Network cable data transmission detection device

By designing a network cable data transmission detection device with a limiting mechanism, a blower mechanism, and a fixing mechanism, the problems of inaccurate detection and unstable connection caused by dust accumulation at the network cable interface are solved, achieving stable clamping and dust removal of the data cable.

CN224124151UActive Publication Date: 2026-04-14JIAXING HANYANG INFORMATION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIAXING HANYANG INFORMATION TECH CO LTD
Filing Date
2025-04-29
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

In existing technologies, dust accumulation at network cable interfaces affects the accuracy of testing and the stability of the connection, and can easily lead to data cable detachment or shaking, resulting in inaccurate test results.

Method used

A network cable data transmission detection device was designed, comprising a limiting mechanism, a blower mechanism, and a fixing mechanism. The limiting mechanism uses a sliding block and the blower mechanism to remove dust, and the data cable is clamped by an electric cylinder and an L-shaped plate to ensure a stable connection.

Benefits of technology

It effectively removes dust from the interface, prevents data cables from falling off, and improves the accuracy and stability of the test.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN224124151U_ABST
    Figure CN224124151U_ABST
Patent Text Reader

Abstract

The utility model relates to the field of detection devices, in particular to a network cable data transmission detection device, which comprises a checker and a limiting mechanism. A limiting mechanism is arranged at the lower end of the inspector, an air blowing mechanism is arranged at the upper end of the limiting mechanism, and a fixing mechanism is arranged on one side of the inspector. Through the limiting mechanism, a user can conveniently switch different operations such as dust removal and detection, the operation convenience and efficiency are improved, air can be blown into a data line interface through the air blowing mechanism, dust at the interface can be effectively cleaned, and a data line can be firmly fixed and prevented from falling off during detection by adopting the fixing mechanism; the detection process is ensured to be carried out smoothly and the reliability of the detection result is ensured, and the problem that in the prior art, the detection accuracy and the network cable connection stability are affected by dust accumulation of a data line interface of a device, the data line is prone to falling off or shaking, and consequently the detection result is inaccurate is solved.
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Description

Technical Field

[0001] This utility model belongs to the field of testing devices, specifically relating to a network cable data transmission testing device. Background Technology

[0002] In today's rapidly developing modern information technology, network cables, as an important component of network communication, directly affect the stability and efficiency of network systems through the quality of their data transmission. Transmission testing, with its professional equipment and processes, can quickly detect problems such as signal attenuation and crosstalk in network cables, locate faults, reduce network downtime, and ensure smooth data transmission.

[0003] In existing technologies, dust accumulation at the data cable interface of the device affects the accuracy of detection and the stability of the network cable connection, and can easily lead to data cable detachment or shaking, resulting in inaccurate detection results. Utility Model Content

[0004] To overcome the problems in existing technologies where dust accumulation at the data cable interface affects detection accuracy and network cable connection stability, and data cables are prone to falling off or shaking, leading to inaccurate detection results, a network cable data transmission detection device is proposed.

[0005] The technical solution of this utility model is as follows: a network cable data transmission detection device, including an inspector and a limiting mechanism; the lower end of the inspector is provided with a limiting mechanism, the upper end of the limiting mechanism is provided with a blower mechanism, and a fixing mechanism is provided on one side of the inspector; the limiting mechanism includes a first T-shaped groove, a first T-shaped block, a protective shell, a first groove body, a first through hole, and a filter screen; the lower end of the inspector is provided with first T-shaped grooves on both sides, the first T-shaped block is slidably installed inside the first T-shaped groove, the lower ends of the two first T-shaped blocks are fixedly connected to the protective shell, the upper end of the protective shell is provided with a first groove body, one end of the first groove body is provided with a plurality of first through holes evenly distributed in the horizontal direction, and the other end of the first through hole is fixedly connected to a filter screen.

[0006] Furthermore, the blower mechanism includes a second T-shaped groove, a second T-shaped block, a fixing block, a second through hole, a fan, a guide pipe, an air concentrator, and a limiting block; the lower end of the inner wall of the first groove is provided with a second T-shaped groove, the inner wall of the second T-shaped groove is slidably installed with a second T-shaped block, the upper end of the second T-shaped block is fixedly connected with a fixing block, a second through hole is provided through one side of the fixing block, the inner wall of the second through hole is fixedly connected with a fan, one end of the guide pipe is fixedly connected to one end of the second through hole near the center point of the limiting mechanism, the other end of the guide pipe is fixedly connected with an air concentrator, and multiple limiting blocks are fixedly connected to the upper end of the first groove, with the two ends of the limiting blocks located on both sides of the second T-shaped groove.

[0007] Furthermore, the fixing mechanism includes side baffles, a first electric cylinder, a second electric cylinder, a top plate, an L-shaped plate, a sealing plate, and a third through hole; three side baffles are fixedly connected to one end of the inspector, the lower end of the side baffle at the upper end of the inspector is fixedly connected to the first electric cylinder, the output end of the first electric cylinder is fixedly connected to the top plate, the ends of the side baffles on both sides of the inspector that are close to each other are fixedly connected to the second electric cylinders, the output ends of the second electric cylinders are fixedly connected to the L-shaped plates, one end of the three side baffles is fixedly connected to the sealing plate, and the sealing plate has a third through hole through it.

[0008] Furthermore, one side of each of the multiple limiting blocks is in contact with the side wall of the drainage tube.

[0009] Furthermore, the lower horizontal plates of the two L-shaped panels are joined together at one end, and the top plate and the two L-shaped panels form a square.

[0010] Furthermore, the width of the second T-groove is smaller than the width of the drainage tube.

[0011] Furthermore, the length of the third through hole is greater than the diameter of the data cable, and the width of the third through hole is greater than the diameter of the data cable.

[0012] The beneficial effects of this utility model are as follows: First, the first T-shaped block is slid through the first T-shaped groove, and the protective shell is slid to the front of the inspector. Then, one end of the drainage tube is pulled out. When the drainage tube moves outward, it drives the fixing block to move. When the fixing block moves, it drives the lower second T-shaped block to slide. The second T-shaped block slides through the second T-shaped groove, and the drainage tube slides outward. Then, the fan is turned on, and the fan blows air into the interior of the drainage tube through the first through hole. The air-gathering nozzle in the outlet of the drainage tube gathers the air together. Then, the air-gathering nozzle is aligned with the third through hole, and the air-gathering nozzle blows out. Air is blown into the data cable interface through the third through hole to remove dust from the interface. After dust removal, the fixing block is slid into the limiting mechanism by sliding the second T-block. The drainage tube follows the fixing block into the limiting mechanism. Then, the first T-slot is used to slide the first T-block to the lower end of the inspector. The data cable is inserted into the inspector through the third through hole. Then, the first electric cylinder and the second electric cylinder are opened. The first electric cylinder and the second electric cylinder push the top plate and the L-shaped plate towards the middle. The top plate and the L-shaped plate clamp the data cable in a certain direction to prevent the data cable from falling off during the test. Attached Figure Description

[0013] Figure 1 The diagram shown is a three-dimensional structural schematic of this utility model;

[0014] Figure 2 The diagram shown is a first cross-sectional perspective view of the limiting mechanism of this utility model.

[0015] Figure 3 The diagram shown is a two-dimensional cross-sectional view of the limiting mechanism of this utility model.

[0016] Figure 4 The diagram shown is a cross-sectional perspective view of the blower mechanism of this utility model.

[0017] Figure 5 The diagram shown is a three-dimensional structural schematic of the fixing mechanism of this utility model;

[0018] Figure 6 The diagram shown is a three-dimensional structural schematic of the fixing mechanism of this utility model.

[0019] The labels in the attached diagram are as follows: 1. Inspector; 2. Limiting mechanism; 21. First T-slot; 22. First T-block; 23. Protective shell; 24. First groove body; 25. First through hole; 26. Filter screen; 3. Blowering mechanism; 31. Second T-slot; 32. Second T-block; 33. Fixing block; 34. Second through hole; 35. Fan; 36. Drain pipe; 37. Air concentrator; 38. Limiting block; 4. Fixing mechanism; 41. Side baffle; 42. First electric cylinder; 43. Second electric cylinder; 44. Top plate; 45. L-shaped plate; 46. Sealing plate; 47. Third through hole. Detailed Implementation

[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0021] Please see Figures 1-6 This utility model provides an embodiment: a network cable data transmission detection device, including an inspector 1 and a limiting mechanism 2; the lower end of the inspector 1 is provided with the limiting mechanism 2, the upper end of the limiting mechanism 2 is provided with a blower mechanism 3, and a fixing mechanism 4 is provided on one side of the inspector 1; the limiting mechanism 2 includes a first T-shaped groove 21, a first T-shaped block 22, a protective shell 23, a first groove body 24, a first through hole 25, and a filter screen 26; the lower end of the inspector 1 is provided with the first T-shaped groove 21 on both sides, the first T-shaped block 22 is slidably installed inside the first T-shaped groove 21, the lower ends of the two first T-shaped blocks 22 are fixedly connected to the protective shell 23, the upper end of the protective shell 23 is provided with the first groove body 24, one end of the first groove body 24 is evenly provided with a plurality of first through holes 25 in the horizontal direction, and the other end of the first through hole 25 is fixedly connected to the filter screen 26.

[0022] In use, firstly, slide the first T-shaped block 22 through the first T-shaped groove 21 to slide the protective shell 23 to the front of the inspector 1. Then, pull out one end of the drainage tube 36. When the drainage tube 36 moves outward, it drives the fixing block 33 to move. When the fixing block 33 moves, it drives the lower second T-shaped block 32 to slide. The second T-shaped block 32 slides through the second T-shaped groove 31, and the drainage tube 36 slides outward. Then, turn on the fan 35. The fan 35 blows air into the interior of the drainage tube 36 through the first through hole 25. The air-gathering nozzle 37 in the outlet of the drainage tube 36 gathers the air together. Then, align the air-gathering nozzle 37 with the third through hole 47, and the air-gathering nozzle 37 blows out. The incoming air is blown into the data cable interface through the third through hole 47 to remove dust from the interface. After the dust removal is completed, the fixing block 33 is slid into the limiting mechanism 2 by sliding the second T-shaped block 32. The drainage tube 36 follows the fixing block 33 into the limiting mechanism 2. Then, the first T-shaped block 22 is slid to the lower end of the inspector 1 by using the first T-shaped groove 21. The data cable is inserted into the inspector 1 through the third through hole 47. Then, the first electric cylinder 42 and the second electric cylinder 43 are opened. The first electric cylinder 42 and the second electric cylinder 43 push the top plate 44 and the L-shaped plate 45 towards the middle. The top plate 44 and the L-shaped plate 45 form a direction to clamp the data cable to prevent the data cable from falling off during the test.

[0023] Please see Figure 4 In this embodiment, the blower mechanism 3 includes a second T-shaped groove 31, a second T-shaped block 32, a fixing block 33, a second through hole 34, a fan 35, a guide pipe 36, an air concentrator 37, and a limiting block 38. The lower end of the inner wall of the first groove 24 is provided with a second T-shaped groove 31. The inner wall of the second T-shaped groove 31 is slidably installed with a second T-shaped block 32. The upper end of the second T-shaped block 32 is fixedly connected with a fixing block 33. A second through hole 34 is provided through one side of the fixing block 33. The inner wall of the second through hole 34 is fixedly connected with a fan 35. One end of the guide pipe 36 is fixedly connected to one end of the second through hole 34 near the center point of the limiting mechanism 2. The other end of the guide pipe 36 is fixedly connected with an air concentrator 37. A plurality of limiting blocks 38 are fixedly connected to the upper end of the first groove 24. The two ends of the limiting blocks 38 are located on both sides of the second T-shaped groove 31. The fan 35 blows air into the interior of the guide pipe 36 and then blows it out from the air concentrator 37.

[0024] Please see Figure 5 and Figure 6In this embodiment, the fixing mechanism 4 includes a side baffle 41, a first electric cylinder 42, a second electric cylinder 43, a top plate 44, an L-shaped plate 45, a sealing plate 46, and a third through hole 47. One end of the inspector 1 is fixedly connected to three side baffles 41. The lower end of the side baffle 41 at the upper end of the inspector 1 is fixedly connected to the first electric cylinder 42. The output end of the first electric cylinder 42 is fixedly connected to the top plate 44. The ends of the side baffles 41 on both sides of the inspector 1 that are close to each other are fixedly connected to the second electric cylinder 43. The output ends of the second electric cylinder 43 are all fixedly connected to the L-shaped plate 45. One end of the three side baffles 41 is fixedly connected to the sealing plate 46. One end of the sealing plate 46 is provided with a third through hole 47. The data cable is clamped by the top plate 44 and the L-shaped plate 45.

[0025] Please see Figure 4 In this embodiment, one side of the plurality of limiting blocks 38 is attached to the side wall of the drainage tube 36 to limit the drainage tube 36.

[0026] Please see Figure 5 and Figure 6 In this embodiment, one end of the lower horizontal plate of the two L-shaped plates 45 is attached to each other, and the top plate 44 and the two L-shaped plates 45 form a square, which provides a better clamping effect for the data cable.

[0027] Please see Figure 4 In this embodiment, the width of the second T-groove 31 is smaller than the width of the drainage tube 36 to prevent the drainage tube 36 from falling into the interior of the second T-groove 31.

[0028] Please see Figure 5 and Figure 6 In this embodiment, the length of the third through hole 47 is greater than the diameter of the data line, and the width of the third through hole 47 is greater than the diameter of the data line, so that the data line can pass through the third through hole 47.

[0029] Working principle: First, the first T-shaped block 22 slides through the first T-shaped groove 21, moving the protective shell 23 to the front of the inspector 1. Then, one end of the drainage tube 36 is pulled out. As the drainage tube 36 moves outward, it drives the fixing block 33 to move. When the fixing block 33 moves, it drives the lower second T-shaped block 32 to slide. The second T-shaped block 32 slides through the second T-shaped groove 31, and the drainage tube 36 slides outward. Then, the fan 35 is turned on, and the fan 35 blows air into the interior of the drainage tube 36 through the first through hole 25. The air concentrator 37 in the outlet of the drainage tube 36 gathers the air together. Then, the air concentrator 37 is aligned with the third through hole 47, and the air concentrator 37 blows outward. The incoming air is blown into the data cable interface through the third through hole 47 to remove dust from the interface. After the dust removal is completed, the fixing block 33 is slid into the limiting mechanism 2 by sliding the second T-shaped block 32. The drainage tube 36 follows the fixing block 33 into the limiting mechanism 2. Then, the first T-shaped block 22 is slid to the lower end of the inspector 1 by using the first T-shaped groove 21. The data cable is inserted into the inspector 1 through the third through hole 47. Then, the first electric cylinder 42 and the second electric cylinder 43 are opened. The first electric cylinder 42 and the second electric cylinder 43 push the top plate 44 and the L-shaped plate 45 towards the middle. The top plate 44 and the L-shaped plate 45 form a direction to clamp the data cable to prevent the data cable from falling off during the test.

Claims

1. A network cable data transmission detection device, characterized in that, It includes an inspection device (1) and a limiting mechanism (2); the lower end of the inspection device (1) is provided with a limiting mechanism (2), the upper end of the limiting mechanism (2) is provided with a blower mechanism (3), and a fixing mechanism (4) is provided on one side of the inspection device (1); the limiting mechanism (2) includes a first T-shaped groove (21), a first T-shaped block (22), a protective shell (23), a first groove body (24), a first through hole (25), and a filter screen (26); the lower end of the inspection device (1) is provided with a first T-shaped groove (21) on both sides, the first T-shaped block (22) is slidably installed inside the first T-shaped groove (21), the lower ends of the two first T-shaped blocks (22) are fixedly connected to the protective shell (23), the upper end of the protective shell (23) is provided with a first groove body (24), one end of the first groove body (24) is evenly provided with multiple first through holes (25) in the horizontal direction, and the other end of the first through hole (25) is fixedly connected to the filter screen (26).

2. The network cable data transmission detection device according to claim 1, characterized in that, The blower mechanism (3) includes a second T-slot (31), a second T-block (32), a fixing block (33), a second through hole (34), a fan (35), a drain pipe (36), an air concentrator (37), and a limiting block (38); the lower end of the inner wall of the first groove (24) is provided with a second T-slot (31), the inner wall of the second T-slot (31) is slidably installed with a second T-block (32), and the upper end of the second T-block (32) is fixedly connected with a fixing block (33). A second through hole (34) is provided on one side of the fixed block (33). A fan (35) is fixed to the inner wall of the second through hole (34). One end of the second through hole (34) near the center point of the limiting mechanism (2) is fixed to one end of the drain pipe (36). The other end of the drain pipe (36) is fixed to the air inlet (37). Multiple limiting blocks (38) are fixed to the upper end of the first groove (24). The two ends of the limiting blocks (38) are located on both sides of the second T-shaped groove (31).

3. The network cable data transmission detection device according to claim 1, characterized in that, The fixing mechanism (4) includes a side baffle (41), a first electric cylinder (42), a second electric cylinder (43), a top plate (44), an L-shaped plate (45), a sealing plate (46), and a third through hole (47). One end of the inspector (1) is fixedly connected to three side baffles (41). The lower end of the side baffle (41) at the upper end of the inspector (1) is fixedly connected to the first electric cylinder (42). The output end of the first electric cylinder (42) is fixedly connected to the top plate (44). The ends of the side baffles (41) on both sides of the inspector (1) that are close to each other are all fixedly connected to the second electric cylinder (43). The output ends of the second electric cylinders (43) are all fixedly connected to the L-shaped plate (45). One end of the three side baffles (41) is fixedly connected to the sealing plate (46). One end of the sealing plate (46) is provided with a third through hole (47).

4. The network cable data transmission detection device according to claim 2, characterized in that, One side of the multiple limiting blocks (38) is in contact with the side wall of the drainage tube (36).

5. The network cable data transmission detection device according to claim 3, characterized in that, The lower horizontal plates of the two L-shaped plates (45) are attached to each other, and the top plate (44) and the two L-shaped plates (45) form a square.

6. The network cable data transmission detection device according to claim 2, characterized in that, The width of the second T-groove (31) is smaller than the width of the drainage tube (36).

7. The network cable data transmission detection device according to claim 3, characterized in that, The length of the third through hole (47) is greater than the diameter of the data line, and the width of the third through hole (47) is greater than the diameter of the data line.