Intelligent control water quality monitoring platform for anaerobic ammonia oxidation sewage treatment system

By designing an intelligent water quality monitoring platform for the anaerobic ammonia oxidation sewage treatment system, real-time data monitoring and analysis are achieved using the electronic control system and the water quality monitoring system, the problems of high monitoring costs and lagging parameter adjustment during the system operation are solved, and the stability and safety of the system are improved.

CN223016623UActive Publication Date: 2025-06-24BEIJING TANSI ENVIRONMENTAL PROTECTION TECHCO
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421767239.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-25
Publication Date
2025-06-24
Estimated Expiration
2034-07-25

AI Technical Summary

Technical Problem

During operation, the anaerobic ammonia oxidation sewage treatment system requires multiple monitoring instruments for real-time monitoring, which leads to high initial investment and maintenance costs, and it is difficult for operators to discover system problems in a timely and accurate manner, resulting in lagging operational parameter adjustments, affecting the stability and safety of the system.

Method used

Design an intelligent water quality monitoring platform for anaerobic ammonia oxidation sewage treatment system, including an electronic control system and a water quality monitoring system. The electronic control system includes multiple water quality monitoring instruments, PLC control systems and display operating screens. Through signal connection and real-time data display, real-time data transmission and monitoring are realized. The water quality monitoring system realizes comprehensive monitoring of water quality parameters through circulation troughs and multiple water quality monitoring probes.

Benefits of technology

It reduces the initial investment and operation costs of sewage treatment systems, improves the accuracy of water quality inspection, promptly discovers and reminds operators of potential problems, and ensures the stable and efficient operation of the system.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223016623U_ABST
    Figure CN223016623U_ABST
Patent Text Reader

Abstract

The utility model discloses an intelligent control water quality monitoring platform for an anaerobic ammonia oxidation sewage treatment system, and relates to the technical field of sewage treatment, the platform comprises an electric control system and a water quality monitoring system; the electric control system comprises a first water quality monitoring instrument, a second water quality monitoring instrument, a third water quality monitoring instrument, a PLC control system and a display operation screen; the first water quality monitoring instrument, the second water quality monitoring instrument and the third water quality monitoring instrument are in signal connection with the PLC control system, and signals are displayed through the display operation screen; the water quality monitoring system comprises a circulation tank, a circulation tank drainage pipeline, a pump front water inlet pipeline, a pump rear water outlet pipeline, a circulation tank water outlet pipe and a water pump; a plurality of water quality monitoring probes are arranged in the circulating groove, and each water quality monitoring probe is used for being connected with a water quality monitoring instrument. According to the invention, data monitored by each instrument can be analyzed, problems fed back by the data can be found in time, and an operator can be reminded to adjust operation parameters in time.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the technical field of sewage treatment, and particularly to an intelligent control water quality monitoring platform for an anaerobic ammonium oxidation sewage treatment system. Background Technique

[0002] The anaerobic ammonium oxidation process is the most advanced biological nitrogen removal process in the world. Under anaerobic conditions, ammonia is used as the electron donor and nitrite is used as the electron acceptor to react and generate nitrogen gas. The anaerobic ammonium oxidation nitrogen removal process has high nitrogen removal efficiency, high load, and does not require additional carbon sources for total nitrogen removal, greatly reducing the energy consumption and material consumption input during the nitrogen removal process, and reducing greenhouse gas emissions by more than 90%. It is currently the most economical and efficient sewage nitrogen removal technology, solving the disadvantages of traditional nitrification and denitrification processes such as high aeration energy consumption, dependence on additional carbon sources for total nitrogen removal, and large sludge production. However, the growth rate of anaerobic ammonium oxidation bacteria is very low (μ = 0.0027 h-1, doubling time is 10.6 d), and it is only active when the cell concentration > 1010 - 1011 cells / mL. To ensure the rapid enrichment of anaerobic ammonium oxidation bacteria, the rapid startup and stable operation of the sewage treatment system, and the timely adjustment of each operating parameter, a large number of monitoring instruments need to be configured to strictly monitor the main control parameters during the sewage treatment process, such as temperature, dissolved oxygen, pH, etc.; and the main water quality indicators, such as ammonia nitrogen, nitrate nitrogen, nitrite nitrogen, etc. The configuration of a large number of instruments in the sewage treatment system increases the initial investment cost of the sewage treatment system, and the maintenance and replacement of the instruments also increase the operating cost of the sewage treatment system. The quality of sewage treatment system operators at a deeper level is uneven, and they cannot timely, accurately, and sensitively discover the problems existing in the sewage treatment system from the data presented by a large number of instruments and the data changes, resulting in a lag in the adjustment of the operating parameters of the sewage treatment system and posing a hidden danger to the safe and stable operation of the sewage treatment system. Summary of the Invention

[0003] The purpose of this application is to provide an intelligent control water quality monitoring platform for an anaerobic ammonium oxidation sewage treatment system, which can provide reliable support for the stable operation of the anaerobic ammonium oxidation process sewage treatment system.

[0004] To achieve the above purpose, this application provides the following solutions:

[0005] In the first aspect, this application provides an intelligent control water quality monitoring platform for an anaerobic ammonium oxidation sewage treatment system, including: an electric control system and a water quality monitoring system.

[0006] The electric control system includes several water quality monitoring instruments, a PLC control system, and a display operation screen; the water quality monitoring instruments are signal-connected to the PLC control system and display the signals through the display operation screen.

[0007] The water quality monitoring system includes a flow tank, a flow tank drain pipe, a pump inlet pipe, a pump outlet pipe, a flow tank outlet pipe and a water pump; several water quality monitoring probes are arranged in the flow tank, and each water quality monitoring probe is used to connect to a water quality monitoring instrument.

[0008] Optionally, the flow tank includes: a flow tank outlet, a flow tank inlet, a flow tank drain, a liquid level switch, a first water quality monitoring probe, a second water quality monitoring probe and a third water quality monitoring probe.

[0009] The flow tank outlet is arranged above the flow tank inlet.

[0010] The flow tank drain is arranged at the bottom of the flow tank and is used to connect to the flow tank drain pipe; the liquid level switch is arranged inside the flow tank and is used to judge whether the water level in the flow tank reaches a preset threshold; the first water quality monitoring probe, the second water quality monitoring probe and the third water quality monitoring probe are evenly arranged in the flow tank and are used to monitor the water quality parameters in the flow tank.

[0011] Optionally, a first solenoid valve is installed on the flow tank drain pipe. One end of the flow tank drain pipe is connected to the flow tank drain, and the other end of the flow tank drain pipe is used for emptying.

[0012] Optionally, the pump inlet pipe includes at least two inlet pipes. A second solenoid valve is installed on the first inlet pipe, and a third solenoid valve is installed on the second inlet pipe. One ends of the second solenoid valve and the third solenoid valve are aggregated by a tee fitting and then connected to the inlet of the water pump; the other end of the second solenoid valve is connected to the No. 1 water quality monitoring point, and a filter is installed between the No. 1 water quality monitoring point and the second solenoid valve; the other end of the third solenoid valve is connected to the No. 2 water quality monitoring point, and a filter is installed between the No. 2 water quality monitoring point and the third solenoid valve. The No. 1 water quality monitoring point and the 2 No. water quality monitoring point is a monitoring point arranged in the water tank to be measured.

[0013] Optionally, the outlet of the water pump is connected to one end of the pump outlet pipe. The other end of the pump outlet pipe branches into two pipelines. One is installed with a fourth solenoid valve and the other is installed with a fifth solenoid valve; the other end of the fourth solenoid valve is emptied, and the fifth solenoid valve is connected to the flow tank inlet.

[0014] Optionally, one end of the flow tank outlet pipe is connected to the flow tank outlet, and the other end of the flow tank outlet pipe is emptied; the flow tank outlet pipe is disconnected in the middle for configuring a reducer to receive water.

[0015] Optionally, the electronic control system includes a first water quality monitoring meter, a second water quality monitoring meter and a third water quality monitoring meter; the first water quality monitoring probe is connected to the first water quality monitoring meter via a signal cable, the second water quality monitoring probe is connected to the second water quality monitoring meter via a signal cable, and the third water quality monitoring probe is connected to the third water quality monitoring meter via a signal cable, and after each water quality monitoring probe transmits the monitored data to the meter, the monitored data is displayed on the meter.

[0016] Optionally, the PLC control system is connected to the water pump, the first solenoid valve, the second solenoid valve, the third solenoid valve, the fourth solenoid valve and the fifth solenoid valve through cables; the PLC control system is used to control the start and stop and opening and closing of the water pump, the first solenoid valve, the second solenoid valve, the third solenoid valve, the fourth solenoid valve and the fifth solenoid valve.

[0017] Optionally, the PLC control system is connected to the display operation screen via a communication cable; the display operation screen can switch between a display operation interface, a process interface, a data recording interface and a data analysis interface.

[0018] According to the specific embodiments provided in this application, this application discloses the following technical effects:

[0019] The present application provides an anaerobic ammonia oxidation sewage treatment system intelligent control water quality monitoring platform, including an electric control system and a water quality monitoring system. The electric control system includes the first, second and third water quality monitoring instruments, each of which carries important water quality monitoring tasks, is closely connected to the core PLC control system, and displays the monitoring data to the operator in real time through the display operation screen. This signal connection method ensures the instant transmission and monitoring of data. In the water quality monitoring system, each link is closely connected, starting from taking water from the water quality monitoring point, through the water inlet pipe before the pump, the water pump, the water outlet pipe after the pump, the circulation tank, the water outlet pipe of the circulation tank, and then draining to the water quality monitoring point, forming a complete water flow circulation path. It is particularly worth mentioning that there are multiple precise water quality monitoring probes inside the circulation tank, each of which is connected to a water quality monitoring instrument to ensure all-round and multi-angle monitoring of water quality. The present application can conduct in-depth analysis of the data monitored by each instrument, so as to promptly discover potential problems fed back by the data. This not only improves the accuracy of water quality testing, but also quickly alerts operators when problems occur so that they can make necessary adjustments to operating parameters in a timely manner to ensure the stable and efficient operation of the entire system. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] To more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required in the embodiments. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0021] Figure 1 This is the internal structure diagram of the intelligent control water quality monitoring platform of an anaerobic ammonium oxidation sewage treatment system in an embodiment of the present application.

[0022] Figure 2 This is a cabinet diagram of a monitoring platform provided in an embodiment of the present application.

[0023] Figure 3 This is a schematic structural diagram of a flow-through tank provided in an embodiment of the present application.

[0024] Figure 4 This is a schematic structural diagram of a water quality monitoring system provided in an embodiment of the present application.

[0025] Figure 5 This is a system flow chart of the intelligent control water quality monitoring platform of an anaerobic ammonium oxidation sewage treatment system provided in an embodiment of the present application.

[0026] Symbol description:

[0027] Electric control system - 1, water quality monitoring system - 2, balance support feet - 3, rainproof cap - 4, first water quality monitoring instrument - 11, second water quality monitoring instrument - 12, third water quality monitoring instrument - 13, PLC control system - 14, display operation screen - 15, flow-through tank - 21, flow-through tank drainage pipe - 22, pump inlet pipe - 23, pump outlet pipe - 24, flow-through tank outlet pipe - 25, water pump - 26, flow-through tank water outlet - 211, flow-through tank water inlet - 212, flow-through tank drainage port - 213, liquid level switch - 214, first water quality monitoring probe - 215, second water quality monitoring probe - 216, third water quality monitoring probe - 217, first solenoid valve - 221, second solenoid valve - 231, third solenoid valve - 232, fourth solenoid valve - 241, fifth solenoid valve - 242. Specific embodiments

[0028] The following will clearly and completely describe the technical solutions in the embodiments of the present application with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some embodiments of the present application, rather than all embodiments. Based on the embodiments of the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present application.

[0029] To make the above objects, features, and advantages of the present application more apparent and understandable, the present application will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0030] In some exemplary embodiments, such as Figure 1 shown, a smart control water quality monitoring platform for an anaerobic ammonium oxidation sewage treatment system is provided, including: an electric control system 1 and a water quality monitoring system 2.

[0031] The electric control system 1 includes a first water quality monitoring instrument 11, a second water quality monitoring instrument 12, a third water quality monitoring instrument 13, a PLC control system 14, and a display operation screen 15; the first water quality monitoring instrument 11, the second water quality monitoring instrument 12, and the third water quality monitoring instrument 13 are signal-connected to the PLC control system 14, and the signals are displayed through the display operation screen 15.

[0032] The water quality monitoring system 2 includes a flow-through tank 21, a flow-through tank drain pipe 22, a pump inlet pipe 23, a pump outlet pipe 24, a flow-through tank outlet pipe 25, and a water pump 26; several water quality monitoring probes are provided in the flow-through tank 21, and each water quality monitoring probe is used to connect to a water quality monitoring instrument.

[0033] Specifically, as Figure 2 shown in the monitoring platform cabinet diagram, which belongs to the external cabinet of the entire monitoring platform, Space 1 - Electric control system 1, Space 2 - Water quality monitoring system 2; balance feet 3, when the platform is placed on an uneven ground, the entire monitoring platform can be made stable by adjusting the 3 - balance feet 3; rain caps 4, when the monitoring platform is placed outdoors, it can effectively prevent rain and water, ensuring the safe and stable operation of the electrical circuit system of the monitoring platform.

[0034] Specifically, as Figure 3 shown, the flow-through tank 21 includes: a flow-through tank outlet 211, a flow-through tank inlet 212, a flow-through tank drain 213, a liquid level switch 214, a first water quality monitoring probe 215, a second water quality monitoring probe 216, and a third water quality monitoring probe 217.

[0035] The flow-through tank outlet 211 is arranged above the flow-through tank inlet 212.

[0036] The flow-through tank drain 213 is arranged at the bottom of the flow-through tank 21 and is used to connect to the flow-through tank drain pipe 22; the liquid level switch 214 is arranged inside the flow-through tank 21 and is used to judge whether the water level in the flow-through tank 21 reaches a preset threshold; the first water quality monitoring probe 215, the second water quality monitoring probe 216, and the third water quality monitoring probe 217 are evenly arranged in the flow-through tank 21 and are used to monitor the water quality parameters in the flow-through tank 21.

[0037] Specifically, as Figure 4 shown, a first solenoid valve 221 is installed on the circulation tank drain pipe 22. One end of the circulation tank drain pipe 22 is connected to the circulation tank drain outlet 213, and the other end of the circulation tank drain pipe 22 is for emptying.

[0038] Among them, the pump inlet pipe 23 includes two inlet pipes. A second solenoid valve 231 is installed on the first inlet pipe, and a third solenoid valve 232 is installed on the second inlet pipe. One ends of the second solenoid valve 231 and the third solenoid valve 232 are aggregated by a tee fitting and then connected to the inlet of the water pump 26; the other end of the second solenoid valve 231 is connected to the No. 1 water quality monitoring point, and a filter is installed between the No. 1 water quality monitoring point and the second solenoid valve 231; the other end of the third solenoid valve 232 is connected to the No. 2 water quality monitoring point, and a filter is installed between the No. 2 water quality monitoring point and the third solenoid valve 232. The pump inlet pipe 23 can also be composed of more than two inlet pipes. The No. 1 water quality monitoring point and the 2 No. water quality monitoring point are monitoring points set in the water tank to be measured. In this embodiment, the No. 1 water quality monitoring point is set in the No. 1 water tank, and the No. 2 water quality monitoring point is set in the No. 2 water tank.

[0039] Among them, the branch is divided into two pipelines. One is installed with a fourth solenoid valve 241, and the other is installed with a fifth solenoid valve 242; the other end of the fourth solenoid valve 241 is emptied, and the fifth solenoid valve 242 is connected to the circulation tank inlet 212.

[0040] One end of the circulation tank outlet pipe 25 is connected to the circulation tank outlet 211, and the other end of the circulation tank outlet pipe 25 is emptied; the middle of the circulation tank outlet pipe 25 is disconnected for configuring a reducer to receive water.

[0041] In some embodiments, as Figure 5 shown, the first water quality monitoring probe 215 is connected to the first water quality monitoring instrument 11 through a signal cable, the second water quality monitoring probe 216 is connected to the second water quality monitoring instrument 12 through a signal cable, and the third water quality monitoring probe 217 is connected to the third water quality monitoring instrument 13 through a signal cable. After each water quality monitoring probe transmits the monitored data to the instrument, the monitored data is displayed on the instrument. The first water quality monitoring instrument 11, the second water quality monitoring instrument 12, and the third water quality monitoring instrument 13 are connected to the PLC control system 14 through signal cables to transmit the data to the PLC control system 14 for data display, recording, analysis, and processing.

[0042] The PLC control system 14 is connected to the water pump 26, the first solenoid valve 221, the second solenoid valve 231, the third solenoid valve 232, the fourth solenoid valve 241, and the fifth solenoid valve 242 through cables; the PLC control system 14 is used to control the start / stop and opening / closing of the water pump 26, the first solenoid valve 221, the second solenoid valve 231, the third solenoid valve 232, the fourth solenoid valve 241, and the fifth solenoid valve 242.

[0043] The PLC control system 14 is connected to the display operation screen 15 through a communication cable; the display operation screen 15 can switch to display operation interfaces, process interfaces, data recording interfaces, and data analysis interfaces.

[0044] Among them, when the monitoring platform is running, on the display operation screen 15, enter the operation interface, click on automatic operation, and the monitoring platform enters the automatic operation state. Start the water pump 26, and it remains in the on working state under the automatic operation state.

[0045] Step 1: Open the second solenoid valve 231, close the third solenoid valve 232, close the fifth solenoid valve 242, open the fourth solenoid valve 241, open the first solenoid valve 221, and the sewage circulates; the drain pipe 22 of the circulation tank drains the sewage in the circulation tank 21, and air enters the circulation tank 21 through the middle opening of the outlet pipe 25 of the circulation tank, otherwise the water cannot be discharged.

[0046] Step 2: After the liquid level switch 214 detects that the sewage in the circulation tank 21 has been drained, close the first solenoid valve 221, close the fourth solenoid valve 241, open the fifth solenoid valve 242, the sewage enters the circulation tank 21, and the gas in the barrel is discharged through the middle opening of the outlet pipe 25 of the circulation tank. At this time, the system is in the state of monitoring the water quality of Pool 1.

[0047] Step 3: After a set time, close the second solenoid valve 231, open the third solenoid valve 232, close the fifth solenoid valve 242, open the fourth solenoid valve 241, open the first solenoid valve 221, and the sewage circulates; the drain pipe 22 of the circulation tank drains the sewage in the circulation tank 21, and air enters the circulation tank 21 through the middle opening of the outlet pipe 25 of the circulation tank, otherwise the water cannot be discharged.

[0048] Step 4: After the liquid level switch 214 detects that the sewage in the circulation tank 21 has been drained, close the first solenoid valve 221, close the fourth solenoid valve 241, open the fifth solenoid valve 242, the sewage enters the circulation tank 21, and the gas in the barrel is discharged through the middle opening of the outlet pipe 25 of the circulation tank. At this time, the system is in the state of monitoring the water quality of Pool 2.

[0049] After a set number of hours, loop through Step 1, Step 2, Step 3, and Step 4.

[0050] The data records are shown in Tables 1 - 3 as follows:

[0051] Table 1: Data Record

[0052]

[0053]

[0054] Table 2: Data Record

[0055]

[0056] Table 3: Data Record

[0057]

[0058]

[0059] Among them, the description of the display operation screen 15 is as follows:

[0060] The following interfaces can be switched on the display operation screen 15: display operation interface, process interface, data record interface, data analysis interface.

[0061] On the display operation interface, the monitoring platform can be operated, and the water pump 26, the first solenoid valve 221, the second solenoid valve 231, the third solenoid valve 232, the fourth solenoid valve 241, and the fifth solenoid valve 242 can be manually opened and closed. It is also possible to operate to make the monitoring platform enter the automatic operation state.

[0062] On the process interface, the opening or closing states of the water pump 26, the first solenoid valve 221, the second solenoid valve 231, the third solenoid valve 232, the fourth solenoid valve 241, and the fifth solenoid valve 242 can be observed.

[0063] On the data record interface, each data record table can be displayed, and the recorded data of each instrument can be viewed.

[0064] On the data analysis interface, the data in the data record table is plotted as a line graph, and the fluctuation of water quality data can be observed. And the limit value can be set. When a certain water quality data exceeds the limit, a prompt appears; the monitoring platform will also analyze the operation state of the system according to the recorded data, and when the operation parameters need to be adjusted, a prompt appears. The operator can make adjustments to the anaerobic ammonium oxidation sewage treatment system according to the prompt.

[0065] In summary, the present application has the following beneficial effects:

[0066] In this application, a monitoring platform can monitor multiple groups of water tanks, eliminating the need to configure numerous instruments for each parallel water tank, reducing the initial investment cost and also the operation cost of instrument maintenance and replacement. Secondly, the monitoring platform can analyze the data monitored by each instrument, promptly detect operation problems reflected by the data, remind the operator to adjust the operation parameters in a timely manner, and provide reliable support for the stable operation of the anaerobic ammonium oxidation process sewage treatment system.

[0067] The technical features of the above embodiments can be combined arbitrarily. For the sake of brevity of description, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, it should be considered as the scope described in this specification.

[0068] Specific examples are used in this article to elaborate on the principle and implementation manner of this application. The description of the above embodiments is only used to help understand the method and its core idea of this application; at the same time, for those of ordinary skill in the art, according to the idea of this application, there will be changes in the specific implementation manner and application scope. In summary, the content of this specification should not be construed as a limitation to this application.

Claims

1. An intelligent water quality monitoring platform for anaerobic ammonium oxidation wastewater treatment system, characterized in that: An intelligent control water quality monitoring platform for anaerobic ammonium oxidation sewage treatment system, comprising: an electric control system and a water quality monitoring system; The electric control system includes several water quality monitoring instruments, a PLC control system and a display operation screen; the water quality monitoring instruments are connected to the PLC control system signals, and the signals are displayed through the display operation screen; The water quality monitoring system includes a circulation trough, a circulation trough drainage pipe, a water inlet pipe before the pump, a water outlet pipe after the pump, a circulation trough outlet pipe and a water pump; a plurality of water quality monitoring probes are arranged in the circulation trough, and each of the water quality monitoring probes is used to be connected to a water quality monitoring instrument.

2. According to claim 1, an anaerobic ammonium oxidation wastewater treatment system intelligent control water quality monitoring platform is characterized in that: The circulation slot comprises: a circulation slot water outlet, a circulation slot water inlet, a circulation slot drain outlet, a liquid level switch, a first water quality monitoring probe, a second water quality monitoring probe and a third water quality monitoring probe; The water outlet of the circulation slot is arranged above the water inlet of the circulation slot; The drainage outlet of the circulation trough is arranged at the bottom of the circulation trough, and is used to be connected to the drainage pipe of the circulation trough; the liquid level switch is arranged inside the circulation trough, and is used to determine whether the water level in the circulation trough reaches a preset threshold; the first water quality monitoring probe, the second water quality monitoring probe and the third water quality monitoring probe are evenly arranged in the circulation trough, and are used to monitor the water quality parameters in the circulation trough.

3. According to claim 2, an anaerobic ammonium oxidation wastewater treatment system intelligent control water quality monitoring platform is characterized in that: A first solenoid valve is installed on the drainage pipe of the circulation slot, one end of the drainage pipe of the circulation slot is connected to the drainage port of the circulation slot, and the other end of the drainage pipe of the circulation slot is used for emptying.

4. According to claim 3, an anaerobic ammonium oxidation wastewater treatment system intelligent control water quality monitoring platform is characterized in that: The front water inlet pipeline of the pump includes at least two water inlet pipelines, the first water inlet pipeline is installed with a second solenoid valve, and the second water inlet pipeline is installed with a third solenoid valve, and one end of the second solenoid valve and the third solenoid valve are connected to the water inlet of the water pump after being converged by a three-way pipe fitting; the other end of the second solenoid valve is connected to water quality monitoring point No. 1, and a filter is installed between water quality monitoring point No. 1 and the second solenoid valve; the other end of the third solenoid valve is connected to water quality monitoring point No. 2, and a filter is installed between water quality monitoring point No. 2 and the third solenoid valve; water quality monitoring point No. 1 and water quality monitoring point No. 2 are monitoring points set in the water pool to be tested.

5. According to claim 4, an anaerobic ammonium oxidation wastewater treatment system intelligent control water quality monitoring platform is characterized in that: The water outlet of the water pump is connected to one end of the water outlet pipe behind the pump, and the other end of the water outlet pipe behind the pump is branched into two pipelines, one of which is equipped with a fourth solenoid valve and the other is equipped with a fifth solenoid valve; the other end of the fourth solenoid valve is vented, and the fifth solenoid valve is connected to the water inlet of the circulation tank.

6. According to claim 5, an anaerobic ammonium oxidation wastewater treatment system intelligent control water quality monitoring platform is characterized in that: One end of the water outlet pipe of the circulation slot is connected to the water outlet of the circulation slot, and the other end of the water outlet pipe of the circulation slot is emptied; the water outlet pipe of the circulation slot is disconnected in the middle and is used to configure large and small heads for receiving water.

7. The intelligent control water quality monitoring platform for anaerobic ammonium oxidation wastewater treatment system according to claim 6 is characterized in that: The electronic control system includes a first water quality monitoring instrument, a second water quality monitoring instrument and a third water quality monitoring instrument; the first water quality monitoring probe is connected to the first water quality monitoring instrument via a signal cable, the second water quality monitoring probe is connected to the second water quality monitoring instrument via a signal cable, and the third water quality monitoring probe is connected to the third water quality monitoring instrument via a signal cable. After each water quality monitoring probe transmits the monitored data to the instrument, the monitored data is displayed on the instrument.

8. The intelligent control water quality monitoring platform for anaerobic ammonium oxidation wastewater treatment system according to claim 7 is characterized in that: The PLC control system is connected to the water pump, the first solenoid valve, the second solenoid valve, the third solenoid valve, the fourth solenoid valve and the fifth solenoid valve through cables; the PLC control system is used to control the start and stop and opening and closing of the water pump, the first solenoid valve, the second solenoid valve, the third solenoid valve, the fourth solenoid valve and the fifth solenoid valve.

9. The intelligent control water quality monitoring platform for anaerobic ammonium oxidation wastewater treatment system according to claim 8, characterized in that: The PLC control system is connected to the display operation screen via a communication cable; the display operation screen can switch between display operation interface, process interface, data recording interface and data analysis interface.