Mounting mechanism and ice observing and melting monitoring device
By designing the fixed and rotating components of the installation mechanism, the problem of installing the monitoring system on the outside of the conductor was solved, achieving stable installation and waterproof protection, and ensuring the reliability and continuous operation of the monitoring device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2026-04-10
AI Technical Summary
There is a lack of mechanisms in the existing technology for integrating and mounting monitoring systems on the outside of the conductors.
An installation mechanism was designed, including a fixing component and a rotating component. Through the cooperation of the base assembly, clamping assembly and connecting assembly, the monitoring device is stably installed on the outside of the wire, and the roof shell prevents rainwater from entering and protects the internal electrical components.
This ensures stable installation of the monitoring device on the outside of the conductor, preventing deflection or slippage and protecting the internal electrical components from rain damage, thus ensuring continuous and reliable monitoring performance.
Smart Images

Figure CN224110843U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of wire protection, especially an installation mechanism and ice monitoring device. BACKGROUND
[0002] Since the large-scale ice disaster in 2008, the on-line monitoring technology and device of the equivalent ice thickness of high-voltage distribution network lines have been widely applied in power grids. At present, there are various monitoring methods of equivalent ice thickness at home and abroad, including the inclination method, the weighing method, the image equivalent discrimination method, the meteorological method, etc. Video monitoring is an important means and method of on-line monitoring of transmission lines, which has been widely used in transmission line ice monitoring, anti-external damage monitoring and forest fire monitoring in recent years. As a more intuitive monitoring method, video monitoring has its irreplaceable role. However, in practical application, the wire ice melting monitoring system lacks an installation mechanism for integrating and installing the monitoring system outside the wire. SUMMARY
[0003] Therefore, the technical problem to be solved by the utility model is that there is a lack of a mechanism for integrating and installing a monitoring system outside a wire in the prior art.
[0004] The above technical problem is solved by the following technical scheme: the utility model provides an installation mechanism, which comprises,
[0005] The fixing component comprises a base position assembly, a first clamping assembly installed outside the base position assembly, and a connecting assembly installed outside the base position assembly.
[0006] The rotating component comprises a top assembly installed outside the base position assembly, a second clamping assembly installed outside the top assembly, and an auxiliary assembly installed outside the top assembly.
[0007] In a preferred embodiment of the installation mechanism: the base position assembly comprises a base position sleeve, and a rotating shaft fixedly connected outside the base position sleeve.
[0008] In a preferred embodiment of the installation mechanism: the first clamping assembly comprises a front first compression ring installed outside the base position sleeve, and a rear first compression ring installed outside the base position sleeve.
[0009] In a preferred embodiment of the installation mechanism: the connecting assembly comprises a base position connecting block fixedly connected outside the base position sleeve, and a bolt screwedly connected inside the base position connecting block.
[0010] In a preferred embodiment of the installation mechanism, the top assembly comprises a rotating sleeve connected to the outside of the rotating shaft, and a rotating connecting block fixedly connected to the outside of the rotating sleeve.
[0011] The bolt is threadedly connected with the rotating connecting block.
[0012] In a preferred embodiment of the installation mechanism, the second clamping assembly comprises a front second compression ring mounted on the outside of the rotating sleeve, and a rear second compression ring mounted on the outside of the rotating sleeve.
[0013] In a preferred embodiment of the installation mechanism, the auxiliary assembly comprises a roof-shaped top shell fixedly connected to the outside of the rotating sleeve, and a solar cell panel adaptively mounted in the roof-shaped top shell.
[0014] The utility model also provides an ice observation and ice melting monitoring device.
[0015] In a preferred embodiment of the ice observation and ice melting monitoring device, the ice observation and ice melting monitoring device comprises the installation mechanism, and further comprises,
[0016] The main body mechanism comprises a first detection component and a second detection component.
[0017] The first detection component is mounted in the fixed component, and the second detection component is mounted in the rotating component.
[0018] In a preferred embodiment of the ice observation and ice melting monitoring device, the first detection component comprises a high-precision inclination sensor, an intelligent PID heating plate and a CT induction power receiver adaptively mounted in the base sleeve.
[0019] In a preferred embodiment of the ice observation and ice melting monitoring device, the second detection component comprises a front temperature sensor adaptively mounted in the front second compression ring, a rear temperature sensor adaptively mounted in the rear second compression ring, an anti-icing camera adaptively mounted on the outside of the rotating sleeve, a signal transmitter and a current sensor adaptively mounted in the rotating sleeve.
[0020] The utility model has the advantages that through the cooperation of the fixed component and the rotating component, the installation mechanism can conveniently carry the ice observation and ice melting monitoring device to be installed on the outside of the wire, and will not be deflected or slipped, and through the technical scheme that the roof-shaped top shell is arranged on the outside of the rotating sleeve, rainwater can be prevented from entering the inside of the installation mechanism, so that the electrical elements in the installation mechanism are not damaged. BRIEF DESCRIPTION OF DRAWINGS
[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings of the embodiments of the present application will be briefly introduced as follows. Obviously, the drawings described in the following merely relate to some embodiments of the present application and are not a limitation on the present application. Among them:
[0022] Figure 1 The overall structure schematic diagram of the present application is shown;
[0023] Figure 2 The top assembly schematic diagram of the present application is shown;
[0024] Figure 3 The internal schematic diagram of the mounting mechanism of the present application is shown;
[0025] Figure 4 The cross-sectional schematic diagram of the mounting mechanism of the present application is shown. DETAILED DESCRIPTION
[0026] In order to make the skilled in the art better understand the present application, the present application will be further described in detail in combination with specific embodiments and drawings.
[0027] The terms used in the present application are those general terms currently widely used in the art in consideration of the functions about the present application, but these terms can be changed according to the intention of the person skilled in the art, precedents or new technologies in the art. In addition, specific terms can be selected by the applicant, and in this case, the detailed meaning thereof will be described in the detailed description of the present application. Therefore, the terms used in the specification should not be understood as mere names, but based on the meaning of the terms and the overall description of the present application.
[0028] Referring to Figures 1-3 , the present embodiment provides a mounting mechanism, comprising,
[0029] The fixed part 1 comprises a base assembly 11, a first clamping assembly 12 mounted on the outer side of the base assembly 11, and a connecting assembly 13 mounted on the outer side of the base assembly 11.
[0030] The rotating part 2 comprises a top assembly 21 mounted on the outer side of the base assembly 11, a second clamping assembly 22 mounted on the outer side of the top assembly 21, and an auxiliary assembly 23 mounted on the outer side of the top assembly 21.
[0031] The base assembly 11 comprises a base sleeve 111 and a rotating shaft 112 fixedly connected on the outer side of the base sleeve 111.
[0032] The first clamping assembly 12 includes a front first compression ring 121 installed on the outside of the base housing 111, and a rear first compression ring 122 installed on the outside of the base housing 111.
[0033] The connecting assembly 13 includes a base connecting block 131 fixedly connected to the outside of the base housing 111, and a bolt 132 threadedly connected to the inside of the base connecting block 131.
[0034] The top assembly 21 includes a rotating sleeve 211 rotatably connected to the outside of the rotating shaft 112, and a rotating connecting block 212 fixedly connected to the outside of the rotating sleeve 211.
[0035] Bolt 132 is threadedly connected to rotating connecting block 212.
[0036] The second clamping assembly 22 includes a front second compression ring 221 installed on the outside of the rotating sleeve 211, and a rear second compression ring 222 installed on the outside of the rotating sleeve 211.
[0037] The ice melting monitoring device is installed inside the installation mechanism.
[0038] When in use, the base sleeve 111 can be placed outside the conductor, and the conductor can be placed inside the front first compression ring 121 and the rear first compression ring 122. Then, rotate the sleeve 211 so that the rotating sleeve 211 covers the outside of the conductor. At this time, the front second compression ring 221 and the rear second compression ring 222 are also in contact with the conductor.
[0039] By fixing the base connecting block 131 and the rotating connecting block 212 with bolts 132, the installation mechanism can be installed on the outside of the conductor, that is, the ice observation and melting monitoring device can be installed on the outside of the conductor.
[0040] By compressing the front first compression ring 121, the rear first compression ring 122, the front second compression ring 221, and the rear second compression ring 222, the installation mechanism can be stably installed on the outside of the conductor without deflection or slippage.
[0041] As one embodiment provided in this application, such as Figures 1-4 The auxiliary component 23 includes a roof shell 231 fixedly connected to the outside of the rotating housing 211, and a solar panel 232 adapted to be installed inside the roof shell 231.
[0042] The roof-shaped top shell 231 outside the rotating sleeve 211 is symmetrically and obliquely arranged, and the eaves exceeds the connecting gap between the base sleeve 111 and the rotating sleeve 211. When it rains, the roof-shaped top shell 231 can guide the rainwater and make it fall along the eaves of the roof-shaped top shell 231, preventing the rainwater from entering the inside of the installation mechanism through the connecting gap between the base sleeve 111 and the rotating sleeve 211, and causing damage to the internal electrical components.
[0043] In addition, the solar panel 232 arranged inside the roof-shaped top shell 231 can provide power for the operation of the ice and ice melting monitoring device.
[0044] In summary, through the cooperation of the fixed part 1 and the rotating part 2, the installation mechanism carrying the ice and ice melting monitoring device can be conveniently installed outside the wire, and will not be deflected or slipped. In addition, through the technical scheme of arranging the roof-shaped top shell 231 outside the rotating sleeve 211, rainwater can be prevented from entering the inside of the installation mechanism, causing damage to the internal electrical components of the installation mechanism.
[0045] Reference Figures 1-3 The embodiment provides an ice and ice melting monitoring device, which comprises an installation mechanism, and further comprises,
[0046] The main mechanism 3 comprises a first detection part 31 and a second detection part 32.
[0047] The first detection part 31 is installed inside the fixed part 1, and the second detection part 32 is installed inside the rotating part 2.
[0048] The first detection part 31 comprises a high-precision inclination sensor 311, an intelligent PID heating plate 312 and a CT induction power extractor 313 which are adaptively installed inside the base sleeve 111.
[0049] The second detection part 32 comprises a front temperature sensor 321 adaptively installed inside the front second compression ring 221, a rear temperature sensor 322 adaptively installed inside the rear second compression ring 222, an anti-icing camera 323 adaptively installed outside the rotating sleeve 211, a signal transmitter 324 adaptively installed inside the rotating sleeve 211 and a current sensor 325.
[0050] The CT induction power extractor 313 is arranged to be opened and closed in half, that is, one half of the CT induction power extractor 313 is arranged inside the base sleeve 111, and the other half can be opened and closed with the rotating sleeve 211.
[0051] The whole icing process of the outside of the conductor is observed by the anti-icing camera 323. When the detected conductor has icing and the angle inclination problem occurs, the high-precision inclination sensor 311 can timely sense and feedback, and the detected information signal transmitter 324 can timely transmit the information to the base station, so as to arrange maintenance and repair work. The whole device is continuously powered by the solar panel 232 and the CT induction power supply 313. When the device is placed in a situation of too low temperature, the intelligent PID heating plate 312 starts to melt ice around the device, so as to prevent the serious icing of the conductor from seriously affecting the detection effect and improve the sustainable monitoring performance of the device.
[0052] Finally, it should be pointed out that the above detailed description of the method and device is only an embodiment, and those skilled in the art can modify the embodiment in different ways without departing from the scope of the present application.
Claims
1. A mounting mechanism characterized by: The utility model relates to a kind of solar energy installation mechanism, including, Fixed component (1), the fixed component (1) includes base position component (11), first clamping component (12) being installed in the outer side of the base position component (11), and connecting component (13) being installed in the outer side of the base position component (11); Rotary component (2), the rotary component (2) includes top component (21) being installed in the outer side of the base position component (11), second clamping component (22) being installed in the outer side of the top component (21), and auxiliary component (23) being installed in the outer side of the top component (21).
2. The mounting mechanism of claim 1, wherein: The base position component (11) includes base position sleeve shell (111), and rotating shaft (112) is fixedly connected in the outer side of the base position sleeve shell (111).
3. The mounting mechanism of claim 2, wherein: The first clamping component (12) includes front first compression ring (121) being installed in the outer side of the base position sleeve shell (111), and rear first compression ring (122) being installed in the outer side of the base position sleeve shell (111).
4. The mounting mechanism of claim 3, wherein: The connecting component (13) includes base position connecting block (131) being fixedly connected in the outer side of the base position sleeve shell (111), and bolt (132) being screwed in the inside of the base position connecting block (131).
5. The mounting mechanism of claim 4, wherein: The top component (21) includes rotary connection in the outer side of the rotating shaft (112) rotary sleeve shell (211), and rotary connecting block (212) is fixedly connected in the outer side of the rotary sleeve shell (211); Wherein, the bolt (132) is screwed with the rotary connecting block (212).
6. The mounting mechanism of claim 5, wherein: The second clamping component (22) includes front second compression ring (221) being installed in the outer side of the rotary sleeve shell (211), and rear second compression ring (222) being installed in the outer side of the rotary sleeve shell (211).
7. The mounting mechanism of claim 6, wherein: The auxiliary component (23) includes roof-shaped top shell (231) being fixedly connected in the outer side of the rotary sleeve shell (211), and solar cell panel (232) is adaptively installed in the inside of the roof-shaped top shell (231).
8. An ice viewing and de-icing monitoring apparatus, characterized by: The utility model relates to a kind of solar energy installation mechanism, including, Main body mechanism (3), the main body mechanism (3) includes first detection component (31) and second detection component (32); The first detection component (31) is installed in the inside of the fixed component (1), and the second detection component (32) is installed in the inside of the rotary component (2).
9. An ice viewing and de-icing monitoring apparatus as claimed in claim 8, characterised in that: The first detection component (31) includes high-precision inclination sensor (311) being adaptively installed in the inside of the base position sleeve shell (111), intelligent PID heating plate (312), and CT inductive power receiver (313).
10. An ice viewing and de-icing monitoring apparatus as claimed in claim 9, characterised in that: The second detection component (32) includes front temperature sensor (321) being adaptively installed in the inside of the front second compression ring (221), rear temperature sensor (322) being adaptively installed in the inside of the rear second compression ring (222), and anti-icing camera (323) is adaptively installed in the outer side of the rotary sleeve shell (211), signal transmitter (324) and current sensor (325) are adaptively installed in the inside of the rotary sleeve shell (211).