A cable facilitating wiring

By designing a dynamic adjustment wiring positioning structure and a wiring connection anti-shaking and detachment structure, the structural limitations in cable wiring were solved, enabling convenient cable positioning and stable connection, and improving the convenience and stability of wiring.

CN115566492BActive Publication Date: 2026-02-24河北永益线缆有限公司
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Patent Information

Application Number
CN202211228923.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-09
Publication Date
2026-02-24
Estimated Expiration
2042-10-09

AI Technical Summary

Technical Problem

Existing cables are structurally limited during the cabling process, lacking convenient adjustment and anti-shaking/fall-off designs, resulting in inconvenient cabling positioning and unstable connections.

Method used

A cable design includes a matching adjustment wiring positioning structure and a wiring connection anti-shaking and detachment structure. The cable is conveniently positioned through a matching locking ring and an automated wiring positioning structure. Automated positioning is achieved by a motor-driven worm gear system, and the connection is prevented from shaking and falling off through an anti-shaking support and force-fixing structure.

Benefits of technology

It enables convenient cable positioning and stable connection, improves the convenience of local segment positioning and connection stability during wiring, and avoids cable shaking and detachment during the wiring process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a cable convenient for wiring and relates to the technical field of novel cables.The cable convenient for wiring comprises a cable main body and a connecting plug, one end of the cable main body is fixedly connected with the connecting plug, and the cable main body is further provided with a matching adjustment wiring positioning structure and a wiring connection anti-shaking and falling structure; the periphery of the cable main body is slidably connected with the matching adjustment wiring positioning structure; and the outer side of the connecting plug is fixedly connected with the wiring connection anti-shaking and falling structure.The matching adjustment wiring positioning structure is designed so that the device can be conveniently displaced along with the cable to a position where wiring is to be fixed, and the corresponding limiting automatic derivation wiring positioning can be completed, thereby greatly improving the positioning convenience of local line segments during wiring; and the wiring connection anti-shaking and falling structure is designed so that the device can conveniently complete the limiting of the connection of the cable, thereby avoiding the shaking and falling of the connection and improving the stability of the wiring connection.
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Description

Technical Field

[0001] This invention relates to the field of novel cable technology, specifically to a cable that is easy to install. Background Technology

[0002] A cable is an electrical energy or signal transmission device, consisting of one or more mutually insulated conductors and an outer insulating protective layer, which transmits power or information from one place to another. However, existing cables are often limited by their structure during the wiring process, resulting in a lack of convenient and adjustable wiring positioning design during the wiring process, as well as a lack of anti-shaking and detachment design at the corresponding wiring connection points. Summary of the Invention

[0003] The purpose of this invention is to provide a cable that is easy to lay, so as to solve the existing problems: existing cables are often limited by their structure during the laying process, resulting in a lack of convenient and adjustable cable positioning design during the laying process.

[0004] To achieve the above objectives, the present invention provides the following technical solution: a cable for easy wiring, comprising a cable body and a connecting pin, wherein one end of the cable body is fixedly connected to the connecting pin, and further comprising a matching adjustment wiring positioning structure and a wiring connection anti-shaking and detachment structure, wherein the matching adjustment wiring positioning structure is slidably connected to the periphery of the cable body, and the wiring connection anti-shaking and detachment structure is fixedly connected to the outer side of the connecting pin, wherein the matching adjustment wiring positioning structure comprises a matching locking ring structure and an automated wiring positioning structure, and the automated wiring positioning structure is fixedly connected to both sides of the matching locking ring structure.

[0005] Preferably, the locking ring structure includes an inner mounting wheel, a guide roller, a first mounting support block, a second mounting support block, a threaded positioning post, a mounting guide rod, and a locking anti-movement ring. The inner mounting wheel has four guide rollers rotatably connected to its inner side. One end of one side of the inner mounting wheel is fixedly connected to the first mounting support block, and the other end of one side of the inner mounting wheel is fixedly connected to the second mounting support block. Threaded positioning posts are welded to the top and bottom of the second mounting support block, and mounting guide rods are welded to the top and bottom of the first mounting support block. One side of the locking anti-movement ring is slidably connected to the mounting guide rod, and the other side of the locking anti-movement ring is slidably connected to the threaded positioning post. The threaded positioning post and the locking anti-movement ring are fixed by a nut and the threaded connection of the threaded positioning post.

[0006] When the cable body is moved to the section where wiring positioning is required, the nut at the threaded positioning post is rotated to release the nut from the compression limit of the locking anti-movement ring. This allows the locking anti-movement ring to slide at the mounting rod and threaded positioning post, separating the top and bottom locking anti-movement rings and releasing the clamping of the cable body. This allows the internal mounting wheel to easily slide by contacting the guide roller and the cable body until it reaches the section where wiring positioning is required, at which point the locking anti-movement ring resets, completing the clamping of the cable body and preventing the internal mounting wheel from sliding at the cable body.

[0007] Preferably, the automated wiring positioning structure includes a mounting plate, a battery block, a motor, a worm gear, an internal support block, a worm wheel, a torque output shaft, and a linkage wiring positioning output structure. The mounting plate has internal support blocks fixedly connected to both sides of its top end, and a battery block also fixedly connected to its top end. The bottom end of the mounting plate is fixedly connected to a motor via screws. A worm gear is fixedly connected to the output end of the motor. A torque output shaft is rotatably connected to the inner side of the internal support block. Worm wheels are meshed with both sides of the worm gear, and the inner side of the worm wheel is sleeved with the torque output shaft. A linkage wiring positioning output structure is fixedly connected to one side of the internal support block.

[0008] Preferably, the linkage wiring positioning output structure includes a toggle linkage fork, a matching base, a positioning sliding pin, and a first internal guide frame. The positioning sliding pin is slidably connected inside the first internal guide frame. The matching base is welded to the top of the positioning sliding pin. The toggle linkage fork is slidably connected to the outside of the matching base. The inside of one side of the toggle linkage fork is sleeved with a torque output shaft.

[0009] Preferably, the linkage wiring positioning output structure further includes a toggle gear, a second internal guide frame, a push rack, and a fastening pin. The toggle gear is also sleeved on the outer side of the torque output shaft. The push rack is meshed on one side of the toggle gear. A second internal guide frame is welded to one end of the first internal guide frame. The inner side of the second internal guide frame is slidably connected to the push rack. A fastening pin is welded to the bottom end of the push rack.

[0010] When it is necessary to locate the cable body for wiring, the motor is controlled to output counterclockwise torque to the worm gear, which drives the worm wheel to rotate. Since the worm wheel, the linkage fork, and the actuating gear are all sleeved on the torque output shaft, when the worm wheel rotates, it drives the torque output shaft to rotate, thereby causing the linkage fork and the actuating gear to rotate synchronously. The rotation of the linkage fork creates a change in the downward pressure angle, which pushes the matching base and the positioning sliding pin to move downward inside the first inner guide frame to complete the first insertion positioning. The rotation of the actuating gear pushes the guide rack to slide under the guidance of the second inner guide frame, pushing the fastening pin to complete the second insertion positioning.

[0011] Preferably, the wiring connection anti-sway and detachment structure includes a fixed support base, an angle adjustment drive plate, a closing locking clamp, and an anti-sway support force-bearing fastening structure. The fixed support base is rotatably connected to both sides of the angle adjustment drive plate, and a closing locking clamp is welded to one end of the angle adjustment drive plate. The closing locking clamps on both sides are snapped together, and multiple anti-sway support force-bearing fastening structures are fixedly connected to the inner side of the closing locking clamp.

[0012] Preferably, the anti-sway support and fastening structure includes a mounting frame, a guide unloading rod, a first spring, a guide unloading push block, a force-sharing connecting rod, and a secondary force-guiding rod. The guide unloading rod is welded to the inner side of the mounting frame. The top and bottom ends of the guide unloading rod are both fitted with the first spring. The top and bottom ends of the guide unloading rod are also slidably connected to the guide unloading push block. One side of the guide unloading push block is rotatably connected to the force-sharing connecting rod, and one end of the force-sharing connecting rod is rotatably connected to the secondary force-guiding rod.

[0013] Preferably, the anti-sway support and force-fastening structure further includes a primary force-integrated housing, a contact relief rod, a second spring, a first guide rod, and a contact stabilizing block. One end of the secondary guide rod is welded to the primary force-integrated housing. The top and bottom ends of the primary force-integrated housing are both welded to the second spring. The force-bearing end of the second spring is welded to the contact relief rod. The contact relief rod is slidably connected to the inner side of the primary force-integrated housing. One end of the inner side of the primary force-integrated housing is slidably connected to the first guide rod. One end of the first guide rod is fixedly connected to the contact stabilizing block.

[0014] After the wiring is connected and the connecting pin is connected to the access point, the angle adjustment plate is pushed from both sides to drive the locking clamp to complete the opposite closing and locking, so that the connection is squeezed and locked. When the connection is shaken due to the wiring, in order to prevent the connection from disengaging due to the shaking of the wire, the shaking force of the wire is transferred to the contact stabilizing block through the contact with the connection. The force of the contact stabilizing block is transferred to the inside of the primary force component housing by the first guide rod. The sliding of the first guide rod inside the primary force component housing compresses the force to the secondary guide rod. During the process, the contact and pressure relief rod is used to form a contact force distribution relief, which is then directed to the second spring, completing the first force distribution relief support. The force directed by the second force distribution rod is then pushed by the pressure relief connecting rod to push the force distribution relief push block to slide at the force distribution relief rod, thus directing the force distribution formed by the force distribution connecting rod to the first spring, forming the second force distribution relief support. The elastic potential energy generated by the compression of the first and second springs after being subjected to force is used to offset the force directed by the contact stabilizing block, thereby forming a stable clamping, preventing the connecting pin from falling off due to the shaking of the wiring after connection.

[0015] Compared with the prior art, the beneficial effects of the present invention are:

[0016] 1. The present invention, through the design of the adjustable wiring positioning structure, makes it easy for the device to follow the cable displacement to the position where wiring needs to be fixed, and completes the corresponding limit automatic deduction wiring positioning, which greatly improves the convenience of positioning local line segments during wiring.

[0017] 2. The present invention, through the design of the anti-shaking and detachment structure of the wiring connection, makes it easy for the device to limit the connection of the cable, avoid the connection from shaking and detaching, and improve the stability of the wiring connection. Attached Figure Description

[0018] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. 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 creative effort.

[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0020] Figure 2 This is a bottom view of the entire invention;

[0021] Figure 3 This is a partial structural schematic diagram of the matching adjustment wiring positioning structure of the present invention;

[0022] Figure 4 This is a partial structural schematic diagram of the locking ring structure of the present invention;

[0023] Figure 5 This is a partial structural diagram of the wiring automation positioning structure of the present invention;

[0024] Figure 6 This is a partial structural diagram of the linkage wiring positioning output structure of the present invention;

[0025] Figure 7 This is a partial structural diagram of the anti-shaking and detachment structure for wiring connections of the present invention;

[0026] Figure 8 This is a partial structural diagram of the anti-sway support and force-fastening structure of the present invention.

[0027] In the diagram: 1. Cable body; 2. Connecting pin; 3. Adjustable wiring positioning structure; 4. Wiring connection anti-shaking and detachment structure; 5. Adjustable locking ring structure; 6. Automated wiring positioning structure; 7. Internal mounting wheel; 8. Guide roller; 9. First mounting support block; 10. Second mounting support block; 11. Threaded positioning post; 12. Mounting rod; 13. Locking anti-movement ring; 14. Mounting plate; 15. Battery block; 16. Motor; 17. Worm gear; 18. Internal support block; 19. Worm wheel; 20. Torque output shaft; 21. Linkage wiring positioning output structure; 22. Actuating linkage fork; 23. 24. Positioning sliding pin; 25. First internal guide frame; 26. Actuating gear; 27. Second internal guide frame; 28. Push rack; 29. ​​Fastening pin; 30. Fixed support base; 31. Angle adjustment drive plate; 32. Closing locking clamp; 33. Anti-sway support force fastening structure; 34. Mounting mounting frame; 35. Guide unloading light rod; 36. First spring; 37. Divided guide unloading push block; 38. Divided force connecting rod; 39. Secondary guide rod; 40. Primary force internal mounting box; 41. Contact unloading rod; 42. Second spring; 43. First guide rod; 44. Contact stabilizing block. Detailed Implementation

[0028] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0029] Please see Figure 1-3 :

[0030] A cable for easy wiring includes a cable body 1 and a connecting pin 2. One end of the cable body 1 is fixedly connected to the connecting pin 2. The cable body 1 also includes a matching adjustment wiring positioning structure 3 and a wiring connection anti-shaking and detachment structure 4. The matching adjustment wiring positioning structure 3 is slidably connected to the periphery of the cable body 1. The wiring connection anti-shaking and detachment structure 4 is fixedly connected to the outside of the connecting pin 2. The matching adjustment wiring positioning structure 3 includes a matching locking ring structure 5 and a wiring automatic positioning structure 6. The wiring automatic positioning structure 6 is fixedly connected to both sides of the matching locking ring structure 5.

[0031] Please see Figure 4 :

[0032] The locking ring structure 5 includes an inner mounting wheel 7, a guide roller 8, a first mounting support block 9, a second mounting support block 10, a threaded positioning post 11, a mounting rod 12, and a locking anti-movement ring 13. The guide roller 8 is rotatably connected to four positions on the side inside the inner mounting wheel 7. The first mounting support block 9 is fixedly connected to one end of one side of the inner mounting wheel 7, and the second mounting support block 10 is fixedly connected to the other end of one side of the inner mounting wheel 7. The threaded positioning post 11 is welded to the top and bottom of the second mounting support block 10. The mounting rod 12 is welded to the top and bottom of the first mounting support block 9. One side of the locking anti-movement ring 13 is slidably connected to the mounting rod 12, and the other side of the locking anti-movement ring 13 is slidably connected to the threaded positioning post 11. The threaded positioning post 11 and the locking anti-movement ring 13 are fixed by a nut and the threaded connection of the threaded positioning post 11.

[0033] When the cable body 1 is moved to the section where wiring positioning is required, the nut at the threaded positioning post 11 is rotated to release the nut from the compression limit of the locking anti-movement ring 13. This allows the locking anti-movement ring 13 to slide at the mounting rod 12 and the threaded positioning post 11, separating the top and bottom locking anti-movement rings 13 and releasing the clamping of the cable body 1. This allows the inner mounting wheel 7 to easily slide by contacting the guide roller 8 with the cable body 1 until it reaches the section where wiring positioning is required, at which point the locking anti-movement ring 13 resets, completing the clamping of the cable body 1 and preventing the inner mounting wheel 7 from sliding at the cable body 1.

[0034] Please see Figure 5-6 :

[0035] The automated wiring positioning structure 6 includes a mounting plate 14, a battery block 15, a motor 16, a worm gear 17, an internal support block 18, a worm wheel 19, a torque output shaft 20, and a linkage wiring positioning output structure 21. The internal support block 18 is fixedly connected to both sides of the top of the mounting plate 14, and the battery block 15 is also fixedly connected to the top of the mounting plate 14. The motor 16 is fixedly connected to the bottom of the mounting plate 14 by screws. The worm gear 17 is fixedly connected to the output end of the motor 16. The torque output shaft 20 is rotatably connected to the inner side of the internal support block 18. The worm wheel 19 is meshed with both sides of the worm gear 17. The inner side of the worm wheel 19 is sleeved with the torque output shaft 20. The linkage wiring positioning output structure 21 is fixedly connected to one side of the internal support block 18.

[0036] The linkage wiring positioning output structure 21 includes a toggle linkage fork 22, a matching base 23, a positioning sliding pin 24, and a first internal guide frame 25. The positioning sliding pin 24 is slidably connected inside the first internal guide frame 25. The matching base 23 is welded to the top of the positioning sliding pin 24. The toggle linkage fork 22 is slidably connected to the outside of the matching base 23. The inside of one side of the toggle linkage fork 22 is sleeved with the torque output shaft 20.

[0037] The linkage wiring positioning output structure 21 also includes a toggle gear 26, a second internal guide frame 27, a push rack 28, and a fastening pin 29. The toggle gear 26 is also sleeved on the outside of the torque output shaft 20. The push rack 28 is meshed on one side of the toggle gear 26. The second internal guide frame 27 is welded to one end of the first internal guide frame 25. The inner side of the second internal guide frame 27 is slidably connected to the push rack 28. The fastening pin 29 is welded to the bottom end of the push rack 28.

[0038] When the cable body 1 needs to be positioned for wiring, the motor 16 is controlled to output counterclockwise torque to the worm gear 17, which drives the worm wheel 19 to rotate. Since the worm wheel 19, the actuating linkage fork 22 and the actuating gear 26 are all sleeved on the torque output shaft 20, when the worm wheel 19 rotates, it drives the torque output shaft 20 to rotate, thereby causing the actuating linkage fork 22 and the actuating gear 26 to rotate synchronously. The rotation of the actuating linkage fork 22 creates a change in the downward pressure angle, thereby pushing the matching base 23 and the positioning sliding pin 24 to move downward inside the first inner guide frame 25 to complete the first insertion positioning. The rotation of the actuating gear 26 pushes the guide rack 28 to slide under the guidance of the second inner guide frame 27, pushing the fastening pin 29 to complete the second insertion positioning.

[0039] Please see Figure 7-8 :

[0040] The wiring connection anti-sway and detachment structure 4 includes a fixed support base 30, an angle adjustment drive plate 31, a closing locking clamp 32, and an anti-sway support force-bearing fastening structure 33. The fixed support base 30 is rotatably connected to both sides of the angle adjustment drive plate 31. A closing locking clamp 32 is welded to one end of the angle adjustment drive plate 31. The closing locking clamps 32 on both sides are snapped together. Multiple anti-sway support force-bearing fastening structures 33 are fixedly connected to the inner side of the closing locking clamp 32.

[0041] The anti-sway support and fastening structure 33 includes a mounting frame 34, a guide unloading rod 35, a first spring 36, a force unloading push block 37, a force connecting rod 38, and a secondary force guide rod 39. The guide unloading rod 35 is welded to the inner side of the mounting frame 34. The first spring 36 is sleeved on the top and bottom of the guide unloading rod 35. The force unloading push block 37 is also slidably connected to the top and bottom of the guide unloading rod 35. The force connecting rod 38 is rotatably connected to one side of the force unloading push block 37. The secondary force guide rod 39 is rotatably connected to one end of the force connecting rod 38.

[0042] The anti-sway support and fastening structure 33 also includes a primary force component housing 40, a contact relief rod 41, a second spring 42, a first force guide rod 43, and a contact stabilizing block 44. One end of the secondary force guide rod 39 is welded to the primary force component housing 40. The top and bottom ends of the primary force component housing 40 are both welded to the second spring 42. The force-bearing end of the second spring 42 is welded to the contact relief rod 41. The contact relief rod 41 is slidably connected to the inner side of the primary force component housing 40. One end of the inner side of the primary force component housing 40 is slidably connected to the first force guide rod 43. One end of the first force guide rod 43 is fixedly connected to the contact stabilizing block 44.

[0043] After the wiring is connected, the connecting pin 2 is connected to the access point. By pushing the angle adjustment plate 31 from both sides, the locking clamp 32 is driven to complete the opposite closing and locking, so that the connection is squeezed and locked. When the connection is shaken due to the wiring, in order to prevent the connection from being disengaged due to the shaking of the wire, the contact stabilizing block 44 contacts the connection point, and the shaking force of the wire is transferred to the contact stabilizing block 44. The first guide rod 43 is used to transfer the force of the contact stabilizing block 44 to the inside of the primary force component housing 40. By sliding the first guide rod 43 inside the primary force component housing 40, the force is squeezed to the secondary guide rod 39. Through the displacement process of the first guide rod 43, The contact pressure relief rod 41 forms a contact force distribution relief, which is then directed to the second spring 42, completing the first force distribution relief support. The force directed by the second force guide rod 39 is then pushed through the pressure force connecting rod 38, which in turn pushes the force distribution relief push block 37 to slide at the force guide relief rod 35, thus directing the force distribution formed by the force connecting rod 38 to the first spring 36, forming the second force distribution relief support. The elastic potential energy generated by the compression of the first spring 36 and the second spring 42 after being subjected to force is used to offset the force directed by the contact stabilizing block 44, thereby forming a stable clamping and preventing the connecting pin 2 from falling off due to the shaking of the wiring after connection.

[0044] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A cable for easy wiring, comprising a cable body (1) and a connecting pin (2), wherein one end of the cable body (1) is fixedly connected to the connecting pin (2), characterized in that: It also includes a distribution adjustment wiring positioning structure (3) and a wiring connection anti-shaking and detachment structure (4). The distribution adjustment wiring positioning structure (3) is slidably connected to the periphery of the cable body (1). The wiring connection anti-shaking and detachment structure (4) is fixedly connected to the outside of the connecting pin (2). The distribution adjustment wiring positioning structure (3) includes a distribution locking ring structure (5) and a wiring automation positioning structure (6). The wiring automation positioning structure (6) is fixedly connected to both sides of the distribution locking ring structure (5). The automated wiring positioning structure (6) includes a mounting plate (14), a battery block (15), a motor (16), a worm (17), an internal support block (18), a worm wheel (19), a torque output shaft (20), and a linkage wiring positioning output structure (21). The mounting plate (14) has an internal support block (18) fixedly connected to both sides of its top end. The mounting plate (14) also has a battery block (15) fixedly connected to its top end. The mounting plate (14) has a motor (16) fixedly connected to its bottom end by screws. The output end of the motor (16) is fixedly connected to the worm (17). The inner side of the internal support block (18) is rotatably connected to the torque output shaft (20). The worm wheel (19) is meshed with both sides of the worm (17). The inner side of the worm wheel (19) is sleeved with the torque output shaft (20). The linkage wiring positioning output structure (21) is fixedly connected to one side of the internal support block (18). The linkage wiring positioning output structure (21) includes a toggle linkage fork (22), a matching base (23), a positioning sliding pin (24), and a first internal guide frame (25). The first internal guide frame (25) is slidably connected to the positioning sliding pin (24). The top of the positioning sliding pin (24) is welded to the matching base (23). The outside of the matching base (23) is slidably connected to the toggle linkage fork (22). The inside of one side of the toggle linkage fork (22) is sleeved with the torque output shaft (20). The linkage wiring positioning output structure (21) further includes a toggle gear (26), a second internal guide frame (27), a push rack (28), and a fastening pin (29). The toggle gear (26) is also sleeved on the outside of the torque output shaft (20). The push rack (28) is meshed on one side of the toggle gear (26). The second internal guide frame (27) is welded to one end of the first internal guide frame (25). The inner side of the second internal guide frame (27) is slidably connected to the push rack (28). The fastening pin (29) is welded to the bottom end of the push rack (28).

2. The cable for easy wiring according to claim 1, characterized in that: The locking ring structure (5) includes an inner mounting wheel (7), a guide roller (8), a first mounting support block (9), a second mounting support block (10), a threaded positioning post (11), a mounting rod (12), and a locking anti-movement ring (13). The inner mounting wheel (7) has four guide rollers (8) rotatably connected to its inner side. The first mounting support block (9) is fixedly connected to one end of one side of the inner mounting wheel (7), and the second mounting support block (9) is fixedly connected to the other end of one side of the inner mounting wheel (7). The support block (10) and the second mounting support block (10) are both welded with threaded positioning pins (11) at the top and bottom. The first mounting support block (9) is both welded with mounting rods (12) at the top and bottom. One side of the locking anti-movement ring (13) is slidably connected to the mounting rod (12), and the other side of the locking anti-movement ring (13) is slidably connected to the threaded positioning pins (11). The threaded positioning pins (11) and the locking anti-movement ring (13) are fixed by the threaded connection of the nut and the threaded positioning pins (11).

3. The cable for easy wiring according to claim 1, characterized in that: The wiring connection anti-sway and detachment structure (4) includes a fixed support base (30), an angle adjustment drive plate (31), a closing locking clamp (32), and an anti-sway support force fastening structure (33). The fixed support base (30) is rotatably connected to both sides of the angle adjustment drive plate (31). A closing locking clamp (32) is welded to one end of the angle adjustment drive plate (31). The closing locking clamps (32) on both sides are snapped together. Multiple anti-sway support force fastening structures (33) are fixedly connected to the inner side of the closing locking clamp (32).

4. The cable for easy wiring according to claim 3, characterized in that: The anti-sway support and fastening structure (33) includes a mounting frame (34), a guide unloading rod (35), a first spring (36), a guide unloading push block (37), a force-sharing rod (38), and a secondary force-guiding rod (39). The guide unloading rod (35) is welded to the inner side of the mounting frame (34). The first spring (36) is sleeved on the top and bottom of the guide unloading rod (35). The guide unloading rod (35) is also slidably connected to the top and bottom of the guide unloading rod (35). The force-sharing rod (38) is rotatably connected to one side of the guide unloading push block (37). The secondary force-guiding rod (39) is rotatably connected to one end of the force-sharing rod (38).

5. A cable for easy wiring according to claim 4, characterized in that: The anti-sway support and fastening structure (33) further includes a primary force internal mounting box (40), a contact relief rod (41), a second spring (42), a first guide rod (43), and a contact stabilizing block (44). One end of the secondary guide rod (39) is welded to the primary force internal mounting box (40). The top and bottom ends of the primary force internal mounting box (40) are both welded to the second spring (42). The force-bearing end of the second spring (42) is welded to the contact relief rod (41). The contact relief rod (41) is slidably connected to the inner side of the primary force internal mounting box (40). One end of the inner side of the primary force internal mounting box (40) is slidably connected to the first guide rod (43). One end of the first guide rod (43) is fixedly connected to the contact stabilizing block (44).

Citation Information

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