Bypass cable drainage wire

By designing a bypass cable lead-out line that includes a reel, roller, connecting components, and clamping components, the problems of existing equipment being unable to adjust the length and having unstable connections are solved, achieving flexible adjustment and safe connection, and improving the stability and safety of power transmission.

CN223625369UActive Publication Date: 2025-12-02WUHAN CREDIT ELECTRIC POWER TECH
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Patent Information

Application Number
CN202520244566.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2025-12-02
Estimated Expiration
2035-02-17

AI Technical Summary

Technical Problem

Existing bypass diversion line equipment cannot adjust the length according to the wiring distance during wiring, and the connection is not firm, which poses the risk of circuit interference and leakage.

Method used

A bypass cable guide wire including a spool, a winding roller, a connecting component, a clamping component, and an anti-loosening component was designed. Through the cooperation of a motor and a lead screw, the winding and unwinding of the cable are realized, ensuring length adjustment and a secure connection.

Benefits of technology

It enables flexible adjustment of the drain wire length, avoids grounding, ensures the robustness and safety of the connection, and improves the stability and safety of power transmission.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a bypass cable drainage wire which comprises a wire coil and a winding roller, a connecting assembly is installed on the outer side of the wire coil, the connecting assembly comprises a first connecting plate and a second connecting plate, a rotating assembly is installed on the wire coil, the rotating assembly comprises a first motor and a conductive slip ring, a drainage assembly is installed on the wire coil, and the drainage assembly comprises a second motor and a conductive slip ring. According to the bypass cable drainage wire, the length of the drainage wire can be adjusted according to the distance of the power connection position, the adaptability of the drainage wire is improved, and the drainage wire is convenient to use. The clamping force of the movable plate to a wire can be effectively guaranteed by using the elastic force of the spring, the infirm fixation caused by insufficient clamping force is avoided, the wire damage caused by overlarge clamping force is avoided, the quick and safe clamping and fixing work with the wire is guaranteed, and the device is suitable for the bypass drainage operation of a circuit.
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Description

Technical Field

[0001] This utility model relates to the technical field of bypass drain line equipment, specifically a bypass cable drain line. Background Technology

[0002] When a circuit fails, a bypass line is often needed to transmit power, reducing the duration and extent of power outages and ensuring the stability of the power supply system. Utility model patent application CN202220023431.X discloses a multifunctional rigid bypass line device. It utilizes clamping fasteners on two vertical insulating support rods to fix the line to crossarms of different widths. A conduit support is located in the middle of each vertical insulating support rod, which can be used to fix and install horizontally insulated rigid conduits spanning both sides of the utility pole. Multi-core copper wires pass through the inner cavity of the horizontally insulated rigid conduit, allowing for the installation of multi-core copper wires. The drain wire acts as a rigid support, preventing the flexible multi-core copper drain wire from drooping close to or contacting the crossarm. This eliminates the need for drain wire shielding and avoids potential hazards such as circuit interference and leakage, making power grid maintenance and construction work more standardized and safer. According to its publicly available technical solutions, existing bypass drain wire equipment often has two problems when in use. First, during wiring work, the length of the drain wire cannot be adjusted according to the distance between the two ends to be connected, which can easily result in the drain wire being too long or too short to be used. Second, during connection work, it is often difficult to quickly ensure the connection and the firmness of the connection point.

[0003] Therefore, how to design the bypass cable diversion line has become a problem we need to solve. Utility Model Content

[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a bypass cable lead-in line to solve the problems mentioned in the background technology. This utility model is reasonably designed, convenient to use, and suitable for bypass lead-in operations in circuits.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a bypass cable guide wire, comprising a wire reel and a winding roller, a connecting assembly mounted on the outer side of the wire reel, the connecting assembly comprising a connecting plate one and a connecting plate two, a rotating assembly mounted on the wire reel, the rotating assembly comprising a motor one and a conductive slip ring, a guide assembly mounted on the wire reel, the guide assembly comprising a conductor and a winding wire, clamping assemblies mounted on both the connecting plate one and the connecting plate two, the clamping assemblies comprising clamping plates and sliding rods, pressing assemblies mounted on both the connecting plate one and the connecting plate two, the pressing assemblies comprising a motor two and a lead screw, and an anti-loosening assembly mounted on the clamping plates, the anti-loosening assembly comprising a hinged plate and a button.

[0006] Furthermore, the first connecting plate is welded to the top of the reel via a support plate, and the second connecting plate is disposed on one side of the reel. Guide plates are welded to the top of both the first and second connecting plates, and rubber sleeves are adhered to the outer sides of the guide plates.

[0007] Furthermore, both ends of the roller are mounted on the inner side of the reel via rotating shafts, the motor is mounted on the outer side of the reel via bolts, the output shaft of the motor passes through the reel and is connected to the roller key, and the conductive slip ring is mounted on the inner side of the roller.

[0008] Furthermore, one end of the winding thread passes through the winding roller and is connected to the outside of the conductive slip ring, the other end of the winding thread is wound around the inside of the spool and connected to the guide plate on the second connecting plate, one end of the conductor is connected to the guide plate on the first connecting plate, and the other end of the conductor passes through the spool and is connected to the inside of the conductive slip ring.

[0009] Furthermore, there are two clamping plates and two motors. The two clamping plates are respectively installed on the top of the connecting plate one and the connecting plate two, and the two motors are respectively installed on the bottom of the connecting plate one and the connecting plate two by bolts.

[0010] Furthermore, the bottom end of the lead screw is keyed to the output shaft of the second motor. The bottom end of the lead screw passes through the connecting plate one or the connecting plate two through a bearing and is threaded onto the inner side of the clamping plate. The bottom end of the slide rod is welded to the connecting plate one and the connecting plate two respectively. The top end of the slide rod passes through the clamping plate and extends to the top of the clamping plate.

[0011] Furthermore, a slot is provided on the inner side of the clamping plate, and the top of the flap is locked inside the slot. The top of the flap is connected to the inner wall of the slot by a spring.

[0012] Furthermore, the button is mounted on the inner wall of the top of the slot by bolts, and the button is connected to the motor by wires. The button is a normally open push-button switch.

[0013] Beneficial effects: 1. After the wire connection is completed, the bypass cable guide wire is turned on. The motor drives the winding roller to wind the wire into the inside of the reel until the wire is tightened, preventing the wire from falling to the ground. This allows the length of the guide wire to be adjusted according to the distance of the connection point, improving the adaptability of the guide wire and preventing it from falling to the ground, thus ensuring the safety of the guide wire in operation.

[0014] 2. When using this bypass cable guide, the cable reel is pulled out by connecting plate two until connecting plates one and two can be smoothly connected to the connection point of the bypass cable guide. Connecting plates one and two are then placed on the outside of the wire using clamps. Motor two is then turned on, and motor two pushes the clamps downwards via a lead screw. The clamps move downwards under the limit of the sliding rod until the wire is clamped and fixed to the guide plate. The flap is clamped at the top of the wire, causing the flap compression spring to move inwards towards the clamp until the flap presses the button, at which point motor two stops working. This effectively utilizes the spring force to ensure the clamping force of the flap on the wire, avoiding insecure fixing due to insufficient clamping force and wire damage due to excessive clamping force, ensuring quick and safe clamping and fixing of the wire.

[0015] 3. The bypass cable is reasonably designed and is efficient and convenient to use, making it suitable for bypassing circuits. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the structure of a bypass cable lead wire according to the present invention;

[0017] Figure 2 This is a cross-sectional view of a bypass cable lead wire according to the present invention;

[0018] Figure 3 This is a schematic diagram of the structure of a clamp for a bypass cable lead wire according to the present invention;

[0019] In the diagram: 1. Wire reel; 2. Winding roller; 3. Connecting plate one; 4. Connecting plate two; 5. Guide plate; 6. Rubber sleeve; 7. Wire conductor; 8. Winding wire; 9. Motor one; 10. Conductive slip ring; 11. Clamping plate; 12. Motor two; 13. Lead screw; 14. Sliding rod; 15. Hatch plate; 16. Spring; 17. Button. Detailed Implementation

[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0021] Please see Figures 1 to 3This utility model provides a technical solution: a bypass cable guide wire, including a wire reel 1 and a winding roller 2. A connecting assembly is installed on the outer side of the wire reel 1, the connecting assembly including a connecting plate 3 and a connecting plate 4. A rotating assembly is installed on the wire reel 1, the rotating assembly including a motor 9 and a conductive slip ring 10. A guide assembly is installed on the wire reel 1, the guide assembly including a wire 7 and a winding 8. Clamping assemblies are installed on both the connecting plate 3 and the connecting plate 4, the clamping assemblies including a clamping plate 11 and a sliding rod 14. Compression assemblies are installed on both the connecting plate 3 and the connecting plate 4, the compression assemblies including a motor 12 and a lead screw 13. An anti-loosening assembly is installed on the clamping plate 11, the anti-loosening assembly including a hinged plate 15 and a button 17. The connecting plate 3 is welded to the top of the wire reel 1 via a support plate. The connecting plate 4 is located on one side of the wire reel 1. Guide plates 5 are welded to the top of both the connecting plate 3 and the connecting plate 4. A rubber sleeve 6 is bonded to the outer side of the guide plate 5. Both ends of the winding roller 2 are mounted on the inner side of the reel 1 via rotating shafts. The motor 9 is mounted on the outer side of the reel 1 via bolts. The output shaft of the motor 9 passes through the reel 1 and is keyed to the winding roller 2. The conductive slip ring 10 is mounted on the inner side of the winding roller 2. There are two clamping plates 11 and two motors 12. The two clamping plates 11 are respectively mounted on the top of the connecting plate 3 and the connecting plate 4. The two motors 12 are respectively mounted on the bottom of the connecting plate 3 and the connecting plate 4 via bolts. After the wire connection is completed, the motor 9 is turned on. The motor 9 drives the winding wire 8 to be wound to the inner side of the reel 1 via the winding roller 2 until the winding wire 8 is tightened, preventing the winding wire 8 from falling to the ground. This allows the length of the guide wire to be adjusted according to the distance of the connection point, improving the adaptability of the guide wire and preventing the guide wire from falling to the ground, thus ensuring the working safety of the guide wire.

[0022] In this embodiment, one end of the winding 8 passes through the winding roller 2 and is connected to the outside of the conductive slip ring 10. The other end of the winding 8 is wound around the inside of the reel 1 and connected to the guide plate 5 on the connecting plate 2. One end of the wire 7 is connected to the guide plate 5 on the connecting plate 1. The other end of the wire 7 passes through the reel 1 and is connected to the inside of the conductive slip ring 10. The bottom end of the lead screw 13 is keyed to the output shaft of the motor 2. The bottom end of the lead screw 13 passes through the connecting plate 1 or the connecting plate 2 through a bearing and is threaded onto the inside of the clamping plate 11. The bottom end of the sliding rod 14 is welded to the connecting plate 1 and the connecting plate 2, respectively. The top end of the sliding rod 14 passes through the clamping plate 11 and extends to the top of the clamping plate 11. A slot is provided on the inside of the clamping plate 11. The top of the hinged plate 15 is locked inside the slot. The top of the hinged plate 15 is connected to the inner wall of the slot by a spring 16. The button 17 is bolted to the inner wall of the top of the slot. The button 17 is connected to the inner wall of the slot by an electric wire. Connected to motor 2 12, button 17 is a normally open push-button switch. In use, the winding cable 8 is pulled out of the reel 1 by connecting plate 2 4 until connecting plate 1 3 and connecting plate 2 4 can be smoothly connected to the connection point of the bypass cable. Connecting plate 1 3 and connecting plate 2 4 are then placed on the outside of the wire through clamp 11. Motor 2 12 is turned on, and motor 2 12 pushes clamp 11 downward through lead screw 13. Clamp 11 moves downward under the limit of slide rod 14. The motor moves until the wire is clamped and fixed to the guide plate 5. The flap 15 is clamped on the top of the wire, and the flap 15 compresses the spring 16 and moves inward to the clamping plate 11 until the flap 15 presses the button 17, and the motor 12 stops working. This can effectively use the elasticity of the spring 16 to ensure the clamping force of the flap 15 on the wire, and avoid the fixation being unstable due to insufficient clamping force and the wire being damaged due to excessive clamping force, thus ensuring the fast and safe clamping and fixing of the wire.

[0023] The bypass cable provides power to all electrical equipment via an external power source. In use, the winding cable 8 is pulled out of the reel 1 by connecting plate 2 4 until connecting plates 1 3 and 2 4 can be smoothly connected to the connection point of the bypass cable. Connecting plates 1 3 and 2 4 are then placed on the outside of the wire using clamp 11. Motor 2 12 is then turned on, and motor 2 12 pushes clamp 11 downwards via screw 13. Clamp 11 moves downwards under the limit of slide rod 14 until the wire is securely locked to guide plate 5. The flap 15 is then locked at the top of the wire, causing the flap 15 to compress spring 16 and move inwards towards clamp 11 until the flap 15 presses the button. 17. When motor 12 stops working, the elasticity of spring 16 can effectively ensure the clamping force of the flap 15 on the wire, and avoid the insecure fixation due to insufficient clamping force or the damage to the wire due to excessive clamping force. This ensures quick and safe clamping and fixing of the wire. After the wire connection is completed, motor 9 is turned on. Motor 9 drives the winding 8 to be wound into the inner side of the spool 1 through the winding roller 2 until the winding 8 is tightened, preventing the winding 8 from falling to the ground. This allows the length of the guide wire to be adjusted according to the distance of the connection point, improving the adaptability of the guide wire, while preventing the guide wire from falling to the ground, ensuring the working safety of the guide wire.

[0024] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A bypass cable guide wire, comprising a reel (1) and a winding roller (2), wherein a connecting assembly is mounted on the outer side of the reel (1), the connecting assembly comprising a connecting plate one (3) and a connecting plate two (4), characterized in that: A rotating assembly is installed on the coil (1), the rotating assembly including a motor (9) and a conductive slip ring (10). A flow guiding assembly is installed on the coil (1), the flow guiding assembly including a wire (7) and a winding (8). Clamping assemblies are installed on both the connecting plate (3) and the connecting plate (4), the clamping assemblies including a clamping plate (11) and a sliding rod (14). Extrusion assemblies are installed on both the connecting plate (3) and the connecting plate (4), the extrusion assemblies including a motor (12) and a lead screw (13). An anti-loosening assembly is installed on the clamping plate (11), the anti-loosening assembly including a flap (15) and a button (17).

2. The bypass cable lead wire according to claim 1, characterized in that: The first connecting plate (3) is welded to the top of the coil (1) via a support plate. The second connecting plate (4) is located on one side of the coil (1). The top of both the first connecting plate (3) and the second connecting plate (4) is welded with a guide plate (5). A rubber sleeve (6) is glued to the outer side of the guide plate (5).

3. A bypass cable lead wire according to claim 2, characterized in that: Both ends of the roller (2) are mounted on the inner side of the reel (1) via a rotating shaft. The motor (9) is mounted on the outer side of the reel (1) via bolts. The output shaft of the motor (9) passes through the reel (1) and is keyed to the roller (2). The conductive slip ring (10) is mounted on the inner side of the roller (2).

4. A bypass cable lead wire according to claim 3, characterized in that: One end of the winding (8) passes through the winding roller (2) and is connected to the outside of the conductive slip ring (10). The other end of the winding (8) is wound around the inside of the spool (1) and connected to the guide plate (5) on the connecting plate (4). One end of the wire (7) is connected to the guide plate (5) on the connecting plate (3). The other end of the wire (7) passes through the spool (1) and is connected to the inside of the conductive slip ring (10).

5. A bypass cable lead wire according to claim 1, characterized in that: The number of clamping plates (11) and motors (12) are two. The two clamping plates (11) are respectively installed on the top of connecting plate one (3) and connecting plate two (4), and the two motors (12) are respectively installed on the bottom of connecting plate one (3) and connecting plate two (4) by bolts.

6. A bypass cable lead wire according to claim 5, characterized in that: The bottom end of the lead screw (13) is keyed to the output shaft of the second motor (12). The bottom end of the lead screw (13) passes through the connecting plate one (3) or the connecting plate two (4) through a bearing and is threaded onto the inner side of the clamping plate (11). The bottom end of the slide rod (14) is welded to the connecting plate one (3) and the connecting plate two (4) respectively. The top end of the slide rod (14) passes through the clamping plate (11) and extends to the top of the clamping plate (11).

7. A bypass cable lead wire according to claim 6, characterized in that: The clamp (11) has a slot on its inner side, and the top of the flap (15) is locked inside the slot. The top of the flap (15) is connected to the inner wall of the slot by a spring (16).

8. A bypass cable lead wire according to claim 7, characterized in that: The button (17) is mounted on the inner wall of the top of the slot by bolts. The button (17) is connected to the motor (12) by wires. The button (17) is a normally open button switch.

Citation Information

Patent Citations

  • Multifunctional hard bypass drainage wire device

    CN217362342U