Disaster identification control device

By designing a disaster identification and control device, a servo motor is used to drive a shield and a rubber insulating sleeve sealing assembly. Combined with sensors, real-time monitoring and early warning of disaster data are achieved, solving the real-time and sealing problems of traditional monitoring methods and improving the efficiency and safety of disaster monitoring.

CN223584485UActive Publication Date: 2025-11-21GUANGXI TRANSPORTATION SCI & TECH GRP CO LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520243381.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2025-11-21
Estimated Expiration
2035-02-17

AI Technical Summary

Technical Problem

Traditional manual patrols are insufficient for real-time monitoring of road disaster risk areas, resulting in delayed warnings and safety risks. In particular, during special circumstances such as earthquakes or falling rocks from high-rise buildings, warning information cannot be received in a timely manner.

Method used

A disaster identification and control device was designed, including a column, antenna, solar panel, control box and sealing assembly. A servo motor drives a shield to seal the heat dissipation holes, a rubber insulating sleeve is used to seal the cables, and sensors are used to realize data acquisition, processing and wireless transmission, monitor disaster data in real time and provide early warning.

Benefits of technology

It enables high-precision monitoring and real-time early warning of disaster data, improves monitoring efficiency, ensures that relevant personnel can take timely avoidance measures, reduces losses caused by untimely early warning, and keeps the device sealed in rainy weather to avoid electrical damage.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223584485U_ABST
    Figure CN223584485U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of disaster identification and discloses a disaster identification control device which comprises a stand column and an antenna installed at the top end of the stand column, a solar assembly is detachably installed on the outer side, close to the top end, of the stand column, a control box is arranged on the front side, close to the middle, of the stand column, and a top cover is fixedly installed on the top of the control box. A plurality of heat dissipation holes are formed in the two sides of the control box correspondingly, and through mutual cooperation of a mounting groove, a sliding opening, threaded rods, a belt, a servo motor A, a threaded sleeve, a limiting plate, a limiting rod, an L-shaped sliding rod and a shielding plate, the servo motor A can be controlled to operate in rainy days, so that the threaded rods on the two sides can be driven to rotate, and the heat dissipation holes are formed in the two sides of the control box; the shielding plates on the two sides are driven to move downwards, heat dissipation holes in the two sides of the control box are sealed, rainwater is prevented from permeating, damage and short circuit of wires in the control box are prevented, and the use safety of the device is improved.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of disaster identification, specifically to a disaster identification control device. BACKGROUND

[0002] The intelligent disaster identification control device is a comprehensive safety equipment developed to meet the needs of modern society for efficient disaster warning and safety management, integrates remote real-time monitoring, abnormal alarm and recording and a variety of functions, in the face of frequent natural and man-made disasters, this device aims to protect the safety of people's life and property, so that relevant personnel can obtain accurate information in time when risks such as landslides and ground subsidence occur, thereby reducing the major losses caused by delayed warning, the terminal can complete data acquisition, processing and wireless transmission with high precision, through the sensors deployed in different areas, real-time monitoring of data related to various disasters, providing timely warning for road management departments to ensure that they can remind vehicles to avoid danger in advance and effectively coordinate traffic flow.

[0003] The road landslide and other road disaster high-risk area sites are the key components of social safety protection, as these areas are often widely distributed and have special locations, the traditional way of relying on manual patrol to monitor disaster risks is inefficient and difficult to respond in real time, in addition, when there are abnormal seismic activities, falling rocks from high altitude and other special circumstances, relevant personnel cannot receive the corresponding warning information in time, which poses a great safety risk.

[0004] Therefore, we propose a disaster identification control device to solve the problems mentioned above. SUMMARY

[0005] The utility model aims at providing a disaster identification control device to solve the problems mentioned in the background.

[0006] To achieve the above purpose, the utility model provides the following technical scheme: a disaster identification control device, including stand and antenna installed at the top of stand, the outside of stand is detachably installed with solar module near the top, and the front side of stand is provided with control box near the middle part, the top of control box is fixedly installed with top cover, a plurality of heat dissipation holes are formed in the two sides of control box, the rear side of control box is installed with shielding assembly near the top, and the rear side of control box is installed with sealing assembly near the lower left side,

[0007] The shielding assembly comprises a mounting groove fixedly installed on the rear side of the control box near the top, threaded rods movably installed on the top of the inner cavity of the mounting groove near the left and right sides, threaded sleeves threadedly installed on the outer sides of the threaded rods, L-shaped sliding rods fixedly installed on the middle parts of the opposite sides of the threaded sleeves, and shielding plates fixedly installed on the front ends of the L-shaped sliding rods and attached to the outer sides of the control box.

[0008] Preferably, limiting plates are fixedly installed on the middle parts of the opposite sides of the threaded sleeves, limiting rods are slidably and penetratively installed on the middle parts of the limiting plates, and the upper ends of the limiting rods are fixedly installed on the top wall of the inner cavity of the mounting groove.

[0009] Preferably, first and second single-groove wheels are fixedly sleeved on the output ends of the threaded rods, a belt is collectively sleeved on the outer sides of the first and second single-groove wheels, a servo motor A is arranged on the lower end of the left threaded rod, the bottom of the servo motor A is fixedly installed on the bottom wall of the inner cavity of the mounting groove, and the output end of the servo motor A is fixedly connected with the lower end of the left threaded rod.

[0010] Preferably, sliding openings are formed in the middle parts of the left and right sides of the mounting groove, and the outer sides of the L-shaped sliding rods are slidably and penetratively installed in the inner cavities of the adjacent sliding openings.

[0011] Preferably, the sealing assembly comprises a fixed plate fixedly installed on the rear side of the control box near the lower left, a rubber insulation sleeve fixedly and penetratively installed on the middle part of the fixed plate, a fixed groove fixedly installed on the middle part of the rear side of the fixed plate, the front end of the rubber insulation sleeve fixedly and penetratively extending into the inner cavity of the control box, the rear end of the rubber insulation sleeve fixedly and penetratively extending to the outer side of the fixed groove, a rotating gear ring rotatably installed on the rear side of the fixed plate, four sides of the inner cavity of the rotating gear ring being engaged with rotating gears, swing rods being arranged on the rear sides of the rotating gears, squeeze balls being fixedly installed on the ends of the swing rods away from the rotating gears, a servo motor B being arranged on the rear side of the left rotating gear, the rear side of the servo motor B being fixedly installed on the inner wall of the inner cavity of the fixed groove, and the output end of the servo motor B being fixedly connected with the middle part of the rear side of the left rotating gear.

[0012] Preferably, movable shafts are fixedly and penetratively installed on the middle parts of the rotating gears, and the front ends of the movable shafts are movably installed on the fixed plate, and the rear ends of the movable shafts are fixedly and penetratively extended to the outer sides of the adjacent swing rods.

[0013] Preferably, a fixed block is fixedly installed on the rear side of the control box near the bottom, and the rear side of the fixed block is fixedly installed on the stand column.

[0014] Compared with the prior art, the utility model has the advantages of:

[0015] 1、Through the mutual cooperation between the installation groove, sliding port, threaded rod, belt, servo motor A, threaded sleeve, limiting plate, limiting rod, L-shaped sliding rod and shielding plate, the servo motor A can be controlled to operate in rainy days, so as to drive the threaded rods on both sides to rotate, facilitate the downward movement of the shielding plates on both sides, realize the sealing of the heat dissipation holes on both sides of the control box, avoid the penetration of rainwater, affect the damage and short circuit of the wires in the control box, and improve the safety of the device.

[0016] 2、Through the mutual cooperation between the fixed plate, rubber insulation sleeve, fixed groove, rotating tooth ring, rotating gear, movable shaft, swing rod, extrusion ball and servo motor B, the cables outside can enter the inner cavity of the control box through the rubber insulation sleeve, the cables outside can be connected with the components in the control box, the disaster identification device can work better, and in addition, the four extrusion balls can be driven to move inward after the cables enter, so that the rubber insulation sleeve is extruded, the rubber insulation sleeve is tightly attached to the cables, dust and impurities are prevented from entering, and the effect of the device is improved.

[0017] 3、Through the setting of the device, disaster data can be collected, processed and wirelessly transmitted, high-precision monitoring can be realized, compared with the traditional monitoring mode, the latter often relies on manual observation or single equipment, and cannot provide comprehensive and real-time monitoring, maintenance personnel usually need to personally go to the monitoring point or rely on a specific data center to obtain information, once leaving these positions, it is difficult to grasp the disaster dynamics in real time, leading to the lag of response measures, so that people cannot take risk avoidance measures in time, and the device significantly improves the monitoring efficiency of the road high-altitude rockfall risk, related personnel can easily check and manage data through a mobile application, realize unattended monitoring of key areas, real-time alarm, comprehensive and multi-dimensional dynamic monitoring, at the same time, it perfectly combines on-site intelligent early warning with remote monitoring, meets the new needs of modern society for intelligent disaster prevention and control. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 It is a whole perspective view of the utility model;

[0019] Figure 2 It is a rear side view perspective view of the utility model;

[0020] Figure 3 It is a local sectional perspective view of the utility model;

[0021] Figure 4 It is a local sectional structure perspective view of the shielding plate of the utility model;

[0022] Figure 5 It is a local bottom view sectional perspective view of the fixed plate of the utility model;

[0023] Figure 6It is the partial right side view sectional stereogram of the utility model;

[0024] Figure 7 It is the partial right side view sectional stereogram of the utility model Figure 4 The enlarged view of A in the middle.

[0025] In the figure: 1, stand; 2, antenna; 3, solar energy assembly; 4, control box; 41, fixed block; 5, top cover; 6, shielding assembly; 61, installation groove; 611, sliding port; 62, threaded rod; 621, belt; 622, servo motor A; 63, threaded sleeve; 631, limiting plate; 632, limiting rod; 64, L-shaped sliding rod; 65, shielding plate; 7, sealing assembly; 71, fixed plate; 72, rubber insulation sleeve; 73, fixed groove; 74, rotating tooth ring; 75, rotating gear; 751, movable shaft; 76, swing rod; 77, extrusion ball; 78, servo motor B. DETAILED DESCRIPTION

[0026] The technical solutions in the embodiments of the utility model will be apparently and completely described in connection with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the ordinary skill in the art without creative labor belong to the protection scope of the utility model. EMBODIMENT

[0027] Please refer to Figures 1-7 A disaster identification control device, including stand 1 and antenna 2 installed at the top of stand 1, the outer side of stand 1 is detachably installed with solar energy assembly 3 near the top, and the front side of stand 1 is provided with control box 4 near the middle, the top of control box 4 is fixedly installed with top cover 5, a plurality of heat dissipation holes are formed in the two sides of control box 4, shielding assembly 6 is installed at the rear side of control box 4 near the top, and sealing assembly 7 is installed at the rear side of control box 4 near the lower left, the heat dissipation holes on the two sides of control box 4 can be shielded by the arrangement of shielding assembly 6, and the entry of external cables can be sealed and restrained by the arrangement of sealing assembly 7.

[0028] The device can accurately complete data acquisition, processing and wireless transmission. Through the deployment of sensors (not shown in the figure) in different areas, including but not limited to wind speed sensor, soil temperature and humidity sensor, and inclination sensor, the connection between the sensor and the device is a public knowledge, which will not be described in detail here. By cooperating with the control box 4, real-time monitoring of various disaster-related data can be realized to provide timely early warning for road management departments, ensure that they can remind vehicles to avoid danger in advance and effectively coordinate traffic flow, so that people can take effective measures in the first time when facing various disaster threats, reduce major losses caused by delayed disaster warning, and the solar component 3 can provide power support for the whole system to ensure the continuous operation of the device, and the antenna 2 can monitor the ground displacement in real time. These data can not only help to discover the precursors of geological disasters in time, but also can evaluate the loss after the disaster occurs, guide the rescue work, and transmit data.

[0029] The rear side of the control box 4 is fixedly installed with a fixed block 41 near the bottom, and the rear side of the fixed block 41 is fixedly installed on the stand column 1, which serves to connect and support the control box 4.

[0030] In this embodiment: in use, the device can collect data and transmit it to the mobile terminal application for data management and analysis. The application can timely feedback the environment and potential disaster situation of various disaster risk areas, realize the point monitoring and rapid response of related personnel to disaster risks, so as to achieve the purpose of reducing disaster losses. Related personnel can access the information collected by the intelligent disaster identification control device, then analyze and process it, provide decision-making for disaster risk assessment and emergency response, and effectively alleviate the problems of wide and scattered disaster monitoring area, insufficient monitoring personnel and heavy inspection workload. Embodiment

[0031] This embodiment is an improvement based on embodiment 1. For details, please refer to Figures 1-5 and Figure 7 The shielding assembly 6 includes a mounting groove 61 fixedly installed on the rear side of the control box 4 near the top, and a threaded rod 62 movably installed in the inner cavity of the mounting groove 61 near the top of the left and right sides. The outer side of the threaded rod 62 is respectively screwed with a threaded sleeve 63, and the middle part of the opposite side of the threaded sleeve 63 is respectively fixedly installed with an L-shaped sliding rod 64, and the front end of the L-shaped sliding rod 64 is respectively fixedly installed with a shielding plate 65. The opposite side of the shielding plate 65 is respectively attached to the outer side of the control box 4, which can shield both sides of the heat dissipation hole in rainy days.

[0032] The middle part of the threaded sleeve 63 on opposite sides is respectively fixedly installed with a limiting plate 631, and the limiting plate 631 is respectively slidably penetrated and installed with a limiting rod 632 at the middle part, the upper end of the limiting rod 632 is respectively fixedly installed on the top wall of the inner cavity of the installation groove 61, and the limiting rod 632 plays a role of guiding and limiting the movement of the threaded sleeve 63.

[0033] The output end of the threaded rod 62 is respectively fixedly sleeved with a first single-groove wheel and a second single-groove wheel, the outer side of the first single-groove wheel and the second single-groove wheel is collectively sleeved with a belt 621, the lower end of the left threaded rod 62 is provided with a servo motor A 622, the servo motor A 622 is electrically connected with the control box 4, the bottom of the servo motor A 622 is fixedly installed on the bottom wall of the inner cavity of the installation groove 61, and the output end of the servo motor A 622 is fixedly connected with the lower end of the left threaded rod 62, so that the synchronous rotation of the two threaded rods 62 can be realized.

[0034] The middle part of the installation groove 61 on the left and right sides is respectively provided with a sliding opening 611, and the outer side of the L-shaped sliding rod 64 is respectively slidably penetrated and installed in the inner cavity of the adjacent sliding opening 611, which is beneficial to the up-down movement of the L-shaped sliding rod 64.

[0035] In this embodiment: in use, when it rains, the sensor detects and controls the servo motor A 622 to run through the control device, the servo motor A 622 runs and drives the left threaded rod 62 to rotate, the transmission of the belt 621 drives the synchronous rotation of the two threaded rods 62, the threaded rod 62 rotates and drives the adjacent threaded sleeve 63 to move, and the threaded sleeve 63 moves and drives the two shielding plates 65 to move downward through the adjacent L-shaped sliding rod 64, so as to realize the shielding of the heat dissipation hole and avoid the infiltration of rainwater. Embodiment

[0036] This embodiment is an improvement on the basis of embodiment 1, and specifically, please refer to Figures 1-3 、 Figure 5 and Figure 7The sealing assembly 7 comprises a fixed plate 71 fixedly installed on the rear side of the control box 4 near the lower left, a rubber insulation sleeve 72 fixedly and penetratively installed on the middle of the fixed plate 71, the front end of the rubber insulation sleeve 72 fixedly and penetratively extends into the inner cavity of the control box 4, the middle of the rear side of the fixed plate 71 is fixedly installed with a fixed groove 73, the rear end of the rubber insulation sleeve 72 fixedly and penetratively extends to the outside of the fixed groove 73, the rear side of the fixed plate 71 is rotatably installed with a rotating tooth ring 74, the inner cavity of the rotating tooth ring 74 is respectively meshed with a rotating gear 75 on four sides, the rear side of the rotating gear 75 is respectively provided with a swing rod 76, one end of the swing rod 76 away from the rotating gear 75 is respectively fixedly installed with a pressing ball 77, the rear side of the left rotating gear 75 is provided with a servo motor B 78, the rear side of the servo motor B 78 is fixedly installed on the inner wall in the inner cavity of the fixed groove 73, the output end of the servo motor B 78 is fixedly connected with the middle of the rear side of the left rotating gear 75, so as to realize the entering and sealing of the external cable.

[0037] The rotating gear 75 is respectively fixedly and penetratively installed with an active shaft 751 in the middle, the front end of the active shaft 751 is respectively movably installed on the fixed plate 71, and the rear end of the active shaft 751 is respectively fixedly and penetratively extended to the outside of the adjacent swing rod 76.

[0038] In this embodiment: the setting of the rubber insulation sleeve 72 facilitates the entering of the external cable, that is, the elements in the control box 4 can be connected, after connection, the servo motor B 78 can be driven to operate, the servo motor B 78 will drive the adjacent rotating gear 75 to rotate when operating, the rotating gear 75 will drive the rotating tooth ring 74 to rotate when rotating, the rotating tooth ring 74 will drive the rotating gear 75 on four sides to rotate synchronously when rotating, the rotating gear 75 will drive the adjacent active shaft 751 to rotate when rotating, the active shaft 751 will drive the adjacent swing rod 76 to swing inward when rotating, and the swing rod 76 will drive the adjacent pressing ball 77 to move inward when swinging, so as to press the rubber insulation sleeve 72, so that the rubber insulation sleeve 72 is tightly attached to the cable, sealing is realized, and the entering of dust is avoided.

[0039] Working principle: in use, when the rainy day passes through the sensor detection will be through the control device control servo motor A622 operation, servo motor A622 operation will drive the left threaded rod 62 rotation, through the transmission of the belt 621 will drive both sides of the threaded rod 62 synchronous rotation, threaded rod 62 rotation will drive the adjacent threaded sleeve 63 movement, and threaded sleeve 63 movement will drive both sides of the adjacent L-shaped sliding rod 64 shielding plate 65 to move down, that is, the realization of the heat dissipation hole shielding, avoid the infiltration of rainwater, and through the setting of rubber insulation sleeve 72 is conducive to the entry of the cable, that is, the elements in the control box 4 can be connected, after connection, the servo motor B78 operation can be driven, servo motor B78 operation will drive the adjacent rotating gear 75 rotation, rotating gear 75 rotation will drive the rotating gear 74 rotation, rotating gear 74 rotation will drive the four sides of the rotating gear 75 synchronous rotation, rotating gear 75 rotation will drive the adjacent activity shaft 751 rotation, activity shaft 751 rotation will drive the adjacent swing rod 76 to the inside swing, and swing rod 76 swing will drive the adjacent extrusion ball 77 to move inward, so as to extrude the rubber insulation sleeve 72, make the rubber insulation sleeve 72 and cable closely, realize sealing, avoid the entry of dust, in addition, the device can collect data, and by wireless communication system transmission to mobile terminal application program for data management, analysis, application program can timely feedback various disaster risk area environment and potential disaster situation, realize the personnel of disaster risk point monitoring and rapid response, so as to achieve the purpose of reducing disaster loss, relevant personnel can access the information collected by intelligent disaster identification control device, then analyze and process, provide decision for disaster risk assessment and emergency response, at the same time, effectively alleviate the problem of wide and scattered disaster monitoring area, insufficient monitoring personnel and heavy inspection workload.

[0040] The contents not described in detail in the specification belong to the prior art known to those skilled in the art.

[0041] Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement to part of the technical features, any modification, equivalent replacement, improvement, etc. within the spirit and principles of the utility model should be included in the protection scope of the utility model.

Claims

1. A disaster identification and control device, comprising a column (1) and an antenna (2) mounted on the top of the column (1), characterized in that: A solar panel (3) is detachably installed on the outer side of the column (1) near the top, and a control box (4) is provided on the front side of the column (1) near the middle. A top cover (5) is fixedly installed on the top of the control box (4). Several heat dissipation holes are opened on both sides of the control box (4). A shielding component (6) is installed on the rear side of the control box (4) near the top, and a sealing component (7) is installed on the rear side of the control box (4) near the lower left. The shielding assembly (6) includes a mounting groove (61) fixedly installed on the rear side of the control box (4) near the top. Threaded rods (62) are movably installed on the top of the inner cavity of the mounting groove (61) near the left and right sides respectively. Threaded sleeves (63) are threadedly installed on the outer side of the threaded rods (62). L-shaped sliding rods (64) are fixedly installed on the middle part of the opposite side of the threaded sleeves (63). The front end of the L-shaped sliding rods (64) is fixedly installed with shielding plates (65). The opposite side of the shielding plates (65) is attached to the outer side of the control box (4).

2. The disaster identification and control device according to claim 1, characterized in that: Limiting plates (631) are fixedly installed on the middle part of opposite sides of the threaded sleeve (63), and limiting rods (632) are slidably installed through the middle part of the upper part of the limiting plates (631). The upper ends of the limiting rods (632) are fixedly installed on the top wall of the inner cavity of the mounting groove (61).

3. The disaster identification and control device according to claim 1, characterized in that: The output end of the threaded rod (62) is fixedly fitted with a first single groove wheel and a second single groove wheel, and a belt (621) is fitted on the outer side of the first single groove wheel and the second single groove wheel. A servo motor A (622) is provided at the lower end of the left threaded rod (62). The bottom of the servo motor A (622) is fixedly installed on the bottom wall of the inner cavity of the mounting groove (61). The output end of the servo motor A (622) is fixedly connected to the lower end of the left threaded rod (62).

4. The disaster identification and control device according to claim 1, characterized in that: The mounting groove (61) has sliding openings (611) at the middle of the left and right sides, and the outer side of the L-shaped sliding rod (64) is slidably installed in the inner cavity of the adjacent sliding opening (611).

5. A disaster identification and control device according to claim 1, characterized in that: The sealing assembly (7) includes a fixed plate (71) fixedly installed on the rear side of the control box (4) near the lower left and a rubber insulating sleeve (72) fixedly installed through the middle of the fixed plate (71). The front end of the rubber insulating sleeve (72) is fixedly extended through into the inner cavity of the control box (4), and a fixing groove (73) is fixedly installed in the middle of the rear side of the fixed plate (71). The rear end of the rubber insulating sleeve (72) is fixedly extended through to the outside of the fixing groove (73). A rotating gear ring (74) is rotatably installed on the rear side of the fixed plate (71). Rotary gears (75) are meshed on the four sides of the inner cavity of the moving gear ring (74), and swing rods (76) are respectively provided on the rear side of the rotating gears (75). A squeeze ball (77) is fixedly installed on the end of the swing rod (76) away from the rotating gear (75). A servo motor B (78) is provided on the rear side of the left rotating gear (75), and the rear side of the servo motor B (78) is fixedly installed on the inner wall of the inner cavity of the fixed groove (73). The output end of the servo motor B (78) is fixedly connected to the middle of the rear side of the left rotating gear (75).

6. A disaster identification and control device according to claim 5, characterized in that: The rotating gear (75) has a movable shaft (751) fixedly installed through the middle part of the gear, and the front end of the movable shaft (751) is movably installed on the fixed plate (71), and the rear end of the movable shaft (751) is fixedly extended through to the outside of the adjacent swing rod (76).

7. A disaster identification and control device according to claim 1, characterized in that: A fixing block (41) is fixedly installed on the rear side of the control box (4) near the bottom, and the rear side of the fixing block (41) is fixedly installed on the column (1).