Pollution discharge water source monitoring equipment
By designing a water collection cylinder, weighting blocks, and calibration probes, and combining them with components such as filters, backup batteries, and beacon lights, the complexity of data calibration and real-time detection in wastewater source monitoring equipment has been solved, enabling rapid and accurate water quality testing and convenient operation.
Patent Information
- Application Number
- CN202422907602.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-27
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-11-27
AI Technical Summary
Existing wastewater source monitoring equipment is complex and time-consuming to operate during data calibration and real-time detection, and there are data transmission deviations that affect the accuracy and reliability of the data.
A wastewater source monitoring device was designed, comprising a water collection cylinder, a weighting block, a cylinder cover, an analyzer, a wastewater probe, a calibration probe, a water purification bottle, and a traction rope. The device is calibrated using a water purification bottle and a calibration probe system. The weighting block is used to quickly lower the device for testing. The device is also equipped with a filter screen, a spare battery, a grid indicator light, and a grounding pin to ensure data accuracy and convenient operation.
It enables rapid and accurate water quality testing, ensures data precision, simplifies the operation process, provides convenient recycling and positioning functions in complex environments, and improves the equipment's real-time data acquisition capabilities.
Smart Images

Figure CN223500993U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a monitoring device, and more particularly to a wastewater source monitoring device. Background Technology
[0002] Wastewater source monitoring equipment typically refers to specialized instruments or systems used to detect the content of pollutants in water bodies and their overall water quality. In practical applications, these monitoring devices are widely used in various fields, including but not limited to environmental protection, wastewater treatment in industrial production processes, and agricultural irrigation water quality management. By continuously monitoring water quality, not only can pollution accidents be effectively prevented, but the rational use and management of water resources can also be promoted. In addition, the monitoring results can help formulate more scientific and reasonable environmental protection policies, playing an indispensable role in promoting the sustainable development of society and economy and maintaining the balance of the natural ecosystem.
[0003] In the early days, water quality monitoring mainly relied on traditional laboratory analysis methods, which were not only time-consuming and costly, but also unable to achieve real-time monitoring. However, with the continuous development of sensor technology and automation control technology, online monitoring equipment has been widely used. These devices can collect water quality data in real time and transmit the information to a central data center for processing via wireless networks. The application of Internet of Things (IoT) technology has further enhanced remote monitoring capabilities. By connecting water quality sensors to the Internet, unified management and instant response to multiple monitoring points have been achieved. In recent years, the emergence of portable water quality analyzers has also facilitated rapid on-site testing, improving the flexibility and efficiency of monitoring work. Since deviations may occur during data transmission, multiple verification measures are usually adopted to ensure the accuracy and reliability of the data. For example, multiple tests or cross-verification using different devices are used to ensure that the data obtained by the recipient is correct. This approach increases the complexity of the operation and the time required.
[0004] Therefore, it is necessary to design a wastewater source monitoring device to solve the above-mentioned technical problems. Utility Model Content
[0005] To overcome the drawbacks of increased operational complexity and time required due to the need for more accurate data, the technical problem to be solved is to provide a wastewater source monitoring device.
[0006] The technical solution of this utility model is: a wastewater source monitoring device, including a water collection cylinder, a weight block, a cylinder cover, an analyzer, a wastewater probe, a calibration probe, a water purification bottle, and a traction rope. The water collection cylinder has an inlet and an outlet. The weight block is fixedly connected to the lower part of the water collection cylinder. The cylinder cover is threadedly connected to the upper part of the water collection cylinder. The analyzer is installed inside the cylinder cover. The wastewater probe is installed below the analyzer. The calibration probe is installed on the other side of the lower part of the analyzer. Both the wastewater probe and the calibration probe pass through the cylinder cover. The wastewater probe and the calibration probe are electrically connected to the analyzer. The water purification bottle is rotatably connected to the lower part of the cylinder cover, and the calibration probe is located inside the water purification bottle. The traction rope is wrapped around the upper part of the cylinder cover.
[0007] As a preferred option, the traction rope is made of nylon.
[0008] As a preferred option, a filter screen is also included, with a filter screen fixedly connected to both the inlet and outlet.
[0009] Preferably, a backup battery is also included, with a backup battery installed on the top of the analyzer and electrically connected to the analyzer.
[0010] Preferably, it also includes a net marker light, a reel, and a wiping cotton. The net marker light is installed on the upper part of the tube cover. The end of the traction rope away from the tube cover is fixedly connected to the reel. The excess part of the traction rope is wound inside the reel. The wiping cotton is fixedly attached to the front of the reel, and the traction rope passes through the wiping cotton.
[0011] Preferably, it also includes a grounding pin, with the grounding pin fixedly connected to the lower part of the winding reel.
[0012] The beneficial effects of this utility model are as follows: 1. This utility model performs calibration by pouring clean water into a water purifier bottle. The calibration probe transmits the collected data to the sensor to calibrate the system and ensure the accuracy of subsequent water quality testing. When the device is dropped into the water, the built-in weight-increasing block allows the device to sink quickly to the target testing area, thereby starting water quality testing.
[0013] 2. This utility model uses filter screens installed at the inlet and outlet to block impurities, ensuring more accurate data. A backup battery provides timely power to the analyzer to prevent power outages from affecting real-time data. Wear-resistant nylon is used as the traction rope to ensure that it is not easily deformed in humid environments, making it easy to retrieve quickly and stably.
[0014] 3. The design of this utility model of the net marker light can quickly locate the position of the device at night or when visibility is poor due to fog on the water surface. The device can be quickly and easily retrieved with the help of the reel. When fixing the device, the grounding pin is used to make the fixing process more convenient. Attached Figure Description
[0015] Figure 1This is a three-dimensional structural diagram of the present invention.
[0016] Figure 2 This is a three-dimensional structural diagram of the weighting block, analyzer, and wastewater probe of this utility model.
[0017] Figure 3 This is a three-dimensional structural diagram of the weight-adding block, analyzer, and backup battery of this utility model.
[0018] Figure 4 This is a three-dimensional structural diagram of the cap, traction rope, and net marker light of this utility model.
[0019] Figure 5 This is a three-dimensional structural diagram of the winding reel, wiping cotton, and grounding needle of this utility model.
[0020] Reference numerals: 1_Water collection cylinder, 2_Water inlet, 3_Water outlet, 4_Weighting block, 5_Cylinder cover, 6_Analyzer, 7_Sewage probe, 8_Calibration probe, 9_Water purification bottle, 10_Traction rope, 11_Filter screen, 12_Spare battery, 13_Net marker light, 14_Roller, 15_Wiping cotton, 16_Grounding pin. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.
[0022] Example: Figures 1-5 As shown, the device includes a water collection cylinder 1, a weighting block 4, a cylinder cover 5, an analyzer 6, a wastewater probe 7, a calibration probe 8, a water purification bottle 9, and a traction rope 10. The water collection cylinder 1 has an inlet 2 and an outlet 3. The weighting block 4 is welded to the bottom of the water collection cylinder 1. The cylinder cover 5 is threadedly connected to the top of the water collection cylinder 1. The analyzer 6 is installed inside the cylinder cover 5 by screws. The wastewater probe 7 is installed on the bottom left side of the analyzer 6 by screws. The calibration probe 8 is installed on the bottom right side of the analyzer 6 by screws. Both the wastewater probe 7 and the calibration probe 8 pass through the cylinder cover 5 and are electrically connected to the analyzer 6. The water purification bottle 9 is threadedly connected to the bottom right side of the cylinder cover 5, and the calibration probe 8 is located inside the water purification bottle 9. The traction rope 10 is wrapped around the top of the cylinder cover 5. The traction rope 10 is made of nylon.
[0023] In use, first turn the cap 5 clockwise to open the water collection cylinder 1. Then, turn the water purification bottle 9 clockwise and pour clean water into it. Next, turn the bottle 9 counter-clockwise to tighten it. The calibration probe 8 checks the water in the bottle 9 and transmits the data to the analyzer 6. After confirming the calibration is correct, turn the cap 5 counter-clockwise to ensure the water collection cylinder 1 is sealed tightly. Then, place the device into the specific water source to be tested and secure the traction rope 10 to the shore. Since the device is equipped with a specific weight-adding block 4, the weight of the weight-adding block 4 is related to the buoyancy of the device. The forces are equal, causing the device to sink quickly in the water without completely sinking to the bottom. When the device enters the water source to be tested, water will quickly flow into the water collection tank 1 through the inlet 2 and outlet 3 until the water collection tank 1 is completely filled. At this time, the sewage probe 7 begins to test the water quality. The data obtained from the test will be transmitted to the analyzer 6 through the sewage probe 7. Then, the analyzer 6 will send the processed analysis results to a remote data center via a wireless network for further real-time processing and analysis. After the entire testing process is completed, the device can be easily retrieved by pulling the traction rope 10.
[0024] like Figure 1 and Figure 3 As shown, it also includes a filter screen 11, and filter screens 11 are welded onto both the inlet 2 and the outlet 3.
[0025] like Figure 1 and Figure 3 As shown, it also includes a backup battery 12. The backup battery 12 is installed on the top of the analyzer 6 by screws and is electrically connected to the analyzer 6.
[0026] like Figure 1 and Figure 4 As shown, it also includes a mesh light 13, a reel 14, and a wiping cotton 15. The mesh light 13 is installed on the top of the tube cover 5 by screws. The end of the traction rope 10 away from the tube cover 5 is tied to the reel 14. The excess part of the traction rope 10 is wound inside the reel 14. The wiping cotton 15 is pasted on the front side of the reel 14, and the traction rope 10 passes through the wiping cotton 15.
[0027] like Figure 1 and Figure 5 As shown, it also includes a grounding pin 16, and the bottom of the winding reel 14 is fixedly connected to the grounding pin 16.
[0028] To prevent issues arising from a lack of suitable locations for securing the traction rope 10, it can be fixed at the deployment site by inserting a grounding pin 16 into the ground. Furthermore, to prevent large algae and other floating debris from affecting data detection, both the inlet 2 and outlet 3 are equipped with filters 11 to prevent algae and other floating debris from entering the collection tank 1, ensuring the reliability and accuracy of water quality monitoring. To prevent the analyzer 6 from being affected by a sudden power outage during operation, the system is equipped with a backup battery 12. In the event of a power failure in the analyzer 6, the backup battery 12 immediately provides power and supplies it to the data center. Sending alarm messages reminds staff to retrieve the equipment in time. In situations where visibility is poor at night or due to fog on the water surface, the net marker light 13 on the device can more clearly mark the location of the device, making it easier to locate. When the test is completed or the device needs to be retrieved, the grounding pin 16 is pulled out of the ground, and then the winding reel 14 is turned clockwise to easily and quickly retrieve the device. During the retrieval of the traction rope 10, the traction rope 10 must pass through the wiping cotton 15. The wiping cotton 15 effectively removes the floating matter adsorbed on the traction rope 10, ensuring that the retrieved traction rope 10 is clean and tidy.
[0029] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.
Claims
1. A wastewater source monitoring device, characterized in that: The device includes a water collection cylinder (1), a weight block (4), a cylinder cover (5), an analyzer (6), a wastewater probe (7), a calibration probe (8), a water purification bottle (9), and a traction rope (10). The water collection cylinder (1) has an inlet (2) and an outlet (3). The weight block (4) is fixedly connected to the lower part of the water collection cylinder (1). The cylinder cover (5) is threadedly connected to the upper part of the water collection cylinder (1). The analyzer (6) is installed inside the cylinder cover (5). The wastewater probe (7) is installed at the lower part of the analyzer (6). The calibration probe (8) is installed on the other side of the lower part of the analyzer (6). Both the wastewater probe (7) and the calibration probe (8) pass through the cylinder cover (5). The wastewater probe (7) and the calibration probe (8) are electrically connected to the analyzer (6). The water purification bottle (9) is rotatably connected to the lower part of the cylinder cover (5). The calibration probe (8) is located inside the water purification bottle (9). The traction rope (10) is wrapped around the upper part of the cylinder cover (5).
2. The wastewater source monitoring device as described in claim 1, characterized in that: The traction rope (10) is made of nylon.
3. The wastewater source monitoring device as described in claim 2, characterized in that: It also includes a filter screen (11), and the filter screen (11) is fixedly connected to both the inlet (2) and the outlet (3).
4. The wastewater source monitoring device as described in claim 3, characterized in that: It also includes a backup battery (12), which is installed on the top of the analyzer (6) and is electrically connected to the analyzer (6).
5. The wastewater source monitoring device as described in claim 4, characterized in that: It also includes a net marker light (13), a reel (14) and a wiping cotton (15). The net marker light (13) is installed on the upper part of the tube cover (5). The end of the traction rope (10) away from the tube cover (5) is fixedly connected to the reel (14). The excess part of the traction rope (10) is wound inside the reel (14). The wiping cotton (15) is fixedly attached to the front of the reel (14), and the traction rope (10) passes through the wiping cotton (15).
6. The wastewater source monitoring device as described in claim 5, characterized in that: It also includes a grounding pin (16), and the lower part of the winding reel (14) is fixedly connected to the grounding pin (16).