Auxiliary tool for casing of data line

By designing auxiliary tooling for data cable housings, and using linear drive components to automatically push the metal housings together, the problem of worker hand fatigue was solved, and an efficient and safe metal housing assembly process was achieved.

CN224217884UActive Publication Date: 2026-05-08ZHUHAI Y&Y TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHUHAI Y&Y TECH CO LTD
Filing Date
2025-05-21
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

In existing technologies, when workers are installing the metal casing at the data cable connector, prolonged and repeated forceful pushing and pressing can lead to hand fatigue and injury, resulting in high labor intensity.

Method used

A data cable housing auxiliary tooling was designed, including a base plate, a support block, a push block, and a linear drive component. The linear drive component drives the push block to push the metal housing and circuit board into the clearance groove, realizing the automatic snap-fit ​​of the metal housing and reducing manual operation.

Benefits of technology

It reduces the labor intensity of workers' hands, avoids fatigue and damage caused by prolonged repetitive forceful pressing of the metal shell, and improves the efficiency and safety of the kit.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a data line casing auxiliary tool, which relates to the technical field of data line processing and comprises a substrate, a support block, a push block and a linear driving piece. The supporting block is arranged on the substrate, the supporting block is provided with a cable groove, the cable groove is used for placing a cable part of a data line, the supporting block is provided with a first avoiding groove communicated with the cable groove, and the front inner side surface of the first avoiding groove is a supporting surface; the pushing block is connected to the substrate in a sliding mode in the front-back direction, the pushing block is located in front of the supporting block, the side face, facing the pushing block, of the supporting block is a pushing face, the pushing face is provided with a second receding groove, the second receding groove is used for allowing a jack of the data line to stretch in, and the pushing face is used for abutting against the metal shell; the output end of the linear driving piece is connected with the pushing block, and the linear driving piece can drive the pushing block to be close to the supporting block so that the circuit board can abut against the supporting face and the metal shell can be buckled to the circuit board. According to the data line casing auxiliary tool, the step of forcibly pushing and pressing a metal casing by a worker is replaced, and the labor intensity of the hand of the worker can be reduced.
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Description

Technical Field

[0001] This utility model relates to the field of data cable processing technology, and in particular to an auxiliary tooling for data cable housing. Background Technology

[0002] A data cable is an electronic accessory used to connect electronic devices, enabling data transfer and charging. To protect the circuit board at the data cable connector, a metal casing is typically fitted over it. Currently, workers must first insert the metal casing into the connector and then forcefully push it to engage with the circuit board. This repetitive and prolonged forceful pushing can easily cause hand fatigue and injury, thus failing to reduce the physical strain on workers' hands. Utility Model Content

[0003] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes an auxiliary tooling for data cable housings, which helps reduce the labor intensity of workers' hands.

[0004] The auxiliary tooling for the data cable housing according to an embodiment of the present invention includes a base plate, a support block, a push block, and a linear drive component.

[0005] A support block is disposed on the substrate. The support block has a cable groove parallel to the front-back direction for inserting the cable portion of a data cable. The support block has a first clearance groove communicating with the cable groove. The front inner side of the first clearance groove is a support surface. The first clearance groove is for the metal shell and the circuit board of the data cable to extend into. The support surface is used to abut against the circuit board. A push block is slidably connected to the substrate in the front-back direction. The push block is located in front of the support block. The side of the support block facing the push block is a push surface. The push surface has a second clearance groove for the data cable connector to extend into. The push surface is used to abut against the metal shell. A linear drive is disposed on the substrate. The output end of the linear drive is connected to the push block. The linear drive can drive the push block closer to the support block so that the push surface pushes the metal shell and the circuit board into the first clearance groove, and the circuit board abuts against the support surface and the metal shell is fastened to the circuit board.

[0006] It has at least the following beneficial effects:

[0007] When it's necessary to fit the metal casing onto the data cable connector, the worker first slips the metal casing over the connector, leaving it loose. Next, the worker inserts the data cable connector into the second clearance slot on the push block and places the cable portion into the cable groove on the support block. At this point, the rear ends of both the metal casing and the data cable's circuit board extend into the first clearance slot on the support block. The worker then activates the linear drive, causing the push block to move backward and closer to the support block. As the push block moves backward, the pushing surface on the support block abuts against the metal casing, pushing it backward and causing the circuit board and cable portion of the data cable to move backward together. With continued pushing, the metal casing and the data cable's circuit board extend into the first clearance slot, and the circuit board abuts against the support surface on the inner wall of the first clearance slot. At this point, the circuit board cannot move further backward, while the metal casing, pushed by the push block, continues to move backward relative to the circuit board and engages with it, completing the fitting of the metal casing. Finally, the linear drive unit moves the pusher forward away from the support block, allowing the worker to remove the completed data cable assembly. This data cable housing auxiliary fixture replaces the step of the worker forcefully pushing the metal shell, avoiding fatigue and injury to the worker's hands caused by repetitive forceful pushing of the metal shell over a long period of time, thus helping to reduce the labor intensity of the worker's hands.

[0008] The auxiliary tooling for the data cable housing according to an embodiment of the present utility model further includes a positioning slider, which is slidably connected to the substrate in the front-back direction. The positioning slider is provided with a first positioning groove, and the push block is detachably connected in the first positioning groove. The positioning slider is connected to the output end of the linear drive.

[0009] The auxiliary tooling for the data cable housing according to an embodiment of the present utility model further includes two guide rods parallel to the front-back direction. Both guide rods are disposed on the substrate. The positioning slider has two guide holes, and the two guide rods are respectively inserted into the two guide holes.

[0010] The auxiliary tooling for the data cable housing according to an embodiment of the present utility model further includes a plurality of first fasteners. The push block has a plurality of first mounting holes. The plurality of first fasteners are respectively inserted into the plurality of first mounting holes and threadedly connected to the inner wall of the first positioning groove. The push block is connected to the inner wall of the first positioning groove through the plurality of first fasteners.

[0011] The auxiliary tooling for the data cable housing according to an embodiment of the present utility model further includes a positioning barrier, which is disposed on the base plate. The base plate and the positioning barrier together form a second positioning groove. The support block is disposed in the second positioning groove and is detachably connected to the positioning barrier.

[0012] According to the data cable housing auxiliary tooling of the present utility model embodiment, it further includes a plurality of second fasteners. The support block has a plurality of second mounting holes. The plurality of second fasteners are respectively inserted into the plurality of second mounting holes and threadedly connected to the positioning guard. The support block is connected to the positioning guard through the plurality of second fasteners.

[0013] According to the auxiliary tooling for the data cable housing in this embodiment of the present utility model, the linear drive component is a cylinder, the cylinder body is disposed on the base plate, and the piston rod of the cylinder is connected to the push block.

[0014] According to the auxiliary tooling for data cable housings in this embodiment of the present invention, the rear end of the substrate is provided with a clamping assembly, and the substrate is fixed on the worktable by the clamping assembly.

[0015] According to the data cable housing auxiliary tooling of this utility model embodiment, the clamping assembly includes a bending member and multiple screws. The bending member and the substrate form a receiving groove, which is used for the edge of the worktable to extend into. The multiple screws are all threadedly connected to the bending member, and the upper ends of the multiple screws are all inserted into the receiving groove. The upper ends of the multiple screws can all press against the edge of the worktable to fix the substrate on the worktable.

[0016] The auxiliary tooling for the data cable housing according to an embodiment of the present utility model further includes a foot switch, which is electrically connected to the linear drive. When the foot switch is pressed, the linear drive causes the push block to move closer to the support block. When the foot switch is released, the linear drive causes the push block to move away from the support block.

[0017] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0018] The present invention will be further described below with reference to the accompanying drawings and embodiments, wherein:

[0019] Figure 1 This is a schematic diagram of the data cable structure according to an embodiment of the present invention;

[0020] Figure 2 This is a schematic diagram of the structure of the auxiliary tooling for fixing the data cable housing on the workbench according to an embodiment of the present invention;

[0021] Figure 3 This is a structural diagram of the auxiliary tooling for the data cable housing;

[0022] Figure 4 yes Figure 3A magnified view of a section at point A in the middle;

[0023] Figure 5 This is a partial structural diagram of the auxiliary tooling for the data cable housing;

[0024] Figure 6 This is a side view of the auxiliary tooling for the data cable housing;

[0025] Icon labels:

[0026] Support block 100; cable channel 110; first clearance groove 120; support surface 130; second fastener 140;

[0027] Push block 200; second clearance groove 210; top push surface 220; first fastener 230;

[0028] Substrate 300; positioning slider 310; first positioning groove 311; positioning barrier 320; second positioning groove 321; linear drive 330; guide rod 340;

[0029] Clamping assembly 400; bending component 410; receiving groove 411; screw 420; rubber pad 430; gripping part 440;

[0030] Cable section 10; circuit board 20; connector 30; metal casing 40. Detailed Implementation

[0031] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They 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. Therefore, they should not be construed as limitations on this utility model.

[0032] In the description of this utility model, the use of "first" and "second" is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance or implicitly indicating the number of technical features or the order of the technical features.

[0033] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.

[0034] refer to Figures 1 to 5 This utility model discloses an auxiliary tooling for a data cable housing, including a base plate 300, a support block 100, a push block 200, and a linear drive component 330.

[0035] A support block 100 is disposed on a substrate 300. The support block 100 has a cable groove 110 parallel to the front-rear direction, which is used to insert the cable portion 10 of a data cable. The support block 100 also has a first clearance groove 120 communicating with the cable groove 110. The front inner surface of the first clearance groove 120 is a support surface 130, which is used for the metal casing 40 and the circuit board 20 of the data cable to extend into. The support surface 130 abuts against the circuit board 20. A push block 200 is slidably connected to the substrate 300 in the front-rear direction. The push block 200 is located in front of the support block 100, and the support block 100 faces... The side of the push block 200 is a top pushing surface 220, and the top pushing surface 220 is provided with a second clearance groove 210. The second clearance groove 210 is used for the data cable socket 30 to extend into, and the top pushing surface 220 is used to abut against the metal shell 40. The linear drive 330 is provided on the substrate 300. The output end of the linear drive 330 is connected to the push block 200. The linear drive 330 can drive the push block 200 to approach the support block 100, so that the top pushing surface 220 pushes the metal shell 40 and the circuit board 20 into the first clearance groove 120, and makes the circuit board 20 abut against the support surface 130 and the metal shell 40 fastened to the circuit board 20.

[0036] In this embodiment of the utility model, the cable groove 110 on the support block 100, which is parallel to the front-back direction, is used to place the cable part 10 of the data cable. The width of the cable groove 110 is greater than the diameter of the cable part 10. Therefore, after the cable part 10 is placed in the cable groove 110, the cable part 10 can move in the front-back direction within the cable groove 110.

[0037] Understandably, when it is necessary to fit the metal casing 40 onto the data cable connector 30, the worker can first slip the metal casing 40 onto the connector 30, at which point the metal casing 40 is in a loose state. Next, the worker inserts the data cable connector 30 into the second clearance slot 210 on the push block 200 and places the cable portion 10 of the data cable into the cable groove 110 on the support block 100. At this point, the rear ends of both the metal casing 40 and the circuit board 20 of the data cable extend into the first clearance slot 120 on the support block 100. Then, the worker activates the linear drive 330, causing the push block 200 to move backward and approach the support block 100. During the backward movement of the push block 200, the pushing surface 220 on the support block 100 abuts against the metal casing 40 and pushes the metal casing 40 backward, causing the circuit board 20 and the cable portion 10 of the data cable to move backward together. As the pusher 200 continues to push, the metal casing 40 and the circuit board 20 of the data cable extend into the first clearance groove 120, and the circuit board 20 abuts against the support surface 130 on the inner wall of the first clearance groove 120. At this point, the circuit board 20 can no longer move backward, while the metal casing 40 continues to move backward relative to the circuit board 20 under the pusher 200 and snaps onto the circuit board 20, thus completing the assembly of the metal casing 40. Finally, the linear drive 330 drives the pusher 200 forward away from the support block 100, and the worker can then remove the assembled data cable. This data cable housing auxiliary fixture replaces the step of the worker forcefully pushing the metal casing 40, avoiding fatigue and injury to the worker's hands caused by repeated forceful pushing of the metal casing 40 over a long period of time, thus helping to reduce the labor intensity of the worker's hands.

[0038] In this embodiment of the invention, the data cable housing auxiliary fixture also includes a foot switch (not shown in the figure). The foot switch is electrically connected to the linear drive 330. When the foot switch is pressed, the linear drive 330 drives the push block 200 closer to the support block 100. When the foot switch is released, the linear drive 330 drives the push block 200 away from the support block 100. It is understood that when using this data cable housing auxiliary fixture, the worker can control the linear drive 330 via the foot switch, thereby controlling the movement of the push block 200. This allows the worker's hands to focus on the positioning and placement of the data cable and the metal housing 40, reducing hand fatigue.

[0039] refer to Figure 4 and Figure 5The data cable housing auxiliary fixture also includes a positioning slider 310, which is slidably connected to the substrate 300 in the front-back direction. The positioning slider 310 has a first positioning groove 311, and a pusher block 200 is detachably connected to the first positioning groove 311. The positioning slider 310 is connected to the output end of the linear drive unit 330. It can be understood that the pusher block 200 is slidably connected to the substrate 300 in the front-back direction via the positioning slider 310, and the output end of the linear drive unit 330 is connected to the positioning slider 310, enabling the linear drive unit 330 to drive the positioning slider 310 and the pusher block 200 to move in the front-back direction. Different specifications of data cables typically correspond to different specifications of connectors 30. Since the push block 200 can be detachably connected to the first positioning groove 311 on the positioning slider 310, when different data cables need to be shelled, the worker can remove the original push block 200 from the first positioning groove 311 and install the push block 200 corresponding to the specification of the data cable socket 30 in the first positioning groove 311, so that the second clearance groove 210 on the push block 200 can smoothly insert the data cable socket 30, thereby improving the flexibility of the auxiliary tooling for data cable shelling.

[0040] refer to Figure 4 The auxiliary tooling for the data cable housing also includes multiple first fasteners 230. The push block 200 has multiple first mounting holes, and the multiple first fasteners 230 are respectively inserted into the multiple first mounting holes and threadedly connected to the inner wall of the first positioning groove 311. The push block 200 is connected to the inner wall of the first positioning groove 311 through the multiple first fasteners 230. The first fasteners 230 are first bolts. It can be understood that when the push block 200 needs to be installed in the first positioning groove 311, the worker can respectively insert multiple first bolts into the multiple first mounting holes on the push block 200 and thread them to the inner wall of the first positioning groove 311. Then the worker can tighten the multiple first bolts, so that the nuts of the multiple first bolts are pressed against the push block 200, thereby allowing the push block 200 to be fixedly connected to the inner wall of the first positioning groove 311. When it is necessary to remove the push block 200 from the first positioning groove 311, simply loosen the multiple first bolts; further details are omitted here. Specifically, the inner wall of the first positioning groove 311 has multiple first threaded holes, and the multiple first bolts can be threaded into the inner wall of the multiple first threaded holes respectively.

[0041] refer to Figure 4 and Figure 5The auxiliary tooling for the data cable housing also includes a positioning barrier 320, which is disposed on the base plate 300. The base plate 300 and the positioning barrier 320 together form a second positioning groove 321. A support block 100 is disposed within the second positioning groove 321 and is detachably connected to the positioning barrier 320. Different specifications of data cables typically correspond to different specifications of metal shell 40 and cable portion 10. Since the support block 100 can be detachably connected to the second positioning groove 321 inside the positioning enclosure 320, when it is necessary to encase data cables of different specifications, the worker can remove the original support block 100 from the second positioning groove 321 and install the support block 100 corresponding to the specification of the data cable plug 30 in the second positioning groove 321. This allows the cable groove 110 on the support block 100 to smoothly allow the cable portion 10 of the data cable to extend into it, and also allows the first clearance groove 120 on the support block 100 to smoothly allow the metal shell 40 and the circuit board 20 of the data cable to extend into it. This ensures that the support surface 130 on the inner wall of the first clearance groove 120 can support the circuit board 20 in the data cables of different specifications, thereby improving the flexibility of the auxiliary tooling for encasing data cables.

[0042] refer to Figure 5 The auxiliary tooling for the data cable housing also includes multiple second fasteners 140. The support block 100 has multiple second mounting holes, and the multiple second fasteners 140 are respectively inserted into the multiple second mounting holes and threadedly connected to the positioning guard 320. The support block 100 is connected to the positioning guard 320 through the multiple second fasteners 140. The second fasteners 140 are second bolts. It can be understood that when the support block 100 needs to be installed in the second positioning groove 321, the worker can respectively insert multiple second bolts into the multiple second mounting holes on the push block 200, and place the support block 100 into the second positioning groove 321, so that the multiple second bolts are threadedly connected to the positioning guard 320. Then the worker can tighten the multiple second bolts, so that the nuts of the multiple second bolts are pressed against the support block 100, thereby fixing the support block 100 to the positioning guard 320. When it is necessary to remove the support block 100 from the second positioning groove 321, simply loosen the multiple second bolts; further details are omitted here. Specifically, the inner side of the positioning enclosure 320 has multiple second threaded holes, and the multiple second bolts can be threaded into the inner walls of the multiple second threaded holes respectively.

[0043] refer to Figure 2 , Figure 3 and Figure 6The substrate 300 has a clamping assembly 400 at its rear end, which fixes the substrate 300 to the worktable. When the data cable housing auxiliary tooling needs to be moved, the worker can directly move the base to the corresponding area on the worktable. After the worker moves the substrate 300 to the designated position on the worktable, the worker can operate the clamping assembly 400 to clamp the worktable, so that the substrate 300 can be fixedly clamped on the worktable by the clamping assembly 400, so as to prevent the substrate 300 from shaking during the assembly process and improve the stability of the data cable housing auxiliary tooling. It should be noted that the worktable is an area for workers to perform production operations, which will not be further described here. As one embodiment of this utility model, the clamping assembly 400 includes two clamps, which are respectively connected to both sides of the substrate 300. The clamps can clamp the edge of the worktable, so that the substrate 300 can be fixed on the worktable.

[0044] refer to Figure 6 The clamping assembly 400 includes a bent component 410 and multiple screws 420. The bent component 410 and the substrate 300 form a receiving groove 411, which is used for the edge of the worktable to extend into. The multiple screws 420 are all threadedly connected to the bent component 410, and the upper ends of the multiple screws 420 are all inserted into the receiving groove 411. The upper ends of the multiple screws 420 can press against the edge of the worktable to fix the substrate 300 on the worktable. It can be understood that when it is necessary to fix the substrate 300 on the worktable, the worker can move the substrate 300 so that the edge of the worktable extends into the receiving groove 411 on the bent component 410. Then the worker can turn the multiple screws 420, and the multiple screws 420 gradually rise and press against the edge of the worktable, thereby fixing the substrate 300 on the worktable. When the substrate 300 needs to be moved, the worker can reverse multiple screws 420, causing them to disengage from the edge of the worktable, allowing the worker to move the substrate 300. The upper end of each screw 420 is equipped with a rubber pad 430, which abuts against the edge of the worktable. The lower end of each screw 420 has a gripping part 440. It is understood that the upper end of the screw 420 is pressed against the edge of the worktable by the rubber pad 430 to prevent damage to the worktable. The gripping part 440 at the lower end of the screw 420 allows the operator to rotate the screw 420, improving the ease of use of the clamping assembly 400.

[0045] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0046] Of course, this utility model is not limited to the above-described embodiments. Those skilled in the art can make equivalent modifications or substitutions without departing from the spirit of this utility model. All such equivalent modifications or substitutions are included within the scope defined by the claims of this application.

Claims

1. An auxiliary tooling for a data cable housing, characterized in that, include: substrate(300); A support block (100) is disposed on the substrate (300). The support block (100) is provided with a cable groove (110) parallel to the front-back direction. The cable groove (110) is used to insert the cable part (10) of the data cable. The support block (100) is provided with a first clearance groove (120) communicating with the cable groove (110). The front inner side of the first clearance groove (120) is a support surface (130). The first clearance groove (120) is used to allow the metal shell (40) and the circuit board (20) of the data cable to extend into. The support surface (130) is used to abut against the circuit board (20). A push block (200) is slidably connected to the base plate (300) in the front-back direction. The push block (200) is located in front of the support block (100). The side of the support block (100) facing the push block (200) is a push surface (220). The push surface (220) is provided with a second clearance groove (210). The second clearance groove (210) is used for the data cable socket (30) to extend into. The push surface (220) is used to abut against the metal shell (40). A linear drive (330) is disposed on the substrate (300). The output end of the linear drive (330) is connected to the push block (200). The linear drive (330) can drive the push block (200) to approach the support block (100) so that the top push surface (220) pushes the metal shell (40) and the circuit board (20) into the first clearance groove (120), and makes the circuit board (20) abut against the support surface (130) and the metal shell (40) fasten to the circuit board (20).

2. The auxiliary tooling for data cable housing according to claim 1, characterized in that: It also includes a positioning slider (310), which is slidably connected to the base plate (300) in the front-back direction. The positioning slider (310) is provided with a first positioning groove (311). The push block (200) is detachably connected in the first positioning groove (311). The positioning slider (310) is connected to the output end of the linear drive (330).

3. The auxiliary tooling for data cable housing according to claim 2, characterized in that: It also includes two guide rods (340) parallel to the front-back direction. Both guide rods (340) are disposed on the base plate (300). The positioning slider (310) has two guide holes, and the two guide rods (340) are respectively inserted into the two guide holes.

4. The auxiliary tooling for data cable housing according to claim 2, characterized in that: It also includes a plurality of first fasteners (230), and the push block (200) has a plurality of first mounting holes. The plurality of first fasteners (230) are respectively inserted into the plurality of first mounting holes and threadedly connected to the inner wall of the first positioning groove (311). The push block (200) is connected to the inner wall of the first positioning groove (311) through the plurality of first fasteners (230).

5. The auxiliary tooling for data cable housing according to claim 1, characterized in that: It also includes a positioning enclosure (320), which is disposed on the base plate (300). The base plate (300) and the positioning enclosure (320) together form a second positioning groove (321). The support block (100) is disposed in the second positioning groove (321) and is detachably connected to the positioning enclosure (320).

6. The auxiliary tooling for data cable housing according to claim 5, characterized in that: It also includes a plurality of second fasteners (140), and the support block (100) has a plurality of second mounting holes. The plurality of second fasteners (140) are respectively inserted into the plurality of second mounting holes and threadedly connected to the positioning enclosure (320). The support block (100) is connected to the positioning enclosure (320) through the plurality of second fasteners (140).

7. The auxiliary tooling for data cable housing according to claim 1, characterized in that: The linear drive (330) is a cylinder, the cylinder body of which is disposed on the base plate (300), and the piston rod of which is connected to the push block (200).

8. The auxiliary tooling for data cable housing according to claim 1, characterized in that: The substrate (300) has a clamping assembly (400) at its rear end, and the substrate (300) is fixed on the worktable by the clamping assembly (400).

9. The auxiliary tooling for data cable housing according to claim 8, characterized in that: The clamping assembly (400) includes a bending member (410) and multiple screws (420). The bending member (410) and the substrate (300) are enclosed to form a receiving groove (411). The receiving groove (411) is used for the edge of the worktable to extend into. The multiple screws (420) are all threadedly connected to the bending member (410). The upper ends of the multiple screws (420) are all inserted into the receiving groove (411). The upper ends of the multiple screws (420) can all press against the edge of the worktable to fix the substrate (300) on the worktable.

10. The auxiliary tooling for data cable housing according to claim 1, characterized in that: It also includes a foot switch, which is electrically connected to the linear drive (330). When the foot switch is pressed, the linear drive (330) drives the push block (200) closer to the support block (100). When the foot switch is released, the linear drive (330) drives the push block (200) away from the support block (100).