Wastewater treatment device and wastewater treatment method

By designing a wastewater treatment device including detection components, control components, pump bodies, multiple filters, steering valves and liquid discharge components, the problem of incomplete filtration of wastewater and reduced effect after use in the prior art is solved, and multiple filtration of wastewater and stable improvement of water quality is achieved.

CN118877972BActive Publication Date: 2025-05-06GUANGZHOU VOCATIONAL COLLEGE OF SCI & TECH
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Patent Information

Application Number
CN202411146227.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-20
Publication Date
2025-05-06
Estimated Expiration
2044-08-20

AI Technical Summary

Technical Problem

Existing wastewater treatment technology cannot completely filter pollutants in wastewater, and the effect of the filter decreases after long-term use, and the failure to replace it in time leads to deterioration of the filtration effect.

Method used

A wastewater treatment device is designed, including a detection assembly, a control assembly, a pump body, a plurality of filters, a steering valve and a liquid discharge assembly. The detection component of the pollutant in the wastewater is detected by the detection component, and the control component controls the connection relationship between multiple filters, achieving multiple filtration until the pollutant is completely removed.

Benefits of technology

Multiple filtration of wastewater is achieved, and the error and fluctuation of single filtration is reduced, making the quality of the effluent after treatment more stable and reliable, and meeting stricter emission standards or reuse requirements.

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Abstract

The present invention relates to a wastewater treatment device and a wastewater treatment method, and belongs to the field of wastewater treatment. A wastewater treatment device comprises: a detection component; a pump body, the pump body is provided with a pump inlet, the pump inlet of the pump body is used to communicate with an external pollution source, and the pump body is provided with a pump outlet; a plurality of filters, the plurality of filters are connected in sequence through pipelines, wherein the liquid inlet port of the first filter is connected with the pump outlet provided in the pump body; a first steering valve, a plurality of first valve liquid inlets are respectively connected with a plurality of filters, and the first steering valve is provided with a liquid delivery port; a second steering valve, a plurality of second valve liquid outlets are respectively connected with a plurality of filters, and the second steering valve can block the liquid inlet or connect the liquid inlet with a plurality of second valve liquid outlets respectively; a liquid outlet component, the liquid outlet component is provided with a liquid outlet channel connected with the detection component, the liquid delivery port and the liquid inlet. By using a plurality of filters to filter wastewater, the overall treatment effect is improved to meet more stringent emission standards or reuse requirements.
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Description

Technical Field

[0001] The present invention relates to the field of wastewater treatment, and in particular to a wastewater treatment device and a wastewater treatment method. Background Art

[0002] With the development of economy and the improvement of people's living standards, people's requirements for water quality are getting higher and higher. In the existing technology, the wastewater treatment technology cannot completely filter the pollutants in the wastewater, resulting in the discharge of wastewater into nature and damaging the environment. In addition, the filter is not replaced in time during long-term use, resulting in the filtering effect getting worse and worse. Summary of the invention

[0003] Based on this, it is necessary to provide a wastewater treatment device and a wastewater treatment method to address the problem of incomplete wastewater filtration and failure to replace the filter in a timely manner.

[0004] A wastewater treatment device, the wastewater treatment device comprising: a detection component, the detection component comprising a support component and a detection member; a control component, the control component being arranged on the support component; a pump body, the pump body being provided with a pump inlet, the pump inlet of the pump body being used to communicate with an external pollution source, the pump body being provided with a pump outlet, the detection component being used to detect pollutant components in the liquid flowing through the pump body; a plurality of filters, the plurality of filters being connected in sequence through pipelines, wherein the liquid inlet port of the first of the plurality of filters connected in sequence is connected with the pump outlet provided in the pump body; a first steering valve, the first steering valve being provided with a plurality of first valve inlets being the same in number as the filters, the plurality of first valve inlets being respectively connected with the plurality of filters, the first steering valve being provided with a liquid delivery valve a first steering valve, the first plurality of first valve liquid inlets of the first steering valve being capable of being respectively connected to the liquid delivery port; a second steering valve, the second steering valve being provided with a liquid inlet, the second steering valve being provided with a plurality of second valve liquid outlets which are the same in number as the filters, the plurality of second valve liquid outlets being respectively connected to the plurality of filters, the second steering valve being capable of blocking the liquid inlet or connecting the liquid inlet with the plurality of second valve liquid outlets respectively; a liquid outlet component, the liquid outlet component being provided with a liquid outlet channel which is connected to the detection component, the liquid delivery port and the liquid inlet, the detection component being connected to the liquid delivery port via the liquid outlet channel; at least one valve body, the number of the valve bodies being the same in number as the filters, the valve bodies being arranged on a pipeline connecting adjacent filters, one of the valve bodies being arranged on the liquid outlet device.

[0005] The present application discloses a wastewater treatment device. Since the detection component is connected to a pipeline connecting an external liquid source and a pump body, the wastewater is sucked from the pump inlet and guided to the detection component by the pump body, and the detection component is used to detect the pollutants that need to be filtered in the wastewater. After knowing the pollutants that need to be filtered, since the detection component is connected to the pipeline connecting the pump body and the filter, the pollutants go out from the pump outlet provided by the pump body and enter the filter. The user can use multiple valve bodies to control the connection or closing of multiple filters to achieve the effect of filtering one or more pollutants for the first time. At this time, the wastewater after the initial filtration enters the corresponding liquid inlet of the first steering valve and is output from the liquid delivery port, and then enters the detection component again for detection. If there are still pollutants that need to be filtered, they enter the second steering valve through the liquid inlet provided by the second steering valve, and open the corresponding liquid outlet to flow into the corresponding filter for secondary filtration. After the secondary filtration is completed, it enters the first steering valve again and repeats the above process until the pollutants in the wastewater are completely removed or reach the user's satisfaction, and finally flows out from the liquid outlet channel provided by the liquid outlet device and obtains clean liquid. This multiple and multi-filter filtering structure can reduce the errors and fluctuations that may occur in a single filtration, making the treated water quality more stable and reliable, meeting more stringent emission standards or reuse requirements. At the same time, for wastewater with complex components and difficult to treat, multiple filtrations can gradually decompose and remove various types of pollutants, thereby improving the overall treatment effect.

[0006] In one embodiment, the plurality of filters are a first filter, a second filter and a third filter, the first filter is provided with a first filter tank, the first filter is provided with a first liquid inlet port, a first liquid outlet port, a first reflux liquid outlet port and a first reflux liquid inlet port connected to the first filter tank, the second filter is provided with a second filter tank, the second filter is provided with a second liquid inlet port, a second liquid outlet port, a second reflux liquid outlet port and a second reflux liquid inlet port connected to the second filter tank, the third filter is provided with a third filter tank, the third filter is provided with a third liquid inlet port, a third reflux liquid outlet port and a third reflux liquid inlet port connected to the third filter tank, the second liquid inlet port can be connected or disconnected with the first liquid outlet port, and the third liquid inlet port can be connected with the second liquid outlet port open or disconnected; the number of the multiple first valve liquid inlets of the first steering valve is the first liquid inlet, the second liquid inlet and the third liquid inlet, the first liquid inlet, the second liquid inlet and the third liquid inlet can be connected to the liquid delivery port respectively, the first liquid inlet is connected to the first reflux liquid outlet, the second liquid inlet is connected to the second reflux liquid outlet, and the third liquid inlet is connected to the third reflux liquid outlet; the number of the multiple second valve liquid outlets of the second steering valve is the first liquid outlet, the second liquid outlet and the third liquid outlet, the first liquid outlet, the second liquid outlet and the third liquid outlet can be connected to the liquid inlet respectively, the first liquid outlet is connected to the first reflux liquid inlet, the second liquid outlet is connected to the second reflux liquid inlet, and the third liquid outlet is connected to the third reflux liquid inlet.By providing a first filter tank in the first filter, and providing a first liquid inlet port, a first liquid outlet port, a first reflux liquid outlet port and a first reflux liquid inlet port connected to the first filter tank, providing a second filter tank in the second filter, and providing a second liquid inlet port, a second liquid outlet port, a second reflux liquid outlet port and a second reflux liquid inlet port connected to the second filter tank, providing a third filter tank in the third filter, and providing a third liquid inlet port, a third reflux liquid outlet port and a third reflux liquid inlet port connected to the third filter tank, the user can select one or more filters according to the type of pollutants, and turn the first steering valve to the corresponding liquid inlet port. When the first filter is used, the first steering valve provided with The liquid inlet is opened. When the second filter is used, the second liquid inlet of the first steering valve is opened. When the third filter is used, the third liquid inlet of the first steering valve is opened. When secondary or multiple filtrations are required, the waste water is led from the liquid delivery port to the liquid inlet and the second steering valve. If the first filter is needed, the first liquid outlet is opened to lead the waste water to the first filter. If the second filter is needed, the second liquid outlet is opened to lead the waste water to the second filter. If the third filter is needed, the third liquid outlet is opened to lead the waste water to the third filter. If the filtration is completed, the waste water is led from the liquid delivery port to the liquid outlet device and discharged.

[0007] In one embodiment, the number of the valve bodies is three, and the three valve bodies are a first solenoid valve, a second solenoid valve, and a third solenoid valve. The second liquid inlet port is connected to the first liquid outlet port through a pipeline. The first solenoid valve is arranged on the pipeline connecting the second liquid inlet port and the first liquid outlet port, and the first solenoid valve can close or open the first liquid outlet port. The third liquid inlet port is connected to the second liquid outlet port through a pipeline. The second solenoid valve is arranged on the pipeline connecting the third liquid inlet port and the second liquid outlet port, and the second solenoid valve can open or close the second liquid outlet port. The third solenoid valve is arranged on the liquid outlet device, and the third solenoid valve can open or close the liquid outlet channel. By arranging the first solenoid valve at the pipeline connecting the second liquid inlet port and the first liquid outlet port, the user can decide whether the liquid flows from the second liquid inlet port to the second filter or flows out from the first liquid outlet port according to the type of pollutants to be removed, thereby accurately controlling the flow path of the liquid, and can selectively open or close the first solenoid valve as needed to achieve independent control of different filtration stages, so as to facilitate segmented filtration processing. The purpose of setting the second solenoid valve at the pipe connecting the third liquid inlet port and the second liquid outlet port is the same. When the third filter is needed, the user can open the second solenoid valve to allow the wastewater to pass through for higher precision filtering. The third solenoid valve is set on the liquid outlet channel. When the filtered wastewater reaches the filtering target, the third solenoid valve opens the liquid outlet channel and discharges the liquid. When it needs to be filtered again, the third solenoid valve closes the liquid outlet channel to allow the wastewater to enter the second steering valve for re-filtration.

[0008] In one embodiment, the first steering valve is provided with a first valve seat and a first valve body, the first valve seat is provided on the detection assembly, the first valve body is provided on the first valve seat, the first valve seat is provided with the first liquid inlet, the second liquid inlet and the third liquid inlet, and the first valve body can close or open the first liquid inlet, the second liquid inlet and the third liquid inlet. By providing the first valve seat on the detection assembly and the first valve body on the first valve seat, the first valve body can open or close the first liquid inlet, the second liquid inlet and the third liquid inlet, so that the valve body can move along a predetermined path, realize accurate opening and closing of the valve, ensure that wastewater can enter the first steering valve from the corresponding liquid inlet, and realize the filtering function.

[0009] In one embodiment, the second steering valve is provided with a second valve seat and a first valve body, the second valve seat is provided on the detection assembly, the first valve body is provided on the first valve seat, the first valve seat is provided with the first liquid outlet, the second liquid outlet and the third liquid outlet, and the second valve body can close or open the first liquid outlet, the second liquid outlet and the third liquid outlet. By providing the second valve seat on the detection assembly and the second valve body on the second valve seat, the second valve body can open or close the first liquid outlet, the second liquid outlet and the third liquid outlet, so that the valve body can move along a predetermined path, realize accurate opening and closing of the valve, ensure that wastewater can flow back from the corresponding liquid outlet to the corresponding filter, ensure the quality and efficiency of wastewater treatment, and make the treated water quality more in line with the discharge standard or reuse requirements.

[0010] In one embodiment, the number of the detection members is two, and the two detection members are arranged on the support assembly. The first steering valve and the second steering valve are both arranged on the support assembly. One of the two detection members is used to detect the pollutant components in the liquid flowing through the pump body, and the other of the two detection members is used to communicate with the liquid delivery port. By arranging the control assembly on the support assembly, a certain physical protection is provided for the control assembly, improving its reliability and service life, while helping to achieve the integration and compactness of the detection assembly, reducing the complexity of wiring and connection, and making the entire device more concise and beautiful. The first steering valve and the second steering valve are arranged on the support assembly to provide stable support and fixation for the steering valves, ensuring that they will not shake or shift during operation, thereby ensuring the stability and accuracy of the liquid flow, while improving the integrity and stability of the wastewater treatment device, which is beneficial to the normal operation and performance of the device. One detection component detects the pollutant composition in the liquid flowing through the pump body, and can understand in real time the change in pollutant concentration of the wastewater after passing through the pump, so as to judge whether the operation of the pump has produced the expected effect on the removal or transformation of pollutants. The other detection component is connected to the liquid delivery port, and can re-test the final treated liquid before the wastewater is sent out of the treatment equipment to ensure that the discharged or reused liquid meets the relevant environmental protection standards and quality requirements.

[0011] In one embodiment, a second pump body is further included, and the second pump body is connected to the liquid delivery port and the liquid outlet channel respectively. By setting the second pump body and connecting it to the liquid delivery port and the liquid outlet channel, the wastewater is helped to flow smoothly to the detection component, ensuring that the wastewater can flow stably and continuously without being affected by pressure and resistance, so as to achieve the purpose of normal detection of wastewater. By setting the second pump body at the liquid delivery port of the first steering valve, the liquid flow rate sent from the first steering valve can be more accurately controlled to ensure that the supply of liquid in the subsequent process is stable and meets the requirements. When the liquid flow rate needs to be changed, the second pump body can respond quickly to achieve rapid adjustment. At the same time, by effectively controlling the flow and pressure of the liquid delivery port, the device failure and safety hazards caused by excessive pressure or unstable flow are reduced, ensuring that the wastewater treatment device can be carried out normally and safely.

[0012] In one embodiment, a third steering valve is further included, wherein the third steering valve is provided with a third valve inlet and a plurality of third valve outlets which are the same in number as the filters, wherein the third valve inlet of the third steering valve is connected to the pump outlet of the pump body, and the plurality of third valve outlets are respectively connected to the inlet ports of the plurality of filters. By connecting the third valve inlet of the third steering valve to the pump outlet, and connecting the plurality of third valve outlets to the inlet ports of the plurality of filters, wastewater can be directly led to the third steering valve. At this time, the user can choose to open or close the filter corresponding to a specific outlet hole according to different working conditions or liquid properties, thereby realizing flexible filtering operation. For wastewater from different sources or different degrees of pollution, targeted classification treatment can be carried out through filters connected to different outlet holes to achieve the purpose of filtering the corresponding pollutants.

[0013] The second aspect of the present application discloses a wastewater treatment method, which is used in the above-mentioned wastewater treatment device, and is characterized in that the wastewater treatment method comprises the following steps:

[0014] S1. Start the pump to suck in wastewater from an external polluted liquid source, and analyze the pollutant components in the wastewater flowing through the pump through the detection component;

[0015] S2. Controlling the connectivity of multiple filters based on the composition of the pollutants obtained, and obtaining the first filtered wastewater after filtering through the multiple filters;

[0016] S3, transporting the first filtered wastewater to the detection component again for detection after passing through the first diverter valve to obtain the pollutant components in the first filtered wastewater;

[0017] S4. When the first filtered wastewater meets the discharge standard, it is discharged through the liquid discharge device;

[0018] S5. When the detected wastewater does not meet the discharge standard, it enters the second diverter valve, and controls the second diverter valve to turn to the corresponding second liquid outlet according to the pollutant components in the first filtered wastewater, and selects to enter the corresponding filter, repeating the above S~S process until the test is qualified, and obtaining qualified filtered water;

[0019] S6. Open the valve body of the liquid outlet device to discharge the filtered water that has passed the test.

[0020] The second aspect of the present application discloses a wastewater treatment method, which uses a pump body to provide power transmission for wastewater treatment, overcomes pipeline resistance and equipment resistance, ensures that external pollution sources can smoothly enter the wastewater treatment device, and maintains the normal operation of the treatment system. When the pump body sends wastewater to the detection component, the pollutants in the wastewater can be detected, and after judging the pollutants to be filtered, one or more electromagnetic valves are selected to connect multiple filters, and the wastewater after the first filtration enters the first steering valve from the corresponding liquid inlet, and flows from the first steering valve to the detection component to detect whether the filtration is completed. If it is completed, it is discharged from the liquid outlet device. If it needs to be filtered again, the second rotary valve is rotated to connect the corresponding filter to achieve further filtration. After the filtration is completed, the wastewater is passed to the detection component for detection. If it meets the filtration mark, it is discharged from the liquid outlet device. If it does not meet the above filtration process, it is repeated. This treatment method can filter once or multiple times according to the type and quantity of pollutants in the wastewater, so as to achieve the purpose of more thoroughly removing impurities, pollutants and harmful substances, significantly improving the purity of liquids or gases, and meeting higher quality standards and strict water quality requirements.

[0021] In one embodiment, the specific steps of step S2 are as follows:

[0022] S21. Determine the type of filter that the wastewater needs to pass through based on the composition of the pollutants obtained;

[0023] S22, according to the type of filter to be used, the solenoid valves between the filters to be used are opened to connect the filters to be used;

[0024] S23, introducing the wastewater sucked by the pump body into multiple or single filters required for filtration through the third diverter valve;

[0025] S24. The first filtered wastewater is obtained after filtering through multiple or single filters.

[0026] The wastewater is sucked into the wastewater treatment device through the pump body and introduced into the third steering valve. The composition of the pollutants is detected by the detection component, and the switch of the solenoid valve is used according to the composition of the pollutants, so as to achieve the purpose of controlling the on-off of the filter connecting pipes, and finally select the corresponding filter for filtering. This filtering method can avoid the use of unnecessary filters or inappropriate filtering methods, ensure that each filtration can treat the actual pollutants, save filtering time and resources, improve the efficiency of the overall filtering work, and only start the required filters at the same time, reduce unnecessary loss of filters, extend their service life, and reduce the cost of maintenance and replacement of filters.

[0027] In one embodiment, the specific steps of S1 are as follows:

[0028] S11, obtaining the amount of wastewater to be filtered in the filter and the opening state of the liquid outlet device;

[0029] S12, obtaining the remaining amount of wastewater that can be filtered based on the maximum capacity of the filter in use and the existing amount of wastewater;

[0030] S13, analyzing the pollutant components in the wastewater flowing through the pump body through the detection component;

[0031] S14, obtaining the required decrease difference of the pollutant composition according to the pollutant composition in the wastewater and the discharge standard, and determining the required number of cycles according to the required decrease difference and historical data;

[0032] S15. Control the working state and power of the pump body according to the residual amount of waste water, the number of cycles required, and the opening state of the liquid outlet device.

[0033] By obtaining the amount of wastewater to be filtered in the filter, the progress of filtration and resource allocation can be reasonably arranged, the filtration speed can be adjusted or the standby filter can be started to ensure the efficient filtration work. At the same time, the remaining amount of wastewater that can be filtered can be obtained according to the maximum capacity of the filter and the existing amount of wastewater, so as to avoid the filter exceeding its processing capacity due to excessive wastewater, thereby reducing the risk of filter damage and failure. By continuously obtaining this information, the performance of the filter and the entire filtration system can be evaluated, and potential problems or abnormalities can be discovered in time. According to the detection component, the pollutant composition of the wastewater flowing through the pump body and the emission standard are analyzed to obtain the difference in the required decrease of the pollutant composition. The specific amount of pollutant composition that needs to be reduced is clearly known, and targeted treatment measures can be taken to improve the accuracy and efficiency of wastewater treatment. By comparing the difference, the effect of the current treatment method and equipment can be evaluated to determine whether the expected purification goal is achieved. In addition, according to factors such as the remaining amount of wastewater and the number of cycles required, the pump body can be effectively prevented from running for a long time under inappropriate working conditions, reducing wear and failure and extending the service life of the pump body.

[0034] In one embodiment, the specific steps of S14 are as follows:

[0035] The number of cycles N required to make the pollutant concentration reach the standard is calculated in reverse. The formula for the number of cycles is:

[0036]

[0037] Among them, C current is the current pollutant concentration in the wastewater obtained by analysis in step S, C standard is the pre-set upper limit of pollutant concentration for qualified emissions, E is the single-cycle removal efficiency after using the corresponding filter, Indicates rounding up;

[0038] According to the historical data of the system, adjust the filtration efficiency E in the formula or directly adjust the number of cycles N;

[0039] Monitor the decrease in pollutant concentration in real time, and adjust the number of cycles and filter selection in a timely manner through continuous operating data.

[0040] By calculating the number of cycles, we can ensure that the pollutant concentration in the wastewater can continue to decrease after treatment and eventually meet the emission standards, thereby ensuring the reliability of the treatment effect. We can also dynamically adjust the number of cycles and filters based on the system's historical data to avoid over- or under-treatment, making the treatment process more efficient, accurately matching treatment needs, reducing unnecessary consumption of energy, materials and time, and achieving the goal of optimal resource utilization. By precisely controlling the treatment process, we can reduce equipment operating time and maintenance costs, as well as the frequency of filter replacement, thereby reducing overall treatment costs.

[0041] In one embodiment, the step S5 further comprises the following steps:

[0042] Get the reduction in pollutant content of wastewater after it passes through the filter:

[0043] ΔC filter =C in -C out

[0044] Among them, C in is the initial pollutant concentration, C out is the pollutant concentration after filtration;

[0045] Record the attenuation value ΔC after each round of filtration during multiple filtration processes capacity ;

[0046] By fitting the historical attenuation values, the attenuation trend model of the filter is established. The model is as follows:

[0047] Ccurrent =C max ×e -λt

[0048] Among them, t represents the round of use, and λ is the decay coefficient;

[0049] Get the minimum filtration flow requirement Q for wastewater treatment min , and obtain the minimum filtration capacity C of the filter corresponding to the minimum filtration flow requirement min ;

[0050] Calculate the time it takes for the filter's filtering capacity to decay to the minimum filtering capacity, that is, the filter's service life. The calculation formula for the service life tL is as follows:

[0051]

[0052] When the service life of the filter is less than the preset value, a replacement prompt will be issued.

[0053] By obtaining the decrease in pollutant components after passing through the filter to record the attenuation value after each filtration, and establishing an attenuation trend model, it is possible to predict when the filter may reach its effective service life in the future based on the attenuation trend, and prepare for replacement or maintenance in advance, which helps to formulate a more reasonable filter maintenance and replacement plan, avoid waste of resources due to premature replacement or reduced treatment effect due to late replacement, and analyze factors that may affect the filtration effect based on the attenuation trend, provide managers with data-based decision support, make the operation and management of the filtration system more scientific and efficient, and thus optimize and improve the entire filtration process. BRIEF DESCRIPTION OF THE DRAWINGS

[0054] Figure 1 is a first stereoscopic view of a wastewater treatment device;

[0055] Figure 2 is a second stereoscopic view of a wastewater treatment device;

[0056] Figure 3 is a third stereoscopic view of a wastewater treatment device;

[0057] Figure 4 is a fourth stereoscopic view of a wastewater treatment device;

[0058] Figure 5 is a fifth perspective view of a wastewater treatment device;

[0059] Figure 6 is a sixth perspective view of a wastewater treatment device;

[0060] Figure 7 is a seventh stereoscopic view of a wastewater treatment device;

[0061] Figure 8 is an eighth perspective view of a wastewater treatment device;

[0062] Fig. 9 is a schematic diagram of a wastewater treatment method;

[0063] Fig.10 A schematic diagram of a process for starting the pump body to suck in wastewater from an external polluted liquid source and analyzing the pollutant components in the wastewater flowing through the pump body through a detection component;

[0064] Fig.11 The present invention is a flow chart of controlling the connectivity of multiple filters by obtaining the composition of pollutants and obtaining the first filtered wastewater after filtering through multiple filters.

[0065] The corresponding relationship between the reference numerals and the component names is as follows:

[0066] 1 detection component, 11 support component, 12 detection part;

[0067] 2 pump body, 201 pump liquid inlet, 202 pump liquid outlet;

[0068] 3 first filter, 301 first filter tank, 302 first liquid inlet port, 303 first liquid outlet port, 304 first reflux liquid outlet port, 305 first reflux liquid inlet port;

[0069] 4 second filter, 401 second filter tank, 402 second liquid inlet port, 403 second liquid outlet port, 404 second reflux liquid outlet port, 405 second reflux liquid inlet port;

[0070] 5 a third filter, 501 a third filter tank, 502 a third liquid inlet port, 503 a third reflux liquid outlet port, 504 a third reflux liquid inlet port;

[0071] 6 first steering valve, 61 first valve seat, 62 first valve body, 601 first liquid inlet, 602 second liquid inlet, 603 third liquid inlet, 604 liquid delivery port;

[0072] 7 second steering valve, 71 second valve seat, 72 second valve body, 701 first liquid outlet, 702 second liquid outlet, 703 third liquid outlet, 704 liquid inlet;

[0073] 8 liquid outlet component, 801 liquid outlet channel;

[0074] 10 first solenoid valve;

[0075] 20 second solenoid valve;

[0076] 30 Third solenoid valve. DETAILED DESCRIPTION

[0077] In order to more clearly understand the above-mentioned purpose, features and advantages of the present invention, the present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that the embodiments of the present application and the features in the embodiments can be combined with each other without conflict.

[0078] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the protection scope of the present invention is not limited to the specific embodiments disclosed below.

[0079] The wastewater treatment device and wastewater treatment method according to some embodiments of the present invention are described below with reference to the accompanying drawings.

[0080] Example 1

[0081] like Figures 1 to 8 As shown, the present embodiment discloses a wastewater treatment device, which includes: a detection component 1, which includes a support component 11 and a detection member 12; a control component, which is arranged on the support component 11; a pump body 2, which is provided with a pump inlet 201, which is used to communicate with an external pollution source, and the pump body 2 is provided with a pump outlet 202, and the detection component 1 is used to detect the pollutant components in the liquid flowing through the pump body 2; a plurality of filters, which are connected in sequence through pipelines, wherein the liquid inlet port of the first filter of the plurality of filters connected in sequence is connected to the pump outlet 202 provided on the pump body 2; a first steering valve 6, which is provided with a plurality of first valve inlets which are the same as the number of filters, and the plurality of first valve inlets are respectively connected to the plurality of filters, and the first steering valve 6 is provided with There is a liquid delivery port 604, and the multiple first valve liquid inlets of the first steering valve 6 can be connected to the liquid delivery port 604 respectively; a second steering valve 7, the second steering valve 7 is provided with a liquid inlet 704, the second steering valve 7 is provided with a plurality of second valve liquid outlets which are the same as the number of filters, and the plurality of second valve liquid outlets are connected to the plurality of filters respectively, and the second steering valve 7 can block the liquid inlet 704 or connect the liquid inlet 704 with the plurality of second valve liquid outlets respectively; a liquid outlet component 8, the liquid outlet component 8 is provided with a liquid outlet channel 801, the liquid outlet channel 801 is connected to the detection component 1, the liquid delivery port 604 and the liquid inlet 704, and the detection component 1 is connected to the liquid delivery port 604 via the liquid outlet channel 801; at least one valve body, the number of valve bodies is the same as the number of filters, the valve bodies are arranged on the pipeline connecting adjacent filters, and one of the valve bodies is arranged on the liquid outlet device 8.

[0082] The present application discloses a wastewater treatment device. Since the detection component 1 is connected to a pipeline connecting an external liquid source and a pump body 2, the wastewater is sucked from a pump liquid inlet 201 by the pump body 2 and guided into the detection component 1, and the detection component 1 is used to detect pollutants that need to be filtered in the wastewater. After knowing the pollutants that need to be filtered, since the detection component 1 is connected with the pipeline connecting the pump body 2 and the filter, the pollutants go out from the pump outlet 202 provided in the pump body 2 and enter the filter. The user can use multiple valve bodies to control the connection or closing of multiple filters to achieve the effect of initial filtering of one or more pollutants. At this time, the wastewater after the initial filtration enters the liquid inlet corresponding to the first steering valve 6 and is output from the liquid delivery port 604, and then enters the detection component 1 again for detection. If there are still pollutants that need to be filtered, they enter the second steering valve 7 through the liquid inlet 704 provided by the second steering valve 7, and open the corresponding liquid outlet to flow into the corresponding filter for secondary filtration. After the secondary filtration is completed, it enters the first steering valve 6 again and repeats the above process until the pollutants in the wastewater are completely removed or meet the user's satisfaction, and finally flows out from the liquid outlet channel 801 provided in the liquid outlet device 8 to obtain clean liquid. This multiple and multi-filter filtering structure can reduce the errors and fluctuations that may occur in a single filtration, making the treated water quality more stable and reliable, meeting more stringent emission standards or reuse requirements. At the same time, for wastewater with complex components and difficult to treat, multiple filtrations can gradually decompose and remove various types of pollutants, thereby improving the overall treatment effect.

[0083] like Figures 1 to 8As shown, in addition to the features of the above embodiments, the present embodiment further defines that: the multiple filters are a first filter 3, a second filter 4 and a third filter 5, the first filter 3 is provided with a first filter tank 301, the first filter 3 is provided with a first liquid inlet port 302, a first liquid outlet port 303, a first reflux liquid outlet port 304 and a first reflux liquid inlet port 305 connected to the first filter tank 301, the second filter 4 is provided with a second filter tank 401, the second filter 4 is provided with a second liquid inlet port 402, a second liquid outlet port 403, a second reflux liquid outlet port 404 and a second reflux liquid inlet port 405 connected to the second filter tank 401, the third filter 5 is provided with a third filter tank 501, the third filter 5 is provided with a third liquid inlet port 502, a third reflux liquid outlet port 503 and a third reflux liquid inlet port 504 connected to the third filter tank 501, the second liquid inlet port 402 and the first liquid outlet port 303 can be connected or disconnected, and the third liquid inlet port 502 and The second liquid outlet port 403 can be connected or disconnected; the number of the first valve liquid inlets of the first steering valve 6 is the first liquid inlet 601, the second liquid inlet 602 and the third liquid inlet 603, the first liquid inlet 601, the second liquid inlet 602 and the third liquid inlet 603 can be connected to the liquid delivery port 604 respectively, the first liquid inlet 601 is connected to the first reflux liquid outlet 304, the second liquid inlet 602 is connected to the second reflux liquid outlet 404, the third liquid inlet 603 is connected to the third reflux liquid outlet The liquid outlet 504 is connected; the number of the multiple second valve liquid outlets of the second steering valve 7 is the first liquid outlet 701, the second liquid outlet 702 and the third liquid outlet 703, the first liquid outlet 701, the second liquid outlet 702 and the third liquid outlet 703 can be connected with the liquid inlet 704 respectively, the first liquid outlet 701 is connected with the first reflux liquid inlet 305, the second liquid outlet 702 is connected with the second reflux liquid inlet 405, and the third liquid outlet 703 is connected with the third reflux liquid inlet 503.By setting a first filter tank 301 in the first filter 3, and providing a first liquid inlet port 302, a first liquid outlet port 303, a first reflux liquid outlet port 304 and a first reflux liquid inlet port 305 connected to the first filter tank 301, a second filter tank 401 is provided in the second filter 4, and a second liquid inlet port 402, a second liquid outlet port 403, a second reflux liquid outlet port 404 and a second reflux liquid inlet port 405 connected to the second filter tank 401 are provided, and a third filter tank 501 is provided in the third filter 5, and a third liquid inlet port 502, a third reflux liquid outlet port 503 and a third reflux liquid inlet port 504 connected to the third filter tank 501 are provided, the user can select one or more filters according to the type of pollutants, and turn the first steering valve 6 to the corresponding liquid inlet port. When the first filter 3 is used, the third filter tank 501 is provided. A first liquid inlet 601 provided in a steering valve 6 is opened. When the second filter 4 is used, the second liquid inlet 602 provided in the first steering valve 6 is opened. When the third filter 5 is used, the third liquid inlet 603 provided in the first steering valve 6 is opened. When secondary or multiple filtrations are required, the waste water is led from the liquid delivery port 604 to the liquid inlet 704 and the second steering valve 7. If the first filter 3 is required, the first liquid outlet 701 is opened to lead the waste water to the first filter 3. If the second filter 4 is required, the second liquid outlet 702 is opened to lead the waste water to the second filter 4. If the third filter 5 is required, the third liquid outlet 703 is opened to lead the waste water to the third filter 5. If the filtration is completed, the waste water is led from the liquid delivery port to the liquid outlet device 8 and discharged.

[0084] like Figures 2 to 8As shown, in addition to the features of the above-mentioned embodiments, the present embodiment is further defined as follows: the number of valve bodies is three, the three valve bodies are a first solenoid valve 10, a second solenoid valve 20 and a third solenoid valve 30, the second liquid inlet port 402 is connected to the first liquid outlet port 303 through a pipeline, the first solenoid valve 10 is arranged on a pipeline connecting the second liquid inlet port 402 and the first liquid outlet port 303, the first solenoid valve 10 can close or open the first liquid outlet port 303, the third liquid inlet port 502 is connected to the second liquid outlet port 403 through a pipeline, the second solenoid valve 20 is arranged on a pipeline connecting the third liquid inlet port 502 and the second liquid outlet port 403, the second solenoid valve 20 can open or close the second liquid outlet port 403, the third solenoid valve 30 is arranged on the liquid outlet device 8, and the third solenoid valve 30 can open or close the liquid outlet channel 801. By setting the first solenoid valve 10 at the pipe connecting the second liquid inlet port 402 and the first liquid outlet port 303, the user can decide whether the liquid flows from the second liquid inlet port 402 to the second filter 4 or flows out from the first liquid outlet port 303 according to the type of pollutants to be removed, thereby accurately controlling the flow path of the liquid. At the same time, the first solenoid valve 10 can be selectively opened or closed as needed to achieve independent control of different filtering stages, which is convenient for segmented filtering. The purpose of setting the second solenoid valve 20 at the pipe connecting the third liquid inlet port 502 and the second liquid outlet port 403 is the same. When the third filter 5 is needed, the user can open the second solenoid valve 20 to allow the wastewater to pass through for higher precision filtering. The third solenoid valve 30 is set on the liquid outlet channel 801. When the filtered wastewater reaches the filtering target, the third solenoid valve 30 opens the liquid outlet channel 801 and discharges the liquid. When it is necessary to filter again, the third solenoid valve 30 closes the liquid outlet channel 801 to allow the wastewater to enter the second steering valve 7 for re-filtration.

[0085] like Figure 1 , Figure 6 , Figure 7 and Figure 8As shown, in addition to the features of the above-mentioned embodiment, this embodiment further defines that: the first steering valve 6 is provided with a first valve seat 61 and a first valve body 62, the first valve seat 61 is provided on the detection assembly 1, the first valve body 62 is provided on the first valve seat 61, the first valve seat 61 is provided with a first liquid inlet 601, a second liquid inlet 602 and a third liquid inlet 603, and the first valve body 62 can close or open the first liquid inlet 601, the second liquid inlet 602 and the third liquid inlet 603. By providing the first valve seat 61 on the detection assembly 1 and the first valve body 62 on the first valve seat 61, the first valve body 62 can open or close the first liquid inlet 601, the second liquid inlet 602 and the third liquid inlet 603, so that the valve body can move along a predetermined path, realize accurate switching action of the valve, ensure that wastewater can enter the first steering valve from the corresponding liquid inlet, and realize the filtering function.

[0086] like Figure 1 , Figure 6 , Figure 7 and Figure 8 As shown, in addition to the features of the above embodiment, this embodiment further defines that: the second steering valve 7 is provided with a second valve seat 71 and a first valve body 72, the second valve seat 71 is provided on the detection assembly 1, the first valve body 72 is provided on the first valve seat 71, the first valve seat 71 is provided with a first liquid outlet 701, a second liquid outlet 702 and a third liquid outlet 703, and the second valve body 72 can close or open the first liquid outlet 701, the second liquid outlet 702 and the third liquid outlet 703. By providing the second valve seat 71 on the detection assembly 1 and the second valve body 72 on the second valve seat 71, the second valve body 72 can open or close the first liquid outlet 701, the second liquid outlet 702 and the third liquid outlet 703, so that the valve body can move along a predetermined path, realize accurate opening and closing action of the valve, ensure that wastewater can flow back from the corresponding liquid outlet to the corresponding filter, ensure the quality and efficiency of wastewater treatment, and make the treated water quality more in line with the discharge standard or reuse requirements.

[0087] like Figure 2 , Figure 6 and Figure 7As shown, in addition to the features of the above-mentioned embodiment, this embodiment further defines that: the number of detection members 12 is two, the two detection members 12 are arranged on the support assembly 11, the first steering valve 6 and the second steering valve 7 are both arranged on the support assembly 11, one of the two detection members 12 is used to detect the pollutant components in the liquid flowing through the pump body 2, and the other of the two detection members 12 is used to communicate with the liquid delivery port 604. By arranging the control assembly 12 on the support assembly 11, a certain physical protection is provided for the control assembly 12, and its reliability and service life are improved. At the same time, it is helpful to realize the integration and compactness of the detection assembly 1, reduce the complexity of wiring and connection, and make the whole device more concise and beautiful. The first steering valve 6 and the second steering valve 7 are arranged on the support assembly 11 to provide a stable support and fixation for the steering valves, ensuring that they will not shake or shift during operation, thereby ensuring the stability and accuracy of the liquid flow, and at the same time improving the integrity and stability of the wastewater treatment device, which is conducive to the normal operation and performance of the device. One detection component detects the pollutant composition in the liquid flowing through the pump body, and can understand in real time the change in pollutant concentration of the wastewater after passing through the pump, so as to judge whether the operation of the pump has produced the expected effect on the removal or transformation of pollutants. Another detection component is connected to the liquid delivery port 604, and can re-test the final treated liquid before the wastewater is sent out of the treatment equipment to ensure that the discharged or reused liquid meets the relevant environmental protection standards and quality requirements.

[0088] like Figure 2 and Figure 7 As shown, in addition to the features of the above-mentioned embodiment, this embodiment is further defined as follows: it also includes a second pump body, which is connected to the liquid delivery port 604 and the liquid outlet channel 801 respectively. By setting the second pump body and connecting it to the liquid delivery port 604 and the liquid outlet channel 801, the wastewater is helped to flow smoothly to the detection component 1, ensuring that the wastewater can flow stably and continuously without being affected by pressure and resistance, so as to achieve the purpose of normal detection of wastewater. The second pump body is set at the liquid delivery port 604 of the first steering valve 6, which can more accurately control the liquid flow rate sent from the first steering valve 6, ensure that the supply of liquid in the subsequent process is stable and meets the requirements, and when the liquid flow rate needs to be changed, the second pump body can respond quickly to achieve rapid adjustment. At the same time, by effectively controlling the flow rate and pressure of the liquid delivery port 604, the device failure and safety hazards caused by excessive pressure or unstable flow rate are reduced, ensuring that the wastewater treatment device can be carried out normally and safely.

[0089] like Figures 1 to 8As shown, in addition to the features of the above-mentioned embodiment, this embodiment is further defined as follows: it also includes a third steering valve, the third steering valve is provided with a third valve inlet and a plurality of third valve outlets which are the same number as the filters, the third valve inlet of the third steering valve is connected to the pump outlet 202 of the pump body 2, and the plurality of third valve outlets are respectively connected to the inlet ports of the plurality of filters. By connecting the third valve inlet of the third steering valve to the pump outlet 202, and connecting the plurality of third valve outlets to the inlet ports of the plurality of filters, the wastewater can be directly led to the third steering valve, at which time the user can choose to open or close the filter corresponding to a specific outlet hole according to different working conditions or liquid properties, thereby realizing flexible filtering operation. For wastewater from different sources or different pollution levels, targeted classification treatment can be carried out through filters connected to different outlet holes, so as to achieve the purpose of filtering the corresponding pollutants.

[0090] Example 2

[0091] like Figures 9 to 11 As shown, this embodiment discloses a wastewater treatment method, which is used in the above-mentioned wastewater treatment device, and the wastewater treatment method includes the following steps:

[0092] S1, start the pump body 2 to suck in wastewater from an external polluted liquid source, and analyze the pollutant components in the wastewater flowing through the pump body 2 through the detection component 1;

[0093] S2. Controlling the connectivity of multiple filters based on the composition of the pollutants obtained, and obtaining the first filtered wastewater after filtering through the multiple filters;

[0094] S3, the first filtered wastewater is transported to the detection component 1 again after passing through the first diverter valve 6 for detection, and the pollutant components in the first filtered wastewater are obtained;

[0095] S4, when the first filtered wastewater detected meets the discharge standard, it is discharged through the liquid outlet device 8;

[0096] S5, when the detected wastewater does not meet the discharge standard, it enters the second diverter valve 7, and controls the second diverter valve 7 to turn to the corresponding second liquid outlet according to the pollutant components in the first filtered wastewater, and selects to enter the corresponding filter, repeating the above S2 to S4 processes until the test is qualified, and obtaining qualified filtered water;

[0097] S6. Open the valve body of the liquid outlet device 8 to discharge the filtered water that has passed the test.

[0098] The second aspect of the present application discloses a wastewater treatment method, which uses a pump body 2 to provide power transmission for wastewater treatment, overcomes pipeline resistance and equipment resistance, ensures that external pollution sources can smoothly enter the wastewater treatment device, and maintains the normal operation of the treatment system. When the pump body 2 sends wastewater to the detection component 1, the pollutants present in the wastewater can be detected, and after judging the pollutants to be filtered, one or more electromagnetic valves are selected to connect multiple filters, and the wastewater after the first filtration enters the first diverter valve 6 from the corresponding liquid inlet, and flows from the first diverter valve 6 to the detection component 1 to detect whether the filtration is completed, if completed, it is discharged from the liquid outlet device 8, if it needs to be filtered again, the second rotary valve 7 is rotated to connect the corresponding filter to achieve further filtration, and after the filtration is completed, the wastewater is passed to the detection component 1 for detection, if it meets the filtration mark, it is discharged from the liquid outlet device 8, and if it does not meet the above filtration process, the above filtration process is repeated. This treatment method can filter once or multiple times according to the type and quantity of pollutants in the wastewater, so as to more thoroughly remove impurities, pollutants and harmful substances, significantly improve the purity of liquid or gas, and meet higher quality standards and strict water quality requirements.

[0099] like Fig.11 As shown, in addition to the features of the above embodiment, this embodiment further defines: the specific steps of step S2 are as follows:

[0100] S21. Determine the type of filter that the wastewater needs to pass through based on the composition of the pollutants obtained;

[0101] S22, according to the type of filter to be used, the solenoid valves between the filters to be used are opened to connect the filters to be used;

[0102] S23, introducing the wastewater sucked by the pump body 2 into multiple or single filters required for filtration through the third diverter valve;

[0103] S24. The first filtered wastewater is obtained after filtering through multiple or single filters.

[0104] The wastewater is sucked into the wastewater treatment device through the pump body 2 and introduced into the third steering valve. The composition of the pollutants is detected by the detection component 1, and the switch of the solenoid valve is used according to the composition of the pollutants, so as to achieve the purpose of controlling the on-off of the filter connecting pipes, and finally select the corresponding filter for filtering. This filtering method can avoid the use of unnecessary filters or inappropriate filtering methods, ensure that each filtration can treat the actual pollutants, save filtering time and resources, improve the efficiency of the overall filtering work, and only start the required filters, reduce unnecessary loss of filters, extend their service life, and reduce the cost of maintenance and replacement of filters.

[0105] like Fig.10As shown, in addition to the features of the above embodiment, this embodiment further defines: the specific steps of S1 are as follows:

[0106] S11, obtaining the amount of wastewater to be filtered in the filter and the opening state of the liquid outlet device 8;

[0107] S12, obtaining the remaining amount of wastewater that can be filtered based on the maximum capacity of the filter in use and the existing amount of wastewater;

[0108] S13, analyzing the pollutant components in the wastewater flowing through the pump body 2 through the detection component 1;

[0109] S14, obtaining the required decrease difference of the pollutant composition according to the pollutant composition in the wastewater and the discharge standard, and determining the required number of cycles according to the required decrease difference and historical data;

[0110] S15, controlling the working state of the pump body 2 and the power of the pump body 2 according to the remaining amount of waste water, the number of cycles required and the opening state of the liquid outlet device 8.

[0111] By obtaining the amount of wastewater to be filtered in the filter, the progress of filtration and resource allocation can be reasonably arranged, the filtration speed can be adjusted or the standby filter can be started to ensure the efficient filtration work. At the same time, the remaining amount of wastewater that can be filtered can be obtained according to the maximum capacity of the filter and the existing amount of wastewater, so as to avoid the filter exceeding its processing capacity due to excessive wastewater, thereby reducing the risk of filter damage and failure. By continuously obtaining this information, the performance of the filter and the entire filtration system can be evaluated, and potential problems or abnormalities can be discovered in time. According to the detection component 1, the wastewater pollutant components flowing through the pump body 2 and the emission standards are analyzed to obtain the required decrease in the pollutant components. The specific amount of pollutant components that need to be reduced is clearly known, and targeted treatment measures can be taken to improve the accuracy and efficiency of wastewater treatment. By comparing the difference, the effect of the current treatment method and equipment can be evaluated to determine whether the expected purification target is achieved. In addition, according to factors such as the wastewater residue and the number of cycles required, the pump body 2 can be effectively prevented from running for a long time under inappropriate working conditions, reducing wear and failure, and extending the service life of the pump body 2.

[0112] like Fig.10 As shown, in addition to the features of the above embodiment, this embodiment further defines: the specific steps of S14 are as follows:

[0113] The number of cycles N required to make the pollutant concentration reach the standard is calculated in reverse. The formula for the number of cycles is:

[0114]

[0115] Among them, C currentis the current pollutant concentration in the wastewater obtained by analysis in step S13, C standard is the pre-set upper limit of pollutant concentration for qualified emissions, E is the single-cycle removal efficiency after using the corresponding filter, Indicates rounding up;

[0116] According to the historical data of the system, adjust the filtration efficiency E in the formula or directly adjust the number of cycles N;

[0117] Monitor the decrease in pollutant concentration in real time, and adjust the number of cycles and filter selection in a timely manner through continuous operating data.

[0118] By calculating the number of cycles, we can ensure that the pollutant concentration in the wastewater can continue to decrease after treatment and eventually meet the emission standards, thereby ensuring the reliability of the treatment effect. We can also dynamically adjust the number of cycles and filters based on the system's historical data to avoid over- or under-treatment, making the treatment process more efficient, accurately matching treatment needs, reducing unnecessary consumption of energy, materials and time, and achieving the goal of optimal resource utilization. By precisely controlling the treatment process, we can reduce equipment operating time and maintenance costs, as well as the frequency of filter replacement, thereby reducing overall treatment costs.

[0119] like Fig. 9 As shown, in addition to the features of the above embodiment, this embodiment further defines that: S5 further includes the following steps:

[0120] Get the reduction in pollutant content of wastewater after it passes through the filter:

[0121] ΔC filter =C in -C out

[0122] Among them, C in is the initial pollutant concentration, C out is the pollutant concentration after filtration;

[0123] Record the attenuation value ΔC after each round of filtration during multiple filtration processes capacity ;

[0124] By fitting the historical attenuation values, the attenuation trend model of the filter is established. The model is as follows:

[0125] C current =C max ×e -λt

[0126] Among them, t represents the round of use, and λ is the decay coefficient;

[0127] Get the minimum filtration flow requirement Q for wastewater treatment min, and obtain the minimum filtration capacity C of the filter corresponding to the minimum filtration flow requirement min ;

[0128] Calculate the time it takes for the filter's filtering capacity to decay to the minimum filtering capacity, that is, the filter's service life. The calculation formula for the service life tL is as follows:

[0129]

[0130] When the service life of the filter is less than the preset value, a replacement prompt will be issued.

[0131] By obtaining the decrease in pollutant components after passing through the filter to record the attenuation value after each filtration, and establishing an attenuation trend model, it is possible to predict when the filter may reach its effective service life in the future based on the attenuation trend, and prepare for replacement or maintenance in advance, which helps to formulate a more reasonable filter maintenance and replacement plan, avoid waste of resources due to premature replacement or reduced treatment effect due to late replacement, and analyze factors that may affect the filtration effect based on the attenuation trend, provide managers with data-based decision support, make the operation and management of the filtration system more scientific and efficient, and thus optimize and improve the entire filtration process.

[0132] The technical features of the above-described embodiments may be arbitrarily combined. To make the description concise, not all possible combinations of the technical features in the above-described embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0133] The above-mentioned embodiments only express several implementation methods of the present invention, and the descriptions thereof are relatively specific and detailed, but they cannot be understood as limiting the scope of the invention patent. It should be pointed out that, for ordinary technicians in this field, several variations and improvements can be made without departing from the concept of the present invention, and these all belong to the protection scope of the present invention. Therefore, the protection scope of the patent of the present invention shall be subject to the attached claims.

Claims

1. A wastewater treatment method, characterized in that: The wastewater treatment method comprises the following steps: S1, starting the pump body (2) to suck in wastewater from an external polluted liquid source, and analyzing the pollutant components in the wastewater flowing through the pump body (2) through the detection component (1); S2. Controlling the connectivity of multiple filters based on the composition of the pollutants obtained, and obtaining the first filtered wastewater after filtering through the multiple filters; S3, the first filtered wastewater is transported to the detection component (1) again after passing through the first diverter valve (6) for detection, so as to obtain the pollutant components in the first filtered wastewater; S4, when the first filtered wastewater meets the discharge standard, it is discharged through the liquid discharge device (8); S5, when the detected wastewater does not meet the discharge standard, it enters the second diverter valve (7), and controls the second diverter valve (7) to turn to the corresponding second liquid outlet according to the pollutant components in the first filtered wastewater, and selects to enter the corresponding filter, and repeats the above S2 to S4 processes until the test is qualified, and qualified filtered water is obtained; S6, opening the valve body of the liquid outlet device (8) to discharge the filtered water that has passed the test; The specific steps of S1 are as follows: S11, obtaining the amount of wastewater to be filtered in the filter and the opening state of the liquid outlet device (8); S12, obtaining the remaining amount of wastewater that can be filtered based on the maximum capacity of the filter in use and the existing amount of wastewater; S13, analyzing the pollutant components in the wastewater flowing through the pump body (2) through the detection component (1); S14, obtaining the required decrease difference of the pollutant composition according to the pollutant composition in the wastewater and the discharge standard, and determining the required number of cycles according to the required decrease difference and historical data; S15, controlling the working state of the pump body (2) and the power of the pump body (2) according to the residual amount of waste water, the number of cycles required, and the opening state of the liquid outlet device (8); The specific steps of S14 are as follows: The number of cycles N required to make the pollutant concentration reach the standard is calculated in reverse. The formula for the number of cycles is: Among them, C current is the current pollutant concentration in the wastewater obtained by analysis in step S13, C standard is the pre-set upper limit of pollutant concentration for qualified emissions, E is the single-cycle removal efficiency after using the corresponding filter, Indicates rounding up; According to the historical data of the system, adjust the filtration efficiency E in the formula or directly adjust the number of cycles N; Monitor the decrease of pollutant concentration in real time, and adjust the cycle times and filter selection in time through continuous operation data; The S5 also includes the following steps: Get the reduction in pollutant content of wastewater after it passes through the filter: ΔC filter =C in -C out Among them, C in is the initial pollutant concentration, C out is the pollutant concentration after filtration; Record the attenuation value ΔC after each round of filtration during multiple filtration processes capacity ; By fitting the historical attenuation values, the attenuation trend model of the filter is established. The model is as follows: C current =C max ×e -λt Among them, t represents the round of use, and λ is the decay coefficient; Get the minimum filtration flow requirement Q for wastewater treatment min , and obtain the minimum filtration capacity C of the filter corresponding to the minimum filtration flow requirement min ; Calculate the time it takes for the filter's filtering capacity to decay to the minimum filtering capacity, that is, the filter's service life. The calculation formula for the service life tL is as follows: When the service life of the filter is less than the preset value, a replacement prompt will be issued.

2. The wastewater treatment method according to claim 1, characterized in that: The specific steps of step S2 are as follows: S21. Determine the type of filter that the wastewater needs to pass through based on the composition of the pollutants obtained; S22, according to the type of filter to be used, the solenoid valves between the filters to be used are opened to connect the filters to be used; S23, directing the waste water sucked by the pump body (2) through the third diverter valve to the multiple or single filters required for filtration; S24. The first filtered wastewater is obtained after filtering through multiple or single filters.

3. A wastewater treatment device for executing the wastewater treatment method according to claim 1 or 2, characterized in that: The wastewater treatment device comprises: A detection assembly (1), the detection assembly (1) comprising a support assembly (11) and a detection member (12); A control component, wherein the control component is arranged on the support component (11); A pump body (2), the pump body (2) being provided with a pump liquid inlet (201), the pump liquid inlet (201) of the pump body (2) being used to communicate with an external pollution source, the pump body (2) being provided with a pump liquid outlet (202), the detection component (1) being used to detect pollutant components in liquid flowing through the pump body (2); A plurality of filters, wherein the plurality of filters are connected in sequence through pipelines, wherein a liquid inlet port of a first filter of the plurality of filters connected in sequence is connected to the pump liquid outlet (202) provided on the pump body (2); a first steering valve (6), the first steering valve (6) being provided with a plurality of first valve liquid inlets having the same number as the number of the filters, the plurality of first valve liquid inlets being respectively connected to the plurality of filters, the first steering valve (6) being provided with a liquid delivery port (604), the plurality of first valve liquid inlets of the first steering valve (6) being respectively connected to the liquid delivery port (604); a second steering valve (7), wherein the second steering valve (7) is provided with a liquid inlet (704), the second steering valve (7) is provided with a plurality of second valve liquid outlets having the same number as the filters, the plurality of second valve liquid outlets being respectively connected to the plurality of filters, and the second steering valve (7) is capable of blocking the liquid inlet (704) or connecting the liquid inlet (704) to the plurality of second valve liquid outlets; A liquid outlet device (8), the liquid outlet device (8) being provided with a liquid outlet channel (801), the liquid outlet channel (801) being in communication with the detection component (1), the liquid delivery port (604) and the liquid inlet (704), and the detection component (1) being in communication with the liquid delivery port (604) via the liquid outlet channel (801); At least one valve body, the number of the valve bodies is the same as the number of the filters, the valve bodies are arranged on a pipeline connecting adjacent filters, and one of the valve bodies is arranged on the liquid outlet device (8).

4. The wastewater treatment device according to claim 3, characterized in that: The plurality of filters are a first filter (3), a second filter (4) and a third filter (5); the first filter (3) is provided with a first filter tank (301); the first filter (3) is provided with a first liquid inlet port (302) connected to the first filter tank (301), a first liquid outlet port (303), a first reflux liquid outlet port (304) and a first reflux liquid inlet port (305); the second filter (4) is provided with a second filter tank (401); the second filter (4) is provided with a second liquid inlet port (402) connected to the second filter tank (401). ), a second liquid outlet port (403), a second reflux liquid outlet port (404) and a second reflux liquid inlet port (405), the third filter (5) is provided with a third filter tank (501), the third filter (5) is provided with a third liquid inlet port (502) connected to the third filter tank (501), a third reflux liquid outlet port (503) and a third reflux liquid inlet port (504), the second liquid inlet port (402) and the first liquid outlet port (303) can be connected or disconnected, and the third liquid inlet port (502) and the second liquid outlet port (403) can be connected or disconnected; The number of the plurality of first valve liquid inlets of the first steering valve (6) is a first liquid inlet (601), a second liquid inlet (602) and a third liquid inlet (603); the first liquid inlet (601), the second liquid inlet (602) and the third liquid inlet (603) can be respectively connected to the liquid delivery port (604); the first liquid inlet (601) is connected to the first reflux liquid outlet (304); the second liquid inlet (602) is connected to the second reflux liquid outlet (404); and the third liquid inlet (603) is connected to the third reflux liquid outlet (503); The number of the multiple second valve liquid outlets of the second steering valve (7) is a first liquid outlet (701), a second liquid outlet (702) and a third liquid outlet (703); the first liquid outlet (701), the second liquid outlet (702) and the third liquid outlet (703) can be respectively connected to the liquid inlet (704); the first liquid outlet (701) is connected to the first reflux liquid inlet (305), the second liquid outlet (702) is connected to the second reflux liquid inlet (405), and the third liquid outlet (703) is connected to the third reflux liquid inlet (504).

5. The wastewater treatment device according to claim 4, characterized in that: The number of the valve bodies is three, and the three valve bodies are a first solenoid valve (10), a second solenoid valve (20) and a third solenoid valve (30); the second liquid inlet port (402) and the first liquid outlet port (303) are connected via a pipeline; the first solenoid valve (10) is arranged on a pipeline connecting the second liquid inlet port (402) and the first liquid outlet port (303); the first solenoid valve (10) can close or open the first liquid outlet port (303); the third liquid inlet port (502) and the second liquid outlet port (403) are connected via a pipeline; the second solenoid valve (20) is arranged on a pipeline connecting the third liquid inlet port (502) and the second liquid outlet port (403); the second solenoid valve (20) can open or close the second liquid outlet port (403); the third solenoid valve (30) is arranged on the liquid outlet device (8); the third solenoid valve (30) can open or close the liquid outlet channel (801).

6. The wastewater treatment device according to claim 4, characterized in that: The first steering valve (6) is provided with a first valve seat (61) and a first valve body (62); the first valve seat (61) is arranged on the detection component (1); the first valve body (62) is arranged on the first valve seat (61); the first valve seat (61) is provided with the first liquid inlet (601), the second liquid inlet (602) and the third liquid inlet (603); the first valve body (62) can close or open the first liquid inlet (601), the second liquid inlet (602) and the third liquid inlet (603); And / or the second steering valve (7) is provided with a second valve seat (71) and a second valve body (72), the second valve seat (71) is arranged on the detection component (1), the second valve body (72) is arranged on the second valve seat (71), the second valve seat (71) is provided with the first liquid outlet (701), the second liquid outlet (702) and the third liquid outlet (703), and the second valve body (72) can close or open the first liquid outlet (701), the second liquid outlet (702) and the third liquid outlet (703).

7. The wastewater treatment device according to claim 3, characterized in that: The number of the detection components (12) is two, the two detection components (12) are arranged on the support assembly (11), the first steering valve (6) and the second steering valve (7) are both arranged on the support assembly (11), one of the two detection components (12) is used to detect pollutant components in the liquid flowing through the pump body (2), and the other of the two detection components (12) is used to communicate with the liquid delivery port (604); and / or further comprising a second pump body, the second pump body being in communication with the liquid delivery port (604) and the liquid outlet channel (801) respectively; And / or also includes a third steering valve, the third steering valve is provided with a third valve liquid inlet and a plurality of third valve liquid outlets which are the same in number as the filters, the third valve liquid inlet of the third steering valve is connected to the pump liquid outlet (202) of the pump body (2), and the plurality of third valve liquid outlets are respectively connected to the plurality of liquid inlet ports of the filters.

Citation Information

Patent Citations

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