Electric power engineering threading equipment

By using a drive motor to rotate the winding disc on the rotating rod and the intermittent frame plate design, an instantaneous impact force is generated to push away foreign objects in the pipe. The worm gear ring plate and cleaning brush structure are used to clean the sludge, which solves the problems of difficult threading and complicated cleaning in traditional threading equipment, and improves efficiency and cleaning effect.

CN121863249APending Publication Date: 2026-04-14YANTAI YUANYUAN ELECTRIC POWER ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
YANTAI YUANYUAN ELECTRIC POWER ENG CO LTD
Filing Date
2026-01-14
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Traditional wire threading equipment often makes it difficult to thread wires due to the weak impact force at the wire end during the wire release process. Furthermore, after the wire is retrieved, dirt and impurities easily adhere to the lead wire, increasing the complexity of cleaning and labor costs.

Method used

The system uses a drive motor to rotate the winding disc on the rotating rod. Combined with the design of intermittent frame plates and guide rollers, it generates an instantaneous impact force to push away foreign objects in the pipe. The sludge and impurities are then cleaned through a worm gear ring plate and a cleaning brush structure.

Benefits of technology

It improves threading efficiency, effectively pushes away foreign objects in the pipe, enhances the cleaning effect of the lead wire, and extends the service life of the lead wire.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses electric power engineering threading equipment, and relates to the technical field of threading equipment. Comprising an equipment bottom plate, symmetrically-arranged side plates are fixedly installed on the equipment bottom plate, driving motors are fixedly installed on the side plates, rotating rods are fixedly installed at the output ends of the driving motors, wire spools are fixedly installed on the rotating rods, and a square frame is fixedly installed on the equipment bottom plate and located on one sides of the side plates. A guide assembly is arranged on the square frame; a connecting rod is fixedly installed on the side end face of the square frame, and a guide block is fixedly installed on the connecting rod. According to the invention, through cooperative use of the guide assembly and the auxiliary assembly, efficient pay-off and cleaning mechanisms and flexible adjustment functions of the threading equipment are realized, the efficiency and reliability of a lead wire passing through a pipeline are significantly improved, impurities are effectively removed, the fault risk is reduced, the smooth proceeding of a project is ensured, and the use effect of the threading equipment is greatly improved.
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Description

Technical Field

[0001] This invention relates to the field of wiring equipment technology, specifically to a wiring equipment for power engineering. Background Technology

[0002] In urban power engineering construction, in order to run cables through conduits, a cable pulling device is used to pass the fiberglass wire through the conduit. Then, the fiberglass wire end of the cable pulling device is connected to the cable, and the fiberglass wire is pulled out to pull the cable into the conduit.

[0003] Currently, some wire threading equipment relies primarily on the continuous rotation of the winding reel during the wire feeding process to effectively thread the lead wire into the pipe. However, this traditional method has some drawbacks in practical applications. Due to the continuous wire feeding method, the impact force generated at the end of the lead wire is relatively small. When the lead wire encounters obstacles in the pipe, it often leads to threading difficulties or even jamming, thus affecting overall work efficiency. Furthermore, after threading, when retracting the lead wire, sludge and impurities from the pipe easily adhere to it. This not only increases the complexity of cleaning work but also requires operators to spend a significant amount of time and effort on manual cleaning, resulting in additional labor costs and resource waste. Summary of the Invention

[0004] To address the shortcomings of existing technologies, this invention provides a wiring device for power engineering, which solves the problems mentioned in the background section.

[0005] To achieve the above objectives, the present invention provides the following technical solution: A power engineering wiring device includes a base plate, symmetrically arranged side plates fixedly installed on the base plate, a drive motor fixedly installed on the side plates, a rotating rod fixedly installed at the output end of the drive motor, a winding reel fixedly installed on the rotating rod, and a square frame fixedly installed on the base plate and on one side of the side plates, with a guide component provided on the square frame. A connecting rod is fixedly installed on the side end face of the square frame, a guide block is fixedly installed on the connecting rod, an installation rod is fixedly installed on the side end face of the guide block, and an auxiliary component is provided on the installation rod.

[0006] Preferably, the guiding assembly includes a drive sprocket fixedly mounted on a rotating rod, an upper rotating rod and a lower rotating rod symmetrically arranged are rotatably mounted on the square frame, an intermittent frame plate is fixedly mounted on the upper rotating rod and the lower rotating rod, and a symmetrically arranged main drive column is fixedly mounted on the side end face of the intermittent frame plate.

[0007] Preferably, symmetrically arranged guide rods are rotatably mounted on the inner side of the square frame. A drive gear and a guide roller are fixedly mounted on the guide rods. An upper gear and a lower gear are fixedly mounted on the upper rod and the lower rod, respectively. A driven sprocket is fixedly mounted on the upper rod and outside the upper gear.

[0008] Preferably, the drive sprocket is driven by a chain and the driven sprocket, the main drive column is intermittently meshed with the drive gear, the upper gear is meshed with the lower gear, and the guide roller is positioned inside the drive gear. The intermittent rotation of the two guide rollers generates an instantaneous impact force on the lead wire.

[0009] Preferably, both the upper and lower rotating rods are fixedly mounted with mounting rings, and a bidirectional push rod is fixedly mounted on the mounting ring. The output shafts of the bidirectional push rods are fixedly mounted with polygonal bracket plates, and toothed plates are fixedly mounted on the polygonal bracket plates. An adjusting shaft is rotatably mounted inside the intermittent bracket plate, and a connecting bracket plate and an adjusting gear are fixedly mounted on the adjusting shaft. An adjusting vertical plate is fixedly mounted on the connecting bracket plate, and a drive column is fixedly mounted on the adjusting vertical plate.

[0010] Preferably, the polygonal frame plate is slidably mounted on the upper rotating rod, the toothed plate meshes with the adjusting gear, and the adjusting gear is located inside the connecting frame plate.

[0011] Preferably, the auxiliary component includes an auxiliary frame plate fixedly mounted on a mounting rod, a worm gear ring plate rotatably mounted on the auxiliary frame plate, a connecting component provided on the outer side of the worm gear ring plate, a cleaning ring provided on the connecting component, cleaning bristles fixedly mounted on the inner side of the cleaning ring, a first sprocket fixedly mounted on the lower rotating rod, symmetrically arranged upright plates fixedly mounted on the equipment base plate, an auxiliary worm fixedly mounted on the upright plates, and a second sprocket fixedly mounted on the auxiliary worm.

[0012] Preferably, the worm gear ring plate meshes with the auxiliary worm, the first sprocket is driven by the second sprocket via a chain, and the auxiliary frame plate is located outside the guide block and is on the same horizontal plane as the guide block.

[0013] Preferably, the connecting assembly includes an auxiliary crossbar fixedly mounted on the worm gear ring plate, an auxiliary crossbar having an auxiliary cross groove, an auxiliary connecting rod slidably mounted on the auxiliary cross groove, an auxiliary turntable fixedly mounted on the outer side of the auxiliary worm, a first rotating shaft fixedly mounted on the auxiliary turntable, an auxiliary connecting rod rotatably mounted on the first rotating shaft, an auxiliary connecting block fixedly mounted on the upright plate, a stabilizing slide rod fixedly mounted on the auxiliary connecting block, a pushing slide slidably mounted on the stabilizing slide rod, an L-shaped frame plate fixedly mounted on the outer side of the pushing slide, and a second rotating shaft fixedly mounted on the side end face of the L-shaped frame plate.

[0014] Preferably, the end of the auxiliary connecting rod away from the auxiliary transverse groove is fixedly installed with the cleaning ring, the end of the auxiliary connecting rod away from the first rotating shaft is installed and connected with the second rotating shaft, the cleaning ring is rotatably installed on the push slide, and the auxiliary turntable is located on the outside of the vertical plate.

[0015] This invention provides a wiring device for power engineering. Compared with the prior art, it has the following advantages: 1. This invention uses a drive motor to rotate the winding disc on the rotating rod, thereby enabling the wire feeding function. During the feeding process, the wire passes sequentially between the guide block and two guide rollers. Simultaneously, when the rotating rod rotates, it drives the drive sprocket to rotate. The drive sprocket, in turn, drives the driven sprocket to rotate via a chain. The driven sprocket, in turn, drives the upper gear on the upper rotating rod to rotate. Through the meshing of the upper and lower gears, the lower rotating rod on the lower gear rotates synchronously. When the upper and lower rotating rods rotate, they synchronously drive the intermittent frame plate to rotate. Then, through the cooperation of the main drive column on the intermittent frame plate and the drive gears on the two guide rotating rods, the guide rollers on the two guide rotating rods rotate intermittently. Through the intermittent rotation of the guide rollers, the wire generates an instantaneous impact force, which facilitates the pushing away of foreign objects blocking the pipe, avoiding obstruction by foreign objects, and effectively improving the wire feeding effect of the power engineering. 2. In this invention, a bidirectional push rod drives a polygonal frame plate to move horizontally, and the toothed plate on the polygonal frame plate moves synchronously. By utilizing the meshing of the toothed plate and the adjusting gear, the adjusting gear drives the adjusting vertical plate on the connecting frame plate to move synchronously via the adjusting shaft. By adjusting the cooperation between the driven column and the main driven column on the vertical plate, the frequency of the intermittent rotation of the guide roller can be effectively increased. Through this structure, the impact force generated by the lead wire can be effectively improved, greatly enhancing the ability to push away foreign objects in the pipe and improving the effectiveness of the equipment. 3. In this invention, when the rotating rod rotates, it drives the first sprocket to rotate. The first sprocket drives the second sprocket to rotate via a chain. When the second sprocket rotates, it drives the auxiliary worm gear to rotate on the two vertical plates. By utilizing the cooperation between the auxiliary worm gear and the worm wheel ring plate, the worm wheel ring plate rotates on the auxiliary frame plate. Then, by utilizing the connection of the connecting components, the cleaning brush bristles on the cleaning ring are driven to rotate around the auxiliary frame plate. Through this structure, during the winding process of the wire threading device, the sludge and impurities on the lead wire can be effectively cleaned, effectively improving the service life of the lead wire.

[0016] 4. In this invention, when the auxiliary worm gear rotates, it synchronously drives the auxiliary turntable to rotate. The first rotating shaft on the auxiliary turntable drives the auxiliary connecting rod to move. Then, through the cooperation of the auxiliary connecting rod and the second rotating shaft, the cooperation of the second rotating shaft and the L-shaped frame plate on the push carriage, and the limiting of the push carriage and the stabilizing slide rod, the push carriage is driven to move. During the movement, the push carriage is limited by the auxiliary connecting rod and the auxiliary transverse groove, thereby driving the cleaning ring to perform horizontal reciprocating motion without affecting the rotation of the cleaning ring. Through the movement of the cleaning ring, the cleaning effect of the lead wire is greatly improved, further enhancing the use effect of the threading device. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the structure of the guiding component in this invention; Figure 3 This is a schematic diagram of the intermittent frame plate in this invention; Figure 4 This is a schematic diagram of the adjusting vertical plate in this invention; Figure 5 This is a schematic diagram of the toothed plate in this invention; Figure 6 This is a schematic diagram of the auxiliary component in this invention; Figure 7 This is a schematic diagram of the cleaning ring structure in this invention; Figure 8 This is a schematic diagram of the internal structure of the auxiliary crossbar in this invention.

[0018] In the diagram: 1. Equipment base plate; 2. Side plate; 3. Drive motor; 4. Rotating rod; 5. Winding reel; 6. Square frame; 7. Connecting rod; 8. Guide block; 9. Mounting rod; 10. Drive sprocket; 11. Upper rotating rod; 12. Lower rotating rod; 13. Intermittent frame plate; 14. Main drive column; 15. Guide rotating rod; 16. Drive gear; 17. Guide roller; 18. Upper gear; 19. Lower gear; 20. Driven sprocket; 21. Mounting ring; 22. Bidirectional push rod; 23. Multi-angle frame plate; 24. Toothed plate; 25. Adjusting shaft; 6. Connecting frame plate; 27. Adjusting gear; 28. Adjusting vertical plate; 29. ​​Drive column; 30. Auxiliary frame plate; 31. Worm gear ring plate; 32. Cleaning ring; 33. Cleaning brush bristles; 34. First sprocket; 35. Vertical plate; 36. Auxiliary worm gear; 37. Second sprocket; 38. Auxiliary turntable; 39. First rotating shaft; 40. Auxiliary connecting rod; 41. Auxiliary connecting block; 42. Stabilizing slide bar; 43. Push slide; 44. L-shaped frame plate; 45. Second rotating shaft; 46. Auxiliary crossbar; 47. Auxiliary cross groove; 48. Auxiliary connecting rod. Detailed Implementation

[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0020] Please see Figures 1-8 This invention relates to a wiring device for power engineering, comprising a base plate 1, symmetrically arranged side plates 2 fixedly mounted on the base plate 1, a drive motor 3 fixedly mounted on the side plates 2, a rotating rod 4 fixedly mounted on the output end of the drive motor 3, a winding reel 5 fixedly mounted on the rotating rod 4, a square frame 6 fixedly mounted on the base plate 1 and on one side of the side plates 2, a guide assembly provided on the square frame 6, the guide assembly including a drive sprocket 10 fixedly mounted on the rotating rod 4, symmetrically arranged upper rotating rods 11 and lower rotating rods 12 rotatably mounted on the square frame 6, intermittent support plates 13 fixedly mounted on both the upper rotating rods 11 and lower rotating rods 12, symmetrically arranged main drive columns 14 fixedly mounted on the side end face of the intermittent support plates 13, and symmetrically arranged guide rotating rods 15 rotatably mounted on the inner side of the square frame 6. A drive gear 16 and a guide roller 17 are fixedly mounted on the upper part of the device. An upper gear 18 and a lower gear 19 are fixedly mounted on the upper rotating rod 11 and the lower rotating rod 12, respectively. A driven sprocket 20 is fixedly mounted on the upper rotating rod 11 outside the upper gear 18. The drive sprocket 10 is driven by the driven sprocket 20 through a chain. The main drive column 14 is intermittently meshed with the drive gear 16, and the upper gear 18 is meshed with the lower gear 19. The guide roller 17 is located inside the drive gear 16. The intermittent rotation of the two guide rollers 17 generates an instantaneous impact force on the lead wire. The two guide rollers 17 are arranged symmetrically, and the automatic lead wire feeding function is realized through the transmission effect of the two guide rollers 17. At the same time, a fixed movable wheel is fixedly mounted on the lower end face of the base plate 1 of the device, which allows for easy adjustment of the position of the threading device.

[0021] In this embodiment, the drive motor 3 drives the winding disc 5 on the rotating rod 4 to rotate, realizing the wire feeding function of the lead wire on the winding disc 5. During the wire feeding process, the lead wire passes through the guide block 8 and the two guide rollers 17 in sequence. At the same time, when the rotating rod 4 rotates, it drives the drive sprocket 10 to rotate. When the drive sprocket 10 rotates, it drives the driven sprocket 20 to rotate through the chain. When the driven sprocket 20 rotates, it drives the upper gear 18 on the upper rotating rod 11 to rotate. Utilizing the meshing of the upper gear 18 and the lower gear 19, the lower gear... The lower rotating rod 12 on wheel 19 will rotate synchronously. When the upper rotating rod 11 and the lower rotating rod 12 rotate, they will drive the intermittent frame plate 13 to rotate synchronously. Then, the main drive column 14 on the intermittent frame plate 13 will cooperate with the drive gear 16 on the two guide rotating rods 15, thereby driving the guide rollers 17 on the two guide rotating rods 15 to rotate intermittently. Through the intermittent rotation of the guide rollers 17, the lead wire will generate an instantaneous impact force, which will help push away foreign objects blocking the pipe, avoid obstruction by foreign objects, and effectively improve the wiring effect of the power project.

[0022] Mounting rings 21 are fixedly installed on both the upper rotating rod 11 and the lower rotating rod 12. A bidirectional push rod 22 is fixedly installed on the mounting ring 21. A polygonal frame plate 23 is fixedly installed on the output shaft of the bidirectional push rod 22. A toothed plate 24 is fixedly installed on the polygonal frame plate 23. An adjusting shaft 25 is rotatably installed inside the intermittent frame plate 13. A connecting frame plate 26 and an adjusting gear 27 are fixedly installed on the adjusting shaft 25. An adjusting vertical plate 28 is fixedly installed on the connecting frame plate 26. A drive column 29 is fixedly installed on the adjusting vertical plate 28. The polygonal frame plate 23 is slidably installed on the upper rotating rod 11. The toothed plate 24 meshes with the adjusting gear 27. The adjusting gear 27 is located inside the connecting frame plate 26. The adjusting vertical plate 28 is located inside the intermittent frame plate 13. The drive column 29 and the main drive column 14 are arranged in a ring.

[0023] In this embodiment, the bidirectional push rod 22 drives the polygonal frame plate 23 to move horizontally, and the toothed plate 24 on the polygonal frame plate 23 moves synchronously. By utilizing the meshing of the toothed plate 24 and the adjusting gear 27, the adjusting gear 27 drives the adjusting vertical plate 28 on the connecting frame plate 26 to move synchronously through the adjusting shaft 25. By adjusting the cooperation between the driven column 29 and the main driven column 14 on the adjusting vertical plate 28, the frequency of the intermittent rotation of the guide roller 17 can be effectively increased. Through this structure, the impact force generated by the lead wire can be effectively improved, which greatly improves the ability to push away foreign objects in the pipe and enhances the use effect of the equipment.

[0024] A connecting rod 7 is fixedly installed on the side end face of the square frame 6. A guide block 8 is fixedly installed on the connecting rod 7. An installation rod 9 is fixedly installed on the side end face of the guide block 8. An auxiliary component is provided on the installation rod 9. The auxiliary component includes an auxiliary frame plate 30 fixedly installed on the installation rod 9. A worm gear ring plate 31 is rotatably installed on the auxiliary frame plate 30. A connecting component is provided on the outer side of the worm gear ring plate 31. A cleaning ring 32 is provided on the connecting component. A cleaning brush bristle 33 is fixedly installed on the inner side of the cleaning ring 32. A first sprocket 34 is fixedly installed on the lower rotating rod 12. Symmetrically arranged vertical plates 35 are fixedly installed on the equipment base plate 1. An auxiliary worm 36 is fixedly installed on the vertical plate 35. A second sprocket 37 is fixedly installed on the auxiliary worm 36. The worm gear ring plate 31 meshes with the auxiliary worm 36. The first sprocket 34 is driven by the second sprocket 37 through a chain. The auxiliary frame plate 30 is located outside the guide block 8 and is on the same horizontal plane as the guide block 8.

[0025] In this embodiment, when the rotating rod 12 rotates, it drives the first sprocket 34 to rotate. The first sprocket 34 drives the second sprocket 37 to rotate via a chain. When the second sprocket 37 rotates, it drives the auxiliary worm gear 36 to rotate on the two upright plates 35. With the cooperation of the auxiliary worm gear 36 and the worm wheel ring plate 31, the worm wheel ring plate 31 rotates on the auxiliary frame plate 30. Then, through the connection of the connecting components, the cleaning brush bristles 33 on the cleaning ring 32 are driven to rotate around the auxiliary frame plate 30. Through this structure, during the winding process of the wire threading device, the sludge and impurities on the lead wire can be effectively cleaned, effectively improving the service life of the lead wire.

[0026] The connecting assembly includes an auxiliary crossbar 46 fixedly mounted on the worm gear ring plate 31, an auxiliary crossbar 46 having an auxiliary cross groove 47, an auxiliary connecting rod 48 slidably mounted on the auxiliary cross groove 47, an auxiliary turntable 38 fixedly mounted on the outer side of the auxiliary worm gear 36, a first rotating shaft 39 fixedly mounted on the auxiliary turntable 38, an auxiliary connecting rod 40 rotatably mounted on the first rotating shaft 39, an auxiliary connecting block 41 fixedly mounted on the vertical plate 35, a stabilizing slide rod 42 fixedly mounted on the auxiliary connecting block 41, and a pushing slide slidably mounted on the stabilizing slide rod 42. 43. An L-shaped frame plate 44 is fixedly installed on the outer side of the push carriage 43. A second rotating shaft 45 is fixedly installed on the side end face of the L-shaped frame plate 44. The end of the auxiliary connecting rod 48 away from the auxiliary transverse groove 47 is fixedly installed with the cleaning ring 32. The end of the auxiliary connecting rod 40 away from the first rotating shaft 39 is installed and connected with the second rotating shaft 45. The cleaning ring 32 is rotatably installed on the push carriage 43. The auxiliary turntable 38 is located outside the vertical plate 35. The auxiliary connecting rod 48 can only slide horizontally in the auxiliary transverse groove 47 and cannot rotate.

[0027] In this embodiment, when the auxiliary worm gear 36 rotates, it synchronously drives the auxiliary turntable 38 to rotate. The first rotating shaft 39 on the auxiliary turntable 38 drives the auxiliary connecting rod 40 to move. Then, through the cooperation of the auxiliary connecting rod 40 and the second rotating shaft 45, the cooperation of the second rotating shaft 45 and the L-shaped frame plate 44 on the push slide 43, and the limiting of the push slide 43 and the stabilizing slide rod 42, the push slide 43 is driven to move. During the movement, the push slide 43 is limited by the auxiliary connecting rod 48 and the auxiliary transverse groove 47, thereby driving the cleaning ring 32 to perform horizontal reciprocating motion without affecting the rotation of the cleaning ring 32. Through the movement of the cleaning ring 32, the cleaning effect of the lead wire is greatly improved, further enhancing the use effect of the threading device.

[0028] Working principle: During use, the drive motor 3 drives the winding reel 5 on the rotating rod 4 to rotate, realizing the wire feeding function of the lead wire on the winding reel 5. During the feeding process, the lead wire will pass through the guide block 8 and the two guide rollers 17 in sequence. At the same time, when the rotating rod 4 rotates, it will drive the drive sprocket 10 to rotate. When the drive sprocket 10 rotates, it will drive the driven sprocket 20 to rotate through the chain. When the driven sprocket 20 rotates, it will drive the upper gear 18 on the upper rotating rod 11 to rotate. Utilizing the meshing of the upper gear 18 and the lower gear 19, the lower rotating rod 12 on the lower gear 19 will rotate synchronously. When the upper rotating rod 11 and the lower rotating rod 12 rotate, they will synchronously drive the intermittent frame plate 13 to rotate. Then, the main drive column on the intermittent frame plate 13 will rotate. The drive gear 16 on the two guide rods 15 engages with the drive rod 14, thereby causing the guide rollers 17 on the two guide rods 15 to rotate intermittently. The intermittent rotation of the guide rollers 17 generates a momentary impact force on the lead wire, which helps to push away foreign objects blocking the pipe and prevent obstruction. The bidirectional push rod 22 drives the polygonal frame plate 23 to move horizontally, and the toothed plate 24 on the polygonal frame plate 23 moves synchronously. By using the meshing of the toothed plate 24 with the adjusting gear 27, the adjusting gear 27 drives the adjusting vertical plate 28 on the connecting frame plate 26 to move synchronously through the adjusting shaft 25. By adjusting the engagement between the driven column 29 on the vertical plate 28 and the main drive column 14, the frequency of the intermittent rotation of the guide rollers 17 can be effectively increased. This structure effectively increases the impact force generated by the lead wire, greatly improving the ability to push away foreign objects in the pipe. When the rotating rod 12 rotates, it drives the first sprocket 34 to rotate. The first sprocket 34 drives the second sprocket 37 to rotate via a chain. When the second sprocket 37 rotates, it drives the auxiliary worm gear 36 to rotate on the two vertical plates 35. Utilizing the cooperation between the auxiliary worm gear 36 and the worm wheel ring plate 31, the worm wheel ring plate 31 rotates on the auxiliary frame plate 30. Then, through the connection of the connecting components, the cleaning brush bristles 33 on the cleaning ring 32 are driven to rotate around the auxiliary frame plate 30. Through this structure, during the wire winding process of this wire threading device, the sludge and impurities on the lead wire can be effectively cleaned. When the worm gear 36 rotates, it synchronously drives the auxiliary turntable 38 to rotate. The first rotating shaft 39 on the auxiliary turntable 38 drives the auxiliary connecting rod 40 to move. Then, through the cooperation of the auxiliary connecting rod 40 and the second rotating shaft 45, the cooperation of the second rotating shaft 45 and the L-shaped frame plate 44 on the push slide 43, and the limiting of the push slide 43 and the stabilizing slide rod 42, the push slide 43 is driven to move. During the movement, the push slide 43 is limited by the auxiliary connecting rod 48 and the auxiliary transverse groove 47, so as to drive the cleaning ring 32 to perform horizontal reciprocating motion without affecting the rotation of the cleaning ring 32. Through the movement of the cleaning ring 32, the cleaning effect of the lead wire is greatly improved, and the use effect of the wire threading device is enhanced.

[0029] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0030] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention.

Claims

1. A wiring device for power engineering, comprising a base plate (1), characterized in that: The equipment base plate (1) is fixedly installed with symmetrically arranged side plates (2), the side plates (2) are fixedly installed with drive motors (3), the output end of the drive motors (3) is fixedly installed with rotating rods (4), the rotating rods (4) are fixedly installed with winding discs (5), the equipment base plate (1) and one side of the side plates (2) are fixedly installed with square frames (6), and the square frames (6) are provided with guide components; A connecting rod (7) is fixedly installed on the side end face of the square frame (6), a guide block (8) is fixedly installed on the connecting rod (7), an installation rod (9) is fixedly installed on the side end face of the guide block (8), and an auxiliary component is provided on the installation rod (9).

2. The wiring device for power engineering according to claim 1, characterized in that: The guiding assembly includes a drive sprocket (10) fixedly mounted on a rotating rod (4), and an upper rotating rod (11) and a lower rotating rod (12) symmetrically arranged on the square frame (6). An intermittent frame plate (13) is fixedly mounted on both the upper rotating rod (11) and the lower rotating rod (12), and a symmetrically arranged main drive column (14) is fixedly mounted on the side end face of the intermittent frame plate (13).

3. The wiring device for power engineering according to claim 2, characterized in that: The inner side of the square frame (6) is rotatably mounted with symmetrically arranged guide rods (15). A drive gear (16) and a guide roller (17) are fixedly mounted on the guide rods (15). An upper gear (18) and a lower gear (19) are fixedly mounted on the upper rod (11) and the lower rod (12), respectively. A driven sprocket (20) is fixedly mounted on the upper rod (11) and outside the upper gear (18).

4. The power engineering wiring device according to claim 3, characterized in that: The drive sprocket (10) is driven by the chain and the driven sprocket (20). The main drive column (14) is intermittently meshed with the drive gear (16). The upper gear (18) is meshed with the lower gear (19). The guide roller (17) is located inside the drive gear (16). The intermittent rotation of the two guide rollers (17) causes the lead wire to generate an instantaneous impact force.

5. A power engineering wiring device according to claim 3, characterized in that: Mounting rings (21) are fixedly installed on both the upper rotating rod (11) and the lower rotating rod (12). A bidirectional push rod (22) is fixedly installed on the mounting ring (21). A polygonal frame plate (23) is fixedly installed on the output shaft of the bidirectional push rod (22). A toothed plate (24) is fixedly installed on the polygonal frame plate (23). An adjusting shaft (25) is rotatably installed inside the intermittent frame plate (13). A connecting frame plate (26) and an adjusting gear (27) are fixedly installed on the adjusting shaft (25). An adjusting vertical plate (28) is fixedly installed on the connecting frame plate (26). A drive column (29) is fixedly installed on the adjusting vertical plate (28).

6. The wiring device for power engineering according to claim 5, characterized in that: The polygonal frame plate (23) is slidably mounted on the upper rotating rod (11), and the toothed plate (24) meshes with the adjusting gear (27). The adjusting gear (27) is located inside the connecting frame plate (26).

7. A power engineering wiring device according to claim 5, characterized in that: The auxiliary components include an auxiliary frame plate (30) fixedly mounted on the mounting rod (9), a worm gear ring plate (31) rotatably mounted on the auxiliary frame plate (30), a connecting component provided on the outer side of the worm gear ring plate (31), a cleaning ring (32) provided on the connecting component, a cleaning brush (33) fixedly mounted on the inner side of the cleaning ring (32), a first sprocket (34) fixedly mounted on the lower rotating rod (12), symmetrically arranged upright plates (35) fixedly mounted on the equipment base plate (1), an auxiliary worm (36) fixedly mounted on the upright plate (35), and a second sprocket (37) fixedly mounted on the auxiliary worm (36).

8. A wiring device for power engineering according to claim 7, characterized in that: The worm gear ring plate (31) meshes with the auxiliary worm (36), the first sprocket (34) is driven by the second sprocket (37) through the chain, and the auxiliary frame plate (30) is located outside the guide block (8) and is on the same horizontal plane as the guide block (8).

9. A wiring device for power engineering according to claim 7, characterized in that: The connecting assembly includes an auxiliary crossbar (46) fixedly mounted on the worm gear ring plate (31), an auxiliary crossbar (47) provided on the auxiliary crossbar (46), an auxiliary connecting rod (48) slidably mounted on the auxiliary crossbar (47), an auxiliary turntable (38) fixedly mounted on the outer side of the auxiliary worm (36), a first rotating shaft (39) fixedly mounted on the auxiliary turntable (38), an auxiliary connecting rod (40) rotatably mounted on the first rotating shaft (39), an auxiliary connecting block (41) fixedly mounted on the upright plate (35), a stabilizing slide rod (42) fixedly mounted on the auxiliary connecting block (41), a pushing slide (43) slidably mounted on the stabilizing slide rod (42), an L-shaped frame plate (44) fixedly mounted on the outer side of the pushing slide plate (43), and a second rotating shaft (45) fixedly mounted on the side end face of the L-shaped frame plate (44).

10. A wiring device for power engineering according to claim 9, characterized in that: The auxiliary connecting rod (48) is fixedly installed at one end away from the auxiliary transverse groove (47) and the cleaning ring (32). The auxiliary connecting rod (40) is installed and connected at one end away from the first rotating shaft (39) and the second rotating shaft (45). The cleaning ring (32) is rotatably installed on the push slide (43). The auxiliary turntable (38) is located on the outside of the upright plate (35).