Intelligent PLC-controlled automatic aeration system of aeration tower
The automatic aeration system controlled by intelligent PLC solves the problem of manual operation error in traditional aeration systems, realizes automatic aeration, improves sewage treatment efficiency, and saves labor.
Patent Information
- Application Number
- CN202423154874.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-20
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2034-12-20
AI Technical Summary
Traditional aeration systems require manual operation, which is prone to errors or forgetting to operate, resulting in poor treatment effects. Furthermore, they cannot achieve automatic aeration, increasing the demand for labor.
The automatic aeration system, controlled by an intelligent PLC, includes an aeration system, an air distribution system, a control system, and a real-time monitoring system. It achieves automatic aeration through pressure sensors and valve modules, and combines an air supply system and an air distribution system for gas isolation, storage, and supply.
Automatic aeration was achieved, avoiding errors from manual operation, improving treatment efficiency, saving labor, ensuring uniform aeration of sludge in the aeration tower, and improving wastewater treatment efficiency.
Smart Images

Figure CN223737820U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to aeration tower technical field, concretely is a kind of intelligent PLC control automatic aeration system of aeration tower. BACKGROUND
[0002] Aeration refers to the artificial through appropriate equipment to the biochemical aeration tower into air to achieve the desired purpose.Aeration not only makes the liquid in the pool contact with air to oxygen, but also due to the agitation liquid, accelerates the transfer of oxygen in air to liquid, so as to complete the purpose of oxygenation;In addition, aeration also prevents the sinking of suspended solids in the pool, strengthens the contact of organic matter and microorganism with dissolved oxygen in the pool, so as to ensure that the microorganism in the pool under the condition of sufficient dissolved oxygen, the oxidation and decomposition of organic matter in wastewater.The quality of aeration device not only affects the effect of biochemical treatment of wastewater, but also directly affects the treatment site, investment and operating cost, and aeration device refers to the equipment for supplying oxygen to aeration tower in wastewater activated sludge process.
[0003] Aeration system is needed when aeration tower is used, and the traditional aeration system needs manual operation, which is easy to misoperate or forget to operate, and the biochemical tower type sewage treatment system needs precise operation for aeration, such as long-term aeration, which is easy to cause granular sludge to settle, and the treatment effect is poor, and long-term aeration is easy to cause DO to be too high, which leads to artificial aeration from the bottom of the tower to the top, and manual operation is easy to cause long time and aeration position to be mistaken, which causes the treatment effect to be poor and other hidden troubles, and automatic aeration cannot be carried out, so as to increase the labor of user. UTILITY MODEL CONTENT
[0004] To solve the problems in the above background art, the utility model aims at providing an intelligent PLC control automatic aeration system of aeration tower, which has the advantage of automatic aeration, and solves the problem that the aeration system cannot carry out automatic aeration.
[0005] To achieve the above purpose, the utility model provides the following technical scheme: an intelligent PLC control automatic aeration system of aeration tower, comprising:
[0006] Aeration system;
[0007] Air distribution system, the output end of the air distribution system is communicated with the input end of the aeration system;
[0008] The control system comprises a processor, an input end of the processor is electrically connected with a data line connector, an input end of the data line connector is electrically connected with a data line receiving module, an input end of the processor is electrically connected with a numerical comparison module, an input end of the numerical comparison module is bidirectionally electrically connected with an aeration numerical storage module, an input end of the processor is electrically connected with a time detection module, an input end of the time detection module is electrically connected with a time module, an input end of the processor is electrically connected with a timing module, an output end of the processor is electrically connected with a controller, an input end of the control system is electrically connected with a feedback system, and an input end of the feedback system is electrically connected with a real-time monitoring system.
[0009] As preferred in the utility model, the aeration system comprises a driving module, an input end of the driving module is electrically connected with an output end of the control module, an output end of the driving module is electrically connected with an air inlet pipe module, an input end of the air inlet pipe module is communicated with valve module one, an input end of the air inlet pipe module is communicated with valve module two, an input end of the air inlet pipe module is communicated with valve module three, and an input end of the air inlet pipe module is communicated with valve module four.
[0010] As preferred in the utility model, the air distribution system comprises air storage chamber one, air storage chamber two, air storage chamber three and air storage chamber four, a pressure sensor one is fixedly connected in the air storage chamber one, a pressure sensor two is fixedly connected in the air storage chamber two, a pressure sensor three is fixedly connected in the air storage chamber two, a pressure sensor four is fixedly connected in the air storage chamber two, an output end of the air storage chamber one is communicated with an input end of valve module one through a pipeline, an output end of the air storage chamber two is communicated with an input end of valve module two through a pipeline, an output end of the air storage chamber three is communicated with an input end of valve module three through a pipeline, and an output end of the air storage chamber four is communicated with an input end of valve module four through a pipeline.
[0011] As preferred in the utility model, an input end of the air distribution system is communicated with an air supply system through a pipeline, the air supply system comprises an air compressor, an output end of the air compressor is electrically connected with a control module, an output end of the control module is electrically connected with an input end of the air compressor, an air outlet of the air compressor is communicated with control valve one, control valve two, control valve three and control valve four, an air outlet of the control valve one is communicated with an air inlet of the air storage chamber one through a pipeline, an air outlet of the control valve two is communicated with an air inlet of the air storage chamber two through a pipeline, an air outlet of the control valve three is communicated with an air inlet of the air storage chamber three through a pipeline, an air outlet of the control valve four is communicated with an air inlet of the air storage chamber four through a pipeline, and an input end of the control module is electrically connected with an output end of the controller.
[0012] As the utility model discloses, preferably, the real-time monitoring system comprises a pH value sensor, a temperature sensor and an oxygen content sensor.
[0013] As the utility model discloses, preferably, the feedback system comprises a data transmission line module, the output end of the data transmission line module is electrically connected with the input end of the real-time monitoring system, the input end of the data transmission line module is electrically connected with a data storage module, the output end of the data storage module is electrically connected with a data line transmission module, and the output end of the data line transmission module is electrically connected with the input end of a data line receiving module through a data line.
[0014] Compared with the prior art, the utility model has the beneficial effects as follows:
[0015] 1、 the utility model discloses a control system can be automatically driven aeration system and air supply system, through air supply system gives air distribution system gas, again through air distribution system gives aeration system and supplies the gas, through aeration system to the sludge inside aeration tower aeration, aeration does not need to be gradually from the bottom to the top of the tower artificial aeration, avoids manual operation and is long and aeration position is easy to make mistake causes the hidden danger such as processing effect to be not good, can carry out automatic aeration, thereby save the labor of user.
[0016] 2、 the utility model discloses a aeration system can carry out the sludge inside aeration tower aeration, and control system opens drive module, and drive module opens valve module one, valve module two, valve module three and valve module four, and through different position's valve module one, valve module two, valve module three and valve module four make the air inlet pipe to the sludge of different positions inside aeration tower aeration.
[0017] 3、 the utility model discloses an air distribution system can isolate and store the air transmission of air supply system, and control system opens air supply system, and air supply system passes into the inside of air distribution system with gas, and air distribution system passes into the gas with gas storage chamber one, gas storage chamber two, gas storage chamber three and gas storage chamber four and isolates and stores. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 It is system diagram of the utility model;
[0019] Figure 2 It is system diagram of the utility model Figure 1 Control system;
[0020] Figure 3 It is system diagram of the utility model Figure 1 Aeration system;
[0021] Figure 4 It is system diagram of the utility model Figure 1 Real-time monitoring system;
[0022] Figure 5 For the utility model Figure 1 System diagram of the feedback system in the utility model.
[0023] Figure 6 For the utility model Figure 1 System diagram of the air supply system in the utility model. DETAILED DESCRIPTION
[0024] The technical solutions in the embodiments of the utility model will be apparently and completely described in combination with the drawings in the embodiments of the utility model. Apparently, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all the other embodiments obtained by the person skilled in the art without creative labor fall within the protection scope of the utility model.
[0025] As Figures 1 to 6 shown, the utility model provides an intelligent PLC control automatic aeration system of aeration tower, including:
[0026] aeration system
[0027] air distribution system, the output end of air distribution system is communicated with the input end of aeration system
[0028] control system, the control system includes processor, the input end of processor is electrically connected data line connector, the input end of data line connector is electrically connected with data line receiving module, the input end of processor is electrically connected with numerical comparison module, the input end of numerical comparison module is electrically connected with aeration numerical storage module, the input end of processor is electrically connected with time detection module, the input end of time detection module is electrically connected with time module, the input end of processor is electrically connected with timing module, the output end of processor is electrically connected with controller, the input end of control system is electrically connected with feedback system, the input end of feedback system is electrically connected with real-time monitoring system.
[0029] Reference Figure 3 , aeration system includes drive module, the input end of drive module is electrically connected with the output end of control module, the output end of drive module is electrically connected with air inlet pipe module, the input end of air inlet pipe module is communicated with valve module one, the input end of air inlet pipe module is communicated with valve module two, the input end of air inlet pipe module is communicated with valve module three, the input end of air inlet pipe module is communicated with valve module four.
[0030] As a technical optimization scheme of the utility model, through setting up aeration system, the sludge inside the aeration tower can be aerated, the control system opens the driving module, the driving module opens valve module one, valve module two, valve module three and valve module four, the valve module one, valve module two, valve module three and valve module four at different positions make the air inlet pipe aerate the sludge at different positions inside the aeration tower.
[0031] Reference Figure 6 The air distribution system includes air storage chamber one, air storage chamber two, air storage chamber three and air storage chamber four, the inside of air storage chamber one is fixedly connected with pressure sensor one, the inside of air storage chamber two is fixedly connected with pressure sensor two, the inside of air storage chamber two is fixedly connected with pressure sensor three, the inside of air storage chamber two is fixedly connected with pressure sensor four, the output end of air storage chamber one is communicated with the input end of valve module one through pipeline, the output end of air storage chamber two is communicated with the input end of valve module two through pipeline, the output end of air storage chamber three is communicated with the input end of valve module three through pipeline, the output end of air storage chamber four is communicated with the input end of valve module four through pipeline.
[0032] As a technical optimization scheme of the utility model, through setting up air distribution system, the air transmitted by air supply system can be isolated and stored, the control system opens air supply system, air supply system transmits gas into the inside of air distribution system, air distribution system isolates and stores the transmitted gas through air storage chamber one, air storage chamber two, air storage chamber three and air storage chamber four.
[0033] Reference Figure 6 The input end of air distribution system is communicated with air supply system through pipeline, air supply system includes air compressor, the output end of air compressor is electrically connected with control module, the output end of control module is electrically connected with the input end of air compressor, the air outlet of air compressor is communicated with control valve one, control valve two, control valve three and control valve four, the air outlet of control valve one is communicated with the air inlet of air storage chamber one through pipeline, the air outlet of control valve two is communicated with the air inlet of air storage chamber two through pipeline, the air outlet of control valve three is communicated with the air inlet of air storage chamber three through pipeline, the air outlet of control valve four is communicated with the air inlet of air storage chamber four through pipeline, the input end of control module is electrically connected with the output end of controller.
[0034] As a technical optimization scheme of the utility model, through setting up air supply system, the gas can be provided for air distribution system, the user drives control module, control module passes through air compressor, and the gas is transmitted into the inside of air storage chamber one, air storage chamber two, air storage chamber three and air storage chamber four through air compressor.
[0035] Reference Figure 4 Real-time monitoring system includes pH value inductor, temperature inductor and oxygen content inductor.
[0036] As a technical optimization scheme of the utility model, through setting real-time monitoring system, the sludge in aeration tower can be detected, the user opens real-time monitoring system, and the monitoring system opens pH value inductor, temperature inductor and oxygen content inductor to detect pH value, temperature and oxygen content in the sludge.
[0037] Reference Figure 5 Feedback system includes data transmission line module, the output of data transmission line module is electrically connected with the input of real-time monitoring system, the input of data transmission line module is electrically connected with data storage module, the output of data storage module is electrically connected with data line transmission module, and the output of data line transmission module is electrically connected with the input of data line receiving module through data line.
[0038] As a technical optimization scheme of the utility model, through setting feedback system, the detected data can be fed back to the inside of control system, the user transmits the detected data into data storage module through data transmission line module, data storage module transmits data into the inside of data line transmission module, and data line transmission module transmits data into the inside of data line receiving module through data line.
[0039] The working principle and use flow of the utility model: when using, the user opens real-time monitoring system, and the monitoring system detects pH value, temperature and oxygen content in the sludge through pH value inductor, temperature inductor and oxygen content inductor, then transmits the detected data into data storage module through data transmission line module, data storage module transmits data into the inside of data line transmission module, data line transmission module transmits data into the inside of data line receiving module through data line, data line receiving module transmits data into the inside of data line connector, data line connector transmits data into the inside of processor, and processor compares data with the data in aeration value storage module through numerical value comparison module, if data is abnormal or time detection module detects that time module is consistent with timing module, processor opens drive module and control module through controller, control module opens air compressor, air compressor transmits gas into the inside of gas storage chamber one, gas storage chamber two, gas storage chamber three and gas storage chamber four through control valve one, control valve two, control valve three and control valve four, and the pressure of gas in gas storage chamber one, gas storage chamber two, gas storage chamber three and gas storage chamber four can be displayed through pressure inductor one, pressure inductor two, pressure inductor three and pressure inductor four, so that the staff can check conveniently, drive module opens valve module one, valve module two, valve module three and valve module four, and air inlet pipe carries out aeration to sludge in different positions in aeration tower through valve module one, valve module two, valve module three and valve module four in different positions.
[0040] In summary: the intelligent PLC control automatic aeration system of the aeration tower, through the setting control system, can automatically drive the aeration system and the air supply system, through the air supply system to the air distribution system gas, again through the air distribution system to the aeration system air supply, through the aeration system to the sludge inside the aeration tower aeration, aeration does not need to be gradually from the bottom to the top of the tower artificial aeration, avoid artificial operation often long and aeration position is easy to make mistake cause processing effect is not good and other hidden trouble, can carry out automatic aeration, thereby saving the labor of the user.
[0041] It should be noted that in this document, relationship terms such as first and second and the like can be used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Moreover, the terms "comprises", "comprising", or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can include other elements not expressly listed or inherent to such process, method, article, or apparatus.
[0042] Although the embodiments of the present application have been shown and described, it is to be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present application, and the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. An intelligent PLC control automatic aeration system of an aeration tower, characterized in that, The utility model relates to an aeration system, an air distribution system, a control system and a real-time monitoring system. The aeration system comprises a driving module, an input end of the driving module is electrically connected with an output end of a control module, an output end of the driving module is electrically connected with an air inlet pipe module, an input end of the air inlet pipe module is communicated with a valve module one, an input end of the air inlet pipe module is communicated with a valve module two, an input end of the air inlet pipe module is communicated with a valve module three, and an input end of the air inlet pipe module is communicated with a valve module four. The air distribution system comprises a gas storage chamber one, a gas storage chamber two, a gas storage chamber three and a gas storage chamber four, an inside of the gas storage chamber one is fixedly connected with a pressure sensor one, an inside of the gas storage chamber two is fixedly connected with a pressure sensor two, an inside of the gas storage chamber two is fixedly connected with a pressure sensor three, an inside of the gas storage chamber two is fixedly connected with a pressure sensor four, an output end of the gas storage chamber one is communicated with an input end of the valve module one through a pipeline, an output end of the gas storage chamber two is communicated with an input end of the valve module two through a pipeline, an output end of the gas storage chamber three is communicated with an input end of the valve module three through a pipeline, and an output end of the gas storage chamber four is communicated with an input end of the valve module four through a pipeline. An input end of the air distribution system is communicated with an air supply system through a pipeline, the air supply system comprises an air compressor, an output end of the air compressor is electrically connected with a control module, an output end of the control module is electrically connected with an input end of the air compressor, an air outlet of the air compressor is communicated with a control valve one, a control valve two, a control valve three and a control valve four, an air outlet of the control valve one is communicated with an air inlet of the gas storage chamber one through a pipeline, an air outlet of the control valve two is communicated with an air inlet of the gas storage chamber two through a pipeline, an air outlet of the control valve three is communicated with an air inlet of the gas storage chamber three through a pipeline, an air outlet of the control valve four is communicated with an air inlet of the gas storage chamber four through a pipeline, and an input end of the control module is electrically connected with an output end of the controller.
2. The intelligent PLC control automatic aeration system of an aeration tower according to claim 1, characterized in that: The real-time monitoring system comprises a pH value sensor, a temperature sensor and an oxygen sensor.
3. The intelligent PLC control automatic aeration system of an aeration tower according to claim 2, characterized in that: 4. The intelligent PLC control automatic aeration system of an aeration tower according to claim 3, characterized in that: 5. The intelligent PLC control automatic aeration system of an aeration tower according to claim 4, characterized in that: 6. The intelligent PLC control automatic aeration system of an aeration tower according to claim 5, characterized in that: The feedback system comprises a data transmission line module, an output end of the data transmission line module is electrically connected with an input end of the real-time monitoring system, an input end of the data transmission line module is electrically connected with a data storage module, an output end of the data storage module is electrically connected with a data line transmission module, and an output end of the data line transmission module is electrically connected with an input end of a data line receiving module through a data line.