Router joint fatigue test tool

By designing a router joint fatigue testing tool set with reciprocating mechanism and control mechanism, the problem of the entire machine being shut down and replaced with the plug in the prior art is solved, and an efficient and continuous testing process is achieved, and testing efficiency and flexibility are improved.

CN120195489AActive Publication Date: 2025-06-24SHENZHEN SHENGSHI CHUANGZHAN IND CO LTD
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Patent Information

Application Number
CN202510676743.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-26
Publication Date
2025-06-24
Estimated Expiration
2045-05-26

AI Technical Summary

Technical Problem

The existing router connector fatigue testing tool installation needs to shut down the entire machine when replacing the plug, which is cumbersome and laborious, which affects the testing efficiency and working progress.

Method used

A router joint fatigue testing tool set is designed, and the reciprocating mechanism is used to drive the test mechanism and the test plug to reciprocate on the main slide to realize the plug-and-removal test of the router joint, and the fixed connection component is separated from the test mechanism through the limit of the control mechanism, so as to facilitate the replacement of the plug and the continued testing.

Benefits of technology

It realizes the replacement of the test plug without shutting down, ensuring the continuity and efficiency of the test work, reducing the overall testing time of the router connector, and improving the flexibility and adaptability of the test tooling.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention is suitable for the technical field of test tools, and provides a router connector fatigue test tool which comprises a test board, a plug platform, a mounting platform, a main sliding seat and a reciprocating mechanism and further comprises a test mechanism, a test plug, a test host and a fixed connection mechanism, and the fixed connection mechanism comprises an auxiliary sliding seat, a fixed assembly and a connection assembly; the testing plug realizes reciprocating plugging and fatigue testing of the router connector through the reciprocating mechanism, the testing mechanism and the fixed connecting mechanism, the control mechanism is matched with the testing host, independent limiting and fixing of the testing mechanism can be completed, the testing mechanism is separated from the connecting assembly, the testing plug on the testing mechanism can be replaced, and the testing efficiency is improved. And meanwhile, the shutdown of the whole test tool caused by replacement of the test plug is avoided, so that other normally working test plugs can continue to perform test work along with the reciprocating mechanism, the overall test time of the router connector is greatly shortened, and the test efficiency of the test tool is improved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of test tooling, and particularly relates to a fatigue test tooling for router connectors. Background Art

[0002] The fatigue test of router plugs is a durability evaluation method for router plugs. This test aims to simulate various plugging and unplugging actions and environmental factors that the plugs experience during actual use, so as to evaluate the stability and reliability of router connectors during long-term use.

[0003] The existing fatigue test tooling for router connectors can conveniently adjust the plug spacing through a horizontally moving cylinder to adapt to routers of different specifications. During the reciprocating plugging and unplugging actions of the plugs, the attracting state of the electro-controlled magnetic blocks is controlled by the on-off of the circuit between the plugs and the routers, and the plugs corresponding to the open-circuit connectors are immediately braked, which is convenient for the staff to identify and replace.

[0004] Although the existing test tooling can quickly judge the connection state between the plugs and the router connectors and quickly brake the plugs, the entire machine needs to be shut down when replacing the plugs. This not only makes the operation cumbersome and laborious, time-consuming and laborious, but also interrupts the test work of the plugs in the normal working state, thus affecting the overall test efficiency and work progress of the test tooling.

[0005] Therefore, in view of the above situation, there is an urgent need to develop a fatigue test tooling for router connectors to overcome the deficiencies in current practical applications. Summary of the Invention

[0006] The purpose of the present invention is to provide a fatigue test tooling for router connectors to solve the technical problem in the prior art that the entire machine needs to be shut down to complete the replacement of the plugs, which is not only cumbersome and laborious, time-consuming and laborious, but also interrupts the test work of the plugs in the normal working state.

[0007] To solve the above technical problem, a fatigue test tooling for router connectors provided by the present invention includes a test bench. Plug platforms are respectively arranged on the front and rear sides of the test bench, and an installation platform for installing the router is provided. Fixed guide grooves are distributed on the installation platform. A fixed boss is fixed on one side of the installation platform close to the plug platform. A plurality of main sliders are arranged on the plug platform, and a reciprocating mechanism is installed on the plug platform. The fatigue test tooling for router connectors further includes: A test mechanism, which is slidably installed at one end of the main slider and intermittently cooperates with a control mechanism installed on the main slider. A test plug is fixed at one end of the test mechanism. Both the test plug and the router are connected to a test host, and the test host is used to sense the electrical signals between the test plug and the router and judge the connection state between the test plug and the router connector; Fixed connection mechanism, the fixed connection mechanism includes a secondary sliding seat, a fixing component and a connecting component. The secondary sliding seat is fixed to the other end of the main sliding seat through a sliding seat bracket. The secondary sliding seat is parallel to the main sliding seat. The fixing component is slidably mounted on the secondary sliding seat and is located in the middle of the testing mechanism. The fixing component is connected to the reciprocating mechanism. Connecting components that are engaged with the testing mechanism are installed on both sides of the fixing component.

[0008] As a further technical solution of the present invention, the connecting component includes a connecting block, a connecting frame, a sliding column, a engaging piece and a second spring. The connecting blocks are installed on the front and rear sides of the fixing component. One end of the connecting block is fixed with a connecting frame. The connecting frames are distributed on both sides of the fixing component and are located in the middle of the testing mechanism. A sliding column is vertically slidably mounted on the connecting frame. One end of the sliding column is fixed with an engaging piece. A second spring is installed between one end of the engaging piece and the connecting frame. The other end of the engaging piece is engaged with the testing mechanism.

[0009] As a further technical solution of the present invention, the connecting block adopts a T-shaped block structure, the engaging piece adopts a trapezoidal block structure, and the end faces of the engaging piece engaged with the testing mechanism are inclined end faces.

[0010] As a further technical solution of the present invention, the elastic force of the second spring is greater than the insertion and extraction resistance between the test plug and the router connector and less than the limiting force of the control mechanism on the testing mechanism.

[0011] As a further technical solution of the present invention, the fixing component includes a lower clamping block, an upper clamping block, a first spring and a stud. The upper clamping block and the lower clamping block are distributed on both sides of the reciprocating mechanism. The upper clamping block and the lower clamping block are fixedly connected to the reciprocating mechanism through the stud. A first spring is installed between the upper clamping block and the lower clamping block. Connecting grooves for installing the connecting block are provided on the end faces of the upper clamping block and the lower clamping block close to each other. The lower clamping block is slidably mounted on the secondary sliding seat.

[0012] As a further technical solution of the present invention, the testing mechanism includes a left clamping plate, a right clamping plate, a second slider, a mounting block and an engaging component. The left clamping plate and the right clamping plate are distributed on the left and right sides of the connecting component. The second slider and the mounting block are distributed on the front and rear sides of the connecting component. The second slider and the mounting block are respectively installed at the front and rear ends of the left clamping plate and the right clamping plate. The bottom of the second slider is slidably connected to the main sliding seat and is intermittently cooperated with the control mechanism. A test plug is fixed to one side of the mounting block. The two ends of the engaging component are respectively fixedly connected to the left clamping plate and the right clamping plate and are cooperated with the engaging piece.

[0013] As a further technical solution of the present invention, the engaging component includes a left clamping block, a guide post, a right clamping block, a fitting hole and a clamping groove. The left clamping block is vertically fixed to the inner side of the left clamping plate, and the right clamping block is vertically fixed to the inner side of the right clamping plate. A guide post is fixed on the left clamping block, and the guide post is slidably matched with the fitting hole formed on the right clamping block. Moreover, clamping grooves matched with the engaging member are formed at the bottoms of both the left clamping block and the right clamping block.

[0014] As a further technical solution of the present invention, the engaging component includes a left clamping block, a guide post, a right clamping block, a fitting hole and a clamping groove. The left clamping block is vertically fixed to the inner side of the left clamping plate, and the right clamping block is vertically fixed to the inner side of the right clamping plate. A guide post is fixed on the left clamping block, and the guide post is slidably matched with the fitting hole formed on the right clamping block. Moreover, clamping grooves matched with the engaging member are formed at the bottoms of both the left clamping block and the right clamping block.

[0015] As a further technical solution of the present invention, the control mechanism includes a motor bracket, a driving motor, a first gear, a second gear, a control shaft and a control board. The motor bracket is fixed to one side of the main sliding seat. A driving motor is installed on the motor bracket. A first gear is installed at the output end of the driving motor. The first gear is meshed with a second gear fixed to one end of the control shaft. The control shaft is rotatably installed in the through hole, and the control shaft is fixedly connected to the control board installed in the rotating groove.

[0016] As a further technical solution of the present invention, the reciprocating mechanism includes a reciprocating motor, a motor bracket, a main shaft, a rocker, a push rod, a reciprocating roller, a first slider and a side bracket. The reciprocating motor is fixed to the plug platform through the motor bracket. A main shaft is fixed to the output end of the reciprocating motor. A rocker is installed on the main shaft. The side brackets are symmetrically fixed to the left and right ends of the plug platform. A slider is horizontally slidably installed on the side bracket. Both ends of the reciprocating roller are respectively fixed to the two sliders. Moreover, the reciprocating roller is located between the upper clamping block and the lower clamping block and is connected to both of them. Both ends of the push rod are respectively rotatably connected to the rocker and one end of the reciprocating roller.

[0017] Adopting the above technical solutions, the present invention has the following beneficial effects: The reciprocating mechanism drives the fixing component to move on the secondary sliding seat, and through the connecting component, the testing mechanism and the testing plug reciprocate on the main sliding seat, realizing the plugging and unplugging of the router connector. The testing host senses the electrical signal between the testing plug and the router, thereby realizing the fatigue test of the router connector; If the test host fails to detect the electrical signal between a certain test plug and the router, the test host drives the control mechanism to which the test plug belongs to work. The control mechanism positions and fixes the test mechanism and separates the connection component from the test mechanism, so that the reciprocating mechanism can only drive the fixed component, connection component to which the test plug belongs, and other test plugs to continue reciprocating. This not only facilitates the replacement of the test plug by the staff, ensures the continuity of the test work, improves the test efficiency of the test tooling, but also avoids the shutdown of the entire test tooling due to the replacement of the test plug, enabling other normally working test plugs to continue the test work following the reciprocating mechanism, greatly reducing the overall test time of the router connector, and further improving the test efficiency of the test tooling; After the replacement is completed, the control mechanism returns to its initial state, and the reciprocating mechanism drives the connection component and the test mechanism to be engaged again and continue the test; if the replaced test plug is combined with the router connector but no electrical signal is generated, the test host drives the control mechanism again to position and fix the test mechanism, facilitating the staff to judge the connector failure and obtain the plugging and unplugging times based on the reciprocating times, efficiently completing the fatigue test, and improving the data accuracy, tooling flexibility and adaptability.

[0018] To more clearly illustrate the structural features and functions of the present invention, the present invention will be described in detail below with reference to the accompanying drawings and specific embodiments. Description of the Drawings

[0019] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the accompanying drawings required for the description of the specific embodiments or the prior art. Obviously, the accompanying drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0020] Figure 1 Structural schematic diagram of the router connector fatigue test tooling from the first perspective provided by the embodiment of the present invention.

[0021] Figure 2 Structural schematic diagram of the router connector fatigue test tooling from the second perspective provided by the embodiment of the present invention.

[0022] Figure 3 For Figure 1 Structural schematic diagram of the main slide block, fixed connection mechanism, test mechanism and control mechanism in

[0023] Figure 4 For Figure 3 Side view of the structural schematic diagram of the main slide block, fixed connection mechanism, test mechanism and control mechanism in

[0024] Figure 5 ForFigure 4 Schematic diagram of the structure of the middle test mechanism.

[0025] Figure 6 For Figure 5 Exploded view of the structure of the middle test mechanism.

[0026] Figure 7 For Figure 4 Schematic diagram of the structure of the middle fixed connection mechanism.

[0027] Figure 8 For Figure 7 Exploded view of the structure of the middle fixed component.

[0028] Figure 9 For Figure 7 Schematic diagram of the structure of the middle connection component.

[0029] Figure 10 For Figure 4 Top view of the structure of the middle main sliding seat.

[0030] Figure 11 For Figure 4 Schematic diagram of the structure of the middle control mechanism.

[0031] Figure 12 For Figure 2 Schematic diagram of the structure of the middle reciprocating mechanism.

[0032] Reference numerals: 100 - test bench, 101 - plug platform, 102 - installation platform, 103 - fixed guide groove, 104 - fixed boss, 200 - reciprocating mechanism, 210 - reciprocating motor, 220 - motor bracket, 230 - main shaft, 240 - rocker, 250 - push rod, 260 - reciprocating roller, 270 - slider one, 280 - side bracket, 300 - main sliding seat, 310 - inclined guide table, 320 - rotating groove, 330 - through hole, 400 - fixed connection mechanism, 410 - secondary sliding seat, 411 - sliding seat bracket, 420 - fixed component, 421 - lower clamping block, 422 - upper clamping block, 423 - spring one, 424 - stud, 425 - connection groove, 430 - connection component, 431 - connection block, 432 - connection frame, 433 - sliding column, 434 - engaging part, 435 - spring two, 500 - test mechanism, 510 - left clamping plate, 520 - right clamping plate, 530 - slider two, 540 - installation block, 550 - engaging component, 551 - left clamping block, 552 - guide post, 553 - right clamping block, 554 - fitting hole, 555 - clamping groove, 600 - test plug, 700 - control mechanism, 710 - motor bracket, 720 - driving motor, 730 - gear one, 740 - gear two, 750 - control shaft, 760 - control board. Detailed implementation manners

[0033] The technical solution of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0034] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present invention. In addition, the terms "first", "second", and "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0035] The present invention will be further explained and described below in conjunction with specific embodiments.

[0036] As Figures 1 to 10 shown, a fatigue test tooling for a router connector provided in this embodiment includes a test bench 100. Plug platforms 101 are respectively arranged on the front and rear sides of the test bench 100, and an installation platform 102 for installing a router is provided. Fixed guide grooves 103 for fixing the left and right sides and the front side of the router are distributed on the installation platform 102. A fixed boss 104 for fixing the rear side of the router is fixed on one side of the installation platform 102 close to the plug platform 101. A plurality of main sliders 300 are arranged on the plug platform 101, and a reciprocating mechanism 200 is installed on the plug platform 101. It further includes: A test mechanism 500, which is slidably installed at one end of the main slider 300 and intermittently cooperates with a control mechanism 700 installed on the main slider 300. A test plug 600 is fixed at one end of the test mechanism 500. Both the test plug 600 and the router are connected to a test host, and the test host can sense the electrical signal between the test plug 600 and the router, so as to judge the connection state between the test plug 600 and the router connector. Fixed connection mechanism 400, the fixed connection mechanism 400 includes a secondary sliding seat 410, a fixing component 420 and a connecting component 430. The secondary sliding seat 410 is fixed to the other end of the main sliding seat 300 through a sliding seat bracket 411. The secondary sliding seat 410 is parallel to the main sliding seat 300. The fixing component 420 is slidably installed on the secondary sliding seat 410 and is located in the middle of the testing mechanism 500. The fixing component 420 is connected to the reciprocating mechanism 200. Connecting components 430 that are engaged with the testing mechanism 500 are installed on both sides of the fixing component 420.

[0037] In the initial state, one end of the control mechanism 700 is hidden inside the main sliding seat 300, and the limiting and fixing of the testing mechanism 500 are released. The testing mechanism 500 can slide freely on the main sliding seat 300. At the same time, the connecting components 430 on both sides of the fixing component 420 are both engaged with the testing mechanism 500; The reciprocating mechanism 200 drives the fixing component 420 to reciprocate on the secondary sliding seat 410. The fixing component 420 drives the testing mechanism 500 to reciprocate on the main sliding seat 300 through the connecting component 430. The testing mechanism 500 drives the testing plug 600 to reciprocate, so that the testing plug 600 can realize the reciprocating plugging and unplugging of the router connector. The testing host senses the electrical signal between the testing plug 600 and the router, so as to realize the fatigue test of the router connector; When the testing host cannot sense the electrical signal between a certain testing plug 600 and the router, the testing host can drive the control mechanism 700 to which the testing plug 600 belongs to work. The control mechanism 700 limits and fixes the testing mechanism 500 to which the testing plug 600 belongs. At the same time, the limiting force of the control mechanism 700 on the testing mechanism 500 can drive the connecting component 430 to separate from the testing mechanism 500, so that the reciprocating mechanism 200 can only drive the fixing component 420, the connecting component 430 to which the testing plug 600 belongs, and other testing plugs 600 to continue to reciprocate, while the testing mechanism 500 to which the testing plug 600 belongs remains stationary on the main sliding seat 300. This can not only facilitate the staff to replace the testing plug 600, ensure the continuity of the testing work, improve the testing efficiency of the testing tooling, but also avoid the shutdown of the entire testing tooling due to the replacement of the testing plug 600, so that other normally working testing plugs 600 can continue the testing work following the reciprocating mechanism 200, greatly reducing the overall testing time of the router connector and further improving the testing efficiency of the testing tooling; After the test plug 600 is replaced, the control mechanism 700 to which it belongs returns to the initial state. The reciprocating mechanism 200 can drive the connection component 430 to which the test plug 600 belongs to be engaged with the test mechanism 500 again, and drive the test mechanism 500 and the test plug 600 to continue to complete the fatigue test of the router connector. At the same time, when the replaced test plug 600 is combined with the router connector and no electrical signal is generated, the test host drives the control mechanism 700 to work again, so that the control mechanism 700 limits and fixes the retracted test mechanism 500 again. This can facilitate the staff to quickly judge that the connector of the router is faulty, and combined with the reciprocating times of the test mechanism 500, quickly obtain the plugging and unplugging times of the connector on the router, thereby efficiently completing the fatigue test work of the connector, improving the accuracy of the fatigue test data of the router connector, and improving the flexibility and adaptability of the test tooling.

[0038] In a preferred embodiment, a photoelectric sensor is further provided on one side of the test mechanism 500. The photoelectric sensor is used to sense and count the reciprocating times of the test mechanism 500, and further sense and count the plugging and unplugging times of the test plug 600, which is convenient for the staff to collect and count the fatigue test data of the router connector, ensure the accuracy of the test data, and improve the test efficiency of the test tooling.

[0039] As Figures 3 to 9 shown, as a preferred embodiment of the present invention, the connection component 430 includes a connection block 431, a connection frame 432, a sliding column 433, a engaging member 434 and a second spring 435. The connection block 431 is installed on the front and rear sides of the fixed component 420. One end of the connection block 431 is fixed with a connection frame 432. The connection frames 432 are distributed on both sides of the fixed component 420 and located in the middle of the test mechanism 500. A sliding column 433 is vertically slidably installed on the connection frame 432. One end of the sliding column 433 is fixed with an engaging member 434. A second spring 435 is installed between one end of the engaging member 434 and the connection frame 432. The other end of the engaging member 434 is engaged with the test mechanism 500.

[0040] The connection block 431 preferably adopts a T-shaped block structure. The connection block 431 and the connection frame 432 are preferably manufactured by an integral molding process. The engaging member 434 preferably adopts a trapezoidal block structure. The end faces of the engaging member 434 engaged with the test mechanism 500 are inclined end faces, which facilitates the engaging member 434 to quickly engage and disengage with the test mechanism 500.

[0041] The elastic force of the second spring 435 is greater than the insertion and extraction resistance between the test plug 600 and the router connector, and this elastic force is less than the limiting force of the control mechanism 700 on the test mechanism 500. In this way, during the process of the test plug 600 reciprocatingly inserting and extracting on the router connector, it can be ensured that the engaging member 434 is always engaged with the test mechanism 500, thereby ensuring that the test mechanism 500 can reciprocate with the reciprocating mechanism 200. At the same time, when the control mechanism 700 limits the test mechanism 500, it can be ensured that the test mechanism 500 can be separated from the engaging member 434, and it can be ensured that the test mechanism 500 cannot be driven to reciprocate during the normal reciprocating movement of the engaging member 434, which is convenient for the staff to replace the test plug 600 on the test mechanism 500, or quickly complete the fatigue test work on a single router connector.

[0042] In the initial state, the second spring 435 drives the sliding column 433 to slide upward through its own elastic force, and the sliding column 433 drives the engaging member 434 to move upward, so that the engaging member 434 completes the engagement with the test mechanism 500. When the reciprocating mechanism 200 drives the fixed component 420 to reciprocate, the fixed component 420 drives the connecting block 431 and the connecting frame 432 to move. The connecting frame 432 drives the test mechanism 500 to move through the sliding column 433 and the engaging member 434. The test mechanism 500 drives the test plug 600 to reciprocate and complete the reciprocating insertion and extraction of the router connector. The test host senses the electrical signal between the test plug 600 and the router, thereby realizing the fatigue test of the router connector. When the control mechanism 700 limits and fixes the test mechanism 500, since the limiting force of the control mechanism 700 on the test mechanism 500 is greater than the elastic force of the second spring 435, the test mechanism 500 is in a static state at this time. The reciprocating mechanism 200 drives the engaging member 434 to separate from the test mechanism 500 and squeezes the second spring 435, which is convenient for the staff to replace the test plug 600 on the test mechanism 500, improves the accuracy of the test data, and improves the working efficiency of the test tooling.

[0043] As Figures 3 to 9 shown, as a preferred embodiment of the present invention, the fixed component 420 includes a lower clamping block 421, an upper clamping block 422, a first spring 423 and a stud 424. The upper clamping block 422 and the lower clamping block 421 are distributed on both sides of the reciprocating mechanism 200, and the upper clamping block 422 and the lower clamping block 421 are fixedly connected to the reciprocating mechanism 200 through the stud 424. A first spring 423 is installed between the upper clamping block 422 and the lower clamping block 421, and connecting grooves 425 for installing the connecting block 431 are opened on the end faces of the upper clamping block 422 and the lower clamping block 421 close to each other. The lower clamping block 421 is slidably installed on the secondary sliding seat 410.

[0044] The stud 424, by cooperating with the first spring 423, can not only connect the upper clamping block 422 and the lower clamping block 421 into a whole and fixedly connect them to the reciprocating mechanism 200, so that the reciprocating mechanism 200 can drive the upper clamping block 422 and the lower clamping block 421 to reciprocate synchronously, but also drive the upper clamping block 422 and the lower clamping block 421 to separate from the reciprocating mechanism 200, thereby changing the positions of the upper clamping block 422 and the lower clamping block 421, and further changing the positions of the testing mechanism 500 and the testing plug 600, so that the testing plug 600 can effectively complete the plugging and unplugging work of the router connector, meeting the requirement of the testing tooling for effectively performing fatigue tests on routers of different specifications or types, and improving the flexibility and applicability of the testing tooling; The reciprocating mechanism 200 drives the upper clamping block 422 and the lower clamping block 421 to reciprocate synchronously. The upper clamping block 422 and the lower clamping block 421 drive the connecting blocks 431 distributed on both sides of them to reciprocate, thereby driving the testing plug 600 to reciprocate and complete the reciprocating plugging and unplugging of the router connector, so as to test the fatigue data of the router connector and improve the testing efficiency of the testing tooling.

[0045] In a preferred embodiment, the design of the first spring 423 is such that during the process of the stud 424 releasing the connection state between the upper clamping block 422 and the lower clamping block 421 and the reciprocating mechanism 200, the first spring 423 can help the upper clamping block 422 and the lower clamping block 421 move away from each other by releasing its own elastic force, so that the upper clamping block 422 and the lower clamping block 421 can freely adjust their positions on the reciprocating mechanism 200.

[0046] As Figures 3 to 9 shown, as a preferred embodiment of the present invention, the testing mechanism 500 includes a left clamping plate 510, a right clamping plate 520, a second slider 530, a mounting block 540 and a clamping component 550. The left clamping plate 510 and the right clamping plate 520 are distributed on the left and right sides of the connecting component 430. The second slider 530 and the mounting block 540 are distributed on the front and rear sides of the connecting component 430. The second slider 530 and the mounting block 540 are respectively installed at the front and rear ends of the left clamping plate 510 and the right clamping plate 520. The bottom of the second slider 530 is slidably connected to the main slide base 300 and intermittently cooperates with the control mechanism 700. One side of the mounting block 540 is fixed with a testing plug 600. The two ends of the clamping component 550 are respectively fixedly connected to the left clamping plate 510 and the right clamping plate 520 and cooperate with the clamping member 434.

[0047] The engaging component 550 includes a left engaging block 551, a guide post 552, a right engaging block 553, a fitting hole 554, and a clamping groove 555. The left engaging block 551 is vertically fixed to the inner side of the left clamping plate 510, the right engaging block 553 is vertically fixed to the inner side of the right clamping plate 520, a guide post 552 is fixed to the left engaging block 551, the guide post 552 is slidably engaged with the fitting hole 554 formed in the right engaging block 553, and clamping grooves 555 adapted to the engaging member 434 are formed at the bottoms of the left engaging block 551 and the right engaging block 553.

[0048] In the initial state, the second spring 435 drives the engaging member 434 to move upward through its own elastic force. The engaging member 434 is respectively engaged with the clamping grooves 555 on the left engaging block 551 and the right engaging block 553 by moving upward, so that the left engaging block 551 and the right engaging block 553 can be connected to the engaging member 434 as a whole. When the reciprocating mechanism 200 drives the engaging member 434 to reciprocate, the engaging member 434 drives the left clamping plate 510 and the right clamping plate 520 to reciprocate synchronously through the left engaging block 551 and the right engaging block 553. The left clamping plate 510 and the right clamping plate 520 drive the second slider 530 and the mounting block 540 to reciprocate. The mounting block 540 drives the test plug 600 to reciprocate and complete the reciprocating insertion and extraction of the router connector. The test host senses the electrical signal between the test plug 600 and the router, thereby realizing the fatigue test of the router connector. When the test host fails to sense the electrical signal between a certain test plug 600 and the router, the test host can drive the control mechanism 700 to which the test plug 600 belongs to work. The control mechanism 700 limits and fixes the test mechanism 500 to which the test plug 600 belongs. The control mechanism 700 can limit and fix the second slider 530 by rotating, so that the second slider 530 is stationary on the main sliding seat 300. The second slider 530 can drive the left engaging block 551 and the right engaging block 553 to be stationary synchronously through the left clamping plate 510 and the right clamping plate 520. Since the limiting force of the control mechanism 700 on the second slider 530 is greater than the elastic force of the second spring 435, during the process of the reciprocating mechanism 200 driving the engaging member 434 to reciprocate, the engaging member 434 can be intermittently engaged with and separated from the clamping grooves 555 on the left engaging block 551 and the right engaging block 553. At the same time, at this time, the reciprocating mechanism 200 can only drive the fixing component 420, the connecting component 430 to which the test plug 600 belongs, and other test plugs 600 to continue to reciprocate, while the second slider 530 to which the test plug 600 belongs is stationary on the main sliding seat 300. This can not only facilitate the staff to replace the test plug 600, ensure the continuity of the test work, improve the test efficiency of the test tooling, but also avoid the entire test tooling from stopping due to the replacement of the test plug 600, so that other normally working test plugs 600 can continue the test work following the reciprocating mechanism 200.

[0049] In a preferred embodiment, the card slot 555 adopts a groove structure adapted to the engaging member 434, and preferably adopts a trapezoidal groove structure, which facilitates the quick separation and quick cooperation with the engaging member 434.

[0050] As Figure 2 、 Figure 5 、 Figure 10 and Figure 11 shown, as a preferred embodiment of the present invention, an inclined guide table 310 is provided at one end of the main slide base 300 away from the router. Rotation grooves 320 are distributed on the inclined end surface of the inclined guide table 310. A through hole 330 penetrating the rotation grooves 320 is vertically provided on the main slide base 300. Both the rotation grooves 320 and the through hole 330 are used for installing the control mechanism 700. And a blocking block is fixed at one end of the main slide base 300 away from the router. By cooperating with the control mechanism 700, the blocking block can effectively limit and fix the second slider 530, so that it stably stops between the blocking block and the control mechanism 700, facilitating the staff to quickly replace the test plug 600, improving the test efficiency of the test tooling, and at the same time improving the stability of the overall structure of the test tooling.

[0051] As Figure 2 、 Figure 5 、 Figure 10 and Figure 11 shown, as a preferred embodiment of the present invention, the control mechanism 700 includes a motor bracket 710, a driving motor 720, a first gear 730, a second gear 740, a control shaft 750 and a control board 760. The motor bracket 710 is fixed on one side of the main slide base 300. The driving motor 720 is installed on the motor bracket 710. A first gear 730 is installed at the output end of the driving motor 720. The first gear 730 meshes with a second gear 740 fixed at one end of the control shaft 750. The control shaft 750 is rotatably installed in the through hole 330. The control shaft 750 is fixedly connected to a control board 760 installed in the rotation groove 320.

[0052] In the initial state, the control board 760 is hidden in the rotating groove 320 and does not interfere with the normal sliding of the second slider 530. When the test host fails to detect the electrical signal between a certain test plug 600 and the router, the test host can drive the control mechanism 700 to which the test plug 600 belongs to work. The driving motor 720 drives the first gear 730 to rotate. The first gear 730 drives the control shaft 750 to rotate through the second gear 740. The control shaft 750 drives the control board 760 to rotate outside the rotating groove 320, so that the control board 760 contacts one side of the second slider 530, and the second slider 530 is limited and fixed, so that the second slider 530 to which the test plug 600 belongs stops on the main sliding seat 300.

[0053] In a preferred embodiment, the design of the rotating groove 320 controls the rotation angle of the control board 760, so that the control board 760 can only rotate to a position perpendicular to the main sliding seat 300, that is, parallel to the side wall of the second slider 530.

[0054] As Figure 2 、 Figure 7 、 Figure 8 and Figure 12 shown, as a preferred embodiment of the present invention, the reciprocating mechanism 200 includes a reciprocating motor 210, a motor bracket 220, a main shaft 230, a rocker 240, a push rod 250, a reciprocating roller 260, a first slider 270 and a side bracket 280. The reciprocating motor 210 is fixed on the plug platform 101 through the motor bracket 220. The output end of the reciprocating motor 210 is fixed with the main shaft 230. The rocker 240 is installed on the main shaft 230. The side brackets 280 are symmetrically fixed at the left and right ends of the plug platform 101. The side brackets 280 are horizontally slidably installed with sliders. The two ends of the reciprocating roller 260 are respectively fixed on the two sliders, and the reciprocating roller 260 is located between the upper clamping block 422 and the lower clamping block 421 and is connected to both of them. The two ends of the push rod 250 are respectively rotatably connected to the rocker 240 and one end of the reciprocating roller 260.

[0055] The reciprocating motor 210 drives the main shaft 230 to rotate. The main shaft 230 drives the rocker 240 to rotate. The rocker 240 drives the reciprocating roller 260 and the slider to reciprocate through the push rod 250. The reciprocating roller 260 drives the connecting assembly 430 to reciprocate through the upper clamping block 422 and the lower clamping block 421, so that the connecting assembly 430 can drive the test plug 600 to reciprocate through the test mechanism 500, and the reciprocating insertion and extraction of the router joint are completed, so as to realize the fatigue test of the router joint.

[0056] The working principle of the present invention is: In the initial state, the control board 760 is hidden in the rotating groove 320 and does not interfere with the normal sliding of the second slider 530. After releasing the limit and fixation of the second slider 530, the second slider 530 can slide freely on the main slider 300. The second spring 435 drives the engaging part 434 to move upward through its own elastic force. The engaging part 434 is engaged with the card slots 555 on the left clamping block 551 and the right clamping block 553 by moving upward, so that the left clamping block 551 and the right clamping block 553 can be connected to the engaging part 434 as a whole; The reciprocating motor 210 drives the main shaft 230 to rotate. The main shaft 230 drives the rocker 240 to rotate. The rocker 240 drives the reciprocating roller 260 and the slider to move reciprocally through the push rod 250. The reciprocating roller 260 drives the upper clamping block 422 and the lower clamping block 421 to move reciprocally. The upper clamping block 422 and the lower clamping block 421 drive the connecting blocks 431 distributed on both sides to move reciprocally. The connecting blocks 431 drive the engaging part 434 to move reciprocally through the connecting frame 432. The engaging part 434 drives the left clamping plate 510 and the right clamping plate 520 to move synchronously reciprocally through the left clamping block 551 and the right clamping block 553. The left clamping plate 510 and the right clamping plate 520 drive the second slider 530 and the mounting block 540 to move reciprocally. The mounting block 540 drives the test plug 600 to move reciprocally and complete the reciprocating plugging and unplugging of the router connector. The test host senses the electrical signal between the test plug 600 and the router, so as to realize the fatigue test of the router connector; When the test host fails to sense the electrical signal between a certain test plug 600 and the router, the test host can drive the control mechanism 700 to which the test plug 600 belongs to work, drive the motor 720 to drive the first gear 730 to rotate, the first gear 730 drives the control shaft 750 to rotate through the second gear 740, and the control shaft 750 drives the control board 760 to rotate outside the rotating slot 320, so that the control board 760 contacts one side of the second slider 530, and completes the limiting and fixing of the second slider 530, so that the second slider 530 is stationary on the main sliding seat 300. The second slider 530 can drive the left clamping block 551 and the right clamping block 553 to be stationary synchronously through the left clamping plate 510 and the right clamping plate 520. Since the limiting force of the control mechanism 700 on the second slider 530 is greater than the elastic force of the second spring 435, during the process of the reciprocating mechanism 200 driving the engaging member 434 to reciprocate, the engaging member 434 can intermittently cooperate with and separate from the clamping slots 555 on the left clamping block 551 and the right clamping block 553. At the same time, at this time, the reciprocating mechanism 200 can only drive the fixing component 420, the connecting component 430 to which the test plug 600 belongs, and other test plugs 600 to continue to reciprocate, while the second slider 530 to which the test plug 600 belongs is stationary on the main sliding seat 300. This can not only facilitate the staff to replace the test plug 600, ensure the continuity of the test work, improve the test efficiency of the test tooling, but also avoid the shutdown of the entire test tooling due to the replacement of the test plug 600, so that other normally working test plugs 600 can continue the test work following the reciprocating mechanism 200; After the test plug 600 is replaced, the control mechanism 700 to which it belongs returns to the initial state. The reciprocating mechanism 200 can drive the connecting component 430 to which the test plug 600 belongs to engage with the test mechanism 500 again, and drive the test mechanism 500 and the test plug 600 to continue to complete the fatigue test of the router joint; at the same time, when the replaced test plug 600 is combined with the router joint and no electrical signal is generated, the test host drives the control mechanism 700 to work again at this time, so that the control mechanism 700 limits and fixes the retracted test mechanism 500 again. This can facilitate the staff to quickly judge that the joint of the router fails, and combined with the reciprocating times of the test mechanism 500, quickly obtain the plugging and unplugging times of the joint on the router, so as to efficiently complete the fatigue test work of the joint, improve the accuracy of the fatigue test data of the router joint, and improve the flexibility and adaptability of the test tooling; The above is the working principle of the fatigue test tooling for the router joint.

[0057] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. A fatigue test tooling for a router connector, comprising a test bench. Plug platforms are respectively arranged on the front and rear sides of the test bench, and an installation platform for installing a router is provided. Fixed guide grooves are distributed on the installation platform. A fixed boss is fixed on one side of the installation platform close to the plug platform. A plurality of main sliding seats are arranged on the plug platform, and a reciprocating mechanism is installed on the plug platform. It is characterized in that, Further included are: a testing mechanism, which is slidably installed at one end of the main sliding seat and intermittently cooperates with a control mechanism installed on the main sliding seat. A testing plug is fixed at one end of the testing mechanism, and both the testing plug and the router are connected to a testing host, and the testing host is used to sense the electrical signal between the testing plug and the router and determine the connection state between the testing plug and the router connector; a fixed connection mechanism, which includes a secondary sliding seat, a fixing component, and a connection component. The secondary sliding seat is fixed to the other end of the main sliding seat through a sliding seat bracket. The secondary sliding seat is parallel to the main sliding seat. The fixing component is slidably installed on the secondary sliding seat and is located in the middle of the testing mechanism. The fixing component is connected to a reciprocating mechanism, and connection components that are engaged with the testing mechanism are installed on both sides of the fixing component.

2. The router joint fatigue test tooling according to claim 1, wherein, The connection component includes a connection block, a connection frame, a sliding column, a clamping component, and a second spring. The connection blocks are installed on the front and back sides of the fixing component. A connection frame is fixed at one end of the connection block. The connection frames are distributed on both sides of the fixing component and are located in the middle of the testing mechanism. A sliding column is vertically slidably installed on the connection frame. A clamping component is fixed at one end of the sliding column. A second spring is installed between one end of the clamping component and the connection frame. The other end of the clamping component is engaged with the testing mechanism.

3. The router joint fatigue test tooling according to claim 2, wherein, The connection block adopts a T-shaped block structure, the clamping component adopts a trapezoidal block structure, and the end faces of the clamping component engaged with the testing mechanism are inclined end faces.

4. The router joint fatigue test tooling according to claim 2, wherein The elastic force of the second spring is greater than the insertion and extraction resistance between the testing plug and the router connector and less than the limiting force of the control mechanism on the testing mechanism.

5. The router joint fatigue test tooling according to claim 2, characterized in that, The fixing component includes a lower clamping block, an upper clamping block, a first spring, and a stud. The upper clamping block and the lower clamping block are distributed on both sides of the reciprocating mechanism, and the upper clamping block and the lower clamping block are fixedly connected to the reciprocating mechanism through the stud. A first spring is installed between the upper clamping block and the lower clamping block, and connection grooves for installing the connection blocks are opened on the end faces of the upper clamping block and the lower clamping block that are close to each other. The lower clamping block is slidably installed on the secondary sliding seat.

6. The router joint fatigue test tooling according to claim 4, characterized in that, The testing mechanism includes a left clamping plate, a right clamping plate, a second slider, a mounting block, and a clamping component. The left clamping plate and the right clamping plate are distributed on the left and right sides of the connection component. The second slider and the mounting block are distributed on the front and back sides of the connection component. The second slider and the mounting block are respectively installed at the front and back ends of the left clamping plate and the right clamping plate. The bottom of the second slider is slidably connected to the main sliding seat and intermittently cooperates with the control mechanism. A testing plug is fixed on one side of the mounting block. Both ends of the clamping component are fixedly connected to the left clamping plate and the right clamping plate respectively and cooperate with the clamping component.

7. The router joint fatigue test tooling according to claim 6, characterized in that The clamping component includes a left clamping block, a guide post, a right clamping block, a fitting hole, and a clamping groove. The left clamping block is vertically fixed inside the left clamping plate. The right clamping block is vertically fixed inside the right clamping plate. A guide post is fixed on the left clamping block. The guide post is slidably matched with the fitting hole opened on the right clamping block. Clamping grooves that cooperate with the clamping component are opened at the bottoms of the left clamping block and the right clamping block.

8. The router joint fatigue test tooling according to claim 6, wherein One end of the main sliding seat away from the router is provided with an inclined guide platform. Rotating grooves are distributed on the inclined end surface of the inclined guide platform. A through hole penetrating the rotating grooves is vertically formed in the main sliding seat. Both the rotating grooves and the through hole are used for installing the control mechanism. And a blocking block is fixed at one end of the main sliding seat away from the router. The blocking block completes the limit and fixation of the second slider by cooperating with the control mechanism.

9. The router joint fatigue test tooling according to claim 8, characterized in that, The control mechanism includes a motor bracket, a driving motor, a first gear, a second gear, a control shaft and a control board. The motor bracket is fixed on one side of the main sliding seat. The driving motor is installed on the motor bracket. The first gear is installed at the output end of the driving motor. The first gear meshes with the second gear fixed at one end of the control shaft. The control shaft is rotatably installed in the through hole. The control shaft is fixedly connected to the control board installed in the rotating groove.

10. The router joint fatigue test tooling according to claim 5, characterized in that, The reciprocating mechanism includes a reciprocating motor, a motor bracket, a main shaft, a rocker, a push rod, a reciprocating roller, a first slider and a side bracket. The reciprocating motor is fixed on the plug platform through the motor bracket. The main shaft is fixed at the output end of the reciprocating motor. The rocker is installed on the main shaft. The side brackets are symmetrically fixed at the left and right ends of the plug platform. The first slider is horizontally and slidably installed on the side brackets. Both ends of the reciprocating roller are respectively fixed on the two sliders. And the reciprocating roller is located between the upper clamping block and the lower clamping block and is connected to both of them. Both ends of the push rod are respectively rotatably connected to the rocker and one end of the reciprocating roller.

Citation Information

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