Water outlet TDS value intelligent determination method and device applied to filter element water outlet scene

By intelligently determining the TDS value range of the effluent, the problem of inconsistency caused by manual experience setting is solved, and the reliability and accuracy of the effluent TDS value are achieved, thereby improving the precision of water treatment and user satisfaction.

CN121107482APending Publication Date: 2025-12-12GUANGDONG LIZI TECH CO LTD
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Patent Information

Application Number
CN202511236924.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2025-12-12

AI Technical Summary

Technical Problem

In existing technologies, the setting of effluent TDS value ranges relies on human experience, resulting in inconsistent judgment standards, affecting the accuracy of water quality assessment and the stability of treatment processes, and making it difficult to meet the needs of modern water treatment technology for standardized and precise control.

Method used

By acquiring the water quality characteristics of the water to be filtered and the intended use of the filtered water, combined with user needs and filter information, the TDS value range of the effluent is intelligently determined, reducing the need for manual subjective settings.

Benefits of technology

It improves the reliability and accuracy of determining the TDS value range of effluent, enhances the precision of water treatment control, meets users' personalized needs, and reduces resource waste and safety hazards.

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Abstract

The invention relates to the technical field of effluent treatment, and discloses an effluent TDS value intelligent determination method and device applied to a filter element effluent scene, and the method comprises the steps: determining the water quality characteristic parameters of a to-be-filtered water body according to the water body information of the to-be-filtered water body corresponding to a target filter element; obtaining water use information of filtered effluent output by the target filter element, and determining a first effluent demand parameter of the target filter element according to the water use information; and determining an effluent TDS value interval of the target filter element according to the water quality characteristic parameter of the to-be-filtered water body and the first effluent demand parameter of the target filter element. It can be seen that the water outlet TDS value interval of the target filter element can be intelligently determined according to the water quality characteristic parameters of the to-be-filtered water body and the first water outlet demand parameters of the target filter element, so that the process of manually and subjectively setting the water outlet TDS value interval is reduced, the determination reliability and accuracy of the water outlet TDS value interval are improved, and the water outlet TDS value interval determination efficiency is improved. Therefore, the accuracy of water treatment control is improved.
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Description

TECHNICAL FIELD

[0001] The application relates to the technical field of water treatment, and in particular to a water TDS value intelligent determination method and device applied to a filter core water outlet scene. BACKGROUND

[0002] In the field of water treatment, reasonable setting of a water outlet total dissolved solid (TDS) value interval is a key link for guaranteeing water quality safety and treatment efficiency. However, current industry-wide definition of the interval generally relies on subjective setting of artificial experience, which is restricted by various factors: on the one hand, individual differences exist in professional background, practical experience and risk cognition of operating personnel, leading to difficulty in unifying the judgment standard for the same water quality scene; on the other hand, objective factors such as environmental condition fluctuation and equipment operation state difference further aggravate the uncertainty of artificial setting.

[0003] Therefore, even under the same scene and operation condition, the water outlet TDS value interval set by different personnel often appears significant deviation, directly affecting the accuracy of water quality evaluation and the stability of the treatment process. This subjective setting mode not only reduces the reliability of water quality monitoring data, but also may lead to waste of treatment resources or water quality safety hazards, and is difficult to meet the demand of modern water treatment technology for standardized and precise control. It can be seen that a technical solution capable of improving the determination accuracy of the water outlet TDS value interval is urgently needed. SUMMARY

[0004] The application provides a water outlet TDS value intelligent determination method and device applied to a filter core water outlet scene, reduces the process of artificial subjective setting of the water outlet TDS value interval, and is thus beneficial to improving the determination reliability and accuracy of the water outlet TDS value interval, thereby being beneficial to improving the precision of water treatment control.

[0005] To solve the above technical problems, the application discloses a water outlet TDS value intelligent determination method applied to a filter core water outlet scene, which comprises the following steps: determining water quality characteristic parameters of a to-be-filtered water body according to water body information of the to-be-filtered water body corresponding to a preset target filter core; obtaining water use purpose information of filtered water output by the target filter core, and determining first water outlet demand parameters of the target filter core according to the water use purpose information of the filtered water; determining a water outlet TDS value interval of the target filter core according to the water quality characteristic parameters of the to-be-filtered water body and the first water outlet demand parameters of the target filter core.

[0006] As an optional implementation, in the first aspect of the present invention, the water body information includes at least one of water body material information, water body source information, water body environmental information, and water body sensory information, and the water quality characteristic parameters include at least one of water quality physical characteristic parameters, water quality chemical characteristic parameters, and water quality microbial characteristic parameters. Before determining the TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered and the first effluent requirement parameter of the target filter element, the method further includes: Obtain user filtration water preference information for the target filter cartridge, and determine the second water output requirement parameter for the target filter cartridge based on the user filtration water preference information; the user filtration water preference information includes user filtration water sensory preference information and / or user filtration water containing substance preference information; The step of determining the TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered and the first effluent demand parameter of the target filter element includes: Based on the water quality characteristic parameters of the water body to be filtered, the first effluent requirement parameter of the target filter element, and the second effluent requirement parameter, the TDS value range of the effluent of the target filter element is determined.

[0007] As an optional implementation, in the first aspect of the present invention, determining the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent includes: When the water usage information of the filtered effluent includes the object cleaning usage information of the filtered effluent, the target object of the filtered effluent is determined according to the object cleaning usage information, and it is determined whether the target object is a preset target target object. When the object being acted upon is determined to be the target object being acted upon, the first object information and object cleaning method information of the object being acted upon are obtained, and based on the first object information and the object cleaning method information, the impact of the filtered water on the object being acted upon is predicted; the first object information includes at least one of specification information, color information, material information, and usage information, and the impact on object cleaning includes at least one of object deformation impact, object color change impact, object hardness impact, and user usage impact; Based on the impact of the object's cleaning, determine the first water output requirement parameter for the target filter element.

[0008] As an optional implementation, in the first aspect of the present invention, determining the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent includes: When the water usage information of the filtered water includes the user's cleaning usage information, the user's body part affected by the filtered water and the cleaning method information of the body part affected by the filtered water are determined based on the user's cleaning usage information. The system acquires feature information of the body parts affected by the filter, and predicts the impact of the filtered water on the body parts affected by the filter based on the cleaning method information and the feature information. The impact on body parts includes physiological and / or psychological impacts on cleaning. Based on the impact of cleaning on the aforementioned parts, the first water output requirement parameters for the target filter element are determined.

[0009] As an optional implementation, in the first aspect of the present invention, determining the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent includes: When the water usage information of the filtered water includes the dietary usage information of the user of the filtered water, the user information of the dietary user of the filtered water is obtained; the user information includes at least one of user physical information, user dietary record information, user activity record information, and user dietary habit information. Based on the user's dietary usage information, the processing method information of the filtered water is determined, and it is determined whether the filtered water contains a corresponding food ingredient; the processing method information includes heating processing method information, cooling processing method information, or conditioning processing method information; When it is determined that the filtered water does not contain the target food ingredient, the impact of the filtered water on the drinking user is predicted based on the processing method information and the user information of the diner; the impact on the drinking user includes physiological impact and / or psychological impact. Based on the impact of drinking water conditions, the first water output requirement parameter of the target filter element is determined.

[0010] As an optional implementation, in the first aspect of the present invention, the method further includes: When it is determined that the filtered effluent contains the target food object, the second object information of the target food object is obtained; the second object information includes at least one of food type information, food quantity information, and food physical state information. Based on the second object information of the food ingredient and the processing method information, the cooking effect on the food ingredient is predicted; the cooking effect includes at least one of the following: changes in physical properties, changes in chemical properties, changes in microbial properties, and changes in sensory properties. Based on the cooking effects on the food ingredients and the user information of the diners, predict the dietary impact of the filtered water after processing on the diners; the dietary impact includes physiological and / or psychological effects. Based on the impact of the diet, the first water output requirement parameter of the target filter element is determined.

[0011] As an optional implementation, in the first aspect of the present invention, determining the TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered, the first effluent demand parameter of the target filter element, and the second effluent demand parameter includes: Obtain the filter element information and corresponding pipeline information of the target filter element; the filter element information includes at least one of filter element historical usage, filter element type information and filter element specification information, and the pipeline information includes at least one of pipeline historical usage, pipeline type information and pipeline specification information; Based on the water quality characteristic parameters of the water body to be filtered, the filter element information, and the pipeline information, the expected filtration status of the water body to be filtered is determined; Based on the expected filtration conditions of the water to be filtered, the first effluent requirement parameter of the target filter element, and the second effluent requirement parameter, the TDS value range of the effluent of the target filter element is determined.

[0012] The second aspect of this invention discloses an intelligent device for determining the TDS value of effluent water applied in filter cartridge effluent scenarios, the device comprising: The determination module is used to determine the water quality characteristic parameters of the water body to be filtered based on the water body information of the target filter element corresponding to the preset target filter element. The acquisition module is used to acquire water usage information of the filtered water output from the target filter cartridge; The determining module is further configured to determine the first effluent demand parameter of the target filter element based on the water use information of the filtered effluent; and to determine the effluent TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered and the first effluent demand parameter of the target filter element.

[0013] As an optional implementation, in the second aspect of the present invention, the water body information includes at least one of water body material information, water body source information, water body environmental information, and water body sensory information, and the water quality characteristic parameters include at least one of water quality physical characteristic parameters, water quality chemical characteristic parameters, and water quality microbial characteristic parameters. The acquisition module is also used for: Before the determining module determines the TDS value range of the target filter cartridge based on the water quality characteristic parameters of the water body to be filtered and the first effluent requirement parameters of the target filter cartridge, the user's effluent preference information for the target filter cartridge is obtained, and the second effluent requirement parameters of the target filter cartridge are determined based on the user's effluent preference information for the target filter cartridge; the user's effluent preference information includes the user's sensory preference information for the effluent and / or the user's preference information for the substances contained in the effluent. Specifically, the method by which the determining module determines the TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered and the first effluent requirement parameter of the target filter element includes: Based on the water quality characteristic parameters of the water body to be filtered, the first effluent requirement parameter of the target filter element, and the second effluent requirement parameter, the TDS value range of the effluent of the target filter element is determined.

[0014] As an optional implementation, in a second aspect of the present invention, the method by which the determining module determines the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent specifically includes: When the water usage information of the filtered effluent includes the object cleaning usage information of the filtered effluent, the target object of the filtered effluent is determined according to the object cleaning usage information, and it is determined whether the target object is a preset target target object. When the object being acted upon is determined to be the target object being acted upon, the first object information and object cleaning method information of the object being acted upon are obtained, and based on the first object information and the object cleaning method information, the impact of the filtered water on the object being acted upon is predicted; the first object information includes at least one of specification information, color information, material information, and usage information, and the impact on object cleaning includes at least one of object deformation impact, object color change impact, object hardness impact, and user usage impact; Based on the impact of the object's cleaning, determine the first water output requirement parameter for the target filter element.

[0015] As an optional implementation, in a second aspect of the present invention, the method by which the determining module determines the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent specifically includes: When the water usage information of the filtered water includes the user's cleaning usage information, the user's body part affected by the filtered water and the cleaning method information of the body part affected by the filtered water are determined based on the user's cleaning usage information. The system acquires feature information of the body parts affected by the filter, and predicts the impact of the filtered water on the body parts affected by the filter based on the cleaning method information and the feature information. The impact on body parts includes physiological and / or psychological impacts on cleaning. Based on the impact of cleaning on the aforementioned parts, the first water output requirement parameters for the target filter element are determined.

[0016] As an optional implementation, in a second aspect of the present invention, the method by which the determining module determines the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent specifically includes: When the water usage information of the filtered water includes the dietary usage information of the user of the filtered water, the user information of the dietary user of the filtered water is obtained; the user information includes at least one of user physical information, user dietary record information, user activity record information, and user dietary habit information. Based on the user's dietary usage information, the processing method information of the filtered water is determined, and it is determined whether the filtered water contains a corresponding food ingredient; the processing method information includes heating processing method information, cooling processing method information, or conditioning processing method information; When it is determined that the filtered water does not contain the target food ingredient, the impact of the filtered water on the drinking user is predicted based on the processing method information and the user information of the diner; the impact on the drinking user includes physiological impact and / or psychological impact. Based on the impact of drinking water conditions, the first water output requirement parameter of the target filter element is determined.

[0017] As an optional implementation, in the second aspect of the present invention, the method by which the determining module determines the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent specifically includes: When it is determined that the filtered effluent contains the target food object, the second object information of the target food object is obtained; the second object information includes at least one of food type information, food quantity information, and food physical state information. Based on the second object information of the food ingredient and the processing method information, the cooking effect on the food ingredient is predicted; the cooking effect includes at least one of the following: changes in physical properties, changes in chemical properties, changes in microbial properties, and changes in sensory properties. Based on the cooking effects on the food ingredients and the user information of the diners, predict the dietary impact of the filtered water after processing on the diners; the dietary impact includes physiological and / or psychological effects. Based on the impact of the diet, the first water output requirement parameter of the target filter element is determined.

[0018] As an optional implementation, in a second aspect of the present invention, the method by which the determining module determines the TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered, the first effluent demand parameter of the target filter element, and the second effluent demand parameter specifically includes: Obtain the filter element information and corresponding pipeline information of the target filter element; the filter element information includes at least one of filter element historical usage, filter element type information and filter element specification information, and the pipeline information includes at least one of pipeline historical usage, pipeline type information and pipeline specification information; Based on the water quality characteristic parameters of the water body to be filtered, the filter element information, and the pipeline information, the expected filtration status of the water body to be filtered is determined; Based on the expected filtration conditions of the water to be filtered, the first effluent requirement parameter of the target filter element, and the second effluent requirement parameter, the TDS value range of the effluent of the target filter element is determined.

[0019] A third aspect of this invention discloses another intelligent device for determining the TDS value of effluent water applied in filter cartridge effluent scenarios, the device comprising: Memory containing executable program code; A processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the intelligent method for determining the TDS value of effluent water disclosed in the first aspect of the present invention for application in filter cartridge effluent scenarios.

[0020] The fourth aspect of the present invention discloses a computer storage medium storing computer instructions, which, when invoked, are used to execute the intelligent method for determining the TDS value of effluent water in a filter cartridge effluent scenario disclosed in the first aspect of the present invention.

[0021] Compared with the prior art, the embodiments of the present invention have the following beneficial effects: In this embodiment of the invention, water quality characteristic parameters of the water to be filtered are determined based on the water body information corresponding to the target filter element; water usage information of the filtered water output from the target filter element is obtained, and a first effluent demand parameter for the target filter element is determined based on the water usage information; and the effluent TDS value range of the target filter element is determined based on the water quality characteristic parameters of the water to be filtered and the first effluent demand parameter of the target filter element. It is evident that implementing this invention can intelligently determine the effluent TDS value range of the target filter element using the water quality characteristic parameters of the water to be filtered and the first effluent demand parameter of the target filter element. This reduces the process of manually setting the effluent TDS value range, thereby improving the reliability and accuracy of determining the effluent TDS value range, and thus improving the precision of water treatment control. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 This is a schematic diagram of an intelligent TDS value determination scenario for water outlet of a filter cartridge, as disclosed in an embodiment of the present invention. Figure 2 This is a flowchart illustrating an intelligent method for determining the TDS value of effluent water in a filter cartridge effluent scenario, as disclosed in an embodiment of the present invention. Figure 3 This is a flowchart illustrating another intelligent method for determining the TDS value of effluent water in a filter cartridge effluent scenario, as disclosed in an embodiment of the present invention. Figure 4 This is a schematic diagram of the structure of an intelligent TDS value determination device for filter cartridge water effluent application disclosed in an embodiment of the present invention; Figure 5 This is a schematic diagram of another intelligent TDS value determination device for filter cartridge water discharge scenarios disclosed in this embodiment of the invention. Detailed Implementation

[0024] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0025] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this invention are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, apparatus, product, or end that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or ends.

[0026] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0027] This invention discloses an intelligent method and device for determining the TDS value of effluent in filter cartridge effluent scenarios. This method reduces the process of manually setting the TDS value range of effluent, thereby improving the reliability and accuracy of determining the TDS value range of effluent, and thus improving the precision of water treatment control.

[0028] Example 1 Please see Figure 2 , Figure 2 This is a flowchart illustrating a method for intelligently determining the TDS value of effluent water in a filter cartridge effluent scenario, as disclosed in an embodiment of the present invention. Figure 2 The described intelligent TDS value determination method for filter cartridge effluent scenarios can be applied to determine the required TDS value range for various types of target filter cartridges, such as ultrafiltration membrane cartridges, reverse osmosis membrane cartridges, ion exchange resin cartridges, etc., and this invention is not limited thereto. Optionally, this method can be implemented by an effluent TDS value determination system, which can be integrated into the water filtration equipment, or it can be a local server or cloud server used to process the intelligent determination process of effluent TDS values ​​for filter cartridge effluent scenarios, etc., and this invention is not limited thereto. Figure 2As shown, the intelligent method for determining the TDS value of effluent applied to filter cartridge effluent scenarios may include the following operations: 101. Based on the water body information of the target filter corresponding to the water body to be filtered, determine the water quality characteristic parameters of the water body to be filtered.

[0029] In this embodiment of the invention, optionally, the water body information includes at least one of the following: water body material information (such as the presence of silt, chlorine, calcium carbide particles, etc. in the water to be filtered), water body source information (such as the water to be filtered originating from tap water, groundwater, surface water, rainwater, industrial wastewater, etc.), water body environment information (such as the water to be filtered flowing through farmland, industrial areas, or water treatment plants, etc.), and water body sensory information (such as whether the water to be filtered has an odor, color, or turbidity, etc.).

[0030] Further optionally, the water quality characteristic parameters include at least one of the following: physical water quality characteristic parameters (such as the current TDS value, turbidity, water temperature, color, etc. of the water body to be filtered), chemical water quality characteristic parameters (such as the current calcium ion content, magnesium ion content, chloride ion content, pesticide residue, etc. of the water body to be filtered), and microbiological water quality characteristic parameters (such as the current colony type, total colony count, etc. of the water body to be filtered).

[0031] 102. Obtain the water usage information of the filtered water output from the target filter element, and determine the first water demand parameter of the target filter element based on the water usage information of the filtered water output.

[0032] In this embodiment of the invention, the water usage information may include at least one of the following: object cleaning usage information (e.g., using filtered water to clean house items), user cleaning usage information (e.g., using filtered water to wash face and take a bath), and user dietary usage information (e.g., using filtered water to make tea, cook food, etc.).

[0033] Optionally, the first effluent requirement parameters include at least one of the following: first effluent physical indicator requirement parameters (such as the TDS value, turbidity, water temperature, color, etc. required for the filtered effluent), first effluent chemical indicator requirement parameters (such as the calcium ion content, magnesium ion content, chloride ion content, iron ion content, etc. required for the filtered effluent), and first effluent microbiological indicator requirement parameters (such as E. coli not being detected in the filtered effluent, the total number of colonies not exceeding the set threshold, etc.).

[0034] 103. Based on the water quality characteristic parameters of the water body to be filtered and the first effluent requirement parameters of the target filter element, determine the effluent TDS value range of the target filter element.

[0035] In embodiments of the present invention, for example, such as Figure 1As shown, the water to be filtered is treated water from a water treatment plant, with no obvious odor, relatively clear, and its water quality characteristics, such as a TDS value of around 200 mg / L, relatively high levels of hardness components like calcium and magnesium ions, and a total bacterial count meeting basic standards for domestic water, are considered. Then, based on the user's water usage requirements, such as needing the filtered water for drinking, the first required parameters for the target filter cartridge are determined. For example, the calcium and magnesium ion content in the filtered water needs to be significantly reduced, and harmful microorganisms such as E. coli must not be detected. Next, combining the water quality characteristics of the water to be filtered and the first required parameters for the filtered water, the TDS value range of the target filter cartridge is determined to be 0-50 mg / L to meet the user's needs. Furthermore, based on the determined TDS value range of the target filter cartridge, it can be determined whether subsequent target filter cartridges need to be replaced.

[0036] As can be seen, by implementing the embodiments of the present invention, the TDS value range of the target filter element can be intelligently determined by the water quality characteristic parameters of the water to be filtered and the first effluent demand parameters of the target filter element. This reduces the process of manually and subjectively setting the effluent TDS value range, thereby improving the reliability and accuracy of determining the effluent TDS value range, and thus improving the precision of water treatment control.

[0037] Example 2 Please see Figure 3 , Figure 3 This is a flowchart illustrating another intelligent method for determining the TDS value of effluent water, applied to filter cartridge effluent scenarios, as disclosed in an embodiment of the present invention. Figure 3 The described intelligent TDS value determination method for filter cartridge effluent scenarios can be applied to determine the required TDS value range for various types of target filter cartridges, such as ultrafiltration membrane cartridges, reverse osmosis membrane cartridges, ion exchange resin cartridges, etc., and this invention is not limited thereto. Optionally, this method can be implemented by an effluent TDS value determination system, which can be integrated into the water filtration equipment, or it can be a local server or cloud server used to process the intelligent determination process of effluent TDS values ​​for filter cartridge effluent scenarios, etc., and this invention is not limited thereto. Figure 3 As shown, the intelligent method for determining the TDS value of effluent applied to filter cartridge effluent scenarios may include the following operations: 201. Based on the water body information of the target filter element corresponding to the water body to be filtered, determine the water quality characteristic parameters of the water body to be filtered.

[0038] 202. Obtain the water usage information of the filtered water output from the target filter element, and determine the first water demand parameter of the target filter element based on the water usage information of the filtered water output.

[0039] 203. Obtain the user's water filtration preference information for the target filter cartridge, and determine the second water filtration requirement parameters for the target filter cartridge based on the user's water filtration preference information for the target filter cartridge.

[0040] In an embodiment of the present invention, optionally, the user's filtered water preference information includes the user's sensory preference information for filtered water (such as preference for the hardness of the filtered water, intolerance to chlorine taste or color in the water, etc.) and / or the user's preference information for the substances contained in the filtered water (such as the desire to retain natural minerals in the water).

[0041] 204. Based on the water quality characteristic parameters of the water body to be filtered, the first effluent requirement parameters and the second effluent requirement parameters of the target filter element, determine the effluent TDS value range of the target filter element.

[0042] In this embodiment of the invention, for other descriptions of steps 201 and 202, please refer to the detailed description of steps 101 and 102 in Embodiment 1. These descriptions will not be repeated in this embodiment of the invention.

[0043] As can be seen, implementing the embodiments of the present invention can further obtain user filtration water preference information of the target filter cartridge, and then analyze the second effluent water demand parameters of the target filter cartridge. Based on the water quality characteristic parameters of the water to be filtered, the first effluent water demand parameters of the target filter cartridge, and the second effluent water demand parameters, the TDS value range of the target filter cartridge can be determined. In this way, the user's water preference can be met as much as possible, and the reliability and accuracy of determining the effluent TDS value range of the target filter cartridge can be further improved. This is conducive to improving the filtration accuracy of the water to be filtered, thereby increasing the user's stickiness to the water filtration equipment.

[0044] In an optional embodiment, step 202 above, determining the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent, includes: When the water usage information of the filtered water includes the object cleaning usage information of the filtered water, the target object of the filtered water is determined based on the object cleaning usage information, and it is determined whether the target object is the preset target object. When the object being acted upon is determined to be the target object, the first object information and the object cleaning method information of the object are obtained, and based on the first object information and the object cleaning method information, the impact of the filtered water on the object cleaning is predicted. Based on the impact of object cleaning, determine the first water output requirement parameters for the target filter element.

[0045] In this optional embodiment, the first object information may optionally include at least one of specification information, color information, material information, and usage information, and the object cleaning method information may include the tools / equipment required for object cleaning, the duration, and the cleaning mode. Further optional, the object cleaning impact factors may include at least one of object deformation impact factors, object color change impact factors, object hardness / softness impact factors, and user usage impact factors.

[0046] For example, when using filtered water to clean silk curtains, the system first determines whether the silk curtains are a pre-defined target object (this target object can be understood as an object easily affected by the cleaning effect of filtered water, such as clothes, shoes, and curtains, while tile floors and cabinets can be excluded from the target object setting). If so, the system obtains relevant information about the curtains, such as their color being off-white and their material being 100% mulberry silk. It then analyzes whether high water hardness can cause sediment buildup with detergent, leading to stiffening and yellowing of the curtains; and whether residual chlorine can oxidize silk proteins, causing the fabric to become brittle or even partially damaged. Based on these cleaning effects, the system determines the first required parameters for the target filter cartridge's output water: TDS value ≤ 50 mg / L (low hardness), residual chlorine content ≤ 0.01 mg / L, and turbidity ≤ 0.5 NTU (to avoid impurity residue), ensuring that the curtains remain soft and new-looking after cleaning, without affecting subsequent use.

[0047] As can be seen, this optional embodiment, for scenarios where the filtered water is used for object cleaning, first determines the object to be cleaned based on the object's cleaning purpose information and determines whether it is a preset target object. If so, it obtains the object's specifications, color, material, usage information, and cleaning method, and then predicts the potential impact of the filtered water on the object, such as deformation, color change, changes in softness / hardness, and user experience. Finally, based on these impacts, it determines the first water output requirement parameters for the target filter cartridge, thus adapting the filter cartridge to the object cleaning needs. This allows for precise matching of the water quality requirements of the filtered water for object cleaning, reducing damage and color changes to the object due to non-compliant filtered water, and ensuring the performance and appearance of the cleaned object. Furthermore, customizing the filter cartridge's water output parameters based on actual needs can improve the accuracy and effectiveness of subsequent filtration of the water, reducing resource waste and improving the user's experience and satisfaction during the object cleaning process.

[0048] In another optional embodiment, the first effluent water requirement parameter of the target filter element is determined based on the water usage information of the filtered effluent, including: When the water usage information of the filtered water includes the user's cleaning usage information, the part of the user's body to which the filtered water is applied and the cleaning method for that part of the user's body are determined based on the user's cleaning usage information. The system acquires feature information about the body parts of the user and, based on the cleaning method and feature information, predicts the impact of the filtered water on the cleaning of the body parts of the user. Based on the impact of cleaning on the target area, determine the first effluent water requirement parameters for the target filter element.

[0049] In this optional embodiment, the body parts affected may include the torso, limbs, neck, head (such as face, hair, etc.), etc., and the cleaning method information may include the cleaning products required for cleaning the body parts, the cleaning duration, the rinsing method, etc. Further optional, the characteristic information of the body parts affected may include skin sensitivity, the degree to which changes in hair texture are affected, sensory sensitivity, etc., while the impact of cleaning on the body parts may include physiological impacts and / or psychological impacts.

[0050] For example, suppose a user plans to use filtered water to cleanse their face, washing with a gentle cleanser morning and evening for about 30 seconds using warm water. Their facial characteristics include thin skin, prone to redness and dryness, and sensitivity to chemical residues and water hardness. If residual chlorine in the filtered water is not removed (e.g., above 0.5 mg / L), it may irritate the skin and cause a burning sensation (corresponding to physiological effects of cleansing). If the water hardness is too high (TDS > 300 mg / L), mineral residue may remain after rinsing, leading to tightness and itching, causing anxiety about inadequate cleansing (psychological effects of cleansing). Therefore, based on these factors, the primary water output parameters for the target filter cartridge are determined to be: residual chlorine content ≤ 0.01 mg / L, TDS value ≤ 100 mg / L, and pH value 6.5-7.5 (close to the slightly acidic environment of the skin), ensuring that cleansing does not irritate the user's skin while improving user comfort.

[0051] As can be seen, this optional embodiment, for scenarios where the filtered water is used for user cleaning, first determines the body part to be cleaned and the corresponding cleaning method based on the user's cleaning purpose, then obtains the characteristic information of that part, and combines the cleaning method to predict the possible physiological and psychological impacts of the filtered water on that part of the body. Finally, based on these impacts, it determines the first required parameters for the target filter cartridge, ensuring that the filtered water matches the user's cleaning needs. In this way, the characteristics of the body part, the cleaning method, and the required filtered water parameters can be accurately correlated, effectively reducing physiological discomfort such as skin irritation and hair damage caused by water quality problems. It also reduces the psychological distress caused by poor cleaning experience, thereby improving the safety and comfort of user cleaning and enhancing user trust in the filtered water. This makes the cleaning process more tailored to individual differences, improves overall user satisfaction, and comprehensively enhances the accuracy of determining the TDS value range of the target filter cartridge's output water.

[0052] In another optional embodiment, the first effluent water requirement parameter of the target filter element is determined based on the water usage information of the filtered effluent, including: When the water usage information of the filtered water includes the dietary usage information of the users who consumed the filtered water, obtain the user information of the dietary users of the filtered water. Based on the user's dietary needs, determine the processing method for the filtered water and whether the filtered water contains any corresponding food ingredients. When it is determined that the filtered water does not affect any food items, the impact of the filtered water on the drinking water of the food users is predicted based on the processing method information and the user information of the food users. Based on the impact of drinking water, determine the first water output requirement parameters for the target filter cartridge.

[0053] In this optional embodiment, the user information may include at least one of the following: user physical condition information, user dietary record information, user activity record information, and user dietary habit information; the processing method information may include heating processing method information, cooling processing method information, or modulation processing method information. Further optional, the impact of drinking may include the physiological impact of drinking and / or the psychological impact of drinking.

[0054] For example, if a user needs to use the filtered water to brew tea (without a specific food ingredient), and this user has a cold constitution, a sensitive stomach, and is sensitive to unusual odors in the water, it can be analyzed that if the filtered water does not remove residual chlorine, an unpleasant odor may develop during tea brewing, causing psychological discomfort for the user. Conversely, if the filtered water has excessively high levels of calcium and magnesium ions, it may cause sedimentation in the tea and potentially irritate the user's sensitive stomach. Therefore, considering these factors, the primary water output parameters for the target filter cartridge can be determined as follows: residual chlorine ≤ 0.01 mg / L, TDS ≤ 100 mg / L, and turbidity ≤ 0.1 NTU. This ensures that the water is odorless and sediment-free during tea brewing, meeting the user's gastrointestinal tolerance and improving the drinking experience.

[0055] Furthermore, the method also includes: When it is determined that there is a food object in the filtered water, the second object information of the food object is obtained. Based on the second object information of the food ingredient and the processing method information, predict the cooking effect on the food ingredient. Based on the cooking effects on the food ingredients and the user information of the diners, predict the impact of the filtered water after processing on the diners' diet. Based on the impact of diet, determine the first water output requirement parameters for the target filter cartridge.

[0056] In this optional embodiment, the second object information may optionally include at least one of ingredient type information, ingredient quantity information, and ingredient physical state information, and the cooking effect may optionally include at least one of physical property changes (e.g., shape changes), chemical property changes (e.g., protein denaturation), microbiological property changes, and sensory property changes (e.g., ingredient color changes). Further optionally, the dietary impact may include dietary physiological impact and / or dietary psychological impact.

[0057] For example, if filtered water with excessive hardness and residual chlorine is used to soak dried white fungus, it may result in incomplete soaking, a hard texture, and damage to its polysaccharide components, potentially causing an off-flavor in the soup. This would affect the user's taste and sensitive stomach. Therefore, the primary water output parameters for the target filter cartridge can be determined as follows: TDS ≤ 80 mg / L (low hardness) and residual chlorine ≤ 0.01 mg / L. This ensures that the filtered water has been properly treated, and that the cooked food meets the user's taste preferences while minimizing gastrointestinal discomfort.

[0058] Furthermore, when the aforementioned water usage information of the filtered water includes at least two of the following: object cleaning usage information, user cleaning usage information, and user dietary usage information, the corresponding impact can be predicted first using at least two of these three types of information (refer to the descriptions in the aforementioned embodiments). Then, the first water output requirement parameter of the target filter element can be determined comprehensively based on each impact, rather than relying solely on one type of usage information to determine the first water output requirement parameter of the target filter element.

[0059] As can be seen, this optional embodiment, targeting scenarios where filtered water acts on food, first acquires secondary object information about the food, combines this with processing methods, predicts potential physical, chemical, microbiological, and sensory changes in the food's characteristics during cooking, and then combines this with information about the diner to predict the physiological and psychological impact of these changes on the user's diet. Finally, based on the dietary impact, it determines the first effluent requirement parameters for the target filter cartridge, ensuring that the filtered water is suitable for food preparation and user needs. By linking food characteristics, the cooking process, and user needs, it reduces the risk of nutrient loss, deteriorated taste, or safety issues caused by water quality problems, ensuring food safety and palatability. Simultaneously, customizing filter cartridge parameters based on user physiological and psychological needs can improve the dining experience, reduce discomfort caused by poor food preparation, and allow the filtered water to play a precise role in food processing, enhancing user trust and satisfaction with the water quality. Furthermore, comprehensively determining the first effluent requirement parameters for the target filter cartridge through various influencing factors effectively and comprehensively improves the reliability and accuracy of subsequent determination of the TDS value range of the target filter cartridge's effluent.

[0060] In another optional embodiment, step 204 above, determining the TDS value range of the target filter cartridge based on the water quality characteristic parameters of the water to be filtered, the first effluent requirement parameter of the target filter cartridge, and the second effluent requirement parameter, includes: Obtain the filter element information and corresponding pipeline information of the target filter element; Based on the water quality characteristics, filter information, and pipeline information of the water to be filtered, determine the expected filtration status of the water to be filtered. Based on the expected filtration conditions of the water to be filtered, the first effluent requirement parameters and the second effluent requirement parameters of the target filter element, the range of TDS values ​​for the effluent of the target filter element is determined.

[0061] In this optional embodiment, the filter element information may include at least one of filter element historical usage, filter element type information, and filter element specification information, and the pipeline information may include at least one of pipeline historical usage, pipeline type information, and pipeline specification information.

[0062] For example, if the target filter cartridge uses groundwater, and the water quality parameters show a raw water TDS value of 650 mg / L and high calcium and magnesium ion content, and the target filter cartridge is an RO reverse osmosis filter cartridge that has been used for 8 months, and the household pipes are made of PPR material, have been used for 3 years, and have a pipe diameter of 20 mm, then, considering the first output water requirement parameter of TDS ≤ 50 mg / L for drinking purposes, and the second output water requirement parameter determined by user preference for low-mineralized water with a TDS ≤ 30 mg / L, and further combining the filter cartridge and pipe information, it can be predicted that the current filtration efficiency of the RO filter cartridge is approximately 85%, and there is no significant secondary pollution in the pipes. Therefore, considering the raw water TDS, the expected filtration efficiency, and the two types of output water requirements, the TDS value range of the target filter cartridge's output water can be determined to be 10-30 mg / L, to meet drinking standards, align with user preferences, and ensure the normal filtration capacity of the filter cartridge and pipes.

[0063] As can be seen, this optional embodiment, when determining the TDS value range of the target filter cartridge, first obtains the relevant information of the target filter cartridge and its corresponding pipeline, then combines it with the water quality characteristic parameters of the water to be filtered to analyze the expected filtration effect of the water after passing through the filter cartridge and pipeline. Finally, it comprehensively considers the expected filtration situation, the first effluent requirement parameters and the second effluent requirement parameters of the target filter cartridge to determine the effluent TDS value range. In this way, by comprehensively considering the characteristics of the filter cartridge and pipeline and the basic water quality, the determined effluent TDS value range is more in line with the actual filtration capacity, reducing the occurrence of unreasonable ranges due to overestimation or underestimation of the filtration effect. At the same time, by combining the two types of effluent requirement parameters, the range meets both the basic usage standards and the user's personalized preferences, improving the accuracy and applicability of the TDS value range determination, providing a reliable basis for subsequent judgment on whether the target filter cartridge needs to be replaced, thereby ensuring the quality of filtered water and user experience.

[0064] Example 3 Please see Figure 4 , Figure 4 This is a schematic diagram of the structure of an intelligent TDS value determination device for filter cartridge effluent applications, as disclosed in an embodiment of the present invention. Figure 4 As shown, the intelligent TDS value determination device for filter cartridge effluent applications may include: The determining module 301 is used to determine the water quality characteristic parameters of the water body to be filtered based on the water body information of the water body to be filtered corresponding to the preset target filter element. The acquisition module 302 is used to acquire the water usage information of the filtered water output from the target filter cartridge; The determining module 301 is also used to determine the first effluent demand parameter of the target filter element based on the water use information of the filtered effluent; and to determine the effluent TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered and the first effluent demand parameter of the target filter element.

[0065] It is evident that implementation Figure 4 The intelligent TDS value determination device for filter cartridge effluent scenarios described herein can intelligently determine the TDS value range of the target filter cartridge effluent by using the water quality characteristic parameters of the water to be filtered and the first effluent demand parameters of the target filter cartridge. This reduces the process of manually setting the effluent TDS value range, thereby improving the reliability and accuracy of determining the effluent TDS value range and thus improving the precision of water treatment control.

[0066] In an optional embodiment, the water body information includes at least one of water body material information, water body source information, water body environmental information, and water body sensory information, and the water quality characteristic parameters include at least one of water quality physical characteristic parameters, water quality chemical characteristic parameters, and water quality microbiological characteristic parameters. Module 302 is also used for: Before determining the TDS value range of the target filter cartridge based on the water quality characteristic parameters of the water body to be filtered and the first effluent demand parameters of the target filter cartridge, the module 301 obtains the user filtration effluent preference information of the target filter cartridge and determines the second effluent demand parameters of the target filter cartridge based on the user filtration effluent preference information of the target filter cartridge. Specifically, the method by which the determining module 301 determines the TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered and the first effluent requirement parameters of the target filter element includes: Based on the water quality characteristic parameters of the water to be filtered, the first effluent requirement parameters and the second effluent requirement parameters of the target filter element, the range of TDS values ​​for the effluent of the target filter element is determined.

[0067] In this optional embodiment, the user's filtered water preference information includes the user's filtered water sensory preference information and / or the user's filtered water containing substance preference information.

[0068] It is evident that implementation Figure 4The intelligent TDS value determination device for filter cartridge effluent scenarios described herein can further acquire user filtration preference information for the target filter cartridge, and then analyze the second effluent demand parameters of the target filter cartridge. Based on the water quality characteristic parameters of the water to be filtered, the first effluent demand parameters of the target filter cartridge, and the second effluent demand parameters, the device determines the TDS value range of the target filter cartridge's effluent. This can satisfy the user's water preferences as much as possible, further improving the reliability and accuracy of determining the TDS value range of the target filter cartridge's effluent, thereby improving the filtration accuracy of the water to be filtered and enhancing the user's loyalty to the water filtration equipment.

[0069] In another optional embodiment, the method by which the determining module 301 determines the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent specifically includes: When the water usage information of the filtered water includes the object cleaning usage information of the filtered water, the target object of the filtered water is determined based on the object cleaning usage information, and it is determined whether the target object is the preset target object. When the object being acted upon is determined to be the target object, the first object information and the object cleaning method information of the object are obtained, and based on the first object information and the object cleaning method information, the impact of the filtered water on the object cleaning is predicted. Based on the impact of object cleaning, determine the first water output requirement parameters for the target filter element.

[0070] In this optional embodiment, the first object information includes at least one of specification information, color information, material information, and usage information, and the object cleaning impact includes at least one of object deformation impact, object color change impact, object hardness impact, and user usage impact.

[0071] It is evident that implementation Figure 4The intelligent TDS value determination device for filter cartridge effluent scenarios described herein can, for scenarios where the filtered effluent is used for object cleaning, first identify the object to be cleaned based on the object's intended use information and determine if it is a preset target object. If so, it acquires the object's specifications, color, material, usage information, and cleaning method, and then predicts the potential impact of the filtered effluent on the object, such as deformation, color change, alteration of softness / hardness, and user experience. Finally, based on these impacts, it determines the primary effluent requirements for the target filter cartridge, allowing the filter cartridge to adapt to the object's cleaning needs. This accurately matches the water quality requirements of the filtered effluent for object cleaning, reducing damage and color changes to objects caused by non-compliant effluent, and ensuring the performance and appearance of the cleaned object. Furthermore, customizing the filter cartridge effluent parameters based on actual needs improves the accuracy and effectiveness of subsequent filtration of the water, reducing resource waste and enhancing the user experience and satisfaction during the object cleaning process.

[0072] In yet another optional embodiment, the method by which the determining module 301 determines the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent specifically includes: When the water usage information of the filtered water includes the user's cleaning usage information, the part of the user's body to which the filtered water is applied and the cleaning method for that part of the user's body are determined based on the user's cleaning usage information. The system acquires feature information about the body parts of the user and, based on the cleaning method and feature information, predicts the impact of the filtered water on the cleaning of the body parts of the user. Based on the impact of cleaning on the target area, determine the first effluent water requirement parameters for the target filter element.

[0073] In this optional embodiment, the impact of site cleaning includes the physiological impact of cleaning and / or the psychological impact of cleaning.

[0074] It is evident that implementation Figure 4The intelligent TDS value determination device for filter cartridge outlet water scenarios described herein can, for scenarios where filtered water is used for user cleaning, first determine the body part to be cleaned and the corresponding cleaning method based on the user's cleaning purpose, then acquire the characteristic information of that body part, and combine it with the cleaning method to predict the possible physiological and psychological impacts of the filtered water on that body part. Finally, based on these impacts, it determines the first required parameters for the target filter cartridge's outlet water, ensuring that the filtered water is suitable for the user's cleaning needs. In this way, it can accurately correlate body part characteristics, cleaning methods, and required filtered water parameters, effectively reducing physiological discomfort such as skin irritation and hair damage caused by water quality problems, while also reducing psychological distress caused by poor cleaning experience. This improves the safety and comfort of user cleaning, enhances user trust in the filtered water, and makes the cleaning process more tailored to individual differences, improving overall user satisfaction and comprehensively improving the accuracy of determining the TDS value range of the target filter cartridge's outlet water.

[0075] In yet another optional embodiment, the method by which the determining module 301 determines the first effluent demand parameter of the target filter element based on the water usage information of the filtered effluent specifically includes: When the water usage information of the filtered water includes the dietary usage information of the users who consumed the filtered water, obtain the user information of the dietary users of the filtered water. Based on the user's dietary needs, determine the processing method for the filtered water and whether the filtered water contains any corresponding food ingredients. When it is determined that the filtered water does not affect any food items, the impact of the filtered water on the drinking water of the food users is predicted based on the processing method information and the user information of the food users. Based on the impact of drinking water, determine the first water output requirement parameters for the target filter cartridge.

[0076] In this optional embodiment, the user information includes at least one of the following: user physical condition information, user diet record information, user activity record information, and user dietary habit information; the processing method information includes heating processing method information, cooling processing method information, or modulation processing method information; the drinking impact includes the physiological impact of drinking and / or the psychological impact of drinking.

[0077] Furthermore, the method by which module 301 determines the first effluent requirement parameters of the target filter element based on the water usage information of the filtered effluent also includes: When it is determined that there is a food object in the filtered water, the second object information of the food object is obtained. Based on the second object information of the food ingredient and the processing method information, predict the cooking effect on the food ingredient. Based on the cooking effects on the food ingredients and the user information of the diners, predict the impact of the filtered water after processing on the diners' diet. Based on the impact of diet, determine the first water output requirement parameters for the target filter cartridge.

[0078] In this optional embodiment, the second object information includes at least one of ingredient type information, ingredient quantity information, and ingredient physical state information; the cooking effect includes at least one of physical property changes, chemical property changes, microbiological property changes, and sensory property changes; and the dietary impact includes dietary physiological impact and / or dietary psychological impact.

[0079] It is evident that implementation Figure 4 The intelligent TDS value determination device for filter cartridge effluent scenarios described herein can, in the context of filtered water acting on food, first acquire secondary object information about the food, and then, combined with the processing method, predict the physical, chemical, microbiological, and sensory changes that the food may undergo during cooking. Next, it incorporates information about the diner to predict the physiological and psychological impact of these changes on the user's diet. Finally, based on the dietary impact, it determines the primary effluent requirement parameters for the target filter cartridge, ensuring that the filtered water is suitable for food preparation and user needs. By linking food characteristics, the cooking process, and user requirements, it reduces the risk of nutrient loss, deteriorated taste, or safety issues caused by water quality problems, thus guaranteeing food safety and palatability. Simultaneously, customizing filter cartridge parameters based on user physiological and psychological needs can improve the dining experience, reduce discomfort caused by poor cooking results, and allow the filtered water to play a precise role in food processing, enhancing user trust and satisfaction with the water quality. Furthermore, comprehensively determining the primary effluent requirement parameters for the target filter cartridge by considering various influencing factors effectively and comprehensively improves the reliability and accuracy of subsequent determination of the target filter cartridge's effluent TDS value range.

[0080] In another optional embodiment, the method by which the determining module 301 determines the TDS value range of the target filter cartridge based on the water quality characteristic parameters of the water body to be filtered, the first effluent requirement parameter of the target filter cartridge, and the second effluent requirement parameter specifically includes: Obtain the filter element information and corresponding pipeline information of the target filter element; Based on the water quality characteristics, filter information, and pipeline information of the water to be filtered, determine the expected filtration status of the water to be filtered. Based on the expected filtration conditions of the water to be filtered, the first effluent requirement parameters and the second effluent requirement parameters of the target filter element, the range of TDS values ​​for the effluent of the target filter element is determined.

[0081] In this optional embodiment, the filter element information includes at least one of filter element historical usage, filter element type information, and filter element specification information, and the pipeline information includes at least one of pipeline historical usage, pipeline type information, and pipeline specification information.

[0082] It is evident that implementation Figure 5 The intelligent TDS value determination device for filter cartridge effluent scenarios described herein can determine the TDS value range of a target filter cartridge by first acquiring relevant information about the target filter cartridge and its corresponding pipeline, then combining this information with the water quality characteristics of the water to be filtered to analyze the expected filtration effect after passing through the filter cartridge and pipeline. Finally, it comprehensively considers the expected filtration situation, the first effluent requirement parameters of the target filter cartridge, and the second effluent requirement parameters to determine the effluent TDS value range. This comprehensive consideration of filter cartridge, pipeline characteristics, and water quality fundamentals ensures that the determined effluent TDS value range more closely matches the actual filtration capacity, reducing the possibility of unreasonable ranges due to overestimation or underestimation of the filtration effect. Simultaneously, by combining the two types of effluent requirement parameters, the range meets both basic usage standards and user-specific preferences, improving the accuracy and applicability of TDS value range determination. This provides a reliable basis for subsequent judgments on whether the target filter cartridge needs replacement, thereby ensuring filtered water quality and user experience.

[0083] Example 4 Please see Figure 5 , Figure 5 This is a schematic diagram of the structure of another intelligent TDS value determination device for filter cartridge effluent applications disclosed in this invention. ​ As shown, the intelligent TDS value determination device for filter cartridge effluent applications may include: Memory 401 storing executable program code; Processor 402 coupled to memory 401; The processor 402 calls the executable program code stored in the memory 401 to execute the steps in the intelligent method for determining the TDS value of effluent water applied to the filter cartridge effluent scenario as described in Embodiment 1 or Embodiment 2 of the present invention.

[0084] Example 5 This invention discloses a computer storage medium storing computer instructions. When these computer instructions are invoked, they are used to execute the steps in the intelligent method for determining the TDS value of effluent water applied to a filter cartridge effluent scenario, as described in Embodiment 1 or Embodiment 2 of this invention.

[0085] Example 6 This invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to perform the steps in the intelligent determination method for the TDS value of effluent water applied to the filter cartridge effluent scenario described in Embodiment 1 or Embodiment 2.

[0086] The device embodiments described above are merely illustrative. The modules described as separate components may or may not be physically separate. The components shown as modules may or may not be physical modules; that is, they may be located in one place or distributed across multiple network modules. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.

[0087] Through the detailed description of the above embodiments, those skilled in the art can clearly understand that each implementation method can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, including read-only memory (ROM), random access memory (RAM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), one-time programmable read-only memory (OTPROM), electrically-Erasable Programmable Read-Only Memory (EEPROM), compact disc read-only memory (CD-ROM) or other optical disc storage, disk storage, magnetic tape storage, or any other computer-readable medium that can be used to carry or store data.

[0088] Finally, it should be noted that the intelligent TDS value determination method and device for filter cartridge water effluent scenarios disclosed in the embodiments of the present invention are merely preferred embodiments of the present invention, and are only used to illustrate the technical solutions of the present invention, not 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; and these 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.

Claims

1. A method for intelligently determining the TDS value of effluent in filter cartridge effluent scenarios, characterized in that, The method includes: Based on the water body information of the target filter corresponding to the preset target filter element, the water quality characteristic parameters of the water body to be filtered are determined. Obtain the water usage information of the filtered water output from the target filter cartridge, and determine the first water demand parameter of the target filter cartridge based on the water usage information of the filtered water output. Based on the water quality characteristic parameters of the water body to be filtered and the first effluent demand parameters of the target filter element, the effluent TDS value range of the target filter element is determined.

2. The intelligent method for determining the TDS value of effluent applied to filter cartridge effluent scenarios according to claim 1, characterized in that, The water body information includes at least one of water body material information, water body source information, water body environmental information, and water body sensory information; the water quality characteristic parameters include at least one of water quality physical characteristic parameters, water quality chemical characteristic parameters, and water quality microbiological characteristic parameters. Before determining the TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered and the first effluent requirement parameter of the target filter element, the method further includes: Obtain user filtration water preference information for the target filter cartridge, and determine the second water output requirement parameter for the target filter cartridge based on the user filtration water preference information; the user filtration water preference information includes user filtration water sensory preference information and / or user filtration water containing substance preference information; The step of determining the TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered and the first effluent demand parameter of the target filter element includes: Based on the water quality characteristic parameters of the water body to be filtered, the first effluent requirement parameter of the target filter element, and the second effluent requirement parameter, the TDS value range of the effluent of the target filter element is determined.

3. The intelligent method for determining the TDS value of effluent in a filter cartridge effluent scenario according to claim 1 or 2, characterized in that, The step of determining the first water demand parameter of the target filter element based on the water usage information of the filtered water includes: When the water usage information of the filtered effluent includes the object cleaning usage information of the filtered effluent, the target object of the filtered effluent is determined according to the object cleaning usage information, and it is determined whether the target object is a preset target target object. When the object being acted upon is determined to be the target object being acted upon, the first object information and object cleaning method information of the object being acted upon are obtained, and based on the first object information and the object cleaning method information, the impact of the filtered water on the object being acted upon is predicted; the first object information includes at least one of specification information, color information, material information, and usage information, and the impact on object cleaning includes at least one of object deformation impact, object color change impact, object hardness impact, and user usage impact; Based on the impact of the object's cleaning, determine the first water output requirement parameter for the target filter element.

4. The intelligent method for determining the TDS value of effluent in a filter cartridge effluent scenario according to claim 1 or 2, characterized in that, The step of determining the first water demand parameter of the target filter element based on the water usage information of the filtered water includes: When the water usage information of the filtered water includes the user's cleaning usage information, the user's body part affected by the filtered water and the cleaning method information of the body part affected by the filtered water are determined based on the user's cleaning usage information. The system acquires feature information of the body parts affected by the filter, and predicts the impact of the filtered water on the body parts affected by the filter based on the cleaning method information and the feature information. The impact on body parts includes physiological and / or psychological impacts on cleaning. Based on the impact of cleaning on the aforementioned parts, the first water output requirement parameters for the target filter element are determined.

5. The intelligent method for determining the TDS value of effluent in a filter cartridge effluent scenario according to claim 1 or 2, characterized in that, The step of determining the first water demand parameter of the target filter element based on the water usage information of the filtered water includes: When the water usage information of the filtered water includes the dietary usage information of the user of the filtered water, the user information of the dietary user of the filtered water is obtained; the user information includes at least one of user physical information, user dietary record information, user activity record information, and user dietary habit information. Based on the user's dietary usage information, the processing method information of the filtered water is determined, and it is determined whether the filtered water contains a corresponding food ingredient; the processing method information includes heating processing method information, cooling processing method information, or conditioning processing method information; When it is determined that the filtered water does not contain the target food ingredient, the impact of the filtered water on the drinking user is predicted based on the processing method information and the user information of the diner; the impact on the drinking user includes physiological impact and / or psychological impact. Based on the impact of drinking water conditions, the first water output requirement parameter of the target filter element is determined.

6. The intelligent method for determining the TDS value of effluent in a filter cartridge effluent scenario according to claim 5, characterized in that, The method further includes: When it is determined that the filtered effluent contains the target food object, the second object information of the target food object is obtained; the second object information includes at least one of food type information, food quantity information, and food physical state information. Based on the second object information of the food ingredient and the processing method information, the cooking effect on the food ingredient is predicted; the cooking effect includes at least one of the following: changes in physical properties, changes in chemical properties, changes in microbial properties, and changes in sensory properties. Based on the cooking effects on the food ingredients and the user information of the diners, predict the dietary impact of the filtered water after processing on the diners; the dietary impact includes physiological and / or psychological effects. Based on the impact of the diet, the first water output requirement parameter of the target filter element is determined.

7. The intelligent method for determining the TDS value of effluent in a filter cartridge effluent scenario according to claim 2, characterized in that, The step of determining the TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered, the first effluent requirement parameter of the target filter element, and the second effluent requirement parameter includes: Obtain the filter element information and corresponding pipeline information of the target filter element; the filter element information includes at least one of filter element historical usage, filter element type information and filter element specification information, and the pipeline information includes at least one of pipeline historical usage, pipeline type information and pipeline specification information; Based on the water quality characteristic parameters of the water body to be filtered, the filter element information, and the pipeline information, the expected filtration status of the water body to be filtered is determined; Based on the expected filtration conditions of the water to be filtered, the first effluent requirement parameter of the target filter element, and the second effluent requirement parameter, the TDS value range of the effluent of the target filter element is determined.

8. A device for intelligently determining the TDS value of effluent in filter cartridge effluent applications, characterized in that, The device includes: The determination module is used to determine the water quality characteristic parameters of the water body to be filtered based on the water body information of the target filter element corresponding to the preset target filter element. The acquisition module is used to acquire water usage information of the filtered water output from the target filter cartridge; The determining module is further configured to determine the first effluent demand parameter of the target filter element based on the water use information of the filtered effluent; and to determine the effluent TDS value range of the target filter element based on the water quality characteristic parameters of the water body to be filtered and the first effluent demand parameter of the target filter element.

9. An intelligent device for determining the TDS value of effluent in filter cartridge effluent applications, characterized in that, The device includes: Memory containing executable program code; A processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the intelligent method for determining the TDS value of the effluent in a filter cartridge effluent scenario as described in any one of claims 1-7.

10. A computer storage medium, characterized in that, The computer storage medium stores computer instructions, which, when invoked, are used to execute the intelligent method for determining the TDS value of effluent water as described in any one of claims 1-7 for application in filter cartridge effluent scenarios.