Bypass cable arrangement
By designing movable piercing elements and transmission guide structures in the bypass cable device, rapid connection is achieved in the event of a low-voltage cable fault, solving the problem of limited power supply time of the power supply vehicle, improving repair efficiency and safety, and reducing the impact of power outages.
Patent Information
- Application Number
- CN202411569558.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-05
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2044-11-05
AI Technical Summary
The long repair time for low-voltage cable faults and the limited power supply time of power supply vehicles have led to prolonged power outages that affect residents' lives.
Design a bypass cable device, including a first connecting clamp, a conductor, a switch, a monitoring and control device, and a second connecting clamp. The second connecting clamp is equipped with a movable piercing element, and a transmission structure and a guiding structure are used to achieve quick connection and avoid power outage of the line.
It enables rapid connection without power interruption, improves repair efficiency and safety, reduces power outage time, and is suitable for scenarios such as emergency repairs, temporary power supply, and power grid transformation.
Smart Images

Figure CN119519087B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of power equipment, in particular to a bypass cable device. BACKGROUND
[0002] With the development of economic society, urbanization construction is continuously promoted. In order to make the city beautiful, more and more low-voltage overhead lines are transformed into low-voltage cables.
[0003] Most of the low-voltage cables are placed in the sleeve and then buried underground. Once the low-voltage cable fails, the fault point needs to be found first, then the ground is broken, and then the cable is repaired, and finally the power supply is restored, which takes a long time and has a large amount of work. If the repair time of the low-voltage cable is too long, it will exceed the longest time limit of the power supply vehicle, which will cause a long power outage and affect the daily life of residents.
[0004] In the related art, in order to ensure power supply during the repair stage, a power supply vehicle is used for power supply, but the power supply time of the power supply vehicle is limited, which will affect the daily life. SUMMARY
[0005] The main purpose of the present application is to provide a bypass cable device to solve the problem that the power supply time of the power supply vehicle is limited in the related art, which will affect the daily life.
[0006] In order to achieve the above purpose, according to one aspect of the present application, a bypass cable device is provided, which comprises: a first connecting wire clamp; a wire, a first end of the wire being connected with the first connecting wire clamp; a switch part, arranged on the wire; a monitoring control device, arranged on the wire; a second connecting wire clamp, a second end of the wire being connected with the second connecting wire clamp, the second connecting wire clamp comprising a main body part and a wire fixing part, the wire fixing part being located below the main body part, a wire fixing space being formed between the main body part and the wire fixing part, the main body part comprising a shell, a first driving part and a puncture part, an accommodation space being arranged inside the shell, an avoiding hole being arranged on the side of the shell facing the wire fixing part, the first driving part and the puncture part being arranged in the accommodation space, the puncture part being movably arranged and having a retracted position retracted into the accommodation space and a puncture position penetrating into the wire fixing space through the avoiding hole, the first driving part being capable of driving the puncture part to switch between the puncture position and the retracted position.
[0007] Further, the second connecting wire clamp further comprises a transmission structure and a guide structure, the transmission structure being arranged between the first driving part and the puncture part, the guide structure being arranged in the accommodation space and guiding the puncture part, the extension direction of the guide structure being the same as the direction from the main body part to the wire fixing part.
[0008] Further, the transmission structure comprises a first bevel gear, a second bevel gear and a transmission rod, the transmission rod is rotatably arranged in the accommodating space, the first bevel gear is arranged on the first driving member, the second bevel gear is arranged on the transmission rod, the first bevel gear and the second bevel gear are arranged in meshing mode, a threaded section is arranged on the transmission rod, the puncture member comprises a first connecting plate and a puncture needle, the puncture needle is arranged on the first connecting plate, a threaded hole is arranged on the first connecting plate, the threaded section is in threaded connection with the threaded hole, the first driving member drives the transmission rod to rotate through the first bevel gear and the second bevel gear, and the puncture member is driven to move through the threaded connection of the threaded section and the threaded hole.
[0009] Further, a guide hole is further arranged on the first connecting plate, and the guide structure is arranged in the guide hole.
[0010] Further, the first connecting plate comprises a metal plate, a first insulating plate and a second insulating plate, the first insulating plate and the second insulating plate are arranged on two sides of the metal plate respectively, the metal plate is connected with the wire, the threaded hole is arranged on the first insulating plate, and the guide hole is arranged on the second insulating plate.
[0011] Further, the first connecting plate further comprises a rolling top bead, the rolling top bead is arranged on the second insulating plate and located on the inner wall of the guide hole, and the rolling top bead is rotatably arranged.
[0012] Further, the main body part further comprises a stop structure, the stop structure comprises a first stop pin, a second stop pin and an elastic member, the first stop pin is movably arranged in the side wall of the shell, the second stop pin is arranged on the first stop pin and located in the accommodating space, and the elastic member is arranged between the side wall of the shell and the second stop pin, the stop structure has a stop position and a avoiding position, when the stop structure is in the stop position, the first stop pin can be located above the first connecting plate and stop cooperates with the first connecting plate to keep the puncture member in the puncture position, the second stop pin is located on the side of the first connecting plate and stop cooperates with the side of the first connecting plate, and the elastic member drives the stop structure to keep in the stop position.
[0013] Further, the wire fixing part comprises a base and a second connecting plate, the second connecting plate is connected between the second base and the main body part, and the base is provided with a wire fixing groove.
[0014] Further, the first connecting wire clamp comprises a first clamping arm, a second clamping arm, a connecting arm and a second driving member, the first clamping arm is connected to the connecting arm, the second clamping arm is movably arranged on the connecting arm and arranged correspondingly to the first clamping arm, the second driving member is connected with the connecting arm and drivingly cooperates with the second clamping arm, and the second driving member can drive the second clamping arm to move to adjust the distance between the first clamping arm and the second clamping arm.
[0015] Further, the second clamping arm comprises a first connecting piece, a clamping part and a second connecting piece, the clamping part is connected to the end of the connecting arm away from the first connecting piece through a first pin shaft, the clamping part is connected to the end of the connecting arm away from the second connecting piece through a second pin shaft, the first connecting piece is connected to the connecting arm through a third pin shaft, the second connecting piece is connected through a fourth pin shaft, the fourth pin shaft is located between the third pin shaft and the first clamping arm, an outer protrusion is arranged on the second connecting piece, the outer protrusion is located on the side of the third pin shaft away from the fourth pin shaft, and the outer protrusion is in limiting cooperation with the third pin shaft.
[0016] The technical scheme of the present application is applied, the first end of the wire is connected with the first connecting clamp, the switch piece and the monitoring control device are arranged on the wire. The second connecting clamp is connected with the second end of the wire. The second connecting clamp comprises a main body part and a wire fixing part, and a wire fixing space is formed between the main body part and the wire fixing part. The main body part comprises a shell, a first driving piece and a puncture piece, the puncture piece can be arranged and has a recovery position and a puncture position, and the first driving piece can drive the puncture piece to switch between the puncture position and the recovery position. Through the above arrangement, the movable puncture piece is arranged in the second connecting clamp, the target line can be quickly connected without power-off of the line, and the work efficiency and safety are greatly improved. It is suitable for quickly restoring power supply in various scenes such as emergency repair, temporary power supply and power grid reconstruction, reduces the power-off time, and reduces the influence on production or life. Therefore, the technical scheme of the present application effectively solves the problem that the limited power supply time of the power supply vehicle affects daily life in the related art. BRIEF DESCRIPTION OF DRAWINGS
[0017] The drawings accompanying the specification of the present application form a part thereof, serve to provide further understanding of the present application, and together with the description of the exemplary embodiments of the present application and the explanation thereof, make an explanation of the present application complete, and do not constitute an improper limitation on the present application. In the drawings:
[0018] Figure 1 a layout structure schematic diagram of an embodiment of the bypass cable device according to the present application is shown;
[0019] Figure 2 a perspective structure schematic diagram of the second connecting clamp of the bypass cable device of Figure 1 ;
[0020] Figure 3 a cross-sectional schematic diagram of the second connecting clamp of Figure 2 ;
[0021] Figure 4 a perspective structure schematic diagram of the puncture piece of the second connecting clamp of Figure 2 ;
[0022] Figure 5 a perspective structure schematic diagram of the puncture piece of the second connecting clamp of Figure 2a perspective view of the wire fixing part of the second connecting wire clamp of the bypass cable device of
[0023] Figure 6 a perspective view of the wire fixing part of the second connecting wire clamp of the bypass cable device of Figure 2
[0024] Figure 7 a perspective view of the wire fixing part of the second connecting wire clamp of the bypass cable device of Figure 1
[0025] Figure 8 a perspective view of the wire fixing part of the second connecting wire clamp of the bypass cable device of Figure 7
[0026] Figure 9 a perspective view of the wire fixing part of the second connecting wire clamp of the bypass cable device of Figure 8
[0027] Figure 10 a perspective view of the wire fixing part of the second connecting wire clamp of the bypass cable device of Figure 7
[0028] wherein the above-mentioned drawings include the following reference signs:
[0029] 10, first connecting wire clamp; 11, first clamp arm; 12, second clamp arm; 121, first connecting piece; 122, clamping part; 123, second connecting piece; 1231, outer protruding part; 13, connecting arm; 14, second driving piece;
[0030] 20, wire; 30, switch piece; 40, monitoring control device;
[0031] 50, second connecting wire clamp; 51, main body part; 511, shell; 5111, accommodating space; 5112, avoiding hole; 512, first driving piece; 513, puncture piece; 5131, first connecting plate; 51311, guide hole; 51312, metal plate; 51313, first insulating plate; 51314, second insulating plate; 51315, rolling top bead; 5132, puncture needle; 514, stop structure; 5141, first stop pin; 5142, second stop pin; 5143, elastic piece; 52, wire fixing part; 521, base; 522, second connecting plate; 5221, wire fixing groove; 53, wire fixing space;
[0032] 60, transmission structure; 61, first bevel gear; 62, second bevel gear; 63, transmission rod;
[0033] 70, guide structure; 81, first pin shaft; 82, second pin shaft; 83, third pin shaft; 84, fourth pin shaft. DETAILED DESCRIPTION
[0034] Clearly, the described embodiments are only some, but not all, embodiments of the present application. Various modifications and changes can be made thereto by those skilled in the art which freelyproceed from the concepts disclosed herein without departing from the spirit of the application. It is therefore intended that the disclosed application be considered as in all respects as illustrative and not restrictive, the scope of the application being indicated by the appended claims rather than by the foregoing description, and all changes which come within the meaning and range of equivalency of the claims are therefore intended to be embraced therein.
[0035] It is also noted that the embodiments can be described as a process, which is depicted as a flowchart, a flow diagram, a flow chart, a flow diagram, and / or a sequence diagram. Although a variety of elements are presented with respect to the method, the order in which the elements are presented on the flow diagram is not meant to be limiting and only suggests one ordering of the elements. The method can be practiced with more or fewer steps or elements described, and with additional or different elements than those described or shown. The methods can be implemented by a hardware element, software element (including firmware, resident software, micro-code, etc.), or a combination of both hardware and software elements. Although the example embodiments have been described with reference to the accompanying drawings, it is to be understood that the embodiments are not limited to the precise configurations and
[0036] The relative arrangement of parts and steps, numerical expressions, and numerical values set forth in the examples illustrated are not intended to limit the scope of the application. It is to be understood that the drawings are not necessarily to scale. Techniques, methods, and apparatus known to those of ordinary skill are not discussed in detail because they would be considered by others skilled in the art to be standard practices and procedures. In the examples shown and discussed herein, any specific values should be interpreted as merely illustrative and not as a limitation. Other examples of the exemplary embodiments can have different values. It is noted that like numbers and letters on the figures identify like parts throughout the disclosure. Once an item is defined in one figure, it is not necessary to discuss it further in connection with subsequent figures.
[0037] As Figures 1 to 3As shown, in the embodiment, the bypass cable device comprises a first connecting clamp 10, a wire 20, a switch piece 30, a monitoring control device 40 and a second connecting clamp 50. The first end of the wire 20 is connected with the first connecting clamp 10. The switch piece 30 is arranged on the wire 20. The monitoring control device 40 is arranged on the wire 20. The second end of the wire 20 is connected with the second connecting clamp 50, and the second connecting clamp 50 comprises a main body part 51 and a wire fixing part 52, the wire fixing part 52 is located below the main body part 51, a wire fixing space 53 is formed between the main body part 51 and the wire fixing part 52, the main body part 51 comprises a shell 511, a first driving piece 512 and a puncture piece 513, the inside of the shell 511 is provided with an accommodation space 5111, the side of the shell 511 towards the wire fixing part 52 is provided with an avoiding hole 5112, the first driving piece 512 and the puncture piece 513 are both arranged in the accommodation space 5111, the puncture piece 513 is movably arranged and has a retraction position retracted into the accommodation space 5111 and a puncture position penetrating into the wire fixing space 53 through the avoiding hole 5112, and the first driving piece 512 can drive the puncture piece 513 to switch between the puncture position and the retraction position.
[0038] By applying the technical scheme of the embodiment, the first end of the wire 20 is connected with the first connecting clamp 10, the switch piece 30 and the monitoring control device 40 are both arranged on the wire 20. The second connecting clamp 50 is connected with the second end of the wire 20. The second connecting clamp 50 comprises the main body part 51 and the wire fixing part 52, and the wire fixing space 53 is formed between the main body part 51 and the wire fixing part 52. The main body part 51 comprises the shell 511, the first driving piece 512 and the puncture piece 513, the puncture piece 513 is movably arranged and has the retraction position and the puncture position, and the first driving piece 512 can drive the puncture piece 513 to switch between the puncture position and the retraction position. Through the above arrangement, the movable puncture piece 513 is arranged in the second connecting clamp 50, the target line can be quickly connected without power-off of the line, and the work efficiency and safety are greatly improved. It is suitable for quickly restoring power supply in various scenes such as emergency repair, temporary power supply and power grid reconstruction, reduces the power-off time and reduces the influence on production or life. Therefore, the technical scheme of the embodiment effectively solves the problem that the limited power supply time of the power supply vehicle affects daily life in the related art.
[0039] As shown in Figure 3 and Figure 4 in the embodiment, the second connecting clamp 50 further comprises a transmission structure 60 and a guide structure 70, the transmission structure 60 is arranged between the first driving piece 512 and the puncture piece 513, the guide structure 70 is arranged in the accommodation space 5111 and guides the puncture piece 513, and the extension direction of the guide structure 70 is the same as the direction from the main body part 51 to the wire fixing part 52.
[0040] AsFigure 3 And Figure 4 As shown in
[0041] As shown in Figure 3 And Figure 4 As shown in the embodiment, the transmission structure 60 includes a first bevel gear 61, a second bevel gear 62, and a transmission rod 63, the transmission rod 63 is rotatably arranged in the accommodating space 5111, the first bevel gear 61 is arranged on the first driving member 512, the second bevel gear 62 is arranged on the transmission rod 63, the first bevel gear 61 and the second bevel gear 62 are meshingly arranged, the transmission rod 63 is provided with a threaded section, the puncture member 513 includes a first connecting plate 5131 and a puncture needle 5132, the puncture needle 5132 is arranged on the first connecting plate 5131, the first connecting plate 5131 is provided with a threaded hole, the threaded section and the threaded hole are screw-connected, the first driving member 512 drives the transmission rod 63 to rotate through the first bevel gear 61 and the second bevel gear 62, and drives the puncture member 513 to move through the screw connection of the threaded section and the threaded hole. The combination transmission mode of gears and threads not only improves the stability and precision of the movement of the puncture member 513, but also reduces the complexity of the operation.
[0042] Specifically, under the action of the first driving member 512, the first bevel gear 61 can rotate and drive the second bevel gear 62 to rotate, and under the action of the threaded section and the threaded hole, the transmission rod 63 can rotate. At this time, under the action of the guide structure 70, the puncture member 513 can move up and down, thereby piercing the cable or avoiding the cable. Such a design can make the overall operation relatively simple and can ensure the puncture effect and efficiency.
[0043] Preferably, a bearing member is arranged between the transmission rod 63 and the shell 511, thereby ensuring that the transmission rod 63 rotates in place.
[0044] As shown in Figure 3 And Figure 4 As shown in the embodiment, the first connecting plate 5131 is also provided with a guide hole 51311, and the guide structure 70 is arranged in the guide hole 51311. The cooperation of the guide hole 51311 and the guide structure 70 further ensures the stability and accuracy of the puncture member 513 during movement, prevents the puncture needle 5132 from deviating during puncture, ensures the reliability of the power line connection, and is suitable for various power operation scenes that require high-precision puncture connection. Especially when maintaining or modifying the power line, this design can effectively avoid misalignment of the puncture member and the cable, improve the efficiency and safety of the operation.
[0045] like Figure 3 and Figure 4 As shown, in this embodiment, the first connecting plate 5131 includes a metal plate 51312, a first insulating plate 51313, and a second insulating plate 51314. The first insulating plate 51313 and the second insulating plate 51314 are respectively disposed on both sides of the metal plate 51312. The metal plate 51312 is connected to the wire 20. A threaded hole is disposed on the first insulating plate 51313, and a guide hole 51311 is disposed on the second insulating plate 51314. The combined design of the metal plate 51312, the first insulating plate 51313, and the second insulating plate 51314 ensures both the efficiency of power transmission and the safety of operators, making it suitable for connecting various high-voltage power lines.
[0046] Specifically, such as Figure 3 and Figure 4 As shown, in this embodiment, since the guide structure 70 and the transmission structure 60 are respectively disposed on the first insulating plate 51313 and the second insulating plate 51314, the guide structure 70 and the transmission structure 60 can be prevented from becoming electrified under the action of the first insulating plate 51313 and the second insulating plate 51314, thereby making the operation of the operator safer.
[0047] like Figure 3 and Figure 4 As shown, in this embodiment, the first connecting plate 5131 further includes a rolling top ball 51315, which is disposed on the second insulating plate 51314 and located on the inner wall of the guide hole 51311. The rolling top ball 51315 is rotatably disposed. The arrangement of the rolling top ball 51315 reduces the friction of the piercing member 513 during movement, improves the smoothness and efficiency of movement, and is suitable for power operation environments that require frequent piercing connections. Its advantages are particularly prominent in scenarios requiring rapid response and high-frequency operation.
[0048] like Figure 3 and Figure 6As shown, in this embodiment, the main body 51 further includes a stop structure 514, which includes a first stop pin 5141, a second stop pin 5142, and an elastic member 5143. The first stop pin 5141 is movably disposed on the side wall of the housing 511, the second stop pin 5142 is disposed on the first stop pin 5141 and located within the receiving space 5111, and the elastic member 5143 is disposed between the side wall of the housing 511 and the second stop pin 5142. The stop structure 514 has a stop position and a clearance position. When the stop structure 514 is in the stop position, the first stop pin 5141 is located above the first connecting plate 5131 and cooperates with the first connecting plate 5131 to keep the piercing member 513 in the piercing position. The second stop pin 5142 is located on the side of the first connecting plate 5131 and cooperates with the side of the first connecting plate 5131. The elastic member 5143 drives the stop structure 514 to remain in the stop position. The stop structure 514 ensures the stability of the piercing member 513 in the piercing position and prevents the piercing member 513 from retracting due to external forces during the piercing process. It is suitable for various power operation environments that may encounter external interference, especially in situations with strong winds or unstable operating space, and can effectively ensure the stability and safety of the power connection. For example, in outdoor or high-altitude operations, the stop structure 514 can resist the influence of wind or other external forces, ensure the stability of the piercing connection, and reduce the operational risks caused by environmental factors.
[0049] like Figure 2 , Figure 3 as well as Figure 5 As shown, in this embodiment, the cable fixing part 52 includes a base 521 and a second connecting plate 522. The second connecting plate 522 connects the second base 521 and the main body 51. A cable fixing groove 5221 is provided on the base 521. The design of the cable fixing groove 5221 makes the position of the cable more stable and is suitable for power cables of various diameters and shapes. It is particularly outstanding when considering the fixation and stability of the line. For example, in the line renovation of the power system or emergency power supply, the cable fixing groove 5221 can ensure a tight contact between the device and the line, improve the efficiency and safety of power transmission, and reduce the risk of power outage due to loose lines or poor contact.
[0050] like Figure 5 and Figure 6 As shown, a connecting post is provided on the second connecting plate 522, and an arc-shaped connecting groove is provided on the bottom surface of the housing 511. The connecting post can be inserted into the arc-shaped connecting groove and can move within the arc-shaped connecting groove, thereby adjusting the opening direction of the wire fixing space 53 and clamping wires with different orientations.
[0051] like Figure 1 and Figure 7As shown, in this embodiment, the first connecting clamp 10 includes a first clamping arm 11, a second clamping arm 12, a connecting arm 13, and a second driving member 14. The first clamping arm 11 is connected to the connecting arm 13, and the second clamping arm 12 is movably disposed on the connecting arm 13 and correspondingly disposed to the first clamping arm 11. The second driving member 14 is connected to the connecting arm 13 and drives the second clamping arm 12, enabling the second driving member 14 to move to adjust the distance between the first clamping arm 11 and the second clamping arm 12. This adjustable first clamping arm 11 and second clamping arm 12 design allows the first connecting clamp 10 to adapt to lines of different diameters, enhancing the versatility and applicability of the first connecting clamp 10. It is suitable for connecting various power cables, especially in operations where changes in cable diameter need to be considered, providing wider adaptability and greater flexibility. For example, in power system line maintenance or emergency power supply operations, this design can quickly adapt to power lines of different wire diameters, improving operational efficiency and safety, and reducing operational delays caused by equipment incompatibility.
[0052] like Figures 7 to 10 As shown, in this embodiment, the second clamping arm 12 includes a first connecting member 121, a clamping part 122, and a second connecting member 123. The clamping part 122 is connected to the end of the first connecting member 121 away from the connecting arm 13 via a first pin 81. The clamping part 122 is connected to the end of the second connecting member 123 away from the connecting arm 13 via a second pin 82. The first connecting member 121 is connected to the connecting arm 13 via a third pin 83. The second connecting member 123 is connected via a fourth pin 84. The fourth pin 84 is located between the third pin 83 and the first clamping arm 11. The second connecting member 123 is provided with an outward protrusion 1231, which is located on the side of the third pin 83 away from the fourth pin 84. The outward protrusion 1231 is in a limiting fit with the third pin 83. This multi-pin connection method not only improves the structural strength and stability of the clamping arm but also ensures its flexibility and reliability during operation. It is suitable for various power operation environments requiring high stability and flexibility, especially in scenarios where line connections need to be made at different angles and directions, providing a more stable and flexible operating experience. For example, in power system line maintenance or renovation, the multi-pin design can adapt to complex working environments and line layouts, ensuring operational accuracy and stability and reducing line damage caused by improper operation.
[0053] Furthermore, since the protrusion 1231 is located on the side of the third pin 83 away from the fourth pin 84, the protrusion 1231 can be limited by the fourth pin 84, thereby making the position of the second connector 123 more stable.
[0054] like Figures 1 to 10As shown, the bypass cable device of this embodiment, by incorporating a movable piercing element 513 in the second connecting clamp 50, enables rapid connection to the target line without power interruption, significantly improving operational efficiency and safety. Simultaneously, the cooperation of the transmission structure 60 and the guide structure 70 ensures precise movement of the piercing element 513, preventing operational errors. The stop structure 514 further guarantees the stability of the piercing element 513 at the piercing position, preventing retraction due to external forces during piercing and ensuring reliable connection. Furthermore, the adjustable clamping arm design of the first connecting clamp 10 allows it to adapt to lines of different diameters, enhancing the device's versatility and applicability. The overall design is compact and easy to operate, significantly improving the safety and efficiency of power operations, and possesses broad application prospects and practical value. This bypass cable device is not only suitable for routine maintenance and repair of power systems, but also particularly suitable for emergency rescue, temporary power supply, and power repair scenarios. It can restore power supply in the shortest possible time, reduce the impact of power outages on production and life, and is an important tool for improving the safety and efficiency of power industry operations.
[0055] Furthermore, the bypass cable device in this embodiment features a compact design and simple operation, significantly improving the safety and efficiency of power operations, and possessing broad application prospects and practical value. This bypass cable device is not only suitable for routine maintenance and repair of power systems, but also particularly applicable to emergency rescue, temporary power supply, and power repair scenarios. It can restore power supply in the shortest possible time, reducing the impact of power outages on production and daily life, and is an important tool for improving the safety and efficiency of power industry operations. For example, in the event of a power outage caused by a natural disaster, this device can be quickly deployed to achieve rapid power restoration, mitigating the impact of the disaster on society and improving the efficiency and effectiveness of rescue efforts.
[0056] Specifically, when a low-voltage cable fault causes a power outage, the bypass cable device in this embodiment can be securely connected to the busbar of the low-voltage distribution cabinet in a nearby power distribution room using the first connecting clamp 10, thus connecting the bypass cable device to the power supply. The second connecting clamp 50 can be used to quickly pierce the low-voltage cable in the faulty power outage area, connecting the bypass cable device to the affected user, thereby transferring the power supply path from the faulty cable to the bypass cable device and achieving rapid power restoration. Compared to traditional fault repair methods, this effectively shortens the power outage time.
[0057] The above extended description further elaborates on the implementation effect and application scenarios of the bypass cable device, demonstrating its multiple values and wide applicability in the power industry. Whether for routine maintenance or emergency repairs, it can significantly improve the safety and efficiency of operations, making it an indispensable innovative tool for the power industry.
[0058] In the description of this invention, it should be understood that the orientation or positional relationship indicated by directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" is generally based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing this invention and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the scope of protection of this invention; the directional terms "inner" and "outer" refer to the inner and outer contours relative to the outline of each component itself.
[0059] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.
[0060] Furthermore, it should be noted that the use of terms such as "first" and "second" to define components is merely for the purpose of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special meaning and therefore should not be construed as limiting the scope of protection of this invention.
[0061] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.
Claims
1. A bypass cable device, characterized in that, include: First connecting clamp (10); A conductor (20), the first end of which is connected to the first connecting clamp (10); A switch (30) is disposed on the wire (20); A monitoring and control device (40) is installed on the conductor (20); The second connecting clamp (50) is connected to the second end of the conductor (20). The second connecting clamp (50) includes a main body (51) and a wire-fixing part (52). The wire-fixing part (52) is located below the main body (51). A wire-fixing space (53) is formed between the main body (51) and the wire-fixing part (52). The main body (51) includes a housing (511), a first driving member (512), and a piercing member (513). The housing (511) has an accommodating space (5111) inside. The housing (511) is provided with a clearance hole (5112) on the side facing the wire fixing part (52). The first driving member (512) and the piercing member (513) are both disposed in the receiving space (5111). The piercing member (513) is movably disposed and has a retraction position that retracts into the receiving space (5111) and a piercing position that penetrates into the wire fixing space (53) through the clearance hole (5112). The first driving member (512) can drive the piercing member (513) to switch between the piercing position and the retraction position. The first connecting clamp (10) includes a first clamping arm (11), a second clamping arm (12), a connecting arm (13), and a second driving member (14). The first clamping arm (11) is connected to the connecting arm (13), and the second clamping arm (12) is movably disposed on the connecting arm (13) and correspondingly disposed to the first clamping arm (11). The second driving member (14) is connected to the connecting arm (13) and drives the second clamping arm (12). The second driving member (14) can drive the second clamping arm (12) to move to adjust the distance between the first clamping arm (11) and the second clamping arm (12). The second clamping arm (12) includes a first connector (121), a clamping part (122), and a second connector (123). The clamping part (122) is connected to the end of the first connector (121) away from the connecting arm (13) via a first pin (81). The clamping part (122) is connected to the end of the second connector (123) away from the connecting arm (13) via a second pin (82). The first connector (121) is connected to the connecting arm (13). The second connector (123) is connected by a third pin (83) and a fourth pin (84). The fourth pin (84) is located between the third pin (83) and the first clamping arm (11). The second connector (123) is provided with an outward protrusion (1231). The outward protrusion (1231) is located on the side of the third pin (83) away from the fourth pin (84). The outward protrusion (1231) is in a limiting fit with the third pin (83).
2. The bypass cable device according to claim 1, characterized in that, The second connecting clamp (50) further includes a transmission structure (60) and a guide structure (70). The transmission structure (60) is disposed between the first driving member (512) and the piercing member (513). The guide structure (70) is disposed within the receiving space (5111) and guides and cooperates with the piercing member (513). The extension direction of the guide structure (70) is the same as the direction from the main body (51) to the fixing part (52).
3. The bypass cable device according to claim 2, characterized in that, The transmission structure (60) includes a first bevel gear (61), a second bevel gear (62), and a transmission rod (63). The transmission rod (63) is rotatably disposed within the receiving space (5111). The first bevel gear (61) is disposed on the first driving member (512), and the second bevel gear (62) is disposed on the transmission rod (63). The first bevel gear (61) and the second bevel gear (62) are meshed. The transmission rod (63) is provided with a threaded section. The piercing member (51) 3) Includes a first connecting plate (5131) and a puncture needle (5132). The puncture needle (5132) is disposed on the first connecting plate (5131). The first connecting plate (5131) is provided with a threaded hole. The threaded section is screwed into the threaded hole. The first driving member (512) drives the transmission rod (63) to rotate through the first bevel gear (61) and the second bevel gear (62), and drives the puncture member (513) to move through the screwed engagement of the threaded section and the threaded hole.
4. The bypass cable device according to claim 3, characterized in that, The first connecting plate (5131) is also provided with a guide hole (51311), and the guide structure (70) passes through the guide hole (51311).
5. The bypass cable device according to claim 4, characterized in that, The first connecting plate (5131) includes a metal plate (51312), a first insulating plate (51313), and a second insulating plate (51314). The first insulating plate (51313) and the second insulating plate (51314) are respectively disposed on both sides of the metal plate (51312). The metal plate (51312) is connected to the wire (20). The threaded hole is disposed on the first insulating plate (51313), and the guide hole (51311) is disposed on the second insulating plate (51314).
6. The bypass cable device according to claim 5, characterized in that, The first connecting plate (5131) further includes a rolling top ball (51315), which is disposed on the second insulating plate (51314) and located on the inner wall of the guide hole (51311). The rolling top ball (51315) is rotatably disposed.
7. The bypass cable device according to claim 3, characterized in that, The main body (51) further includes a stop structure (514), which includes a first stop pin (5141), a second stop pin (5142), and an elastic member (5143). The first stop pin (5141) is movably disposed on the side wall of the housing (511), the second stop pin (5142) is disposed on the first stop pin (5141) and located within the receiving space (5111), and the elastic member (5143) is disposed between the side wall of the housing (511) and the second stop pin (5142). (514) has a stop position and a clearance position. When the stop structure (514) is in the stop position, the first stop pin (5141) can be located above the first connecting plate (5131) and stop with the first connecting plate (5131) to keep the piercing member (513) in the piercing position. The second stop pin (5142) is located on the side of the first connecting plate (5131) and stops with the side of the first connecting plate (5131). The elastic member (5143) drives the stop structure (514) to stay in the stop position.
8. The bypass cable device according to claim 1, characterized in that, The wire fixing part (52) includes a base (521) and a second connecting plate (522). The second connecting plate (522) is connected between the base (521) and the main body part (51). The base (521) is provided with a wire fixing groove (5211).
Citation Information
Patent Citations
Grounding wire clamp
CN106997990A
Special tool for 10KV circuit live-wire work robot drainage wire connecting work
CN110021898A