Water conservancy monitoring device for water conservancy project
By designing a stable floating base and winding assembly, the problems of poor wind and wave resistance and inconvenient detection depth adjustment of traditional water quality monitoring devices have been solved, thus achieving stability and accuracy in water quality monitoring and improving monitoring efficiency and work efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TIANJIN JINFAN ENG CONSTR SUPERVISION CO LTD
- Filing Date
- 2025-06-23
- Publication Date
- 2026-05-05
AI Technical Summary
Traditional surface water quality monitoring devices have poor resistance to wind and waves, are prone to shaking, and are inconvenient to adjust the detection depth, resulting in incomplete and inaccurate monitoring data, which cannot meet the requirements of refined water quality monitoring.
The floating seat design consists of a combination of a central frame and a ring-shaped buoyancy ring, along with a load-bearing ring, equipment base, and riser base. The depth adjustment of the water quality analyzer is achieved by controlling the winding and unwinding of the detection rope through a winding assembly.
It improves the stability of the monitoring device and the accuracy of the monitoring data, enhances the device's resistance to wind and waves, facilitates water quality testing at different depths, and reduces labor intensity and maintenance costs.
Smart Images

Figure CN224197926U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of water conservancy monitoring devices, and in particular to a water conservancy monitoring device for water conservancy projects. Background Technology
[0002] In the field of water resource monitoring, water quality testing is crucial for ecological protection and ensuring drinking water safety. As key equipment for acquiring real-time water quality data, the performance of surface water quality monitoring devices directly affects the accuracy and reliability of monitoring results.
[0003] Traditional surface water quality monitoring devices often employ simple floating structures, typically consisting of a buoy connected to a water quality monitor. The buoy is usually a hollow plastic cylinder, secured to a designated location on the water surface by ropes or anchor chains. However, these simple floating structures have poor resistance to wind and waves, easily swaying violently or even capsizing when encountering fluctuating currents or large waves. Furthermore, traditional devices lack convenient control methods for adjusting the detection depth. In some devices, the water quality monitor is fixed at a specific depth below the buoy, preventing flexible adjustment of the detection position according to actual needs. This results in incomplete and inaccurate monitoring data, failing to meet the requirements of refined water quality monitoring. Utility Model Content
[0004] To achieve stable use and flexible monitoring, this application provides a water conservancy monitoring device for water conservancy projects.
[0005] The water conservancy monitoring device for water conservancy projects provided in this application adopts the following technical solution:
[0006] A water conservancy monitoring device for water conservancy projects includes a floating base, an equipment base mounted on the upper surface of the floating base, the equipment base being fixedly connected to the floating base, a load-bearing ring fixedly mounted on the lower surface of the floating base, an equipment box fixedly mounted on the upper surface of the equipment base, a detection platform horizontally arranged on the upper surface of the equipment box, a monitoring box and a camera assembly fixedly mounted on the upper surface of the detection platform, a riser base fixedly mounted at the center of the upper surface of the detection platform, a winding assembly mounted on the riser base, a detection rope wound on the winding assembly, and a water quality analyzer fixedly mounted on the lower end of the detection rope.
[0007] By adopting the above technical solution, the floating base provides buoyancy to the entire device, allowing it to float on the water surface. This enables it to be moved to a suitable location for monitoring using surface vessels or other equipment. The equipment base houses the equipment housing, which protects the internal equipment. The detection platform provides a mounting platform for the monitoring housing and imaging components, facilitating water quality monitoring and image capture. The winding assembly controls the depth of the water quality analyzer by winding and unwinding the detection rope, enabling the detection of water quality at different depths and improving the comprehensiveness and accuracy of the monitoring.
[0008] Optionally, the floating seat includes a central support frame and an annular buoyancy ring, wherein the central support frame is installed in the middle of the annular buoyancy ring and is fixedly connected to the annular buoyancy ring.
[0009] By adopting the above technical solution, the floating seat is designed as a combination structure of a central support frame and an annular buoyancy ring. The annular buoyancy ring provides greater buoyancy, ensuring the device floats stably on the water surface. The central support frame serves as a connection and support, making the entire floating seat structure more stable and enhancing the stability and reliability of the device.
[0010] Optionally, the central support frame includes a central tube and a support plate, the support plate being evenly installed on the outer side of the central tube, and both ends of the support plate being fixed to the central tube and the annular buoyancy ring, respectively.
[0011] By adopting the above technical solution, the central seat frame adopts a structure of central tube and support plate. The support plate is evenly distributed on the outer side of the central tube and fixedly connected to the annular buoyancy ring. This structure can effectively distribute the weight of the device, make the buoyancy distribution more uniform, further improve the stability of the floating seat, and ensure that the device operates smoothly on the water surface.
[0012] Optionally, the lower end face of the annular buoyancy ring is evenly provided with a plurality of positioning rods for mounting the load-bearing ring along the circumferential direction. The positioning rods are fixedly connected to the annular buoyancy ring, and the lower end of the positioning rods is integrally formed with a limit block.
[0013] By adopting the above technical solution, a positioning rod and a limiting block are set on the lower end face of the annular buoyancy ring, providing accurate positioning and reliable limiting for the installation of the load ring. The positioning rod can guide the load ring to be accurately installed in the designated position, while the limiting block prevents the load ring from falling off during use, ensuring the stability and safety of the load ring installation.
[0014] Optionally, the load-bearing ring is provided with a plurality of arc-shaped grooves evenly distributed along the circumferential direction for mounting the positioning rods, and one end of the arc-shaped groove is provided with a large-diameter groove for inserting and mounting the limiting block.
[0015] By adopting the above technical solution, an arc-shaped groove and a large-diameter groove are opened on the load ring, which cooperate with the positioning rod and limiting block on the annular buoyancy ring. During installation, the limiting block is inserted into the large-diameter groove, and then the load ring is rotated to allow the positioning rod to enter the arc-shaped groove, realizing the quick installation and disassembly of the load ring. This design facilitates the replacement and maintenance of the load ring and improves work efficiency.
[0016] Optionally, the equipment base includes a base frame and supporting side plates. The base frame is fixedly installed on the upper end face of the central tube, and the supporting side plates are symmetrically installed on both sides of the base frame. The head of the supporting side plate is fixedly connected to the base frame, and the lower end of the supporting side plate is fixedly connected to the annular buoyancy ring.
[0017] By adopting the above technical solution, the equipment base uses a frame and supporting side plates. The frame is installed on the upper end face of the central tube, and the supporting side plates are symmetrically installed on both sides of the frame and fixedly connected to the annular buoyancy ring. This structure provides stable support for the equipment box, enhances the load-bearing capacity of the equipment base, and ensures the stability of the equipment box and its internal equipment.
[0018] Optionally, the riser base includes a long pipe, a top plate base, and a bottom plate base. The upper end of the long pipe extends from the upper surface of the testing platform, and the lower end of the long pipe extends from the lower surface of the equipment box. The top plate base and the bottom plate base are fixedly installed at the upper and lower ends of the long pipe.
[0019] By adopting the above technical solution, the long pipe of the riser base runs through the testing platform and the equipment box, with the top plate and bottom plate fixed to the upper and lower ends of the long pipe, respectively. The long pipe provides a channel for the testing rope, facilitating its deployment and retraction. The top plate and bottom plate serve to fix and support the riser base, ensuring its stability and enabling the winding assembly to operate normally.
[0020] Optionally, the winding assembly includes a support frame, a winding roller, and a drive motor for rotating the winding roller. The support frame is vertically fixed to the upper end face of the top plate seat, the winding roller is rotatably mounted on the support frame, and the drive motor is fixedly mounted to the upper end face of the top plate seat.
[0021] By adopting the above technical solution, the winding assembly uses a structure of a support frame, a winding roller, and a drive motor. The drive motor drives the winding roller to rotate, realizing the winding and unwinding of the detection rope. The support frame provides support and a mounting position for the winding roller, ensuring its stable rotation. This structural design makes depth adjustment of the water quality analyzer more convenient and faster, improving the efficiency of monitoring work.
[0022] In summary, this application includes at least one of the following beneficial technical effects: By setting a weighted ring and rationally designing the structure of the floating seat, this application enables the device to have good stability on the water surface, resisting the effects of water flow fluctuations and waves, reducing the risk of swaying and tipping, and ensuring the accuracy of monitoring data. The winding assembly can easily control the depth of the water quality analyzer, facilitating the testing of water quality at different depths. Simultaneously, the rational structural design of each component facilitates operation and maintenance by staff, reducing labor intensity and maintenance costs. The weighted ring adopts a positioning rod and arc-shaped groove installation method, and the structural design of components such as the equipment base and riser base also facilitates installation and disassembly, which is beneficial for equipment replacement and upgrades, improving work efficiency. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall structure in an embodiment of this application.
[0024] Figure 2 yes Figure 1 The diagram shows a perspective view of the device without the winding assembly installed.
[0025] Figure 3 yes Figure 2 The device shown is viewed from below.
[0026] Figure 4 yes Figure 1 The diagram shows a perspective view of the device without the winding assembly and load ring installed.
[0027] Figure 5 This is a perspective view of the load-bearing ring in the embodiments of this application.
[0028] Explanation of reference numerals in the attached drawings: 1. Floating seat; 10. Weight ring; 101. Arc-shaped groove; 102. Large diameter groove; 11. Middle seat frame; 111. Central tube; 112. Support plate; 12. Annular buoyancy ring; 121. Positioning rod; 122. Limiting block; 2. Equipment seat; 21. Seat frame; 22. Support side plate; 3. Equipment box; 4. Detection platform; 5. Monitoring box; 6. Imaging assembly; 7. Riser seat; 71. Long through pipe; 72. Top plate seat; 73. Base plate seat; 8. Winding assembly; 80. Detection rope; 81. Support frame; 82. Winding roller; 83. Drive motor; 9. Water quality analyzer. Detailed Implementation
[0029] The present application will be further described in detail below with reference to the accompanying drawings.
[0030] This application discloses a water conservancy monitoring device for water conservancy projects. (Refer to...) Figure 1 , Figure 2 and Figure 3As shown, a water conservancy monitoring device for water conservancy projects includes a floating base 1, an equipment base 2 mounted on the upper surface of the floating base 1, and the equipment base 2 fixedly connected to the floating base 1. A load-bearing ring 10 is also fixedly mounted on the lower surface of the floating base 1. An equipment box 3 is fixedly mounted on the upper surface of the equipment base 2. A detection platform 4 is horizontally arranged on the upper surface of the equipment box 3. A monitoring box 5 and an imaging component 6 are fixedly mounted on the upper surface of the detection platform 4. A riser base 7 is also fixedly mounted at the center of the upper surface of the detection platform 4. A winding component 8 is mounted on the riser base 7, and a detection rope 80 is wound on the winding component 8. A water quality analyzer 9 is fixedly mounted at the lower end of the detection rope 80. The floating base 1 provides buoyancy for the entire device, allowing it to float on the water surface. This allows it to be moved to a suitable position for testing using equipment such as boats. The equipment base 2 is used to mount the equipment box 3, which protects the internal equipment. The detection platform 4 provides a mounting platform for the monitoring box 5 and the imaging component 6, facilitating water quality monitoring and image capture. The winding assembly 8 can control the depth of the water quality analyzer 9 by winding and unwinding the detection rope 80, thereby detecting water quality at different depths and improving the comprehensiveness and accuracy of monitoring.
[0031] Reference Figure 2 and Figure 3 As shown, the floating seat 1 includes a central frame 11 and an annular buoyancy ring 12. The central frame 11 is installed in the middle of the annular buoyancy ring 12 and is fixedly connected to it. Designing the floating seat 1 as a combination of the central frame 11 and the annular buoyancy ring 12 allows the annular buoyancy ring 12 to provide significant buoyancy, ensuring the device floats stably on the water surface. The central frame 11 serves as a connector and support, making the entire floating seat 1 structure more stable and enhancing the stability and reliability of the device. The central frame 11 includes a central tube 111 and a support plate 112. The support plate 112 is evenly installed on the outer surface of the central tube 111, and both ends of the support plate 112 are fixed to the central tube 111 and the annular buoyancy ring 12, respectively. The central support frame 11 adopts a structure of central tube 111 and support plate 112. The support plate 112 is evenly distributed on the outer side of the central tube 111 and fixedly connected to the annular buoyancy ring 12. This structure can effectively distribute the weight of the device, make the buoyancy distribution more uniform, further improve the stability of the floating seat 1, and ensure that the device operates smoothly on the water surface.
[0032] Reference Figure 4 and Figure 5As shown, the lower end face of the annular buoyancy ring 12 is evenly provided with a plurality of positioning rods 121 for mounting the load ring 10 along the circumferential direction. The positioning rods 121 are fixedly connected to the annular buoyancy ring 12, and the lower end of the positioning rods 121 is also integrally formed with a limiting block 122. The positioning rods 121 and the limiting block 122 on the lower end face of the annular buoyancy ring 12 provide accurate positioning and reliable limiting for the installation of the load ring 10. The positioning rods 121 can guide the load ring 10 to be accurately installed in the designated position, while the limiting block 122 prevents the load ring 10 from falling off during use, ensuring the stability and safety of the installation of the load ring 10. The load ring 10 is evenly provided with a plurality of arc-shaped grooves 101 for mounting the positioning rods 121 along the circumferential direction. One end of the arc-shaped grooves 101 is provided with a large-diameter groove 102 for the limiting block 122 to be inserted and installed. The load-bearing ring 10 has an arc-shaped groove 101 and a large-diameter groove 102, which cooperate with the positioning rod 121 and the limiting block 122 on the annular buoyancy ring 12. During installation, the limiting block 122 is inserted into the large-diameter groove 102, and then the load-bearing ring 10 is rotated to allow the positioning rod 121 to enter the arc-shaped groove 101, thus enabling quick installation and removal of the load-bearing ring 10. This design facilitates the replacement and maintenance of the load-bearing ring 10 and improves work efficiency.
[0033] Reference Figure 4 As shown, the equipment base 2 includes a base frame 21 and supporting side plates 22. The base frame 21 is fixedly installed on the upper end face of the central tube 111, and the supporting side plates 22 are symmetrically installed on both sides of the base frame 21. The head of the supporting side plate 22 is fixedly connected to the base frame 21, and the lower end of the supporting side plate 22 is fixedly connected to the annular buoyancy ring 12. The equipment base 2 adopts a structure of base frame 21 and supporting side plates 22. The base frame 21 is installed on the upper end face of the central tube 111, and the supporting side plates 22 are symmetrically installed on both sides of the base frame 21 and fixedly connected to the annular buoyancy ring 12. This structure can provide stable support for the equipment box 3, enhance the load-bearing capacity of the equipment base 2, and ensure the stability of the equipment box 3 and its internal equipment.
[0034] Reference Figure 4 As shown, the riser base 7 includes a long tube 71, a top plate base 72, and a bottom plate base 73. The upper end of the long tube 71 extends from the upper surface of the detection platform 4, and the lower end of the long tube 71 extends from the lower surface of the equipment box 3. The top plate base 72 and the bottom plate base 73 are fixedly installed at the upper and lower ends of the long tube 71. By designing the riser base 7 with a structure in which the long tube 71, the top plate base 72, and the bottom plate base 73 cooperate, the long tube 71 of the riser base 7 passes through the detection platform 4 and the equipment box 3, and the top plate base 72 and the bottom plate base 73 are respectively fixed at the upper and lower ends of the long tube 71. The long tube 71 provides a channel for the detection rope 80, facilitating the winding and unwinding of the detection rope 80. The top plate base 72 and the bottom plate base 73 serve to fix and support, ensuring the stability of the riser base 7 and enabling the winding assembly 8 to work normally.
[0035] Reference Figure 1As shown, the winding assembly 8 includes a support frame 81, a winding roller 82, and a drive motor 83 that drives the winding roller 82 to rotate. The winding assembly 8 is designed with the support frame 81, winding roller 82, and drive motor 83 working together. The support frame 81 is vertically fixed to the upper surface of the top plate 72, the winding roller 82 is rotatably mounted on the support frame 81, and the drive motor 83 is fixedly mounted on the upper surface of the top plate 72. The winding assembly 8 uses the structure of the support frame 81, winding roller 82, and drive motor 83. The drive motor 83 can drive the winding roller 82 to rotate, realizing the winding and unwinding of the detection rope 80. The support frame 81 provides support and a mounting position for the winding roller 82, ensuring the stable rotation of the winding roller 82. This structural design makes the depth adjustment of the water quality analyzer 9 more convenient and faster, improving the efficiency of monitoring work.
[0036] The implementation principle of a water conservancy monitoring device for water conservancy projects according to this application embodiment is as follows: During use, the entire monitoring device is placed on the water surface. The floating seat 1 provides buoyancy, allowing the device to float. Equipment vessels or other mobile devices then tow it to the corresponding monitoring location for monitoring and detection operations. A drive motor 83 drives the roller 82 to rotate, raising and lowering the detection rope 80, controlling the depth of the water quality analyzer 9, and detecting water quality at different depths. The monitoring box 5 processes and analyzes the data collected by the water quality analyzer 9 and transmits the data to a remote monitoring center via a communication module. The imaging component 6 captures images of the water surface and surrounding environment, providing intuitive image information for the monitoring and management of water conservancy projects.
[0037] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A water conservancy monitoring device for water conservancy projects, comprising a floating base (1), characterized in that: The upper end face of the floating seat (1) is equipped with an equipment seat (2), which is fixedly connected to the floating seat (1). The lower end face of the floating seat (1) is also fixedly equipped with a load ring (10). The upper end face of the equipment seat (2) is fixedly equipped with an equipment box (3). The upper end face of the equipment box (3) is horizontally equipped with a detection platform (4). The upper end face of the detection platform (4) is fixedly equipped with a monitoring box (5) and a shooting component (6). The center of the upper end face of the detection platform (4) is also fixedly equipped with a riser seat (7). The riser seat (7) is equipped with a winding component (8). The winding component (8) is wound with a detection rope (80). The lower end of the detection rope (80) is fixedly equipped with a water quality monitor (9).
2. The water conservancy monitoring device for water conservancy projects according to claim 1, characterized in that: The floating seat (1) includes a central seat frame (11) and an annular buoyancy ring (12). The central seat frame (11) is installed in the middle of the annular buoyancy ring (12), and the central seat frame (11) is fixedly connected to the annular buoyancy ring (12).
3. A water conservancy monitoring device for water conservancy projects according to claim 2, characterized in that: The central support frame (11) includes a central tube (111) and a support plate (112). The support plate (112) is evenly installed on the outer side of the central tube (111), and the two ends of the support plate (112) are fixed to the central tube (111) and the annular buoyancy ring (12) respectively.
4. A water conservancy monitoring device for water conservancy projects according to claim 3, characterized in that: The lower end face of the annular buoyancy ring (12) is uniformly provided with a number of positioning rods (121) for mounting the load ring (10) along the circumferential direction. The positioning rods (121) are fixedly connected to the annular buoyancy ring (12), and the lower end of the positioning rods (121) is also integrally formed with a limit block (122).
5. A water conservancy monitoring device for water conservancy projects according to claim 4, characterized in that: The load ring (10) is provided with a number of arc-shaped grooves (101) evenly distributed along the circumferential direction for the installation of positioning rods (121). One end of the arc-shaped groove (101) is provided with a large-diameter groove (102) for the insertion and installation of limiting blocks (122).
6. A water conservancy monitoring device for water conservancy projects according to claim 5, characterized in that: The equipment base (2) includes a base frame (21) and a support side plate (22). The base frame (21) is fixedly installed on the upper end face of the central tube (111). The support side plate (22) is symmetrically installed on both sides of the base frame (21), and the head of the support side plate (22) is fixedly connected to the base frame (21). The lower end of the support side plate (22) is fixedly connected to the annular buoyancy ring (12).
7. A water conservancy monitoring device for water conservancy projects according to claim 6, characterized in that: The riser base (7) includes a long pipe (71), a top plate base (72) and a bottom plate base (73). The upper end of the long pipe (71) extends from the upper surface of the testing platform (4), and the lower end of the long pipe (71) extends from the lower surface of the equipment box (3). The top plate base (72) and the bottom plate base (73) are fixedly installed at the upper and lower ends of the long pipe (71).
8. A water conservancy monitoring device for water conservancy projects according to claim 7, characterized in that: The winding assembly (8) includes a support frame (81), a winding roller (82), and a drive motor (83) for driving the winding roller (82) to rotate. The support frame (81) is vertically fixed on the upper end face of the top plate seat (72). The winding roller (82) is rotatably mounted on the support frame (81). The drive motor (83) is fixedly mounted on the upper end face of the top plate seat (72).