Mobile phone data line performance detection device

By combining electromagnetic structure and counting module, the system achieves automated and efficient counting of data cable plug-in/plug-out detection, solving the problems of low efficiency and inaccurate measurement in existing technologies. It is suitable for efficient detection of multiple data cables.

CN224190220UActive Publication Date: 2026-05-01GUIZHOU QILIAN INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUIZHOU QILIAN INTELLIGENT TECH CO LTD
Filing Date
2025-04-22
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

In existing technologies, the detection efficiency of data cable plug-in interfaces is low and the measurement is inaccurate. Furthermore, traditional detection devices have simple structures and limited functions, which cannot meet production needs.

Method used

An electromagnetic structure is used to clamp and insert/remove the data cable end. A counting module automatically records the number of insertions and removals, and a control module enables automated detection.

Benefits of technology

It improves detection efficiency and counting accuracy, reduces labor intensity, is suitable for use in automated equipment, and can be used to detect multiple data lines simultaneously.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224190220U_ABST
Patent Text Reader

Abstract

The utility model discloses a mobile phone data line performance detection device which comprises a base and a frame arranged on the base, an installation transverse plate is horizontally arranged in the middle of the frame, at least one installation pipe is vertically arranged on a top beam of the frame downwards, and the bottom end of the installation pipe penetrates through the installation transverse plate and is provided with a driving part. Clamping parts are arranged on the two sides of the driving part, the driving part can make the clamping parts move up and down in a reciprocating mode, the clamping parts can clamp and fix the ends of the data lines, an inserting part is arranged on the lower surface of the installation transverse plate, and the ends of the data lines can be inserted into the bottom of the inserting part. According to the utility model, the two ends of the data line are subjected to plugging detection at the same time, multiple data lines can be detected at the same time, the reciprocating motion of plugging is realized through the electromagnetic structure, and compared with a traditional mechanical structure, the electromagnetic structure acts more quickly, the plugging efficiency is higher, the stability is better, the control is convenient, and the automation degree is high; and the detection efficiency is greatly improved.
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Description

A mobile phone data cable performance testing device Technical Field

[0001] This utility model relates to a mobile phone data cable performance testing device, belonging to the field of electronic equipment testing technology. Background Technology

[0002] Mobile phone data cables are core accessories connecting mobile phones to power sources and devices, primarily used for charging and data transfer, with some supporting audio and video extension functions. With the rapid development of the electronics industry, data cables have become an indispensable part of our lives. During use, the connectors of data cables may become loose after several plug-and-play cycles. Therefore, before leaving the factory, the plug-and-play lifespan of data cables needs to be tested. Manual testing is inefficient, inaccurate, and labor-intensive. Traditional plug-and-play testing devices are simple in structure, have limited functionality, and are inefficient, failing to meet current production needs. Therefore, we propose a mobile phone data cable performance testing device. Summary of the Invention

[0003] The purpose of this invention is to provide a mobile phone data cable performance testing device that eliminates the need for manual testing and solves the problems of low operating efficiency and inaccurate measurement.

[0004] To solve the above technical problems, this utility model adopts the following technical solution: a mobile phone data cable performance testing device, including a base and a frame mounted on the base. The base serves as a counterweight and provides stable support. The frame is rectangular with an open bottom. A horizontal mounting plate is horizontally arranged in the middle of the frame. The mounting plate can be installed in a fixed installation method or an adjustable height installation method. At least one mounting tube is vertically arranged downwards from the top beam of the frame. The mounting tube has a hollow interior, which serves both as a fixing function and as a cable routing conduit. The bottom end of the mounting tube... A drive unit is provided through the mounting plate, and clamping parts are provided on both sides of the drive unit. The drive unit can cause the clamping parts to move up and down reciprocally. The clamping parts can clamp and fix the end of the data cable. The lower surface of the mounting plate is provided with a plug-in part. The plug-in part corresponds to the clamping part one by one. The end of the data cable can be plugged into the bottom of the plug-in part. Both ends of the data cable are clamped and fixed on the clamping parts on both sides of the drive unit. When the drive unit controls the clamping part to move up and down reciprocally, the clamping part drives the end of the data cable to move up and down, completing multiple plugging and unplugging actions to conduct plugging and unplugging tests.

[0005] The aforementioned mobile phone data cable performance testing device includes an electrical control box at the top of the mounting plate, a control module inside the electrical control box, and the control module being electrically connected to the drive unit, clamping unit, and plug-in unit via connecting lines, with the connecting lines arranged inside the mounting tube.

[0006] The aforementioned mobile phone data cable performance testing device includes a driving unit comprising a driving housing with an internal cavity. The inner layer of the driving housing is made of insulating material, and the outer layer is made of a metal shielding layer, which ensures insulation between the inside and outside and reduces interference from the internal magnetic field to external electrical signals. The driving housing is fixedly installed at the bottom of the mounting tube. A first electromagnetic part is provided at the bottom of the inner cavity of the driving housing, and a slidable adsorption slider is also provided on the upper side of the inner cavity of the driving housing. A first elastic component is provided between the adsorption slider and the first electromagnetic part. Slide grooves communicating with the inner cavity are provided on both sides of the driving housing. Connecting parts are provided on both sides of the adsorption slider. The connecting parts extend out of the slide grooves and are fixedly connected to the inner side wall of the clamping part. The first electromagnetic part is electrically connected to a control module. The control module can control the energization and de-energization of the first electromagnetic part. When the first electromagnetic part is energized, it can attract the adsorption slider to move downward. When the first electromagnetic part is de-energized, the first elastic component bounces the adsorption slider upward, so that the adsorption slider can move up and down quickly.

[0007] In the aforementioned mobile phone data cable performance testing device, two non-contacting contacts are provided at the top of the inner cavity of the drive housing. The two contacts are connected to a first counting module, which is placed in an electrical control box and electrically connected to a control module. A connecting contact piece is provided at the top of the adsorption slider, which is connected to and conducts through the two contacts. The control module provides a low-voltage electrical signal to the first counting module and the two contacts, forming a live circuit. When the adsorption slider moves upward to the top, the connecting contact piece connects and conducts through the two contacts, forming a complete electrical circuit. This allows the first counting module to receive a high-level signal and count once. Therefore, the adsorption slider can be counted by the first counting module when it moves up and down, and the data is transmitted to the control module.

[0008] The aforementioned mobile phone data cable performance testing device includes a clamping part comprising a main body, which is fixedly connected to an adsorption slider via a connecting part. A vertically penetrating clamping groove is formed on the outer surface of the main body. The end of the data cable is placed within the clamping groove. An installation groove is formed on one inner side wall of the clamping groove. A second electromagnetic part is provided on the inner side of the installation groove. The second electromagnetic part is electrically connected to a control module. A clamping slider adsorbed by the second electromagnetic part is provided at the inner and outer ends of the installation groove. A second elastic component is provided between the clamping slider and the second electromagnetic part. The outer end of the clamping slider extends out of the installation groove to press against the end surface of the data cable. The control module can control the energization and de-energization of the second electromagnetic part. In use, the control module controls the second electromagnetic part to be energized, attracting the clamping slider, which places the end of the data cable into the clamping groove. A retaining edge is provided on the side wall of the clamping groove. The end of the data cable is pressed against the retaining edge and the two side walls to position the end of the data cable. When the second electromagnetic part is de-energized, the second elastic component causes the clamping slider to pop outward to press against and fix the end of the data cable.

[0009] In the aforementioned mobile phone data cable performance testing device, the outer end of the clamping slider is provided with an anti-slip pad, and the outer surface of the anti-slip pad that contacts the end of the data cable is provided with anti-slip texture to increase friction and improve the stability of fixing the end of the data cable.

[0010] The aforementioned mobile phone data cable performance testing device includes a plug-in body, which is fixed to the lower surface of a bottom mounting plate. A plug-in port is embedded in the lower surface of the plug-in body. The plug at the end of the data cable can be plugged into the plug-in port. The plug-in port is electrically connected to a control module and is also connected to a second counting module. The second counting module is placed inside an electrical control box and electrically connected to the control module. The ends of the data cable are clamped and fixed on clamping parts on both sides of a drive unit. The control module controls the power supply to one of the plug-in ports. When the plugging action is completed, the data cable under test forms a power supply path. At the same time, the second counting module counts once and records the number of times the data cable under test forms a path and transmits the data to the control module.

[0011] The aforementioned mobile phone data cable performance testing device has an indicator light on the surface of the plug-in body. The indicator light is electrically connected to the plug-in port. The indicator light illuminates when the data cable to be tested forms a power supply path, making it easy for staff to observe.

[0012] The aforementioned mobile phone data cable performance testing device includes a limiting post on the upper surface of the main body and a limiting hole on the lower surface of the insertion main body. The top of the limiting post is inserted into the limiting hole. The limiting post assists in positioning, making the insertion and removal of the data cable end more accurate and preventing deviation.

[0013] Compared with the prior art, the present invention has at least the following beneficial effects:

[0014] (1) This utility model can simultaneously perform plugging and unplugging detection on both ends of the data cable and can detect multiple data cables at the same time, which greatly improves the detection efficiency. It is highly automated, simple to operate, and can greatly save labor costs.

[0015] (2) This utility model realizes the reciprocating motion of insertion and removal through an electromagnetic structure. Compared with the traditional mechanical structure, the electromagnetic structure responds faster, has higher insertion and removal efficiency, better stability, is easier to control, and has a high degree of automation, which can further improve the detection efficiency.

[0016] (3) This utility model uses a counter to record the insertion and removal actions and the number of times the data cable is connected at the same time. Automatic counting saves labor costs and the counting is more accurate. By comparing the counts, the effective insertion and removal life of the data cable can be measured more accurately.

[0017] (4) The data cable of this utility model has a simple installation method. It achieves automatic clamping and fixing through electromagnetic structure, which further reduces the labor intensity of workers. The automatic clamping and fixing structure requires simple and convenient operation and can be adapted to automated equipment such as robotic arms. Attached Figure Description

[0018] Figure 1 is a schematic diagram of the structure of this utility model;

[0019] Figure 2 is a schematic diagram of the drive unit structure of this utility model;

[0020] Figure 3 is a three-dimensional structural diagram of the clamping part of this utility model;

[0021] Figure 4 is a cross-sectional view of the clamping part along point A in Figure 3;

[0022] Figure 5 is a schematic diagram of the plug-in part structure of this utility model;

[0023] Figure 6 is a schematic block diagram of the electrical control principle of this utility model.

[0024] Reference numerals: 1-Base, 2-Frame, 3-Mounting plate, 4-Mounting tube, 5-Drive unit, 501-Drive housing, 502-First electromagnetic unit, 503-Adsorption slider, 504-First elastic component, 505-Slide groove, 506-Connecting part, 507-Contact point, 508-Connecting contact piece, 6-Clamping part, 601-Main body, 602-Clamping groove, 603-Mounting groove, 604-Second electromagnetic unit, 605-Second elastic component, 606-Anti-slip pad, 607-Limiting post, 7-Data cable, 8-Plug-in part, 801-Plug-in main body, 802-Plug-in port, 803-Indicator light, 804-Limiting hole, 9-Electrical control box, 901-Control module, 902-First counting module, 903-Second counting module.

[0025] The present invention will be further described below with reference to the accompanying drawings and specific embodiments. Detailed Implementation

[0026] Embodiment 1 of this utility model: A mobile phone data cable performance testing device includes a base 1 and a frame 2 mounted on the base 1. The base 1 serves as a counterweight and provides stable support. The frame 2 is rectangular with an open bottom. A horizontal mounting plate 3 is horizontally mounted in the middle of the frame 2. The mounting plate 3 can be installed using a fixed mounting method or an adjustable mounting method. At least one mounting tube 4 is vertically mounted downwards from the top beam of the frame 2. The mounting tube 4 has a hollow interior, serving both as a fixing function and as a cable routing conduit. The bottom end of the mounting tube 4 penetrates the mounting plate 3 and is provided with a drive mechanism. The driving part 5 has clamping parts 6 on both sides, and the driving part 5 can make the clamping parts 6 move up and down. The clamping parts 6 can clamp and fix the end of the data cable 7. The lower surface of the mounting plate 3 is provided with a plug-in part 8. The plug-in part 8 corresponds to the clamping part 6 one-to-one. The end of the data cable 7 can be plugged into the bottom of the plug-in part 8. The two ends of the data cable 7 are clamped and fixed on the clamping parts 6 on both sides of the driving part 5. When the driving part 5 controls the clamping part 6 to move up and down, the clamping part 6 drives the end of the data cable 7 to move up and down, completing multiple plugging and unplugging actions to conduct plugging and unplugging tests. An electrical control box 9 is provided on the top of the mounting plate 3. A control module 901 is provided inside the electrical control box 9. The control module 901 is connected to an external power source to supply power to each electrical component. The control module 901 can control the power supply and send low-voltage electrical signals. The control module 901 is electrically connected to the drive unit 5, the clamping unit 6 and the plug-in unit 8 through connecting lines, and the connecting lines are arranged inside the mounting tube 4.

[0027] Embodiment 2 of this utility model: A mobile phone data cable performance testing device includes a base 1 and a frame 2 mounted on the base 1. The base 1 serves as a counterweight and provides stable support. The frame 2 is rectangular with an open bottom. A horizontal mounting plate 3 is horizontally mounted in the middle of the frame 2. The mounting plate 3 can be installed using a fixed mounting method or an adjustable mounting method. At least one mounting tube 4 is vertically mounted downwards from the top beam of the frame 2. The mounting tube 4 has a hollow interior, serving both as a fixing device and as a cable routing conduit. The bottom end of the mounting tube 4 penetrates the mounting plate 3 and is provided with a drive mechanism. The driving part 5 has clamping parts 6 on both sides, and the driving part 5 can make the clamping parts 6 move up and down. The clamping parts 6 can clamp and fix the end of the data cable 7. The lower surface of the mounting plate 3 is provided with a plug-in part 8, which corresponds one-to-one with the clamping parts 6. The end of the data cable 7 can be plugged into the bottom of the plug-in part 8. The two ends of the data cable 7 are clamped and fixed on the clamping parts 6 on both sides of the driving part 5. When the driving part 5 controls the clamping parts 6 to move up and down, the clamping parts 6 drive the end of the data cable 7 to move up and down, completing multiple plugging and unplugging actions to perform plugging and unplugging tests. The top of the mounting plate 3 is provided with an electrical control box 9, and the electrical control box 9 is provided with a control module 901. The control module 901 is electrically connected to the driving part 5, the clamping parts 6 and the plug-in part 8 through connecting lines, and the connecting lines are arranged in the mounting tube 4.

[0028] The driving unit 5 includes a driving housing 501 with an internal cavity. The inner layer of the driving housing 501 is made of insulating material, and the outer layer is made of metal shielding layer, which ensures the insulation between the inside and outside and reduces the interference of the internal magnetic field on the external electrical signal. The driving housing 501 is fixedly installed at the bottom of the mounting tube 4. A first electromagnetic part 502 is provided at the bottom of the inner cavity of the driving housing 501. A slidable adsorption slider 503 is also provided on the upper side of the inner cavity of the driving housing 501, and a first elastic member 504 is provided between the adsorption slider 503 and the first electromagnetic part 502. The two sides of the suction slider 503 are provided with sliding grooves 505 communicating with its inner cavity. The two sides of the suction slider 503 are provided with connecting parts 506. The connecting parts 506 extend out of the sliding grooves 505 and are fixedly connected to the inner side wall of the clamping part 6. The first electromagnetic part 502 is electrically connected to the control module 901. The control module 901 can control the power supply and de-energization of the first electromagnetic part 502. When the first electromagnetic part 502 is energized, it can attract the suction slider 503 to move downward. When the first electromagnetic part 502 is de-energized, the first elastic member 504 bounces the suction slider 503 upward, so that the suction slider 503 can move up and down quickly. The top of the inner cavity of the drive housing 501 is provided with two non-contacting contacts 507. The two contacts 507 are connected to a first counting module 902. The first counting module 902 is placed in the electrical control box 9 and is electrically connected to the control module 901. The top of the adsorption slider 503 is provided with a connecting contact piece 508. The connecting contact piece 508 is connected to and conducts through the two contacts 507. The control module 901 provides a low-voltage electrical signal to the first counting module 902 and the two contacts 507. The two contacts 507 form a live circuit. When the adsorption slider 503 moves upward to the top, the connecting contact piece 508 connects to and conducts through the two contacts 507, forming a complete electrical circuit. This allows the first counting module 902 to receive a high-level signal and count once. Therefore, when the adsorption slider 503 moves up and down, it can be counted through the first counting module 902 and the data is transmitted to the control module 901.

[0029] Embodiment 3 of this utility model: A mobile phone data cable performance testing device includes a base 1 and a frame 2 mounted on the base 1. The base 1 serves as a counterweight and provides stable support. The frame 2 is rectangular with an open bottom. A horizontal mounting plate 3 is horizontally mounted in the middle of the frame 2. The mounting plate 3 can be installed using a fixed mounting method or an adjustable mounting method. At least one mounting tube 4 is vertically mounted downwards from the top beam of the frame 2. The mounting tube 4 has a hollow interior, serving both as a fixing device and as a cable routing conduit. The bottom end of the mounting tube 4 penetrates the mounting plate 3 and is provided with a drive mechanism. The driving part 5 has clamping parts 6 on both sides, and the driving part 5 can make the clamping parts 6 move up and down. The clamping parts 6 can clamp and fix the end of the data cable 7. The lower surface of the mounting plate 3 is provided with a plug-in part 8, which corresponds one-to-one with the clamping parts 6. The end of the data cable 7 can be plugged into the bottom of the plug-in part 8. The two ends of the data cable 7 are clamped and fixed on the clamping parts 6 on both sides of the driving part 5. When the driving part 5 controls the clamping parts 6 to move up and down, the clamping parts 6 drive the end of the data cable 7 to move up and down, completing multiple plugging and unplugging actions to perform plugging and unplugging tests. The top of the mounting plate 3 is provided with an electrical control box 9, and the electrical control box 9 is provided with a control module 901. The control module 901 is electrically connected to the driving part 5, the clamping parts 6 and the plug-in part 8 through connecting lines, and the connecting lines are arranged in the mounting tube 4.

[0030] The driving unit 5 includes a driving housing 501 with an internal cavity. The inner layer of the driving housing 501 is made of insulating material, and the outer layer is made of metal shielding layer, which ensures the insulation between the inside and outside and reduces the interference of the internal magnetic field on the external electrical signal. The driving housing 501 is fixedly installed at the bottom of the mounting tube 4. A first electromagnetic part 502 is provided at the bottom of the inner cavity of the driving housing 501. A slidable adsorption slider 503 is also provided on the upper side of the inner cavity of the driving housing 501, and a first elastic member 504 is provided between the adsorption slider 503 and the first electromagnetic part 502. The two sides of the suction slider 503 are provided with sliding grooves 505 communicating with its inner cavity. The two sides of the suction slider 503 are provided with connecting parts 506. The connecting parts 506 extend out of the sliding grooves 505 and are fixedly connected to the inner side wall of the clamping part 6. The first electromagnetic part 502 is electrically connected to the control module 901. The control module 901 can control the power supply and de-energization of the first electromagnetic part 502. When the first electromagnetic part 502 is energized, it can attract the suction slider 503 to move downward. When the first electromagnetic part 502 is de-energized, the first elastic member 504 bounces the suction slider 503 upward, so that the suction slider 503 can move up and down quickly. The top of the inner cavity of the drive housing 501 is provided with two non-contacting contacts 507. The two contacts 507 are connected to a first counting module 902. The first counting module 902 is placed in the electrical control box 9 and is electrically connected to the control module 901. The top of the adsorption slider 503 is provided with a connecting contact piece 508. The connecting contact piece 508 is connected to and conducts through the two contacts 507. The control module 901 provides a low-voltage electrical signal to the first counting module 902 and the two contacts 507. The two contacts 507 form a live circuit. When the adsorption slider 503 moves upward to the top, the connecting contact piece 508 connects to and conducts through the two contacts 507, forming a complete electrical circuit. This allows the first counting module 902 to receive a high-level signal and count once. Therefore, when the adsorption slider 503 moves up and down, it can be counted through the first counting module 902 and the data is transmitted to the control module 901.

[0031] The clamping part 6 includes a main body 601, which is fixedly connected to the adsorption slider 503 via a connecting part 506. A vertically penetrating clamping groove 602 is formed on the outer surface of the main body 601, and the end of the data cable 7 is placed within the clamping groove 602. An installation groove 603 is formed on one inner side wall of the clamping groove 602, and a second electromagnetic part 604 is provided inside the installation groove 603. The second electromagnetic part 604 is electrically connected to the control module 901. A clamping slider 608, which can be adsorbed by the second electromagnetic part 604, is provided at the inner and outer ends of the installation groove 603. The clamping slider 608 and the second electromagnetic part 604 are connected... A second elastic component 605 is provided. The outer end of the clamping slider 608 extends out of the mounting groove 603 to press the end surface of the data cable 7. The control module 901 can control the energization and de-energization of the second electromagnetic component 604. In use, the control module 901 controls the second electromagnetic component 604 to be energized, attracting the clamping slider 608, which places the end of the data cable 7 into the clamping groove 602. The side wall of the clamping groove 602 is provided with a retaining edge. The end of the data cable 7 is in close contact with the retaining edge and the side walls, which can position the end of the data cable 7. When the second electromagnetic component 604 is de-energized, the second elastic component 605 causes the clamping slider 608 to pop outward and press the end of the data cable 7 for fixation. The outer end of the clamping slider 608 is provided with an anti-slip pad 606, and the outer surface of the anti-slip pad 606 that contacts the end of the data cable 7 is provided with anti-slip texture to improve friction and improve the stability of fixing the end of the data cable 7.

[0032] Embodiment 4 of this utility model: A mobile phone data cable performance testing device includes a base 1 and a frame 2 mounted on the base 1. The base 1 serves as a counterweight and provides stable support. The frame 2 is rectangular with an open bottom. A horizontal mounting plate 3 is horizontally mounted in the middle of the frame 2. The mounting plate 3 can be installed using a fixed mounting method or an adjustable mounting method. At least one mounting tube 4 is vertically mounted downwards from the top beam of the frame 2. The mounting tube 4 has a hollow interior, serving both as a fixing function and as a cable routing conduit. The bottom end of the mounting tube 4 penetrates the mounting plate 3 and is provided with a drive mechanism. The driving part 5 has clamping parts 6 on both sides, and the driving part 5 can make the clamping parts 6 move up and down. The clamping parts 6 can clamp and fix the end of the data cable 7. The lower surface of the mounting plate 3 is provided with a plug-in part 8, which corresponds one-to-one with the clamping parts 6. The end of the data cable 7 can be plugged into the bottom of the plug-in part 8. The two ends of the data cable 7 are clamped and fixed on the clamping parts 6 on both sides of the driving part 5. When the driving part 5 controls the clamping parts 6 to move up and down, the clamping parts 6 drive the end of the data cable 7 to move up and down, completing multiple plugging and unplugging actions to perform plugging and unplugging tests. The top of the mounting plate 3 is provided with an electrical control box 9, and the electrical control box 9 is provided with a control module 901. The control module 901 is electrically connected to the driving part 5, the clamping parts 6 and the plug-in part 8 through connecting lines, and the connecting lines are arranged in the mounting tube 4.

[0033] The driving unit 5 includes a driving housing 501 with an internal cavity. The inner layer of the driving housing 501 is made of insulating material, and the outer layer is made of metal shielding layer, which ensures the insulation between the inside and outside and reduces the interference of the internal magnetic field on the external electrical signal. The driving housing 501 is fixedly installed at the bottom of the mounting tube 4. A first electromagnetic part 502 is provided at the bottom of the inner cavity of the driving housing 501. A slidable adsorption slider 503 is also provided on the upper side of the inner cavity of the driving housing 501, and a first elastic member 504 is provided between the adsorption slider 503 and the first electromagnetic part 502. The two sides of the suction slider 503 are provided with sliding grooves 505 communicating with its inner cavity. The two sides of the suction slider 503 are provided with connecting parts 506. The connecting parts 506 extend out of the sliding grooves 505 and are fixedly connected to the inner side wall of the clamping part 6. The first electromagnetic part 502 is electrically connected to the control module 901. The control module 901 can control the power supply and de-energization of the first electromagnetic part 502. When the first electromagnetic part 502 is energized, it can attract the suction slider 503 to move downward. When the first electromagnetic part 502 is de-energized, the first elastic member 504 bounces the suction slider 503 upward, so that the suction slider 503 can move up and down quickly. The top of the inner cavity of the drive housing 501 is provided with two non-contacting contacts 507. The two contacts 507 are connected to a first counting module 902. The first counting module 902 is placed in the electrical control box 9 and is electrically connected to the control module 901. The top of the adsorption slider 503 is provided with a connecting contact piece 508. The connecting contact piece 508 is connected to and conducts through the two contacts 507. The control module 901 provides a low-voltage electrical signal to the first counting module 902 and the two contacts 507. The two contacts 507 form a live circuit. When the adsorption slider 503 moves upward to the top, the connecting contact piece 508 connects to and conducts through the two contacts 507, forming a complete electrical circuit. This allows the first counting module 902 to receive a high-level signal and count once. Therefore, when the adsorption slider 503 moves up and down, it can be counted through the first counting module 902 and the data is transmitted to the control module 901.

[0034] The clamping part 6 includes a main body 601, which is fixedly connected to the adsorption slider 503 via a connecting part 506. A vertically penetrating clamping groove 602 is formed on the outer surface of the main body 601, and the end of the data cable 7 is placed within the clamping groove 602. An installation groove 603 is formed on one inner side wall of the clamping groove 602, and a second electromagnetic part 604 is provided inside the installation groove 603. The second electromagnetic part 604 is electrically connected to the control module 901. A clamping slider 608, which can be adsorbed by the second electromagnetic part 604, is provided at the inner and outer ends of the installation groove 603. The clamping slider 608 and the second electromagnetic part 604 are connected... A second elastic component 605 is provided. The outer end of the clamping slider 608 extends out of the mounting groove 603 to press the end surface of the data cable 7. The control module 901 can control the energization and de-energization of the second electromagnetic component 604. In use, the control module 901 controls the second electromagnetic component 604 to be energized, attracting the clamping slider 608, which places the end of the data cable 7 into the clamping groove 602. The side wall of the clamping groove 602 is provided with a retaining edge. The end of the data cable 7 is in close contact with the retaining edge and the side walls, which can position the end of the data cable 7. When the second electromagnetic component 604 is de-energized, the second elastic component 605 causes the clamping slider 608 to pop outward and press the end of the data cable 7 for fixation. The outer end of the clamping slider 608 is provided with an anti-slip pad 606, and the outer surface of the anti-slip pad 606 that contacts the end of the data cable 7 is provided with anti-slip texture to improve friction and improve the stability of fixing the end of the data cable 7.

[0035] The plug-in part 8 includes a plug-in body 801, which is fixed to the lower surface of the bottom mounting plate 3. A plug-in port 802 is embedded in the lower surface of the plug-in body 801. The plug at the end of the data cable 7 can be plugged into the plug-in port 802. The plug-in port 802 is electrically connected to the control module 901, and a second counting module 903 is connected to the plug-in port 802. The second counting module 903 is placed in the electrical control box 9 and electrically connected to the control module 901. The ends of the data cable 7 are clamped and fixed on the clamping parts 6 on both sides of a drive part 5. The control module 901 controls the power supply to one of its plug-in ports 802. When the plugging action is completed, the data cable 7 to be tested forms a power supply path. At the same time, the second counting module 903 counts once. The second counting module 903 records the number of times the data cable 7 to be tested forms a path and transmits the data to the control module 901. An indicator light 803 is provided on the surface of the plug-in body 801. The indicator light 803 is electrically connected to the plug-in port 802. The indicator light 803 lights up when the data cable 7 is tested and a power supply path is formed, making it easy for staff to observe. A limit post 607 is provided on the upper surface of the body 601, and a limit hole 804 is provided on the lower surface of the plug-in body 801. The top of the limit post 607 is inserted into the limit hole 804. The limit post assists in positioning, making the insertion and removal of the data cable 7 more accurate and preventing displacement.

[0036] The working principle of one embodiment of this utility model is as follows: When in use, the second electromagnetic part 604 is first energized by the control module 901, which attracts the clamping slider 608 to move and place the end of the data cable 7 to be tested into the clamping groove 602. The side wall of the clamping groove 602 is provided with a retaining edge. The end of the data cable 7 is close to the retaining edge and the fixed side walls, which can position the end of the data cable 7. Then, the second electromagnetic part 604 is de-energized, and the second elastic member 605 causes the clamping slider 608 to pop outward to press and fix the end of the data cable 7, thus fixing both ends of the data cable 7 onto the clamping parts 6 on both sides of a drive part 5.

[0037] After the multiple data lines 7 are fixed, the adsorption slider 503 is initially positioned at the top. The connecting contact 508 is connected to the two contacts 507 and conducts electricity, forming a complete electrical circuit. This causes the first counting module 902 to receive a high-level signal, count once, and transmit the data to the control module 901. After receiving the counting signal, the control module 901 controls the first electromagnetic part 502 to be energized for a period of time, which can be selected as 0.1s-1s. The energized first electromagnetic part 502 attracts the adsorption slider 503 to move downward for a period of time. Then, the first electromagnetic part 502 is de-energized, and the first elastic component 504 bounces the adsorption slider 503 upward, so that the adsorption slider 503 can move up and down quickly.

[0038] The reciprocating motion of the adsorption slider 503 drives the clamping part 6 to reciprocate, thereby enabling the plug at the end of the data cable 7 to be quickly inserted and removed. When the data cable 7 completes the insertion action, the data cable 7 to be tested forms a power supply path with the insertion ports 802 on both sides of the same driving part 5. At the same time, the second counting module 903 counts once. The second counting module 903 records the number of times the data cable 7 to be tested forms a path and transmits the data to the control module 901.

[0039] The control module 901 can accurately determine the effective number of plug-in / plug-out cycles of the data cable 7 under test by comparing two counts. When the two counts are out of sync, the corresponding drive unit 5 stops operating, and the indicator light 803 will not light up for a long time, reminding the staff to check and record the data cable 7. The lifespan of the data cable 7 can be accurately and effectively detected by the number of plug-in / plug-out cycles.

Claims

1. A mobile phone data cable performance testing device, characterized in that, The device includes a base (1) and a frame (2) mounted on the base (1). A mounting plate (3) is horizontally mounted in the middle of the frame (2). At least one mounting tube (4) is vertically mounted downward on the top beam of the frame (2). A driving part (5) is mounted through the mounting plate (3) at the bottom end of the mounting tube (4). Clamping parts (6) are provided on both sides of the driving part (5). The driving part (5) can make the clamping parts (6) move up and down. The clamping parts (6) can clamp and fix the end of the data cable (7). A plug-in part (8) is provided on the lower surface of the mounting plate (3). The plug-in part (8) corresponds to the clamping part (6) one-to-one. The end of the data cable (7) can be plugged into the bottom of the plug-in part (8).

2. The mobile phone data cable performance testing device according to claim 1, characterized in that, An electrical control box (9) is provided on the top of the mounting plate (3). A control module (901) is provided inside the electrical control box (9). The control module (901) is electrically connected to the drive unit (5), the clamping unit (6) and the plug-in unit (8) respectively through connecting lines, and the connecting lines are arranged inside the mounting tube (4).

3. The mobile phone data cable performance testing device according to claim 2, characterized in that, The driving unit (5) includes a driving housing (501) with an internal cavity. The driving housing (501) is fixedly installed at the bottom of the mounting tube (4). A first electromagnetic part (502) is provided at the bottom of the inner cavity of the driving housing (501). A slidable adsorption slider (503) is also provided on the upper side of the inner cavity of the driving housing (501). A first elastic component (504) is provided between the adsorption slider (503) and the first electromagnetic part (502). Slide grooves (505) communicating with the inner cavity are opened on both sides of the driving housing (501). Connecting parts (506) are provided on both sides of the adsorption slider (503). The connecting parts (506) extend out of the slide grooves (505) and are fixedly connected to the inner side wall of the clamping part (6). The first electromagnetic part (502) is electrically connected to the control module (901).

4. The mobile phone data cable performance testing device according to claim 3, characterized in that, The top of the inner cavity of the drive housing (501) is provided with two non-contacting contacts (507). The two contacts (507) are connected to a first counting module (902). The first counting module (902) is placed in the electrical control box (9) and electrically connected to the control module (901). The top of the adsorption slider (503) is provided with a connecting contact piece (508). The connecting contact piece (508) is connected to and conducts electricity with the two contacts (507).

5. The mobile phone data line performance detection device according to claim 4, characterized in that, The clamping part (6) includes a main body (601), which is fixedly connected to the adsorption slider (503) through a connecting part (506). A vertically penetrating clamping groove (602) is provided on the outer surface of the main body (601). The end of the data cable (7) is placed in the clamping groove (602). An installation groove (603) is provided on one inner side wall of the clamping groove (602). A second electromagnetic part (604) is provided on the inner side of the installation groove (603). The second electromagnetic part (604) is electrically connected to the control module (901). A clamping slider (608) that can be adsorbed by the second electromagnetic part (604) is provided at the inner and outer ends of the installation groove (603). A second elastic component (605) is provided between the clamping slider (608) and the second electromagnetic part (604). The outer end of the clamping slider (608) extends out of the installation groove (603) and presses the end surface of the data cable (7).

6. The mobile phone data cable performance testing device according to claim 5, characterized in that, The outer end of the clamping slider (608) is provided with an anti-slip pad (606), and the outer surface of the anti-slip pad (606) that contacts the end of the data cable (7) is provided with anti-slip texture.

7. The mobile phone data cable performance testing device according to claim 6, characterized in that, The plug-in part (8) includes a plug-in body (801), which is fixed to the lower surface of the bottom mounting plate (3). A plug-in port (802) is embedded in the lower surface of the plug-in body (801). The plug at the end of the data cable (7) can be plugged into the plug-in port (802). The plug-in port (802) is electrically connected to the control module (901), and a second counting module (903) is connected to the plug-in port (802). The second counting module (903) is placed in the electrical control box (9) and electrically connected to the control module (901).

8. The mobile phone data cable performance testing device according to claim 7, characterized in that, An indicator light (803) is provided on the surface of the plug-in body (801), and the indicator light (803) is electrically connected to the plug-in port (802).

9. The mobile phone data line performance detection device of claim 8, wherein, The upper surface of the main body (601) is provided with a limiting post (607), and the lower surface of the insertion main body (801) is provided with a limiting hole (804). The top end of the limiting post (607) is inserted into the limiting hole (804).