Multi-core cable automatic wiring device
By combining photo recognition and automatic cabling devices, the automatic cabling and sorting of multi-core cables is achieved, solving the problem of poor flexibility of existing equipment, improving cabling efficiency and accuracy, and reducing labor costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN BOLE PRECISION MACHINERY EQUIPMENT CO LTD
- Filing Date
- 2025-05-09
- Publication Date
- 2026-04-14
AI Technical Summary
Existing multi-core cable automatic wiring equipment has poor flexibility, is only compatible with a single specification, and requires mold replacement or reprogramming to adjust the arrangement order, which affects processing efficiency. In addition, manual identification of core wire characteristics leads to a high error rate.
It uses a camera to identify the color arrangement of multi-core cables, and combines a moving module, a wire pressing mechanism, a wire clamping mechanism, and a wire pushing mechanism to achieve automatic wiring and sorting of multi-core cables, adapting to various specifications.
It improves the wiring efficiency and accuracy of multi-core cables, reduces labor costs, has a wide range of applications, and is compatible with various specifications of multi-core cables.
Smart Images

Figure CN224123775U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of multi-core cable wiring, and in particular to an automatic multi-core cable wiring device. Background Technology
[0002] Multi-core cables are widely used in communications, power, and industrial control fields due to their advantages such as high signal transmission efficiency and high cabling integration. However, because multi-core cables typically contain multiple cores, and these cores must be arranged and combined in a strictly prescribed order (such as color and functional layering), their manufacturing process presents significant challenges.
[0003] Traditional cabling methods typically involve manual work, requiring operators to identify individual wire characteristics (such as color coding and numbering) and manually adjust their spatial position and arrangement. This process is slow and prone to errors due to human error, affecting processing quality. Therefore, automated cabling equipment has emerged to improve efficiency and accuracy. However, such equipment often uses fixed guide slots or mechanical limiting structures, limiting its compatibility to a single cable specification. Adjusting the arrangement requires mold replacement or reprogramming, resulting in poor flexibility, long downtime for setup, and ultimately impacting overall processing efficiency.
[0004] Therefore, there is an urgent need to develop a new type of automatic multi-core cable routing device to solve the above problems. Utility Model Content
[0005] To address the problems mentioned above, this utility model provides an automatic wiring device for multi-core cables, which can automatically organize and route the cores of a multi-core cable and automatically sort them according to requirements, thereby improving wiring efficiency and accuracy.
[0006] The solution adopted by this utility model to solve its technical problem is: an automatic wiring device for multi-core cables, comprising:
[0007] A photographic device used to identify the color arrangement order of multi-core cables by taking pictures;
[0008] The lower mold assembly includes a movable module and a wiring lower mold fixedly installed on the top of the movable module. The top surface of the wiring lower mold is provided with multiple wiring grooves at equal intervals.
[0009] The mounting bracket is located above the lower mold assembly. The bottom of the mounting bracket is connected to a limiting lower plate that is close to the top surface of the wiring lower mold. The limiting lower plate is provided with a wire clamping port that connects to the wiring groove.
[0010] A wire pressing mechanism is provided inside the mounting frame. The wire pressing mechanism includes a vertically arranged wire pressing drive assembly and wire pressing components connected to the output end of the wire pressing drive assembly and located on both sides of the wire clamping port.
[0011] A wire clamping mechanism is vertically installed inside the mounting frame and located above the wire clamping port, with the output end of the wire clamping mechanism movably passing through the wire clamping port;
[0012] The pusher mechanism is horizontally mounted on one side of the mounting frame. The output end of the pusher mechanism is movably attached to the surface of the lower limiting plate to push the multi-core cable to the cable clamping port.
[0013] Furthermore, the wire pressing assembly includes a limiting upper plate and a positioning plate respectively disposed on both sides of the wire clamping port, the positioning plate being fixedly connected to the limiting upper plate, and the output end of the wire pressing drive assembly being fixedly connected to the limiting upper plate.
[0014] Furthermore, a wire-locking channel is formed between the surfaces of the upper limiting plate and the positioning plate that are close to each other, and the output end of the wire-locking mechanism is movably inserted into the wire-locking channel.
[0015] Furthermore, the wire clamping mechanism includes a wire clamping drive assembly vertically disposed within the mounting frame and a wire clamping punch connected to the output end of the wire clamping drive assembly. The wire clamping punch is adapted to the wire clamping channel and is movably inserted into the wire clamping channel.
[0016] Furthermore, a push-wire channel for moving multi-core cables is formed between the positioning plate and the lower limiting plate. The end of the push-wire channel is connected to the wire clamping port, and the output end of the push-wire mechanism is movably inserted into the push-wire channel.
[0017] Furthermore, the wire pushing mechanism includes a wire pushing drive assembly horizontally disposed on one side of the mounting frame and a push bar connected to the output end of the wire pushing drive assembly. The push bar is adapted to the wire pushing channel structure and is movably inserted into the wire pushing channel.
[0018] Furthermore, the moving module includes a horizontally arranged X-axis moving component and a Y-axis moving component disposed on the X-axis moving component, and the wiring lower mold is fixedly installed on the top of the Y-axis moving component.
[0019] Furthermore, both the X-axis moving component and the Y-axis moving component are screw drive mechanisms.
[0020] Furthermore, it also includes a chassis, the front end of which is horizontally provided with a wiring channel for multi-core cables to pass through, and the lower mold assembly and the mounting bracket are both installed inside the chassis and located on the upper and lower sides of the wiring channel, respectively.
[0021] In summary, the beneficial effects of this utility model are as follows:
[0022] 1. This utility model, by setting up a lower mold assembly, a wire pressing mechanism, a wire clamping mechanism, and a wire pushing mechanism, enables multi-core cables to be automatically routed. The wire pressing mechanism presses the cables against the lower limiting plate, and the wire pushing mechanism moves each core wire sequentially to the wire clamping port. The wire clamping mechanism then presses the wire wires into the routing groove of the lower mold assembly, thus achieving automatic routing of multi-core cables. This effectively improves the routing efficiency and accuracy of multi-core cables and reduces labor costs.
[0023] 2. This utility model uses a photographing mechanism to capture images of the color arrangement of multi-core cables and a moving module to adjust the position of the wiring lower mold. During multi-core cable wiring, the moving module adjusts the position of the wiring lower mold based on the color arrangement of the multi-core cables recorded by the photographing mechanism and the set core wire arrangement order. This allows the wiring grooves on the surface of the wiring lower mold to align sequentially with the wire clamping openings according to the set core wire arrangement order, thereby achieving automatic sorting and wiring of multi-core cables. This not only improves the wiring accuracy of multi-core cables but also adapts to various specifications of multi-core cables, making it widely applicable.
[0024] The above description is merely an overview of the technical solution of this utility model. In order to better understand the technical means of this utility model and to implement it in accordance with the contents of the specification, and to make the above and other objects, features and advantages of this utility model more apparent and understandable, preferred embodiments are described below in detail with reference to the accompanying drawings. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the structure of this embodiment;
[0026] Figure 2 This is a schematic diagram of the internal structure of the chassis in this embodiment;
[0027] Figure 3 This is a schematic diagram of the lower mold assembly in this embodiment;
[0028] Figure 4 This is a schematic diagram of the combination of the wire pressing mechanism, the wire clamping mechanism, and the wire pushing mechanism in this embodiment;
[0029] Figure 5 for Figure 4 Enlarged view of point A in the middle;
[0030] Figure 6 This is a schematic diagram of the mounting bracket in this embodiment;
[0031] Figure 7 This is a schematic diagram of the wire pressing mechanism in this embodiment;
[0032] Figure 8 This is a schematic diagram of the wire clamping mechanism in this embodiment;
[0033] Figure 9 This is a schematic diagram of the wire pushing mechanism in this embodiment.
[0034] In the diagram: 1. Photo taking mechanism; 2. Lower mold assembly; 21. Moving module; 211. X-axis moving assembly; 212. Y-axis moving assembly; 22. Wiring lower mold; 221. Wiring groove; 3. Mounting bracket; 31. Lower limit plate; 311. Wire clamping port; 4. Wire pressing mechanism; 41. Wire pressing drive assembly; 42. Wire pressing assembly; 421. Upper limit plate; 422. Positioning plate; 423. Wire clamping channel; 5. Wire clamping mechanism; 51. Wire clamping drive assembly; 52. Wire clamping punch; 6. Wire pushing mechanism; 61. Wire pushing drive assembly; 62. Push bar; 7. Wire pushing channel; 8. Chassis; 81. Wiring channel. Detailed Implementation
[0035] To make the content of this utility model easier to understand, the present utility model will be further described below with reference to specific embodiments and accompanying drawings.
[0036] It should be noted that the terms "center," "upper," "lower," "front," "rear," "left," "right," "inner," and "outer" used herein to indicate the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and 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 of this utility model. Unless otherwise stated, "a plurality of" means two or more.
[0037] Unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0038] like Figures 1 to 2 As shown, an automatic multi-core cable routing device can automatically sort and route the cores of a multi-core cable, thereby effectively improving routing efficiency and accuracy while reducing labor costs. The automatic routing device in this embodiment includes a chassis 8 and a photographing mechanism 1 located on one side of the chassis 8. The photographing mechanism 1 can photograph and memorize the color arrangement of the un-routed multi-core cable. Then, an external robotic arm picks up the multi-core cable and moves it into the chassis 8, thereby automatically sorting and routing the cores according to the set arrangement order.
[0039] like Figure 1 andFigure 2 As shown, the front end of the chassis 8 in this embodiment is provided with a horizontally arranged wiring channel 81. After the multi-core cable is photographed, it can be moved into the wiring channel 81 by an external robotic arm, and then pass through the wiring channel 81 into the chassis 8 for automatic sorting and wiring. Specifically, the chassis 8 in this embodiment is provided with a lower mold assembly 2 at a position corresponding to the wiring channel 81. The lower mold assembly 2 includes a wiring lower mold 22 with multiple wiring grooves 221 equidistantly arranged on its top surface, and a moving module 21 connected to the bottom of the wiring lower mold 22 to control the movement of the wiring lower mold 22. When the multi-core cable is being wired, the moving module 21 can compare the color arrangement order of the multi-core cable recorded by the photographing mechanism 1 with the set core wire arrangement order, and control the movement of the wiring lower mold 22 so that each wiring groove 221 can be inserted with the corresponding color core wire in sequence according to the set core wire arrangement order, thereby realizing the automatic wiring of the multi-core cable.
[0040] like Figures 2 to 3 As shown, the moving module 21 in this embodiment includes a horizontally arranged X-axis moving component 211 and a Y-axis moving component 212 disposed on the X-axis moving component 211. The wiring lower mold 22 is fixedly installed on the top of the Y-axis moving component 212, so that during the multi-core cable wiring process, the X-axis moving component 211 and the Y-axis moving component 212 can drive the wiring lower mold 22 to move in the X-axis and Y-axis directions, thereby facilitating the insertion of each core wire into the wiring slot 221 at the corresponding position, thereby realizing the automatic wiring of multi-core cables.
[0041] In this embodiment, both the X-axis moving component 211 and the Y-axis moving component 212 are screw drive mechanisms, which have high moving accuracy and fast speed, and can effectively improve the positional accuracy of the wiring lower mold 22, thereby facilitating the accurate wiring of multi-core cables.
[0042] like Figure 2 and Figure 4 As shown, in order to embed each core wire into the corresponding wiring slot 221 in sequence, a mounting frame 3 is provided above the lower mold assembly 2 in this embodiment. The mounting frame 3 is vertically provided with a wire pressing mechanism 4 and a wire clamping mechanism 5. A horizontally provided wire pushing mechanism 6 is provided on one side of the mounting frame 3. The wire pressing mechanism 4 in this embodiment can press the multi-core cable, and the wire pushing mechanism 6 pushes each core wire to the wiring position in sequence, so that each core wire is embedded into the wiring slot 221 under the pressure of the wire clamping mechanism 5 to complete the automatic wiring of the multi-core cable.
[0043] Specifically, such as Figure 6As shown, the mounting bracket 3 in this embodiment is connected to a limiting lower plate 31 that is closely attached to the top surface of the wiring lower mold 22. The limiting lower plate 31 is provided with a wire clamping port 311 that connects to the wiring groove 221 and is adapted to the width of the wiring groove 221. After the multi-core cable enters the chassis 8 through the wiring channel 81, it can be pressed against the surface of the limiting lower plate 31 by the wire pressing mechanism 4. The pushing mechanism 6 pushes the rightmost core wire of the multi-core cable to the lower wire opening position, so that the core wire is pressed down through the wire clamping port 311 and clamped into the wiring groove 221 under the action of the wire clamping component to complete the wiring.
[0044] like Figure 2 , Figure 4 and Figure 7 As shown, the wire pressing mechanism 4 in this embodiment includes a vertically arranged wire pressing drive component 41 and a wire pressing component 42 connected to the output end of the wire pressing drive component 41. After the multi-core cable moves into the chassis 8, the wire pressing drive component 41 can control the wire pressing component 42 to move down and press against the surface of the multi-core cable, thereby pressing the multi-core cable against the limiting lower plate 31 for limiting, thus facilitating the pushing mechanism 6 and the clamping mechanism 5 to push and clamp the cable.
[0045] Specifically, such as Figure 7 As shown, the wire clamping assembly 42 of this embodiment includes a limiting upper plate 421 and a positioning plate 422 respectively disposed on both sides of the wire clamping opening 311. The positioning plate 422 is fixedly connected to the limiting upper plate 421, and the output end of the wire clamping drive assembly 41 is fixedly connected to the limiting upper plate 421. Therefore, when the wire clamping drive assembly 41 is working, it can drive the limiting upper plate 421 and the positioning plate 422 to move simultaneously, thereby achieving stable clamping of the multi-core cable. Furthermore, as... Figure 5 As shown, in this embodiment, the surfaces of the limiting upper plate 421 and the positioning plate 422 that are close to each other are aligned with the two side walls in the width direction of the wire clamping port 311 to form a wire clamping channel 423. When each core wire is clamped, when the multi-core cable is pushed by the wire pushing mechanism 6 to the position of the wire clamping port 311, the surface of the limiting upper plate 421 close to the positioning plate 422 can limit the movement of the multi-core cable. This ensures that when each core wire is clamped, only one core wire is exposed on the wire clamping port 311, which facilitates the wire clamping mechanism 5 to press down and clamp the core wire into the wiring groove 221. This facilitates accurate wire clamping in this embodiment and improves the success rate of wire clamping. In addition, the wire clamping channel 423 can guide the movement of the wire clamping mechanism 5, thereby improving the stability of the wire clamping mechanism 5 during the wire clamping process and further improving the success rate of wire clamping.
[0046] like Figure 4 , Figure 5 and Figure 8As shown, the wire clamping mechanism 5 in this embodiment includes a wire clamping drive assembly 51 vertically disposed within the mounting frame 3 and a wire clamping punch 52 connected to the output end of the wire clamping drive assembly 51 and located above the wire clamping port 311. After the multi-core cable is pushed to the position of the wire clamping port 311 by the wire pushing mechanism 6, the wire clamping drive assembly 51 can drive the wire clamping punch 52 to move and press down, thereby driving the core wire located at the position of the wire clamping port 311 to pass through the wire clamping port 311 and fit into the wiring groove 221 to complete the wire clamping. In this embodiment, the wire clamping punch 52 is structurally adapted to the wire clamping port 311 and the wire clamping channel 423, so that when the wire clamping drive assembly 51 drives the wire clamping punch 52 to move, the wire clamping punch 52 can move along the wire clamping channel 423 to the wire clamping port 311, thereby pressing the core wire into the wiring groove 221 of the wiring lower mold 22, which can improve the pressing stability of the wire clamping punch 52 and thus achieve accurate wire clamping.
[0047] like Figure 4 and Figure 9 As shown, in this embodiment, the pusher mechanism 6 sequentially pushes each core wire to the clamping port 311 for clamping. The pusher mechanism 6 includes a pusher drive assembly 61 horizontally disposed on one side of the mounting frame 3 and a pusher bar 62 connected to the output end of the pusher drive assembly 61. In this embodiment, the pusher bar 62 is in close contact with the surface of the limiting lower plate 31, so that after the pressing assembly 42 presses the multi-core cable onto the limiting lower plate 31, the pusher bar 62 can move along the limiting lower plate 31 under the action of the pusher drive assembly 61, thereby pushing the multi-core cable that has been limited on the surface of the limiting lower plate 31 by the pressing assembly 42 to the clamping port 311 for clamping.
[0048] like Figure 5 As shown, in order to achieve stable and free movement of the push bar 62, the thickness of the positioning plate 422 in this embodiment is less than the thickness of the upper limiting plate 421. When the wire pressing drive mechanism drives the upper limiting plate 421 to press against the surface of the lower limiting plate 31, a certain gap can be left between the bottom plane of the positioning plate 422 and the lower limiting plate 31 to form a push channel 7 that connects the end to the wire clamping port 311. This not only facilitates the pressing and limiting of the multi-core cable, but also facilitates the stable movement of the push bar 62. When the push bar 62 pushes the wire, it can move along the push channel 7 to push the multi-core cable to the wire clamping port 311 to complete the wire clamping, thereby realizing the wiring of the multi-core cable.
[0049] like Figures 7 to 9As shown, in this embodiment, the wire pressing drive assembly 41, the wire pushing drive assembly 61, and the wire clamping drive assembly 51 respectively provide driving force for the pressing, pushing, and clamping operations of the multi-core cable. The wire pressing drive assembly 41, the wire pushing drive assembly 61, and the wire clamping drive assembly 51 can be either a screw-nut transmission mechanism or a cylinder transmission mechanism, all of which can realize the translation of the wire pressing assembly 42, the push bar 62, and the wire clamping assembly. In this embodiment, the wire pressing drive assembly 41, the wire pushing drive assembly 61, and the wire clamping drive assembly 51 are all screw-nut transmission mechanisms, which, compared with cylinder transmission mechanisms, can have higher transmission accuracy, thereby improving the success rate and accuracy of multi-core cable wiring.
[0050] Furthermore, the wiring steps of the automatic wiring device in this embodiment are as follows:
[0051] S1. The stripped multi-core cable is picked up and moved to the camera mechanism 1 for taking pictures, and the color arrangement order of the multi-core cable at this time is memorized.
[0052] S2. Move the multi-core cable clamp to the lower limit plate 31. At this time, the wire pressing drive assembly 41 drives the wire pressing assembly 42 to move down and press the multi-core cable.
[0053] S3, the output end of the pusher mechanism 6 moves along the surface of the lower limit plate 31 to push the rightmost core wire of the multi-core cable to the wire clamping port 311;
[0054] S4. The moving module 21 compares the set core wire arrangement order with the color arrangement order of each core wire recorded by the photographing mechanism 1, drives the lower wiring mold 22 to move and aligns the corresponding wiring slot 221 with the wire clamping port 311.
[0055] S5, the output end of the wire clamping mechanism 5 moves and plugs into the wire clamping port 311, thereby pressing the single core wire located at the rightmost end into the corresponding wiring slot 221;
[0056] S6. Repeat S3-S5 until all core wires are pressed into the corresponding wiring slots 221;
[0057] S7, the wire pressing mechanism 4, the wire pushing mechanism 6, and the wire clamping mechanism 5 are reset to their original positions.
[0058] This embodiment, through the above steps, not only realizes the automatic wiring of multi-core cables, but also allows adjustment of the arrangement order of multi-core cables according to needs, thus making this embodiment applicable to wiring of multi-core cables of various models and specifications, with a wide range of applications.
[0059] In summary, this embodiment uses the wire pressing mechanism 4, the wire pushing mechanism 6, and the wire clamping mechanism 5 to press, push, and clamp the multi-core cable respectively, and uses the lower mold assembly 2 to clamp and sort each core wire. When the multi-core cable is being routed, it can be pressed against the lower limiting plate 31 by the wire pressing mechanism 4, and each core wire can be moved sequentially to the wire clamping port 311 by the wire pushing mechanism 6. Then, under the action of the wire clamping mechanism 5, it can be pressed from the wire clamping port 311 into the routing groove 221 of the lower mold assembly 2, realizing automatic routing of multi-core cables. This can effectively improve the routing efficiency and accuracy of multi-core cables and reduce labor costs. Furthermore, this embodiment takes pictures of the color arrangement order of the multi-core cable by setting up the photographing mechanism 1, and adjusts the position of the wiring lower mold 22 by setting up the moving module 21. Thus, when wiring multi-core cables, the moving module 21 can adjust the position of the wiring lower mold 22 according to the color arrangement order of the multi-core cable recorded by the photographing mechanism 1 and the set core wire arrangement order. This allows each wiring groove 221 on the surface of the wiring lower mold 22 to be aligned with the wire clamping port 311 according to the set core wire arrangement order, thereby realizing automatic sorting and wiring of multi-core cables. This not only improves the wiring accuracy of multi-core cables, but also adapts to multi-core cables of various specifications, making it widely applicable.
[0060] The embodiments described above are merely preferred embodiments of this utility model and should not be construed as limiting the scope of protection of this utility model. Any non-substantial changes and modifications made by those skilled in the art based on this utility model shall fall within the scope of protection of this utility model.
Claims
1. An automatic wiring device for multi-core cables, characterized in that, include: A photographing mechanism (1) is used to photograph and identify the color arrangement order of multi-core cables; The lower mold assembly (2) includes a movable module (21) and a wiring lower mold (22) fixedly installed on the top of the movable module (21). The wiring lower mold (22) has multiple wiring grooves (221) evenly spaced on its top surface. Mounting bracket (3) is located above the lower mold assembly (2). The bottom of the mounting bracket (3) is connected to a limiting lower plate (31) that is close to the top surface of the wiring lower mold (22). The limiting lower plate (31) is provided with a wire clamping port (311) that connects to the wiring groove (221). The wire pressing mechanism (4) is located inside the mounting frame (3). The wire pressing mechanism (4) includes a vertically arranged wire pressing drive assembly (41) and a wire pressing assembly (42) connected to the output end of the wire pressing drive assembly (41) and located on both sides of the wire clamping port (311). The wire clamping mechanism (5) is vertically installed inside the mounting frame (3) and located above the wire clamping port (311). The output end of the wire clamping mechanism (5) is movably inserted into the wire clamping port (311). The pusher mechanism (6) is horizontally positioned on one side of the mounting frame (3). The output end of the pusher mechanism (6) is movably attached to the surface of the lower limiting plate (31) to push the multi-core cable to the cable clamping port (311).
2. The automatic wiring device for multi-core cables according to claim 1, characterized in that, The wire pressing assembly (42) includes a limiting upper plate (421) and a positioning plate (422) respectively disposed on both sides of the wire clamping port (311). The positioning plate (422) is fixedly connected to the limiting upper plate (421), and the output end of the wire pressing drive assembly (41) is fixedly connected to the limiting upper plate (421).
3. The automatic wiring device for multi-core cables according to claim 2, characterized in that, A wire-locking channel (423) is formed between the surfaces of the upper limiting plate (421) and the positioning plate (422) that are close to each other, and the output end of the wire-locking mechanism (5) is movably inserted into the wire-locking channel (423).
4. The automatic wiring device for multi-core cables according to claim 3, characterized in that, The wire clamping mechanism (5) includes a wire clamping drive assembly (51) vertically arranged in the mounting frame (3) and a wire clamping punch (52) connected to the output end of the wire clamping drive assembly (51). The wire clamping punch (52) is adapted to the wire clamping channel (423) and is movably inserted into the wire clamping channel (423).
5. The automatic wiring device for multi-core cables according to claim 2, characterized in that, A push-wire channel (7) for moving multi-core cables is formed between the positioning plate (422) and the limiting lower plate (31). The end of the push-wire channel (7) is connected to the wire clamping port (311), and the output end of the push-wire mechanism (6) is movably inserted into the push-wire channel (7).
6. The automatic wiring device for multi-core cables according to claim 5, characterized in that, The push wire mechanism (6) includes a push wire drive assembly (61) horizontally disposed on one side of the mounting frame (3) and a push bar (62) connected to the output end of the push wire drive assembly (61). The push bar (62) is structurally adapted to the push wire channel (7) and is movably inserted into the push wire channel (7).
7. The automatic wiring device for multi-core cables according to claim 1, characterized in that, The moving module (21) includes a horizontally arranged X-axis moving component (211) and a Y-axis moving component (212) disposed on the X-axis moving component (211), and the wiring lower mold (22) is fixedly installed on the top of the Y-axis moving component (212).
8. The automatic wiring device for multi-core cables according to claim 7, characterized in that, Both the X-axis moving component (211) and the Y-axis moving component (212) are screw drive mechanisms.
9. The automatic wiring device for multi-core cables according to claim 1, characterized in that, It also includes a chassis (8), the front end of which is provided with a wiring channel (81) for multi-core cables to pass through. The lower mold assembly (2) and the mounting bracket (3) are both installed in the chassis (8) and are located on the upper and lower sides of the wiring channel (81) respectively.