Monitoring base for high-altitude mountainous area
By designing components such as the soil-inserting pole and the stabilizing box, the problem of the high difficulty of constructing the monitoring base in high-altitude mountainous areas was solved, and the stable installation and rapid construction of the monitoring column were achieved.
Patent Information
- Application Number
- CN202423144514.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-12-19
AI Technical Summary
When installing monitoring bases in high-altitude mountainous areas, traditional on-site concrete pouring is difficult and slow, and cannot effectively solve the problem of stable installation of monitoring equipment.
The system uses components such as ground-insertion rods, stabilizing boxes, locking assemblies, connecting plates, and mounting bases to replace on-site pouring of concrete with steel reinforcement cages, providing a reliable installation foundation, ensuring the stability of the monitoring column, and simplifying the construction process.
It achieves stable installation of monitoring poles, reduces construction difficulty, and improves installation progress, making it suitable for the installation of monitoring equipment in high-altitude mountainous areas.
Smart Images

Figure CN223577660U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of monitoring base, especially a monitoring base for high-altitude mountainous area. BACKGROUND
[0002] Some protected areas need to be installed in high mountain unmanned area for monitoring wild animals, which needs to be constructed before installation.
[0003] The traditional monitoring base usually adopts concrete and steel reinforcement cage for on-site pouring, since the installation site of the base cannot transport finished concrete, the transportation of water, cement and aggregate for on-site concrete production is difficult, combined with the heavy humidity and large temperature difference in the mountain, the cement cannot be used after overnight, which leads to the difficulty of on-site concrete production, thereby the progress of monitoring installation is very slow. Therefore, it is necessary to design a monitoring base for high-altitude mountainous area to solve the above problems in the prior art. UTILITY MODEL CONTENT
[0004] Based on the above problems, the utility model aims to provide a monitoring base for high-altitude mountainous area to solve the above problems in the prior art.
[0005] The utility model adopts the following technical scheme:
[0006] The utility model provides a monitoring base for high-altitude mountainous area, which comprises:
[0007] The earth-penetrating rod is inserted into the soil body, and the top of the earth-penetrating rod is sleeved with a stabilizing box, and the bottom surface of the stabilizing box abuts against the surface of the soil body;
[0008] The locking assembly is connected to the top of the earth-penetrating rod, and the bottom surface of the locking assembly abuts against the top surface of the stabilizing box;
[0009] The first connecting plate is detachably connected between two adjacent stabilizing boxes, and the first connecting plate and the stabilizing boxes jointly form a square structure;
[0010] The second connecting plate is detachably connected to the middle part of the square structure, the second connecting plate is provided with a mounting seat, the mounting seat is provided with a receiving groove for inserting the bottom of the monitoring column, the top surface of the mounting seat is provided with a plurality of grooves in the circumferential direction, the grooves are communicated with the receiving groove, the mounting plate is arranged in the groove, and the mounting plate is connected to the outer wall of the monitoring column;
[0011] A plurality of pressing plates are provided in one-to-one correspondence with the mounting plates, and the pressing plates abut against the mounting plates and are connected with the mounting seats.
[0012] Further, a plurality of mounting grooves are arranged on the mounting seat, the mounting grooves are in one-to-one correspondence with the recesses and are in communication with each other, and an elastic telescopic component is arranged in the mounting groove.
[0013] Further, the elastic telescopic component includes a plurality of springs arranged in parallel and at intervals in the mounting groove, and the ends of the plurality of springs are connected with a plate body, the plate body is in sliding connection with the mounting groove, and the end of the plate body is in plug-in connection with the mounting plate.
[0014] Further, the end of the plate body is plugged into the slot arranged on the mounting plate.
[0015] Further, at least one pair of telescopic supporting components arranged on both sides of the monitoring column are further included, the telescopic supporting component includes a telescopic rod hingedly connected with the square structure, a supporting seat is hingedly connected to the end of the telescopic rod, and the supporting seat abuts against the outer wall of the monitoring column.
[0016] Further, the telescopic rod includes a mounting sleeve hingedly connected with the square structure, a rod body is in sliding connection with the mounting sleeve, the supporting seat is hingedly connected to the end of the rod body, and the rod body is in limiting connection with the mounting sleeve through a limiting structure.
[0017] Further, the limiting structure includes an adjusting screw fixedly connected with the rod body at an end away from the supporting seat, the two ends of the adjusting screw are respectively penetrated to the outside of the mounting sleeve through long holes in the side wall of the mounting sleeve, the two ends of the adjusting screw are in threaded connection with limiting nuts, and the limiting nuts abut against the side wall of the mounting sleeve.
[0018] Further, the locking component includes a threaded cap in threaded connection with the top of the earth-penetrating rod, the bottom surface of the threaded cap is connected with an abutting ring, and the bottom surface of the abutting ring abuts against the top surface of the stabilizing box.
[0019] Further, the bottom of the earth-penetrating rod is provided as a pointed end.
[0020] Further, the top of the earth-penetrating rod is provided with a perforation for penetrating the force rod, and the bottom and the middle are provided with spiral arranged mud discharge grooves.
[0021] Compared with the prior art, the beneficial technical effects of the utility model are as follows:
[0022] The utility model discloses a soil -entering rod, stable box, locking assembly, connecting plate no. 1, connecting plate no. 2, mounting seat, mounting plate and presser plate are set up, replace the mode of the prior art that concrete adds reinforcement cage and carries out the on -the -spot pouring monitoring base, can guarantee the stability after monitoring column installation, can also reduce the construction difficulty of monitoring base to can effectively speed up the installation progress of monitoring, and the utility model discloses a soil -entering rod, stable box, locking assembly, connecting plate no. 1, connecting plate no. 2, mounting seat, mounting plate and presser plate are set up, replace the mode of the prior art that concrete adds reinforcement cage and carries out the on -the -spot pouring monitoring base, can guarantee the stability after monitoring column installation, can also reduce the construction difficulty of monitoring base to can effectively speed up the installation progress of monitoring. BRIEF DESCRIPTION OF DRAWINGS
[0023] The utility model makes further explanation in combination with the drawings.
[0024] Figure 1 It is the three -dimensional structure schematic diagram of the monitoring base for high altitude mountain area of the utility model;
[0025] Figure 2 It is the three -dimensional structure schematic diagram of the mounting seat of the utility model;
[0026] Figure 3 It is the plane section view of the mounting seat of the utility model;
[0027] Figure 4 It is the three -dimensional structure schematic diagram of stable box and connecting plate no. 1 of the utility model;
[0028] Figure 5 It is the plane section view of stable box of the utility model;
[0029] Figure 6 It is the three -dimensional structure schematic diagram of telescopic support subassembly of the utility model;
[0030] Figure 7 It is the three -dimensional structure schematic diagram of soil -entering rod of the utility model.
[0031] The drawing reference explains: 1, soil -entering rod;101, mud groove;2, stable box;3, locking assembly;31, screw cap;32, resist pressure ring;4, connecting plate no. 1;5, connecting plate no. 2;6, mounting seat;601, accommodation groove;602, recess;603, installation slot;7, monitoring column;8, mounting plate;801, slot;9, presser plate;10, placing plate;11, mounting screw;12, fastening nut;13, throw pipe;14, cover;15, elastic telescopic subassembly;151, spring;152, board;16, telescopic support subassembly;161, telescopic rod;1611, long hole;1612, rod;1613, limit structure;16131, adjusting screw;16132, limit nut;162, support seat;17, force bar;18, baffle ring;19, locking nut. DETAILED DESCRIPTION
[0032] To make the technical problems, technical solutions and beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments.
[0033] like Figures 1-7 As shown, this embodiment discloses a monitoring base for high-altitude mountainous areas, including multiple soil-inserting rods 1 arranged in a square pattern. Each soil-inserting rod 1 is inserted into the soil, and a stabilizing box 2 is fitted onto its top, with the bottom surface of the stabilizing box 2 resting against the soil surface. A locking assembly 3 is connected to the top of the soil-inserting rod 1, with its bottom surface resting against the top surface of the stabilizing box 2. A connecting plate 4 is detachably connected between two adjacent stabilizing boxes 2, and the connecting plate 4 and the stabilizing box 2 together form a square structure. The connecting plate 2 5 is detachably connected to the middle of the square structure. The connecting plate 2 5 is provided with a mounting base 6. The mounting base 6 is provided with a receiving groove 601 for the bottom of the monitoring column 7 to be inserted. The top surface of the mounting base 6 is provided with a plurality of grooves 602 communicating with the receiving grooves 601 along the circumference. The mounting plate 8 is provided in the grooves 602 and is fixedly connected to the outer wall of the monitoring column 7. There are a plurality of pressure plates 9, which correspond one-to-one with the mounting plates 8. The pressure plates 9 abut against the mounting plates 8 and are connected to the mounting base 6.
[0034] In this embodiment, the pressure plate 9 is connected to the mounting base 6 by bolts; the soil insertion rod 1, the stabilizing box 2, the locking assembly 3, the connecting plate 1 4, the connecting plate 2 5, and the mounting base 6 provide a reliable installation foundation for the monitoring column 7; the pressure plate 9 achieves the effect of limiting and fixing the mounting plate 8, thereby ensuring the stability of the monitoring column 7 after installation.
[0035] This solution, through the aforementioned structural design, replaces the existing method of on-site casting of the monitoring base using concrete and steel reinforcement cages. This not only ensures the stability of the monitoring column 7 after installation but also reduces the construction difficulty of the monitoring base, thereby effectively accelerating the installation progress of the monitoring system.
[0036] To further optimize the design, the mounting base 6 is equipped with multiple mounting slots 603, which correspond one-to-one with the recesses 602 and are interconnected. An elastic telescopic component 15 is installed in each mounting slot 603, and the telescopic end of the elastic telescopic component 15 is inserted into the mounting plate 8. By connecting the elastic telescopic component 15 to the mounting plate 8, the stability of the monitoring column 7 after installation can be further improved.
[0037] Further optimization scheme, the elastic extension component 15 includes a plurality of springs 151 fixed in the mounting groove 603 in parallel, the ends of the plurality of springs 151 are fixedly connected with a plate body 152, the plate body 152 is in sliding connection with the mounting groove 603, and the end of the plate body 152 is in plug-in cooperation with the mounting plate 8. Specifically, the mounting plate 8 is provided with a slot 801, and the end of the plate body 152 is plugged into the slot 801; the plate body 152 is provided with an arc surface at an end away from the spring 151.
[0038] In the embodiment, when the monitoring column 7 is installed, the bottom of the monitoring column 7 corresponds to the accommodating groove 601, and the mounting plate 8 on the side of the monitoring column 7 corresponds to the groove 602; then the bottom of the monitoring column 7 is slowly inserted into the accommodating groove 601, in the process, the end of the mounting plate 8 extrudes the plate body 152, so that the plate body 152 moves towards the mounting groove 603, and the spring 151 is compressed; when the bottom surface of the mounting plate 8 abuts against the bottom wall of the groove 602, under the action of the elastic force generated by the spring 151, the plate body 152 moves away from the mounting groove 603 and is inserted into the slot 801.
[0039] Further optimization scheme, the bottom of the side of the two adjacent stabilizing boxes 2 is fixedly connected with a placing plate 10, a plurality of vertically arranged mounting screws 11 are fixed on the placing plate 10 in parallel, and the end of the connecting plate one 4 is provided with a plurality of through holes for the mounting screws 11 to be inserted; the mounting screw 11 is threadedly connected with a fastening nut 12, the fastening nut 12 abuts against the top surface of the connecting plate one 4, and the bottom end of the connecting plate one 4 abuts against the placing plate 10.
[0040] In the embodiment, the bottom surface of the placing plate 10 and the middle part of the bottom surface of the connecting plate one 4 abut against the surface of the soil body. The placing plate 10, the mounting screw 11, the through hole and the fastening nut 12 are arranged, so that the connecting plate one 4 is conveniently installed and fixed.
[0041] It should be noted that the connection mode between the connecting plate two 5 and the square structure is the same as the connection mode between the connecting plate one 4 and the stabilizing box 2.
[0042] Further optimization scheme, the locking assembly 3 includes a threaded cap 31 threadedly connected to the top of the earth-penetrating rod 1, and the bottom surface of the threaded cap 31 is fixedly connected with an abutting ring 32, and the bottom surface of the abutting ring 32 abuts against the top surface of the stabilizing box 2. By rotating the threaded cap 31 on the top of the earth-penetrating rod 1, the abutting ring 32 arranged can achieve the effect of abutting and fixing the stabilizing box 2.
[0043] Further optimization scheme, the stabilizing box 2 is a hollow box, the top surface of the stabilizing box 2 is fixedly connected with a plurality of drop pipes 13 in communication with the inside of the stabilizing box 2, and the top of the drop pipe 13 is threadedly connected with a cover 14.
[0044] In the embodiment, the inside of the hollow box can be filled with the filler through the cover 14 and the pouring pipe 13, and the filler can be sand. The stability of the monitoring base in the utility model can be improved by filling the filler into the stable box 2.
[0045] Further optimization scheme, it also includes at least one pair of setting in monitoring column 7 both sides telescopic support assembly 16, telescopic support assembly 16 includes with square structure articulates telescopic rod 161, the end of telescopic rod 161 articulates with support seat 162, support seat 162 is supported on the outer wall of monitoring column 7.
[0046] In the embodiment, the support seat 162 is provided with an arc-shaped groove on the side close to the monitoring column 7, and the arc-shaped groove is fitted with the outer wall of the monitoring column 7; the support seat 162 is connected with the end of the telescopic rod 161 by the ball hinge on the side away from the monitoring column 7. By corresponding telescopic support assembly 16, the stability of the monitoring column 7 after installation can be further improved.
[0047] Further optimization scheme, telescopic rod 161 includes with square structure articulates mounting sleeve 1611, mounting sleeve 1611 slidingly connected with rod body 1612, support seat 162 is articulated at the end of rod body 1612, and rod body 1612 is limitedly matched with mounting sleeve 1611 by limiting structure 1613.
[0048] Specifically, the limiting structure 1613 includes an adjusting screw 16131 fixedly connected with the rod body 1612 at the end away from the support seat 162, the two ends of the adjusting screw 16131 are respectively penetrated to the outside of the side wall of the mounting sleeve 1611 through the long hole 16111, the two ends of the adjusting screw 16131 are threadedly connected with the limiting nut 16132, and the limiting nut 16132 is abutted against the side wall of the mounting sleeve 1611. By setting the limiting nut 16132, the adjusting screw 16131 can be locked and fixed or released.
[0049] When the telescopic support assembly 16 needs to be installed, first loosen the limiting nut 16132 at both ends of the adjusting screw 16131, then drive the rod body 1612 to extend out of the mounting sleeve 1611 by the adjusting screw 16131, and make the arc-shaped groove of the support seat 162 abut against the outer wall of the monitoring column 7, and then limit and fix the adjusting screw 16131 by the limiting nut 16132.
[0050] Further optimization scheme, the bottom of the earth-penetrating rod 1 is provided with a pointed end; the top of the earth-penetrating rod 1 is provided with a perforation for the penetrating force rod 17, and the bottom and the middle are provided with spiral arranged mud discharge grooves 101. When the earth-penetrating rod 1 is installed, first, the earth-penetrating rod 1 is erected, and the pointed end is abutted against the soil, then the penetrating force rod 17 is penetrated in the perforation, and the earth-penetrating rod 1 is rotated by the penetrating force rod 17, and a certain force is applied downward, so that the earth-penetrating rod 1 is gradually drilled into the soil; in the drilling process, the mud discharge grooves 101 are arranged to help discharge the soil in the soil; when the earth-penetrating rod 1 is drilled to the designed depth, the penetrating force rod 17 is extracted, and then the installation of the stabilizing box 2 and the locking assembly 3 can be carried out.
[0051] Further optimization scheme, the penetrating force rod 17 is fixed with a blocking ring 18 on one side, and is threadedly connected with a locking nut 19 on the other side. When the penetrating force rod 17 is installed, first, the locking nut 19 is removed, then the penetrating force rod 17 is penetrated in the perforation until the blocking ring 18 is in contact with the outer wall of the earth-penetrating rod 1, then the locking nut 19 is sleeved on the penetrating force rod 17, and the locking nut 19 is screwed to abut against the outer wall of the earth-penetrating rod 1. The blocking ring 18 and the locking nut 19 are arranged to fix the penetrating force rod 17 on the earth-penetrating rod 1, so as to facilitate the rotation of the earth-penetrating rod 1 by the penetrating force rod 17.
[0052] The above-described embodiments are only used to describe the preferred modes of the present application, and do not limit the scope of the present application. Without departing from the design spirit of the present application, various modifications and improvements of the technical scheme of the present application made by those skilled in the art shall fall within the protection scope determined by the claims of the present application.
Claims
1. A monitoring pedestal for high altitude hilly terrain characterized by: Include: The earth rod (1), the number of the earth rod (1) is multiple, multiple the earth rod (1) is square arrangement;The earth rod (1) is inserted in the soil, and the top of the earth rod (1) is provided with a stabilizing box (2), the bottom surface of the stabilizing box (2) is in contact with the soil surface; Locking assembly (3), the locking assembly (3) is connected at the top of the earth rod (1), and the bottom surface of the locking assembly (3) is in contact with the top surface of the stabilizing box (2); Connecting plate one (4), the connecting plate one (4) is detachably connected between adjacent two stabilizing boxes (2), and the connecting plate one (4) and the stabilizing box (2) jointly enclose a square structure; Connecting plate two (5), the connecting plate two (5) is detachably connected in the middle of the square structure, the mounting seat (6) is arranged on the connecting plate two (5), the mounting seat (6) is provided with a receiving groove (601) for inserting the bottom of the monitoring column (7), the top surface of the mounting seat (6) is provided with a plurality of grooves (602) in communication with the receiving groove (601), the mounting plate (8) is arranged in the groove (602), and the mounting plate (8) is connected to the outer wall of the monitoring column (7); Pressing plate (9), the number of the pressing plate (9) is multiple, and the pressing plate (9) corresponds to the mounting plate (8) one by one;The pressing plate (9) is in contact with the mounting plate (8), and the mounting seat (6) is connected.
2. The monitoring base for high altitude hilly areas as claimed in claim 1 wherein: The mounting seat (6) is provided with a plurality of mounting grooves (603), the mounting grooves (603) correspond to the grooves (602) one by one and are in communication with each other;The mounting groove (603) is provided with an elastic telescopic assembly (15), and the telescopic end of the elastic telescopic assembly (15) is inserted into the mounting plate (8).
3. The monitoring base for high altitude hilly areas as claimed in claim 2 wherein: The elastic telescopic assembly (15) includes a plurality of springs (151) arranged side by side in the mounting groove (603), and the ends of the plurality of springs (151) are jointly connected with a plate body (152), the plate body (152) is slidably connected with the mounting groove (603), and the end of the plate body (152) is inserted into the mounting plate (8).
4. The monitoring base for high altitude hilly areas as claimed in claim 3 wherein: The mounting plate (8) is provided with a slot (801), and the end of the plate body (152) is inserted into the slot (801).
5. The monitoring base for high altitude hilly areas as claimed in claim 1 wherein: It also includes at least one pair of telescopic support assemblies (16) arranged on both sides of the monitoring column (7), the telescopic support assembly (16) includes a telescopic rod (161) hinged to the square structure, the end of the telescopic rod (161) is hinged with a support seat (162), and the support seat (162) is in contact with the outer wall of the monitoring column (7).
6. The monitoring base for high altitude hilly areas as claimed in claim 5 wherein: The telescopic rod (161) includes a mounting sleeve (1611) hinged to the square structure, a rod body (1612) is slidably connected in the mounting sleeve (1611), the support seat (162) is hinged to the end of the rod body (1612), and the rod body (1612) is limitedly matched with the mounting sleeve (1611) through a limiting structure (1613).
7. The monitoring base for high altitude hilly regions as claimed in claim 6 wherein: The limiting structure (1613) comprises an adjusting screw rod (16131) fixedly connected with the rod body (1612) at one end away from the support base (162), both ends of the adjusting screw rod (16131) are respectively penetrated to the outside through the long holes (16111) on the side wall of the mounting sleeve (1611), both ends of the adjusting screw rod (16131) are threadedly connected with limiting nuts (16132), and the limiting nuts (16132) abut against the side wall of the mounting sleeve (1611).
8. The monitoring base for high altitude hilly areas as claimed in claim 1 wherein: The locking assembly (3) comprises a threaded cap (31) threadedly connected at the top of the earth-penetrating rod (1), and the bottom surface of the threaded cap (31) is connected with an abutting ring (32), and the bottom surface of the abutting ring (32) abuts against the top surface of the stabilizing box (2).
9. The monitoring base for high altitude hilly areas as claimed in claim 1 wherein: The bottom of the earth-penetrating rod (1) is provided as a pointed end.
10. The monitoring base for high altitude hilly areas as claimed in claim 9 wherein: The top of the earth-penetrating rod (1) is provided with a perforation for the force rod (17) to pass through, and the bottom and the middle are provided with spiral arranged mud discharge grooves (101).