Water quality monitoring cabinet based on Internet of Things

By designing a modular frame structure water quality monitoring cabinet that integrates multiple sensors and disinfection pumps, the environmental pollution problem caused by the construction of water quality monitoring stations has been solved, achieving flexibility and real-time water quality monitoring, and ensuring stable operation and functional upgrades of the equipment.

CN223827568UActive Publication Date: 2026-01-23SUZHOU HENGYUAN HUAJIAN INFORMATION TECH CO LTD
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Patent Information

Application Number
CN202520035349.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-08
Publication Date
2026-01-23
Estimated Expiration
2035-01-08

AI Technical Summary

Technical Problem

The construction of existing water quality monitoring stations causes environmental pollution and is difficult to maintain flexibly, affecting the continuity and practicality of water quality monitoring.

Method used

Design an IoT-based water quality monitoring cabinet with a modular frame structure that integrates a turbidity sensor, a pH sensor, a wireless communication unit, and a disinfection pump. This enables real-time data transmission and automatic alarms for water quality anomalies. The cabinet is made of aluminum for easy transportation and maintenance.

Benefits of technology

It achieves the goal of eliminating the need for large amounts of building materials, reducing environmental pollution, improving the flexibility and real-time nature of water quality monitoring, and ensuring the long-term stable operation and functional upgrades of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a water quality monitoring cabinet based on Internet of Things, which belongs to the field of water quality monitoring and comprises a frame, a cabinet top and a cabinet bottom are connected to the upper surface and the lower surface of the frame, a back plate is connected to one side of the upper surface of the cabinet bottom, and a partition plate is fixedly mounted at the bottom of the surface of one side of the back plate. Vertical plates are arranged on the two sides of the surface of one side of the partition plate, a guide ring is connected to the position, close to the middle of the two vertical plates, of the partition plate, and a base is fixedly installed on an inner bottom arm of the guide ring through bolts. And in the aspects of subsequent equipment maintenance, part replacement, function upgrading and the like, good operability and adaptability are shown, a powerful guarantee is provided for long-term stable operation of the whole water quality monitoring cabinet, and the situation that when the water quality of a drainage basin does not need to be monitored subsequently, a large amount of waste construction waste is likely to be left is avoided.
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Description

TECHNICAL FIELD

[0001] The utility model relates to water quality monitoring technical field, concretely is a water quality monitoring cabinet based on internet of things. BACKGROUND

[0002] Water quality monitoring is the "eyes" of water resources protection, and is an important basic work, can timely, accurately, comprehensively reflect water quality present situation and development trend, can provide important, direct scientific basis for water environment research, management, pollution control etc.

[0003] In order to facilitate the on-site water quality monitoring of river, lake and river basin, generally, the monitoring station will be built beside the above basin, can be used for the continuous automatic monitoring of the water quality change of measured water body, objectively records water quality condition, timely finds water quality abnormal change, and then realizes water quality pollution forecast to the basin or downstream, studies water body diffusion, self purification law etc., but the construction of a monitoring station not only needs to use a large amount of building materials, is easy to cause pollution to the water quality of surrounding basin in the construction process, and when subsequent water quality of the basin needs to be monitored, a large amount of construction waste is left, unnecessary pollution to the environment is caused.

[0004] Therefore, the utility model provides a water quality monitoring cabinet based on internet of things to solve the above problems. UTILITY MODEL CONTENT

[0005] (I) technical problem solved

[0006] The utility model provides a water quality monitoring cabinet based on internet of things, aims at solving the problems in the background art.

[0007] (II) technical scheme

[0008] To realize the above purpose, the utility model provides the following technical scheme: including frame, the upper surface and the lower surface of frame are connected with cabinet top and cabinet bottom, the upper surface one side of cabinet bottom is connected with backboard, the bottom of the surface of one side of backboard is fixedly installed with baffle, both sides of the surface of one side of baffle are equipped with vertical plate, the middle part of baffle close to two vertical plates is connected with guide ring, the inner bottom arm of guide ring is fixedly installed with pedestal through bolt, the upper surface middle part of pedestal is equipped with through -hole, the upper surface of pedestal is fixedly installed with base, the outer arc surface bottom of base is connected with bottom cover through screw thread, the inner arc surface top of bottom cover is electrically connected with control unit, the outer arc surface of control unit is installed in the inner arc surface of base, and is electrically connected with monitoring assembly.

[0009] As a preferred technical solution of the present application, the upper surface of the base is provided with a plurality of holes, the monitoring assembly comprises a turbidity sensor screwed in the holes, and the base is screwed with a PH sensor in the hole close to the turbidity sensor.

[0010] As a preferred technical solution of the present application, the base is connected with a wireless communication unit on the side away from the PH sensor, the wireless communication unit is connected with the control unit, and the outer arc surface of the base cover is connected with the through hole of the base.

[0011] As a preferred technical solution of the present application, the lower surface of the base is fixedly installed with a filter at the through hole, one side of the filter is connected with a pipe opening, one end of the pipe opening is connected with a first pipeline, and one end of the pipe opening is connected with a collection barrel through the first pipeline.

[0012] As a preferred technical solution of the present application, the collection barrel is placed on the surface of the cabinet bottom, the outer arc surface of the first pipeline is connected with a second pipeline, one end of the second pipeline is connected with a disinfection pump, and one side of the disinfection pump is fixedly installed on the back plate.

[0013] As a preferred technical solution of the present application, the frame is fixedly installed with a side plate on both sides, the frame is connected with a door plate on the front side, the partition plate is connected to the frame and divides the frame into an upper chamber and a lower chamber, and a ventilation hole is formed in the bottom of the surface of one side of the door plate.

[0014] (Three) beneficial effects

[0015] 1. The frame assembly and the combined structure design are not only conducive to flexible operation in the production and manufacturing link, but also have good operability and adaptability in subsequent equipment maintenance, part replacement and function upgrading, thereby providing a powerful guarantee for long-term stable operation of the whole water quality monitoring cabinet and avoiding the situation that a large amount of construction waste is left behind when the water quality in the basin does not need to be monitored.

[0016] 2. The monitoring assembly can transmit the collected data to a remote data center or monitoring platform in real time, so that relevant personnel can be notified immediately once the water quality changes abnormally, and timely measures can be taken to realize the practicability and continuity of water quality monitoring. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 It is a structure diagram of a whole water quality monitoring cabinet based on Internet of Things;

[0018] Figure 2 It is a structure diagram of a frame disassembly of a water quality monitoring cabinet based on Internet of Things;

[0019] Figure 3It is a kind of based on the monitoring assembly and disinfection pump assembly structure schematic diagram of water quality monitoring cabinet of internet of things;

[0020] Figure 4 It is a kind of based on the monitoring assembly disassembly structure schematic diagram of water quality monitoring cabinet of internet of things;

[0021] Figure 5 It is a kind of based on the overall plane structure schematic diagram of water quality monitoring cabinet of internet of things.

[0022] In the figure:

[0023] 1, frame;101, cabinet top;102, cabinet bottom;103, back plate;104, side plate;105, door plate;106, air vent;2, partition;201, vertical plate;3, guide ring;4, base;5, base;6, bottom cover;7, control unit;8, monitoring assembly;801, turbidity sensor;802, PH sensor;803, wireless communication unit;9, filter;10, pipe opening;11, collection barrel;12, first pipeline;13, second pipeline;14, disinfection pump. DETAILED DESCRIPTION

[0024] The technical scheme in the embodiments of the present application will be described clearly and completely below with reference to 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 labor fall within the scope of protection of the present application.

[0025] The present application provides a kind of water quality monitoring cabinet, as Figures 1 to 5 As shown, turbidity sensor 801 is screwed in the hole, PH sensor 802 is screwed in the hole close to turbidity sensor 801 on base 5, wireless communication unit 803 is connected to the side away from PH sensor 802 on base 5, wireless communication unit 803 is connected to control unit 7, the outer arc surface of bottom cover 6 is connected to the through hole of base 4, filter 9 is fixedly installed at the through hole of the lower surface of base 4, pipe opening 10 is connected to one side of filter 9, first pipeline 12 is connected to one end of pipe opening 10, collection barrel 11 is connected to one end of pipe opening 10 through first pipeline 12, collection barrel 11 is placed on the surface of cabinet bottom 102, second pipeline 13 is connected through the outer arc surface of first pipeline 12, disinfection pump 14 is connected to one end of second pipeline 13, disinfection pump 14 is fixedly installed on the side of back plate 103.

[0026] The wireless communication unit 803 can be a WIFI module or a communication unit that can enable the control unit 7 to receive control instructions from an external server. Of course, the control unit 7 can also send the monitoring data monitored by the intelligent water quality monitoring assembly 8 to the external server. The control instructions can be control instructions for operating the disinfection pump 14 or instructions for controlling the control unit 7 to control the monitoring assembly 8 to work to obtain monitoring data. Therefore, the user can send control instructions for intelligent water quality monitoring to the server by connecting the server, and also can obtain the water quality data of the monitored water through the server.

[0027] The turbidity sensor 801 is a sensor specially used for monitoring the turbidity of water. The working principle of the sensor is that the sensor is internally provided with an infrared light pair tube. When the light passes through a certain amount of water, the amount of light transmitted depends on the turbidity of the water. The more turbid the water is, the less light is transmitted. The light receiving end converts the intensity of the transmitted light into a corresponding current size. The more light is transmitted, the larger the current is. Conversely, the less light is transmitted, the smaller the current is. By measuring the size of the current at the receiving end, the turbidity of the water can be calculated. If the turbidity of the water exceeds the preset range, the water being monitored can contain too many impurities and is not suitable for drinking.

[0028] The PH sensor 802 is a sensor used for monitoring the hydrogen ion concentration in the measured object and converting it into a corresponding available output signal. In the present embodiment, the PH sensor 802 can be used for monitoring the acidity and alkalinity of water. When the monitored pH value exceeds the preset range, the water can be contaminated, and the control unit 7 can make a judgment that the water is not suitable for drinking.

[0029] The monitoring data of the water quality is sent to the control unit 7. After receiving the monitoring data, the control unit 7 can send control instructions to the disinfection pump 14 to disinfect the water in the container, so that through the Internet of Things technology, the monitoring assembly 8 can transmit the collected data to a remote data center or monitoring platform in real time. Once the water quality changes abnormally, the relevant personnel can be immediately notified to take timely measures, realizing the practicability and continuity of the water quality.

[0030] The upper and lower surfaces of frame 1 are connected to cabinet top 101 and cabinet bottom 102. A back panel 103 is connected to one side of the upper surface of cabinet bottom 102. A partition 2 is fixedly installed at the bottom of one side of the back panel 103. Vertical plates 201 are provided on both sides of one side of the partition 2. A guide ring 3 is connected to the middle of the partition 2 near the two vertical plates 201. A base 4 is fixedly installed on the inner bottom arm of the guide ring 3 by bolts. A through hole is opened in the middle of the upper surface of the base 4. A base 5 is fixedly installed on the upper surface of the base 4. The bottom of the outer arc surface of the base 5 is connected to the bottom cover 6 by a thread. The top of the inner arc surface of the bottom cover 6 is electrically connected to the control unit 7. The outer arc surface of the control unit 7 is installed in the inner arc surface of the base 5 and is electrically connected to the monitoring component 8. The upper surface of the base 5 has multiple holes. Side plates 104 are fixedly installed on both sides of the frame 1. A door panel 105 is connected to one side of the front of the frame 1. The partition 2 is connected to the inside of the frame 1 and divides the frame 1 into an upper chamber and a lower chamber. A ventilation hole 106 is opened at the bottom of one side surface of the door panel 105.

[0031] Furthermore, the monitoring component 8 in the monitoring cabinet is flexibly placed, allowing it to be positioned in chambers at different heights depending on the water quality environment, thus enabling targeted monitoring operations. The cabinet body is constructed from a frame 1 made of aluminum, a material choice that contributes to the cabinet's lightweight nature, making transportation, installation, and subsequent maintenance more convenient and efficient. Notably, the frame 1 is not a one-piece molding process, but rather an assembly of the cabinet top 101, cabinet bottom 102, back panel 103, and side panels 104. This modular structural design not only facilitates flexible operation in the manufacturing process but also demonstrates excellent operability and adaptability in subsequent equipment maintenance, parts replacement, and functional upgrades, providing a strong guarantee for the long-term stable operation of the entire water quality monitoring cabinet.

[0032] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A water quality monitoring cabinet based on the Internet of Things, comprising a frame (1), characterized in that: The upper and lower surfaces of the frame (1) are connected to a cabinet top (101) and a cabinet bottom (102). A back plate (103) is connected to one side of the upper surface of the cabinet bottom (102). A partition (2) is fixedly installed on the bottom of one side of the back plate (103). Vertical plates (201) are provided on both sides of one side of the partition (2). A guide ring (3) is connected to the middle of the two vertical plates (201) near the partition (2). A base (4) is fixedly installed on the inner bottom arm of the guide ring (3) by bolts. A through hole is opened in the middle of the upper surface of the base (4). A base (5) is fixedly installed on the upper surface of the base (4). A bottom cover (6) is connected to the bottom of the outer arc surface of the base (5) by threads. A control unit (7) is electrically connected to the top of the inner arc surface of the bottom cover (6). The outer arc surface of the control unit (7) is installed in the inner arc surface of the base (5) and is electrically connected to a monitoring component (8).

2. The water quality monitoring cabinet based on the Internet of Things according to claim 1, characterized in that: The upper surface of the base (5) has multiple holes, and the monitoring component (8) includes a turbidity sensor (801) threaded into the holes. A pH sensor (802) is threaded into the hole of the base (5) near the turbidity sensor (801).

3. The water quality monitoring cabinet based on the Internet of Things according to claim 2, characterized in that: The base (5) is connected to a wireless communication unit (803) on the side away from the PH sensor (802). The wireless communication unit (803) is connected to the control unit (7). The outer arc surface of the bottom cover (6) is connected to the through hole opened in the base (4).

4. A water quality monitoring cabinet based on the Internet of Things according to claim 3, characterized in that: A filter (9) is fixedly installed at the through hole on the lower surface of the base (4). A pipe port (10) is connected to one side of the filter (9). One end of the pipe port (10) is connected to a first pipe (12). One end of the pipe port (10) is connected to a collection bucket (11) through the first pipe (12).

5. A water quality monitoring cabinet based on the Internet of Things according to claim 4, characterized in that: The collection bucket (11) is placed on the surface of the cabinet bottom (102). The outer arc surface of the first pipe (12) is connected to the second pipe (13). One end of the second pipe (13) is connected to the disinfection pump (14). One side of the disinfection pump (14) is fixedly installed on the back plate (103).

6. A water quality monitoring cabinet based on the Internet of Things according to claim 1, characterized in that: Side plates (104) are fixedly installed on both sides of the frame (1). A door panel (105) is connected to one side of the front of the frame (1). The partition (2) is connected to the inside of the frame (1) and divides the frame (1) into an upper chamber and a lower chamber. A ventilation hole (106) is opened at the bottom of one side surface of the door panel (105).