Shielded network cable dispersion device
Patent Information
- Application Number
- CN202522534660.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-28
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-11-28
AI Technical Summary
[0005]但因编织层结构强度较高,冲刀需产生较大冲力才能切断编织层,这不仅对刀体强度、硬度提出更高要求,增加刀具损耗成本,还可能对屏蔽线内部信号线造成潜在损伤,不利于保障加工质量,一定程度上限制了屏蔽线加工效率与良品率的提升
[0017] The beneficial effects of this utility model are as follows: through the cooperation of the support component, the rotating component, the first assembly component, the second assembly component, and the clamping and pushing component, after the wire is placed into the clamping and pushing component, the second and third assembly components begin to work, spreading out the mesh wires on the wire. At the same time, the rotating component drives the second and third assembly components to rotate, and the clamping and pushing component drives the wire to move back and forth linearly, thereby improving the spreading effect of the mesh wires. After the mesh wires are spread out, they can be taken out and cut. This not only reduces the strength and hardness of the blade but also reduces damage to the blade. In addition, it avoids damage to the internal wires of the wire, effectively improving the processing efficiency and yield of the wire.
Smart Images

Figure CN224733280U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of processing equipment technology, specifically to a shielded wire mesh breaking device. Background Technology
[0002] Shielded cables are key components in the field of electronic information transmission. They wrap the internal signal lines with a metal mesh braid to reduce external electromagnetic interference and ensure stable signal transmission. The braid is usually made of red copper or tin-plated copper, which balances conductivity and structural stability.
[0003] In recent years, the rapid promotion and popularization of the new energy vehicle industry has led to higher requirements for the anti-interference capability and stability of automotive electronic systems in signal transmission. This has driven the market demand for shielded wires to become increasingly diversified, and their application scenarios and usage have increased significantly.
[0004] In the processing of shielded wires, the cutting of the metal mesh braided layer is the core process. Currently, the industry generally uses the punch method to achieve the cutting: the fixed blade is placed close to the outer wall of the braided layer, and the punch is placed close to the inner wall of the braided layer, so that the two are set opposite each other; then the punch located at the end of the shielded wire is driven to move towards the fixed blade until the two are closed, and the braided layer is cut through the shearing action.
[0005] However, due to the high strength of the braided layer structure, the punch needs to generate a large impact force to cut the braided layer. This not only places higher demands on the strength and hardness of the blade body and increases the cost of tool wear, but may also cause potential damage to the signal lines inside the shielded wire, which is not conducive to ensuring processing quality and to a certain extent limits the improvement of shielded wire processing efficiency and yield. Utility Model Content
[0006] To address the shortcomings of existing technologies, this utility model provides a shielded network cable decongestion device.
[0007] The present invention discloses a shielded network cable disintegration device, comprising: a support component, a rotating component, a first cable straightening component, a second cable straightening component, and a clamping and pushing component. The rotating component is disposed on the support component, the first cable straightening component and the second cable straightening component are disposed on the rotating component, and the clamping and pushing component is disposed on the support component, and the clamping and pushing component is disposed opposite to the first cable straightening component and the second cable straightening component. The yarn is placed in the clamping and pushing assembly. The first yarn assembly and the second yarn assembly respectively spread out the mesh wires on the yarn. The rotating assembly drives the first yarn assembly and the second yarn assembly to rotate around the mesh wires, and the clamping and pushing assembly drives the yarn to move linearly.
[0008] According to one embodiment of the present invention, the support assembly includes a first support plate, a second support plate, a first outer cover, and a second outer cover. The second support plate is disposed on the first support plate, the first outer cover is disposed on the first support plate, and a first inner cavity is formed on one side of the first outer cover, the first support plate, and the second support plate. The second outer cover is disposed on the first support plate, and a second inner cavity is formed on the other side of the second outer cover, the first support plate, and the second support plate. The rotating assembly, the first aligning assembly, and the second aligning assembly are located in the first inner cavity, and the clamping and pushing assembly is located in the second inner cavity.
[0009] According to one embodiment of the present invention, the rotating assembly includes a support plate, a first driving member, a first transmission member, and a first mounting plate. The support plate is disposed on the support assembly, the first driving member is disposed on the support plate, the first transmission member is rotatably disposed on the support plate, and the first transmission member is connected to the output end of the first driving member. The first mounting plate is disposed on the side of the first transmission member away from the support plate, and the first assemblies and the second assemblies are both disposed on the first mounting plate.
[0010] According to one embodiment of the present invention, the rotating assembly further includes a first baffle and a support rod, wherein the first baffle and the first mounting plate are spaced apart, and the support rod is connected to the first baffle and the first mounting plate respectively.
[0011] According to one embodiment of the present invention, the first assembly line includes a support frame, a second driving member, a second transmission member, and a brush member. The support frame is disposed on the rotating assembly, the second driving member is disposed on the support frame, the second transmission member is rotatably disposed on the support frame, the second driving member drives the second transmission member to rotate, and the brush member is disposed on the second transmission member.
[0012] According to one embodiment of the present invention, the clamping and pushing assembly includes a third driving member, a second mounting plate, a clamping member, and a supporting block. The third driving member is disposed on the support assembly, the second mounting plate is connected to the output end of the third driving member, the clamping member is disposed on the second mounting plate, and the supporting block is disposed on the clamping member.
[0013] According to one embodiment of the present invention, the support block has a support groove, the wire is placed in the support groove, and the clamping member clamps the wire.
[0014] According to one embodiment of the present invention, it further includes a tensioning component, which includes a fourth driving member and two connecting plates. The fourth driving member is disposed on the rotating component, and the two connecting plates are disposed at intervals on the output end of the fourth driving member. The two connecting plates are respectively connected to the carrier frame and the second assemblies. The fourth driving member drives the carrier frame and the second assemblies to rotate relative to the rotating component through the two connecting plates, so that the ends of the carrier frame and the second assemblies away from the rotating component move closer to each other or further away from each other.
[0015] According to one embodiment of the present invention, a shielding component is also included, which includes a fifth driving member and a second baffle. The fifth driving member is disposed on the support component, and the second baffle is connected to the output end of the fifth driving member. The fifth driving member drives the second baffle to move to the feeding port of the support component.
[0016] According to one embodiment of the present invention, both the first outer cover and the second outer cover are hinged to the second support plate.
[0017] The beneficial effects of this utility model are as follows: through the cooperation of the support component, the rotating component, the first assembly component, the second assembly component, and the clamping and pushing component, after the wire is placed into the clamping and pushing component, the second and third assembly components begin to work, spreading out the mesh wires on the wire. At the same time, the rotating component drives the second and third assembly components to rotate, and the clamping and pushing component drives the wire to move back and forth linearly, thereby improving the spreading effect of the mesh wires. After the mesh wires are spread out, they can be taken out and cut. This not only reduces the strength and hardness of the blade but also reduces damage to the blade. In addition, it avoids damage to the internal wires of the wire, effectively improving the processing efficiency and yield of the wire. Attached Figure Description
[0018] Figure 1 One of the three-dimensional diagrams of a shielded network cable de-tangling device; Figure 2 The second 3D view of a shielded network cable de-tangling device; Figure 3 The third 3D view of the shielded network cable de-tangling device; Figure 4 The fourth 3D view of the shielded network cable de-tangling device; Figure 5 A cross-sectional schematic diagram of the supporting components; Figure 6 This is a three-dimensional structural diagram of the tensioning component.
[0019] In the picture: 1. Support assembly; 11. First support plate; 12. Second support plate; 13. First outer cover; 14. Second outer cover; 15. First inner cavity; 16. Second inner cavity; 17. Feed port; 2. Rotating assembly; 21. Bearing plate; 22. First driving component; 23. First transmission component; 24. First mounting plate; 25. First baffle; 26. Support rod; 3. First assembly line component; 31. Support frame; 32. Second drive component; 33. Second transmission component; 34. Brush component; 4. Second assembly line component; 5. Clamping and pushing assembly; 51. Third driving component; 52. Second mounting plate; 53. Clamping component; 54. Support block; 541. Support groove; 6. Tensioning assembly; 61. Fourth driving component; 62. Connecting plate; 7. Shielding assembly; 71. Fifth drive unit; 72. Second baffle. Detailed Implementation
[0020] To more clearly present the technical problem to be solved, the technical solution adopted, and the technical effect achieved by this application, the technical solution of this application will be further described below with reference to the accompanying drawings and specific embodiments.
[0021] In describing this application, unless explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or a connection forming a whole; they can be mechanical or electrical; they can be direct or indirect through an intermediate medium; or they can refer to two components that are internally connected or have an interactive relationship. Those skilled in the art can understand the actual meaning of these terms in this application based on the specific circumstances.
[0022] In this application, unless explicitly specified and limited, the term "above" or "below" the second feature can include both situations where the first and second features are in direct contact and situations where they are in contact through other features between them. Furthermore, the terms "above," "over," and "on top" of the second feature include situations where the first feature is directly above or diagonally above the second feature, or simply indicate that the first feature is at a higher horizontal level than the second feature. Similarly, the terms "below," "below," and "under" the second feature include situations where the first feature is directly below or diagonally below the second feature, or simply indicate that the first feature is at a lower horizontal level than the second feature.
[0023] In describing this embodiment, the terms "up," "down," "left," and "right," etc., refer to the orientations or positional relationships shown in the accompanying drawings. This is done solely for ease of description and simplification of operation, and does not indicate or imply that the mentioned devices or components must have a specific orientation, or must be constructed and operated according to a specific orientation. Therefore, it should not be construed as a limitation of this application. Furthermore, the terms "first" and "second" are used only for distinction in description and have no special meaning.
[0024] like Figures 1-6 As shown, Figure 1 One of the three-dimensional diagrams of a shielded network cable de-tangling device; Figure 2 The second 3D view of a shielded network cable de-tangling device; Figure 3 The third 3D view of the shielded network cable de-tangling device; Figure 4The fourth 3D view of the shielded network cable de-tangling device; Figure 5 A cross-sectional view of supporting component 1; Figure 6 This is a three-dimensional structural diagram of the tensioning component 6.
[0025] The shielded wire mesh unpacking device includes a support component 1, a rotating component 2, a first wire straightening component 3, a second wire straightening component 4, and a clamping and pushing component 5. The rotating component 2 is disposed on the support component 1, and both the first wire straightening component 3 and the second wire straightening component 4 are disposed on the rotating component 2. The clamping and pushing component 5 is disposed on the support component 1, and is positioned opposite to the first wire straightening component 3 and the second wire straightening component 4. The wire is placed on the clamping and pushing component 5, and the first wire straightening component 3 and the second wire straightening component 4 unpack the exposed mesh wires on the wire, that is, they unpack and straighten the interwoven wires.
[0026] Support assembly 1 includes a first support plate 11, a second support plate 12, a first outer cover 13, and a second outer cover 14. The second support plate 12 is disposed on the first support plate 11, the first outer cover 13 is disposed on the first support plate 11 and located on one side of the second support plate 12, and the second outer cover 14 is disposed on the first support plate 11 and located on the other side of the second support plate 12. The first outer cover 13, one side of the second support plate 12, and the first support plate 11 together constitute the first inner cavity 15. Similarly, the second outer cover 14, the other side of the second support plate 12, and the first support plate 11 together constitute the second inner cavity 16. Rotation assembly 2 is located in the first inner cavity 15, and the first and second aligning assemblies 3 and 4 are simultaneously distributed in the first and second inner cavities 15 and 16, respectively. Clamping and pushing assembly 5 is located in the second inner cavity 16.
[0027] In practical applications, the second support plate 12 is vertically mounted on the first support plate 11. The first outer cover 13 is hinged to the second support plate 12, and the second outer cover 14 is also hinged to the second support plate 12. In other words, both the first outer cover 13 and the second outer cover 14 can be flipped relative to the second support plate 12 to facilitate the installation, maintenance, or disassembly of the rotating assembly 2, the first assembly assembly 3, the second assembly assembly 4, and the clamping and pushing assembly 5. Specifically, the second outer cover 14 can be supported by a transparent material to allow observation of the line processing.
[0028] The rotating assembly 2 includes a support plate 21, a first driving member 22, a first transmission member 23, and a first mounting plate 24. The support plate 21 is disposed on the first support plate 11, the first driving member 22 is disposed on the support plate 21, the first transmission member 23 is rotatably disposed on the support plate 21, and the first mounting plate 24 is disposed on the first transmission member 23. The first assemblies 3 and 4 are both disposed on the first mounting plate 24. In specific applications, the first driving member 22 operates and drives the first transmission member 23 to rotate relative to the support plate 21. The first transmission member 23 drives the first mounting plate 24 to rotate as well, and the first mounting plate then drives the first assemblies 3 and 4 to rotate. In addition, the rotating assembly 2 also includes a first baffle 25 and a support rod 26. The first baffle 25 is rotatably disposed on the second support plate 12, and the two ends of the support rod 26 are respectively connected to the first mounting plate 24 and the first baffle 25. During operation, when the first mounting plate 24 rotates, it will drive the first baffle 25 to rotate together through the support rod 26. Specifically, there are two support rods 26, which are spaced apart between the first mounting plate 24 and the first baffle 25 to improve the stability of the connection between the first mounting plate 24 and the first baffle 25.
[0029] In this embodiment, the first driving component 22 is a motor, and the first transmission component 23 is a gear structure. In order for the first driving component 22 to drive the first transmission component 23 to move, a transmission gear needs to be installed at the output shaft of the first driving component 22, and the transmission gear meshes with the first transmission component 23.
[0030] The first assembly line 3 includes a support frame 31, a second drive member 32, a second transmission member 33, and a brush member 34. The support frame 31 is mounted on the first mounting plate 24, the second drive member 32 is mounted on the support frame 31, the second transmission member 33 is rotatably mounted on the support frame 31, and the brush member 34 is mounted on the second transmission member 33. During operation, the second drive member 32 operates and drives the second transmission member 33 to rotate relative to the support frame 31. The second transmission member 33 then drives the brush member 34 to rotate as well. The rotation of the brush member 34 disperses the mesh wires on the line.
[0031] In practical applications, a portion of the support frame 31 is located in the first inner cavity 15, while another portion extends through the first baffle 25 into the second inner cavity 16. The second driving component 32 is a motor, and the second transmission component 33 is a gear structure. Since the second driving component 32 is located in the first inner cavity 15, and the second transmission component 33 is located in the second inner cavity 16, in order to achieve the transmission connection between the two, the second driving component 32 and the second transmission component 33 can be connected by a transmission belt. The output shaft of the second driving component 32 is equipped with a gear, which meshes with the transmission belt. The second transmission component 33 also meshes with the transmission belt, thus enabling power transmission.
[0032] It should be noted that the second assembly line component 4 has the same structure as the first assembly line component 3. Therefore, the second assembly line component 4 will not be described in detail. For details, please refer to the introduction of the first assembly line component 3.
[0033] The clamping and pushing assembly 5 includes a third driving member 51, a second mounting plate 52, a clamping member 53, and a supporting block 54. The third driving member 51 is disposed on the first support plate 11, the second mounting plate 52 is disposed on the output end of the third driving member 51, the clamping member 53 is disposed on the second mounting plate 52, and the supporting block 54 is disposed on the side of the clamping member 53 away from the second mounting plate 52. In use, the cable is placed on the supporting block and the clamping member 53. The clamping member 53 clamps the cable. While the brush member 34 spreads the mesh of the cable, the third driving member 51 works and drives the clamping member 53 to move linearly through the second mounting plate 52. At this time, the cable also moves back and forth linearly. In other words, the cable is spread out while moving back and forth linearly. This method is beneficial to improving the spreading effect of the mesh of the cable. In this embodiment, the third driving member 51 is a cylinder, and the clamping member 53 is an existing pneumatic finger product, which can achieve clamping of the cable.
[0034] Preferably, the outer surface of the support block 54 is provided with a support groove 541, and the wire is placed in the support groove 541.
[0035] In another embodiment, the shielded wire unpacking device further includes a tensioning component 6, which is disposed on the first mounting plate 24 and simultaneously connects to the first cable assembly 3 and the second cable assembly 4. The tensioning component 6 includes a fourth driving member 61 and two connecting plates 62. The fourth driving member 61 is disposed on the first mounting plate 24, and the two connecting plates 62 are disposed at the output end of the fourth driving member 61, respectively connecting to the support frame 31 and the second cable assembly 4. Furthermore, one end of the support frame 31 is rotatably connected to the first mounting plate 24. To achieve relative rotation between the support frame 31 and the first mounting plate 24, the width of the notch on the first baffle 25 is greater than the width of the support frame 31, thus preventing obstruction of the support frame 31's rotation relative to the first mounting plate 24. Specifically, the fourth driving member 61 is a conventional pneumatic finger product. In the initial state, there is a wide distance between the brush pieces 34 on the first assembly 3 and the brush pieces 34 on the second assembly 4. After the line is placed in the designated position, the line will be located between the two brush pieces 34. At this time, the fourth drive member 61 works, which pulls the support frame 31 of the first assembly 3 and the support frame 31 of the second assembly 4 towards each other through the two connecting plates 62. The support frame 31 will rotate relative to the first mounting plate 24, and the two brush pieces 34 will also move closer to each other until both brush pieces 34 act on the line. Then the second drive member 32 works and drives the brush pieces 34 to rotate through the second transmission member 33. Then the first drive member 22 also works and drives the first mounting plate 24, the first baffle 25 and the support rod 26 to rotate together through the first transmission member 23, so as to more comprehensively spread out the mesh of the line.
[0036] Furthermore, the shielded wire disintegration device also includes a shielding component 7, which is located in the second inner cavity 16 and on the side of the clamping and pushing component 5 away from the second support plate 12. The shielding component 7 includes a fifth driving member 71 and a second baffle 72. The fifth driving member 71 is disposed on the first support plate 11, and the second baffle 72 is disposed at the output end of the fifth driving member 71. The fifth driving member 71 drives the second baffle 72 to move. The second outer cover 14 is provided with a feeding port 17. The wire is placed into the support groove 541 through the feeding port 17. To improve safety, when the operator places the wire into the support groove 541, the fifth driving member 71 will work, driving the second baffle 72 to move to the feeding port 17, thereby shielding the feeding port 17 to prevent external objects from entering the second inner cavity 16. In this embodiment, the fifth driving member 71 is a cylinder.
[0037] In summary, through the cooperation of the support component 1, the rotating component 2, the first assembly component 3, the second assembly component 4, and the clamping and pushing component 5, after the yarn is placed into the clamping and pushing component 5, the second and third assembly components begin to work, spreading out the mesh wires on the yarn. At the same time, the rotating component 2 drives the second and third assembly components to rotate, and the clamping and pushing component 5 drives the yarn to move back and forth linearly, thereby improving the spreading effect of the mesh wires. Once the mesh wires are spread out, they can be removed and cut. This not only reduces the strength and hardness of the blade but also reduces damage to the blade. In addition, it avoids damage to the internal wires of the yarn, effectively improving the processing efficiency and yield of the yarn.
[0038] Obviously, the above embodiments of the present invention are merely examples for clearly illustrating the present invention and are not intended to limit the implementation of the present invention. Those skilled in the art will recognize that other variations or modifications can be made based on the above description. It is neither necessary nor possible to list all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the scope of protection of the claims of the present invention.
Claims
1. A shielded network cable decongestion device, characterized in that, include: The assembly includes a support component (1), a rotating component (2), a first assembly assembly (3), a second assembly assembly (4), and a clamping and pushing component (5). The rotating component (2) is located on the support component (1), the first assembly assembly (3) and the second assembly assembly (4) are located on the rotating component (2), and the clamping and pushing component (5) is located on the support component (1), with the clamping and pushing component (5) facing the first assembly assembly (3) and the second assembly assembly (4). The yarn is placed in the clamping and pushing assembly (5). The first yarn assembly (3) and the second yarn assembly (4) respectively spread out the mesh on the yarn. The rotating assembly (2) drives the first yarn assembly (3) and the second yarn assembly (4) to rotate around the mesh, and the clamping and pushing assembly (5) drives the yarn to move linearly.
2. The shielded network cable de-tangling device according to claim 1, characterized in that, The support assembly (1) includes a first support plate (11), a second support plate (12), a first outer cover (13) and a second outer cover (14). The second support plate (12) is disposed on the first support plate (11), the first outer cover (13) is disposed on the first support plate (11), and a first inner cavity (15) is formed on one side of the first outer cover (13), the first support plate (11) and the second support plate (12). The second outer cover (14) is disposed on the first support plate (11), and a second inner cavity (16) is formed on the other side of the second outer cover (14), the first support plate (11) and the second support plate (12). The rotating assembly (2), the first aligning assembly (3) and the second aligning assembly (4) are located in the first inner cavity (15), and the clamping and pushing assembly (5) is located in the second inner cavity (16).
3. The shielded network cable de-tangling device according to claim 1, characterized in that, The rotating assembly (2) includes a support plate (21), a first driving member (22), a first transmission member (23), and a first mounting plate (24). The support plate (21) is disposed on the support assembly (1), the first driving member (22) is disposed on the support plate (21), the first transmission member (23) is rotatably disposed on the support plate (21), and the first transmission member (23) is connected to the output end of the first driving member (22). The first mounting plate (24) is disposed on the side of the first transmission member (23) away from the support plate (21). The first assemblies (3) and the second assemblies (4) are both disposed on the first mounting plate (24).
4. The shielded network cable de-tangling device according to claim 3, characterized in that, The rotating assembly (2) also includes a first baffle (25) and a support rod (26). The first baffle (25) and the first mounting plate (24) are spaced apart, and the support rod (26) connects the first baffle (25) and the first mounting plate (24) respectively.
5. The shielded network cable de-tangling device according to claim 1, characterized in that, The first assembly line (3) includes a support frame (31), a second drive member (32), a second transmission member (33), and a brush member (34). The support frame (31) is disposed on the rotating assembly (2), the second drive member (32) is disposed on the support frame (31), the second transmission member (33) is rotatably disposed on the support frame (31), the second drive member (32) drives the second transmission member (33) to rotate, and the brush member (34) is disposed on the second transmission member (33).
6. The shielded network cable de-tangling device according to claim 1, characterized in that, The clamping and pushing assembly (5) includes a third driving member (51), a second mounting plate (52), a clamping member (53), and a supporting block (54). The third driving member (51) is disposed on the support assembly (1), the second mounting plate (52) is connected to the output end of the third driving member (51), the clamping member (53) is disposed on the second mounting plate (52), and the supporting block (54) is disposed on the clamping member (53).
7. The shielded network cable de-tangling device according to claim 6, characterized in that, The support block (54) has a support groove (541), the wire is placed in the support groove (541), and the clamping member (53) clamps the wire.
8. The shielded network cable de-tangling device according to claim 5, characterized in that, It also includes a tensioning component (6), which includes a fourth drive member (61) and two connecting plates (62). The fourth drive member (61) is disposed on the rotating component (2), and the two connecting plates (62) are spaced apart at the output end of the fourth drive member (61). The two connecting plates (62) are respectively connected to the support frame (31) and the second assembly assembly (4). The fourth drive member (61) drives the support frame (31) and the second assembly assembly (4) to rotate relative to the rotating component (2) through the two connecting plates (62), so that the ends of the support frame (31) and the second assembly assembly (4) away from the rotating component (2) move closer to each other or further away from each other.
9. The shielded wire mesh unpacking device according to any one of claims 1-8, characterized in that, It also includes a shielding component (7), which includes a fifth drive member (71) and a second baffle (72). The fifth drive member (71) is disposed on the support component (1), and the second baffle (72) is connected to the output end of the fifth drive member (71). The fifth drive member (71) drives the second baffle (72) to move to the feed port (17) of the support component (1).
10. The shielded network cable de-tangling device according to claim 2, characterized in that, Both the first outer cover (13) and the second outer cover (14) are hinged to the second support plate (12).