Distributed water resource gridding management device
By adopting a mounting base and fixing mechanism in the distributed water resource grid management device, rapid installation and dismantling are achieved. Photovoltaic panels are installed on the device to reduce grid dependence, solving the problem of inconvenient installation of existing devices, improving installation efficiency and stability, and reducing costs and noise.
Patent Information
- Application Number
- CN202520418913.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-11
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2035-03-11
AI Technical Summary
Existing distributed water resource grid management devices are inconvenient to install and dismantle, making it difficult to meet the needs for rapid installation or replacement.
The device uses a mounting base with a fixing mechanism. The drive unit controls the movable plate to insert the plug plate into the slot, enabling quick installation and disassembly. This eliminates the need for traditional bolts or welding methods. Photovoltaic panels are installed on the top of the device to reduce reliance on the traditional power grid.
It significantly improves installation efficiency, reduces installation difficulty, enhances the stability and reliability of the device, reduces wear and noise, lowers operating costs, and is suitable for remote areas or areas with incomplete power grid coverage.
Smart Images

Figure CN223579511U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of water resource management, and particularly relates to a distributed water resource grid management device. BACKGROUND
[0002] Water resources are the basic resources for human survival and social development, and their scientific management is crucial. Distributed water resource grid management, as an innovative method, deeply integrates water resource management with modern communication and information technology. By building a grid monitoring and management system, the goal of comprehensive, accurate and efficient water resource management is achieved.
[0003] The core concept is to divide the region into large and small monitoring areas to form a grid structure. In each small monitoring area, multiple water resource monitoring sensors are deployed to collect real-time data on water level, flow, flow rate, water quality and other key factors. At the same time, environmental sensors collect environmental temperature, humidity and other information to provide a comprehensive environmental background and assist water resource monitoring.
[0004] The distributed water resource grid management device, as an advanced technical system for achieving the above management, uses multiple monitoring methods for comprehensive monitoring and management of water resources. The device is composed of multiple rain measuring radars, rain gauges and hydrological stations. These devices work together at different monitoring levels to build a complete water resource monitoring network.
[0005] However, the existing distributed water resource grid management device is generally fixed to the ground by a base when installed outdoors. The installation process first fixes the base, and then fixes the management device on the base by bolt connection or welding. However, this traditional installation method is not convenient for quick installation or disassembly and replacement of the device, and cannot meet the needs of flexible installation and replacement of the device in actual applications.
[0006] Therefore, the present application provides a distributed water resource grid management device to solve the above problems. CONTENT OF THE UTILITY MODEL
[0007] The present application provides a distributed water resource grid management device to solve the problems of the existing distributed water resource grid management device in the background art, such as not easy to install or disassemble quickly during installation.
[0008] To achieve the above purpose, the present application provides the following technical solution: a distributed water resource grid management device, comprising a grid management device body, an installation seat for positioning and installing the grid management device body, and a fixing mechanism for fixing the grid management device body on the installation seat.
[0009] The fixing mechanism comprises symmetrical fixing plates which are inserted into the mounting seat and fixedly connected with the lower end of the grid management device body, symmetrical movable plates which are movably arranged on the mounting seat, symmetrical insertion plates which are fixedly connected with one end of the movable plates close to the fixing plates, insertion slots which are arranged on the fixing plates for inserting the insertion plates, and driving members for driving the two movable plates to move close to or away from each other, wherein the two movable plates are arranged between the two fixing plates.
[0010] Preferably, in order to ensure the stability of the installation, the bottom side edge of the insertion plate close to the fixing plate is in the form of an inclined surface, and the inner wall of the insertion slot is in the same shape as the outer wall of the insertion plate. The bottom side edge of the insertion plate is in the form of an inclined surface, which can be automatically centered when inserted into the insertion slot. The inner wall of the insertion slot is in the same shape as the outer wall of the insertion plate, and the insertion plate is tightly fitted after being inserted, which can resist external force in all directions, prevent the fixing plate from shaking or moving, ensure the stability of the grid management device body during long-term operation, and provide reliable protection for accurate monitoring of water resource data.
[0011] Preferably, the driving member comprises a worm gear combination device fixedly installed in the interior of the mounting seat, both ends of the worm shaft of the worm gear combination device are fixedly connected with lead screws, the lead screws are threadedly sleeved with threaded sleeves fixedly connected with the movable plates, and the worm shaft of the worm gear combination device is fixedly connected with a handle. The driving member adopts the design of a worm gear combination device, lead screws, threaded sleeves, and a handle. The self-locking property of the worm gear prevents the insertion plate from automatically disengaging, and enhances the reliability of the fixation. The operator can accurately control the moving distance and speed of the movable plate by rotating the handle, which is convenient for adjusting according to the actual situation. At the same time, the speed reduction and force enhancement effect of the worm gear make it easier to rotate the handle, reducing the labor intensity.
[0012] Preferably, in order to reduce the wear of the grid management device body and the mounting seat, a buffer pad is fixedly connected to the lower end of the grid management device body. The buffer pad connected to the lower end of the device body can absorb and disperse external vibration and impact energy, reduce the wear between the body and the mounting seat caused by direct contact and friction, prolong the service life of the device and the mounting seat, reduce the maintenance cost, and also play a sound insulation role to reduce the noise of the device in operation.
[0013] Preferably, in order to save energy: the upper end of the grid management device body is fixedly installed with a photovoltaic panel, the inside of the grid management device body is provided with a storage battery connected with the photovoltaic panel, and the inside of the grid management device body is further provided with a controller connected with the photovoltaic panel and the storage battery. The device is installed with a photovoltaic panel, matched with a storage battery and a controller. When there is light, the photovoltaic panel converts solar energy into electrical energy and stores it in the storage battery. When electricity is used, the storage battery supplies power to the device under the control of the controller. This design reduces the dependence on traditional power grids, especially in remote or imperfectly covered areas, not only reducing operating costs and carbon emissions, but also taking advantage of the device's location to better receive light and improve solar energy utilization efficiency.
[0014] The application discards the traditional complex bolt or welding method, adopts a mounting seat matched with a fixing mechanism, fixes the mounting seat at a specified position first, then inserts the fixing plate at the lower end of the grid management device body into the mounting seat, and then inserts the plug plate into the slot by driving the movable plate with the plug plate, so that the fixing is completed, the quick installation and disassembly are realized, the installation efficiency is significantly improved, and the installation difficulty is reduced.
[0015] The application installs a photovoltaic panel on the upper end of the device, matched with a storage battery and a controller. When there is light, the photovoltaic panel converts solar energy into electrical energy and stores it in the storage battery. When electricity is used, the storage battery supplies power to the device under the control of the controller. This design reduces the dependence on traditional power grids, especially in remote or imperfectly covered areas, not only reducing operating costs and carbon emissions, but also taking advantage of the device's location to better receive light and improve solar energy utilization efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 It is a structural schematic view of a distributed water resource grid management device;
[0017] Figure 2 It is a structural schematic view of the fixing mechanism inside the mounting seat;
[0018] Figure 3 It is a structural schematic view of the mounting seat;
[0019] Figure 4 It is a structural schematic view of the fixing mechanism;
[0020] Figure 5 It is a structural schematic view of the inside of the grid management device body.
[0021] In the drawings:
[0022] 1, grid management device body; 11, buffer pad; 2, mounting seat; 3, fixing mechanism; 31, fixed plate; 32, movable plate; 33, plug plate; 34, plug slot; 35, driving piece; 351, worm and gear combination; 352, screw rod; 353, threaded sleeve; 354, handle; 4, photovoltaic panel; 41, battery; 42, controller. DETAILED DESCRIPTION
[0023] The technical solutions in the embodiments of the present application will be described clearly and completely below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.
[0024] Embodiment 1
[0025] The present embodiment provides a kind of distributed water resource grid management device, as shown in Figures 1-5 The management device includes grid management device body 1, mounting seat 2 for positioning installation to grid management device body 1 and fixing mechanism 3 for fixing grid management device body 1 on mounting seat 2.
[0026] The fixing mechanism 3 comprises symmetrical fixing plates 31 which are inserted on the mounting seat 2 and fixedly connected with the lower end of the grid management device body 1, symmetrical movable plates 32 which are movably arranged on the mounting seat 2, symmetrical insertion plates 33 which are fixedly connected with one end of the movable plate 32 close to the fixing plate 31, insertion grooves 34 which are arranged on the fixing plate 31 and used for inserting the insertion plate 33, and a driving member 35 which is used for driving the two movable plates 32 to move close to or away from each other, wherein the two movable plates 32 are correspondingly arranged between the two fixing plates 31. During installation, first, the mounting seat 2 is fixed at the required installation position to provide a stable basis for subsequent installation. Then, the fixing plate 31 at the lower end of the grid management device body 1 is accurately inserted into the specified position on the mounting seat 2. After that, the driving member 35 of the fixing mechanism 3 is started to drive the two movable plates 32 to move close to or away from each other. Since the one end of the movable plate 32 close to the fixing plate 31 is fixedly connected with the insertion plate 33, and the insertion groove 34 is arranged on the fixing plate 31 and used for inserting the insertion plate 33, when the movable plate 32 moves, the insertion plate 33 will be inserted into or separated from the insertion groove 34, so as to realize the fixing and loosening of the fixing plate 31, and ensure the stability of the position of the grid management device body 1. The design is simple, greatly improves the convenience of installation or disassembly, and effectively solves the problem of inconvenient operation of the traditional installation method. The traditional complex bolt or welding method is abandoned, the mounting seat 2 is matched with the fixing mechanism 3, the mounting seat 2 is first fixed at the specified position, then the fixing plate 31 at the lower end of the grid management device body 1 is inserted into the mounting seat 2, and then the driving member 35 is used to control the movable plate 32 to drive the insertion plate 33 to be inserted into the insertion groove 34, so as to complete the fixing, realize the quick installation and disassembly, significantly improve the installation efficiency, and reduce the installation difficulty.
[0027] In order to ensure the stability of the installation: the bottom side edge of the insertion plate 33 close to the fixing plate 31 is in the shape of an inclined surface, and the shape of the inner wall of the insertion groove 34 is consistent with the shape of the outer wall of the insertion plate 33. During the process of inserting the insertion plate 33 into the insertion groove 34, the inclined surface at the bottom of the insertion plate 33 first contacts the edge of the insertion groove 34. As the movable plate 32 continues to push the insertion plate 33 forward, the inclined surface guides the insertion plate 33 to gradually penetrate into the insertion groove 34, and plays an automatic centering role. At the same time, since the shape of the inner wall of the insertion groove 34 is consistent with the shape of the outer wall of the insertion plate 33, after the insertion plate 33 is inserted, it can tightly fit the inner wall of the insertion groove 34, and provide support and fixation in all directions. This design significantly enhances the stability of the connection between the insertion plate 33 and the insertion groove 34. On the one hand, the automatic centering function makes the installation process smoother, reduces the difficulty and time of manual alignment. On the other hand, the tightly fitted inner wall and outer wall can effectively resist external forces in all directions, prevent the fixing plate 31 from shaking or moving during use, and ensure the stability of the grid management device body 1 during long-term operation, thereby improving the accuracy of the monitoring data.
[0028] The driving member 35 comprises a worm and gear combination 351 fixedly installed inside the mounting seat 2, both ends of the worm shaft of the worm and gear combination 351 are fixedly connected with a lead screw 352, a threaded sleeve 353 fixedly connected with the movable plate 32 is threaded on the lead screw 352, and a handle 354 is fixedly connected with the worm shaft of the worm and gear combination 351. By rotating the handle 354, the worm shaft of the worm and gear combination 351 is driven to rotate, and due to the meshing effect of the worm and gear, the rotation of the worm drives the synchronous rotation of the worm wheel. The rotation of the worm shaft further drives the rotation of the lead screw 352 fixedly connected at both ends. Under the cooperation and limitation of the mounting seat 2 and the movable plate 32, the threaded sleeve 353 threaded on the lead screw 352 cannot rotate with the lead screw 352, but can only move along the axial direction of the lead screw 352. Since the threaded sleeve 353 is fixedly connected with the movable plate 32, the movement of the threaded sleeve 353 drives the lateral movement of the movable plate 32, and finally realizes the movement of the plug-in plate 33 towards the direction of approaching or moving away from the fixed plate 31. When the handle 354 is rotated clockwise, the plug-in plate 33 moves towards the inside of the insertion slot 34 to complete the fixation of the fixed plate 31; when the handle 354 is rotated counterclockwise, the plug-in plate 33 moves towards the outside of the insertion slot 34 to release the fixation of the fixed plate 31. The worm and gear combination 351 has a self-locking feature, and even if a larger external impact force is applied after the plug-in plate 33 is inserted into the insertion slot 34 and the fixed plate 31 is fixed, the worm and gear combination 351 can prevent the lead screw 352 from reversing, ensuring that the plug-in plate 33 will not automatically come off the insertion slot 34, and further enhancing the reliability of the fixation.
[0029] In order to reduce the wear and tear between the grid management device body 1 and the mounting seat 2, a buffer pad 11 is fixedly connected to the lower end of the grid management device body 1. After the grid management device body 1 is installed on the mounting seat 2, the buffer pad 11 is located between the two. When the device is subjected to external vibration, impact or slight shaking during daily operation, the buffer pad 11 can absorb and disperse these energies by deforming elastically. The buffer pad 11 will deform by compression, bending and other deformations, converting the impact force received by the device into its own elastic potential energy, thereby reducing the energy transmitted to the grid management device body 1 and the mounting seat 2. The wear and tear between the grid management device body 1 and the mounting seat 2 is effectively reduced. Due to the buffering effect of the buffer pad 11, the wear and tear between the two due to direct contact and friction is reduced, the service life of the device and the mounting seat 2 is prolonged, and the maintenance cost is reduced. At the same time, the buffer pad 11 can also play a certain sound insulation role, reducing the noise generated by vibration during device operation, and providing a quieter working environment for the surrounding environment.
[0030] Embodiment 2
[0031] Different from embodiment 1, in order to save energy: the upper end of the grid management device body 1 is fixedly installed with a photovoltaic panel 4, the inside of the grid management device body 1 is provided with a storage battery 41 connected with the photovoltaic panel 4, and the inside of the grid management device body 1 is further provided with a controller 42 connected with the photovoltaic panel 4 and the storage battery 41. In the case of light, the photovoltaic panel 4 absorbs solar energy and converts it into electrical energy. The generated electrical energy is transmitted to the storage battery 41 through the controller 42 for storage. The controller 42 plays a role of adjustment and control, which can automatically adjust the charging current and voltage according to the power generation of the photovoltaic panel 4 and the power state of the storage battery 41, and ensure that the storage battery 41 is safely and efficiently charged. When the grid management device body 1 needs to be powered, the electrical energy in the storage battery 41 is output under the control of the controller 42 to provide power support for the various components of the device. This energy-saving design makes full use of solar energy, a clean energy, reduces the dependence on traditional power supply. In some remote areas or areas where the power grid coverage is not perfect, the normal operation of the device can be ensured. At the same time, the operation cost is reduced, the carbon emissions generated by using traditional energy are reduced, and the concept of sustainable development is met. In addition, the photovoltaic panel 4 is installed on the upper end of the device body, which does not occupy additional ground space, and makes full use of the location advantage of the device to better receive light and improve the utilization efficiency of solar energy.
[0032] The control mode of the present application is controlled by a master controller, and the control circuit of the master controller can be realized by simple programming by those skilled in the art. The power supply is also a common knowledge in the art, and the present application is mainly used to protect mechanical devices, so the control mode and circuit connection will not be explained in detail.
[0033] It should be noted that the various standard parts used in the present application can be obtained from the market, and the non-standard parts can be specially customized. The connection method used in the present application is also a very common means in the mechanical field, and the inventor will not repeat it here.
[0034] The above is only the preferred specific embodiment of the present application, but the protection scope of the present application is not limited thereto. Any skilled person in the art can make equivalent replacement or change according to the technical solution and concept of the present application within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.
Claims
1. A distributed water resource grid management device, comprising a grid management device body (1), a mounting base (2) for positioning and installing the grid management device body (1), and a fixing mechanism (3) for fixing the grid management device body (1) on the mounting base (2). Its features are: The fixing mechanism (3) includes a fixing plate (31) symmetrically inserted into the mounting base (2) and fixedly connected to the lower end of the grid management device body (1), a movable plate (32) symmetrically arranged on the mounting base (2) and movable relative to each other, an insert plate (33) symmetrically fixedly connected to one end of the movable plate (32) near the fixing plate (31), a slot (34) opened on the fixing plate (31) for the insert plate (33) to be inserted, and a driving member (35) for driving the two movable plates (32) to move closer or further apart, wherein the two movable plates (32) are correspondingly arranged between the two fixing plates (31).
2. The distributed water resource grid management device according to claim 1, characterized in that: The bottom side edge of the insert plate (33) near the fixing plate (31) is inclined, and the inner wall shape of the slot (34) is consistent with the outer wall shape of the insert plate (33).
3. The distributed water resource grid management device according to claim 1, characterized in that: The drive unit (35) includes a worm gear assembly (351) fixedly installed inside the mounting base (2). Both ends of the worm gear shaft of the worm gear assembly (351) are fixedly connected to lead screws (352). A threaded sleeve (353) fixedly connected to the movable plate (32) is threaded onto the lead screw (352). A handle (354) is fixedly connected to the worm shaft of the worm gear assembly (351).
4. The distributed water resource grid management device according to claim 1, characterized in that: A buffer pad (11) is fixedly connected to the lower end of the main body (1) of the grid management device.
5. The distributed water resource grid management device according to claim 1, characterized in that: A photovoltaic panel (4) is fixedly installed on the upper end of the grid management device body (1). A storage battery (41) connected to the photovoltaic panel (4) is installed inside the grid management device body (1). A controller (42) connected to the photovoltaic panel (4) and the storage battery (41) is also installed inside the grid management device body (1).