Integrated sewage and water system intelligent management and control system and method, electronic device and medium
By establishing an integrated intelligent management and control system for sewage and water systems, the problems of information barriers and data silos in urban sewage treatment systems have been solved, enabling data exchange and precise management and control between various systems and improving feedback efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- CHINA NORTHEAST MUNICIPAL ENGINEERING DESIGN AND RESEARCH INSTITUTE CO LTD
- Filing Date
- 2023-04-11
- Publication Date
- 2026-05-08
AI Technical Summary
The urban sewage treatment system suffers from problems such as poor communication, information barriers, data silos, and slow feedback, resulting in inconsistent regulatory data among various departments and making it difficult to achieve effective operation and management.
Establish an integrated intelligent management and control system for wastewater and water systems, including an intelligent management and control system for wastewater treatment plants, a wastewater pipeline monitoring system, an intelligent monitoring system for inland river water quality, and a comprehensive management and control center. Connect the various systems through communication ports to achieve centralized data analysis and monitoring and control.
It has enabled smooth communication of information and data between urban sewage and various water systems, supporting coordinated supervision and precise control throughout the entire life cycle, solving the problems of information barriers and data silos, and improving feedback efficiency.
Smart Images

Figure CN116715288B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of intelligent management and control technology for urban sewage and water systems, and in particular to integrated intelligent management and control systems, methods, electronic devices and media for sewage and water systems. Background Technology
[0002] The integrated intelligent management and control system, method, electronic equipment and media provided in this application can solve the problems of incoordination caused by poor communication, such as information barriers, data silos and slow feedback.
[0003] Given the aforementioned technologies, finding a method to integrate and manage the monitoring data of various departments in the wastewater treatment process is an urgent problem to be solved by those skilled in the art. Summary of the Invention
[0004] The purpose of this application is to provide an integrated intelligent management and control system, method, electronic equipment, and medium for wastewater and water systems. This system enables communication of information and data among various systems within the urban wastewater and water system, including the plant, network, and river, and allows for self-operational management and control based on comprehensive information.
[0005] To address the aforementioned technical issues, this application provides an integrated intelligent management and control system for wastewater and water systems, comprising an intelligent management and control system for wastewater treatment plants, a wastewater pipeline monitoring system, an intelligent monitoring system for inland river water quality, and a comprehensive management and control center;
[0006] Among them, the intelligent management and control system of the sewage treatment plant is connected to the comprehensive management and control center through the first communication port, which is used to send the first data analysis of the intelligent management and control system of the sewage treatment plant to the comprehensive management and control center;
[0007] The sewage pipeline network monitoring system is connected to the integrated control center through a second communication port, which is used to send the second data analysis results of the sewage pipeline network monitoring system to the integrated control center;
[0008] The intelligent inland water quality monitoring system connects to the integrated management and control center via a third communication port, which is used to send the third data analysis results of the intelligent inland water quality monitoring system to the integrated management and control center.
[0009] The integrated control center is used to monitor and control the operation of the intelligent control system for wastewater treatment plants, the wastewater pipeline monitoring system, and the intelligent monitoring system for inland river water quality based on the analysis of the first, second, and third data received.
[0010] Preferably, the intelligent management and control system for wastewater treatment plants includes: a perception layer, a network layer, and an application layer.
[0011] The perception layer is used to collect operational data from the wastewater treatment plant and transmit it to the network layer.
[0012] The network layer is used to analyze, judge, and issue early warnings based on the received operational data, and to obtain the initial data analysis results.
[0013] The application layer is used to display the initial data analysis results and send them to the integrated control center.
[0014] Preferably, the sewage pipe network monitoring system includes: a monitoring deployment module, a first data acquisition module, a first data processing module, a data analysis and diagnosis module, and a first early warning module.
[0015] The monitoring deployment module is used to acquire data collected by sensors corresponding to several monitoring points in the monitoring deployment unit and send the data collected by the sensors to the data acquisition module.
[0016] The first data acquisition module is used to comprehensively organize the data collected by several sensors and send the comprehensive data to the first data processing module.
[0017] The first data processing module is used to process the comprehensive and organized data to obtain the corresponding first processed data, and send the first processed data to the data analysis and diagnosis module.
[0018] The data analysis and diagnosis module is used to analyze and diagnose the first processed data to obtain the second data analysis results;
[0019] The first early warning module is used to determine the current early warning status of the system based on the second data analysis and to send the second data analysis to the integrated control center.
[0020] Preferably, the inland water quality intelligent monitoring system includes: a water quality monitoring node layout module, water quality monitoring sensors, a second data acquisition module, a second data processing module, a data analysis module, and a second early warning module.
[0021] The water quality monitoring node layout module is equipped with corresponding water quality monitoring sensors for several monitoring nodes.
[0022] Water quality monitoring sensors are used to acquire water quality data collected by water quality monitoring sensors and send water quality data corresponding to several monitoring nodes to the data acquisition module;
[0023] The second data acquisition module is used to collect water quality data corresponding to several monitoring nodes and send the collected data to the second data processing module.
[0024] The second data processing module is used to process the statistical data to obtain the second processed data, and then send the second processed data to the data analysis module.
[0025] The data analysis module is used to analyze the second processed data to obtain the third data analysis results, and then send the third data analysis results to the second early warning module.
[0026] The second early warning module is used to determine the current early warning status of the system based on the third data analysis and to send the third data analysis to the integrated control center.
[0027] To address the aforementioned issues, this application also provides an integrated intelligent management and control method for wastewater and water systems, applicable to an integrated intelligent management and control system for wastewater and water systems, comprising a wastewater treatment plant intelligent management and control system, a wastewater pipeline monitoring system, an inland river water quality intelligent monitoring system, and a comprehensive management and control center, including:
[0028] The wastewater treatment plant's initial data analysis is obtained through the intelligent management and control system, and then sent to the integrated management and control center.
[0029] The wastewater pipeline network monitoring system obtains the second data analysis of the wastewater pipeline network and sends the second data analysis to the integrated management and control center.
[0030] The third-party data analysis of inland waterways is obtained through the intelligent inland water quality monitoring system, and the third-party data analysis is sent to the integrated management and control center.
[0031] The integrated control center monitors and manages the operation of sewage treatment plants, sewage pipe networks, and inland rivers based on the analysis of the first, second, and third data received.
[0032] Preferably, the initial data analysis of the wastewater treatment plant is obtained through the intelligent management and control system of the wastewater treatment plant, including:
[0033] The system acquires real-time operating parameters of the wastewater treatment plant through a smart management and control system, analyzes and judges these parameters, diagnoses and warns of problems based on the analysis results, and obtains the initial data analysis of the wastewater treatment plant.
[0034] Preferably, the second data analysis of the sewage pipe network is obtained through the sewage pipe network monitoring system, including:
[0035] The sewage network monitoring system acquires data from sensors at several monitoring nodes in the sewage network. The data is then analyzed and judged, and the results are statistically compiled to obtain the second data analysis of the sewage network.
[0036] Preferably, the third data analysis of inland waterways is obtained through an intelligent inland water quality monitoring system, including:
[0037] The system acquires water quality data from water quality monitoring sensors at several monitoring nodes in the inland river, and analyzes and judges the water quality data collected by the sensors to obtain the third data analysis of the inland river.
[0038] To address the aforementioned problems, this application also provides an electronic device, including a memory for storing computer programs;
[0039] A processor is used to execute computer programs to implement integrated intelligent management and control methods for wastewater and water systems.
[0040] To address the aforementioned issues, this application also provides a computer-readable storage medium storing a computer program, wherein the computer program, when executed by a processor, implements the steps of an integrated intelligent management and control method for wastewater and water systems.
[0041] The integrated intelligent management and control system for wastewater and water systems provided in this application includes an intelligent management and control system for wastewater treatment plants, a wastewater pipeline monitoring system, an intelligent monitoring system for inland river water quality, and a comprehensive management and control center. The intelligent management and control system for wastewater treatment plants connects to the comprehensive management and control center via a first communication port to send its first data analysis results. The wastewater pipeline monitoring system connects to the comprehensive management and control center via a second communication port to send its second data analysis results. The intelligent monitoring system for inland river water quality connects to the comprehensive management and control center via a third communication port to send its third data analysis results. The comprehensive management and control center monitors and controls the operation of the intelligent management and control system for wastewater treatment plants, the wastewater pipeline monitoring system, and the intelligent monitoring system for inland river water quality based on the received first, second, and third data analysis results. The integrated intelligent management and control system for wastewater and water systems provided in this application can receive operational data from different parts of the urban wastewater and water system (plant, network, river) and control the operational parameters of different systems based on the data, enabling data exchange between systems at different stages through the comprehensive management and control center. Attached Figure Description
[0042] To more clearly illustrate the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0043] Figure 1 A block diagram of an integrated intelligent wastewater and water system management and control system provided in the embodiments of this application;
[0044] Figure 2 A block diagram of a smart management and control system for a wastewater treatment plant provided in an embodiment of this application;
[0045] Figure 3 A block diagram of a sewage pipeline monitoring system provided in an embodiment of this application;
[0046] Figure 4 A block diagram of an intelligent inland water quality monitoring system provided in an embodiment of this application;
[0047] Figure 5 A flowchart of an integrated intelligent management and control method for wastewater and water systems provided in another embodiment of this application;
[0048] Figure 6 A structural diagram of an electronic device provided in another embodiment of this application. Detailed Implementation
[0049] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this application.
[0050] The core of this application is to provide an integrated intelligent management and control system, method, electronic device, and medium for wastewater and water systems.
[0051] To enable those skilled in the art to better understand the present application, the present application will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0052] In summary, to address the issues of information barriers, data silos, and slow feedback in the management and control of decentralized point source sewage treatment plants in watershed water environments, as well as the monitoring of pipe networks and inland rivers, it is necessary to establish an integrated intelligent management and control system for sewage and water systems. This system would collect and process data on point source pollution, misconnected pipe networks, and inland river monitoring, develop and utilize cloud-based collaborative monitoring throughout the entire lifecycle, and enable intelligent analysis and precise control for comprehensive watershed management. Breaking down information barriers between urban sewage and comprehensive water system management is a problem that urgently needs to be solved by those skilled in the art.
[0053] Figure 1 The integrated intelligent management and control system for sewage and water systems provided in this application embodiment is shown in the figure. It includes an intelligent management and control system for sewage treatment plants, a sewage pipeline monitoring system, an intelligent monitoring system for inland river water quality, and a comprehensive management and control center.
[0054] Among them, the intelligent management and control system of the sewage treatment plant is connected to the comprehensive management and control center through the first communication port, which is used to send the first data analysis of the intelligent management and control system of the sewage treatment plant to the comprehensive management and control center;
[0055] The sewage pipeline network monitoring system is connected to the integrated control center through a second communication port, which is used to send the second data analysis results of the sewage pipeline network monitoring system to the integrated control center;
[0056] The intelligent inland water quality monitoring system connects to the integrated management and control center via a third communication port, which is used to send the third data analysis results of the intelligent inland water quality monitoring system to the integrated management and control center.
[0057] The integrated control center is used to monitor and control the operation of the intelligent control system for wastewater treatment plants, the wastewater pipeline monitoring system, and the intelligent monitoring system for inland river water quality based on the analysis of the first, second, and third data received.
[0058] In a specific embodiment, there are three systems: a smart management and control system for the wastewater treatment plant 1, a wastewater pipeline monitoring system 12, and an intelligent water quality monitoring system for inland rivers 30. Each system has a standard port and is ultimately connected to a comprehensive management and control center 11 for intelligent regulation, enabling joint control and regulation between the plant, pipeline, and inland river.
[0059] It should be noted that the intelligent management and control system 1 for the wastewater treatment plant can be set up with two ports: one for controlling the operation of the wastewater treatment plant from the central control room, and the other for controlling the operation from the integrated management and control center 11. The central control room only manages the process operation of the wastewater treatment plant intelligently and information-based, while the integrated management and control center 11 not only controls the operation of the wastewater treatment plant, but also integrates the monitoring data from the wastewater pipeline monitoring system 12 and the inland river water quality intelligent monitoring system 30 to control the operation of the wastewater treatment plant. For example, if there is a significant change in the water quality of the river section into which the wastewater is discharged, the integrated management and control center 11 can directly check whether the operation of the wastewater treatment plant is normal and whether the effluent water quality meets the standards. Then, based on the early warning system, the cause of the problem can be identified and a solution can be proposed.
[0060] The integrated intelligent management and control system for wastewater and water systems provided in this application includes an intelligent management and control system for wastewater treatment plants, a wastewater pipeline monitoring system, an intelligent monitoring system for inland river water quality, and a comprehensive management and control center. The intelligent management and control system for wastewater treatment plants connects to the comprehensive management and control center via a first communication port to send its first data analysis results. The wastewater pipeline monitoring system connects to the comprehensive management and control center via a second communication port to send its second data analysis results. The intelligent monitoring system for inland river water quality connects to the comprehensive management and control center via a third communication port to send its third data analysis results. The comprehensive management and control center monitors and controls the operation of the intelligent management and control system for wastewater treatment plants, the wastewater pipeline monitoring system, and the intelligent monitoring system for inland river water quality based on the received first, second, and third data analysis results. The integrated intelligent management and control system for wastewater and water systems provided in this application can receive operational data from different parts of the urban wastewater and water system (plant, network, and river), and control the operational parameters of different systems based on the data, enabling data exchange between systems at different stages through the comprehensive management and control center.
[0061] Based on the above embodiments, as a preferred embodiment, the intelligent management and control system for wastewater treatment plants includes: a perception layer, a network layer, and an application layer.
[0062] The perception layer is used to collect operational data from the wastewater treatment plant and transmit it to the network layer.
[0063] The network layer is used to analyze, judge, and issue early warnings based on the received operational data, and to obtain the initial data analysis results.
[0064] The application layer is used to display the initial data analysis results and send them to the integrated control center.
[0065] In a specific embodiment, such as Figure 2 As shown, the intelligent management and control system for wastewater treatment plants consists of: 1. Perception layer; 2. Data acquisition unit; 3. Data transmission unit; 4. Network layer; 5. Equipment status analysis unit; 6. Data analysis unit; 7. Diagnostic unit; 8. Application layer; 9. Water plant control center; 10. Integrated management and control center.
[0066] The intelligent management and control system for wastewater treatment plants comprises a perception layer (2), a network layer (5), and an application layer (9). The perception layer (2) primarily collects process operation data from the wastewater treatment plant. Equipment operating status and online monitoring data are transmitted via PLC and data acquisition unit (3) to the network layer (4) via internet communication. The types and frequency of collected data can be customized as needed. The network layer (5) includes an equipment status analysis unit (6), a data analysis unit (7), and a diagnostic unit (8). The equipment status analysis unit (6) records equipment information and maintenance records, monitors equipment operation in real time, and intelligently analyzes faulty equipment to determine the cause of the fault. The data analysis unit (7) intelligently analyzes the data transmitted from data transmission unit (4) to determine whether the process operation is normal and provides predictive results. After data calculation and analysis, the equipment status analysis unit (6) and data analysis unit (7) feed the data back to the diagnostic unit (8) for diagnosis, determining the cause of the problem, and making intelligent decisions. For example, if the dissolved oxygen value collected by the system is lower than the normal operating value of the process, or if the collected value is unstable, the system will analyze and diagnose the cause of the decreased dissolved oxygen value based on influent water quality data, online monitoring data of sludge concentration, and blower operating status data, listing all possible causes and proposing solutions. The diagnostic unit 8 analyzes and diagnoses the results and early warning information and transmits them to the application layer 9. The application layer 9 includes the water plant control center 10, and the water plant control center 10 and the integrated management and control center 11 can display information on mobile phones or computers, respectively. Water plant operators can use the information displayed in the water plant control center 10 to identify equipment failure points immediately and dispatch personnel for timely repairs. At the same time, based on the operational status analyzed by the diagnosis, they can make precise adjustments to equipment, aeration rate, and chemical dosage.
[0067] This application embodiment analyzes the operational data of its own wastewater treatment plant through a smart management and control system to determine its own status, and sends the first data analysis of its own status to the integrated management and control center to achieve data exchange.
[0068] Based on the above embodiments, as a preferred embodiment, the sewage pipe network monitoring system includes: a monitoring deployment module, a first data acquisition module, a first data processing module, a data analysis and diagnosis module, and a first early warning module.
[0069] The monitoring deployment module is used to acquire data collected by sensors corresponding to several monitoring points in the monitoring deployment unit and send the data collected by the sensors to the data acquisition module.
[0070] The first data acquisition module is used to comprehensively organize the data collected by several sensors and send the comprehensive data to the first data processing module.
[0071] The first data processing module is used to process the comprehensive and organized data to obtain the corresponding first processed data, and send the first processed data to the data analysis and diagnosis module.
[0072] The data analysis and diagnosis module is used to analyze and diagnose the first processed data to obtain the second data analysis results;
[0073] The first early warning module is used to determine the current early warning status of the system based on the second data analysis and to send the second data analysis to the integrated control center.
[0074] In a specific embodiment, such as Figure 3 As shown, the system includes: 12, a sewage pipeline monitoring system; 13, a monitoring layout module; 14, a first data acquisition module; 15, a first data processing module; 16, a data analysis and diagnosis module; 17, a first early warning module; 11, a comprehensive control center; 18, area monitoring points; 19, pipeline nodes; 20, a main pipeline network; 21, a liquid level monitoring sensor; 22, a water quality monitoring sensor; 23, a flow monitoring sensor; 24, a simulation analysis unit; 25, a comparative analysis unit; 26, a risk analysis unit; 27, an information acquisition unit; 28, an information processing unit; and 29, a drive unit.
[0075] The wastewater pipe network monitoring system 12 includes a monitoring deployment module 13, a first data acquisition module 14, a first data processing module 15, a data analysis and diagnosis module 16, a first early warning module 17, and a comprehensive control center 11. Following a systematic monitoring deployment approach, areas with typical drainage characteristics and a certain drainage pipe network coverage area are selected for systematic water quality and quantity monitoring. The monitoring deployment module 13 deploys level monitoring sensors 21, water quality monitoring sensors 22, and flow monitoring sensors 23 at three parts: area monitoring points 18, pipe network nodes 19, and main pipe network 20. At area monitoring points 18, key drainage users connected to the municipal stormwater pipe network are selected for level monitoring to continuously monitor whether drainage users are illegally discharging wastewater through the stormwater system during dry weather; and to assess the control of rainfall runoff by typical drainage users during rainfall. Pipeline node 19 continuously monitors the water volume of the regional drainage pipeline network, covering both dry and rainy seasons. This supports the analysis of the network's operational patterns, such as the different operating conditions of the pipelines during dry and rainy days, illustrating the inflow and infiltration during rainy weather. Furthermore, the analysis of the upstream and downstream structures of the pipeline network provides a reference for drainage network management and planning, and also supports the assessment of drainage capacity and the application of models. Monitoring point 20 monitors the main pipeline network connecting sewage lifting pump stations and sewage treatment plants. Monitoring the inflow water volume within different drainage service areas provides data for system water volume analysis and the formulation of control strategies. Monitoring the liquid level in the sewage treatment plant's intake main pipes allows for assessment of main pipe fullness, provides early warning of the sewage treatment plant's operating load, and supports integrated scheduling of the drainage system. Each sensor is electrically connected to the first data acquisition module 14. The first data acquisition module 14 collects monitoring data on the water quality and quantity of the pipe network through each sensor, and then connects to the first data processing module 15 via electrical output. The first data processing module 15 processes the collected data and then connects to the data analysis and diagnosis module 16 via electrical output. The data analysis and diagnosis module 16 processes the received data through the simulation analysis unit 24, the comparison analysis unit 25, and the risk analysis unit 26, and combines it with the monitoring data to perform comprehensive analysis and diagnosis, providing decision support for drainage pipe network inspection and maintenance, operation scheduling, emergency decision-making, current status analysis, and planning analysis. The data analysis and diagnosis module 16 is connected to the first early warning module 17. The first early warning module 17 is connected to the information acquisition unit 27, the information processing unit 28, and the drive unit 29. After the information acquisition data is statistically processed by the information processing unit 28, the alarm signal is transmitted to the comprehensive control center 11 through the drive unit 29, ultimately constructing a drainage pipe network information management system with IoT sensing, comprehensive database, model simulation, and visualization as its core.
[0076] It should be noted that the connection between different modules and units can be electrical, and this application does not limit this; users can choose according to their needs.
[0077] This application embodiment analyzes the data collected by the sewage pipeline network monitoring system to determine its own status, and sends the second data analysis of its own status to the integrated management and control center to realize data exchange and provide support for the operation data of the intelligent management and control system of sewage treatment plant.
[0078] Based on the above embodiments, as a preferred embodiment, the inland water quality intelligent monitoring system includes: a water quality monitoring node layout module, a water quality monitoring sensor, a second data acquisition module, a second data processing module, a data analysis module, and a second early warning module.
[0079] The water quality monitoring node layout module is equipped with corresponding water quality monitoring sensors for several monitoring nodes.
[0080] Water quality monitoring sensors are used to acquire water quality data collected by water quality monitoring sensors and send water quality data corresponding to several monitoring nodes to the data acquisition module;
[0081] The second data acquisition module is used to collect water quality data corresponding to several monitoring nodes and send the collected data to the second data processing module.
[0082] The second data processing module is used to process the statistical data to obtain the second processed data, and then send the second processed data to the data analysis module.
[0083] The data analysis module is used to analyze the second processed data to obtain the third data analysis results, and then send the third data analysis results to the second early warning module.
[0084] The second early warning module is used to determine the current early warning status of the system based on the third data analysis and to send the third data analysis to the integrated control center.
[0085] In a specific embodiment, such as Figure 4 As shown, the inland water quality intelligent monitoring system 30 includes a water quality monitoring node layout module 31, a water quality monitoring sensor 32, a second data acquisition module 33, a second data processing module 34, a data analysis module 35, a second early warning module 36, and a comprehensive control center 11.
[0086] Multiple monitoring nodes are set up along both banks of the inland river. Each monitoring node is equipped with water quality monitoring sensors 32 for pH, turbidity, dissolved oxygen, temperature, etc. The water quality monitoring sensors 32 transmit data to the second data acquisition module 33 via electrical transmission. The second data acquisition module 33 is electrically connected to the second data processing module 34. The output of the second data processing module 34 is connected to the input of the data analysis module 35. The output of the data analysis module 35 is connected to the input of the second early warning module 36. The second early warning module 36 transmits the information to the integrated control center 11 via electrical transmission, realizing remote real-time monitoring of data, intelligent prediction and early warning, event handling and maintenance, etc. It provides water affairs management with overall comprehensive operation decision analysis, event early warning analysis, cost analysis, management risk analysis, etc., to achieve standardization of water environment governance project operation and maintenance management and service capabilities, and ultimately realize "smart" operation and maintenance.
[0087] It should be noted that the connection between different modules can be electrical, and this application does not limit this; users can choose according to their needs.
[0088] This application embodiment analyzes the data collected by the inland water quality intelligent monitoring system to determine the water quality status, and sends the third data analysis of the water quality status to the integrated management and control center to realize data exchange, and provides support for the operation data of the sewage treatment plant intelligent management and control system and the sewage pipe network monitoring system.
[0089] The integrated intelligent management and control system for wastewater and water systems provided in this application includes an intelligent management and control system for wastewater treatment plants, a wastewater pipeline monitoring system, an intelligent monitoring system for inland river water quality, and a comprehensive management and control center. The intelligent management and control system for wastewater treatment plants connects to the comprehensive management and control center via a first communication port to send its first data analysis results to the center. The wastewater pipeline monitoring system connects to the comprehensive management and control center via a second communication port to send its second data analysis results to the center. The intelligent monitoring system for inland river water quality connects to the comprehensive management and control center via a third communication port to send its third data analysis results to the center. The comprehensive management and control center monitors and controls the operation of the intelligent management and control system for wastewater treatment plants, the wastewater pipeline monitoring system, and the intelligent monitoring system for inland river water quality based on the received first, second, and third data analysis results. By setting standard ports for the above three systems—the intelligent management and control system for wastewater treatment plants, the wastewater pipeline monitoring system, and the water source quality monitoring system—they are ultimately connected to the integrated management and control center for intelligent control. This enables the scenario-based and business-oriented collection, treatment, analysis, integration, and display of massive amounts of multi-source data from multiple links, elements, and departments in the comprehensive management of urban wastewater and water systems. It achieves joint regulation and control between plants, networks, and inland rivers, solving problems such as data silos, slow feedback, difficulty in detecting and handling pollution incidents / emergencies in urban water environment management, difficulty in tracing the source of law enforcement, and difficulty in achieving long-term effectiveness in water environment governance.
[0090] The integrated intelligent management and control system for sewage and water systems has been described in detail in the above embodiments. This application also provides embodiments of the integrated intelligent management and control method for sewage and water systems.
[0091] To address the aforementioned issues, this application also provides an integrated intelligent management and control method for wastewater and water systems. This method is applied to an integrated intelligent management and control system for wastewater and water systems, comprising a wastewater treatment plant intelligent management and control system, a wastewater pipeline monitoring system, an inland river water quality intelligent monitoring system, and a comprehensive management and control center. The method includes the following steps: Figure 5 As shown.
[0092] S10: Obtain the first data analysis of the wastewater treatment plant through the intelligent management and control system of the wastewater treatment plant, and send the first data analysis to the integrated management and control center.
[0093] S11: Obtain the second data analysis of the sewage pipe network through the sewage pipe network monitoring system, and send the second data analysis to the integrated management and control center.
[0094] S12: Obtain the third-party data analysis of inland waterways through the inland water quality intelligent monitoring system, and send the third-party data analysis to the integrated management and control center.
[0095] S13: The integrated control center monitors and controls the operation of sewage treatment plants, sewage pipe networks, and inland rivers based on the analysis of the first, second, and third data received.
[0096] The integrated intelligent management and control method for wastewater and water systems provided in this application is applied to an integrated intelligent management and control system for wastewater and water systems, including a wastewater treatment plant intelligent management and control system, a wastewater pipeline network monitoring system, an inland river water quality intelligent monitoring system, and a comprehensive management and control center. Specifically, the wastewater treatment plant intelligent management and control system acquires first-level data analysis of the wastewater treatment plant and sends this data analysis to the comprehensive management and control center. Similarly, the inland river water quality intelligent monitoring system acquires third-level data analysis of the inland river and sends this data analysis to the comprehensive management and control center. The comprehensive management and control center monitors and controls the operation of the wastewater treatment plant, wastewater pipeline network, and inland river based on the received first-level, second-level, and third-level data analysis. The integrated intelligent management and control system for wastewater and water systems provided in this application can receive operational data from different parts of the urban wastewater and water system (plant-network-river) and control the operational parameters of different systems based on the data, enabling data exchange between systems at different stages through the comprehensive management and control center.
[0097] Based on the above embodiments, as a preferred embodiment:
[0098] The initial data analysis of the wastewater treatment plant is obtained through the intelligent management and control system, including: real-time acquisition of the plant's operating parameters through the intelligent management and control system, analysis and judgment of the operating parameters, and problem diagnosis and early warning based on the analysis and judgment results, thus obtaining the initial data analysis of the wastewater treatment plant.
[0099] The second data analysis of the sewage pipeline network is obtained through the sewage pipeline network monitoring system, including: obtaining data of the sewage pipeline network collected by sensors corresponding to several monitoring nodes in the sewage pipeline network through the sewage pipeline network monitoring system, analyzing and judging the data of the sewage pipeline network, and statistically organizing the data analysis and judgment results of the sewage pipeline network to obtain the second data analysis of the sewage pipeline network.
[0100] The third data analysis of inland waterways is obtained through the intelligent inland water quality monitoring system, including: obtaining water quality data collected by water quality monitoring sensors corresponding to several monitoring nodes in the inland waterway through the intelligent inland water quality monitoring system, and analyzing and judging the water quality data collected by the water quality sensors to obtain the third data analysis of the water source.
[0101] Since the embodiments of the method section correspond to the embodiments of the system section, please refer to the description of the embodiments of the system section for the embodiments of the method section, and they will not be repeated here.
[0102] Figure 6 A structural diagram of an electronic device provided in another embodiment of this application, such as... Figure 6 As shown, the electronic device includes: a memory 60 for storing computer programs;
[0103] The processor 61 is used to execute computer programs to implement the steps of the integrated intelligent management and control method for sewage and water systems as described in the above embodiments.
[0104] The electronic devices provided in this embodiment may include, but are not limited to, smartphones, tablets, laptops, or desktop computers.
[0105] The processor 61 may include one or more processing cores, such as a quad-core processor or an octa-core processor. The processor 61 may be implemented using at least one of the following hardware forms: Digital Signal Processor (DSP), Field-Programmable Gate Array (FPGA), or Programmable Logic Array (PLA). The processor 61 may also include a main processor and a coprocessor. The main processor, also known as the Central Processing Unit (CPU), is used to process data in the wake-up state; the coprocessor is a low-power processor used to process data in the standby state. In some embodiments, the processor 61 may integrate a Graphics Processing Unit (GPU), which is responsible for rendering and drawing the content to be displayed on the screen. In some embodiments, the processor 61 may also include an Artificial Intelligence (AI) processor, which is used to handle computational operations related to machine learning.
[0106] The memory 60 may include one or more computer-readable storage media, which may be non-transitory. The memory 60 may also include high-speed random access memory and non-volatile memory, such as one or more disk storage devices or flash memory devices. In this embodiment, the memory 60 is used to store at least the following computer program 601, which, after being loaded and executed by the processor 61, is capable of implementing the relevant steps of the integrated wastewater and water system intelligent management method disclosed in any of the foregoing embodiments. In addition, the resources stored in the memory 60 may also include an operating system 602 and data 603, etc., and the storage method may be temporary storage or permanent storage. The operating system 602 may include Windows, Unix, Linux, etc.
[0107] In some embodiments, the electronic device may further include a display screen 62, an input / output interface 63, a communication interface 64, a power supply 65, and a communication bus 66.
[0108] Those skilled in the art will understand that Figure 6 The structures shown do not constitute a limitation on electronic devices and may include more or fewer components than those shown.
[0109] The electronic device provided in this application includes a memory and a processor. When the processor executes the program stored in the memory, it can implement the following method: an integrated intelligent management and control method for sewage and water systems.
[0110] Finally, this application also provides an embodiment corresponding to a computer-readable storage medium. The computer-readable storage medium stores a computer program, which, when executed by a processor, implements the steps described in the above method embodiments.
[0111] It is understood that if the methods in the above embodiments are implemented as software functional units and sold or used as independent products, they can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and executes all or part of the steps of the methods described in the various embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.
[0112] The integrated intelligent wastewater and water system management system, method, electronic equipment, and medium provided in this application have been described in detail above. The various embodiments in the specification are described in a progressive manner, with each embodiment focusing on its differences from other embodiments. Similar or identical parts between embodiments can be referred to interchangeably. For the apparatus disclosed in the embodiments, since it corresponds to the method disclosed in the embodiments, the description is relatively simple; relevant parts can be referred to in the method section. It should be noted that those skilled in the art can make several improvements and modifications to this application without departing from the principles of this application, and these improvements and modifications also fall within the protection scope of the claims of this application.
[0113] It should also be noted that, in this specification, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
Claims
1. An integrated intelligent management and control system for wastewater and water systems, characterized in that, This includes a smart management and control system for wastewater treatment plants, a wastewater pipeline monitoring system, an intelligent monitoring system for inland river water quality, and a comprehensive management and control center; The intelligent management and control system of the wastewater treatment plant is connected to the integrated management and control center through a first communication port, and is used to send the first data analysis results of the intelligent management and control system of the wastewater treatment plant to the integrated management and control center. The sewage pipeline monitoring system is connected to the integrated management and control center through a second communication port, which is used to send the second data analysis results of the sewage pipeline monitoring system to the integrated management and control center. The intelligent inland water quality monitoring system is connected to the integrated management and control center through a third communication port, which is used to send the third data analysis results of the intelligent inland water quality monitoring system to the integrated management and control center. The integrated control center is used to monitor and control the operation of the wastewater treatment plant intelligent control system, the wastewater pipeline monitoring system, and the inland river water quality intelligent monitoring system based on the first data analysis, the second data analysis, and the third data analysis received. The intelligent management and control system for the wastewater treatment plant includes: a perception layer, a network layer, and an application layer. The sensing layer is used to collect operational data of the wastewater treatment plant and transmit it to the network layer; wherein, the operational data includes equipment operating status data of the wastewater treatment plant and online monitoring data of the wastewater treatment plant. The network layer is used to analyze faulty equipment based on the information of the input device and maintenance records, and to analyze, judge and warn based on the received operating data, so as to obtain the corresponding first data analysis situation. The application layer is used to display the first data analysis status and send the first data analysis status to the integrated control center so that operators can make corresponding adjustments based on the first data analysis status. The sewage pipeline monitoring system includes: a monitoring deployment module, a first data acquisition module, a first data processing module, a data analysis and diagnosis module, and a first early warning module. The monitoring deployment module is used to acquire data collected by sensors corresponding to several monitoring points and send the data collected by the sensors to the first data acquisition module; the types of the several monitoring points include: area monitoring points, pipeline nodes and main pipelines, and the types of the several sensors include: liquid level monitoring sensors, water quality monitoring sensors and flow monitoring sensors. The first data acquisition module is used to comprehensively organize the data collected by the several sensors and send the comprehensive data to the first data processing module; The first data processing module is used to process the comprehensive and organized data to obtain corresponding first processed data, and send the first processed data to the data analysis and diagnosis module. The data analysis and diagnosis module is used to analyze and diagnose the first processed data to obtain the second data analysis results. The first early warning module is used to determine the current early warning status of the system based on the second data analysis and to send the second data analysis to the integrated control center.
2. The integrated intelligent sewage and water system management system according to claim 1, characterized in that, The inland water quality intelligent monitoring system includes: a water quality monitoring node deployment module, water quality monitoring sensors, a second data acquisition module, a second data processing module, a data analysis module, and a second early warning module. The water quality monitoring node layout module is equipped with corresponding water quality monitoring sensors at several monitoring nodes. The water quality monitoring sensor is used to collect water quality data from the monitoring nodes and send the water quality data corresponding to several monitoring nodes to the second data acquisition module; The second data acquisition module is used to collect water quality data corresponding to several monitoring nodes and send the collected data to the second data processing module. The second data processing module is used to process the statistical data to obtain the second processed data, and send the second processed data to the data analysis module; The data analysis module is used to analyze the second processed data to obtain the third data analysis result, and send the third data analysis result to the second early warning module; The second early warning module is used to determine the early warning status of the current system based on the third data analysis, and to send the third data analysis to the integrated control center.
3. An integrated intelligent management and control method for wastewater and water systems, characterized in that, The integrated intelligent wastewater and water system management system described in claim 1 includes: The wastewater treatment plant's first data analysis is obtained through the intelligent management and control system, and then sent to the integrated management and control center. The second data analysis of the sewage pipe network is obtained through the sewage pipe network monitoring system, and the second data analysis is sent to the integrated management and control center; The third data analysis of the inland waterway is obtained through the inland water quality intelligent monitoring system, and the third data analysis is sent to the integrated management and control center. The integrated control center monitors and controls the operation of the sewage treatment plant, the sewage pipe network, and the inland river based on the first, second, and third data analysis results received. The first data analysis of the wastewater treatment plant obtained through the intelligent management and control system of the wastewater treatment plant includes: By analyzing and judging the operating parameters of the wastewater treatment plant obtained in real time by the intelligent management and control system, and by diagnosing and issuing early warnings based on the analysis results, as well as analyzing faulty equipment based on the information of the entered equipment and maintenance records, the first data analysis of the wastewater treatment plant is obtained, so that the operators can make corresponding adjustments based on the first data analysis. The operating parameters of the wastewater treatment plant include the equipment operating status data of the wastewater treatment plant and the online monitoring data of the wastewater treatment plant. The analysis of the second data obtained from the sewage network monitoring system includes: The sewage pipeline network monitoring system acquires data from sensors at several monitoring points in the sewage pipeline network. The data is analyzed and judged, and the results of the data analysis and judgment are statistically organized to obtain the second data analysis of the sewage pipeline network. The types of the several monitoring points include: area monitoring points, pipeline nodes, and main pipelines. The types of the several sensors include: liquid level monitoring sensors, water quality monitoring sensors, and flow monitoring sensors.
4. The integrated intelligent management and control method for wastewater and water systems according to claim 3, characterized in that, The analysis of third-party data on inland waterways obtained through the intelligent inland water quality monitoring system includes: The intelligent inland water quality monitoring system acquires water quality data collected by water quality monitoring sensors at several monitoring nodes in the inland river, and analyzes and judges the water quality data collected by the water quality monitoring sensors to obtain the third data analysis of the inland river.
5. An electronic device, characterized in that, Including memory and processor; The memory is used to store computer programs; The processor is used to implement the steps of the integrated intelligent management and control method for wastewater and water systems as described in claim 3 or 4 when executing the computer program.
6. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program, which, when executed by a processor, implements the steps of the integrated intelligent management and control method for wastewater and water systems as described in claim 3 or 4.
Citation Information
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