Wetland ecological restoration monitoring device
By setting up a support structure in the wetland ecological monitoring equipment and using components such as drop buckets and inclined connecting plates to bury them in the soil for support, the problems of cumbersome installation and easy damage of the equipment are solved, and the stability of the equipment and the installation efficiency are improved.
Patent Information
- Application Number
- CN202422603655.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-28
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2034-10-28
AI Technical Summary
Existing wetland ecological monitoring equipment is cumbersome to install and easily damaged by strong winds, affecting the effectiveness of wetland ecological restoration monitoring.
Support structures are set up at the monitoring poles and main poles, and components such as drop buckets and diagonal connecting plates are buried in the soil to provide support, enhance the stability of the support mechanism, and increase the weight by filling with soil to withstand strong winds.
It effectively prevents monitoring equipment from tipping over and being damaged in strong wind conditions, simplifies the installation process, and improves the stability and efficiency of wetland ecological restoration monitoring.
Smart Images

Figure CN223385977U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of wetland ecological restoration, in particular to a wetland ecological restoration monitoring device. Background Art
[0002] Wetlands are multifunctional and biodiverse ecosystems on Earth and one of the most important living environments for humans. As the "kidneys of the earth", wetlands play an irreplaceable role in carbon sequestration, groundwater replenishment, climate improvement, pollution control, and ecological environment regulation. Wetland ecological restoration refers to the repair or reconstruction of degraded or disappeared wetlands through ecological technologies or ecological engineering to restore their original ecological service functions. During the wetland ecological restoration process, real-time monitoring using ecological environment monitoring equipment is usually required to understand the progress of wetland ecological restoration.
[0003] When installing ecological environment monitoring equipment in wetlands with existing technology, it is usually necessary to dig a pit in the wetland and cast a concrete base with a mounting seat, and then lock the base of the support rod of the ecological environment monitoring equipment to the mounting seat of the concrete base with bolts. The ecological environment monitoring equipment installed in this way has the disadvantages of cumbersome installation and long construction period. In addition, when the single support rod of the ecological environment monitoring equipment encounters strong winds, the single rod body of the support rod is easily damaged by stress due to the presence of solar panels, monitoring cameras and some meteorological sensors above the support rod, thereby affecting the wetland ecological restoration monitoring. For this reason, we propose a wetland ecological restoration monitoring device. Utility Model Content
[0004] The main purpose of the present invention is to provide a wetland ecological restoration monitoring device, in which a supporting structure is arranged at the monitoring support pole, main support pole and base used for wetland ecological restoration monitoring, and the supporting mechanism can be assembled at the bottom of the base so that there is a foundation structure that can be buried in the wetland soil layer at the bottom of the base, and then the base structure of the supporting mechanism can be installed outside the main support pole and the monitoring support pole respectively through the structure supported by the inclined connecting plate and the bottom foot inclined plate to provide support. When the monitoring camera, solar panel and monitoring sensor are installed at the monitoring support pole and encounter strong winds, the supporting mechanism supports the monitoring support pole and the main support pole respectively with a double-group structure, effectively ensuring that the monitoring support pole and the main support pole used for wetland ecological restoration monitoring are not easily overturned and damaged by wind force, and the sinking bucket A and the sinking bucket B of the supporting mechanism can be buried in the soil by digging a pit nearby as the foundation structure, and the sinking bucket A and the sinking bucket B can be filled with soil to increase the weight, ensuring that the supporting mechanism can be quickly assembled at the base, main support pole and monitoring support pole of the monitoring device to provide support, which can effectively solve the problems in the background technology.
[0005] In order to achieve the above purpose, the technical solution adopted by the utility model is:
[0006] A wetland ecological restoration monitoring device comprises a base, a main support rod and a monitoring support rod, wherein the main support rod is fixed on the top of the base, and the top of the main support rod is fixed with a monitoring support rod for installing the monitoring device, and further comprises a supporting mechanism, wherein the supporting mechanism comprises a supporting plate, a bottom connecting plate, a sinking bucket A, a sinking bucket B, an oblique connecting plate, an arc connecting block A, a U-shaped card plate A, a bottom foot oblique plate, an arc connecting block B and a U-shaped card plate B, the bottom of the base is locked with a supporting plate by bolts, and the bottom of the supporting plate is symmetrically welded with a sinking bucket A and a sinking bucket B through a bottom connecting plate. Bucket B, the falling buckets A and B are respectively welded with side plates and step plates on the outside of the barrel bodies, and the side plate surfaces are welded with arc connecting blocks A through inclined connecting plates, and the arc connecting blocks A are welded with U-shaped card plates A that are clamped outside the main support pole, and the straight plate bodies of the U-shaped card plates A are locked by bolts and nuts, and the surface of the step plates is locked with base inclined plates by bolts, and the base inclined plates are welded with U-shaped card plates B outside the monitoring support pole through arc connecting blocks B at the upper plate body away from the step plates, and the straight plate bodies of the U-shaped card plates B are locked by bolts and nuts.
[0007] Furthermore, the bottom of the support plate is welded to the bucket A and bucket B respectively through two sets of bottom connecting plates, and the arc-surface weld of the bottom connecting plate is welded to the outside of the arc-surface barrels of the bucket A and bucket B;
[0008] By adopting the above technical solution, the support plate can be connected by welding the drop bucket A and the drop bucket B with the two groups of bottom connecting plates.
[0009] Furthermore, mounting holes are provided on the surfaces of the support plate and the base, and bolts are screwed between the mounting holes of the support plate and the base;
[0010] By adopting the above technical solution, bolts can be screwed into the mounting holes of the support plate and the base plate for locking connection.
[0011] Furthermore, the inner barrel walls of the sinker barrels A and B are provided with raised annular ribs, and the barrel openings of the sinker barrels A and B are welded with D-shaped plates;
[0012] By adopting the above technical solution, ring bars are set in the falling buckets A and B for reinforcement, and the D-shaped plates welded in the falling buckets A and B can enhance the barrel mouth strength of the falling buckets A and B.
[0013] Furthermore, the surface of the step plate is recessed to form a concave step surface, and the concave step surface of the step plate is fastened with a footing plate of the footing inclined plate by bolts;
[0014] By adopting the above technical solution, the step plate is clamped into the base plate of the base slope plate with the concave step surface, and then the base plate of the base slope plate can be locked at the concave step surface of the step plate with the help of bolts.
[0015] Furthermore, the length of the plate cavity of the U-shaped card plate A is greater than the rod diameter of the main support rod, and the length of the plate cavity of the U-shaped card plate B is greater than the rod diameter of the monitoring support rod;
[0016] By adopting the above technical solution, the plate cavity of the U-shaped card plate A can be clamped and covered outside the main support pole, and then the bolts can be passed through the straight plate body of the U-shaped card plate A and the nuts can be screwed on, so as to lock the U-shaped card plate A outside the main support pole, and the plate cavity of the U-shaped card plate B can be clamped and covered outside the monitoring support pole, and then the bolts can be passed through the straight plate body of the U-shaped card plate B and the nuts can be screwed on, so as to lock the U-shaped card plate B outside the monitoring support pole.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] The utility model provides a support structure at the monitoring support pole, the main support pole and the base for monitoring wetland ecological restoration. The support mechanism can be assembled at the bottom of the base so that a foundation structure that can be buried in the wetland soil layer exists at the bottom of the base. Then, the base structure of the support mechanism can be respectively installed outside the main support pole and the monitoring support pole through the structure supported by the inclined connecting plate and the bottom foot inclined plate to provide support. When the monitoring camera, the solar panel and the monitoring sensor are installed at the monitoring support pole and encounter strong winds, the support mechanism supports the monitoring support pole and the main support pole respectively with a double-group structure, effectively ensuring that the monitoring support pole and the main support pole used for monitoring wetland ecological restoration are not easily damaged by the wind and fall.
[0019] In addition, the drop buckets A and B of the support mechanism can be buried in the soil as foundation structures, and the drop buckets A and B can be filled with soil to increase the weight, ensuring that the support mechanism can be quickly assembled at the base, main support pole and monitoring support pole of the monitoring device to provide support. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a schematic diagram of the overall structure of a wetland ecological restoration monitoring device of the present utility model.
[0021] Figure 2 This is a schematic diagram of the disassembly of the support mechanism and base, main support rod and monitoring support rod of a wetland ecological restoration monitoring device of the utility model.
[0022] Figure 3 This is an exploded diagram of the support mechanism of a wetland ecological restoration monitoring device of the utility model.
[0023] In the figure: 1. Base; 2. Main support rod; 3. Monitoring support rod; 4. Support mechanism; 5. Support plate; 6. Bottom connecting plate; 7. Falling bucket A; 8. Falling bucket B; 9. Side plate; 10. Step plate; 11. Diagonal connecting plate; 12. Arc connecting block A; 13. U-shaped clamping plate A; 14. Bottom foot diagonal plate; 15. Arc connecting block B; 16. U-shaped clamping plate B; 17. Ring reinforcement. DETAILED DESCRIPTION
[0024] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.
[0025] like Figure 1-3 As shown, a wetland ecological restoration monitoring device includes a base 1, a main support rod 2 and a monitoring support rod 3. The main support rod 2 is fixed on the top of the base 1, and the top of the rod body of the main support rod 2 is fixed with a monitoring support rod 3 for installing the monitoring device. It also includes a supporting mechanism 4, and the supporting mechanism 4 includes a supporting plate 5, a bottom connecting plate 6, a sinking bucket A7, a sinking bucket B8, an inclined connecting plate 11, an arc connecting block A12, a U-shaped card plate A13, a bottom foot inclined plate 14, an arc connecting block B15 and a U-shaped card plate B16. The bottom of the base 1 is locked with the supporting plate 5 by bolts, and the bottom of the supporting plate 5 is symmetrically welded with the sinking bucket A7 and the sinking bucket B8 through the bottom connecting plate 6. Bucket B8, the falling buckets A7 and B8 are respectively welded with side plates 9 and step plates 10 on the outside of the barrel bodies, and the surface of the side plate 9 is welded with an arc connecting block A12 through an inclined connecting plate 11, and the inside of the arc connecting block A12 is welded with a U-shaped clamping plate A13 that is stuck outside the main support rod 2, and the straight plate bodies of the U-shaped clamping plate A13 are locked by bolts and nuts, and the surface of the step plate 10 is locked with a bottom inclined plate 14 by bolts, and the bottom inclined plate 14 is welded with an arc connecting block B15 at the upper plate body away from the step plate 10 and is stuck on the U-shaped clamping plate B16 outside the monitoring support rod 3, and the straight plate bodies of the U-shaped clamping plate B16 are locked by bolts and nuts.
[0026] The bottom of the support plate 5 is welded to the falling bucket A7 and the falling bucket B8 respectively through two sets of plates of the bottom connecting plate 6, and the arc-surface weld of the bottom connecting plate 6 is welded to the arc-surface barrel bodies of the falling bucket A7 and the falling bucket B8;
[0027] By adopting the above technical solution, the support plate 5 can be connected to the falling bucket A7 and the falling bucket B8 by welding with the two groups of bottom connecting plates 6.
[0028] The surfaces of the support plate 5 and the base 1 are provided with mounting holes, and bolts are screwed between the mounting holes of the support plate 5 and the base 1;
[0029] By adopting the above technical solution, bolts can be screwed into the mounting holes of the support plate 5 and the base plate 1 for locking connection.
[0030] Among them, the inner barrel wall of the falling barrel A7 and the falling barrel B8 is protruded with a ring rib 17, and the barrel mouths of the falling barrel A7 and the falling barrel B8 are welded with a D-shaped plate;
[0031] By adopting the above technical solution, annular ribs 17 are provided in the falling buckets A7 and B8 for reinforcement, and the D-shaped plates welded in the falling buckets A7 and B8 can enhance the barrel mouth strength of the falling buckets A7 and B8.
[0032] The surface of the step plate 10 is concave and has a concave step surface, and the concave step surface of the step plate 10 is fastened with a footing plate 14 by bolts;
[0033] By adopting the above technical solution, the step plate 10 is inserted into the foot plate of the footing slant plate 14 with its concave step surface, and then the foot plate of the footing slant plate 14 can be fastened to the concave step surface of the step plate 10 with the help of bolts.
[0034] The length of the plate cavity of the U-shaped card plate A13 is greater than the rod diameter of the main support rod 2, and the length of the plate cavity of the U-shaped card plate B16 is greater than the rod diameter of the monitoring support rod 3;
[0035] By adopting the above technical solution, the plate cavity of the U-shaped card plate A13 can be clamped and covered outside the main support rod 2, and then the straight plate body of the U-shaped card plate A13 can be passed through with bolts and nuts screwed on, so that the U-shaped card plate A13 is locked outside the main support rod 2, and the plate cavity of the U-shaped card plate B16 can be clamped and covered outside the monitoring support rod 3, and then the straight plate body of the U-shaped card plate B16 can be passed through with bolts and nuts screwed on, so that the U-shaped card plate B16 is locked outside the monitoring support rod 3.
[0036] It should be noted that the present invention is a wetland ecological restoration monitoring device, wherein a support structure 3 is provided at a monitoring support rod 3, a main support rod 2 and a base 1 for wetland ecological restoration monitoring, a support plate 5 of the support mechanism 3 and a sinker barrel A7 and a sinker barrel B8 connected by a bottom connecting plate 6 are buried in the wetland soil layer, and soil can be filled in the sinker barrel A7 and the sinker barrel B8 to increase the weight, and then the main support rod 2 is clamped into the U-shaped card plate A13, and the plate cavity of the U-shaped card plate A13 can be clamped outside the main support rod 2, and then the U-shaped card plate A13 is clamped. Bolts can be passed through the straight plate body of plate A13 and nuts can be screwed on to lock the U-shaped card plate A13 outside the main support rod 2, and the U-shaped card plate B16 can be clamped outside the monitoring support rod 3. The plate cavity of the U-shaped card plate B16 can be clamped outside the monitoring support rod 3, and then bolts can be passed through the straight plate body of the U-shaped card plate B16 and nuts can be screwed on to lock the U-shaped card plate B16 outside the monitoring support rod 3. The bottom inclined plate 14 of the U-shaped card plate B16 is bolted to the step plate 10 to obtain support;
[0037] Then, the drop bucket A7 and the drop bucket B8 of the support mechanism 3 can be respectively installed outside the main support pole 2 and the monitoring support pole 3 as the base structure through the structures supported by the inclined connecting plate 11 and the bottom inclined plate 14 to provide support. When the monitoring camera, solar panel and monitoring sensor installed at the monitoring support pole 3 encounter strong winds, the support mechanism 3 supports the monitoring support pole 3 and the main support pole 2 respectively in a double-group structure, effectively ensuring that the monitoring support pole 3 and the main support pole 2 used for wetland ecological restoration monitoring are not easily damaged by wind, and the main support pole 2 where the control box is installed is also not easily blown down by the wind.
[0038] In addition, the drop bucket A7 and the drop bucket B8 of the support mechanism 3 can be buried in the soil as the foundation structure, and the drop bucket A7 and the drop bucket B8 can be filled with soil to increase the weight, ensuring that the support mechanism 3 can be quickly assembled at the base 1, main support pole 2 and monitoring support pole 3 of the monitoring device to provide support.
[0039] It should be noted that the present invention is a wetland ecological restoration monitoring device. The components in the present invention are all components known to those skilled in the art, and their structures and principles can be known to those skilled in the art through technical manuals or conventional experimental methods.
[0040] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements are intended to fall within the scope of the present invention. The scope of protection claimed in this invention is defined by the appended claims and their equivalents.
Claims
1. A wetland ecological restoration monitoring device, comprising a base (1), a main support rod (2) and a monitoring support rod (3), wherein the main support rod (2) is fixed to the top of the base (1), and the monitoring support rod (3) for mounting the monitoring device is fixed to the top of the main support rod (2), characterized in that: The invention also includes a supporting mechanism (4), wherein the supporting mechanism (4) includes a supporting plate (5), a bottom connecting plate (6), a sinking bucket A (7), a sinking bucket B (8), an oblique connecting plate (11), an arc connecting block A (12), a U-shaped clamping plate A (13), a bottom foot oblique plate (14), an arc connecting block B (15) and a U-shaped clamping plate B (16); the bottom of the base (1) is fastened with the supporting plate (5) by bolts, and the bottom of the supporting plate (5) is symmetrically welded with the sinking bucket A (7) and the sinking bucket B (8) through the bottom connecting plate (6); the barrel bodies of the sinking bucket A (7) and the sinking bucket B (8) are respectively welded with side plates (9) and step plates (10) ), and the side plate (9) is welded with an arc connecting block A (12) through an oblique connecting plate (11), a U-shaped card plate A (13) is welded inside the arc connecting block A (12) and is clamped outside the main support rod (2), and the straight plate bodies of the U-shaped card plate A (13) are locked by bolts and nuts, and the surface of the step plate (10) is locked with a bottom inclined plate (14) through bolts, and the bottom inclined plate (14) is welded with a U-shaped card plate B (16) outside the monitoring support rod (3) through an arc connecting block B (15) at the upper plate body away from the step plate (10), and the straight plate bodies of the U-shaped card plate B (16) are locked by bolts and nuts.
2. A wetland ecological restoration monitoring device according to claim 1, characterized in that: The bottom of the supporting plate (5) is respectively welded to the falling bucket A (7) and the falling bucket B (8) through two groups of plate bodies of the bottom connecting plate (6), and the arc-surface weld body of the bottom connecting plate (6) is welded to the outside of the arc-surface barrel bodies of the falling bucket A (7) and the falling bucket B (8).
3. A wetland ecological restoration monitoring device according to claim 1, characterized in that: Mounting holes are provided on the surfaces of the support plate (5) and the base (1), and bolts are screwed between the mounting holes of the support plate (5) and the base (1).
4. A wetland ecological restoration monitoring device according to claim 1, characterized in that: The inner barrel walls of the sinking barrel A (7) and the sinking barrel B (8) are protruded with annular ribs (17), and the barrel openings of the sinking barrel A (7) and the sinking barrel B (8) are welded with D-shaped plates.
5. The wetland ecological restoration monitoring device according to claim 1, characterized in that: The surface of the step plate (10) is recessed to form a concave step surface, and a footing plate of a footing inclined plate (14) is fastened to the concave step surface of the step plate (10) by means of bolts.
6. A wetland ecological restoration monitoring device according to claim 1, characterized in that: The length of the plate cavity of the U-shaped card plate A (13) is greater than the rod body diameter of the main support rod (2), and the length of the plate cavity of the U-shaped card plate B (16) is greater than the rod body diameter of the monitoring support rod (3).