Network cable fault monitoring device capable of accurately positioning
By designing a network line fault monitoring device including monitoring sensors and positioning components, the existing device's thin structure and insufficient stability are solved, and precise positioning and detection on the surface of the network line main body is achieved, and the effects of electromagnetic interference shielding and structural protection are provided.
Patent Information
- Application Number
- CN202510165696.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-14
- Publication Date
- 2025-05-13
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing network line fault monitoring devices have a thin structure and are prone to structural damage due to external factors. They lack sufficient structural stability, which affects the accuracy of monitoring.
A network line fault monitoring device including a monitoring sensor and a positioning component is designed. The monitoring sensor consists of a first inner shell and a second inner shell. The housing assembly includes a protective shell, a shock absorbing ring, a photovoltaic self-generating module and a fixing seat. The positioning assembly realizes clamping and fixing of the network line by positioning pile clamping, connecting pile inserts, docking corner plates and anti-slip pads.
Through this structure, the device can maintain sufficient structural firmness and stability on the surface of the network line main body, avoid structural sliding, ensure accurate positioning and detection effect of the monitoring sensor, and provide electromagnetic interference shielding and structural protection.
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Figure CN119986245A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of network line monitoring, and in particular to a network line fault monitoring device capable of accurately locating. Background Art
[0002] Network cable refers to the cable that connects network devices, also known as data cable or network cable. It is an important part of telecommunication network technology, used to transmit data and provides the necessary conditions for networking;
[0003] Network line fault monitoring devices are devices used to monitor the state of the power grid in real time, detect and locate faults in a timely manner, and ensure the stability of power supply. These devices measure the changes in current and voltage waveforms and use algorithms to accurately locate the fault point, reducing maintenance time and costs.
[0004] Conventional network line fault monitoring devices have a flimsy structure. On the one hand, they are easily damaged by external factors. On the other hand, they lack sufficient structural stability, which easily affects the accuracy of monitoring.
[0005] Therefore, in view of this, the existing structure and defects are studied and improved, and a network line fault monitoring device that can accurately locate is proposed. Summary of the invention
[0006] The purpose of the present invention is to provide a network line fault monitoring device that can accurately locate the fault, so as to solve the problems raised in the above background technology.
[0007] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a network cable fault monitoring device that can accurately locate, comprising a monitoring sensor and a positioning component, wherein a network cable body is horizontally penetrated through the middle of the interior of the monitoring sensor, and a first inner shell is arranged on the top of the monitoring sensor, and a second inner shell is arranged on the bottom of the monitoring sensor, and outer shell components are symmetrically arranged on the outer sides of the second inner shell and the first inner shell, and the positioning component is symmetrically connected to the left and right sides of the outer shell component, and the positioning component comprises a positioning clamp pile, a connecting plug pile, a docking angle plate and an anti-slip pad, a connecting plug pile is arranged on the upper end of the positioning clamp pile close to the outer shell component, and docking angle plates are arranged on the lower ends of both sides of the positioning clamp pile, and an anti-slip pad is installed on the side of the positioning clamp pile close to the network cable body.
[0008] Furthermore, the first inner shell includes an upper shell, an upper heat sink and an upper fixing pile. The upper heat sink is arranged on the inner top side of the upper shell, and upper fixing piles are arranged at four diagonal positions inside the upper shell.
[0009] Furthermore, the second inner shell includes a lower shell, a lower heat sink, a lower fixing pile, a sealing sleeve and a supporting pipe rack. The lower heat sink is arranged on the inner bottom side of the lower shell, and lower fixing piles are arranged at four diagonal positions inside the lower shell. Sealing sleeves are installed on both sides of the lower shell, and a supporting pipe rack is arranged on the inner side of the sealing sleeve close to the lower shell.
[0010] Furthermore, an integral structure is adopted between the upper shell and the upper fixing pile, an integral structure is adopted between the lower shell and the lower fixing pile, a surface of the upper heat sink close to the monitoring sensor is provided with a groove structure that matches the surface structure of one side of the monitoring sensor, and the structures of the lower heat sink and the upper heat sink are the same.
[0011] Furthermore, the upper shell and the lower shell are connected by upper fixing piles and lower fixing piles in combination with bolts, and the supporting pipe rack and the lower shell are fixedly connected, and the upper shell and the lower shell are both made of materials capable of shielding electromagnetic interference.
[0012] Furthermore, the shell assembly includes a protective shell, a shock-absorbing ring, a photovoltaic self-generating module and a fixing seat. The shock-absorbing ring is symmetrically installed on the inner surface of the protective shell, and the photovoltaic self-generating module is installed in the middle of the outer surface of the protective shell, and fixing seats are installed on both sides of the left and right sides of the protective shell.
[0013] Furthermore, the left and right ends of the protective shell are respectively connected to the left and right ends of the first inner shell and the second inner shell by bolts, and the shock-absorbing ring is embedded in the inner wall of the protective shell and fits the outer surface of the first inner shell and the second inner shell, and the protective shell is made of damping alloy material.
[0014] Furthermore, the positioning clamp pile and the connecting pile are arranged in an integrated structure, and the connecting pile is horizontally inserted into one end of the fixing seat and fixed by bolt connection, and the docking angle plate is fixed to the side of the positioning clamp pile by bolts.
[0015] The present invention provides a network line fault monitoring device that can accurately locate the fault, which has the following beneficial effects:
[0016] 1. The present invention installs positioning components symmetrically on the left and right sides of the shell component, wherein the positioning clamps are connected and docked with the fixing seats by connecting plugs and are connected and fixed by bolts. The two sets of positioning components are symmetrically installed on the sides of the shell component in the above manner, and the network cable body is clamped therein with the anti-slip pad installed on one side of the positioning clamps, so that the whole device is fixed on the surface of the network cable body. Through the use of the above structure, it can be ensured to the greatest extent that when the whole device is set on the surface of the network cable body, sufficient structural firmness and stability are maintained, and unnecessary structural sliding that affects the positioning detection of the monitoring sensor on the network cable body is avoided, thereby ensuring the positioning accuracy of the device as much as possible.
[0017] 2. The present invention uses bolts to connect and fix the outer shell assembly to the first inner shell and the second inner shell from the left and right sides respectively, so that the first inner shell and the second inner shell with the monitoring sensor installed inside can be covered therein to form structural protection. The protective shell made of damping alloy material can effectively provide protection for the internal structure. At the same time, the upper shell and the lower shell made of materials with electromagnetic interference shielding are used. This combination utilizes the vibration reduction performance of the damping alloy and the conductive or magnetic properties of the shielding material to jointly suppress electromagnetic interference. The shock-absorbing ring inside the protective shell fits the outer surface of the first inner shell and the second inner shell to form a double-layer structural protection to ensure that the monitoring sensor can accurately locate and monitor the real-time status of the network cable body.
[0018] 3. The present invention connects and combines the upper shell and the lower shell by using a bolt structure with upper fixing piles and lower fixing piles, and cooperates with the structural connection between the first inner shell, the second inner shell and the outer shell assembly. While forming structural protection, it is also convenient for structural disassembly to facilitate maintenance operations by operators. In addition, an upper heat dissipation block is arranged on the internal top side of the upper shell, and a lower heat dissipation block is arranged on the internal bottom side of the lower shell. The monitoring sensor can be clamped in the middle of the first inner shell and the second inner shell, thereby ensuring the structural stability of the monitoring sensor and providing heat dissipation protection. In addition, the use of a sealing sleeve and a supporting pipe rack can not only ensure the sealing of the internal structure after the first inner shell and the second inner shell are connected and combined to prevent moisture and liquid ingress, but also provide structural connection support for the network cable body and the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 This is a schematic diagram of the main body axial side view of a network line fault monitoring device capable of accurate positioning according to the present invention;
[0020] Figure 2 This is a schematic diagram of the main body explosion structure of a network line fault monitoring device capable of accurate positioning according to the present invention;
[0021] Figure 3This is a schematic diagram of the three-dimensional structure of a first inner shell of a network line fault monitoring device capable of accurate positioning according to the present invention;
[0022] Figure 4 It is a schematic diagram of the three-dimensional structure of the second inner shell of a network line fault monitoring device capable of accurate positioning according to the present invention;
[0023] Figure 5 This is a schematic diagram of the three-dimensional structure of a housing component of a network line fault monitoring device capable of accurate positioning according to the present invention;
[0024] Figure 6 The present invention is a schematic diagram of the three-dimensional structure of a positioning component of a network line fault monitoring device capable of accurate positioning.
[0025] In the figure: 1. Monitoring sensor; 2. Network cable body; 3. First inner shell; 301. Upper shell; 302. Upper heat dissipation; 303. Upper fixing pile; 4. Second inner shell; 401. Lower shell; 402. Lower heat dissipation; 403. Lower fixing pile; 404. Sealing sleeve; 405. Support pipe rack; 5. Outer shell assembly; 501. Protective shell; 502. Shock-absorbing ring; 503. Photovoltaic self-generation module; 504. Fixing seat; 6. Positioning assembly; 601. Positioning clamp pile; 602. Connecting plug pile; 603. Docking angle plate; 604. Anti-slip pad. DETAILED DESCRIPTION
[0026] The following embodiments of the present invention are described in further detail in conjunction with the accompanying drawings and examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the present invention.
[0027] like Figures 1 to 6As shown, a network line fault monitoring device capable of accurate positioning comprises a monitoring sensor 1 and a positioning component 6, wherein a network line body 2 is horizontally penetrated through the middle of the interior of the monitoring sensor 1, and a first inner shell 3 is arranged on the top of the monitoring sensor 1, and a second inner shell 4 is arranged on the bottom of the monitoring sensor 1, and an outer shell component 5 is symmetrically arranged on the outer sides of the second inner shell 4 and the first inner shell 3, and the positioning component 6 is symmetrically connected to the left and right sides of the outer shell component 5, and the positioning component 6 comprises a positioning clamp pile 601, a connecting plug pile 602, a docking angle plate 603 and an anti-slip pad 604, and a connecting plug pile 602 is arranged on the upper end of the side of the positioning clamp pile 601 close to the outer shell component 5, and docking angle plates 603 are arranged on the lower ends of both sides of the positioning clamp pile 601, In addition, an anti-skid pad 604 is installed on the side of the positioning clamp 601 close to the network cable body 2. The positioning clamp 601 and the connecting plug 602 are arranged in an integrated structure, and the connecting plug 602 is horizontally inserted into one end of the fixing seat 504 and fixed by bolts, and the docking angle plate 603 is fixed to the side of the positioning clamp 601 by bolts, wherein the positioning clamp 601 is inserted and docked with the fixing seat 504 by the connecting plug 602, and is connected and fixed by bolts. The two sets of positioning components 6 are symmetrically installed on the sides of the outer shell component 5 in the above manner, and the anti-skid pad 604 installed on one side of the positioning clamp 601 is used to clamp the network cable body 2 therein, so that the entire device is fixed to the surface of the network cable body 2.
[0028] like Figures 1 to 6As shown, the first inner shell 3 includes an upper shell 301, an upper heat sink 302 and an upper fixing pile 303. The upper heat sink 302 is arranged on the top side of the upper shell 301, and the upper fixing piles 303 are arranged at the four diagonal positions inside the upper shell 301. The second inner shell 4 includes a lower shell 401, a lower heat sink 402, a lower fixing pile 403, a sealing sleeve 404 and a supporting pipe rack 405. The lower heat sink 402 is arranged on the bottom side of the lower shell 401, and the lower fixing piles 403 are arranged at the four diagonal positions inside the lower shell 401. The sealing sleeves 404 are installed on both sides of the lower shell 401, and the supporting pipe rack 405 is arranged on the inner side of the sealing sleeve 404 close to the lower shell 401. The upper shell 301 and the upper fixing pile 303 are arranged in an integrated structure. The lower shell 401 An integrated structure is adopted between the upper heat sink 302 and the lower fixing pile 403, a groove structure matching the surface structure of one side of the monitoring sensor 1 is provided on the surface of the upper heat sink 302 close to the monitoring sensor 1, and the structure of the lower heat sink 402 is the same as that of the upper heat sink 302, the upper shell 301 and the lower shell 401 are connected by the upper fixing pile 303 and the lower fixing pile 403 in combination with bolts, and the support pipe rack 405 and the lower shell 401 are fixedly connected, and the upper shell 301 and the lower shell 401 are both made of materials with electromagnetic interference shielding, and the outer shell assembly 5 is respectively connected and fixed to the first inner shell 3 and the second inner shell 4 from the left and right sides by bolts, so that the first inner shell 3 and the second inner shell 4 with the monitoring sensor 1 installed inside can be covered therein to form structural protection.
[0029] like Figures 1 to 6 As shown, the outer shell component 5 includes a protective shell 501, a shock-absorbing ring 502, a photovoltaic self-generating module 503 and a fixing seat 504. The inner surface of the protective shell 501 is symmetrically installed with the shock-absorbing ring 502, and the photovoltaic self-generating module 503 is installed in the middle of the outer surface of the protective shell 501, and the fixing seats 504 are installed on both sides of the left and right sides of the protective shell 501. The left and right ends of the protective shell 501 are respectively connected to the left and right ends of the first inner shell 3 and the second inner shell 4 by bolts, and the shock-absorbing ring 502 is embedded in the inner wall of the protective shell 501 and fits the outer surface of the first inner shell 3 and the second inner shell 4. The protective shell 501 is made of damping alloy material. The upper shell 301 and the lower shell 401 are connected and combined by using a bolt structure using an upper fixing pile 303 and a lower fixing pile 403, and the structural connection between the first inner shell 3, the second inner shell 4 and the outer shell component 5 is coordinated. While forming structural protection, it is also convenient for structural disassembly to facilitate maintenance operations by operators.
[0030] In summary, if Figures 1 to 4As shown, the network cable fault monitoring device that can accurately locate, when in use, firstly, the network cable body 2 to be monitored is passed through the middle of the second inner shell 4 in which the monitoring sensor 1 is installed, and at the same time, the middle of the inside of the monitoring sensor 1 is passed through, and then the first inner shell 3 is docked at the top of the second inner shell 4, and four sets of bolts are used to be screwed one by one to the upper fixing piles 303 and the lower fixing piles 403 at the four diagonal positions inside the upper shell 301 and the lower shell 401 after docking, and the upper heat sink 302 and the lower heat sink 402 are made to fit the upper and lower surfaces of the monitoring sensor 1, while providing structural heat dissipation, it also ensures the structural stability of the monitoring sensor 1 inside the first inner shell 3 and the second inner shell 4;
[0031] Then, the two groups of outer shell components 5 are respectively buckled and docked from the upper and lower sides of the first inner shell 3 and the second inner shell 4. At this time, the shock-absorbing ring 502 inside the protective shell 501 will fit the outer surfaces of the upper shell 301 and the lower shell 401. Then, eight groups of bolts are used to screw four groups on the left and right sides of the outer shell component 5 respectively, and they are connected and combined with the two sides of the first inner shell 3 and the second inner shell 4. Then, the positioning clamp pile 601 is inserted and docked with the fixing seat 504 using the connecting plug pile 602, and connected and fixed with bolts. Then, another group of positioning components 6 is assembled and installed in the same way, so that the docking angle plates 603 in the two groups of positioning components 6 are docked with one side of the outer shell component 5 up and down, and are fixed with bolts at the same time, and the network cable body 2 is clamped and fixed with the anti-slip pad 604, thereby completing the fixation of the device. During the operation of the entire device, the photovoltaic self-generation module 503 will provide power for the monitoring sensor 1 to ensure the continuous operation of the device.
[0032] The embodiments of the present invention are given for the purpose of illustration and description, and are not intended to be exhaustive or to limit the invention to the disclosed forms. Many modifications and variations will be apparent to those of ordinary skill in the art. The embodiments are selected and described in order to better illustrate the principles and practical applications of the present invention and to enable those of ordinary skill in the art to understand the present invention and thereby design various embodiments with various modifications suitable for specific uses.
Claims
1. A network line fault monitoring device capable of accurately locating, comprising a monitoring sensor (1) and a positioning component (6), characterized in that: The network cable body (2) is horizontally penetrated through the middle of the interior of the monitoring sensor (1), and a first inner shell (3) is arranged at the top of the monitoring sensor (1), and a second inner shell (4) is arranged at the bottom of the monitoring sensor (1), and an outer shell component (5) is symmetrically arranged on the outer sides of the second inner shell (4) and the first inner shell (3), and the positioning component (6) is symmetrically connected to the left and right sides of the outer shell component (5), and the positioning component (6) comprises a positioning clamp pile (601), a connecting plug pile (602), a docking angle plate (603) and an anti-skid pad (604), and the upper end of the positioning clamp pile (601) close to the outer shell component (5) is provided with a connecting plug pile (602), and the lower ends of both sides of the positioning clamp pile (601) are provided with docking angle plates (603), and the side of the positioning clamp pile (601) close to the network cable body (2) is installed with an anti-skid pad (604).
2. A network line fault monitoring device capable of accurate positioning according to claim 1, characterized in that: The first inner shell (3) comprises an upper shell (301), an upper heat sink (302) and an upper fixing pile (303); the upper heat sink (302) is arranged on the top side of the interior of the upper shell (301), and upper fixing piles (303) are arranged at four diagonal positions inside the upper shell (301).
3. A network line fault monitoring device capable of accurate positioning according to claim 2, characterized in that: The second inner shell (4) comprises a lower shell (401), a lower heat sink (402), a lower fixing pile (403), a sealing sleeve (404) and a supporting pipe rack (405); the lower heat sink (402) is arranged on the inner bottom side of the lower shell (401), and the lower fixing piles (403) are arranged at four diagonal positions inside the lower shell (401); the sealing sleeves (404) are installed on both left and right sides of the lower shell (401), and the supporting pipe rack (405) is arranged on the inner side of the sealing sleeve (404) close to the lower shell (401).
4. The network line fault monitoring device capable of accurate positioning according to claim 3, characterized in that: The upper shell (301) and the upper fixing pile (303) are arranged in an integrated structure, and the lower shell (401) and the lower fixing pile (403) are arranged in an integrated structure. The surface of the upper heat sink (302) close to the monitoring sensor (1) is provided with a groove structure that matches the surface structure of one side of the monitoring sensor (1), and the lower heat sink (402) and the upper heat sink (302) have the same structure.
5. The network line fault monitoring device capable of accurate positioning according to claim 4, characterized in that: The upper shell (301) and the lower shell (401) are connected by upper fixing piles (303) and lower fixing piles (403) in combination with bolts, and the supporting pipe frame (405) and the lower shell (401) are fixedly connected, and the upper shell (301) and the lower shell (401) are both made of materials capable of shielding electromagnetic interference.
6. The network line fault monitoring device capable of accurate positioning according to claim 1, characterized in that: The housing component (5) comprises a protective shell (501), a shock absorbing ring (502), a photovoltaic self-generating module (503) and a fixing seat (504); the shock absorbing ring (502) is symmetrically installed on the inner surface of the protective shell (501), the photovoltaic self-generating module (503) is installed in the middle of the outer surface of the protective shell (501), and the fixing seats (504) are installed on both the left and right sides of the protective shell (501).
7. The network line fault monitoring device capable of accurate positioning according to claim 6, characterized in that: The left and right ends of the protective shell (501) are respectively connected to the left and right ends of the first inner shell (3) and the second inner shell (4) by bolts, and the shock-absorbing ring (502) is embedded in the inner wall of the protective shell (501) and fits the outer surfaces of the first inner shell (3) and the second inner shell (4), and the protective shell (501) is made of a damping alloy material.
8. The network line fault monitoring device capable of accurate positioning according to claim 1, characterized in that: The positioning clamp pile (601) and the connecting plug pile (602) are arranged in an integrated structure, and the connecting plug pile (602) is horizontally inserted into one end of the fixing seat (504) and fixed by bolt connection.
9. The network line fault monitoring device capable of accurate positioning according to claim 8, characterized in that: The butt-jointed angle plate (603) is fixed to the side of the positioning clamp pile (601) by means of bolts.