and the limit posts 34 on the second support plate 2 are inserted into the corresponding slots 7 of the end plate 9. Pass one end of the cable through the wire arranging hole 18 and fix it on the wire winding cylinder 14. Start the first motor 3 and the third motor 23 to wind the cable evenly on the wire winding cylinder 14. When the winding is nearly finished, turn off the first motor 3 and the third motor 23, adjust the positions of the slide rod 13, the movable sleeve 24 and the mounting block 25 so that the arc-shaped plate 28 clamps the end of the cable. Start the second motor 38 to separate the rotating shaft 5 from the wire winding cylinder 14, then remove the wire winding cylinder 14 wound with the cable from the support 15, rotate the bolt and insert it into the bolt hole 35, and continue to rotate the bolt so that it is inserted into the bolt groove 37 at the corresponding position to limit the relative movement between the wire winding cylinder 14 and the end plate 9. Regularly clean the stains on the wiping sponge 19 in the wire arranging hole 18.
[0038] The above are only the embodiments of the present invention. Specific technical solutions and / or common knowledge such as characteristics known in the solutions are not described in detail herein. It should be noted that for those skilled in the art, without departing from the technical solutions of the present invention, several deformations and improvements can still be made, which should also be regarded as the protection scope of the present invention, and these will not affect the implementation effect of the present invention and the practicability of the patent. The protection scope required by this application should be subject to the content of its claims, and the specific implementation manners described in the specification can be used to interpret the content of the claims.
Claims
1. A power cable winding device, characterized in that: It includes a base (1) and a winding drum (14). The base (1) is connected with an installation platform (16). The installation platform (16) and the base (1) are respectively connected with a first support plate (12) and a second support plate (2). The second support plate (2) is rotatably connected with a rotating shaft (5). The second support plate (2) is connected with a first motor (3). The output end of the first motor (3) is connected with the rotating shaft (5). The winding drum (14) is provided with a connection groove (8). The rotating shaft (5) is slidably connected with the connection groove (8). The rotating shaft (5) is connected with a limiting strip (4). The winding drum (14) is provided with a limiting groove (6). The limiting groove (6) communicates with the connection groove (8). The limiting strip (4) is slidably connected with the limiting groove (6). The winding drum (14) is rotatably connected with end plates (9). There are two groups of the end plates (9). The installation platform (16) is connected with a support (15). The end plate (9) abuts against the support (15). The end plate (9) is provided with a slot (7). The first support plate (12) and the second support plate (2) are both connected with limiting columns (34). The limiting columns (34) cooperate with the slot (7). The two groups of end plates (9) are provided with adjusting grooves (10). The inner wall of the adjusting groove (10) is connected with a limiting rod (11). The limiting rod (11) is slidably connected with a moving block (31). A first spring (32) is sleeved on the outer side of the limiting rod (11). Two ends of the first spring (32) are respectively connected with the moving block (31) and the inner wall of the adjusting groove (10). The two groups of moving blocks (31) are jointly connected with a sliding rod (13). A movable sleeve (24) is sleeved on the outer side of the sliding rod (13). The movable sleeve (24) is connected with a mounting block (25). The mounting block (25) is provided with a sliding groove (26). Two groups of sliding blocks (27) are slidably connected with the inner wall of the sliding groove (26). The two groups of sliding blocks (27) are symmetrically arranged. The inner wall of the sliding groove (26) is connected with a second spring (44). The other end of the second spring (44) is connected with the sliding block (27). The sliding block (27) is connected with an arc-shaped plate (28). The winding drum (14) is connected with a limiting device. The installation platform (16) is connected with a moving mechanism. The base (1) is connected with a wire arranging mechanism.
2. The power cable winding device according to claim 1, characterized in that: The limiting device includes a limiting disc (36). The limiting disc (36) is connected with the winding drum (14). The limiting disc (36) is provided with bolt holes (35). Any one of the end plates (9) is provided with a plurality of groups of bolt grooves (37). The plurality of groups of bolt grooves (37) are arranged in a circular array. The bolt grooves (37) cooperate with the bolt holes (35).
3. A power cable winding device according to claim 1, characterized in that: The moving mechanism includes a driving block (41). The driving block (41) is connected to the mounting table (16). The base (1) is provided with a driving groove (40). A threaded rod (39) is rotatably connected to the base (1). The base (1) is connected with a second motor (38). The output end of the second motor (38) is connected to the threaded rod (39). The driving block (41) is in threaded connection with the threaded rod (39). The driving block (41) is slidably connected to the driving groove (40).
4. The power cable winding device according to claim 2, wherein: The mounting table (16) is provided with several groups of movable grooves (42). A ball (43) is movably connected to the inner wall of several groups of the movable grooves (42). The ball (43) abuts against the base (1).
5. A power cable winding device according to claim 1, characterized in that: The wire arranging mechanism includes a mounting plate (17). The mounting plate (17) is connected to the base (1). There are two groups of the mounting plates (17). A reciprocating lead screw (21) is rotatably connected by the two groups of the mounting plates (17). A third motor (23) is connected to any one of the mounting plates (17). The output end of the third motor (23) is connected to the reciprocating lead screw (21). A connecting block (20) is movably connected to the reciprocating lead screw (21). A guide rod (22) is connected by the two groups of the mounting plates (17). The connecting block (20) is slidably connected to the guide rod (22). The connecting block (20) is provided with a wire arranging hole (18).
6. The power cable winding device according to claim 4, wherein: A wiping sponge (19) is connected to the inner wall of the wire arranging hole (18).
7. The winding device for power cables according to claim 1, characterized in that: An anti-slip sleeve (33) is connected to the inner wall of the movable sleeve (24). The anti-slip sleeve (33) abuts against the sliding rod (13).
8. The winding device for power cables according to claim 1, characterized in that: The arc-shaped plate (28) is connected with an anti-slip pad (30).
9. The winding device for power cables according to claim 1, characterized in that: The arc-shaped plate (28) is connected with a guide plate (29).