Insulating rod live-line quick-connection drainage wire clamp fixing device
By designing an insulating rod quick-connection cable clamp fixing device with an I-beam frame and sliding adjustment mechanism, the problems of cable swaying due to wind load and direction mismatch during outdoor live-line work are solved, achieving stable cable positioning and automated connection, thus improving work efficiency and safety.
Patent Information
- Application Number
- CN202511774998.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-28
- Publication Date
- 2026-02-10
AI Technical Summary
Existing cable clamp fixing devices suffer from low work efficiency, high safety risks, and poor contact reliability due to wind loads causing cable swaying and inability to adapt to the direction of line laying during outdoor live-line work.
An insulating rod-mounted fast-connector cable clamp fixing device was designed, comprising an I-shaped frame, a sliding adjustment mechanism, and a cable stabilizing structure. By adjusting the angle of the arc-shaped frame, clamping the cable with a cable stabilizing slide bar, and automatically connecting with an electric push rod, the device achieves stable positioning and flexible angle adjustment of the cable, avoiding cable swaying and manual operation errors.
It improves the stability and accuracy of cable connection, shortens the time of suspended operation, reduces safety risks, reduces equipment inventory costs, and ensures that the contact resistance meets the standards.
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Figure CN121507598A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of live-line working technology, and specifically discloses a device for fixing a clamp for quickly connecting an insulating rod to a live-line working device. Background Technology
[0002] In current practice of live-line work on outdoor power distribution lines, the quick connection process of the lead wire generally relies on three steps: pre-fixing of the main line, cable connection, and clamping and locking. However, due to the characteristics of the outdoor environment and the limitations of the existing equipment structure, the work efficiency and safety always face two major bottlenecks. The specific problems are as follows: First, the cable under outdoor wind load is prone to swaying, which leads to misalignment of the main cable connection, requiring constant adjustment and greatly extending the suspension operation time.
[0003] Secondly, in flat areas, parallel cable laying is often used (the main line is parallel to the ground, and the cables need to be connected horizontally); in mountainous, hilly, or road-crossing areas, to accommodate the height difference of the towers, inclined cable laying is often used (the main line is at a 5-15° angle to the ground, and the cables need to be connected in the inclined direction), and in some special scenarios, vertical cable laying is also used (such as tower down-line lines). However, the core clamping components of existing cable clamp fixing devices (such as main line clamps and cable guide sleeves) are mostly integrated fixing structures, and their angle and direction cannot be adjusted.
[0004] In summary, current outdoor live-line quick-connection cable operations face challenges due to wind loads causing cable swaying, compounded by structural limitations that prevent the device from adapting to the cable laying direction. These combined issues result in low work efficiency, excessively long suspension times, high safety risks, and poor contact reliability, severely hindering the standardization and efficiency of live-line work on power distribution lines. Therefore, there is an urgent need to develop an insulated rod live-line quick-connection cable clamp fixing device to fundamentally solve the problems of cable misalignment and direction compatibility, shorten suspension time, and ensure operational safety and power supply reliability. Summary of the Invention
[0005] The purpose of this invention is to solve the problems existing in the background art, and to propose an insulating rod energized quick-connection drain wire clamp fixing device, including an I-shaped frame, a crossbar fixedly installed inside the I-shaped frame, an insert rod movably inserted into the upper part of the I-shaped frame, a sleeve rod fixedly connected to the lower end of the insert rod, an insulating shell fixedly connected to the upper part of the sleeve rod, a wire clamp seat slidably sleeved outside the sleeve rod and below the insulating shell, a wiring assembly provided inside the lower part of the I-shaped frame, two sets of grooves correspondingly opened inside the wire clamp seat, drain wires and cables with stripped outer sheaths respectively provided in the two sets of grooves, a fixing column fixedly installed at the rear end inside the I-shaped frame, an arc-shaped frame connected to the outside of the fixing column through a set bracket, a sliding adjustment mechanism provided inside the arc-shaped frame, a connecting column fixedly installed on the outer wall of the sliding adjustment mechanism, an insulating wiring rod sleeved outside the connecting column, and a stabilizing rod fixedly sleeved below the outside of the insulating wiring rod.
[0006] In the above technical solution, the wiring assembly further includes an electric push rod fitted inside the lower part of the I-shaped frame. A telescopic clamp is fixedly installed on the telescopic end of the electric push rod. A sliding cavity adapted for sliding the push rod to slide in and out is opened inside the telescopic clamp. A stop rod is symmetrically installed on the upper end of the telescopic clamp. One end of the stop rod is in contact with the lower surface of the wire clamp seat.
[0007] In the above technical solution, the mounting component further includes diagonal rods fixedly installed on both sides of the outside of the fixed column, and clamping rods are fixedly installed on the upper surfaces of both sides of the arc-shaped frame, with the ends of the two diagonal rods away from the fixed column fitted onto the outside of the clamping rods.
[0008] In the above technical solution, the sliding adjustment mechanism further includes a limiting seat disposed inside the arc-shaped frame. The inside of the arc-shaped frame slides outside the limiting seat through an arc-shaped slide rail. One end of the connecting column is fixedly installed on the outer wall of the limiting seat. The inner surface of the arc-shaped frame is provided with pin holes at equal intervals along the arc. A locking pin is movably inserted inside one set of the pin holes. One end of the locking pin is threaded through the inside of the limiting seat.
[0009] In the above technical solution, a second bidirectional push rod is fixedly installed at the rear end of the I-shaped frame. Guide rods are fixedly installed at both ends of the second bidirectional push rod. Sliding clips are slidably fitted at both ends of the guide rods. The two sliding clips are connected to each other at the front end of the second bidirectional push rod through a first bidirectional push rod that is commonly provided.
[0010] In the above technical solution, further, a guide rod is slidably inserted inside the sliding clamp, a movable plate is fixedly connected to one end of the guide rod that is close to each other, a trapezoidal card seat is fixedly connected to the outer surface of the movable plate that is close to each other, a line-stabilizing slide bar is fixedly connected to the outer surface of the trapezoidal card seat that is close to each other, and a spring is fitted on the outside of the guide rod.
[0011] In the above technical solution, further, mounting rods are staggered on the outer sides of the two stabilizing sliders that are close to each other, and a silicone frame is fixedly installed on the lower outer side of the end of the mounting rod away from the stabilizing slider, and a wiping cotton is installed inside the silicone frame.
[0012] In the above technical solution, further, the upper surface of the I-shaped frame is symmetrically equipped with clamping plates, one of the clamping plates has a threaded pin inserted inside, and one end of the pin is inserted through the insertion rod.
[0013] Compared with the prior art, the present invention has the following beneficial effects: 1. The device achieves stable cable positioning through multiple sets of cable stabilizing structures. The cable stabilizing slider can form a ring-shaped clamping on the cable, quickly capturing the swaying cable. At the same time, with the buffering effect of the spring outside the guide rod, it can absorb the lateral swaying force of the cable caused by wind load, avoiding large-scale cable deviation. This facilitates the quick connection between the clamping seat and the insulating shell. Meanwhile, the wiping cotton next to the cable stabilizing slider can automatically clean the oxide layer and dust on the surface of the cable during the clamping process, which reduces the frictional resistance during connection and avoids poor contact caused by surface impurities. This greatly reduces the time that operators spend suspended at height, reducing fatigue and safety risks.
[0014] 2. This device achieves flexible angle adjustment through the coordinated design of an arc-shaped frame and a sliding adjustment mechanism. The arc-shaped frame provides an arc-shaped adjustment track for the insulated wiring rod, and the limiting seat supports the sliding of the arc-shaped frame. After adjusting to the corresponding angle according to the laying direction (e.g., horizontal parallel, 5-15° tilt), the position can be locked by inserting the locking pin into the pin hole, ensuring that the insulated wiring rod and cable direction are always compatible. The inclined rod and clamping rod of the erection component cooperate to further enhance the stability of the arc-shaped frame and prevent loosening after angle adjustment. This design does not require replacement of special equipment or disassembly and adjustment, and can cover scenarios such as parallel laying in flat areas, inclined laying in mountainous and hilly areas, and vertical laying on towers, reducing equipment inventory costs and avoiding delays in work progress due to incorrect equipment selection.
[0015] 3. This device achieves automated clamping and docking through wiring components. The electric push rod can drive the telescopic clamp and the stop rod to move synchronously. The stop rod pushes the clamp seat to slide along the sleeve rod, so that the guide wire and the cable in the clamp seat automatically approach and clamp. There is no need for manual pushing or adjustment. Automated operation not only reduces the dependence on the skills of operators, but also avoids the problem of amplifying small vibrations during manual operation, improves docking accuracy, ensures that the contact resistance meets the standard, and reduces the risk of line overheating caused by docking deviation. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of the present invention.
[0017] Figure 2 This is a schematic diagram of the overall structure of the present invention from another angle.
[0018] Figure 3 This is a schematic diagram of the connection structure between the I-shaped frame, the insertion rod, the wire clamp, and the insulating shell of the present invention.
[0019] Figure 4 This is a schematic diagram of the connection structure between the insertion rod, insulating shell, and clamping seat of the present invention.
[0020] Figure 5 This is a schematic diagram of the connection structure between the fixed column, I-beam frame, and crossbar of the present invention.
[0021] Figure 6 This is a schematic diagram from another angle showing the structural connection between the fixed column, I-beam frame, and crossbar of the present invention.
[0022] Figure 7 This is a schematic diagram of the sliding adjustment mechanism of the present invention.
[0023] Figure 8 This is a schematic diagram of the connection structure between the movable plate and the stabilizing slider in the invention.
[0024] Figure 9 For the present invention Figure 5 Enlarged structural diagram at point A in the middle.
[0025] In the diagram: 1. I-beam frame; 2. Electric push rod; 3. First bidirectional push rod; 4. Guide rod; 5. Crossbar; 6. Insert rod; 7. Telescopic clamp; 8. Moving plate; 9. Arc frame; 10. Drainage line; 11. Cable; 12. Diagonal rod; 13. Guide rod; 14. Sliding clamp; 15. Insulated connection rod; 16. Stabilizing rod; 17. Connecting column; 18. Limit seat; 19. Screw pin; 20. Sleeve rod; 21. Insulating housing; 22. Wire clamp seat; 23. Clamping plate; 24. Spring; 25. Abutment rod; 26. Trapezoidal clamping seat; 27. Wire stabilizing slide bar; 28. Fixed column; 29. Second bidirectional push rod; 30. Locking pin; 31. Pin hole; 32. Clamping rod; 33. Wiping cotton; 34. Mounting rod; 35. Silicone frame. Detailed Implementation
[0026] To better understand the above-mentioned objectives, features, and advantages of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0027] Numerous specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and therefore the invention is not limited to the specific embodiments disclosed below.
[0028] like Figures 1-9The insulating rod energized quick-connection drain wire clamp fixing device shown includes an I-shaped frame 1. A crossbar 5 is fixedly installed inside the I-shaped frame 1. An insert rod 6 is movably inserted into the upper part of the I-shaped frame 1. A sleeve rod 20 is fixedly connected to the lower end of the insert rod 6. An insulating shell 21 is fixedly connected to the upper part of the sleeve rod 20. A clamping seat 22 is slidably sleeved outside the sleeve rod 20 and below the insulating shell 21. A wiring assembly is provided inside the lower part of the I-shaped frame 1. Two sets of grooves are correspondingly opened inside the clamping seat 22. Drain wires 10 and cables 11 with stripped outer sheaths are respectively arranged in the two sets of grooves. A fixing post 28 is fixedly installed at the rear end of the I-shaped frame 1. An arc-shaped frame 9 is connected to the outside of the fixing post 28 through a set bracket. A sliding adjustment mechanism is provided inside the arc-shaped frame 9. A connecting post 17 is fixedly installed on the outer wall of the sliding adjustment mechanism. An insulating connecting rod 15 is sleeved outside the connecting post 17. A stabilizing rod 16 is fixedly sleeved below the outside of the insulating connecting rod 15.
[0029] In this embodiment, the I-beam frame 1 provides a basic support frame for the entire device, and the crossbar 5 enhances its structural stability; the insulating shell 21 is fixed above the sleeve rod 20 to form a closed insulating space for wiring; the wire clamp 22 can slide along the sleeve rod 20, and its internal groove is used to place the stripped drain wire 10 and cable 11, providing a positioning basis for subsequent docking.
[0030] The stabilizing rod 16 is fixed below the insulating connecting rod 15, further enhancing the stability of the insulating connecting rod 15, making the force point more stable when the operator holds it.
[0031] The wiring assembly includes an electric push rod 2 installed inside the lower part of the I-shaped frame 1. A telescopic clamp 7 is fixedly installed at the telescopic end of the electric push rod 2. The telescopic clamp 7 has a sliding cavity inside which the matching rod 20 slides in and out. A stop rod 25 is symmetrically installed on the upper surface of the telescopic clamp 7. One end of the stop rod 25 is in contact with the lower surface of the wire clamp 22.
[0032] In this embodiment, the electric push rod 2 can drive the telescopic clamping cylinder 7 to move vertically through the telescopic end; the sliding cavity inside the telescopic clamping cylinder 7 is slidably adapted to the sleeve rod 20, which can prevent the sleeve rod 20 from shifting during the clamping process and ensure the accuracy of the action; the abutment rod 25, which is symmetrically installed on the upper end of the telescopic clamping cylinder 7, is in contact with the lower surface of the wire clamping seat 22. When the telescopic clamping cylinder 7 rises, the abutment rod 25 simultaneously pushes the wire clamping seat 22 to slide upward along the sleeve rod 20 until the guide wire 10 and the cable 11 in the groove of the wire clamping seat 22 are completely inserted into the interior of the insulating housing 21, and the internal structure of the insulating housing 21 realizes the tight pressing of the two conductors.
[0033] The support structure includes diagonal braces 12 fixedly installed on both sides of the fixed column 28, and clamping rods 32 fixedly installed on the upper surfaces of both sides of the arc frame 9. The ends of the two diagonal braces 12 away from the fixed column 28 are fitted onto the outside of the clamping rods 32.
[0034] In this embodiment, the diagonal bar 12 is connected to the clamp bar 32, which allows the arc frame 9 to be stably erected at the rear end of the I-shaped frame 1, making it easy to adjust the usage angle according to different wiring scenarios later.
[0035] The sliding mechanism includes a limiting seat 18 disposed inside the arc-shaped frame 9. The arc-shaped frame 9 slides outside the limiting seat 18 through an arc-shaped slide rail. One end of the connecting column 17 is fixedly installed on the outer wall of the limiting seat 18. The inner surface of the arc-shaped frame 9 is provided with pin holes 31 at equal intervals along the arc. A locking pin 30 is movably inserted inside one set of pin holes 31. One end of the locking pin 30 is threaded through the inside of the limiting seat 18.
[0036] In this embodiment, depending on the scenario of the line being erected, the angle of the arc frame 9 is first adjusted as needed during live-line work, and the arc frame 9 is pushed to slide outside the limiting seat 18. The internal arc trajectory can cause the arc frame 9 to change its angle, so that the I-shaped frame 1 can be used for cables in the scenario of inclined line erection. In addition, the multiple sets of pin holes 31 opened on the inner surface of the arc frame 9 can provide multiple fixed points for angle locking. After the angle is adjusted, one end of the locking pin 30 is inserted into the corresponding pin hole 31, and then screwed into the limiting seat 18 to fix the position of the arc frame 9, which solves the problem that the angle of the existing device is not adjustable.
[0037] The second bidirectional push rod 29 is fixedly installed at the rear end of the I-shaped frame 1. Guide rods 13 are fixedly installed at both ends of the second bidirectional push rod 29. Sliding clips 14 are slidably fitted at both ends of the guide rods 13. The two sliding clips 14 are connected to each other and located at the front end of the second bidirectional push rod 29 through a first bidirectional push rod 3 that is commonly provided.
[0038] In this embodiment, the telescopic end of the second bidirectional push rod 29 can drive the two guide rods 13 to move closer or further apart in the horizontal direction; the sliding clamps 14, which are slidably fitted at both ends of the guide rods 13, can slide along the axial direction of the guide rods 13; the two ends of the first bidirectional push rod 3 located at the front end of the second bidirectional push rod 29 are respectively connected to the two sliding clamps 14, which can further fine-tune the distance between the two sliding clamps 14. During operation, the guide rods 13 and the sliding clamps 14 are first driven to move closer to the cable 11 by the second bidirectional push rod 29, and then the distance between the sliding clamps 14 is fine-tuned by the first bidirectional push rod 3 so that the sliding clamps 14 are close to the position of the cable 11, providing a pre-positioning for the subsequent circumferential clamping of the stabilizing slide bar 27, and solving the problem of positioning difficulties caused by the swaying of the cable 11 due to wind load.
[0039] Inside the sliding clamp 14, a guide rod 4 is slidably inserted. A movable plate 8 is fixedly connected to one end of the guide rod 4 that is close to each other. A trapezoidal card seat 26 is fixedly connected to the outer surface of the movable plate 8 that is close to each other. A stabilizing slide bar 27 is fixedly connected to the outer surface of the trapezoidal card seat 26 that is close to each other. A spring 24 is fitted on the outside of the guide rod 4.
[0040] In this embodiment, when the sliding clamp 14 moves, the guide rod 4 can drive the moving plate 8 to move closer to the cable 11 in sync. The trapezoidal card seat 26 fixed on one side of the moving plates 8 can guide the stabilizing slide 27 to accurately connect with the cable 11. The stabilizing slide 27 is fixed on the outside of the trapezoidal card seat 26. As the moving plate 8 moves, it can form a ring-shaped clamping of the cable 11 to prevent the cable 11 from shifting laterally.
[0041] The spring 24, which is externally mounted on the guide rod 4, abuts against the sliding clamp 14 and the moving plate 8 at both ends. When the cable 11 is subjected to lateral swaying force due to wind load, the spring 24 can absorb the swaying force through elastic deformation, preventing the swaying force from being transmitted to the clamp seat 22 and causing misalignment. At the same time, it buffers the impact force during the clamping process and protects the insulation layer of the cable 11.
[0042] On the outer side of each of the two stabilizing sliders 27, there are staggered mounting rods 34. A silicone frame 35 is fixedly installed on the lower outer side of the end of the mounting rod 34 away from the stabilizing slider 27. A wiping cotton 33 is installed inside the silicone frame 35.
[0043] In this embodiment, when the stabilizing sliders 27 approach each other, the mounting rod 34 can drive the silicone frame 35 to move at the upper and lower ends of the cable 11. The wiping cotton 33 wipes the oxide layer, dust and other impurities on the surface of the cable 11 in an alternating manner. Both the silicone frame 35 and the wiping cotton 33 are flexible structures. When the stabilizing sliders 27 move, they deform accordingly to ensure full contact on the outside of the cable 11 and avoid poor contact caused by surface impurities.
[0044] The upper surface of the I-shaped frame 1 is symmetrically equipped with clamping plates 23, one of which has a threaded pin 19 inserted inside, one end of which is inserted into the insert rod 6.
[0045] In this embodiment, the insertion rod 6 is threadedly connected to the screw pin 19, the purpose of which is to quickly install the wire clamp 22 and the insulating housing 21 into the I-shaped frame 1 for use.
[0046] Working principle: In parallel wiring scenarios, the second bidirectional push rod 29 inside the I-beam frame 1 will drive the two guide rods 13 and the sliding clamp 14 to move closer to each other. The guide rod 4 inserted inside the sliding clamp 14 moves with the sliding clamp 14, driving the moving plate 8 at the end of the guide rod 4 to move closer to the cable 11. Finally, the trapezoidal card seat 26 on the moving plate 8 drives the stabilizing slide 27 to form a ring-shaped clamping of the cable 11. In this way, the cable 11 can be quickly captured during the wiring process, laying the foundation for accurate positioning of the subsequent connection lines. After the cable 11 is determined, the first bidirectional push rod 3 continues to extend and retract, sliding outside the cable 11, causing the two intersecting mounting rods 34 to move above and below the cable 11. The corresponding silicone frame 35 will drive the internal wiping cotton 33 to wipe the stripped part of the cable 11, removing the oxide layer and dust, reducing subsequent docking resistance and avoiding poor contact.
[0047] Next, place the lead wire 10 into another set of grooves inside the clamp seat 22, ensuring that the conductor portion is exposed and aligned with the opening direction of the insulating housing 21. Activate the electric push rod 2 at the I-beam frame 1 to move the telescopic clamp 7 upward. The sliding cavity inside the telescopic clamp 7 slides and adapts to the sleeve rod 20, preventing the sleeve rod 20 from shifting. At the same time, the abutment rod 25 on the upper end of the telescopic clamp 7 rises with the telescopic clamp 7, pushing the clamp seat 22 to slide upward along the sleeve rod 20. The clamp seat 22 continues to slide upward until the lead wire 10 and the cable 11 in its groove are completely inside the insulating housing 21. The internal structure of the insulating housing 21 tightly presses the two conductors together, completing the live connection. The entire process does not require manual pushing, avoiding docking deviations caused by operational vibrations and ensuring that the contact resistance meets the standard.
[0048] In scenarios involving inclined wiring, the locking pin 30 needs to be separated from the corresponding limit seat 18 and pin hole 31, pushing the arc frame 9 to slide. The arc frame 9 will slide along the internal arc trajectory outside the limit seat 18. After adjusting it according to the angle of the wiring, insert one end of the locking pin 30 into the corresponding angle pin hole 31 inside the arc frame 9, and screw the other end into the limit seat 18 to lock the position of the arc frame 9. At this time, the arc frame 9 and the I-shaped frame 1 can be parallel to each other on one side of the inclined wiring, and then the final wiring work can be completed.
[0049] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed invention.
Claims
1. A device for fixing an insulating rod with a live fast-connecting current-carrying clamp, comprising an I-beam frame (1), characterized in that: A crossbar (5) is fixedly installed inside the I-beam frame (1). A plug rod (6) is movably inserted into the upper part of the I-beam frame (1). A sleeve rod (20) is fixedly connected to the lower end of the plug rod (6). An insulating shell (21) is fixedly connected to the upper part of the sleeve rod (20). A wire clamp (22) is slidably sleeved on the outside of the sleeve rod (20) and below the insulating shell (21). A wiring assembly is provided inside the lower part of the I-beam frame (1). Two sets of grooves are correspondingly opened inside the wire clamp (22). Inside the trough, there are stripped drainage lines (10) and cables (11). The rear end of the I-shaped frame (1) is fixedly installed with a fixed column (28). The fixed column (28) is connected to an arc frame (9) through a set bracket. The arc frame (9) is equipped with a sliding adjustment mechanism. The outer wall of the sliding adjustment mechanism is fixedly installed with a connecting column (17). An insulating connecting rod (15) is sleeved on the outside of the connecting column (17). A stabilizing rod (16) is fixedly sleeved on the lower part of the insulating connecting rod (15).
2. The insulating rod energized fast-connecting current-carrying clamp fixing device according to claim 1, characterized in that, The wiring assembly includes an electric push rod (2) fitted inside the lower part of the I-shaped frame (1). A telescopic clamp (7) is fixedly installed on the telescopic end of the electric push rod (2). A sliding cavity is opened inside the telescopic clamp (7) to allow the matching rod (20) to slide in and out. A stop rod (25) is symmetrically installed on the upper end of the telescopic clamp (7). One end of the stop rod (25) is in contact with the lower surface of the wire clamp (22).
3. The insulating rod energized quick-connect current-leading wire fixing device according to claim 1, characterized in that, The mounting components include diagonal rods (12) fixedly installed on both sides of the fixed column (28). The upper surfaces of both sides of the arc frame (9) are fixedly installed with clamping rods (32). The ends of the two diagonal rods (12) away from the fixed column (28) are fitted onto the outside of the clamping rods (32).
4. The insulating rod energized quick-connect current-leading wire clamp fixing device according to claim 1, characterized in that, The sliding mechanism includes a limiting seat (18) set inside the arc frame (9). The arc frame (9) slides outside the limiting seat (18) through an arc-shaped slide. One end of the connecting column (17) is fixedly installed on the outer wall of the limiting seat (18). The inner surface of the arc frame (9) is provided with pin holes (31) at equal intervals along the arc. A locking pin (30) is movably inserted inside one set of the pin holes (31). One end of the locking pin (30) is threaded through the inside of the limiting seat (18).
5. The insulating rod energized quick-connect current-leading wire clamp fixing device according to claim 1, characterized in that, The inner rear end of the I-shaped frame (1) is fixedly installed with a second bidirectional push rod (29). Both ends of the second bidirectional push rod (29) are fixedly installed with guide rods (13). Both ends of the guide rods (13) are slidably fitted with sliding clips (14). The two sliding clips (14) are connected to each other and located at the front end of the second bidirectional push rod (29) through a first bidirectional push rod (3) that is commonly set.
6. The insulating rod energized quick-connect current-leading wire clamp fixing device according to claim 5, characterized in that, The guide rod (4) is slidably inserted inside the sliding clamp (14). A movable plate (8) is fixedly connected to one end of the guide rod (4) that is close to each other. A trapezoidal card seat (26) is fixedly connected to the outer surface of the movable plate (8) that is close to each other. A stabilizing slide bar (27) is fixedly connected to the outer surface of the trapezoidal card seat (26) that is close to each other. A spring (24) is fitted on the outside of the guide rod (4).
7. The insulating rod energized quick-connect current-leading wire clamp fixing device according to claim 6, characterized in that, Two of the line-stabilizing sliders (27) are provided with staggered mounting rods (34) on the outer side of their respective sides. A silicone frame (35) is fixedly installed on the lower outer side of the end of the mounting rod (34) away from the line-stabilizing slider (27). A wiping cotton (33) is installed inside the silicone frame (35).
8. The insulating rod energized quick-connect current-leading wire clamp fixing device according to claim 1, characterized in that, The upper surface of the I-shaped frame (1) is symmetrically equipped with clamping plates (23), one of the clamping plates (23) has a threaded pin (19) inserted inside, and one end of the pin (19) is inserted through the insertion rod (6).