Center-free network connection rapid detection device and use method thereof

By designing a fast detection device without a center network connection, the crystal head is automatically clamped and unplugged by the electric telescopic rod and hydraulic telescopic rod assembly, the problems of low detection efficiency and loose lines are solved, and efficient and accurate network connection detection is achieved.

CN120280736AInactive Publication Date: 2025-07-08CHANGZHOU VOCATIONAL INST OF ENG
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Patent Information

Application Number
CN202510514415.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-23
Publication Date
2025-07-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the network connection detection process within the mobile communication base station, the prior art requires frequent unplugging of data lines, resulting in low detection efficiency and easy to cause loose lines.

Method used

A fast detection device without a center network connection is designed, using electric telescopic rods and hydraulic telescopic rod components to realize automatic clamping and unplugging of the crystal head, combining reset and transformation components to ensure the orderliness and efficiency of the detection process.

Benefits of technology

It improves the efficiency of network connection detection, reduces false contacts caused by manual operation, avoids loose lines, and ensures the accuracy of detection and the rapid recovery preparation of equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of network detection, and discloses a centerless network connection rapid detection device and a use method thereof.The centerless network connection rapid detection device comprises a handle, the top of the handle is fixedly connected with a fixing plate, the side wall of the fixing plate is fixedly connected with a limiting plate, and an extended first electric telescopic rod drives a first sliding rail to synchronously move outwards; the telescopic hydraulic telescopic rod II drives the sliding block I to move towards the fixed plate along the inner wall of the sliding groove I through the sliding rail II and the sliding block II, and at the moment, the sliding block I drives the contact plate and the crystal head to synchronously displace, so that the crystal head is separated from the original socket; the extended first electric telescopic rod drives the test connector to move towards the second sliding rail along the inner wall of the first sliding groove through the first sliding rail and the second sliding block, and when the test connector reaches the outermost position, the test connector is inserted into an original socket, so that the situation that other plugs are loosened and equipment judgment is affected due to the fact that fingers make mistaken contact with other circuits is avoided.
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Description

Technical Field

[0001] The present invention relates to the technical field of network detection devices, and specifically to a centerless network connection rapid detection device and its usage method. Background Art

[0002] Some large-scale local area network topologies require a large number of network connections for each node. Common network connections mainly include network cables, coaxial cables, and optical cables, and network cables are the most widely used in local area networks. The normal connection of network cables between each node is the guarantee for the normal operation of the entire local area network topology.

[0003] Among them, due to the excessive number of data lines inside mobile communication base stations, during the detection process, it is necessary to continuously try and error the lines in a single area. When trying and erroring, it is necessary to continuously pull out the original data lines and then insert the plugs of the testing instruments. This project is rather cumbersome, and the working area is relatively small. As a result, when pulling out the original plugs, the worker's fingers will inevitably come into contact with the remaining lines, causing the connections of the remaining plugs to become loose, seriously delaying the detection efficiency. In view of the above problems, the following solutions are proposed. Summary of the Invention

[0004] To solve the above technical problems, the present invention provides a centerless network connection rapid detection device, including a handle, a fixing plate fixedly connected to the top of the handle, a limiting plate fixedly connected to the side wall of the fixing plate, and a first electric telescopic rod fixedly connected to the side wall of the fixing plate;

[0005] A limiting component, the limiting component includes a crystal head, a first sliding groove for clamping the crystal head, a first sliding block, a contact plate, and a driving component for replacing the crystal head;

[0006] The first sliding groove is opened at the top of the limiting plate, the inner wall of the first sliding groove is slidably connected to the outer wall of the first sliding block, and the top of the first sliding block is fixedly connected to the bottom of the contact plate.

[0007] Preferably, the driving component includes a mounting block fixedly connected to the top of the contact plate, a second electric telescopic rod fixedly connected to the top of the mounting block, a pressing plate fixedly connected to the end of the second electric telescopic rod away from the mounting block, and a spring switch slidably connected to the side wall of the mounting block. Before use, the worker holds the handle in his hand and presses one end of the limiting plate against the required plug position, presenting the state of point G in Figure 1 Subsequently, the device is pressed towards the plug position, forcing the spring switch to contact the edge of the socket.

[0008] Preferably, the driving assembly also includes a slide rail 1 fixedly connected to the end of the electric telescopic rod 1 away from the fixed plate, a slide block 2 is slidably connected to the inner wall of the slide rail 1, and a test connector is fixedly connected to the end of the slide block 2 away from the slide rail 1, and the power of the electric telescopic rod 2 is turned on, wherein the electric telescopic rod 2 is in a contracted state after the power is turned on until the spring switch is pressurized next time, and the electric telescopic rod 2 will extend when the spring switch is pressurized again.

[0009] Preferably, the driving assembly also includes a transmission line fixedly connected to the side wall of the test connector, the end of the transmission line away from the test connector is fixedly connected to a measuring instrument, a hydraulic telescopic rod 1 is fixedly connected to the side wall of the slide rail 1, and a reset assembly is provided on the outer wall of the limiting plate. When the equipment completes the detection, the electric telescopic rod 1 contracts, and the test connector moves away from the socket, forcing the hydraulic telescopic rod 2 to extend, so that the crystal head is inserted back into the socket again. At this time, the spring switch will contact the edge of the socket again, causing the electric telescopic rod 2 to extend, and the pressure plate releases the clamping of the crystal head, and the internal components of the equipment return to the initial state, ensuring that the equipment can quickly carry out subsequent work and improve the application efficiency of the equipment.

[0010] Preferably, the driving assembly also includes a storage box which is connected to the end of the hydraulic telescopic rod 1 away from the slide rail 1, the side wall of the storage box is fixedly connected to the side wall of the fixed plate, the end of the storage box away from the hydraulic telescopic rod 1 is connected to the hydraulic telescopic rod 2, the end of the hydraulic telescopic rod 2 away from the storage box is fixedly connected to the slide rail 2, and the inner wall of the slide rail 2 is slidably connected to the slider 2. When the spring switch contacts the edge of the pool seat for the first time, the electric telescopic rod 2 drives the pressure plate to squeeze the crystal head, releasing the buckle restriction between the crystal head and the socket, and then the power of the electric telescopic rod 1 is turned on, so that the electric telescopic rod 1 is extended, and the extended electric telescopic rod 1 drives the slide rail 1 to move outward synchronously, forcing the hydraulic telescopic rod 1 to be extended, and at this time, the hydraulic telescopic rod 1 will extract the internal solution of the hydraulic telescopic rod 2 through the storage box, causing the hydraulic telescopic rod 2 to contract, and the extended liquid The telescopic rod 2 is pressed to drive the sliding block 1 to move along the inner wall of the sliding groove 1 toward the fixed plate through the sliding rail 2 and the slider 2. At this time, the sliding block 1 will drive the contact plate and the crystal head to move synchronously, so that the crystal head is separated from the original socket, and the extended electric telescopic rod 1 will drive the test connector to move along the inner wall of the sliding groove 1 toward the sliding rail 2 through the sliding rail 1 and the sliding block 2. When the test connector reaches the outermost position, the test connector will be inserted into the original socket, so that the internal information of the socket is transmitted to the measuring instrument through the test connector and the transmission line. Through the application of the above components, it is ensured that the equipment can quickly insert the detection component when the original socket is unplugged, thereby improving the detection efficiency of the equipment. In addition, the above method reduces the process of pulling out the plug with fingers, avoids accidental contact of fingers with other lines, and causes other plugs to loosen, affecting the judgment of the equipment.

[0011] Preferably, the reset component includes an installation groove formed in the side wall of the limiting plate. A second sliding groove is formed in the side wall of the fixing plate. A first spring is fixedly connected to the side wall of the second sliding block. A second spring is fixedly connected to the side wall of the second slider. A conversion component is fixedly connected to the top of the limiting plate. An auxiliary component is arranged on the inner wall of the second sliding groove. Among them, the first hydraulic expansion rod, the storage tank and the second hydraulic expansion rod are in a through state and filled with hydraulic oil.

[0012] Preferably, the auxiliary component includes a first roller frame rotatably connected to the top of the limiting plate. A second roller frame is slidably connected to the inner wall of the second sliding groove. A meshing block is fixedly connected to the side wall of the second roller frame. Utilizing the telescopic characteristics of the first hydraulic expansion rod and the second hydraulic expansion rod, a reset component is arranged inside the device. Among them, the first sliding groove presents the state of "Y" as shown in Figure 3 the figure. When the first hydraulic expansion rod and the second hydraulic expansion rod are operating, the first spring and the second spring always generate a pulling force. The pulling force generated by the first spring will force the second sliding block to always be in close contact with the left side of the first sliding groove. Therefore, when the first electric expansion rod drives the test connector to reset and the second sliding block reaches the bifurcated position of the first sliding groove, it can, under the pulling of the first spring, closely adhere to the left side of the first sliding groove and directly reach the left groove. Similarly, when the first electric expansion rod extends outward, the second spring will force the crystal head to reach the right side of the first sliding groove, ensuring the orderly operation of the device during processing, avoiding internal stacking, and affecting the detection efficiency of the device.

[0013] Preferably, the auxiliary component further includes a second rotating column rotatably connected to the inner wall of the installation groove. A bidirectional threaded rod is fixedly connected to the side wall of the second rotating column. The inner wall of the through hole of the meshing block is meshed with the outer wall of the bidirectional threaded rod. The model numbers of the second electric expansion rod and the installation block are KM01. The specific model number of the measuring instrument is Cyber LanExpert LE80CH Gigabit Network Analyzer.

[0014] Preferably, the conversion component includes a fixed frame fixedly connected to the top of the limiting plate. A sliding frame is fixedly connected to the inner wall of the through hole of the fixed frame. A third spring is fixedly connected to the bottom of the sliding frame. The end of the sliding frame away from the third spring is rotatably connected to a rolling column.

[0015] Preferably, the conversion component further includes a tooth groove formed in the side wall of the sliding frame. A first rotating column is fixedly connected to the outer wall of the second rotating column. A plurality of rotating grooves are formed in the side wall of the first rotating column. A support rod is fixedly connected to the inner walls of the plurality of rotating grooves. A rotating plate is rotatably connected to the outer wall of the support rod. A torsion spring is fixedly connected to the inner wall of the rotating plate. One end of the torsion spring away from the rotating plate is fixedly connected to the outer wall of the support rod. By using the characteristic that the above test joint drives the transmission line to move, a conversion component is arranged inside the device. When the test joint moves towards the second slide rail, since the other end of the transmission line is in a fixed state, during this process, the transmission line will gradually be in a straightened state, and the straightened transmission line will force the sliding frame to slide upward along the inner wall of the fixed frame. The upward-moving sliding frame will force the rotating plate to tilt upward with the support rod as the center, presenting the state of G in Figure 11 as shown in the figure, so that when the sliding frame moves upward, the sliding frame cannot drive the first rotating column to rotate through the rotating plate.

[0016] Preferably, one end of the third spring away from the sliding frame is fixedly connected to the inner wall of the fixed frame. One end of the second spring away from the second slider is fixedly connected to the inner wall of the second slide rail. One end of the first spring away from the second sliding block is fixedly connected to the inner wall of the first slide rail. The top of the second slider is fixedly connected to the bottom of the first sliding block. The bottom of the measuring instrument is fixedly connected to the top of the limiting plate. The outer wall of the second slider is slidably connected to the inner wall of the first sliding groove. After the above components are used to complete the reset, the third spring will drive the sliding frame to slide downward along the inner wall of the fixed frame, and the downward-moving sliding frame will drive the tooth groove to move downward synchronously. At this time, the top of the inner wall of the tooth groove contacts the outer wall of the rotating groove. At this time, the downward force of the sliding frame will be transmitted to the first rotating column through the rotating plate, forcing the first rotating column to rotate. At this time, the rotating first rotating column drives the bidirectional threaded rod to rotate in the same direction through the second rotating column. The rotating bidirectional threaded rod will force the engaging block to drive the second roller frame to slide along the inner wall of the second sliding groove. As the second roller frame slides, the transmission line remaining between the first roller frame and the second roller frame will change synchronously, so that the position where the rolling column presses on the transmission line will also change synchronously. By applying the above components, it is avoided that the transmission line is always under pressure at the same position, causing damage to the internal circuit of the transmission line.

[0017] A usage method of a centerless network connection rapid detection device includes the following steps:

[0018] S1: Hold the device: Before use, the operator holds the handle with the hand and presses one end of the limiting plate against the required plug position;

[0019] S2: Push the device: Press the device against the plug position, forcing the spring switch to contact the edge of the socket, thereby turning on the power supply of the second electric telescopic rod. The second electric telescopic rod drives the pressing plate to squeeze the crystal head to release the buckle restriction between the crystal head and the socket;

[0020] S3: Turning on the power supply: Turning on the power supply of the electric telescopic rod 1 causes the electric telescopic rod 1 to extend, and the extended electric telescopic rod 1 drives the slide rail 1 to move outward synchronously.

[0021] The present invention has the following beneficial effects:

[0022] (1) The present invention aims to solve the problem of dense network cable plugs. A limiting component and a driving component are arranged inside the device. Before use, the staff holds the handle and puts one end of the limiting plate close to the required plug position, presenting the following Figure 1 The device is in the middle G point state, and then pressure is applied to the position of the plug to force the spring switch to contact the edge of the socket, thereby turning on the power of the electric telescopic rod 2, wherein the electric telescopic rod 2 is in a contracted state after the power is turned on before the spring switch is pressed next time, and the electric telescopic rod 2 will extend when the spring switch is pressed again; when the spring switch contacts the edge of the pool seat for the first time, the electric telescopic rod 2 drives the pressure plate to squeeze the crystal head, releasing the buckle restriction between the crystal head and the socket, and then the power of the electric telescopic rod 1 is turned on again, so that the electric telescopic rod 1 extends, and the extended electric telescopic rod 1 drives the slide rail 1 to move outward synchronously, forcing the hydraulic telescopic rod 1 to extend, and at this time the hydraulic telescopic rod 1 will extract the internal solution of the hydraulic telescopic rod 2 through the storage box, so that the hydraulic telescopic rod 2 contracts, and the extended hydraulic telescopic rod 2 The sliding block 1 is driven by the sliding rail 2 and the slider 2 to move along the inner wall of the sliding groove 1 toward the fixed plate. At this time, the sliding block 1 will drive the contact plate and the crystal head to move synchronously, so that the crystal head is separated from the original socket, and the extended electric telescopic rod 1 will drive the test connector to move along the inner wall of the sliding groove 1 toward the sliding rail 2 through the sliding rail 1 and the sliding block 2, and when the test connector reaches the outermost position, the test connector will be inserted into the original socket, so that the internal information of the socket is transmitted to the measuring instrument through the test connector and the transmission line. Through the application of the above components, it is ensured that the device can quickly insert the detection component when the original socket is unplugged, thereby improving the detection efficiency of the equipment. In addition, the above method reduces the process of pulling out the plug with fingers, avoids accidental contact of fingers with other lines, and causes other plugs to loosen, affecting the judgment of the equipment.

[0023] (2) The present invention utilizes the characteristics of the hydraulic telescopic rod 1 and the hydraulic telescopic rod 2 to produce telescopic movement, and a reset assembly is arranged inside the device, wherein the sliding groove 1 is as shown in Figure 3The state of "Y" in the figure. When the first hydraulic telescopic rod and the second hydraulic telescopic rod are operating, a pulling force is always generated by the first spring and the second spring. The pulling force generated by the first spring will force the second sliding block to always be in close contact with the left side of the first sliding groove. Therefore, when the first electric telescopic rod drives the test connector to reset and the second sliding block reaches the forked position of the first sliding groove, it can, under the pulling force of the first spring, closely adhere to the left side of the first sliding groove and directly reach the left groove. Similarly, when the first electric telescopic rod extends outward, the second spring will force the crystal head to reach the right side of the first sliding groove, ensuring the orderliness of the equipment during processing and preventing internal stacking, which may affect the detection efficiency of the equipment.

[0024] (3) Taking advantage of the characteristic that the above test connector drives the movement of the transmission line, a conversion component is provided inside the equipment. When the test connector moves towards the second slide rail, since the other end of the transmission line is in a fixed state, during this process, the transmission line will gradually be in a straightened state. The straightened transmission line will force the sliding frame to slide upward along the inner wall of the fixed frame. The upward-sliding sliding frame will force the rotating plate to tilt upward with the support rod as the center, presenting a state as shown in Figure 11 in the state of G in the figure. When the sliding frame moves upward, the sliding frame cannot drive the first rotating column to rotate through the rotating plate; when the equipment finishes the detection, the first electric telescopic rod contracts, the test connector moves away from the socket, and at the same time, it forces the second hydraulic telescopic rod to extend, so that the crystal head is inserted back into the socket again. At this time, the spring switch will contact the edge of the socket again, causing the second electric telescopic rod to extend, and the pressing plate releases the clamping of the crystal head. The internal components of the equipment return to the initial state, ensuring that the equipment can quickly carry out subsequent work and improving the application efficiency of the equipment.

[0025] (4) After the above components of the present invention complete the reset, the third spring will drive the sliding frame to slide downward along the inner wall of the fixed frame. The downward-sliding sliding frame will drive the toothed groove to move downward synchronously. At this time, the top inner wall of the toothed groove contacts the outer wall of the rotating groove. At this time, the downward movement force of the sliding frame will be transmitted to the first rotating column through the rotating plate, forcing the first rotating column to rotate. At this time, the rotating first rotating column drives the bidirectional threaded rod to rotate in the same direction through the second rotating column. The rotating bidirectional threaded rod will force the engaging block to drive the second roller frame to slide along the inner wall of the second sliding groove. As the second roller frame slides, the transmission line remaining between the first roller frame and the second roller frame will change synchronously, so that the position where the rolling column presses on the transmission line also changes synchronously. Through the application of the above components, it is avoided that the same position of the transmission line is always under pressure, causing damage to the internal circuit of the transmission line. Description of the Drawings

[0026] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the accompanying drawings required for the description of the embodiments. Obviously, the accompanying drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other accompanying drawings can be obtained based on these drawings.

[0027] Figure 1 Schematic diagram of the working state of the overall structure of the present invention;

[0028] Figure 2 Schematic diagram of the overall structure of the present invention;

[0029] Figure 3 For the present invention Figure 2 Enlarged schematic diagram of A in the present invention;

[0030] Figure 4 Schematic diagram of the internal components of the reset component of the present invention;

[0031] Figure 5 Cross-sectional schematic diagram of the transformation component of the present invention;

[0032] Figure 6 Schematic diagram of the internal components of the transformation component of the present invention;

[0033] Figure 7 For the present invention Figure 6 Enlarged schematic diagram of B in the present invention;

[0034] Figure 8 Schematic diagram of the transformation component of the present invention;

[0035] Figure 9 Schematic diagram of the internal components of the transformation component of the present invention;

[0036] Figure 10 Schematic diagram of the working state of the auxiliary component of the present invention;

[0037] Figure 11 For the present invention Figure 9 Enlarged schematic diagram of C in the present invention;

[0038] Figure 12 Schematic diagram of the working process of the present invention.

[0039] In the accompanying drawings, the list of components represented by each reference numeral is as follows:

[0040] In the figure: 1. Handle; 11. Fixed plate; 12. Restricting plate; 13. First electric telescopic rod; 2. Restricting component; 21. Crystal head; 22. First sliding groove; 23. First sliding block; 24. Contact plate; 3. Driving component; 31. Mounting block; 32. Spring switch; 33. Second electric telescopic rod; 34. Pressing plate; 35. First slide rail; 36. Second sliding block; 37. Test connector; 38. Transmission line; 39. Measuring instrument; 310. First hydraulic telescopic rod; 311. Storage box; 312. Second hydraulic telescopic rod; 313. Second slide rail; 314. Second slider; 4. Reset component; 41. Mounting groove; 42. Second sliding groove; 43. First spring; 44. Second spring; 5. Conversion component; 51. Fixed frame; 52. Sliding frame; 53. Third spring; 54. Rolling column; 55. Tooth groove; 56. First rotating column; 57. Rotating groove; 58. Support rod; 59. Rotating plate; 510. Torsion spring; 6. Auxiliary component; 61. First roller frame; 62. Second roller frame; 63. Second rotating column; 64. Bidirectional threaded rod; 65. Engaging block. Detailed implementation mode

[0041] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the protection scope of the present invention.

[0042] Embodiment 1. Please refer to Figure 1 - Figure 7 This invention is a fast detection device for centerless network connection, including a handle 1. The top of the handle 1 is fixedly connected with a fixed plate 11. The side wall of the fixed plate 11 is fixedly connected with a restricting plate 12, and the side wall of the fixed plate 11 is fixedly connected with a first electric telescopic rod 13;

[0043] A restricting component 2, the restricting component 2 includes a crystal head 21, a first sliding groove 22, a first sliding block 23, and a contact plate 24 for clamping the crystal head 21, and a driving component 3 for replacing the crystal head 21;

[0044] The first sliding groove 22 is opened at the top of the restricting plate 12. The inner wall of the first sliding groove 22 is slidably connected with the outer wall of the first sliding block 23. The top of the first sliding block 23 is fixedly connected with the bottom of the contact plate 24.

[0045] The driving component 3 includes a mounting block 31 fixedly connected to the top of the contact plate 24. A second electric telescopic rod 33 is fixedly connected to the top of the mounting block 31. One end of the second electric telescopic rod 33 away from the mounting block 31 is fixedly connected to a pressing plate 34. A spring switch 32 is slidably connected to the side wall of the mounting block 31. Before use, the staff holds the handle 1 with the hand and presses one end of the limiting plate 12 against the required plug position, presenting the state of point G as shown in Figure 1 in Figure G. Subsequently, the device is pressed towards the plug position, forcing the spring switch 32 to contact the edge of the socket.

[0046] The driving component 3 further includes a first slide rail 35 fixedly connected to the end of the first electric telescopic rod 13 away from the fixed plate 11. A second sliding block 36 is slidably connected to the inner wall of the first slide rail 35. One end of the second sliding block 36 away from the first slide rail 35 is fixedly connected to a test connector 37. The power supply of the second electric telescopic rod 33 is turned on. After the second electric telescopic rod 33 is turned on, it remains in a contracted state until the spring switch 32 is pressed again. When the spring switch 32 is pressed again, the second electric telescopic rod 33 will extend.

[0047] The driving component 3 further includes a transmission line 38 fixedly connected to the side wall of the test connector 37. One end of the transmission line 38 away from the test connector 37 is fixedly connected to a measuring instrument 39. A first hydraulic telescopic rod 310 is fixedly connected to the side wall of the first slide rail 35. A reset component 4 is arranged on the outer wall of the limiting plate 12. When the device finishes the detection, the first electric telescopic rod 13 contracts, the test connector 37 moves away from the socket, and at the same time, it forces the second hydraulic telescopic rod 312 to extend, so that the crystal head 21 is inserted back into the socket again. At this time, the spring switch 32 will contact the edge of the socket again, causing the second electric telescopic rod 33 to extend, and the pressing plate 34 releases the clamping of the crystal head 21, and the internal components of the device return to the initial state, ensuring that the device can quickly carry out subsequent work and improving the application efficiency of the device.

[0048] The driving assembly 3 also includes a storage box 311 connected to the end of the hydraulic telescopic rod 1 310 away from the slide rail 1 35, the side wall of the storage box 311 is fixedly connected to the side wall of the fixed plate 11, the end of the storage box 311 away from the hydraulic telescopic rod 1 310 is connected to the hydraulic telescopic rod 2 312, the end of the hydraulic telescopic rod 2 312 away from the storage box 311 is fixedly connected to the slide rail 2 313, and the inner wall of the slide rail 2 313 is slidably connected to the slider 2 314. When the spring switch 32 first contacts When the pool seat is at the edge, the electric telescopic rod 23 drives the pressure plate 34 to squeeze the crystal head 21, releasing the buckle restriction between the crystal head 21 and the socket, and then the power of the electric telescopic rod 13 is turned on, so that the electric telescopic rod 13 is extended, and the extended electric telescopic rod 13 drives the slide rail 1 35 to move outward synchronously, forcing the hydraulic telescopic rod 1 310 to extend. At this time, the hydraulic telescopic rod 1 310 will extract the internal solution of the hydraulic telescopic rod 2 312 through the storage box 311, so that the hydraulic telescopic rod 2 312 12 is contracted, and the telescopic hydraulic telescopic rod 2312 drives the sliding block 23 to move along the inner wall of the sliding groove 22 toward the fixed plate 11 through the sliding rail 2313 and the sliding block 2314. At this time, the sliding block 23 will drive the contact plate 24 and the crystal head 21 to move synchronously, so that the crystal head 21 is separated from the original socket, and the extended electric telescopic rod 13 will drive the test connector 37 to move along the inner wall of the sliding groove 22 toward the direction of the sliding rail 2313 through the sliding rail 135 and the sliding block 236, and when the test connector 37 reaches the outermost position, the test connector 37 will be inserted into the original socket, so that the internal information of the socket is transmitted to the measuring instrument 39 through the test connector 37 and the transmission line 38. Through the application of the above components, it is ensured that the equipment can quickly insert the detection component when the original socket is unplugged, thereby improving the detection efficiency of the equipment. In addition, the above method reduces the process of pulling out the plug with fingers, avoids accidental contact of fingers with other lines, and causes other plugs to loosen, affecting the judgment of the equipment.

[0049] For example 2, please refer to Figure 8 - Figure 11 The present invention is a device for quickly detecting a decentralized network connection. On the basis of the first embodiment, the reset component 4 includes a mounting groove 41 provided on the side wall of the limiting plate 12, a sliding groove 42 is provided on the side wall of the fixing plate 11, a spring 43 is fixedly connected to the side wall of the sliding block 36, a spring 44 is fixedly connected to the side wall of the sliding block 314, a conversion component 5 is fixedly connected to the top of the limiting plate 12, and an auxiliary component 6 is provided on the inner wall of the sliding groove 42, wherein the hydraulic telescopic rod 1 310, the storage box 311 and the hydraulic telescopic rod 2 312 are in a through state, and the inside is filled with hydraulic oil.

[0050] The auxiliary component 6 includes a first roller frame 61 rotatably connected to the top of the limiting plate 12, a second roller frame 62 slidably connected to the inner wall of the second sliding groove 42, and a meshing block 65 fixedly connected to the side wall of the second roller frame 62. By utilizing the telescopic characteristics of the first hydraulic telescopic rod 310 and the second hydraulic telescopic rod 312, a reset component 4 is arranged inside the device, wherein the first sliding groove 22 presents the state of "Y" as shown in Figure 3 In the figure, when the first hydraulic telescopic rod 310 and the second hydraulic telescopic rod 312 operate, a pulling force is always generated by the first spring 43 and the second spring 44. The pulling force generated by the first spring 43 will force the second sliding block 36 to always be in close contact with the left side of the first sliding groove 22. Therefore, when the first electric telescopic rod 13 drives the test connector 37 to reset and the second sliding block 36 reaches the bifurcated position of the first sliding groove 22, it can, under the pulling of the first spring 43, closely adhere to the left side of the first sliding groove 22 and directly reach the left groove. Similarly, when the first electric telescopic rod 13 extends outwards, the second spring 44 will force the crystal head 21 to reach the right side of the first sliding groove 22, ensuring the orderliness of the device during processing, avoiding internal stacking, and affecting the detection efficiency of the device.

[0051] The auxiliary component 6 further includes a second rotating column 63 rotatably connected to the inner wall of the installation groove 41. A bidirectional threaded rod 64 is fixedly connected to the side wall of the second rotating column 63. The inner wall of the through hole of the meshing block 65 is meshed with the outer wall of the bidirectional threaded rod 64. The models of the second electric telescopic rod 33 and the installation block 31 are KM01, and the specific model of the measuring instrument 39 is the Cyber LanExpert LE80CH Gigabit Network Analyzer.

[0052] The transformation component 5 includes a fixed frame 51 fixedly connected to the top of the limiting plate 12. A sliding frame 52 is fixedly connected to the inner wall of the through hole of the fixed frame 51. A third spring 53 is fixedly connected to the bottom of the sliding frame 52. The end of the sliding frame 52 far from the third spring 53 is rotatably connected to a rolling column 54.

[0053] The conversion component 5 further includes a tooth groove 55 opened on the side wall of the sliding frame 52. A first rotating column 56 is fixedly connected to the outer wall of the second rotating column 63. A plurality of rotating grooves 57 are opened on the side wall of the first rotating column 56. A support rod 58 is fixedly connected to the inner wall of the plurality of rotating grooves 57. A rotating plate 59 is rotatably connected to the outer wall of the support rod 58. A torsion spring 510 is fixedly connected to the inner wall of the rotating plate 59. One end of the torsion spring 510 away from the rotating plate 59 is fixedly connected to the outer wall of the support rod 58. Utilizing the characteristic that the above-mentioned test joint 37 drives the transmission line 38 to move, a conversion component 5 is arranged inside the device. When the test joint 37 moves towards the second slide rail 313, since the other end of the transmission line 38 is in a fixed state, during this process, the transmission line 38 will gradually be in a straightened state, and the straightened transmission line 38 will force the sliding frame 52 to slide upward along the inner wall of the fixed frame 51. The upward-moving sliding frame 52 will force the rotating plate 59 to tilt upward with the support rod 58 as the center, presenting the state of G in Figure 11 such that when the sliding frame 52 moves upward, the sliding frame 52 cannot drive the first rotating column 56 to rotate through the rotating plate 59.

[0054] One end of the third spring 53 away from the sliding frame 52 is fixedly connected to the inner wall of the fixed frame 51. One end of the second spring 44 away from the second slider 314 is fixedly connected to the inner wall of the second slide rail 313. One end of the first spring 43 away from the second sliding block 36 is fixedly connected to the inner wall of the first slide rail 35. The top of the second slider 314 is fixedly connected to the bottom of the first sliding block 23. The bottom of the measuring instrument 39 is fixedly connected to the top of the limiting plate 12. The outer wall of the second sliding block 36 is slidably connected to the inner wall of the first sliding groove 22. After the above components are used to complete the reset, the third spring 53 will drive the sliding frame 52 to slide downward along the inner wall of the fixed frame 51, and the downward-moving sliding frame 52 will drive the tooth groove 55 to move downward synchronously. At this time, the top of the inner wall of the tooth groove 55 contacts the outer wall of the rotating groove 57. At this time, the downward movement force of the sliding frame 52 will be transmitted to the first rotating column 56 through the rotating plate 59, forcing the first rotating column 56 to rotate. And at this time, the rotating first rotating column 56 drives the bidirectional threaded rod 64 to rotate in the same direction through the second rotating column 63. The rotating bidirectional threaded rod 64 will force the engaging block 65 to drive the second roller frame 62 to slide along the inner wall of the second sliding groove 42. As the second roller frame 62 slides, the transmission line 38 remaining between the first roller frame 61 and the second roller frame 62 will change synchronously at this time, so that the position where the rolling column 54 presses on the transmission line 38 also changes synchronously. Through the application of the above components, it is avoided that the transmission line 38 is always under pressure at the same position, causing damage to the internal circuit of the transmission line 38.

[0055] The usage method of the centerless network connection rapid detection device includes the following steps:

[0056] S1: Handheld device: Before use, the staff holds the handle 1 with their hand and presses one end of the limiting plate 12 tightly against the required plug position.

[0057] S2: Push the device: Press the device towards the plug position, forcing the spring switch 32 to contact the edge of the socket, thereby turning on the power supply of the second electric telescopic rod 33. The second electric telescopic rod 33 drives the pressure plate 34 to squeeze the crystal head 21, releasing the buckle restriction between the crystal head 21 and the socket.

[0058] S3: Turn on the power supply: Then turn on the power supply of the first electric telescopic rod 13, causing the first electric telescopic rod 13 to extend. The extended first electric telescopic rod 13 drives the first slide rail 35 to move outward synchronously.

[0059] A specific application of this embodiment is: Before use, the staff holds the handle 1 with their hand and presses one end of the limiting plate 12 tightly against the required plug position, presenting the state of point G as shown in Figure 1 . Subsequently, press the device towards the plug position, forcing the spring switch 32 to contact the edge of the socket, thereby turning on the power supply of the second electric telescopic rod 33. After the second electric telescopic rod 33 is turned on, it remains in a contracted state until the spring switch 32 is pressed again. When the spring switch 32 is pressed again, the second electric telescopic rod 33 will extend; when the spring switch 32 first contacts the edge of the socket, the second electric telescopic rod 33 drives the pressure plate 34 to squeeze the crystal head 21, releasing the buckle restriction between the crystal head 21 and the socket. Then, turn on the power supply of the first electric telescopic rod 13, causing the first electric telescopic rod 13 to extend. The extended first electric telescopic rod 13 drives the first slide rail 35 to move outward synchronously, forcing the first hydraulic telescopic rod 310 to extend. At this time, the first hydraulic telescopic rod 310 will extract the internal solution of the second hydraulic telescopic rod 312 through the storage tank 311, causing the second hydraulic telescopic rod 312 to contract. The telescopic second hydraulic telescopic rod 312 drives the sliding block 23 along the inner wall of the first sliding groove 22 towards the fixing plate 11 through the second slide rail 313 and the second slider 314. At this time, the sliding block 23 will drive the contact plate 24 and the crystal head 21 to move synchronously, causing the crystal head 21 to disengage from the original socket. The extended first electric telescopic rod 13 will drive the test connector 37 along the inner wall of the first sliding groove 22 towards the second slide rail 313 through the first slide rail 35 and the second slider 36. When the test connector 37 reaches the outermost position, the test connector 37 will be inserted into the original socket, enabling the internal information of the socket to be transmitted to the measuring instrument 39 through the test connector 37 and the transmission line 38. Through the application of the above components, it is ensured that when the device is pulled out from the original socket, the detection component can be quickly inserted, improving the detection efficiency of the device. In addition, by the above method, the process of pulling out the plug with fingers is reduced, avoiding accidental contact between fingers and other wires, causing loosening of other plugs and affecting the device's judgment.

[0060] Taking advantage of the telescopic characteristics of the above-mentioned first hydraulic telescopic rod 310 and the second hydraulic telescopic rod 312, a reset component 4 is provided inside the device. Among them, the first sliding groove 22 presents a state like Figure 3 "Y" in the figure. When the first hydraulic telescopic rod 310 and the second hydraulic telescopic rod 312 are operating, a pulling force is always generated by the first spring 43 and the second spring 44. The pulling force generated by the first spring 43 will force the second sliding block 36 to always be in close contact with the left side of the first sliding groove 22. Therefore, when the first electric telescopic rod 13 drives the test connector 37 to reset and the second sliding block 36 reaches the bifurcated position of the first sliding groove 22, it can, under the pulling of the first spring 43, closely adhere to the left side of the first sliding groove 22 and directly reach the left groove. Similarly, when the first electric telescopic rod 13 extends outward, the second spring 44 will force the crystal head 21 to reach the right side of the first sliding groove 22, ensuring the orderly operation of the device during processing, avoiding internal stacking, and affecting the detection efficiency of the device.

[0061] Taking advantage of the characteristic that the above-mentioned test connector 37 drives the transmission line 38 to move, a conversion component 5 is provided inside the device. Among them, when the test connector 37 moves towards the second slide rail 313, since the other end of the transmission line 38 is in a fixed state, the transmission line 38 will gradually be in a straightened state during this process. And the straightened transmission line 38 will force the sliding frame 52 to slide upward along the inner wall of the fixed frame 51. The upward-sliding sliding frame 52 will force the rotating plate 59 to tilt upward with the support rod 58 as the center, presenting a state like Figure 11 "G" in the figure, so that when the sliding frame 52 moves upward, the sliding frame 52 cannot drive the first rotating column 56 to rotate through the rotating plate 59; when the device finishes the detection, the first electric telescopic rod 13 contracts, the test connector 37 moves away from the socket, and at the same time, it forces the second hydraulic telescopic rod 312 to extend, so that the crystal head 21 is inserted back into the socket again. At this time, the spring switch 32 will contact the edge of the socket again, causing the second electric telescopic rod 33 to extend and the pressing plate 34 to release the clamping of the crystal head 21. The internal components of the device return to the initial state, ensuring that the device can quickly carry out subsequent work and improving the application efficiency of the device.

[0062] After the reset is completed using the above components, the third spring 53 will drive the sliding frame 52 to slide downward along the inner wall of the fixed frame 51, and the downward-moving sliding frame 52 will drive the tooth groove 55 to move downward synchronously. At this time, the top of the inner wall of the tooth groove 55 contacts the outer wall of the rotation groove 57. At this time, the force of the downward movement of the sliding frame 52 will be transmitted to the first rotating column 56 through the rotating plate 59, forcing the first rotating column 56 to rotate. At this time, the rotating first rotating column 56 drives the bidirectional threaded rod 64 to rotate in the same direction through the second rotating column 63. The rotating bidirectional threaded rod 64 will force the engaging block 65 to drive the second roller frame 62 to slide along the inner wall of the second sliding groove 42. As the second roller frame 62 slides, the transmission line 38 remaining between the first roller frame 61 and the second roller frame 62 will change synchronously, so that the position where the rolling column 54 presses on the transmission line 38 also changes synchronously. Through the application of the above components, it is avoided that the same position of the transmission line 38 is always in a compressed state, causing damage to the internal circuit of the transmission line 38.

[0063] The preferred embodiments of the present invention disclosed above are only used to help explain the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principle and practical application of the present invention, so that those skilled in the art can understand and utilize the present invention well. The present invention is only limited by the claims and their full scope and equivalents.

Claims

1. A centerless network connection rapid detection device, comprising a handle (1), the top of the handle (1) is fixedly connected with a fixing plate (11), a limiting plate (12) is fixedly connected to the side wall of the fixing plate (11), and a first electric telescopic rod (13) is fixedly connected to the side wall of the fixing plate (11), characterized in that, It further includes: A limiting component (2), the limiting component (2) includes a crystal head (21), a first sliding groove (22) for clamping the crystal head (21), a first sliding block (23), a contact plate (24), and a driving component (3) for replacing the crystal head (21); The first sliding groove (22) is opened at the top of the limiting plate (12), the inner wall of the first sliding groove (22) is slidably connected to the outer wall of the first sliding block (23), and the top of the first sliding block (23) is fixedly connected to the bottom of the contact plate (24).

2. The fast detection device for centerless network connection according to claim 1, wherein: The driving component (3) includes a mounting block (31) fixedly connected to the top of the contact plate (24), an electric telescopic rod two (33) is fixedly connected to the top of the mounting block (31), a pressing plate (34) is fixedly connected to the end of the electric telescopic rod two (33) away from the mounting block (31), and a spring switch (32) is slidably connected to the side wall of the mounting block (31); The driving component (3) further includes a first slide rail (35) fixedly connected to the end of the electric telescopic rod one (13) away from the fixed plate (11), a second sliding block (36) is slidably connected to the inner wall of the first slide rail (35), and a test connector (37) is fixedly connected to the end of the second sliding block (36) away from the first slide rail (35); The driving component (3) further includes a transmission line (38) fixedly connected to the side wall of the test connector (37), a measuring instrument (39) is fixedly connected to the end of the transmission line (38) away from the test connector (37), a first hydraulic telescopic rod (310) is fixedly connected to the side wall of the first slide rail (35), and a reset component (4) is arranged on the outer wall of the limiting plate (12).

3. The fast detection device for centerless network connection according to claim 2, characterized in that: The driving component (3) further includes a storage tank (311) connected through the end of the first hydraulic telescopic rod (310) away from the first slide rail (35), the side wall of the storage tank (311) is fixedly connected to the side wall of the fixed plate (11), a second hydraulic telescopic rod (312) is connected through the end of the storage tank (311) away from the first hydraulic telescopic rod (310), a second slide rail (313) is fixedly connected to the end of the second hydraulic telescopic rod (312) away from the storage tank (311), and a second slider (314) is slidably connected to the inner wall of the second slide rail (313).

4. The fast detection device for centerless network connection according to claim 3, wherein: The reset component (4) includes a mounting groove (41) opened on the side wall of the limiting plate (12), a second sliding groove (42) is opened on the side wall of the fixed plate (11), a first spring (43) is fixedly connected to the side wall of the second sliding block (36), a second spring (44) is fixedly connected to the side wall of the second slider (314), a conversion component (5) is fixedly connected to the top of the limiting plate (12), and an auxiliary component (6) is arranged on the inner wall of the second sliding groove (42).

5. The fast detection device for centerless network connection according to claim 4, wherein: The auxiliary component (6) includes a first roller frame (61) rotatably connected to the top of the limiting plate (12), a second roller frame (62) is slidably connected to the inner wall of the second sliding groove (42), and an engaging block (65) is fixedly connected to the side wall of the second roller frame (62).

6. The fast detection device for centerless network connection according to claim 5, wherein: The auxiliary component (6) further includes a second rotating column (63) rotatably connected to the inner wall of the installation groove (41). A bidirectional threaded rod (64) is fixedly connected to the side wall of the second rotating column (63). The inner wall of the through hole of the meshing block (65) is meshed with the outer wall of the bidirectional threaded rod (64).

7. An apparatus for rapid detection of centerless network connection according to claim 6, characterized in that: The conversion component (5) includes a fixed frame (51) fixedly connected to the top of the limiting plate (12). A sliding frame (52) is fixedly connected to the inner wall of the through hole of the fixed frame (51). A third spring (53) is fixedly connected to the bottom of the sliding frame (52). A rolling column (54) is rotatably connected to one end of the sliding frame (52) away from the third spring (53).

8. The rapid detection device for centerless network connection according to claim 7, characterized in that: The conversion component (5) further includes a tooth groove (55) opened on the side wall of the sliding frame (52). A first rotating column (56) is fixedly connected to the outer wall of the second rotating column (63). A plurality of rotating grooves (57) are opened on the side wall of the first rotating column (56). A support rod (58) is fixedly connected to the inner wall of each of the plurality of rotating grooves (57). A rotating plate (59) is rotatably connected to the outer wall of the support rod (58). A torsion spring (510) is fixedly connected to the inner wall of the rotating plate (59). One end of the torsion spring (510) away from the rotating plate (59) is fixedly connected to the outer wall of the support rod (58).

9. The fast detection device for centerless network connection according to claim 8, wherein: One end of the third spring (53) away from the sliding frame (52) is fixedly connected to the inner wall of the fixed frame (51). One end of the second spring (44) away from the second slider (314) is fixedly connected to the inner wall of the second slide rail (313). One end of the first spring (43) away from the second sliding block (36) is fixedly connected to the inner wall of the first slide rail (35). The top of the second slider (314) is fixedly connected to the bottom of the first sliding block (23). The bottom of the measuring instrument (39) is fixedly connected to the top of the limiting plate (12). The outer wall of the second sliding block (36) is slidably connected to the inner wall of the first sliding groove (22).

10. A method for using a device for quickly detecting a connection of a centerless network, which uses a device for quickly detecting a connection of a centerless network as described in claim 9, characterized in that: including the following steps S1: Handheld device: Before use, the staff holds the handle (1) with the hand and presses one end of the limiting plate (12) tightly against the required plug position. S2: Press the device towards the plug position, forcing the spring switch (32) to contact the edge of the socket, thereby turning on the power supply of the second electric telescopic rod (33). The second electric telescopic rod (33) drives the pressing plate (34) to squeeze the crystal head (21), releasing the buckle restriction between the crystal head (21) and the socket. S3: Then turn on the power supply of the first electric telescopic rod (13), causing the first electric telescopic rod (13) to extend. The extended first electric telescopic rod (13) drives the first slide rail (35) to move outward synchronously.