Slope geological disaster monitor
By introducing anchoring, raising, adjusting, and protective components into the slope geological disaster monitor, combined with hydraulic and motor systems, the flexibility and safety issues of traditional monitors are solved, achieving accurate and stable monitoring results.
Patent Information
- Application Number
- CN202520306888.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-25
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2035-02-25
AI Technical Summary
Traditional slope geological hazard monitoring devices have low flexibility, cannot monitor different slope terrains, are susceptible to severe weather, and have low safety.
By employing anchoring components, raising components, adjustment components, repositioning components, and protective components, combined with hydraulic cylinders and motors, the camera can be stably installed, its height and angle can be adjusted, and it can be protected, adapting to different terrains and environments.
It improves the flexibility and accuracy of the monitor, ensures continuous and effective monitoring in harsh environments, reduces the probability of equipment damage, and enhances safety.
Smart Images

Figure CN223595533U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the geological disaster monitoring technical field, specifically is slope body geological disaster monitor. BACKGROUND
[0002] With the acceleration of global urbanization process and the increase of population density, human activities in slope area are increasingly frequent, which indirectly leads to the occurrence of slope geological disasters. In order to reduce the threat of landslide, debris flow and other geological disasters to human life and property safety, the monitor is used to monitor the area where the slope geological disaster is prone to occur.
[0003] However, in real life, the flexibility of the traditional slope geological disaster monitor is low when used, and it cannot monitor the operation according to different slope topography. Secondly, the traditional slope geological disaster monitor is not only easily affected by bad weather when used, but also cannot continuously and accurately monitor the slope change, resulting in low monitoring efficiency. Moreover, the traditional slope geological disaster monitor is easily damaged by rolling stones, and the safety factor is low. UTILITY MODEL CONTENT
[0004] The purpose of the utility model is to provide a slope geological disaster monitor, which solves the problem of low flexibility of the traditional slope geological disaster monitor when used and cannot monitor the operation according to different slope topography.
[0005] The technical scheme adopted by the utility model is: a slope geological disaster monitor, comprising an anchoring assembly, a high-pulling assembly, an adjusting assembly, a transposition assembly, a protection assembly and a camera, the high-pulling assembly is arranged at the top middle part of the anchoring assembly, the adjusting assembly is arranged at the top of the high-pulling assembly, one end of the adjusting assembly is provided with an extension plate, the transposition assembly is installed at one end of the extension plate, the transposition assembly is provided with a rotating plate at the bottom, the rotating plate is welded with a horizontal plate at the bottom, the protection assembly is arranged at one end of the horizontal plate at the top of the rotating plate, and the camera is installed at one end of the horizontal plate close to the protection assembly.
[0006] Preferably, the top of the anchoring assembly is provided with a support plate, the support plate is in the shape of a cuboid, the four corners of the support plate are provided with a ground insertion unit, the top of the ground insertion unit is provided with a blocking ring, the bottom of the blocking ring is welded with a taper rod, the outer wall of the taper rod close to the blocking ring is provided with a thread, and the taper rod is provided with a nut matched with the thread.
[0007] Preferably, the bottom of the high-pulling assembly is provided with a first hydraulic cylinder, and the top of the first hydraulic cylinder is connected with a first hydraulic rod in a matched mode.
[0008] Preferably, the adjusting assembly is provided with a support frame, one side of the support frame is provided with a second hydraulic cylinder, the top of the second hydraulic cylinder is connected with a second hydraulic rod in a matched mode, the top of the second hydraulic rod is hinged with one end of an extension plate, the top of the support frame is in a U-shaped structure, and the extension plate is connected with the top of the support frame through a rotating shaft.
[0009] Preferably, the transposition assembly is provided with a motor at the top, the bottom of the motor is movably connected with a rotating rod through a rotating shaft, and the bottom of the rotating rod is welded with the top of a rotating plate.
[0010] Preferably, the protection assembly is provided with a third hydraulic cylinder at the bottom, the top of the third hydraulic cylinder is connected with a third hydraulic rod in a matched mode, the top of the third hydraulic rod is connected with a cover plate through bolts, the cover plate is in an inverted arc-shaped structure, and the cover plate is arranged above the camera.
[0011] Compared with the prior art, the present application has the following beneficial effects:
[0012] 1. The anchor assembly is arranged at the bottom of the lifting assembly, the tapered rods on the four corners of the supporting plate are inserted into the geology on one side of the slope body, the monitor can be more stably used for slope geology disaster monitoring operation, the camera can be prevented from shaking and falling, the installation of the monitor is more convenient, and the monitor is convenient for maintenance and maintenance work in the later period.
[0013] 2. The extension plate at one end of the second hydraulic rod is moved by the second hydraulic cylinder, the inclination angle of the camera is adjusted, the monitor can be used for monitoring operation on geology with different rules or different slopes, the motor at the transposition assembly is started, the rotating plate at the bottom of the rotating rod is rotated, the monitoring direction of the camera is adjusted, the monitoring field of view of the monitor is wider, different areas of the slope body can be monitored, the flexibility of the monitor in use is improved, and potential dangerous areas around the slope body can be found in time.
[0014] 3. The third hydraulic rod is moved up and down by the third hydraulic cylinder of the protection assembly, the height of the cover plate is adjusted, the cover plate can be used for sun-shading and rain-shielding in different weather environments, the monitor can be continuously and effectively used for monitoring operation on the slope body, the damage probability of the monitor caused by falling stones can be effectively reduced in some slope body areas prone to falling stones, and the safety of the monitor in use is further improved. BRIEF DESCRIPTION OF DRAWINGS
[0015] For the convenience of those skilled in the art to understand, the utility model will be further described below in conjunction with the drawings.
[0016] Figure 1 A preferred embodiment of the whole structure of the slope geological disaster monitor is provided.
[0017] Figure 2 The structure diagram of the anchoring assembly of the utility model is provided.
[0018] Figure 3 The structure diagram of the ground insertion unit of the utility model is provided.
[0019] Figure 4 The structure diagram of the high pulling assembly of the utility model is provided.
[0020] Figure 5 The structure diagram of the adjusting assembly of the utility model is provided.
[0021] Figure 6 The structure diagram of the transposition assembly of the utility model is provided.
[0022] Figure 7 The side view of the protection assembly of the utility model is provided.
[0023] In the figure: 1, anchoring assembly; 101, support plate; 102, ground insertion unit; 1021, blocking ring; 1022, taper rod; 1023, nut; 2, high pulling assembly; 201, first hydraulic cylinder; 202, first hydraulic rod; 3, adjusting assembly; 301, support frame; 302, second hydraulic cylinder; 303, second hydraulic rod; 304, extension plate; 4, transposition assembly; 401, motor; 402, rotating rod; 403, rotating plate; 5, cross plate; 6, protection assembly; 601, third hydraulic cylinder; 602, third hydraulic rod; 603, cover plate; 7, camera. DETAILED DESCRIPTION
[0024] The technical solutions of the utility model will be described clearly and completely below in conjunction with embodiments, 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 those skilled in the art without creative labor belong to the protection scope of the utility model.
[0025] Embodiment 1
[0026] As Figures 1-7The utility model discloses a slope geological disaster monitor, including anchoring subassembly 1, pull high subassembly 2, adjusting assembly 3, transposition subassembly 4, protection component 6 and camera 7, pull high subassembly 2 sets up in the top middle part of anchoring subassembly 1, adjusting assembly 3 sets up at the top of pull high subassembly 2, and the one end of adjusting assembly 3 is provided with extension plate 304, and transposition subassembly 4 is installed in the one end of extension plate 304, and the bottom of transposition subassembly 4 is provided with rotating plate 403, and the bottom welding of rotating plate 403 has crosspiece 5, and protection component 6 sets up at the top one end of crosspiece 5 of rotating plate 403, and camera 7 is installed in the one end of crosspiece 5 close to protection component 6, and camera 7 shoots the influence of slope in different time periods, and the shooting is transferred to data background and is analyzed and compared, and whether the slope happens geological disaster is judged through the condition of slope change, to complete the monitoring operation of slope landslide, debris flow and other geological disasters.
[0027] Example 2
[0028] The utility model discloses a slope geological disaster monitor, including anchoring subassembly 1, pull high subassembly 2, adjusting assembly 3, transposition subassembly 4, protection component 6 and camera 7, pull high subassembly 2 sets up in the top middle part of anchoring subassembly 1, adjusting assembly 3 sets up at the top of pull high subassembly 2, and the one end of adjusting assembly 3 is provided with extension plate 304, and transposition subassembly 4 is installed in the one end of extension plate 304, and the bottom of transposition subassembly 4 is provided with rotating plate 403, and the bottom welding of rotating plate 403 has crosspiece 5, and protection component 6 sets up at the top one end of crosspiece 5 of rotating plate 403, and camera 7 is installed in the one end of crosspiece 5 close to protection component 6, and camera 7 shoots the influence of slope in different time periods, and the shooting is transferred to data background and is analyzed and compared, and whether the slope happens geological disaster is judged through the condition of slope change, to complete the monitoring operation of slope landslide, debris flow and other geological disasters.
[0029] The top of anchoring subassembly 1 is provided with support plate 101, and the support plate 101 is in cuboid structure, and the support plate 101 four corners are provided with ground insertion unit 102, and the top of ground insertion unit 102 is provided with fender ring 1021, and the bottom welding of fender ring 1021 has taper rod 1022, and the outer lateral wall of taper rod 1022 close to fender ring 1021 is provided with screw thread, and the taper rod 1022 is provided with nut 1023 matched with screw thread, and the support plate 101 four corners are provided with screw hole matched with taper rod 1022, and the taper rod 1022 is connected with support plate 101 through screw hole, and the nut 1023 fixes taper rod 1022 on support plate 101, and the taper rod 1022 on ground insertion unit 102 of support plate 101 four corners is inserted into the geology of one side of slope by setting anchoring subassembly 1 in the bottom of pull high subassembly 2, not only makes the monitor more stable to carry out slope geological disaster monitoring operation, avoids the shaking and toppling of camera 7, but also makes the installation of the monitor more convenient, and is convenient for the maintenance and maintenance work of the monitor.
[0030] Embodiment 3
[0031] The slope geological disaster monitor of the utility model, including anchoring assembly 1, pull high assembly 2, adjusting assembly 3, transposition assembly 4, protection assembly 6 and camera 7, pull high assembly 2 sets up in the top middle part of anchoring assembly 1, adjusting assembly 3 sets up in the top of pull high assembly 2, adjusting assembly 3 one end is provided with extension plate 304, transposition assembly 4 is installed in the one end of extension plate 304, transposition assembly 4 bottom is provided with rotating plate 403, and the bottom of rotating plate 403 is welded with crossbeam 5, and protection assembly 6 sets up in the top one end of the crossbeam 5 of rotating plate 403, and camera 7 is installed in the one end of the crossbeam 5 close to protection assembly 6.
[0032] Wherein, pull high assembly 2 bottom is provided with first hydraulic cylinder 201, and the top middle part of first hydraulic cylinder 201 bottom is connected with support plate 101 by bolt, and first hydraulic cylinder 201 top is matched with first hydraulic rod 202, and first hydraulic rod 202 is driven to move up and down by first hydraulic cylinder 201 on pull high assembly 2, which is convenient for adjusting the height of camera 7, is conducive to reducing the error caused by factors such as terrain undulation and vegetation obstruction, and is convenient for camera 7 to accurately capture these subtle changes in the appropriate position, to provide more accurate data support for disaster warning and evaluation.
[0033] Embodiment 4
[0034] On the basis of embodiment 3,
[0035] Adjusting assembly 3 is provided with support frame 301, and support frame 301 is connected with the top of first hydraulic rod 202 by bolt, and one side of support frame 301 is provided with second hydraulic cylinder 302, and the top of second hydraulic cylinder 302 is matched with second hydraulic rod 303, and the top of second hydraulic rod 303 is hinged with the one end of extension plate 304, and the top of support frame 301 is "U"-shaped structure, and crossbeam 5 is connected with the top of support frame 301 through rotating shaft, and extension plate 304 at the one end of second hydraulic rod 303 is driven to move by second hydraulic cylinder 302, which is convenient for adjusting the inclination angle of camera 7, and is conducive to the monitoring operation of the monitor to the geological conditions of different rules or different slopes.
[0036] Embodiment 5
[0037] On the basis of embodiment 4,
[0038] The top of the transposition assembly 4 is provided with a motor 401, the bottom of the motor 401 is movably connected with a rotating rod 402 through a rotating shaft, the bottom of the rotating rod 402 is welded with the middle part of the top of a rotating plate 403, by starting the motor 401 on the transposition assembly 4, the motor 401 drives the rotating plate 403 at the bottom of the rotating rod 402 to rotate, which is convenient for adjusting the monitoring direction of the camera 7, so that the monitoring field of view of the monitor is more open, which is beneficial to monitor different area of the slope body, and improves the flexibility of the monitor in use, and further facilitates timely discovery of potential dangerous areas around the slope body.
[0039] The bottom of the protection assembly 6 is provided with a third hydraulic cylinder 601, the top of the third hydraulic cylinder 601 is movably connected with a third hydraulic rod 602, the top of the third hydraulic rod 602 is connected with a cover plate 603 through bolts, the cover plate 603 is in an inverted arc structure, and the cover plate 603 is arranged above the camera 7, by driving the third hydraulic rod 602 to move up and down through the third hydraulic cylinder 601 on the protection assembly 6, it is convenient to adjust the height of the cover plate 603, on the one hand, for different weather environment, it is beneficial to the cover plate 603 to perform sun-shading and rain-shielding work, so as to ensure that the monitor continuously and effectively monitors the slope body, on the other hand, in some slope body area prone to rockfall, by arranging the cover plate 603, the damage probability of the monitor caused by rockfall can be effectively reduced, and the safety of the monitor in use is further improved.
[0040] Embodiment 6
[0041] In use, first, the tapered rod 1022 on the ground insertion unit 102 at the four corners of the support plate 101 is inserted into the geology on one side of the slope body, the tapered rod 1022 is fixed on the support plate 101 through the nut 1023, and the first hydraulic rod 202 is driven to move up and down through the first hydraulic cylinder 201 on the pull-up assembly 2, which is convenient for adjusting the height of the camera 7, and is beneficial to reducing the error caused by factors such as terrain undulation and vegetation shielding, so as to facilitate the camera 7 to accurately capture these subtle changes at the appropriate position, and provide more accurate data support for disaster warning and evaluation;
[0042] Then, the extension plate 304 at one end of the second hydraulic rod 303 is driven to move by the second hydraulic cylinder 302, which is convenient for adjusting the inclination angle of the camera 7, and is beneficial to the monitor to monitor the geology with different rules or different slopes, and secondly, the rotating plate 403 at the bottom of the rotating rod 402 is driven to rotate by starting the motor 401 on the transposition assembly 4, which is convenient for adjusting the monitoring direction of the camera 7, so that the monitoring field of view of the monitor is more open, which is beneficial to monitor different area of the slope body;
[0043] Finally, the third hydraulic cylinder 601 on the protection assembly 6 drives the third hydraulic rod 602 to move up and down, and the height of the cover plate 603 is adjusted, which is not only beneficial to the sun-shading and rain-shielding of the cover plate 603, ensures the continuous and effective monitoring of the slope by the monitor, but also effectively reduces the damage probability of the monitor caused by the falling rocks.
[0044] The basic principle, main features and advantages of the present application are shown and described above. Those skilled in the art should understand that the present application is not limited by the above examples, and the above embodiments and descriptions in the specification are only to illustrate the principle of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the present application. The scope of protection of the present application is defined by the appended claims and their equivalents.
Claims
1. A slope body geological disaster monitor, characterized in that: The utility model provides an anchor component (1), pull high component (2), adjusting component (3), transposition component (4), guard component (6) and camera (7) are included, pull high component (2) is set up in the top middle part of anchor component (1), adjusting component (3) is set up at the top of pull high component (2), and the one end of adjusting component (3) is provided with extension plate (304), and transposition component (4) is installed in one end of extension plate (304), and the bottom of transposition component (4) is provided with rotating plate (403), and the bottom of rotating plate (403) is welded with horizontal plate (5), and guard component (6) is set up at the top one end of horizontal plate (5) of rotating plate (403), and camera (7) is installed in one end of horizontal plate (5) close to guard component (6).
2. The slope body geological disaster monitor according to claim 1, characterized in that: The anchor component (1) includes a support plate (101) in a cuboid structure, and an insertion unit (102) is arranged at each corner of the support plate (101), a stop ring (1021) is arranged at the top of the insertion unit (102), a tapered rod (1022) is welded at the bottom of the stop ring (1021), a screw thread is arranged on the outer side wall of the tapered rod (1022) close to the stop ring (1021), and a nut (1023) matched with the screw thread is arranged on the tapered rod (1022).
3. The slope body geological disaster monitor according to claim 2, characterized in that: The pull high component (2) includes a first hydraulic cylinder (201) fixed on the support plate (101), and a first hydraulic rod (202) is connected at the top of the first hydraulic cylinder (201).
4. The slope body geological disaster monitor according to claim 3, characterized in that: The adjusting component (3) includes a support frame (301) in a U-shaped structure at the top, a second hydraulic cylinder (302) is arranged at one side of the support frame (301), a second hydraulic rod (303) is connected at the top of the second hydraulic cylinder (302), and one end of the second hydraulic rod (303) is hingedly connected with one end of an extension plate (304), and the extension plate (304) close to the second hydraulic cylinder (302) is rotationally connected in the support frame (301) through a pin shaft.
5. The slope body geological disaster monitor according to claim 2, characterized in that, The transposition component (4) includes a motor (401) installed at the end of the extension plate (304), a rotating rod (402) is movably connected with the bottom of the motor (401) through a rotating shaft, and the bottom of the rotating rod (402) is welded with the top middle part of a rotating plate (403).
6. The slope body geological disaster monitor according to claim 2, wherein One end of the horizontal plate (5) is fixed at the bottom of the rotating plate (403), and the other end is provided with the camera (7).
7. The slope body geological disaster monitor according to claim 6, characterized by, The guard component (6) includes a third hydraulic cylinder (601), a third hydraulic rod (602) is connected at the top of the third hydraulic cylinder (601), a cover plate (603) is connected at the top of the third hydraulic rod (602) through bolts, the cover plate (603) is in an inverted arc structure, and the cover plate (603) is arranged above the camera (7).
8. The slope body geological disaster monitor according to claim 7, characterized by, The third hydraulic cylinder (601) is fixed on the horizontal plate (5) and arranged close to one end of the camera (7).