Wastewater discharge method, device, water purification equipment and storage medium

CN119263368BActive Publication Date: 2026-08-21GUANGDONG LIZI TECH CO LTD
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Patent Information

Application Number
CN202411169118.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2026-08-21
Estimated Expiration
2044-08-23

AI Technical Summary

Technical Problem

[0003]但是,各个地域的市政水情况复杂,不同城市的市政水水质存在差异性,且容易受季节变化影响

Benefits of technology

[0037] As described above, this application provides a wastewater discharge method, apparatus, water purification equipment, and storage medium. First, in response to a set operation on the wastewater valve, the wastewater valve is activated to discharge wastewater. After the wastewater is discharged, the water quality information of the water system is detected to meet preset conditions. When the water quality information does not meet the preset conditions, a wastewater discharge volume corresponding to the water quality information is generated. Finally, based on the wastewater discharge volume and the user's trigger operation, wastewater is discharged from the water system. It is evident that the wastewater discharge scheme provided by this application offers multiple wastewater flow control methods by switching wastewater valves. This solves the problem in existing technologies where only a single wastewater flow control method is available, making it difficult to adequately address complex municipal water conditions and user habits. It effectively accommodates complex municipal water conditions and user habits by providing different wastewater discharge or treatment methods, improving both wastewater treatment efficiency and user experience.

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Abstract

The application discloses a wastewater discharge method and device, a water purification equipment and a storage medium. The method is applied to the water purification equipment, and the method comprises the following steps: in response to a setting operation of a wastewater valve, starting the wastewater valve to discharge wastewater; after starting the wastewater valve to discharge wastewater, detecting whether water quality information of a waterway system meets a preset condition; when it is detected that the water quality information does not meet the preset condition, generating wastewater discharge amount corresponding to the water quality information; and according to the wastewater discharge amount and a trigger operation of a user, discharging wastewater from the waterway system. The present application can realize multiple wastewater flow control through switching of a wastewater switching valve, effectively take into account complex municipal water conditions and user habits to discharge or treat wastewater, and improve the wastewater treatment effect and user experience.
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Description

Technical Field

[0001] This application relates to the field of water purification equipment technology, and in particular to a wastewater discharge method, apparatus, water purification equipment and storage medium. Background Technology

[0002] With economic development and improved living standards, people have increasingly higher demands for quality of life, including drinking water quality. Water purifiers have become an indispensable household appliance. Water purifiers are mainly used to remove impurities, microorganisms, and harmful substances from water, thereby providing safe and clean drinking water.

[0003] However, municipal water conditions vary across regions, with differences in water quality between cities, and are easily affected by seasonal changes. Existing water purifiers typically only offer a single wastewater flow rate, which cannot adequately address the complexities of municipal water conditions and user habits, significantly impacting the user experience. Summary of the Invention

[0004] This application provides a wastewater discharge method, apparatus, water purification equipment, and storage medium, which can effectively take into account complex municipal water conditions and user habits in wastewater discharge and treatment, thereby improving the wastewater treatment effect and user experience.

[0005] In a first aspect, this application provides a wastewater discharge method, which is applied to a water purification device, and the method includes:

[0006] In response to the set operation for the wastewater valve, the wastewater valve is activated to discharge wastewater;

[0007] After the wastewater valve is activated to discharge wastewater, the water quality information of the water system is checked to see if it meets the preset conditions.

[0008] When the water quality information is detected to not meet the preset conditions, the wastewater discharge amount corresponding to the water quality information is generated.

[0009] Wastewater is discharged from the water system based on the wastewater discharge volume and the user's trigger operation.

[0010] Optionally, in some embodiments of this application, discharging wastewater from the water system based on the wastewater discharge volume and the user's triggering operation includes:

[0011] Determine the target wastewater valve corresponding to the wastewater discharge volume;

[0012] In response to the user's confirmation operation for the target wastewater valve, the wastewater valve is switched to the target wastewater valve, and wastewater is discharged from the water system through the target wastewater valve.

[0013] Optionally, in some embodiments of this application, the step of switching the wastewater valve to the target wastewater valve in response to a user's confirmation operation on the target wastewater valve, and discharging wastewater from the water system through the target wastewater valve, includes:

[0014] Receive user instructions and determine the target water quality corresponding to the user instructions;

[0015] Obtain the original water quality information of the area where the water purification equipment is currently located;

[0016] Based on the target water quality and the original water quality, the wastewater switching valve is switched by the control component so that the water purification equipment can treat wastewater.

[0017] Optionally, in some embodiments of this application, receiving user instructions and determining the target water quality of the user instructions includes:

[0018] Receive user instructions and obtain the target water quality requirement information corresponding to the user instructions;

[0019] Based on the target water quality requirement information, the target water quality corresponding to the user instruction is determined.

[0020] Optionally, in some embodiments of this application, the water purification device includes a first detection component, and the step of obtaining the original water quality of the area where the water purification device is currently located includes:

[0021] Upon receiving a water quality acquisition command, the system detects the current water quality information of the inlet pipe in the water purification device using the first detection component.

[0022] In response to the water quality acquisition command, the original water quality of the area where the water purification equipment is currently located is determined based on the current water quality information.

[0023] Optionally, in some embodiments of this application, the water purification device includes a second detection component, and the step of obtaining the original water quality of the area where the water purification device is currently located includes:

[0024] Upon receiving a water quality acquisition command, the system obtains the current location information of the water purification device through the second detection component.

[0025] In response to the water quality acquisition command, the original water quality of the current location of the water purification device is determined based on the regional information.

[0026] Optionally, in some embodiments of this application, it further includes:

[0027] Determine the target wastewater pipeline corresponding to the wastewater valve;

[0028] The wastewater valve is switched to the target wastewater valve by a control component, so that the target wastewater pipeline is connected to the water purification equipment;

[0029] After the water purification equipment completes the water purification process, the wastewater flowing out of the water purification equipment is discharged through the target wastewater pipeline.

[0030] Secondly, this application provides a wastewater discharge device for use in water purification equipment, the wastewater discharge device comprising:

[0031] A start-up module is used to start the wastewater valve to discharge wastewater in response to a set operation on the wastewater valve;

[0032] The detection module is used to detect whether the water quality information of the water system meets the preset conditions after the wastewater valve is activated to discharge wastewater.

[0033] The generation module is used to generate the wastewater discharge amount corresponding to the water quality information when it is detected that the water quality information does not meet the preset conditions.

[0034] The discharge module is used to discharge wastewater from the water system based on the wastewater discharge volume and the user's trigger operation.

[0035] Thirdly, this application provides a water purification device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the computer program to implement the steps of the wastewater discharge method as described in the first aspect.

[0036] Fourthly, this application provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the steps of the wastewater discharge method as described in the first aspect.

[0037] As described above, this application provides a wastewater discharge method, apparatus, water purification equipment, and storage medium. First, in response to a set operation on the wastewater valve, the wastewater valve is activated to discharge wastewater. After the wastewater is discharged, the water quality information of the water system is detected to meet preset conditions. When the water quality information does not meet the preset conditions, a wastewater discharge volume corresponding to the water quality information is generated. Finally, based on the wastewater discharge volume and the user's trigger operation, wastewater is discharged from the water system. It is evident that the wastewater discharge scheme provided by this application offers multiple wastewater flow control methods by switching wastewater valves. This solves the problem in existing technologies where only a single wastewater flow control method is available, making it difficult to adequately address complex municipal water conditions and user habits. It effectively accommodates complex municipal water conditions and user habits by providing different wastewater discharge or treatment methods, improving both wastewater treatment efficiency and user experience. Attached Figure Description

[0038] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0039] in:

[0040] Figure 1 This is an application environment diagram of the wastewater discharge method provided in the embodiments of this application.

[0041] Figure 2 This is a schematic flowchart of the wastewater discharge method provided in the embodiments of this application.

[0042] Figure 3 This is a schematic diagram of the wastewater pipeline provided in the embodiments of this application.

[0043] Figure 4 This is a schematic diagram of the wastewater discharge device provided in the embodiments of this application.

[0044] Figure 5 This is another structural schematic diagram of the wastewater discharge device provided in the embodiments of this application. Detailed Implementation

[0045] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0046] In the following description, references are made to “some embodiments,” which describe a subset of all possible embodiments. However, it is understood that “some embodiments” may be the same subset or different subsets of all possible embodiments and may be combined with each other without conflict.

[0047] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein is for the purpose of describing embodiments of this application only and is not intended to limit this application.

[0048] The wastewater discharge method provided in this embodiment of the invention can be applied to, for example... Figure 1In the application environment, the application environment includes: processor 1, memory 2, detection component 31, control component 32, and wastewater switching valve 33. The processor 1 is electrically connected to the memory 2, detection component 31, control component 32, and wastewater switching valve 33.

[0049] When the processor 1 executes the computer program, it performs the following steps: receiving user instructions and determining the target water quality corresponding to the user instructions; acquiring the original water quality of the current location of the water purification equipment based on the detection component 31; and controlling the switching of the wastewater switching valve 33 through the control component 32 based on the target water quality and the original water quality, so that the water purification equipment can treat wastewater. This achieves multiple different methods of wastewater flow control, improving the wastewater treatment effect and user experience.

[0050] Figure 1 The application environment is suitable for water purification equipment, which may include an inlet pipe, a wastewater pipe, a detection component, a control component, a wastewater switching valve, a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the inlet end of the wastewater pipe is connected to the wastewater switching valve.

[0051] It is understandable that water purification equipment may also include other components, such as a power supply component. The input terminal of the power supply component is electrically connected to an AC power source, and the output terminal of the power supply component inputs electrical energy to the power-consuming components of the water purification equipment (i.e., control components, detection components, memory, and processor). This is not limited here.

[0052] The present invention will now be described in detail through specific embodiments.

[0053] Please see Figure 2 As shown, Figure 2 This is a flowchart illustrating a first embodiment of the wastewater discharge method provided by the present invention. The wastewater discharge method is applied to a water purification device, which includes a control component and a wastewater switching valve. Specifically, the wastewater discharge method may include:

[0054] S1. In response to the set operation for the wastewater valve, the wastewater valve is activated to discharge wastewater.

[0055] Specifically, in step S1, after the water purification equipment receives a user instruction, such as a user inputting a target water quality instruction, the wastewater valve corresponding to the user instruction is determined by recognizing the user instruction. For example, if the user instruction sets the target water quality to a substance content of 60 mg / L, then the wastewater valve corresponding to the target water quality can be determined to be valve A; if the user instruction sets the target water quality to a substance content of 10 mg / L, then the wastewater valve corresponding to the target water quality can be determined to be valve B.

[0056] In addition, user commands can be generated by the user clicking the water purification button on the display screen of the water purifier, or by the user initiating a request through the APP on the smart mobile terminal, or by the user setting a timed water purification task in advance, and generating a pre-set user command when the current time reaches the preset time. There are no specific restrictions here.

[0057] S2. After starting the wastewater valve to discharge wastewater, check whether the water quality information of the water system meets the preset conditions.

[0058] TDS is an abbreviation for Total Dissolved Solids, which refers to the concentration of total dissolved substances in water, measured in milligrams per liter (mg / L). It mainly reflects the concentration of ions such as Ca2+, MG2+, Na+, and K+ in water, and has a good correlation with water hardness and conductivity. The lower the TDS value, the lower the concentration of ions such as Ca2+, MG2+, Na+, and K+ in water, and the lower the conductivity.

[0059] TDS (Total Dissolved Solids) is generally used to measure the purity of purified water. However, a low TDS value does not necessarily mean good water quality, and a high TDS value does not necessarily mean poor water quality. Qualified drinking water standards must meet requirements for microbiological indicators (bacterial count), toxicological indicators (concentration of heavy metal ions), sensory characteristics (color, odor, taste, and visible matter), general chemical indicators, and radioactivity indicators. Healthy and clean drinking water must not contain pathogenic microorganisms, and the chemical and radioactive substances in the water must not harm human health, and it must have good sensory characteristics.

[0060] In this embodiment of the application, after the wastewater valve is activated to discharge wastewater, the water quality information of the water system is checked to see if it meets the preset conditions. The preset conditions can be set by the user or set by the water purification equipment at the factory. The specific conditions can be determined according to the actual situation.

[0061] Furthermore, the preset conditions can be modified according to the user's needs. Therefore, when the setting operation is received and the wastewater is started for the first time, it can be detected whether the water quality of the water system meets the preset water quality after the first wastewater discharge. If the water quality information of the water system meets the preset conditions, the wastewater will be discharged through the wastewater valve the next time it is discharged. If it does not meet the conditions, step S3 will be executed.

[0062] S3. When the water quality information is detected to be inconsistent with the preset conditions, the wastewater discharge amount corresponding to the water quality information is generated.

[0063] Specifically, due to varying water purity or flow rate requirements, the wastewater discharge method and flow control selected for water purification equipment must differ. For instance, when users require higher purity effluent from the purified water system, a water path with a larger flow rate can be connected. This larger wastewater discharge results in a higher desalination rate and thus higher water purity. Conversely, when users prioritize water conservation, a water path with a smaller flow rate can be connected. Therefore, when water quality information is detected as not meeting preset conditions, the corresponding wastewater discharge volume is determined.

[0064] S4. In response to wastewater discharge volume and user-triggered operations, discharge wastewater from the water system.

[0065] The user's triggering action can be a confirmation action or an adjustment action targeting the wastewater valve, depending on the specific circumstances. For example, after determining the target wastewater valve corresponding to the wastewater discharge volume, the user's confirmation action triggers wastewater discharge from the water system. Alternatively, after determining the target wastewater valve corresponding to the wastewater discharge volume, the user's adjustment action triggers the adjustment of the target wastewater valve to the valve corresponding to the adjustment action, and wastewater discharge from the water system is then performed based on the adjusted valve.

[0066] In summary, the wastewater discharge method provided in this embodiment firstly activates the wastewater valve in response to a set operation, discharging wastewater. After discharging wastewater, the water quality information of the water system is checked to see if it meets preset conditions. If the water quality information does not meet the preset conditions, a wastewater discharge volume corresponding to the water quality information is generated. Finally, wastewater is discharged from the water system based on the wastewater discharge volume and the user's trigger operation. By switching the wastewater valve, multiple wastewater flow control methods are provided, solving the problem that existing technologies with only a single wastewater flow control method cannot effectively accommodate complex municipal water conditions and user habits. This method can effectively accommodate complex municipal water conditions and user habits by providing different wastewater discharge or treatment methods, improving both wastewater treatment efficiency and user experience.

[0067] Furthermore, in some embodiments, step S1, "receiving user instructions and determining the target water quality specified by the user instructions," may specifically include:

[0068] S11. Receive user instructions and obtain the target water quality requirement information corresponding to the user instructions;

[0069] S12. Based on the target water quality requirement information, determine the target water quality corresponding to the user command.

[0070] In a specific embodiment, upon receiving a user instruction, the system first needs to identify the user's pre-set target water quality requirements, such as whether the water softening grade or the TDS value of pure water meets the user's input. Then, based on these requirements, the system determines the target water quality corresponding to the current user instruction. This embodiment, by recognizing the user instruction, can quickly and accurately identify the target water quality input by the user.

[0071] Furthermore, in some embodiments, the water purification device in this embodiment may include a first detection component, then step S2 "obtaining the original water quality of the area where the water purification device is currently located" may specifically include:

[0072] S21. Receive water quality acquisition command and detect the current water quality information of the water inlet pipe in the water purification equipment through the first detection component;

[0073] S22. Respond to the water quality acquisition command and determine the original water quality of the current location of the water purification equipment based on the current water quality information.

[0074] Specifically, the water purification device in this embodiment may further include a first detection component. This first detection component is used to detect the current water quality information of the inlet pipe in the water purification device. For step S2, a water quality acquisition command is first received, and then the first detection component detects the current water quality information of the inlet pipe in the water purification device. The current water quality information of the inlet pipe is generally related to the municipal water conditions in the area where the water purification device is currently located. Then, in response to the water quality acquisition command, the original water quality conditions of the area where the water purification device is currently located are determined based on the current water quality information obtained by the first detection component. This embodiment accurately obtains the current original water quality conditions of the water purification device by detecting the water quality of the inlet pipe.

[0075] Furthermore, such as Figure 2 As shown, in some embodiments, the water purification device in this embodiment includes a second detection component, and step S2, "obtaining the original water quality of the area where the water purification device is currently located," may further include:

[0076] S23. Receive water quality acquisition instructions and acquire the current location information of the water purification equipment through the second detection component;

[0077] S24. Respond to the water quality acquisition command and determine the original water quality of the current location of the water purification equipment based on the regional information.

[0078] Specifically, the water purification device in this embodiment may further include a second detection component. The second detection component is used to detect the regional information of the current location of the water purification device. For step S2, firstly, a water quality acquisition command is received, and then the regional information of the current location of the water purification device is acquired through the second detection component. For example, the location information of the water purification device is acquired through a GPS positioning sensor, thereby determining the regional information of the water purification device, or the regional information of the water purification device is determined through a gateway based on the local area network. No specific limitation is imposed here. Then, in response to the water quality acquisition command, the original water quality of the current location of the water purification device is determined based on the regional information acquired by the second detection component. For example, when the acquired regional information is xx province xx city, the municipal water quality of xx province xx city is acquired as the original water quality. It can be seen that, in addition to acquiring the original water quality of the water purification device by detecting the water quality of the inlet pipe in the water purification device through the first detection component, this embodiment can also acquire the original water quality by detecting the regional information of the current location of the water purification device. While accurately acquiring the original water quality of the current location of the water purification device, it can also improve the flexibility of information acquisition.

[0079] Furthermore, in some embodiments, step S3, "based on the target water quality and the original water quality, controlling the switching of the wastewater switching valve through a control component to enable the water purification equipment to treat wastewater," may specifically include:

[0080] S31. Determine the target water quality value corresponding to the target water quality and the original water quality value corresponding to the original water quality conditions respectively;

[0081] S32. Determine the target wastewater switching valve based on the difference between the target water quality value and the original water quality value;

[0082] S33. The wastewater switching valve is switched to the target wastewater switching valve by the control component so that the water purification equipment can treat wastewater.

[0083] In a specific embodiment, for step S3, after obtaining the target water quality and the original water quality, the target water quality value and the original water quality value corresponding to the original water quality of the water purification equipment are first determined. Then, the difference between the target water quality value and the original water quality value is calculated. Since different wastewater circuits correspond to different wastewater discharge methods and flow control, for example, when the user needs higher purity of the effluent from the water purification equipment, a water circuit with a larger flow rate can be connected. The larger wastewater discharge volume will correspondingly improve the desalination rate of the water purification equipment. The water purity is higher; therefore, it is necessary to determine the wastewater circuit that the water purification equipment needs to connect when performing this water purification task, and the target wastewater switching valve required to connect to this wastewater circuit, based on the difference between the target water quality value and the original water quality value. Finally, the wastewater switching valve is switched by the control component, switching it to the target wastewater switching valve, so that the water purification equipment connects to the corresponding wastewater circuit through the target wastewater switching valve. When performing the water purification task, the water quality is switched by connecting the wastewater circuit through the target wastewater switching valve, and the wastewater discharge and flow are controlled through the wastewater circuit. This embodiment provides multiple wastewater flow control methods by switching wastewater switching valves, solving the problem that the existing technology only has a single wastewater flow control method, which cannot well take into account the complex municipal water conditions and user habits.

[0084] Furthermore, in some embodiments, step S33, "switching the wastewater switching valve to the target wastewater switching valve via a control component to enable the water purification equipment to treat wastewater," may specifically include:

[0085] S331. Determine the target wastewater pipeline corresponding to the target wastewater switching valve;

[0086] S332. The wastewater switching valve is switched to the target wastewater switching valve by the control component, so that the target wastewater pipeline is connected to the water purification equipment;

[0087] S333. After the water purification equipment completes the water purification process, the wastewater flowing out of the water purification equipment is discharged through the target wastewater pipeline.

[0088] In a specific embodiment, for step S33, the first step is to determine the target wastewater pipe corresponding to the target wastewater switching valve. The water purification equipment has multiple wastewater plugs with varying flow rates. In this embodiment, the wastewater switching valve can be rotated to the target wastewater switching valve via a control component, thereby connecting the target wastewater pipe corresponding to the target wastewater switching valve. The wastewater flow rate of the wastewater plug in this target wastewater pipe matches the difference between the target water quality value and the original water quality value. After connecting the water purification equipment to the target wastewater pipe, when the water purification equipment performs its purification task, the wastewater flowing out of the equipment will flow through the target wastewater pipe according to its corresponding flow rate. This embodiment, by switching the wastewater switching valve to connect wastewater pipes with different flow rates for wastewater discharge, effectively considers different municipal water conditions and user habits, improving water purification efficiency and user experience.

[0089] Furthermore, in some embodiments, the water purification device further includes a first detection component, which, after step S333 "discharges the wastewater flowing out of the water purification device through the target wastewater pipe", specifically includes:

[0090] S41. In response to a water quality adjustment command, obtain the latest water quality information of the inlet pipe in the water purification equipment through the first detection component;

[0091] S42. Update the target wastewater switching valve based on the target water quality and the latest water quality information;

[0092] S43. The current wastewater switching valve is switched to the updated target wastewater switching valve by the control component, so that the water purification equipment can dynamically adjust the water quality.

[0093] Specifically, after switching the wastewater switching valve to the target wastewater switching valve through the control component and discharging the wastewater flowing out of the water purification equipment through the target wastewater pipeline, this embodiment also provides a method for dynamically adjusting water quality. First, it responds to the water quality adjustment command initiated by the user. Then, it controls the first detection component to obtain the latest water quality status of the inlet pipe in the water purification equipment. This latest water quality status refers to the latest water quality status of the inlet pipe after the water purification equipment has performed the water purification task. Then, it determines the target water quality value corresponding to the target water quality and the latest water quality value corresponding to the latest water quality status. Next, it calculates the difference between the target water quality value and the latest water quality value. Based on this difference, it updates the new target wastewater switching valve. Finally, it switches the current wastewater switching valve to the new target wastewater switching valve through the control component. The water purification equipment is connected to the wastewater pipeline corresponding to the new target wastewater switching valve, so that the water purification equipment dynamically adjusts the water quality through the new wastewater pipeline when performing the water purification task, effectively enhancing the water purification effect.

[0094] Optionally, in some embodiments, please refer to Figure 3This application provides a wastewater discharge pipeline for use in water purification equipment. Through a ceramic disc switching valve, the required wastewater volume can be manually selected to meet user needs for higher water purity, greater water conservation, or for areas or times with high total dissolved solids (TDS) in municipal water. The wastewater volume is adjusted to ensure the quality of the effluent. Unlike existing automatically adjusting wastewater valves, this invention can meet the diverse water usage habits of different users. Automatically adjusting wastewater valves only adjust to ensure a higher desalination rate, and their more mechanical structure makes them more reliable and replaceable when dealing with complex wastewater.

[0095] Its structure is as follows Figure 3 As shown: There are two or more water channels, each with an inlet for a wastewater plug of different specifications, which are switched and controlled by one or more ceramic discs.

[0096] When users want higher purity water from the water purifier, they can turn on the switching valve to connect the wastewater circuit with a large flow rate. The increased wastewater volume improves the purifier's desalination rate, resulting in purer water. Conversely, when users want to conserve water, they can turn on the switching valve to connect the wastewater circuit with a small flow rate. The increased wastewater volume also saves water. Similarly, when the TDS value of municipal water is high, switching to the wastewater circuit with a large flow rate ensures the purity of the output water, and vice versa.

[0097] Please see Figure 4 As shown, this embodiment also provides a wastewater discharge device, which is applied to a water purification equipment. Specifically, the wastewater discharge device may include:

[0098] The start module 201 is used to start the wastewater valve to discharge wastewater in response to the set operation of the wastewater valve;

[0099] The detection module 202 is used to detect whether the water quality information of the water system meets the preset conditions after the wastewater valve is started to discharge wastewater.

[0100] The generation module 203 is used to generate the wastewater discharge amount corresponding to the water quality information when the water quality information is detected to not meet the preset conditions.

[0101] The discharge module 204 is used to discharge wastewater from the water system based on the wastewater discharge volume and the user's trigger operation.

[0102] Furthermore, in some embodiments, the determining module 100 may specifically include:

[0103] The receiving unit is used to receive user instructions and obtain the target water quality requirement information corresponding to the user instructions;

[0104] The determination unit is used to determine the target water quality corresponding to the user command based on the target water quality requirement information.

[0105] Furthermore, in some embodiments, the acquisition module 200 may specifically include:

[0106] The first acquisition unit is used to receive a water quality acquisition command, detect the current water quality information of the water inlet pipe in the water purification equipment through the first detection component, and respond to the water quality acquisition command to determine the original water quality of the current area where the water purification equipment is located based on the current water quality information.

[0107] The second acquisition unit is used to receive water quality acquisition instructions, acquire the current location information of the water purification equipment through the second detection component, and respond to the water quality acquisition instructions to determine the original water quality of the current location of the water purification equipment based on the location information.

[0108] Furthermore, in some embodiments, the switching module 300 may specifically include:

[0109] The water quality value determination unit is used to determine the target water quality value corresponding to the target water quality and the original water quality value corresponding to the original water quality condition, respectively.

[0110] The switching valve determination unit is used to determine the target wastewater switching valve based on the difference between the target water quality value and the original water quality value.

[0111] The switching unit is used to switch the wastewater switching valve to the target wastewater switching valve through the control components, so that the water purification equipment can treat wastewater.

[0112] Furthermore, in some embodiments, the switching unit is specifically used to: determine the target wastewater pipeline corresponding to the target wastewater switching valve; switch the wastewater switching valve to the target wastewater switching valve through the control component, so that the target wastewater pipeline is connected to the water purification equipment; and discharge the wastewater flowing out of the water purification equipment through the target wastewater pipeline after the water purification equipment has completed the water purification treatment.

[0113] Furthermore, such as Figure 5 As shown, in some embodiments, the wastewater discharge device may further include an adjustment module 400, which is specifically used to: respond to a water quality adjustment command, obtain the latest water quality status of the inlet pipe in the water purification equipment through a first detection component; update the target wastewater switching valve based on the target water quality and the latest water quality status; and switch the current wastewater switching valve to the updated target wastewater switching valve through a control component, so that the water purification equipment can dynamically adjust the water quality.

[0114] The wastewater discharge device provided in this embodiment offers multiple wastewater flow control options by switching wastewater switching valves. This solves the problem that existing technologies only offer a single wastewater flow control method, which cannot adequately address complex municipal water conditions and user habits. It can effectively accommodate complex municipal water conditions and user habits by discharging or treating wastewater in different ways, thereby improving the wastewater treatment effect and enhancing the user experience.

[0115] The process by which each module in the wastewater discharge device provided in this embodiment performs its respective function can be found in the foregoing. Figure 2 The descriptions of the embodiments shown and other related method embodiments are not repeated here.

[0116] It should be noted that the information interaction and execution process between the above-mentioned devices / units are based on the same concept as the method embodiments of this application. For details on their specific functions and technical effects, please refer to the method embodiments section, and they will not be repeated here.

[0117] In one embodiment, a water purification device is provided, which may include an inlet pipe, a wastewater pipe, a detection component, a control component, a wastewater switching valve, a processor, a memory, and a computer program stored in the memory and executable on the processor, wherein the inlet end of the wastewater pipe is connected to the wastewater switching valve.

[0118] Additionally, it should be noted that the water purification device in this embodiment is equipped with multiple wastewater plugs with different wastewater flow rates. The required wastewater volume can be freely selected via a wastewater switching valve (e.g., a ceramic disc switching valve), thereby meeting the user's needs for higher water purity or greater water conservation. This water purification device includes two or more wastewater plugs with different flow rates. Each water path has an inlet for a wastewater plug with a different specification, and switching is controlled by one or more ceramic discs.

[0119] This embodiment provides multiple wastewater flow control methods by switching wastewater switching valves, which solves the problem that the existing technology only has a single wastewater flow control method, which cannot well take into account the complex municipal water conditions and user habits. It can effectively take into account the complex municipal water conditions and user habits to carry out different wastewater discharge or treatment methods, thereby improving the wastewater treatment effect and enhancing the user experience.

[0120] In one embodiment, a computer-readable storage medium is provided that stores a computer program, which, when executed by a processor, implements the steps of any of the above-described wastewater discharge methods.

[0121] This embodiment provides multiple wastewater flow control methods by switching wastewater switching valves, which solves the problem that the existing technology only has a single wastewater flow control method, which cannot well take into account the complex municipal water conditions and user habits. It can effectively take into account the complex municipal water conditions and user habits to carry out different wastewater discharge or treatment methods, thereby improving the wastewater treatment effect and enhancing the user experience.

[0122] It should be noted that the functions or steps that can be implemented by the computer-readable storage medium or computer device described above can be referred to the relevant descriptions on the server side and client side in the foregoing method embodiments. To avoid repetition, they will not be described one by one here.

[0123] Those skilled in the art will understand that all or part of the processes in the methods of the above embodiments can be implemented by a computer program instructing related hardware. The computer program can be stored in a non-volatile computer-readable storage medium, and when executed, it can include the processes of the embodiments of the above methods. Any references to memory, storage, databases, or other media used in the embodiments provided in this application can include non-volatile and / or volatile memory. Non-volatile memory can include read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM), or flash memory. Volatile memory can include random access memory (RAM) or external cache memory. By way of illustration and not limitation, RAM is available in various forms, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), dual data rate SDRAM (DDRSDRAM), enhanced SDRAM (ESDRAM), synchronous link DRAM (SLDRAM), Rambus direct RAM (RDRAM), direct memory bus dynamic RAM (DRDRAM), and memory bus dynamic RAM (RDRAM), etc.

[0124] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the above-described division of functional units and modules is used as an example. In practical applications, the above functions can be assigned to different functional units and modules as needed, that is, the internal structure of the device can be divided into different functional units or modules to complete all or part of the functions described above.

[0125] The above-described embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention, and should all be included within the protection scope of the present invention.

Claims

1. A wastewater discharge method, characterized in that, The wastewater discharge method, applied to water purification equipment, includes: In response to the set operation for the wastewater valve, the wastewater valve is activated to discharge wastewater; After the wastewater valve is activated to discharge wastewater, the water quality information of the water system is checked to see if it meets the preset conditions. When the water quality information is detected to not meet the preset conditions, the wastewater discharge amount corresponding to the water quality information is generated. Based on the wastewater discharge volume and the user's trigger operation, wastewater is discharged from the water system, including: determining the target wastewater valve corresponding to the wastewater discharge volume; receiving a user instruction and determining the target water quality corresponding to the user instruction; obtaining the original water quality of the area where the water purification equipment is currently located; based on the target water quality and the original water quality, controlling the switching of the wastewater switching valve through a control component to determine the target wastewater valve; in response to the user's confirmation operation for the target wastewater valve, switching the wastewater valve to the target wastewater valve, and discharging wastewater from the water system through the target wastewater valve.

2. The wastewater discharge method according to claim 1, characterized in that, The step of receiving user instructions and determining the target water quality of the user instructions includes: Receive user instructions and obtain the target water quality requirement information corresponding to the user instructions; Based on the target water quality requirement information, the target water quality corresponding to the user instruction is determined.

3. The wastewater discharge method according to claim 1, characterized in that, The water purification device includes a first detection component, and the step of acquiring the original water quality of the area where the water purification device is currently located includes: Upon receiving a water quality acquisition command, the system detects the current water quality information of the inlet pipe in the water purification device using the first detection component. In response to the water quality acquisition command, the original water quality of the area where the water purification equipment is currently located is determined based on the current water quality information.

4. The wastewater discharge method according to claim 1, characterized in that, The water purification device includes a second detection component, and the step of acquiring the original water quality of the area where the water purification device is currently located includes: Upon receiving a water quality acquisition command, the system obtains the current location information of the water purification device through the second detection component. In response to the water quality acquisition command, the original water quality of the current location of the water purification device is determined based on the regional information.

5. The wastewater discharge method according to any one of claims 1 to 4, characterized in that, Also includes: Determine the target wastewater pipeline corresponding to the wastewater valve; The wastewater valve is switched to the target wastewater valve by the control component, so that the target wastewater pipeline is connected to the water purification equipment; After the water purification equipment completes the water purification process, the wastewater flowing out of the water purification equipment is discharged through the target wastewater pipeline.

6. A wastewater discharge device, characterized in that, The wastewater discharge device, used in water purification equipment, includes: A start-up module is used to start the wastewater valve to discharge wastewater in response to a set operation on the wastewater valve; The detection module is used to detect whether the water quality information of the water system meets the preset conditions after the wastewater valve is activated to discharge wastewater. The generation module is used to generate the wastewater discharge amount corresponding to the water quality information when the water quality information is detected to not meet the preset conditions. The discharge module is used to discharge wastewater from the water system according to the wastewater discharge volume and the user's trigger operation, including: determining the target wastewater valve corresponding to the wastewater discharge volume; receiving a user instruction and obtaining the target water quality requirement information corresponding to the user instruction; determining the target water quality corresponding to the user instruction based on the target water quality requirement information; obtaining the original water quality conditions of the area where the water purification equipment is currently located; and controlling the switching of the wastewater switching valve through a control component based on the target water quality and the original water quality conditions, so that the water purification equipment can treat wastewater.

7. A water purification device, comprising a memory, a processor, and a computer program stored in the memory and running on the processor, characterized in that, When the processor executes the computer program, it implements the wastewater discharge method as described in any one of claims 1 to 5.

8. A computer-readable storage medium storing a computer program, characterized in that, When the computer program is executed by the processor, it implements the wastewater discharge method as described in any one of claims 1 to 5.

Citation Information

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