Control method and equipment of water purification equipment and storage medium

By acquiring and categorizing users' physiological data, cloud-based devices provide personalized water purification solutions for water purifiers, solving the problem that water purifiers cannot meet the trace element needs of different users and improving the user experience.

CN121721985APending Publication Date: 2026-03-24QINGDAO ECONOMIC AND TECHNOLOGICAL DEVELOPMENT ZONE HAIER WATER HEATER CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-09-24
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Existing water purification equipment cannot meet the personalized needs of different customer groups for trace elements, resulting in a poor user experience.

Method used

By acquiring the physiological data of target users, users are categorized based on cloud devices, and personalized water purification solutions are determined based on the categories and physiological data, adjusting the water quality of the water purification equipment to meet the user's needs.

Benefits of technology

It enables the adjustment of trace element intake requirements for different types of user groups, improving the intelligence and user experience of water purification equipment.

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Abstract

The invention belongs to the technical field of intelligent household appliances, and particularly relates to a control method and equipment of water purification equipment and a storage medium. The method comprises the steps that human physiological data of a target user is obtained through cloud equipment, the cloud equipment classifies the target user based on the human physiological data, and the cloud equipment determines a water purification scheme for the target user based on the classification of the target user and the human physiological data of the target user, the cloud equipment sends the water purification scheme to water purification equipment, and the water purification equipment adjusts the water purification equipment based on the water purification scheme and a raw water detection result; according to the method, the water quality of the water purification equipment is adjusted according to the intake requirements of different types of user groups on trace elements, the intelligence of the water purification equipment is improved, and the user experience is improved.
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Description

Technical Field

[0001] This application belongs to the field of smart home appliance technology, specifically relating to a control method, device, and storage medium for a water purification device. Background Technology

[0002] Water purification equipment is a type of water treatment device used to purify water. It typically employs filtration technology to remove impurities, pollutants, and other harmful substances from the water, thus providing users with safe drinking water. In modern life, healthy drinking water has become an increasingly important concern. This means not only ensuring the water is harmless but also considering whether it contains beneficial trace elements and minerals, so that users can obtain some of the trace elements their bodies need through drinking water.

[0003] Existing water purification equipment control methods involve adding a mineralization filter cartridge at the final stage of the filtration process to add minerals, such as calcium, magnesium, and potassium, to the purified water.

[0004] However, different customer groups have significantly different needs for trace elements. Existing water purification equipment can only provide a single standard of purified water containing minerals, which cannot meet the personalized needs for trace element intake, resulting in a poor user experience. Summary of the Invention

[0005] This application provides a control method, device, and storage medium for a water purification device to solve the problem that existing water purification devices cannot meet personalized trace element intake needs, resulting in a poor user experience.

[0006] In a first aspect, this application provides a control method for a water purification device, applied to the water purification device, the method comprising:

[0007] Obtain a water purification solution for a target user, wherein the water purification solution is determined based on the target user's human physiological data after classifying the target user;

[0008] Based on the water purification scheme and the raw water test results, the water purification equipment is adjusted so that the water output of the water purification equipment meets the water purification scheme.

[0009] In one possible implementation, adjusting the water purification equipment based on the water purification scheme and the raw water test results includes:

[0010] Determine the difference between the standard value of the target water purification item in the water purification solution and the test value of the target water purification item in the raw water test results;

[0011] Based on the difference and the adjustment coefficient of the target water purification project in the water purification scheme, adjust the function of the water purification equipment used to control the target water purification project.

[0012] In one possible implementation, after adjusting the water purification device, the method further includes:

[0013] The water quality of the water purification equipment is detected. If the water quality of the water purification equipment meets the water purification scheme, the water output of the water purification equipment is controlled.

[0014] In one possible implementation, obtaining a water purification solution for a target user includes:

[0015] Receive the water purification plan sent from the cloud for the target user.

[0016] In one possible implementation, obtaining a water purification solution for a target user includes:

[0017] Obtain the target user's human physiological data;

[0018] The target users are categorized based on the aforementioned human physiological data;

[0019] The water purification solution is determined based on the classification of the target users and their human physiological data.

[0020] Secondly, this application provides a control method for a water purification device, applied to a cloud-based device, the method comprising:

[0021] Obtain the target user's human physiological data;

[0022] The target users are categorized based on the aforementioned human physiological data;

[0023] Based on the classification of the target users and their human physiological data, a water purification plan is determined for the target users, and the water purification plan is sent to the water purification equipment.

[0024] In one possible implementation, acquiring the target user's human physiological data includes:

[0025] Receive the human physiological data of the target user detected by the biosensor from the water purification device;

[0026] And / or,

[0027] The receiving terminal sends the target user's human physiological data.

[0028] Thirdly, this application provides a control device for a water purification device, applied to the water purification device, the device comprising:

[0029] The acquisition module is used to acquire a water purification plan for a target user, wherein the water purification plan is determined based on the target user's human physiological data after classifying the target user;

[0030] The control module is used to adjust the water purification equipment based on the water purification scheme and the raw water test results, so that the water output of the water purification equipment meets the water purification scheme.

[0031] In one possible implementation, the device further includes: a processing module;

[0032] The processing module is used to determine the difference between the standard value of the target water purification item in the water purification solution and the detection value of the target water purification item in the raw water test results;

[0033] The control module is further configured to adjust the function of the water purification equipment used to control the target water purification project based on the difference and the adjustment coefficient of the target water purification project in the water purification scheme.

[0034] In one possible implementation, the device further includes: a detection module;

[0035] The detection module is used to detect the water quality of the water purification equipment;

[0036] The control module is also used to control the water output of the water purification equipment when the water quality of the water purification equipment meets the water purification scheme.

[0037] In one possible implementation, the acquisition module is further configured to receive the water purification plan for the target user sent from the cloud.

[0038] In one possible implementation, the acquisition module is further configured to acquire the target user's human physiological data;

[0039] The processing module is also used to classify the target users based on the human physiological data;

[0040] The processing module is also used to determine the water purification solution based on the classification of the target user and the human physiological data of the target user.

[0041] Fourthly, this application provides a control device for a water purification device, applied to a cloud-based device, the device comprising:

[0042] The acquisition module is used to acquire the target user's human physiological data;

[0043] The processing module is used to classify the target users based on the human physiological data;

[0044] The processing module is further configured to determine a water purification solution for the target user based on the target user's classification and the target user's human physiological data, and send the water purification solution to the water purification device.

[0045] In one possible implementation, the acquisition module is further configured to receive human physiological data of the target user detected by a biosensor and sent by the water purification device.

[0046] And / or,

[0047] The receiving terminal sends the target user's human physiological data.

[0048] Fifthly, this application provides a water purification device, comprising:

[0049] Memory;

[0050] processor;

[0051] The memory stores computer-executed instructions;

[0052] The processor executes computer execution instructions stored in the memory to implement the control method of the water purification device as described in the first aspect and various possible embodiments of the first aspect.

[0053] Sixthly, this application provides a cloud device, comprising:

[0054] Memory;

[0055] processor;

[0056] The memory stores computer-executed instructions;

[0057] The processor executes computer execution instructions stored in the memory to implement the control method of the water purification device as described in the second aspect and various possible embodiments of the second aspect.

[0058] In a seventh aspect, this application provides a computer storage medium storing computer execution instructions thereon, which are executed by a processor to implement the control method for a water purification device as described in the first aspect and various possible implementations of the first aspect or the second aspect and various possible implementations of the second aspect.

[0059] The water purification device control method provided in this application acquires the human physiological data of a target user through a cloud device. The cloud device classifies the target user based on the human physiological data, determines a water purification plan for the target user based on the classification and the human physiological data, sends the water purification plan to the water purification device, and adjusts the water purification device based on the water purification plan and the raw water test results. This method enables the adjustment of water quality in the water purification device to meet the trace element intake needs of different types of user groups, improves the intelligence of the water purification device, and enhances the user experience. Attached Figure Description

[0060] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0061] Figure 1 This is a schematic diagram of a scenario for the control method of the water purification equipment provided in this application;

[0062] Figure 2 This is the interactive flow of the control method for the water purification equipment provided in this application. Figure 1 ;

[0063] Figure 3 This is the interactive flow of the control method for the water purification equipment provided in this application. Figure 2 ;

[0064] Figure 4 This is a schematic diagram of the structure of the control device for the water purification equipment provided in this application. Figure 1 ;

[0065] Figure 5 This is a schematic diagram of the structure of the control device for the water purification equipment provided in this application. Figure 2 ;

[0066] Figure 6 This is a structural schematic diagram of the water purification equipment provided in this application;

[0067] Figure 7 This is a schematic diagram of the cloud device provided in this application.

[0068] Explanation of reference numerals in the attached figures:

[0069] 1-Water purifier; 2-Cloud server; 3-Biosensor; 4-Smart terminal.

[0070] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation

[0071] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions 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, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0072] The terms "first," "second," "third," "fourth," etc. (if present) in the specification, claims, and accompanying drawings of this invention are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that embodiments of the invention described herein can be implemented in orders other than those illustrated or described herein.

[0073] In this application, the terms "exemplary" or "for example" are used to indicate examples, illustrations, or descriptions. Any embodiment or design described as "exemplary" or "for example" in this application should not be construed as being more preferred or advantageous than other embodiments or designs. Specifically, the use of terms such as "exemplary" or "for example" is intended to present the relevant concepts in a specific manner.

[0074] Water purification equipment is a type of water treatment device used to purify water. It typically employs filtration technology to remove impurities, pollutants, and other harmful substances from the water, thus providing users with safe drinking water. In modern life, healthy drinking water has become an increasingly important concern. This means not only ensuring the water is harmless but also considering whether it contains beneficial trace elements and minerals, so that users can obtain some of the trace elements their bodies need through drinking water.

[0075] Existing water purification equipment control methods involve adding a mineralization filter cartridge at the final stage of the filtration process to add minerals, such as calcium, magnesium, and potassium, to the purified water.

[0076] Different customer groups have significantly different needs for trace elements. For example, for the elderly and infants, infants grow and develop faster, so their need for trace elements is relatively high. The elderly have a lower metabolic rate, so their need for some trace elements may be lower than that for infants, but their need for certain trace elements may be higher. Therefore, the needs of these two different types of users for trace elements are significantly different.

[0077] However, existing water purification equipment control methods can only provide a single standard of purified water containing minerals, which cannot meet the personalized needs for trace element intake, resulting in a poor user experience.

[0078] To address the above problems, this application provides a control method for a water purification device. Figure 1 This is a schematic diagram illustrating a scenario for the control method of the water purification equipment provided in this application. It should be noted that... Figure 1 The examples shown are merely application scenarios where the control method of the water purification equipment of this application can be applied, to help those skilled in the art understand the technical content of this application, but do not mean that the embodiments of this application cannot be used in other equipment, systems, environments or scenarios.

[0079] like Figure 1 As shown, the water purifier 1 is communicatively connected to the cloud server 2. The water purifier 1 is also equipped with a biosensor 3, which collects the user's physiological data, such as heart rate, body temperature, and skin impedance parameters. Therefore, the cloud server 2 can receive the user's physiological data detected by the biosensor 3 and sent by the water purifier 1.

[0080] Continue to refer to Figure 1 The cloud server 2 can also communicate with the smart terminal 4. If the user knows their own physiological data, such as age, gender, and the content of various trace elements in their body, they can input the known content of each trace element into the smart terminal 4 through the application on the smart terminal 4, so that the smart terminal 4 can send this trace element data to the cloud server 2.

[0081] Therefore, cloud server 2 can receive human physiological data sent by water purifier 1 and / or smart terminal 4. Based on the current user's physiological data, it can classify the current user's identity type to obtain the classification result. The identity type can be, for example, infant, adult, elderly, etc.

[0082] Cloud server 2 can determine a water purification plan that matches the current user based on the user's identity type and the user's physiological data. The water purification plan includes multiple water purification items that can adjust water quality, such as mineral adjustment and pH adjustment. Then, cloud server 2 sends the above water purification plan to water purifier 1, so that water purifier 1 can adjust the water quality in the water purifier according to the water purification plan and the water quality of the raw water, so that the water output of water purifier 1 meets the adjustment plan corresponding to the user.

[0083] The control method for the water purification equipment provided in this embodiment involves a cloud server receiving individual physiological data of the current user detected by the water purifier through a biosensor, or individual physiological data input by the current user through a smart terminal. This individual physiological data includes data such as the user's gender, age, heart rate, body temperature, and trace element content. The server identifies the current user's identity type based on this data, then analyzes and processes the data to determine a water purification plan tailored to the user. This plan is then sent to the water purifier, enabling it to adjust water quality according to the plan and provide water that meets the user's personalized needs. This not only improves the intelligence of the water purifier but also enhances the user experience.

[0084] The technical solutions of this application and how they solve the aforementioned technical problems are described in detail below with specific embodiments. These specific embodiments can be implemented independently or in combination with each other. Identical or similar concepts or processes may not be repeated in some embodiments. The embodiments of this application will now be described with reference to the accompanying drawings.

[0085] Figure 2 Interactive flow of the control method for the water purification equipment provided in the embodiments of this application Figure 1 In this embodiment, the cloud device can be Figure 1 In this embodiment, the cloud server 2 and the water purification device can be... Figure 1 In this embodiment, the water purifier 1 is communicatively connected to the cloud server 2. For example... Figure 2 As shown, the control method for the water purification equipment provided in this embodiment includes:

[0086] S101, Cloud devices acquire human physiological data of target users.

[0087] Among them, target users refer to users who currently have water demand, and human physiological data refer to various indicators that reflect the physiological state of the human body. Human physiological data can include, for example, skin impedance data, heart rate data, body temperature data, skin texture feature data, etc.

[0088] S102. The cloud device classifies the target user based on the human physiological data.

[0089] The cloud device's database stores a trained target classification model, which is used to determine the target user's identity type based on the target user's human physiological data. The identity type can be, for example, an infant, an adult, or an elderly person.

[0090] The target classification model can be a model obtained by using ensemble learning methods to fuse and train multiple models such as support vector machines (SVM), decision trees and neural network models. The training process can include: data preprocessing, feature extraction, model training, and outputting identity recognition results.

[0091] The training data for training the classification model can be historical physiological data of various types of users, including skin impedance data, heart rate data, body temperature data, skin texture feature data, etc. These historical physiological data are preprocessed by cleaning, standardizing, and normalizing. For example, median filtering or mean filtering can be used to smooth heart rate data to reduce the impact of detection errors.

[0092] Extract user-type representative features from the preprocessed data. For example: calculate the mean, standard deviation, and coefficient of variation of heart rate; analyze the spectral characteristics of skin electrical impedance data; and extract feature parameters of skin texture data, such as roughness and contrast.

[0093] The extracted features and their corresponding identity labels (e.g., elderly or infant) are used as training data. An optimization algorithm is used to find the optimal hyperplane to maximally distinguish the features of the elderly and infants. This is done because the principle of Support Vector Machines (SVM) is to find a hyperplane that can separate data from different categories to the greatest extent. Therefore, when training the classification model, the feature data of the elderly and infants are treated as different categories.

[0094] For example, historical physiological data includes heart rate and skin impedance data. After data processing, the classification model finds an optimal hyperplane. When a user's heart rate is 75 beats / minute and their skin impedance is [value missing], the model calculates their position on the optimal hyperplane and classifies the user as an elderly person.

[0095] This is because there are significant differences in heart rate and skin impedance between infants and the elderly. As people age, their heart rate gradually decreases. Infants' heart rates are usually between 100 and 140 beats per minute, while the elderly's heart rates are usually between 60 and 100 beats per minute. A person's skin impedance is related to factors such as skin moisture, thickness, and elasticity. The skin moisture content, thickness, and elasticity of infants are also very different from those of the elderly. For example, an infant's skin impedance may be between several hundred ohms and several thousand ohms, while the skin impedance of the elderly may be between several thousand ohms and tens of thousands of ohms.

[0096] After obtaining the target classification model through the above training process, the cloud device can input the target user's physiological data into the target classification model to obtain the target user's classification result output by the target classification model. For example, the target user's average heart rate is 70 beats / minute, skin impedance is 10,000 ohms, and hand skin texture roughness is 0.8. Inputting these features into the trained target classification model identifies the target user as an elderly person.

[0097] S103. The cloud device determines a water purification solution for the target user based on the target user's classification and the target user's human physiological data.

[0098] The cloud-based device's database pre-stores multiple water purification projects for different user types. This allows for the calculation of a matching water purification solution based on the target user's category and real-time physiological data after determining the target user's identity type.

[0099] For example, water purification projects can include: mineral content adjustment, pH adjustment, water hardness adjustment, and removal of harmful substances. When the target user is classified as elderly, a matching water purification plan can be developed based on the target user's individual physiological data and / or basic information, such as gender and trace element data, combined with the target user's intake requirements for various trace elements. For example, increasing the content of minerals such as calcium, magnesium, and selenium to reach a range suitable for the target user's bone health; reducing the sodium content in the water to control the elderly's sodium intake and help prevent cardiovascular diseases such as hypertension; adding alkaline minerals to make the water slightly alkaline, which helps neutralize any excess acidic substances in the elderly's body and maintain the body's acid-base balance; and reducing water hardness for elderly people with poor kidney function to reduce the scale formation of calcium and magnesium ions and reduce the metabolic burden on the kidneys. Based on multiple water purification projects, a water purification plan matched to the target user is generated.

[0100] In another possible implementation, steps S101-S103 can be implemented by the water purification device itself, that is, the water purification device acquires the human physiological data of the target user, classifies the target user based on the human physiological data, and determines the water purification solution based on the classification of the target user and the human physiological data of the target user.

[0101] S104. The cloud device sends the water purification solution to the water purification device.

[0102] S105. The water purification equipment adjusts itself based on the water purification scheme and the raw water test results.

[0103] The water purification solution is determined based on the classification of target users by their physiological data.

[0104] Understandably, the water purification equipment can receive the water purification plan sent from the cloud for the target user. Furthermore, the equipment can detect the quality of the raw water and, based on the content of various trace elements and minerals, pH value, and adjustment parameters of each element in the purification plan, control the equipment to adjust its output water according to the filtration system, mineralization filter cartridge, ion exchange resin, and other technologies, ensuring that the purified water meets the requirements of the purification plan for the target user.

[0105] The water purification device control method provided in this embodiment obtains the human physiological data of the target user through a cloud device. The cloud device classifies the target user based on the human physiological data, determines a water purification plan for the target user based on the classification and the human physiological data, and sends the water purification plan to the water purification device. The water purification device adjusts itself based on the water purification plan and the raw water test results. This method realizes the adjustment of water quality by the water purification device according to the trace element intake needs of different types of user groups, improves the intelligence of the water purification device, and enhances the user experience.

[0106] Figure 3 Interactive flow of the control method for the water purification equipment provided in the embodiments of this application Figure 2 This embodiment is... Figure 2 Based on the embodiments, the control method of the water purification equipment is described in detail. In this embodiment, the biosensor can be... Figure 1 The biosensor 3 in this embodiment, the terminal in this embodiment can be Figure 1 The smart terminal 4 in the embodiment. For example... Figure 3 As shown, the control method for the water purification equipment provided in this embodiment includes:

[0107] S201, The cloud device receives the human physiological data of the target user detected by the biosensor sent by the water purification device and / or the human physiological data of the target user sent by the receiving terminal.

[0108] Among them, biosensors can detect the target user's human physiological data, such as skin impedance data, heart rate data, body temperature data, and skin texture feature data; users can also input their known human physiological data through the terminal, such as age, gender, and the content of trace elements in the body.

[0109] S202. The cloud device classifies the target user based on the human physiological data.

[0110] Step S202 is similar to step 102 above, and will not be repeated here.

[0111] S203. The cloud device determines a water purification solution for the target user based on the target user's classification and the target user's human physiological data.

[0112] Step S203 is similar to step S103 above, and will not be described again here.

[0113] S204. The cloud device sends the water purification solution to the water purification equipment.

[0114] Step S204 is similar to step S104 above, and will not be repeated here.

[0115] S205. The water purification equipment determines the difference between the standard value of the target water purification item in the water purification scheme and the test value of the target water purification item in the raw water test results.

[0116] The "target water purification project" refers to the water purification program that needs adjustment within the water purification plan determined by the cloud-based device based on the target user's classification and human physiological data. The standard value of the target water purification project refers to the target parameter corresponding to the target water purification project, specifically the adjusted content of each trace element. For example, the standard value is determined based on the lowest content value within the preset mineral standard range required by the target user. The detection value of the target water purification project refers to the detection parameter of the raw water corresponding to the target water purification project, specifically the current content of the trace elements in the raw water that need adjustment.

[0117] Understandably, the adjustment value for the target water purification item can be obtained by comparing the standard value with the measured value. Target water purification items could include, for example, mineral content adjustment, pH adjustment, water hardness adjustment, and removal of harmful substances.

[0118] S206. The water purification equipment adjusts the function of the water purification equipment used to control the target water purification project according to the difference and the adjustment coefficient of the target water purification project in the water purification scheme.

[0119] The adjustment coefficient reflects the intensity of adjustment to the target water purification project. The adjustment coefficient is related to the individual physiological data of the target user. Specifically, if the individual physiological data of the target user indicates that the difference between a certain trace element of the target user and the standard value of the target water purification project is greater, the adjustment coefficient is greater, and thus the intensity of adjustment to the target water purification project is greater; if the individual physiological data of the target user indicates that the difference between a certain trace element of the target user and the standard value of the target water purification project is smaller, the adjustment coefficient is smaller, and thus the intensity of adjustment to the target water purification project is smaller.

[0120] It can be understood that after determining the difference between the standard value and the detected value of the target water purification project, the adjustment coefficient of the target water purification project can also be determined according to the individual physiological data of the target user and the preset standard values of various trace elements. Then, based on the above difference and adjustment coefficient, the adjustment value of the target water purification project can be obtained.

[0121] The following takes the classification of the target user as an elderly person as an example for explanation:

[0122] If the target water purification project is mineral regulation, then calculate the amount of minerals to be added according to the preset standard range of minerals required by the elderly and the mineral content detected in the raw water. For example, the preset standard range of calcium required by the elderly is [X1, X2], the target value of calcium is X1, and the detected content of calcium in the raw water is C1, that is, the detected value is C1, and C1 < X1, then the added amount of calcium can be determined as (X1 - C1) × K1, where K1 is the adjustment coefficient.

[0123] If the target water purification project is pH value regulation, then analyze and process according to the detected pH value P1 of the raw water and the preset minimum pH value required by the elderly. The minimum pH value can be 7.5. At this time, when P1 < 7.5, it means that an appropriate amount of alkali needs to be added to increase the pH value of the raw water. Optionally, the specific added amount of the alkaline substance can be calculated according to the difference between the detected value of the pH value and the preset minimum value, and the volume of the raw water.

[0124] If the target water purification project is hardness regulation, then analyze and process according to the detected hardness value H1 of the raw water and the preset target value of water quality hardness H2 required by the elderly. When H1 > H2, it means that the hardness of the water quality needs to be reduced. At this time, the hardness can be reduced by ion exchange resin, and the specific adjustment intensity can be determined according to the difference between H1 and H2.

[0125] The following takes the classification of the target user as a baby as an example for explanation:

[0126] If the target water purification project is mineral regulation, then calculate the amount of minerals to be added according to the preset standard range of minerals required by the baby and the mineral content detected in the raw water. For example, the preset standard range of iron required by the baby is [Y1, Y2], the target value of iron is Y1, and the detected content of iron in the raw water is C2, that is, the detected value is C2, and C2 < Y1, then the added amount of iron can be determined as (Y1 - C2) × K2, where K2 is the adjustment coefficient.

[0127] If the target water purification project is pH adjustment, the analysis is performed based on the detected raw water pH value P3 and the preset pH range [7.0, 7.3] required by infants. If P3 is not within the range of [7.0, 7.3], it means that an appropriate amount of alkaline / acidic substances need to be added to increase / decrease the pH value of the raw water so that the pH value of the water purification equipment is maintained in a pH range closer to neutral.

[0128] If the target water purification project is hardness adjustment, the analysis is performed based on the detected hardness value of the raw water (H3) and the preset target hardness value of water for infants (H4). When H3 < H4, it indicates that the hardness of the water needs to be appropriately increased. In this case, the hardness of the raw water can be increased by adding calcium and magnesium elements.

[0129] Optionally, in addition to the target water purification items mentioned above, the raw water can also be tested for harmful substances such as lead, mercury, and fluoride. If the content of these harmful substances exceeds the preset safety threshold, they can be reduced to a safe range through technologies such as adsorption and reverse osmosis.

[0130] S207. The water purification equipment detects the water quality of the water purification equipment, and controls the water output of the water purification equipment when the water quality of the water purification equipment meets the water purification scheme.

[0131] Understandably, after adjusting the corresponding functions according to the target water purification items in the above water purification plan, the water quality after the adjustment of the water purification equipment is retested. This ensures that the water quality is safe and meets the user's health needs. If the water quality does not meet the water purification plan, the water quality can be readjusted to ensure the effectiveness and accuracy of the water quality adjustment.

[0132] The water purification equipment control method provided in this embodiment receives human physiological data of the target user detected by a biosensor and / or sent by a receiving terminal from a cloud device. Based on the human physiological data, the target user is classified. A water purification plan is determined for the target user based on the classification and the human physiological data, and the plan is sent to the water purification equipment. The water purification equipment determines the difference between the standard value of the target water purification item in the plan and the detected value of the target water purification item in the raw water test results. Based on the difference and the adjustment coefficient of the target water purification item in the plan, the function of the water purification equipment used to control the target water purification item is adjusted. The water quality of the water purification equipment is detected, and when the water quality meets the requirements of the water purification plan, the water output of the water purification equipment is controlled. This method achieves precise adjustment of the water quality of the water purification equipment according to the trace element intake needs of different types of user groups, improving the accuracy of water quality adjustment and enhancing the user experience.

[0133] Figure 4 Schematic diagram of the control device for the water purification equipment provided in this application Figure 1 It is used in water purification equipment. For example... Figure 4 As shown, this application provides a control device for a water purification device, the control device 400 of which includes:

[0134] The acquisition module 401 is used to acquire a water purification plan for a target user, wherein the water purification plan is determined based on the target user's human physiological data after classifying the target user;

[0135] The control module 402 is used to adjust the water purification equipment based on the water purification scheme and the raw water test results, so that the water output of the water purification equipment meets the water purification scheme.

[0136] Optionally, the device further includes: a processing module 403;

[0137] The processing module 403 is used to determine the difference between the standard value of the target water purification item in the water purification scheme and the detection value of the target water purification item in the raw water test results;

[0138] The control module 402 is further configured to adjust the function of the water purification equipment used to control the target water purification project based on the difference and the adjustment coefficient of the target water purification project in the water purification scheme.

[0139] Optionally, the device further includes: a detection module 404;

[0140] The detection module 404 is used to detect the water quality of the water purification equipment;

[0141] The control module 402 is also used to control the water output of the water purification equipment when the water quality of the water purification equipment meets the water purification scheme.

[0142] Optionally, the acquisition module 401 is further configured to receive the water purification solution for the target user sent from the cloud.

[0143] Optionally, the acquisition module 401 is further configured to acquire the human physiological data of the target user;

[0144] The processing module 403 is also used to classify the target user based on the human physiological data;

[0145] The processing module 403 is also used to determine the water purification solution based on the classification of the target user and the human physiological data of the target user.

[0146] Figure 5Schematic diagram of the control device for the water purification equipment provided in this application Figure 2 It is used in cloud devices. For example... Figure 5 As shown, this application provides a control device for a water purification device, the control device 500 of which includes:

[0147] Module 501 is used to acquire human physiological data of the target user;

[0148] Processing module 502 is used to classify the target user based on the human physiological data;

[0149] The processing module 502 is further configured to determine a water purification solution for the target user based on the target user's classification and the target user's human physiological data, and send the water purification solution to the water purification device.

[0150] Optionally, the acquisition module 501 is further configured to receive human physiological data of the target user detected by the biosensor and sent by the water purification device;

[0151] And / or,

[0152] The receiving terminal sends the target user's human physiological data.

[0153] Figure 6 This is a structural diagram of the water purification equipment provided in this application. Figure 6 As shown, this application provides a water purification device 600, which includes: a receiver 601, a transmitter 602, a processor 603, and a memory 604.

[0154] Receiver 601 is used to receive instructions and data;

[0155] Transmitter 602 is used to send commands and data;

[0156] Memory 604 is used to store instructions executed by the computer;

[0157] The processor 603 is used to execute computer execution instructions stored in the memory 604 to implement the various steps of the control method for the water purification device in the above embodiments. For details, please refer to the relevant descriptions in the foregoing embodiments of the control method for the water purification device.

[0158] Alternatively, the memory 604 can be either standalone or integrated with the processor 603.

[0159] When the memory 604 is set up independently, the water purification device also includes a bus for connecting the memory 604 and the processor 603.

[0160] Figure 7A schematic diagram of the cloud device provided in this application. Figure 7 As shown, this application provides a cloud device 700, which includes a receiver 701, a transmitter 702, a processor 703, and a memory 704.

[0161] Receiver 701 is used to receive commands and data;

[0162] Transmitter 702 is used to send commands and data;

[0163] Memory 704 is used to store instructions executed by the computer;

[0164] The processor 703 is used to execute computer execution instructions stored in the memory 704 to implement the various steps of the control method for the water purification device in the above embodiments. For details, please refer to the relevant descriptions in the foregoing embodiments of the control method for the water purification device.

[0165] Alternatively, the memory 704 can be either standalone or integrated with the processor 703.

[0166] When the memory 704 is set up independently, the cloud device also includes a bus for connecting the memory 704 and the processor 703.

[0167] This application also provides a computer-readable storage medium storing computer-executable instructions, which, when executed by a processor, implement the control method of the water purification device as described above, performed by the water purification device or cloud device.

[0168] It will be understood by those skilled in the art that all or some of the steps, systems, or apparatuses disclosed above, and their functional modules / units, can be implemented as software, firmware, hardware, or suitable combinations thereof. In hardware implementations, the division between functional modules / units mentioned in the above description does not necessarily correspond to the division of physical components; for example, a physical component may have multiple functions, or a function or step may be performed collaboratively by several physical components. Some or all physical components may be implemented as software executed by a processor, such as a central processing unit, digital signal processor, or microprocessor, or as hardware, or as an integrated circuit, such as an application-specific integrated circuit (ASIC). Such software may be distributed on a computer-readable medium, which may include computer storage media (or non-transitory media) and communication media (or transient media). As is known to those skilled in the art, the term computer storage media includes volatile and non-volatile, removable and non-removable media implemented in any method or technology for storing information (such as computer-readable instructions, data structures, program modules, or other data). Computer storage media include, but are not limited to, RAM, ROM, EEPROM, flash memory or other memory technologies, CD-ROM, digital versatile disc (DVD) or other optical disc storage, magnetic cartridges, magnetic tape, disk storage or other magnetic storage devices, or any other medium that can be used to store desired information and can be accessed by a computer. Furthermore, it is well known to those skilled in the art that communication media typically contain computer-readable instructions, data structures, program modules, or other data in modulated data signals such as carrier waves or other transmission mechanisms, and may include any information delivery medium.

[0169] The technical solutions of this application have been described above with reference to the preferred embodiments shown in the accompanying drawings. However, it is readily understood by those skilled in the art that the scope of protection of this application is obviously not limited to these specific embodiments. The above embodiments are only used to illustrate the technical solutions of this application and are not intended to limit them. Although this application 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 or all of the technical features therein. These modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A control method for a water purification device, characterized in that, The method, applied to water purification equipment, includes: Obtain a water purification solution for a target user, wherein the water purification solution is determined based on the target user's human physiological data after classifying the target user; Based on the water purification scheme and the raw water test results, the water purification equipment is adjusted so that the water output of the water purification equipment meets the water purification scheme.

2. The method according to claim 1, characterized in that, The adjustment of the water purification equipment based on the water purification scheme and the raw water test results includes: Determine the difference between the standard value of the target water purification item in the water purification solution and the test value of the target water purification item in the raw water test results; Based on the difference and the adjustment coefficient of the target water purification project in the water purification scheme, adjust the function of the water purification equipment used to control the target water purification project.

3. The method according to claim 2, characterized in that, After adjusting the water purification equipment, the method further includes: The water quality of the water purification equipment is detected. If the water quality of the water purification equipment meets the water purification scheme, the water output of the water purification equipment is controlled.

4. The method according to any one of claims 1-3, characterized in that, The process of obtaining a water purification solution tailored to the target user includes: Receive the water purification plan sent from the cloud for the target user.

5. The method according to any one of claims 1-3, characterized in that, The process of obtaining a water purification solution tailored to the target user includes: Obtain the target user's human physiological data; The target users are categorized based on the aforementioned human physiological data; The water purification solution is determined based on the classification of the target users and their human physiological data.

6. A control method for a water purification device, characterized in that, Applied to cloud devices, the method includes: Obtain the target user's human physiological data; The target users are categorized based on the aforementioned human physiological data; Based on the classification of the target users and their human physiological data, a water purification plan is determined for the target users, and the water purification plan is sent to the water purification equipment.

7. The method according to claim 6, characterized in that, The acquisition of the target user's human physiological data includes: Receive the human physiological data of the target user detected by the biosensor from the water purification device; And / or, The receiving terminal sends the target user's human physiological data.

8. A water purification device, characterized in that, include: Memory; processor; The memory stores computer-executed instructions; The processor executes computer execution instructions stored in the memory to implement the control method of the water purification device as described in any one of claims 1 to 5.

9. A cloud device, characterized in that, include: Memory; processor; The memory stores computer-executed instructions; The processor executes computer execution instructions stored in the memory to implement the control method of the water purification device as described in any one of claims 6 to 7.

10. A computer storage medium, characterized in that, The computer storage medium stores computer execution instructions, which, when executed by a processor, are used to implement the control method of the water purification device as described in any one of claims 1 to 7.

Citation Information

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