Geological disaster monitoring system based on satellite remote sensing image

Through the technology of nesting threaded rotors and screws, the height adjustment and grounding reinforcement of the geological disaster monitoring system are achieved, solving the problems of cumbersome installation and insufficient stability in the existing technology, and improving the stability and efficiency of installation.

CN222848986UActive Publication Date: 2025-05-09BEIJING FORESEA LINKEDIN SCI & TECH LTD
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Patent Information

Application Number
CN202421445657.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-24
Publication Date
2025-05-09
Estimated Expiration
2034-06-24

AI Technical Summary

Technical Problem

The existing geological disaster monitoring system based on satellite remote sensing images is complicated and cannot guarantee the stability of the system.

Method used

By nesting the threaded rotor and the screw, the rod body is driven downward and the sliding plate is moved downward to achieve height adjustment, and extending to the foundation through the ground cone to achieve ground reinforcement at the designated position.

Benefits of technology

The installation process of geological disaster monitoring system has been simplified and the installation stability and efficiency have been improved.

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Abstract

The utility model discloses a geological disaster monitoring system based on a satellite remote sensing image, which comprises a support connecting piece, a stable mounting seat connected below the support connecting piece, a support rod arranged in the support connecting piece, a monitoring terminal arranged at the top of the support rod, an infrasonic wave sensor embedded and fixed on the support rod, and a monitoring probe fixed on the support rod, the tail end of the supporting rod is connected with a threaded rotating rod, a fixed carrying disc is arranged in the stable installation base, a sensor installation disc is installed above the fixed carrying disc, and a plurality of sensors are installed on the top of the sensor installation disc. The supporting connecting piece is matched with the stable mounting seat to complete mounting and fixing of monitoring equipment, the threaded rotating rod and the screw rod are nested in the fixing process, the rod body at the bottom is driven to form downward pressing, and then the sliding disc is driven to move downwards; and meanwhile, the threaded rotating rod is screwed into the screw rod to synchronously drive the ground inserting cone to extend downwards to designate a foundation for mounting and sampling, so that the geological disaster monitoring system of the satellite remote sensing image can be easily mounted.
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Description

Technical Field

[0001] The utility model relates to the technical field of geological disaster monitoring, in particular to a geological disaster monitoring system based on satellite remote sensing images. Background Art

[0002] Geological disasters are an important phenomenon in nature, which have brought huge economic and property losses to human society. Geological disasters include earthquakes, landslides, mudslides and other types. Different types of disasters have different monitoring methods. The use of satellite remote sensing image processing technology can achieve effective monitoring of various geological disasters.

[0003] Currently, geological disaster monitoring based on satellite remote sensing images is generally installed at commanding heights in mountains and forests to cooperate with satellite remote sensing for image reception and feedback. However, due to the rugged roads in mountains and forests, when installing geological disaster monitoring systems and equipment, it is necessary to carry a large amount of installation tools to the installation location, which makes the installation of existing geological disaster monitoring equipment more cumbersome and complicated, and the stability of the geological disaster monitoring system cannot be guaranteed. Utility Model Content

[0004] In response to the above problems, the utility model provides a geological disaster monitoring system based on satellite remote sensing images, in which a threaded rotary rod and a screw are nested, and the rod body at the bottom is driven to form downward pressure, thereby driving the sliding plate to move downward, so that the adaptive height adjustment can be completed. At the same time, the threaded rotary rod can also drive the ground cone to extend to the lower foundation, thereby realizing ground reinforcement of the designated position.

[0005] In order to achieve the above-mentioned purpose, the utility model is implemented through the following technical solutions: a geological disaster monitoring system based on satellite remote sensing images, including a support connector, a stable mounting seat is connected below the support connector, a support rod is arranged inside the support connector, a monitoring terminal is arranged on the top of the support rod, an infrasonic sensor is embedded on the support rod, a monitoring probe is fixed on the support rod, and a threaded rotating rod is connected to the end of the support rod. The threaded rotating rod at the end of the support rod is mainly used to cooperate with the stable mounting seat for rotation, so that the support rod with the monitoring terminal is connected to the inside of the stable mounting seat together with the threaded rotating rod, and the internal structure of the stable mounting seat is synchronously driven to complete the connection with the base surface at the specified position, so as to complete the installation of the geological disaster monitoring terminal of the satellite remote sensing image.

[0006] Furthermore, a fixed carrier is provided in the stable mounting seat, a sensor mounting plate is installed above the fixed carrier, a plurality of sensors are installed on the top of the sensor mounting plate, a screw is connected to the center of the fixed carrier and the sensor mounting plate, a slide groove is provided on the screw, a reinforcement component is installed in the slide groove, and a ground cone is connected to the bottom of the screw. Temperature sensors, vibration sensors, etc. can be installed on the sensor mounting plate, and are suspended between the fixed carrier and the reinforcement component, so as to hide them and prevent them from being interfered by rain.

[0007] Furthermore, a sliding plate is provided in the reinforcement component, a force beam is connected to the center of the sliding plate, a plurality of swing rods are connected to the sliding plate, an extended adjustment rod is embedded in the swing rod, a lock cap is inserted in the swing rod, a horizontal carrier is provided at the end of the extended adjustment rod, and a grounding cone is fixed on the horizontal carrier. The force beam on the sliding plate is mainly used for displacement in the slide slot, and a through hole is opened in the center so that the shaft rod passing through the top drives the grounding cone below to rotate, so as to drill deeply into the ground surface to complete the support.

[0008] Furthermore, the slide plate is installed in the slide groove through the force beam, the extended adjustment rod and the swing rod are provided with lock holes for the spiral connection of the lock cap, a through hole is provided in the middle of the force beam, the screw is connected to the threaded rotary rod, the grounding cone is indirectly matched with the threaded rotary rod, and the rod body at the end of the threaded rotary rod passes through the central through hole of the force beam. The extended adjustment rod is nested in the swing rod, and both are provided with lock holes for matching the lock cap to complete the screw connection and fixation, so as to adjust the length, so that the grounding cone on the horizontal carrier at the end of the extended adjustment rod can complete multiple clamping with the ground surface.

[0009] Furthermore, the sensor is electrically matched with the monitoring terminal, the infrasonic sensor is electrically matched with the monitoring terminal, the monitoring probe is electrically matched with the monitoring terminal, and a plurality of arc-shaped through holes are provided on the outer surface of the monitoring terminal to reduce the wind resistance of the monitoring terminal during strong typhoons. The monitoring terminal is cylindrical in shape as a whole, and the monitoring accessories are installed inside, and the outer surface of the cylinder is provided with arc-shaped through holes. However, when the wind is strong, the wind can pass through the inner wall of the monitoring terminal through the through holes, and the wind resistance is smaller than that of the box shape.

[0010] Beneficial Effects

[0011] Compared with the prior art, the utility model has the following beneficial effects:

[0012] The utility model completes the installation and fixation of the monitoring equipment by supporting and connecting parts in cooperation with a stable mounting seat. During the fixing process, the threaded rotating rod is nested with the screw rod, and drives the rod body at the bottom to form downward pressure, thereby driving the sliding plate to move downward. At the same time, the threaded rotating rod is screwed into the screw rod and synchronously drives the inserted cone to extend downward to the designated foundation for installation and sampling, so as to make the installation of the geological disaster monitoring system of satellite remote sensing images easier. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 This is a schematic diagram of the structure of a geological disaster monitoring system based on satellite remote sensing images of the utility model;

[0014] Figure 2 It is a schematic diagram of the three-dimensional structure of the stable mounting seat of the utility model;

[0015] Figure 3 It is a three-dimensional structural schematic diagram of the reinforcement component of the utility model;

[0016] Figure 4 It is a schematic diagram of the three-dimensional structure of the supporting connecting member of the utility model.

[0017] In the figure: supporting connector-1, stable mounting base-2, supporting rod-11, infrasonic sensor-12, monitoring terminal-13, monitoring probe-14, threaded rotating rod-15, fixed carrier-21, sensor mounting plate-22, screw-23, slide groove-24, grounding cone-25, reinforcement component-26, sensor-27, sliding plate-261, load-bearing beam-262, rocker-263, locking cap-264, extension adjustment rod-265, horizontal carrier-266, grounding cone-267. DETAILED DESCRIPTION

[0018] The technical solution of the utility model will be clearly and completely described below in conjunction with the accompanying drawings. Obviously, the described embodiments are part of the embodiments of the utility model, rather than all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the utility model.

[0019] In the description of the present invention, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limiting the present invention. In addition, the terms "first", "second", and "third" are used for descriptive purposes only, and cannot be understood as indicating or implying relative importance.

[0020] Example

[0021] like Figure 1-Figure 4 As shown, Figure 1 This is a schematic diagram of the structure of a geological disaster monitoring system based on satellite remote sensing images of the utility model; Figure 2 It is a schematic diagram of the three-dimensional structure of the stable mounting seat of the utility model; Figure 3 It is a three-dimensional structural schematic diagram of the reinforcement component of the utility model; Figure 4 It is a schematic diagram of the three-dimensional structure of the supporting connecting member of the utility model.

[0022] The utility model provides a geological disaster monitoring system based on satellite remote sensing images, including a support connector 1, a stable mounting seat 2 is connected below the support connector 1, a support rod 11 is arranged inside the support connector 1, a monitoring terminal 13 is arranged on the top of the support rod 11, an infrasonic sensor 12 is embedded on the support rod 11, a monitoring probe 14 is fixed on the support rod 11, and a threaded rotating rod 15 is connected to the end of the support rod 11. A fixed carrier 21 is arranged inside the stable mounting seat 2, a sensor mounting plate 22 is installed above the fixed carrier 21, a plurality of sensors 27 are installed on the top of the sensor mounting plate 22, a screw 23 is connected to the center of the fixed carrier 21 and the sensor mounting plate 22, a slide groove 24 is opened on the screw 23, a reinforcement component 26 is installed in the slide groove 24, and a ground cone 25 is connected to the bottom of the screw 23. A sliding plate 261 is provided in the reinforcement component 26, and a load-bearing beam 262 is connected to the center of the sliding plate 261. A plurality of rocker rods 263 are connected to the sliding plate 261. An extended adjustment rod 265 is nested on the rocker rod 263. A locking cap 264 is inserted on the rocker rod 263. A horizontal carrier 266 is provided at the end of the extended adjustment rod 265, and a grounding cone 267 is fixed on the horizontal carrier 266.

[0023] The working principle of the utility model is described as follows:

[0024] The present invention uses a novel method of pre-installing the stable mounting seat 2 at the specified position, fixing the sensor mounting plate 22 on the fixed carrier plate 21, and then cooperating with the slide groove 24 on the screw rod 23 and the reinforcement component 26 to reinforce it all around. The central force beam 262 of the sliding plate 261 is engaged in the slide groove 24, and the swing rod 263 is swung outward. After the extension adjustment rod 265 is adjusted to the required length, the lock cap 264 is screwed to complete the fixation. Then, the grounding cone 267 on the horizontal carrier 266 at the end of the extension adjustment rod 265 is inserted into the ground surface, and then the threaded rotating rod 15 is screwed on the screw rod 23. Before screwing, the monitoring terminal 13, the monitoring probe 14, the infrasonic wave sensor 12, etc. are installed and debugged on the support rod 11, and then the threaded rotating rod 15 is inserted into the screw 23, so that the insertion rod in the screw 23 drives the sliding plate 261 to cooperate with the slide groove 24 to form downward pressure, and the ground insertion cone 25 at the end of the screw 23 also rotates and descends. The ground insertion cone 25 is deeply inserted into the ground surface.

[0025] The technical features of the above-described embodiments may be arbitrarily combined. To make the description concise, not all possible combinations of the technical features in the above-described embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0026] Therefore, no matter from which point of view, the embodiments should be regarded as exemplary and non-restrictive, and the scope of the utility model is limited by the appended claims rather than the above description, so it is intended to include all changes within the meaning and scope of the equivalent elements of the claims in the utility model. Any reference numerals in the claims should not be regarded as limiting the claims involved.

Claims

1. A geological disaster monitoring system based on satellite remote sensing images, characterized in that: The invention comprises a supporting connection member (1), a stable mounting seat (2) is connected to the lower part of the supporting connection member (1), a supporting rod (11) is arranged inside the supporting connection member (1), a monitoring terminal (13) is arranged at the top of the supporting rod (11), an infrasonic wave sensor (12) is embedded on the supporting rod (11), a monitoring probe (14) is fixed on the supporting rod (11), and a threaded rotating rod (15) is connected to the end of the supporting rod (11); A fixed carrier (21) is arranged in the stable mounting seat (2), a sensor mounting plate (22) is mounted above the fixed carrier (21), a plurality of sensors (27) are mounted on the top of the sensor mounting plate (22), a screw rod (23) is centrally connected between the fixed carrier (21) and the sensor mounting plate (22), a slide groove (24) is provided on the screw rod (23), a reinforcement component (26) is mounted in the slide groove (24), and a ground cone (25) is connected to the bottom of the screw rod (23).

2. A geological disaster monitoring system based on satellite remote sensing images according to claim 1, characterized in that: A sliding plate (261) is arranged in the reinforcement component (26), a load-bearing beam (262) is connected to the center of the sliding plate (261), a plurality of swing rods (263) are connected to the sliding plate (261), an extended adjustment rod (265) is nested on the swing rod (263), a locking cap (264) is plugged into the swing rod (263), a horizontal carrier (266) is arranged at the end of the extended adjustment rod (265), and a grounding cone (267) is fixed to the horizontal carrier (266).

3. A geological disaster monitoring system based on satellite remote sensing images according to claim 2, characterized in that: The sliding plate (261) is installed in the sliding groove (24) through the force beam (262). The extended adjustment rod (265) and the rocker rod (263) are provided with locking holes for the spiral connection of the locking cap (264). A through hole is provided in the middle of the force beam (262). The screw rod (23) is connected to the threaded rotating rod (15). The ground inserting cone (25) is indirectly matched with the threaded rotating rod (15). The rod body at the end of the threaded rotating rod (15) passes through the central through hole of the force beam (262).

4. The geological disaster monitoring system based on satellite remote sensing images according to claim 1 is characterized in that: The sensor (27) is electrically coordinated with the monitoring terminal (13), the infrasound sensor (12) is electrically coordinated with the monitoring terminal (13), the monitoring probe (14) is electrically coordinated with the monitoring terminal (13), and a plurality of arc-shaped through holes are provided on the outer surface of the monitoring terminal (13) for reducing the wind resistance of the monitoring terminal (13) during a strong typhoon.