Floating ball type water quality monitoring device

Through the matrix distribution and floating rod connection of the float water quality monitoring device, combined with solar cells and wireless communication, the problem of the floating device affecting the monitoring accuracy due to position fluctuations is solved, and high-precision and continuous water quality monitoring are achieved.

CN223123000UActive Publication Date: 2025-07-18NOVA FITNESS CO LTD
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Patent Information

Application Number
CN202422667472.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-01
Publication Date
2025-07-18
Estimated Expiration
2034-11-01

AI Technical Summary

Technical Problem

The existing floating water quality monitoring device changes position due to fluctuations in the water environment, which affects the accuracy of the monitoring results and cannot achieve continuous monitoring of designated areas.

Method used

The floating ball structure is distributed in a matrix and connected by a floating rod. The floating ball is equipped with a water quality monitoring sensor. A solar cell and a controller are installed on the floating platform. The controller is connected to the wireless communication device to form an overall structure to reduce position fluctuations and perform partition monitoring through the matrix distribution.

Benefits of technology

It improves the accuracy and accuracy of water quality monitoring, ensures continuous monitoring and zoning monitoring of the water areas to be tested, and ensures the smooth progress of water body monitoring.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a floating ball type water quality monitoring device which comprises floating ball structures, the floating ball structures are distributed in a matrix mode, the adjacent floating ball structures are connected through floating rods, water quality monitoring sensors and a floating platform are arranged in the floating ball structures, a solar cell is fixedly connected to the floating platform through a frame body, and a controller is installed on the floating platform. The controller is connected with the water quality monitoring sensors in all the floating ball structures, and the controller is connected with a monitoring host through a wireless communication device; all the floating ball structures are connected together through the floating rod to form an integral structure, so that the position fluctuation of the floating ball structures can be reduced, the monitoring precision of the water quality monitoring sensor on a water body is improved, a water area to be monitored can be continuously monitored, and the floating ball structures distributed in a matrix manner can monitor the water area to be monitored in a partitioned manner; the accuracy of water body monitoring is further improved, and smooth proceeding of water body monitoring work is guaranteed.
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Description

Technical Field

[0001] The utility model relates to the technical field of water quality monitoring, and particularly relates to a floating ball type water quality monitoring device. Background Technique

[0002] The purpose of water area environment monitoring is to obtain the water quality structure and its change law of the water area in all time periods, and it has wide applications in ecological protection, environment, and water conservancy projects. At present, the commonly used water quality monitoring device adopts a buoy structure to float on the water surface to be measured, and a water quality sensor is installed on the buoy structure to monitor this water area. However, the water environment is generally unstable, and large-scale fluctuations of the water body often occur due to waves, resulting in changes in the position of the buoy structure, affecting the accuracy of the monitoring results, and unable to achieve continuous monitoring of the specified area. Moreover, when monitoring multiple areas in the water area environment, the fluctuations of the buoy structure will also affect the development of the monitoring work.

[0003] Therefore, this application proposes a floating ball type water quality monitoring device to solve the above problems. Content of the Utility Model

[0004] The technical problem to be solved by the utility model is: to provide a floating ball type water quality monitoring device with small position fluctuation and high monitoring accuracy.

[0005] To solve the above technical problem, the utility model includes a floating ball structure. The floating ball structures are distributed in a matrix, and adjacent floating ball structures are connected by floating rods. A water quality monitoring sensor is arranged inside the floating ball structure, a floating platform, a solar cell is fixedly connected to the floating platform through a frame body, and a controller is installed on the floating platform. The controller is connected to the water quality monitoring sensors in all floating ball structures, and the controller is connected to a monitoring host through a wireless communication device.

[0006] Preferably, the floating ball structure includes a hollow floating ball. A flat cut is arranged on the hollow floating ball, and a flat plate is fixedly connected at the flat cut. A retractable net cover structure is installed on the flat plate, and the water quality monitoring sensor is installed inside the net cover structure.

[0007] Preferably, the net cover structure includes an outer net cover and an inner net cover. The inner net cover is fixedly connected to the flat plate, the outer net cover is sleeved outside the inner net cover and is slidably connected to the inner net cover along the axial direction, and the water quality monitoring sensor is arranged at the bottom of the outer net cover.

[0008] Preferably, a plurality of inner support rods arranged along the axial direction are circumferentially distributed on the side wall of the inner net cover, a plurality of outer support rods arranged along the axial direction are circumferentially distributed on the side wall of the outer net cover, the outer support rods are arranged corresponding to the inner support rods, elastic buttons are arranged on the inner support rods, a plurality of through holes arranged at equal intervals are arranged along the length direction of the outer support rods, and the elastic buttons are clamped with the through holes.

[0009] Preferably, the periphery of the floating platform is fixedly connected to the floating rods, and the floating platform is arranged in the middle of the floating ball structures distributed in a matrix.

[0010] Preferably, the solar cell includes a solar panel and a storage battery. The solar panel is connected to the storage battery through a controller, and the storage battery supplies power to the controller and the water quality monitoring sensor.

[0011] Preferably, the frame body is a conical frame structure. The bottom of the frame body is fixedly connected to the periphery of the floating platform. The solar panels are arranged around and on the top surface of the frame body, enclosing a sealed space on the top surface of the floating platform.

[0012] The beneficial effects of the present utility model are as follows: The present utility model connects all the floating ball structures together through the floating rods to form an integral structure, which can reduce the position fluctuation of the floating ball structures, improve the monitoring accuracy of the water quality monitoring sensor for the water body, and can continuously monitor the water area to be measured. Moreover, the floating ball structures distributed in a matrix can monitor the water area to be measured in zones, further improving the accuracy of water body monitoring and ensuring the smooth progress of water body monitoring work. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 is a three-dimensional schematic diagram of the overall structure of the present utility model;

[0014] Figure 2 is a cross-sectional schematic diagram of the floating ball mechanism of the present utility model;

[0015] Figure 3 is a schematic diagram of the floating platform structure of the present utility model;

[0016] Figure 4 is Figure 3 a cross-sectional schematic diagram.

[0017] In the figure: 1, floating ball structure; 101, hollow floating ball; 102, flat cut; 103, flat plate; 104, mesh cover structure; 1041, outer mesh cover; 1042, inner mesh cover; 1043, inner support rod; 1044, outer support rod; 1045, elastic button; 1046, through hole; 2, floating rod; 3, water quality monitoring sensor; 4, floating platform; 5, frame body; 6, controller; 7, wireless communication device; 8, solar panel; 9, storage battery. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0018] The technical solutions in the embodiments of the present utility model will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present utility model. All directional indications (such as up, down, left, right, front, back...) in the present utility model are only used to explain the relative positional relationship and movement conditions between components in a specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly.

[0019] As Figures 1-4 shown, this embodiment provides a floating ball type water quality monitoring device, including a floating ball structure 1. The floating ball structures 1 are distributed in a matrix, and adjacent floating ball structures 1 are connected by floating rods 2. A floating ball structure 1 is placed in each water area to be monitored. The floating rods 2 are used to connect all the floating ball structures 1 together to form an overall structure, so as to improve the ability to resist water waves. At the same time, for shallow water areas, the floating rods 2 can be fixed to the bottom of the water or the shore through ropes to fix the position of the floating ball structure 1 to ensure the accuracy of monitoring. And a water quality monitoring sensor 3 is arranged in each floating ball structure 1. The floating rods 2 connected between the four floating rod structures distributed in a rectangle enclose a rectangular structure. A floating platform 4 is arranged in this rectangular structure. The floating platform 4 is fixedly connected to the floating rods 2. A solar cell is fixedly connected to the floating platform 4 through a frame 5. And a controller 6 is installed on the floating platform 4. The controller 6 is connected to the water quality monitoring sensors 3 in all the floating ball structures 1. The controller 6 is connected to a monitoring host through a wireless communication device 7. The monitoring host is connected to a monitoring panel for real-time display of the monitoring screen, so as to realize remote monitoring of the water area to be measured.

[0020] In order to further improve the monitoring effect, an image sensor can also be fixed on the floating platform 4 for real-time monitoring of the picture of the water area to be measured. This part is a conventional structure and will not be described in detail here.

[0021] The floating ball structure 1 includes a hollow floating ball 101. A flat cut 102 is arranged on the hollow floating ball 101, and a flat plate 103 is fixedly connected at the flat cut 102. The flat plate 103 is used to seal the flat cut 102 so that the inside of the hollow floating ball 101 remains hollow and sealed. A retractable net cover structure 104 is installed on the flat plate 103. The water quality monitoring sensor 3 is installed in the net cover structure 104. The retractable net cover structure 104 is convenient for adjusting the monitoring depth of the water quality monitoring sensor 3 for the water area to be measured. At the same time, the net cover structure 104 can filter debris in the water to prevent the debris from blocking the water inlet of the water quality monitoring sensor 3.

[0022] Specifically, the mesh structure 104 includes an outer mesh 1041 and an inner mesh 1042. The inner mesh 1042 is fixedly connected to the flat plate 103. The outer mesh 1041 is sleeved outside the inner mesh 1042 and is slidably connected to the inner mesh 1042 along the axial direction. The water quality monitoring sensor 3 is arranged at the bottom of the outer mesh 1041. A plurality of inner support rods 1043 arranged along the axial direction are circumferentially distributed on the side wall of the inner mesh 1042. A plurality of outer support rods 1044 arranged along the axial direction are circumferentially distributed on the side wall of the outer mesh 1041. The outer support rods 1044 are arranged corresponding to the inner support rods 1043. Elastic buttons 1045 are arranged on the inner support rods 1043. A plurality of through holes 1046 arranged at equal intervals are arranged along the length direction of the outer support rods 1044. The elastic buttons 1045 are clamped with the through holes 1046. Slide the outer mesh 1041 to make the elastic buttons 1045 on the inner support rods 1043 on the inner mesh 1042 be clamped with the through holes 1046 on the outer support rods 1044 on the outer mesh 1041, so as to fix the inner mesh 1042 and the outer mesh 1041 together and complete the adjustment of the monitoring water depth.

[0023] The floating platform 4 is arranged in the middle of the matrix-distributed floating ball structures 1, which can minimize the wire connection length. The solar battery includes a solar panel 8 and a storage battery 9. The solar panel 8 is connected to the storage battery 9 through a controller 6. The storage battery 9 supplies power to the controller 6 and the water quality monitoring sensor 3. And the frame body 5 is a conical frame structure. The bottom of the frame body 5 is fixedly connected to the periphery of the floating platform 4. The solar panels 8 are arranged around and on the top surface of the frame body 5, enclosing a sealed space on the top surface of the floating platform 4, which can maximize the utilization of solar energy. At the same time, the solar panels 8 can seal the internal controller 6, storage battery 9 and wireless communication device 7 to prevent water ingress.

[0024] Its working principle is as follows: All the floating ball structures 1 are connected together by the floating rods 2 to form an integral structure, which can reduce the position fluctuation of the floating ball structures 1, improve the monitoring accuracy of the water quality monitoring sensor 3 for the water body, and can continuously monitor the water area to be measured. And the matrix-distributed floating ball structures 1 can monitor the water area to be measured in zones, further improving the accuracy of water body monitoring and ensuring the smooth progress of water body monitoring work.

[0025] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A floating ball type water quality monitoring device, comprising a floating ball structure, characterized in that, The floating ball structures are distributed in a matrix, and adjacent floating ball structures are connected by floating rods. A water quality monitoring sensor is arranged inside the floating ball structure, a floating platform, and a solar cell is fixedly connected to the floating platform through a frame body. A controller is installed on the floating platform. The controller is connected to the water quality monitoring sensors in all floating ball structures, and the controller is connected to a monitoring host through a wireless communication device.

2. The floating ball type water quality monitoring device according to claim 1, characterized in that, The floating ball structure includes a hollow floating ball. A flat cut is provided on the hollow floating ball, and a flat plate is fixedly connected at the flat cut. A retractable mesh cover structure is installed on the flat plate, and the water quality monitoring sensor is installed inside the mesh cover structure.

3. The floating ball type water quality monitoring device according to claim 2, characterized in that, The mesh cover structure includes an outer mesh cover and an inner mesh cover. The inner mesh cover is fixedly connected to the flat plate. The outer mesh cover is sleeved outside the inner mesh cover and is slidably connected to the inner mesh cover along the axial direction. The water quality monitoring sensor is arranged at the bottom of the outer mesh cover.

4. The floating ball type water quality monitoring device according to claim 3, characterized in that, A plurality of axially arranged inner support rods are circumferentially distributed on the side wall of the inner mesh cover. A plurality of axially arranged outer support rods are circumferentially distributed on the side wall of the outer mesh cover. The outer support rods are arranged corresponding to the inner support rods. Elastic buttons are arranged on the inner support rods. A plurality of through holes are arranged at equal intervals along the length direction of the outer support rods. The elastic buttons are clamped with the through holes.

5. The floating ball type water quality monitoring device according to claim 1, characterized in that, The periphery of the floating platform is fixedly connected to the floating rods, and the floating platform is arranged in the middle of the floating ball structures distributed in a matrix.

6. A floating ball type water quality monitoring device according to any one of claims 1-5, characterized in that, The solar cell includes a solar panel and a storage battery. The solar panel is connected to the storage battery through a controller. The storage battery supplies power to the controller and the water quality monitoring sensors.

7. The floating ball type water quality monitoring device according to claim 6, characterized in that, The frame body is a conical frame structure. The bottom of the frame body is fixedly connected to the periphery of the floating platform. The solar panel is arranged around the frame body and on the top surface, enclosing a sealed space on the top surface of the floating platform.