Automatic geological disaster monitoring device based on multi-source data
By designing a multi-source data automated geological disaster monitoring device, the stability of the device is enhanced by using fixed rods and connecting rods, which solves the problem of the device detaching due to wind and rain in outdoor environments, and achieves stable data acquisition and convenient maintenance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-10-31
- Publication Date
- 2026-04-07
AI Technical Summary
Existing geological disaster monitoring devices are easily detached from monitoring points due to factors such as wind and rain in outdoor environments, leading to device damage and data loss, which affects the monitoring effect.
An automated geological disaster monitoring device based on multi-source data was designed. It adopts a fixed rod, a mounting box, and various connecting rods and spring structures. The device is stably installed through components such as movable grooves and protrusions. The lever principle is used to enhance the fixing effect, and the stability of the device in windy and rainy weather is ensured by connecting ropes and limit frames.
It improves the fixation effect of monitoring devices in outdoor environments, prevents them from becoming detached, ensures the continuity and reliability of data acquisition, and facilitates the maintenance and replacement of monitoring equipment.
Smart Images

Figure CN121806141A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of geological monitoring technology, and in particular relates to an automated geological disaster monitoring device based on multi-source data. Background Technology
[0002] Geological disaster monitoring and early warning can effectively remind and protect the lives and property of the people. According to preliminary statistics, there are more than 280,000 geological disaster monitoring points nationwide, and more than 16,000 in Chongqing. The existing geological disaster monitoring and early warning system has gradually shifted from relying mainly on the general public without professional knowledge to relying mainly on professional technicians and professional monitoring equipment, and from mainly manual monitoring and data collection to mainly automated monitoring and data collection.
[0003] Monitoring devices need to be fixed at monitoring points for extended periods. These points are typically located in unpredictable outdoor environments and are exposed to wind and rain. After weathering, the devices are prone to detaching from the monitoring points, causing damage and data loss, which in turn affects the interpretation of the monitoring data. Summary of the Invention
[0004] The summary section of this application is intended to provide a brief overview of the concepts, which will be described in detail in the detailed description section below. This summary section is not intended to identify key or essential features of the claimed technical solutions, nor is it intended to limit the scope of the claimed technical solutions.
[0005] In order to overcome the shortcomings of the prior art, the present invention provides an automated geological disaster monitoring device based on multi-source data.
[0006] To achieve the above objectives, the present invention adopts the following technical solution: an automated geological disaster monitoring device based on multi-source data, comprising: a fixing rod inserted into the slope to fix the automated geological disaster monitoring device based on multi-source data; a mounting box for installing the monitoring equipment; several fixing plates disposed on the fixing rod; a first connecting rod connected to the mounting box; the fixing rod is provided with a first movable cavity for the first connecting rod to move, and when the mounting box moves on the fixing rod, the first connecting rod pushes the fixing plates to move away from the fixing rod.
[0007] Furthermore, the automated geological disaster monitoring device based on multi-source data also includes: a first push rod, mounted on a fixed rod; several first protrusions, mounted on the first push rod; the fixed rod is provided with multiple first movable grooves for the fixed plate to move, and when the first protrusions move into the first movable grooves, they push the fixed plate to move out of the first movable grooves.
[0008] Furthermore, the automated geological disaster monitoring device based on multi-source data also includes: a connecting ring, disposed on the first push rod; a support rod, rotatably connected to the connecting ring; a limiting rod, disposed on the support rod; and a first groove corresponding to the limiting rod on the fixing rod.
[0009] Furthermore, the automated geological disaster monitoring device based on multi-source data also includes: a first limiting plate, located at the bottom of the first connecting rod; a movable rod, located on the first connecting rod; and a second movable cavity on the first connecting rod for the movable rod to move, with the housing detachably connected to the movable rod.
[0010] Furthermore, the automated geological disaster monitoring device based on multi-source data also includes: a second push rod, which is set on the first limiting plate; a third push rod, which is set adjacent to the second push rod; a first vertical rod, which is set on the second push rod; and a second vertical rod, which is set on the third push rod. The first limiting plate is provided with a plurality of second movable slots that communicate with the second movable cavity, and the second push rod and the third push rod are respectively set in two adjacent second movable slots.
[0011] Furthermore, the automated geological disaster monitoring device based on multi-source data also includes: a casing, installed on the first vertical rod; a second connecting rod, installed on the second vertical rod; a first connecting spring, installed at one end of the second connecting rod; the second connecting rod passes through the casing, and one end of the first connecting spring is connected to the end face of the casing.
[0012] Furthermore, the automated geological disaster monitoring device based on multi-source data also includes: a collar, fitted onto the movable rod; several first connecting ropes, fixing the collar inside the second movable cavity; when the box moves, it drives the movable rod to rotate around the collar as a fulcrum, causing the fixed plate, which is in the opposite direction of the box's movement, to move away from the fixed rod.
[0013] Furthermore, the automated geological disaster monitoring device based on multi-source data also includes: a second protrusion disposed on the first limiting plate; a first fixing block disposed on the second protrusion; a movable ring for driving the first fixing block to move; and a first fixing groove corresponding to the first fixing block provided on the inner wall of the first movable cavity.
[0014] Furthermore, the automated geological disaster monitoring device based on multi-source data also includes: a spool, mounted on a first connecting rod; a second connecting rope, used to connect the spool and the first fixing block; a transmission rod, located at the bottom of the movable ring and engaging with the spool for transmission; the first connecting rod is provided with a second groove for accommodating the movable ring, and when the movable ring moves into or out of the second groove, the transmission rod drives the spool to rotate.
[0015] Furthermore, the automated geological disaster monitoring device based on multi-source data also includes: a limiting frame and a first connecting block, located at the bottom of the mounting box; a second connecting block, located on the first connecting rod; and a second fixing block, located on the first connecting block. The first connecting block is provided with a first connecting groove, and the second connecting block is provided with a second connecting groove corresponding to the first connecting groove and a second fixing groove corresponding to the second fixing block.
[0016] The advantage of this invention is that it provides an automated geological disaster monitoring device based on multi-source data with good fixation effect. Attached Figure Description
[0017] The accompanying drawings, which form part of this application, are used to provide a further understanding of the application and to make other features, objects, and advantages of the application more apparent. The illustrative embodiments and descriptions of this application are used to explain the application and do not constitute an undue limitation of the application.
[0018] Furthermore, throughout the accompanying drawings, the same or similar reference numerals denote the same or similar elements. It should be understood that the drawings are schematic, and the elements are not necessarily drawn to scale.
[0019] In the attached diagram:
[0020] Figure 1 This is a schematic diagram of the structure of an automated geological disaster monitoring device based on multi-source data in one embodiment of the present invention.
[0021] Figure 2 for Figure 1 A cross-sectional view of the fixed rod of the automated geological disaster monitoring device based on multi-source data in the embodiment shown.
[0022] Figure 3 for Figure 2 Enlarged view of point A in the image.
[0023] Figure 4 for Figure 2 Enlarged view of point B in the image.
[0024] Figure 5 for Figure 1 A cross-sectional view of the fixed plate of the automated geological disaster monitoring device based on multi-source data in the embodiment shown.
[0025] Figure 6 for Figure 5 Enlarged view of point C in the image.
[0026] Figure 7 for Figure 1 A casing cross-sectional view of the automated geological disaster monitoring device based on multi-source data in the illustrated embodiment.
[0027] Figure 8 for Figure 7 Enlarged view of point D in the image.
[0028] Figure 9 for Figure 1 A cross-sectional view of the first pusher of the automated geological disaster monitoring device based on multi-source data in the illustrated embodiment.
[0029] Figure 10 for Figure 9 Enlarged view of point E in the image.
[0030] Figure 11 for Figure 1 A cross-sectional view of the support spring of the automated geological disaster monitoring device based on multi-source data in the illustrated embodiment.
[0031] Figure 12 for Figure 11 Enlarged view of point F in the image.
[0032] Figure 13 for Figure 1 A cross-sectional view of the handheld block of the automated geological disaster monitoring device based on multi-source data in the illustrated embodiment.
[0033] Figure 14 This is a magnified view of point G in question 13.
[0034] Figure 15 for Figure 1 A cross-sectional view of the second fixed block of the automated geological disaster monitoring device based on multi-source data in the illustrated embodiment.
[0035] Figure 16 for Figure 15 Enlarged view of point H in the image.
[0036] The meanings of the reference numerals in the figure are as follows:
[0037] 101. Fixed rod; 102. Mounting box; 103. First connecting rod; 1031. First limiting plate; 1032. Second protrusion; 104. Movable rod; 105. Collar; 1051. First connecting rope; 106. Third push rod; 1061. Second vertical rod; 1062. Second connecting rod; 1063. Second slider; 1064. Second return spring; 1065. First connecting spring; 107. First fixed block; 1071. Second connecting spring; 108. Spool; 109. Transmission rod; 110. Connecting platform; 1101. First connecting rope; 1102. Second connecting block; 1103. Third connecting rod; 111. Connecting ball; 112. First connecting block ; 113. Second limiting plate; 1131. Fourth connecting spring; 1132. Seventh connecting rod; 1133. Push plate; 114. Movable ring; 1141. Support spring; 116. Fixed plate; 117. Second push rod; 1171. First vertical rod; 1172. Sleeve; 118. Connecting ring; 1181. First push rod; 1182. First protrusion; 119. Hand-held block; 1191. Fourth connecting rod; 1192. Third protrusion; 120. Movable plate; 1201. Eighth connecting rod; 1202. Third return spring; 1203. Push block; 121. Fifth connecting rod; 122. Sixth connecting rod; 123. Second fixed block; 1231. Third connecting spring. Detailed Implementation
[0038] Embodiments of this disclosure will now be described in more detail with reference to the accompanying drawings. While some embodiments of this disclosure are shown in the drawings, it should be understood that this disclosure can be implemented in various forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of this disclosure. It should be understood that the accompanying drawings and embodiments of this disclosure are for illustrative purposes only and are not intended to limit the scope of protection of this disclosure.
[0039] It should also be noted that, for ease of description, only the parts relevant to the invention are shown in the accompanying drawings. Unless otherwise specified, the embodiments and features described in this disclosure can be combined with each other.
[0040] It should be noted that the concepts of "first" and "second" mentioned in this disclosure are used only to distinguish different devices, modules or units, and are not used to limit the order of functions performed by these devices, modules or units or their interdependencies.
[0041] It should be noted that the terms "a" and "a plurality of" used in this disclosure are illustrative rather than restrictive, and those skilled in the art should understand that, unless otherwise expressly indicated in the context, they should be understood as "one or more".
[0042] The names of messages or information exchanged between multiple devices in the embodiments of this disclosure are for illustrative purposes only and are not intended to limit the scope of such messages or information.
[0043] This disclosure will now be described in detail with reference to the accompanying drawings and embodiments.
[0044] like Figure 1-16 As shown, an automated geological disaster monitoring device based on multi-source data includes a fixed rod 101, a mounting box 102, several fixing plates 116, and a first connecting rod 103. The bottom of the fixed rod 101 has a conical surface, allowing the fixed rod 101 to be inserted into the slope to fix the automated geological disaster monitoring device based on multi-source data. The mounting box 102 is used to install the monitoring equipment. Several fixing plates 116 are evenly distributed circumferentially on the side wall of the fixed rod 101. The first connecting rod 103 is connected to the mounting box 102. The fixed rod 101 is provided with a first movable cavity for the first connecting rod 103 to move. When the mounting box 102 moves on the fixed rod 101, the first connecting rod 103 pushes the fixing plates 116 to move away from the fixed rod 101.
[0045] When the fixing rod 101 is inserted into the slope, the fixing plate 116 moves away from the fixing rod 101 and inserts into the soil to reinforce the fixing effect of the fixing rod 101 in the slope. The monitoring equipment is installed in the installation box 102 using existing technology, thus completing the installation of the monitoring device. The installation box 102 is separately connected to the first connecting rod 103, making the maintenance and replacement of the monitoring equipment more convenient, without affecting the fixing effect of the fixing rod 101. In windy and rainy weather, the wind blows the installation box 102 to move on the fixing rod 101, and the first connecting rod 103 pushes the fixing plate 116 to move further, so that the fixing plate 116 is inserted deeper into the soil, improving the fixing effect of the monitoring device.
[0046] Specifically, the fixed rod 101 has multiple first movable grooves on its side wall, and the fixed plate 116 is located in the first movable groove. One end of the first movable groove has a through groove that communicates with the first movable cavity. The fixed rod 101 also has a third movable groove. The first movable groove and the third movable groove communicate with each other. The third movable groove is arranged along the axial direction of the fixed rod 101, and the first movable groove is arranged along the radial direction of the fixed rod 101. The third movable groove has a first push rod 1181, and the first push rod 1181 has multiple first protrusions 1182. The top of the first push rod 1181 has a connecting ring 118, and the connecting ring 118 has a support rod. The support rod is rotatably connected to the connecting ring 118. The top surface of the support rod is flush with the top surface of the connecting ring 118. The top surface of the support rod has a slot, and the bottom of the support rod has a limiting rod. The top of the fixed rod 101 has a third groove corresponding to the connecting ring 118, and the bottom of the third groove has a first groove corresponding to the limiting rod.
[0047] When installing the fixing rod 101, the limiting rod is offset from the first groove, and the movable ring 114 is positioned above the third groove. When the fixing rod 101 is hammered, the force acting on the connecting ring 118 is directly applied to the fixing rod 101, causing it to insert into the slope. At this point, the fixing plate 116 is positioned within the first movable groove, making it easier for the fixing rod 101 to be inserted into the soil. After the fixing rod 101 is initially fixed, the support rod is rotated using a screwdriver. The support rod drives the limiting rod to rotate until it is aligned with the first groove. Then, the connecting ring 118 is pushed towards the fixing rod 101 again. The limiting rod enters the first groove, the first push rod 1181 moves in the third movable groove, the first protrusion 1182 enters the first movable groove and abuts against the fixing plate 116, pushing the fixing plate 116 to move out of the first movable groove. The fixing plate 116 extends out of the first movable groove and inserts into the soil, increasing the fixing effect of the fixing rod 101. After the fixing plate 116 extends out of the first movable groove, the connecting ring 118 enters the third groove. The top surface of the connecting ring 118 and the top surface of the fixing rod 101 are on the same plane, so that the mounting box 102 can be installed on the first connecting rod 103.
[0048] The first connecting rod 103 has a first limiting plate 1031 at its bottom. The first connecting rod 103 has a second movable cavity, inside which is a movable rod 104. A collar 105 is fitted onto the movable rod 104. The collar 105 is connected to the inner wall of the second movable cavity via a first connecting rope 11011051, allowing the middle of the movable rod 104 to rotate around the collar 105 as a fulcrum. The first limiting plate 1031 has multiple second movable slots communicating with the second movable cavity. Adjacent second movable slots each have a second push rod 117 and a third push rod 106, respectively. Both the second push rod 117 and the third push rod 106 correspond to the through slots. The second push rod 117 has a first vertical rod 1171. The device includes a second vertical rod 1061, a second push rod 117 with a first slider, a second movable groove with a first sliding groove that mates with the first slider, a first return spring on the first slider, a third push rod 106 with a second slider 1063, a second sliding groove with a second sliding groove that mates with the second slider 1063 on the inner wall of the second movable groove, and a second return spring 1064 on the second slider 1063; a sleeve 1172 on the first vertical rod 1171, a second connecting rod 1062 on the second vertical rod 1061, the second connecting rod 1062 being inserted into the sleeve 1172, a first connecting spring 1065 at one end of the second connecting rod 1062, and one end of the first connecting spring 1065 being fixed to the end face of the sleeve 1172.
[0049] The top of the movable rod 104 is provided with a connecting platform 110. The connecting platform 110 is connected to the second movable cavity by multiple third connecting ropes. The third connecting ropes are elastic ropes. The bottom of the connecting platform 110 is provided with a third connecting rod 1103. The bottom of the third connecting rod 1103 is provided with a connecting ball 111. The top of the movable rod 104 is provided with a third connecting groove, and the connecting ball 111 is embedded in the third connecting groove.
[0050] The third connecting rope fixes the connecting platform 110 in a horizontal position. Taking the pushing of the mounting box 102 to the left as an example, the mounting box 102 is connected to the movable rod 104. When the mounting box 102 moves, it drives the top of the movable rod 104 to move to the left. The movable rod 104 rotates around the collar 105, and the bottom of the movable rod 104 moves to the right. The movable rod 104 pushes the first vertical rod 1171 and the second vertical rod 1061 on the right side to move, so that the fixing plate 116 on the right side of the fixing rod 101 extends out of the first movable groove, and at the same time cooperates with the mounting box 102. 2. The force acting on the fixing rod 101 causes the mounting rod to generate a lever effect, causing the fixing plate 116 on the right side of the fixing rod 101 to be inserted deeper into the soil, which reinforces the fixing rod 101 and prevents the fixing rod 101 from coming out of the soil; when the mounting box 102 moves by rotating the movable rod 104, the fixing plate 116 fixes the fixing rod 101 on one side relative to the direction of movement of the mounting box 102, and the fixing plate 116 counteracts the thrust on the fixing rod 101, effectively improving the fixing effect of the fixing rod 101.
[0051] The first limiting plate 1031 is provided with a plurality of second protrusions 1032, and the second protrusions 1032 are provided with a fourth movable groove. The fourth movable groove is provided with a first fixing block 107. The first fixing block 107 is connected to the fourth movable groove by a second connecting spring 1071. The inner wall of the first movable cavity is provided with a plurality of first fixing grooves corresponding to the first fixing block 107. The first fixing grooves are located above the through groove. The first connecting rod 103 is provided with a fifth movable groove and a cavity communicating with the fifth movable groove. A reel 108 is provided, on which a second connecting rope is wound. One end of the second connecting rope is fixed to a first fixed block 107. A transmission rod 109 that cooperates with the reel 108 is provided in a fifth movable groove. A second groove communicating with the fifth movable groove is provided at the top of the first connecting rod 103. The transmission rod 109 passes through the second groove. A movable ring 114 is provided at the top of the transmission rod 109. A support spring 1141 is provided at the bottom of the movable ring 114. A handhold block 119 is provided on the movable ring 114. The bottom of the 19th ring has a fourth connecting rod 1191. The movable ring 114 has a through hole for the fourth connecting rod 1191 to pass through. The bottom end of the fourth connecting rod 1191 has a third protrusion 1192 with a notch. The inner wall of the notch has a sixth movable groove with a movable plate 120 inside. The fourth connecting rod 1191 has a transmission cavity communicating with the sixth movable groove. The hand-held block 119 has a fourth groove communicating with the transmission cavity. The movable plate 120 has an eighth connecting rod 1191. The eighth connecting rod 1201 passes through the transmission cavity. The eighth connecting rod 1201 is provided with a third return spring 1202 and a push block 1203 at the top of the eighth connecting rod 1201. The fifth connecting rod 121 is provided at the bottom of the second groove. The fifth connecting rod 121 is provided with a first limiting block and a first inclined surface at the top of the first limiting block. The sixth connecting rod 122 is provided at the bottom of the movable ring 114. The second limiting block is provided at the bottom of the sixth connecting rod 122 and a second inclined surface at the bottom of the second limiting block.
[0052] The first connecting rod 103 can move within the first movable cavity but cannot be dislodged from the first movable slot. The height of the first connecting rod 103 can be adjusted to meet the installation requirements of different sensors. After installation, one fixed rod 101 can be paired with various types of sensors for monitoring, enabling real-time detection of geological disasters. When the first connecting rod 103 is moved, the first limiting plate 1031 drives the second protrusion 1032 to one side of the first fixed slot. The first fixing block 107 then inserts into the first fixed slot to fix the first connecting rod 103, ensuring that the second push rod 117 and the third push rod 106 are aligned with the through slot. To continue moving the first connecting rod 103, the push block 1203 in the fourth groove is pushed. The push block 1203 drives the movable plate 120 to move, disengaging the first limiting block from the movable plate 120. This pulls the handheld block 119 upwards, causing it to move relative to the movable ring 114 and rise above the movable ring 114, making it easier to grip. The second limiting block is engaged with the movable plate 120, fixing the third protrusion 1192 to the bottom of the movable ring 114. After the hand-held block 119 is adjusted, when the hand-held block 119 is pulled upward, the hand-held block 119 causes the movable ring 114 to move relative to the first connecting rod 103. The movable ring 114 causes the transmission rod 109 to move, and the transmission rod 109 drives the spool 108 to rotate. The second connecting rope pulls the first fixing block 107 out of the first fixing groove. When the hand-held block 119 is pulled upward further, the hand-held block 119... When the first connecting rod 103 is moved upward, the hand block 119 is pushed downward, causing the movable ring 114 to move into the second groove. The movable ring 114 causes the transmission rod 109 to move, and the transmission rod 109 drives the spool 108 to rotate. The second connecting rope pulls the first fixing block 107 out of the first fixing groove. When the hand block 119 is pushed downward, it causes the first connecting rod 103 to move downward, thereby completing the height adjustment of the first connecting rod 103.
[0053] The bottom of the mounting box 102 is provided with a limiting frame and a first connecting block 112. A second connecting block 1102 is provided on the connecting platform 110. The first connecting block 112 has a first connecting groove, and the second connecting block 1102 has a second connecting groove corresponding to the first connecting groove. The first connecting block 112 has a seventh movable groove, and a second fixing block 123 is provided inside the seventh movable groove. The second fixing block 123 is connected to the seventh movable groove by a third connecting spring 1231. The inner wall of the second connecting groove has a second fixing groove corresponding to the second fixing block 123. The bottom of the box 102 is also provided with an eighth movable groove, and a second limiting plate 113 corresponding to the limiting frame is provided in the eighth movable groove. The second limiting plate 113 is connected to the eighth movable groove by a fourth connecting spring 1131. When the second limiting plate 113 extends out of the eighth movable groove, it forms a complete quadrilateral structure with the limiting frame. A seventh connecting rod 1132 is provided on the second limiting plate 113, and a fourth connecting rope is provided on the seventh connecting rod 1132. One end of the fourth connecting rope is fixed to the second fixing block 123. A push plate 1133 is provided on the second limiting plate 113.
[0054] After the fixing rod 101 is installed, the mounting box 102 is installed onto the mounting rod. The specific operation is as follows: After adjusting the position of the first connecting rod 103, push the second limiting plate 113 into the eighth movable slot. The second limiting plate 113 enters the eighth movable slot, creating an opening in the limiting frame. Align the first connecting block 112 and the second connecting block 1102. The second connecting block 1102 enters the limiting frame from the opening. At this time, the fourth connecting rope pulls the second fixing block 123, causing it to be positioned in the seventh movable slot. After the first connecting slot and the second connecting slot are connected, the second fixing block 123 is positioned on one side of the second fixing slot. Release the push plate 1133, and the second limiting plate 1102... 13 extends from the eighth movable slot, and the second fixing block 123 extends from the seventh movable slot and inserts into the second fixing slot, connecting the mounting box 102 to the movable rod 104. At this time, the hand-held block 119 is in the limiting frame. After the limiting frame moves to abut against the hand-held block 119, it can no longer move. The maximum distance of movement of the mounting box 102 is limited by the cooperation of the limiting frame and the hand-held block 119, ensuring the connection effect between the mounting box 102 and the fixing rod 101. The setting of the second limiting plate 113 and the push plate 1133 makes the connection between the mounting box 102 and the fixing rod 101 more convenient, so as to quickly maintain and replace the monitoring equipment in the mounting box 102.
[0055] It is worth noting that the installation box in this application is used for rain sensors, temperature sensors or humidity sensors, etc., to monitor the geological environment within a designated area.
[0056] The above description is merely a selection of preferred embodiments of this disclosure and an explanation of the technical principles employed. Those skilled in the art should understand that the scope of the invention involved in the embodiments of this disclosure is not limited to technical solutions formed by specific combinations of the above-described technical features, but should also cover other technical solutions formed by arbitrary combinations of the above-described technical features or their equivalents without departing from the above-described inventive concept. For example, technical solutions formed by substituting the above-described features with (but not limited to) technical features with similar functions disclosed in the embodiments of this disclosure.
Claims
1. An automated geological disaster monitoring device based on multi-source data, comprising: A fixing rod is inserted into the slope to secure the automated geological disaster monitoring device based on multi-source data. Mounting box, used to install monitoring equipment; Its features are: The automated geological disaster monitoring device based on multi-source data also includes: Several fixing plates are provided on the fixing rod; The first connecting rod is connected to the mounting box; The fixed rod is provided with a first movable cavity for the first connecting rod to move. When the mounting box moves on the fixed rod, the first connecting rod pushes the fixed plate to move away from the fixed rod.
2. The automated geological disaster monitoring device based on multi-source data according to claim 1, characterized in that: Also includes: The first push rod is mounted on the fixed rod; Several first protrusions are provided on the first push rod; The fixing rod is provided with a plurality of first movable grooves for the fixing plate to move. When the first protrusion moves into the first movable groove, it pushes the fixing plate to move out of the first movable groove.
3. The automated geological disaster monitoring device based on multi-source data according to claim 2, characterized in that: Also includes: A connecting ring is provided on the first push rod; The support rod is rotatably connected to the connecting ring; A limiting rod is provided on the support rod; The fixing rod is provided with a first groove corresponding to the limiting rod.
4. The automated geological disaster monitoring device based on multi-source data according to claim 1, characterized in that: Also includes: A first limiting plate is disposed at the bottom of the first connecting rod; A movable rod is provided on the first connecting rod; The first connecting rod is provided with a second movable cavity for the movable rod to move, and the box body is detachably connected to the movable rod.
5. The automated geological disaster monitoring device based on multi-source data according to claim 4, characterized in that: Also includes: The second push rod is located on the first limiting plate; The third push rod is arranged adjacent to the second push rod; The first vertical rod is mounted on the second push rod; The second vertical rod is mounted on the third push rod; The first limiting plate is provided with a plurality of second movable slots that communicate with the second movable cavity, and the second push rod and the third push rod are respectively located in two adjacent second movable slots.
6. The automated geological disaster monitoring device based on multi-source data according to claim 5, characterized in that: Also includes: A sleeve is provided on the first vertical rod; The second connecting rod is provided on the second vertical rod; A first connecting spring is located at one end of the second connecting rod; The second connecting rod passes through the sleeve, and one end of the first connecting spring is connected to the end face of the sleeve.
7. The automated geological disaster monitoring device based on multi-source data according to claim 6, characterized in that: Also includes: A collar is fitted onto the movable rod; A plurality of first connecting ropes fix the collar inside the second movable cavity; When the box moves, it drives the movable rod to rotate around the collar as a fulcrum, causing the fixed plate, which is in the opposite direction of the box's movement, to move away from the fixed rod.
8. The automated geological disaster monitoring device based on multi-source data according to claim 4, characterized in that: Also includes: The second protrusion is provided on the first limiting plate; The first fixing block is disposed on the second protrusion; The movable ring drives the first fixed block to move; The inner wall of the first movable cavity is provided with a first fixing groove corresponding to the first fixing block.
9. The automated geological disaster monitoring device based on multi-source data according to claim 8, characterized in that: Also includes: A reel is mounted on the first connecting rod; The second connecting rope is used to connect the reel and the first fixing block; A transmission rod is located at the bottom of the movable ring and engages with the pulley for transmission. The first connecting rod is provided with a second groove for accommodating the movable ring. When the movable ring moves into or out of the second groove, the transmission rod drives the spool to rotate.
10. The automated geological disaster monitoring device based on multi-source data according to claim 1, characterized in that: Also includes: The limiting frame and the first connecting block are located at the bottom of the mounting box; The second connecting block is disposed on the first connecting rod; The second fixing block is disposed on the first connecting block; The first connecting block is provided with a first connecting groove, and the second connecting block is provided with a second connecting groove corresponding to the first connecting groove and a second fixing groove corresponding to the second fixing block.