Water conservancy project seepage real-time detection device
By introducing a crushing drill bit and support leg structure into the real-time seepage detection device for water conservancy projects, the problems of equipment carrying and stability during the installation process were solved, achieving the effects of simplified installation and enhanced stability.
Patent Information
- Application Number
- CN202520351160.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-02-28
AI Technical Summary
Existing real-time seepage monitoring devices for water conservancy projects require operators to carry additional installation equipment during installation, resulting in high workload and inconvenience for installation in remote locations.
A structure including a column, a breaking drill bit, a circular groove, a circular plate, and support legs was designed. The breaking drill bit breaks up the soil at the bottom of the column and inserts it into the ground. The soil in the circular groove solidifies to enhance the stability of the column. The support legs provide support at multiple positions, simplifying the installation process and reducing the need to carry additional equipment.
It enables installation without the need for additional installation equipment, reducing the workload of operators, and enhances the stability of the column through soil tamping and support legs, ensuring stable installation of the device in remote locations.
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Figure CN223926239U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of seepage detection device, especially to a water conservancy project seepage real -time detection device. BACKGROUND
[0002] The water conservancy project seepage real -time detection principle is mainly based on sensor technology, data acquisition and processing and data transmission and analysis technology, and its core method includes sensor monitoring, data acquisition and transmission, data analysis and feedback.
[0003] The existing water conservancy project seepage real -time detection device is generally mainly by the stand, solar power supply structure, the protection box for installing electronic equipment and seepage monitoring meter five parts constitute, in the device installation process, generally need to be dug on the ground for burying the burying hole for burying seepage monitoring meter, therefore when installing the device, the operator needs to carry a certain amount of installation equipment in addition to carrying equipment, and the installation position of the device is often located in a remote place, greatly operator's work intensity. UTILITY MODEL CONTENT
[0004] The utility model aims at providing a water conservancy project seepage real -time detection device to solve the problems in the above background.
[0005] In order to achieve the above object, the utility model provides the following technical scheme: a water conservancy project seepage real -time detection device, including the stand, the bottom of stand is equipped with the slotting subassembly, the slotting subassembly includes broken drill bit, and it is fixedly installed at the bottom end of stand, the bottom end of stand is equipped with the circular groove, the circular groove is equipped with the circular plate, and the outer peripheral wall of circular plate is in contact with the inner wall of circular groove, the outer peripheral side of stand is circularly arranged and is equipped with a plurality of storage grooves, and the inside of each storage groove is communicated with the inside of circular groove, and the storage groove is equipped with the supporting leg.
[0006] The inner ring edge of the bottom end of the circular groove is provided in a slope shape, and the broken drill bit is integrally cast by a plurality of cutters.
[0007] Preferably, the outer peripheral wall of the circular plate is circularly arranged and fixedly provided with a connecting block, and the end of each connecting block away from the circular plate is inserted into the corresponding storage groove and in contact with the inner wall of the corresponding storage groove.
[0008] Preferably, the length of the supporting leg is less than the length of the storage groove, and the supporting leg comprises a top rod, the top end of the top rod is provided in an arc shape and in contact with the inner top wall of the corresponding storage groove, and the top rod is rotationally connected to the corresponding connecting block through a pivot.
[0009] Preferably, the bottom end of the top rod is rotationally provided with a bottom rod through a pivot, and the side of the top plate and the bottom plate close to the corresponding storage groove is in contact with the inner wall of the corresponding storage groove.
[0010] Preferably, the bottom of the base rod is provided with a threaded hole, and two sets of positioning holes are provided on the outer peripheral wall of the column from top to bottom, and several positioning holes in each set are arranged in a circular array. The interior of the positioning hole is connected to the interior of the corresponding storage slot. A threaded rod is installed through the threaded hole and slides through the corresponding positioning hole.
[0011] This utility model has the following beneficial effects:
[0012] During installation, the operator only needs to carry the device to complete the overall installation of this improved real-time seepage detection device for water conservancy projects. No additional installation equipment is required, which reduces the operator's workload. After the device is installed, the soil stored at the bottom of the column can increase the weight of the column. As time goes by, the soil in the circular groove will solidify with the external soil through the storage hole to increase the resistance between the column and the external soil, thereby enhancing the stability of the column when placed vertically. At the same time, the support legs located at the bottom of the column form multiple support points, which can further enhance the stability of the column installation. Attached Figure Description
[0013] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0014] Figure 1 An elevation view of the overall structure of this utility model;
[0015] Figure 2 This is a perspective view of the overall structure of the column of this utility model;
[0016] Figure 3 This is a perspective view of the internal structure of the column of this utility model;
[0017] Figure 4 This is an elevation view of the overall structure of the circular plate and supporting leg of this utility model;
[0018] Figure 5 This utility model Figure 4 Enlarged view of the structure at point B;
[0019] Figure 6 This utility model Figure 2 Enlarged view of the structure at point A in the middle.
[0020] In the figure: 1, stand; 2, grooving assembly; 21, broken drill bit; 22, round groove; 23, round plate; 24, storage groove; 25, connecting block; 3, support leg; 31, top rod; 32, bottom rod; 33, threaded hole; 34, positioning hole; 35, threaded rod. DETAILED DESCRIPTION
[0021] In order to make the technical scheme and advantages of the utility model more clear and obvious, the utility model is further described in detail below in combination with the drawings and examples. It should be understood that the specific examples described herein are only used to explain the utility model and not to limit the utility model.
[0022] The utility model provides a technical scheme: refer to Figure 1 Figure 4 The utility model discloses a water conservancy project seepage real -time detection device, including stand 1, the bottom of stand 1 is equipped with grooving assembly 2, and grooving assembly 2 includes broken drill bit 21, is fixedly installed in the bottom end of stand 1, and the bottom end of stand 1 is equipped with round groove 22, and the round groove 22 is equipped with round plate 23, and the outer peripheral wall of round plate 23 is in contact with the inner wall of round groove 22, and the outer peripheral side of stand 1 is equipped with a plurality of storage grooves 24 in round array, and the inside of each storage groove 24 is communicated with the inside of round groove 22, and storage groove 24 is equipped with support leg 3.
[0023] In the embodiment, please refer to Figure 1 The water conservancy project seepage real -time detection device, i.e. seepage pressure detection station, is mainly composed of stand 1, solar power supply structure, protective box for installing electronic equipment and seepage monitoring meter five parts, wherein the solar power supply structure is installed at the top end of stand 1, the protective box is installed on the outer peripheral wall of the top end of stand 1, and the seepage monitoring meter is connected with the electronic equipment in the protective box through a line;
[0024] Please refer to Figure 1 Figure 3 As shown, in the device use, the operator will solar power structure and protection box from the column 1 disassembly, then the operator hand-held column 1, drill bit inserted into the corresponding position on the ground, then press down and rotate the column 1, rotating broken drill bit 21 will be the bottom end of the column 1 of the soil scattered, and by the bottom opening of the circular groove 22 extruded into the column 1, according to the column 1 inserted into the ground depth, the depth of the seepage monitoring meter can be adjusted to the depth of the buried hole in the corresponding position on the ground, then the operator will column 1 from the bottom of the pull out, and through the support leg 3 pull the circular plate 23, with the circular plate 23 in the circular groove 22 sliding, can directly push the soil in the circular groove 22 from the bottom opening of the circular groove 22 or the storage groove 24, after the soil in the circular groove 22 is cleaned, the operator adjusts the angle of the support leg 3, then according to the above-mentioned in the position near the buried hole again the bottom of the column 1 is inserted into the ground until the support leg 3 is in contact with the ground, the installation of the column 1 is completed, at this time the soil in the bottom of the circular groove 22 can enhance the weight of the bottom of the column 1, and the soil in the circular groove 22 is condensed together with the external soil through the storage hole with the elapse of time, so as to enhance the resistance between the column 1 and the external soil, thereby enhancing the stability of the column 1 vertically placed, and the support leg 3 at the bottom of the column 1 forms a plurality of position supports, which can further enhance the stability of the column 1 installation;
[0025] Then the operator will seepage monitoring meter into the buried hole, and the soil is pushed into the buried hole and compacted, the installation of the seepage monitoring meter is completed, finally the solar power structure and the protection box are reinstalled on the column 1, the installation of the device is completed, and no additional installation equipment is needed during the installation of the device, so that the user only needs to carry the device to complete the installation of the device, thereby reducing the working strength of the operator.
[0026] In further preferable embodiments of the present application, as shown in Figure 2 The inner ring edge of the bottom end of the circular groove 22 is provided in a slope shape, and the broken drill bit 21 is integrally cast by a plurality of cutters.
[0027] In this embodiment, please refer to Figure 3 The slope shape of the bottom end of the circular groove 22 makes the soil on the bottom side of the column 1 more easily slide into the circular groove 22, and the annular blade formed at the bottom end of the column 1 can avoid the mutual resistance of the soil and the column 1, thereby reducing the resistance of the column 1 when inserted into the ground. Please refer to Figure 2 The broken drill bit 21 composed of a plurality of cutters (a soil passing gap is left between adjacent two cutters) can break harder soil during the rotation of the column 1, thereby facilitating the insertion of the column 1 into the ground.
[0028] In further preferable embodiments of the present application, as shown in Figure 2 Figure 4 As shown in the drawings, the connecting blocks 25 are fixedly arranged on the outer peripheral wall of the circular plate 23 in a circumferential array, and the ends of each connecting block 25 away from the circular plate 23 are inserted into the corresponding storage groove 24 and in contact with the inner wall of the corresponding storage groove 24.
[0029] In this embodiment, please refer to Figure 3 and Figure 4 As shown in the drawings, during the sliding process of the circular plate 23 in the circular groove 22, the connecting blocks 25 are in contact with the inner walls of the storage grooves 24, so that a constraint and limiting state is applied to the circular groove 22, so that the circular plate 23 remains flat and slides in a vertical linear trajectory in the circular groove 22.
[0030] In further preferable embodiments of the utility model, as shown in Figure 2 - Figure 4 The length of the support leg 3 is less than the length of the storage groove 24, the support leg 3 comprises a top rod 31, the top end of the top rod 31 is arc-shaped and in contact with the inner top wall of the corresponding storage groove 24, and the top rod 31 is rotationally connected to the corresponding connecting block 25 through a rotating shaft.
[0031] In this embodiment, please refer to Figure 3 and Figure 4 The top rod 31 can be taken out of the storage groove 24 through rotation, and then the operator can hold the interface of the top rod 31 and pull the circular plate 23 downward through the connecting block 25, so as to push the soil in the circular groove 22 out, which facilitates the pushing of the circular plate 23.
[0032] In further preferable embodiments of the utility model, as shown in Figure 2 - Figure 4 The bottom end of the top rod 31 is rotationally provided with a bottom rod 32 through a rotating shaft, and the side of the top plate and the bottom rod 32 close to the corresponding storage groove 24 is in contact with the inner wall of the corresponding storage groove 24.
[0033] In this embodiment, please refer to Figure 2 - Figure 4 The support leg 3 is divided into two parts, the top rod 31 and the bottom rod 32, and through the rotation between the top rod 31 and the connecting block 25 and the rotation between the top rod 31 and the bottom rod 32, a plurality of triangular support structures can be formed at the bottom of the stand 1, so as to enhance the stability of the support leg 3 supporting the stand 1, and the bottom rod 32 can enhance the contact area between the support leg 3 and the ground, so as to disperse the contact force between the support leg 3 and the ground, so that the support leg 3 hardly penetrates into the ground.
[0034] In further preferable embodiments of the utility model, as shown in Figure 2 , Figure 4 , Figure 5 and Figure 6As shown, the bottom of the bottom rod 32 is provided with a threaded hole 33, and the outer wall of the stand column 1 is provided with two groups of positioning holes 34 from top to bottom, and the positioning holes 34 in each group are arranged in a circumferential array, the inside of the positioning hole 34 is communicated with the inside of the corresponding storage groove 24, and the threaded hole 33 is provided with a threaded rod 35 which is threaded and penetrates the corresponding positioning hole 34, and the threaded rod 35 slides through the corresponding positioning hole 34;
[0035] In this embodiment, please refer to FIGS. Figure 2 、 Figure 4 、 Figure 5 and Figure 6 As shown, when the support leg 3 is taken out of the storage groove 24, the operator reversely twists the threaded rod 35 to pull out the threaded rod 35 from the positioning hole 34, so as to release the locking state of the bottom end of the bottom rod 32. At this time, the operator can directly pry out the support leg 3 from the storage groove 24. It should be noted that when the pre-buried hole is opened, the threaded rod 35 also needs to be removed.
[0036] When installing the stand column 1, the support leg 3 is deformed into a triangular structure, and the bottom end of the bottom rod 32 is aligned with the positioning hole 34 at the top end. Then the threaded rod 35 penetrates the positioning hole 34 at the top end, and the bottom end of the deformed bottom rod 32 is locked, so that the triangular structure of the deformed support leg 3 remains stable.
[0037] Working principle: when the device is used, the operator dismounts the solar power supply structure and the protection box from the stand column 1, then reversely twists the threaded rod 35 to pull out the threaded rod 35 from the positioning hole 34, so as to avoid the threaded rod 35 from interfering with the opening of the buried hole. Then the operator holds the stand column 1, inserts the drill bit into the corresponding position on the ground, and then presses and rotates the stand column 1. The rotating broken drill bit 21 makes the cutting knife scatter the soil at the bottom end of the stand column 1. Then the scattered soil is squeezed into the circular groove 22 through the gap between the cutting knives, leaving space for the insertion of the stand column 1 into the ground. According to the depth of the insertion of the stand column 1 into the ground, the buried depth of the seepage monitoring meter can be adjusted, so as to open a buried hole with a corresponding depth at the corresponding position on the ground. It should be noted that a mark can be provided on the stand column 1 to quickly determine the depth of the opening of the buried hole.
[0038] After the buried hole is opened, the operator pulls out the stand column 1 from the ground, then the operator prys out the support leg 3 from the storage groove 24, and then the operator holds the top rod 31 and pushes the circular plate 23 downward. With the sliding of the circular plate 23 in the circular groove 22, the soil in the circular groove 22 can be directly pushed out from the bottom opening of the circular groove 22 or the storage groove 24.
[0039] After the soil in the circular groove 22 is cleaned, the column 1 can form multiple triangular support structures at the bottom of the column 1 by rotating the top rod 31 relative to the connecting block 25 and rotating the top rod 31 relative to the bottom rod 32, and the bottom end of the bottom rod 32 is aligned with the positioning hole 34 at the top end, and then the threaded rod 35 is inserted through the positioning hole 34 at the top end, so that the bottom end of the deformed bottom rod 32 is locked, and the triangular structure formed by the support leg 3 is stable;
[0040] Then the operator drills the bottom of the column 1 into the ground until the bottom rod 32 is in contact with the ground, and the installation of the column 1 is completed, at this time the soil at the bottom of the circular groove 22 can enhance the weight of the bottom of the column 1, and the soil in the circular groove 22 is condensed with the external soil through the storage hole over time to enhance the resistance between the column 1 and the external soil, and the multiple triangular structures formed at the bottom of the column 1 can support the column 1 from multiple positions at the bottom of the column 1, so that the column 1 is stably placed vertically on the ground, then the operator inserts the seepage monitoring meter into the buried hole, and pushes the soil into the buried hole and compacts it, the installation of the seepage monitoring meter is completed, finally the solar power supply structure and the protection box are reinstalled on the column 1, and the installation of the device is completed.
[0041] The basic principle, main features and advantages of the present application are shown and described above. It should be understood by those skilled in the art that the present application is not limited by the above embodiments, and the above embodiments and descriptions in the specification are only the principles 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 fall within the scope of the present application. The scope of protection required by the present application is defined by the appended claims and their equivalents.
Claims
1. A real-time seepage detection device for hydraulic engineering, comprising a column (1), characterized in that: The bottom of the column (1) is provided with a grooving assembly (2), which includes a breaking drill bit (21) fixedly installed at the bottom end of the column (1). A circular groove (22) is provided at the bottom end of the column (1). A circular plate (23) is provided in the circular groove (22), and the outer peripheral wall of the circular plate (23) is in contact with the inner wall of the circular groove (22). A number of storage slots (24) are provided in a circular array on the outer peripheral side of the column (1), and the interior of each storage slot (24) is connected to the interior of the circular groove (22). A support leg (3) is provided in the storage slot (24).
2. The real-time seepage detection device for water conservancy projects according to claim 1, characterized in that: The inner ring edge at the bottom of the circular groove (22) is set in a bevel shape, and the crushing drill bit (21) is integrally cast from several cutting blades.
3. The real-time seepage detection device for hydraulic engineering according to claim 2, characterized in that: Connecting blocks (25) are fixedly installed in a circular array on the outer peripheral wall of the circular plate (23), and the end of each connecting block (25) away from the circular plate (23) is inserted into the corresponding storage groove (24) and contacts the inner wall of the corresponding storage groove (24).
4. The real-time seepage detection device for hydraulic engineering according to claim 3, characterized in that: The length of the support leg (3) is less than the length of the storage tank (24). The support leg (3) includes a top rod (31). The top end of the top rod (31) is arc-shaped and contacts the inner top wall of the corresponding storage tank (24). The top rod (31) is rotatably connected to the corresponding connecting block (25) through a rotating shaft.
5. The real-time seepage detection device for water conservancy projects according to claim 4, characterized in that: The bottom end of the top rod (31) is rotatably mounted with a bottom rod (32) via a rotating shaft, and the top plate and the bottom rod (32) are in contact with the inner wall of the corresponding storage tank (24) on the side close to the corresponding storage tank (24).
6. The real-time seepage detection device for hydraulic engineering according to claim 5, characterized in that: The bottom of the base rod (32) is provided with a threaded hole (33). The outer peripheral wall of the column (1) is provided with two sets of positioning holes (34) from top to bottom. Several positioning holes (34) in each set are arranged in a circular array. The interior of the positioning hole (34) is connected to the interior of the corresponding storage slot (24). A threaded rod (35) is threaded through the threaded hole (33) and slides through the corresponding positioning hole (34).