Mineralization system, mineralization system control method and mineralization equipment

By combining control, drive, extraction, heating and water storage modules, the problem of water dispensers being unable to stably produce mineral water of a fixed concentration is solved, achieving precise control and flexible output of mineral water concentration to meet diverse user needs.

CN119240966BActive Publication Date: 2026-03-13GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-23
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

Existing water dispenser equipment cannot reliably produce mineral water of a fixed concentration, nor can it flexibly provide users with mineral water concentrations that meet their needs.

Method used

By combining a control module, a drive module, an extraction module, a heating module, and a water storage module, the concentration of mineral water is precisely controlled through thermal extraction and liquid level detection, and mineral water of the target concentration can be provided according to user needs.

Benefits of technology

It achieves precise control and stable output of mineral water concentration, flexibly meeting users' needs for mineral water of different concentrations and improving the flexibility of mineralization equipment.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This application relates to a mineralization system, a mineralization system control method, and mineralization equipment, comprising: a control module, a drive module, an extraction module, a heating module, and a water storage module; the control module is connected to the drive module, the extraction module, the heating module, and the water storage module respectively; one end of the drive module is connected to a preset water inlet pipe, the other end of the drive module is connected to the water inlet of the extraction module through the heating module, and the water outlet of the extraction module is connected to the water storage module through the drive module; this application, in extracting mineral water, achieves thermal extraction by heating a preset water body, which can stably produce mineral water of a preset concentration, stores the mineral water in the water storage module, and provides mineral water of a target concentration according to the target water intake instruction, which can flexibly meet the user's requirements for mineral water intake of different concentrations.
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Description

Technical Field

[0001] This application relates to the field of water purification equipment technology, and in particular to a mineralization system, a mineralization system control method, and mineralization equipment. Background Technology

[0002] As living standards improve, drinking water health has become a major concern. The mainstream market often uses reverse osmosis filtration systems in water dispensers to remove various impurities and obtain pure water, thus ensuring drinking water safety. However, while filtering out harmful substances, reverse osmosis filtration systems also remove beneficial minerals from the water.

[0003] Existing water dispenser equipment uses a mineralization module that soaks mineral materials in water to obtain mineral water. However, because the concentration of minerals precipitated from the mineral materials fluctuates greatly depending on the time they are left to stand, the mineralization module cannot consistently produce mineral water of a fixed concentration. Furthermore, users require different concentrations of mineral water in their daily lives, and existing water dispensers cannot flexibly provide users with mineral water of the required concentration. Summary of the Invention

[0004] Therefore, it is necessary to address the aforementioned technical problems by providing a mineralization system, mineralization system control method, and mineralization equipment that can stably produce mineral water of a certain concentration and provide users with mineral water of the required concentration.

[0005] In a first aspect, this application provides a mineralization system, including: a control module, a drive module, an extraction module, a heating module, and a water storage module;

[0006] The control module is connected to the drive module, the extraction module, the heating module, and the water storage module respectively; one end of the drive module is connected to a preset water inlet pipe, the other end of the drive module is connected to the water inlet of the extraction module through the heating module, and the water outlet of the extraction module is connected to the water storage module through the drive module.

[0007] During the extraction of mineral water, the control module controls the start of the drive module and the heating module to connect a preset water body through a preset inlet pipe and to allow the preset water body to enter the extraction module via the drive module and the heating module; the heating module is used to heat the preset water body to a preset temperature, and the extraction module is used to convert the preset water body into mineral water of a preset concentration;

[0008] When transferring mineral water, the control module controls the drive module to start, so that the mineral water enters the water storage module from the extraction module via the drive module;

[0009] When mineral water is dispensed, the control module controls the water storage module to provide mineral water of the target concentration according to the target water dispensing command.

[0010] In one embodiment, the extraction module includes a mineralization chamber, a first solenoid valve, and a second solenoid valve; both the first solenoid valve and the second solenoid valve are connected to the control module and are used to perform switching actions according to the control instructions of the control module.

[0011] One end of the first solenoid valve is connected to the inlet of the mineralization chamber, and the other end of the first solenoid valve is connected to the heating module; one end of the second solenoid valve is connected to the outlet of the mineralization chamber, and the other end of the second solenoid valve is connected to the drive module.

[0012] In one embodiment, the mineralization chamber includes a mineralization filter element and a membrane shell, wherein the membrane shell is provided with an atmospheric vent, which is used to balance the pressure inside the mineralization chamber with the external air pressure.

[0013] In one embodiment, when extracting mineral water, the control module is used to obtain a target extraction command, wherein the target extraction command includes a preset concentration corresponding to the extracted mineral water;

[0014] After the preset water body enters the extraction module via the drive module and the heating module, the extraction module is controlled to extract for a preset time according to the target extraction command to obtain mineral water of a preset concentration.

[0015] In one embodiment, the higher the preset concentration corresponding to the target extraction command, the longer the preset extraction time controlled by the control module.

[0016] In one embodiment, if the preset concentration corresponding to the target extraction command is a first concentration, the control module controls the extraction module to extract for a first preset time to obtain mineral water of the first concentration;

[0017] If the preset concentration corresponding to the target extraction command is the second concentration, the control module controls the extraction module to extract for a second preset time to obtain mineral water of the second concentration;

[0018] If the preset concentration corresponding to the target extraction command is a third concentration, the control module controls the extraction module to extract for a third preset time to obtain mineral water of the third concentration, wherein the first concentration is less than the second concentration, the second concentration is less than the third concentration, the first preset time is less than the second preset time, and the second preset time is less than the third preset time.

[0019] In one embodiment, the control module is further configured to determine the target extraction instruction based on the user's water collection information, wherein the user's water collection information includes the concentration information of the mineral water collected by the user within a preset time period and the frequency information of the corresponding concentration of mineral water collected by the user.

[0020] In one embodiment, if the frequency of the first concentration of mineral water being taken out by the user within a preset time is greater than or equal to a preset number threshold, the preset concentration corresponding to the target extraction instruction is determined to be the first concentration.

[0021] If the frequency of the second concentration of mineral water being taken out by the user within a preset time is greater than or equal to a preset number threshold, the preset concentration corresponding to the target extraction instruction is determined to be the second concentration.

[0022] If the frequency of the third concentration of mineral water being extracted by the user within a preset time period is greater than or equal to a preset number threshold, the preset concentration corresponding to the target extraction instruction is determined to be the third concentration.

[0023] In one embodiment, the water storage module includes a water storage tank, a third solenoid valve, and a first water outlet pipe;

[0024] The inlet of the water storage tank is connected to the drive module through the third solenoid valve, and the outlet of the water storage tank is connected to the first outlet pipe, which is used to output mineral water of the target concentration.

[0025] In one embodiment, the water storage tank is equipped with a preset number of liquid level detection components, and the liquid level detection components are connected to the control module;

[0026] The control module obtains the liquid level information in the water storage tank through the liquid level detection component;

[0027] If the liquid level information is greater than or equal to the first liquid level threshold, the control module stops extracting mineral water;

[0028] If the liquid level information is less than or equal to the second liquid level threshold, the control module starts extracting and transferring mineral water, wherein the first liquid level threshold is greater than the second liquid level threshold.

[0029] In one embodiment, the water storage module further includes a fourth solenoid valve, a first check valve, and a second water outlet pipe;

[0030] One end of the fourth solenoid valve is connected to the third solenoid valve, and another end of the fourth solenoid valve is also connected to the drive module through the first check valve. The other end of the fourth solenoid valve is connected to the second water outlet pipe, which is used to output mineral water of the target concentration.

[0031] In one embodiment, if the mineral concentration corresponding to the target water intake command is equal to the mineral concentration of the mineral water in the water storage tank, the control module controls the water storage module to output mineral water of the target concentration through the first water outlet pipe;

[0032] If the mineral concentration corresponding to the target water intake command is less than the mineral concentration of the mineral water in the water storage tank, the control module controls the water storage module to output mineral water of the target concentration through the second water outlet pipeline.

[0033] In one embodiment, if the mineral concentration corresponding to the target water intake command is less than the mineral concentration of the mineral water in the water storage tank, the control module controls the third solenoid valve to open for a preset time and then close, so that the mineral water in the water storage tank flows to the second water outlet pipe.

[0034] The drive module is controlled to draw a preset flow rate of pure water according to the target water intake command, which flows through the first check valve to the second water outlet pipeline;

[0035] The fourth solenoid valve is controlled to open, and mineral water of the target concentration is output through the second water outlet pipeline.

[0036] In one embodiment, the drive module includes a self-priming pump, a fifth solenoid valve, and a second check valve;

[0037] One end of the self-priming pump is used to connect to the preset water inlet pipeline through the fifth solenoid valve, and the other end of the self-priming pump is also connected to the extraction module through the second check valve;

[0038] The other end of the self-priming pump is connected to the heating module and the water storage module, respectively.

[0039] In one embodiment, it further includes: a traffic component;

[0040] The flow component is disposed between the drive module and the heating module; the flow component is connected to the control module.

[0041] The flow component is used to record the water flow parameters of the pipeline between the drive module and the heating module;

[0042] If the water flow rate parameter is greater than or equal to the alarm water flow rate threshold, the control module controls the corresponding alarm to sound an alarm, prompting the user to replace the filter cartridge.

[0043] Secondly, this application also provides a mineralization system control method, applied to the mineralization system described in the first aspect, comprising:

[0044] During the extraction of mineral water, the control drive module and the heating module are activated to introduce a preset water body from a preset inlet pipe, and the preset water body enters the extraction module via the drive module and the heating module; the heating module is used to heat the preset water body to a preset temperature, and the extraction module is used to convert the preset water body into mineral water of a preset concentration;

[0045] When transferring mineral water, the drive module is activated so that the mineral water enters the water storage module from the extraction module via the drive module.

[0046] When extracting mineral water, the water storage module is controlled to provide mineral water of the target concentration according to the target water extraction command.

[0047] Thirdly, this application also provides a mineralization device, including the mineralization system described in the first aspect.

[0048] Fourthly, this application also provides a computer device, including a memory and a processor, wherein the memory stores a computer program, and the processor executes the computer program to implement the steps of the mineralization system control method described in the second aspect.

[0049] Fifthly, this application also provides a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the steps of the mineralization system control method described in the second aspect.

[0050] In a sixth aspect, this application also provides a computer program product, which includes a computer program that, when executed by a processor, implements the steps of the mineralization system control method described in the second aspect.

[0051] In summary, this application proposes a mineralization system, a mineralization system control method, and mineralization equipment, comprising: a control module, a drive module, an extraction module, a heating module, and a water storage module; the control module is connected to the drive module, the extraction module, the heating module, and the water storage module respectively; one end of the drive module is connected to a preset water inlet pipe, the other end of the drive module is connected to the water inlet of the extraction module through the heating module, and the water outlet of the extraction module is connected to the water storage module through the drive module; this application, in extracting mineral water, achieves thermal extraction by heating a preset water body, which can stably produce mineral water of a preset concentration, store the mineral water in the water storage module, and provide mineral water of a target concentration according to the target water intake instruction, which can flexibly meet the user's requirements for mineral water intake of different concentrations. Attached Figure Description

[0052] Figure 1 This is a structural block diagram of a mineralization system in one embodiment;

[0053] Figure 2 This is a structural block diagram of the mineralization system in another embodiment;

[0054] Figure 3 This is a schematic diagram of the mineralization system in one embodiment;

[0055] Figure 4 This is a flowchart illustrating a mineralization system control method in one embodiment;

[0056] Figure 5 This is an internal structural diagram of a computer device in one embodiment.

[0057] Summary of attached image labels:

[0058] Mineralization system-100; Control module-110; Drive module-120; Self-priming pump-121; Fifth solenoid valve-122; Second check valve-123;

[0059] Extraction module - 130; mineralization chamber - 131; mineralization filter element - 1311; membrane housing - 1312; atmospheric vent - 1313; insulation layer - 1314; first solenoid valve - 132; second solenoid valve - 133;

[0060] Heating module-140; Heater-141;

[0061] Water storage module-150; Water storage tank-151; First liquid level switch-1511; Second liquid level switch-1512; Third liquid level switch-1513; Third solenoid valve-152; Fourth solenoid valve-153; First check valve-154;

[0062] Flow component 160; Flow meter-161. Detailed Implementation

[0063] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.

[0064] refer to Figure 1 A mineralization system 100 is provided, including: a control module 110, a drive module 120, an extraction module 130, a heating module 140, and a water storage module 150.

[0065] In this embodiment, the control module 110 includes chips or circuits such as controllers, processors, or microprocessors that can generate and distribute control commands. This embodiment does not limit the specific type of the control module 110; it can be adaptively configured according to the needs of the actual application scenario.

[0066] The drive module 120 includes a pump body such as a self-priming pump 121 that can provide power to the water body. In this embodiment, the drive module 120 can connect to a preset water body through a preset inlet pipe and drive the preset water body to flow in a specified direction. In this embodiment, the preset water body can be raw water, or treated distilled water or pure water; this embodiment does not limit the preset water body. The specific location of the preset inlet pipe can be adaptively configured based on the actual application scenario's requirements for the preset water body.

[0067] The extraction module 130 includes a mineralization chamber 131 for mineralizing water. In this embodiment, the extraction module 130 can perform thermal extraction after introducing a preset water body at a certain flow rate and temperature, thereby converting the preset water body into mineral water of a certain concentration. In practical applications, the concentration of the mineral water extracted by the extraction module 130 is related to the inlet water flow rate and inlet water temperature. This embodiment achieves precise control of the concentration of the extracted mineral water by controlling the inlet water flow rate and inlet water temperature of the preset water body entering the extraction module 130.

[0068] The heating module 140 includes a heater 141 capable of heating a preset body of water. In this embodiment, the control module 110 can send a target heating command to the heating module 140, which includes a preset temperature. The preset temperature can be between 40℃ and 100℃, and the specific setting of the preset temperature can be adaptively replaced. In this embodiment, the heating module 140 is located between the drive module 120 and the extraction module 130, and can effectively heat the water entering the extraction module 130. Since the dissolution rate of mineral materials in water is mainly determined by temperature and dissolution time, in order to accelerate the dissolution rate of mineral materials in water, such as the dissolution rate of metasilicic acid in water, this embodiment heats the water entering the extraction module 130 to a preset temperature, which can more accurately achieve the concentration control of mineral water. The step of using heated water for mineral water extraction in this embodiment can also be called thermal extraction.

[0069] The water storage module 150 includes a water tank 151 for storing mineral water. In this embodiment, the water storage module 150 is used to store and supply mineral water. When a user operates the mineralization equipment to extract mineral water, the control module 110 receives a corresponding target water extraction command. The control module 110 controls the water storage module 150 to provide the user with mineral water of a target concentration that meets the target water extraction command. It should be noted that the concentration of mineral water can be classified as high concentration, normal concentration, and low concentration.

[0070] like Figure 2As shown, the control module 110 is connected to the drive module 120, the extraction module 130, the heating module 140, and the water storage module 150. One end of the drive module 120 is connected to a preset water inlet pipe, and the other end of the drive module 120 is connected to the water inlet of the extraction module 130 through the heating module 140. The water outlet of the extraction module 130 is connected to the water storage module 150 through the drive module 120.

[0071] In this embodiment, the control module 110 of the mineralization system 100 controls the corresponding drive module 120, extraction module 130, heating module 140, and water storage module 150 to achieve the extraction, transfer, and extraction of mineral water. The extraction of mineral water is mainly used to prepare mineral water of a certain concentration. The transfer of mineral water is mainly used to transfer mineral water from the extraction module 130 to the water storage module 150. The extraction of mineral water is mainly used to supply users with mineral water of the required concentration.

[0072] During the extraction of mineral water, the control module 110 controls the start of the drive module 120 and the heating module 140 to connect the preset water body from the preset water inlet pipe and to allow the preset water body to enter the extraction module 130 via the drive module 120 and the heating module 140. The heating module 140 is used to heat the preset water body to a preset temperature, and the extraction module 130 is used to convert the preset water body into mineral water of a preset concentration.

[0073] In this embodiment, after receiving the start command for mineral water extraction, the control module 110 controls the corresponding drive module 120 and heating module 140 to start. The drive module 120 provides driving force for the water, causing the preset water to flow from the preset inlet pipe to the heating module 140, and then from the heating module 140 to the extraction module 130. While flowing through the heating module 140, the heating module 140 heats the preset water to a preset temperature value (40℃-100℃). After flowing into the extraction module 130, a thermal extraction process for a preset time is performed in the extraction module 130.

[0074] It should be noted that the preset residence time of the water in the extraction module 130 corresponds to the preset concentration of the mineral water ultimately obtained by the extraction module 130. In this embodiment, the preset concentration can be obtained from the target extraction command sent by the control module 110. For example, the user can pre-configure the mineralization equipment to obtain the corresponding concentration of mineral water during the mineralization extraction process. The mineralization equipment can be equipped with physical or virtual buttons corresponding to different concentrations. After the user presses the physical or virtual button corresponding to the concentration, the control module 110 generates the target extraction command for the corresponding concentration.

[0075] In this embodiment, the default setting is a high concentration. This allows the water storage module 150 to flexibly provide users with mineral water of the required concentration according to their needs.

[0076] When transferring mineral water, the control module 110 controls the drive module 120 to start, so that the mineral water enters the water storage module 150 from the extraction module 130 via the drive module 120.

[0077] In this embodiment, after the control module 110 controls the corresponding extraction module 130 to perform a thermal extraction process for a preset time, a mineral water transfer process is immediately performed to transfer the mineral water to the water storage module 150 in a timely manner. Simultaneously, the control module 110 collects the liquid level information in the water storage module 150 in real time. When the liquid level information is lower than the high liquid level threshold, the control module 110 performs the mineral water extraction process again until the liquid level information is greater than or equal to the high liquid level threshold.

[0078] It should be noted that the control module 110 will initiate mineral water extraction treatment when the collected liquid level information is lower than the low liquid level threshold. The initiation conditions for mineral water extraction treatment can also be manually triggered by the user or automatically triggered at a specified time; this embodiment does not limit this.

[0079] When mineral water is taken out, the control module 110 controls the water storage module 150 to provide mineral water of the target concentration according to the target water taking instruction.

[0080] In this embodiment, upon receiving a mineral water dispensing instruction, i.e., a target dispensing instruction, the control module 110 analyzes the required concentration corresponding to the mineral water dispensing instruction, i.e., the target concentration. The control module 110 then provides the user with mineral water of the target concentration through the outlet channel of the water storage module 150 according to the corresponding target dispensing instruction. In practical applications, if the target concentration of the mineral water requested by the user is lower than the concentration of the mineral water stored in the water storage module 150, the control module 110 can activate the corresponding drive module 120 to drive a certain flow rate of pure water from the preset inlet pipe through the drive module 120 into the water storage module 150. This pure water, combined with a certain flow rate of high-concentration mineral water released from the water storage module 150, is diluted to obtain the target concentration of mineral water, which is then output through the outlet channel of the water storage module 150.

[0081] In summary, this embodiment provides a mineralization system 100 that not only enables precise control of mineral concentration in mineral water through thermal extraction, but also ensures stable mineral concentration by adjusting the extraction time within the extraction module 130. Furthermore, the mineralization system 100 provided in this embodiment can flexibly provide users with mineral water of target concentrations according to their needs, greatly enriching the flexibility of mineralization equipment.

[0082] In one embodiment, such as Figure 3 As shown, the extraction module 130 includes a mineralization chamber 131, a first solenoid valve 132 and a second solenoid valve 133. The first solenoid valve 132 and the second solenoid valve 133 are both connected to the control module 110 and are used to perform switching actions according to the control instructions of the control module 110.

[0083] One end of the first solenoid valve 132 is connected to the inlet of the mineralization chamber 131, and the other end of the first solenoid valve 132 is connected to the heating module 140; one end of the second solenoid valve 133 is connected to the outlet of the mineralization chamber 131, and the other end of the second solenoid valve 133 is connected to the drive module 120.

[0084] In this embodiment, the on / off state of the first solenoid valve 132 determines whether water can enter the mineralization tank 131. The on / off state of the second solenoid valve 133 determines whether water can exit the mineralization tank 131. During different control processes, the control module 110 controls the first solenoid valve 132 and the second solenoid valve 133 to open and close accordingly, so as to achieve the desired water flow.

[0085] For example, during the mineral water extraction process, the control module 110 needs to control the first solenoid valve 132 to open and the second solenoid valve 133 to close, so that the preset water body can smoothly enter the mineralization chamber 131 after being heated by the heating module 140. After the control module 110 detects that the preset flow rate of water body has flowed to the heating module 140, it will control the first solenoid valve 132 to close after a preset time, so as to cooperate with the extraction chamber to perform thermal extraction.

[0086] During the mineral water transfer process, the control module 110 controls the second solenoid valve 133 to open and the first solenoid valve 132 to close, so that the mineral water of the preset concentration in the mineralization chamber 131 is transferred to the water storage module 150.

[0087] During the mineral water extraction process, both the first solenoid valve 132 and the second solenoid valve 133 remain closed.

[0088] In one embodiment, such as Figure 3 As shown, the mineralization chamber 131 includes a mineralization filter element 1311 and a membrane housing 1312. An atmospheric vent 1313 is provided on the membrane housing 1312. The atmospheric vent 1313 is used to balance the pressure inside the mineralization chamber 131 with the external air pressure.

[0089] In a specific embodiment, the mineralization chamber 131 includes a mineralization filter element 1311 and a membrane shell 1312. The membrane shell 1312 is provided with an atmospheric vent 1313, which is used to balance the internal pressure of the mineralization chamber 131 with the external air pressure. The mineralization filter element 1311 can be a compressed form of mineralized material and carbon rods, a mixture of mineralized material and activated carbon, or a combination of mineralized material and activated carbon ceramic balls. In a specific embodiment, the mineralized material can be a certain amount of naturally refined mineral material used to release some mineral elements needed by the human body into the water, such as metasilicic acid, strontium, calcium, magnesium, potassium, zinc, and other elements similar to those found in natural mineral water.

[0090] The membrane housing 1312 can be made of stainless steel or high-temperature resistant plastic. In a specific embodiment, a heat insulation layer 1314, made of heat insulation material, can also be attached to the membrane housing 1312. The mineralizing filter element 1311 is disposed inside the cavity formed by the membrane housing 1312. An atmospheric vent 1313 is provided on the membrane housing 1312 to connect to the atmosphere, which can effectively balance the pressure inside the mineralizing chamber 131 cavity and the external atmospheric pressure, keeping the pressure inside the cavity consistent with the external atmospheric pressure. In practical applications, the atmospheric vent 1313 can effectively prevent negative pressure from forming inside the mineralizing chamber 131, making it easier for the soaking liquid in the mineralizing chamber 131 to be drawn into the water storage tank 151, effectively improving the solid-liquid separation effect inside the mineralizing chamber 131, and making the solid-liquid separation more thorough.

[0091] In one embodiment, such as Figure 3 As shown, when extracting mineral water, the control module 110 is used to obtain the target extraction command, wherein the target extraction command includes the preset concentration of the extracted mineral water.

[0092] After the preset water body enters the extraction module 130 via the drive module 120 and the heating module 140, the extraction module 130 is controlled to extract for a preset time according to the target extraction command to obtain mineral water of a preset concentration.

[0093] In this embodiment, the target extraction command can be set by the user directly operating the mineralization equipment, such as setting preset concentration parameters through the display screen of the mineralization equipment to generate the corresponding target extraction command. Alternatively, the target extraction command can be adaptively updated by the mineralization equipment based on user usage. For example, if the user takes water at the same concentration multiple times within a certain period, the mineralization equipment will automatically generate a target extraction command corresponding to that concentration.

[0094] The target extraction instruction includes the corresponding preset concentration and the preset time for extraction. It should be noted that after determining the preset concentration, the mineralization system 100 can automatically determine the preset time for extraction by the extraction module 130 according to the corresponding relationship between the preset concentration and the preset time. For example, the set extraction cycle is divided into three gears (light mineral water, mineralized water, rich mineral water), corresponding to different extraction times T1, T2, and T3 respectively. The values of the three times are all distributed within the range of 15 seconds (s) - 30 minutes (min), and T1 < T2 < T3. When the user uses it for the first time, the extraction duration is defaulted to T3.

[0095] In the actual application process, the mineralization device can start the extraction treatment of mineral water in advance during the non-water-using stage to prepare mineral water corresponding to the preset concentration. Among them, the non-water-using stage can be analyzed automatically according to the user configuration or according to the water-taking time of the user recorded by the control module 110.

[0096] In one embodiment, the higher the preset concentration corresponding to the target extraction instruction, the longer the preset time for the control module 110 to control the extraction module 130 to extract.

[0097] In this embodiment, the corresponding relationship between the preset concentration and the preset time for extraction is that the higher the preset concentration, the longer the preset time for extraction.

[0098] In one embodiment, if the preset concentration corresponding to the target extraction instruction is the first concentration, the control module 110 controls the extraction module 130 to extract for the first preset time to obtain mineral water with the first concentration; [[ID=1十三]]

[0099] If the preset concentration corresponding to the target extraction instruction is the second concentration, the control module 110 controls the extraction module 130 to extract for the second preset time to obtain mineral water with the second concentration;

[0100] If the preset concentration corresponding to the target extraction instruction is the third concentration, the control module 110 controls the extraction module 130 to extract for the third preset time to obtain mineral water with the third concentration, where the first concentration is less than the second concentration, the second concentration is less than the third concentration, the first preset time is less than the second preset time, and the second preset time is less than the third preset time.

[0101] In this embodiment, the mineral water with the first concentration corresponds to light mineral water with a low concentration, the mineral water corresponding to the second concentration corresponds to mineralized water with a normal concentration, and the mineral water corresponding to the third concentration corresponds to rich mineral water with a high concentration.

[0102] It should be noted that the first preset time, the second preset time, and the third preset time can be adaptively configured according to the needs of the actual application scenario. Preferably, the values of the three preset times are distributed within the range of 15s - 30min.

[0103] In one embodiment, such as Figure 3 As shown, the control module 110 is also used to determine the target extraction instruction based on the user's water collection information, wherein the user's water collection information includes the concentration information of the mineral water collected by the user within a preset time period and the frequency information of the corresponding concentration of mineral water collected by the user.

[0104] In this embodiment, the preset time period is n hours or n days prior to the user's current water-taking operation, where n is a positive integer. The control module 110 records the concentration of mineral water corresponding to each water-taking operation within the preset time period to statistically analyze the frequency of mineral water of the corresponding concentration being taken within the preset time period.

[0105] For example, if the preset time period is two hours before the user's current water collection operation, and the user collects water at 12:00, the control module 110 obtains the user's water collection information from 10:00 to 12:00. This information includes 10 instances of light mineral water, 30 instances of mineralized water, and 13 instances of rich mineral water. At this time, the control module 110 can determine the target extraction command based on the user's water collection information. The preset concentration in the target extraction command corresponds to the concentration of the mineralized water.

[0106] In one embodiment, if the frequency of the first concentration of mineral water being taken out by the user within a preset time is greater than or equal to a preset number threshold, the preset concentration corresponding to the target extraction instruction is determined to be the first concentration.

[0107] If the frequency of the second concentration of mineral water being taken out by the user within a preset time is greater than or equal to a preset number threshold, the preset concentration corresponding to the target extraction instruction is determined to be the second concentration.

[0108] If the frequency of the third concentration of mineral water being extracted by the user within a preset time period is greater than or equal to a preset number threshold, the preset concentration corresponding to the target extraction instruction is determined to be the third concentration.

[0109] In this embodiment, the preset number of times threshold can be configured according to the needs of the actual application scenario. It should be noted that the preset number of times threshold is related to the preset time period for collecting user water collection information. The longer the preset time period, the higher the preset number of times threshold.

[0110] In a specific embodiment, if the frequency of extraction by the user for each concentration of mineral water is less than a preset number threshold, the preset concentration corresponding to the target extraction command obtained by the control module 110 remains unchanged.

[0111] This embodiment effectively provides users with flexible mineral water by adaptively adjusting the preset concentration corresponding to the target extraction command based on the user's water intake information. Furthermore, the mineralization equipment in this embodiment can pre-mineralize water during periods when no one is drawing water, thus providing users with mineral water of the required concentration more quickly.

[0112] In one embodiment, such as Figure 3 As shown, the water storage module 150 includes a water storage tank 151, a third solenoid valve 152, and a first water outlet pipe.

[0113] The inlet of the water storage tank 151 is connected to the drive module 120 through the third solenoid valve 152, and the outlet of the water storage tank 151 is connected to the first outlet pipeline, which is used to output mineral water of the target concentration.

[0114] In this example, the water storage tank 151 is used to store the mineral water generated by the mineralization chamber 131. The water storage tank 151 can be made of stainless steel or high-temperature resistant plastic. It should be noted that the specific materials of the water storage tank 151 in this embodiment can be adaptively configured according to the needs of the actual application scenario. It should also be noted that the volume of the water storage tank 151 in this embodiment is larger than the volume of the mineralization chamber 131, and the volume of the water storage tank 151 can be several times the volume of the mineralization chamber 131, specifically configured according to the needs of the actual application scenario.

[0115] The third solenoid valve 152 controls the conduction state of the water circuit corresponding to the inlet of the water storage tank 151. When the third solenoid valve 152 is open, the inlet of the water storage tank 151 can perform water inlet and outlet operations. The outlet of the water storage tank 151 is connected to the first outlet pipe, which is used to output the mineral water stored in the water storage tank 151.

[0116] In a specific embodiment, when the preset concentration corresponding to the target extraction command is equal to the concentration of mineral water stored in the water storage tank 151, the control module 110 controls the water storage tank 151 to output mineral water of the target concentration through the first water outlet pipe.

[0117] In one embodiment, a preset number of liquid level detection components are installed inside the water storage tank 151, and the liquid level detection components are connected to the control module 110. For example... Figure 3 As shown, the water storage tank 151 includes a first liquid level switch 1511, a second liquid level switch 1512, and a third liquid level switch 1513.

[0118] The control module 110 obtains the liquid level information in the water storage tank 151 through the liquid level detection component;

[0119] If the liquid level information is greater than or equal to the first liquid level threshold, the control module 110 stops extracting mineral water;

[0120] If the liquid level information is less than or equal to the second liquid level threshold, the control module 110 starts extracting and transferring mineral water, wherein the first liquid level threshold is greater than the second liquid level threshold.

[0121] In this embodiment, the first liquid level switch 1511 is located closer to the inlet of the water tank 151, specifically at a position where the internal cavity of the water tank 151 is higher than the bottom plane. The second liquid level switch 1512 is located at a position where the distance between the inlet and outlet of the water tank 151 is similar, specifically at a position where the internal cavity of the water tank 151 is at the midpoint of its height relative to the bottom plane. The low liquid level switch is located closer to the outlet of the water tank 151, specifically at a position where the internal cavity of the water tank 151 is lower than the bottom plane. In a specific embodiment, when the high liquid level switch is triggered, it indicates that the water tank 151 is full of mineral water. When the low liquid level switch is triggered, it indicates that the mineral water content in the water tank 151 is insufficient to provide mineral water to the user immediately.

[0122] It should be noted that the first liquid level switch 1511 is positioned at a certain distance from the bottom surface of the water storage tank 151 to ensure that a certain amount of mineral water is always stored in the water storage tank 151, and to promptly remind the control module 110 to extract mineral water, thus achieving automatic replenishment of mineral water. The second liquid level switch 1512 is positioned at a certain distance from the top surface of the water storage tank 151 to ensure that the water storage tank 151 does not become full of mineral water, thereby preventing mineral water from remaining in the mineralization chamber 131, effectively protecting the mineralization filter element 1311 inside the mineralization chamber 131, and extending the service life of the mineralization filter element 1311.

[0123] It should be noted that the liquid level detection component can be a liquid level switch, a liquid level sensor, a liquid level detector, etc. This embodiment does not limit the specific type of liquid level detection component.

[0124] In one embodiment, such as Figure 3 As shown, the water storage module 150 also includes a fourth solenoid valve 153, a first check valve, and a second water outlet pipe.

[0125] One end of the fourth solenoid valve 153 is connected to the third solenoid valve 152. One end of the fourth solenoid valve 153 is also connected to the drive module 120 through the first check valve. The other end of the fourth solenoid valve 153 is connected to the second water outlet pipe, which is used to output mineral water of the target concentration.

[0126] In this embodiment, the fourth solenoid valve 153 controls the on / off state of the second water outlet pipeline. When the fourth solenoid valve 153 is turned on, mineral water of the target concentration can be output through the second water outlet pipeline of the water storage module 150.

[0127] The first check valve 154 is used to prevent backflow of water in the water storage tank 151. When performing mineral water dilution treatment, it can also provide water pipe space for mineral water dilution treatment so that the mineral water and pure water in the water storage tank 151 can be combined to obtain mineral water of the target concentration.

[0128] In one embodiment, if the mineral concentration corresponding to the target water intake command is equal to the mineral concentration of the mineral water in the water storage tank 151, the control module 110 controls the water storage module 150 to output mineral water of the target concentration through the first water outlet pipe.

[0129] If the mineral concentration corresponding to the target water intake command is less than the mineral concentration of the mineral water in the water storage tank 151, the control module 110 and the water storage module 150 will output mineral water of the target concentration through the second water outlet pipeline.

[0130] In this embodiment, if the mineral concentration corresponding to the target water intake command is less than the mineral concentration of the mineral water in the water storage tank 151, the water storage module 150 needs to be controlled in conjunction with the drive module 120 to dilute the mineral water, so as to combine the mineral water and pure water in the water storage tank 151 to obtain the target concentration of mineral water that meets the requirements.

[0131] In a specific embodiment, such as Figure 3 As shown, if the mineral concentration corresponding to the target water intake command is less than the mineral concentration of the mineral water in the water storage tank 151, the control module 110 controls the third solenoid valve 152 to open for a preset time and then close, so that the mineral water in the water storage tank 151 flows to the second water outlet pipeline; the control drive module 120 draws a preset flow rate of pure water according to the target water intake command and flows through the first check valve to the second water outlet pipeline; the control module 120 controls the fourth solenoid valve 153 to open and output mineral water of the target concentration through the second water outlet pipeline.

[0132] In this embodiment, the preset flow rate is determined by the control module 110 based on the difference between the mineral concentration corresponding to the target water intake command and the mineral concentration of the mineral water in the storage tank 151. The preset flow rate can be controlled by sending corresponding drive commands to the drive module 120.

[0133] In one embodiment, the drive module 120 includes a self-priming pump 121, a fifth solenoid valve 122, and a second check valve 123.

[0134] One end of the self-priming pump 121 is used to connect to a preset water inlet pipe through the fifth solenoid valve 122, and the other end of the self-priming pump 121 is also connected to the extraction module 130 through the second check valve 123.

[0135] The other end of the self-priming pump 121 is connected to the heating module 140 and the water storage module 150, respectively.

[0136] In this embodiment, the self-priming pump 121 can provide driving force corresponding to the water flow direction, so that the water flows in the direction of the corresponding processing procedure. The fifth solenoid valve 122 is used to control the on / off state of the preset water inlet pipe. When the fifth solenoid valve 122 is open, the self-priming pump 121 can draw a certain flow rate of pure water through the preset water inlet pipe.

[0137] The second check valve 123 is used to prevent water from flowing back into the extraction module 130.

[0138] In one embodiment, such as Figures 1-3 As shown, the mineralization system 100 also includes a flow component 160, wherein the flow component 160 is disposed between the drive module 120 and the heating module 140, and the flow component 160 is connected to the control module 110.

[0139] The flow component 160 is used to record the water flow parameters of the pipeline between the drive module 120 and the heating module 140.

[0140] If the water flow rate parameter is greater than or equal to the alarm water flow rate threshold, the control module 110 will control the corresponding alarm to sound an alarm, prompting the user to replace the filter element.

[0141] In this embodiment, the flow component 160 includes a flow meter 161 or a pulse counter, etc., which can be used to monitor the water flow rate. In this embodiment, the flow component 160 can be located between the drive module 120 and the heating module 140, i.e., between the self-priming pump 121 and the heating module 140. The placement of the flow component 160 enables effective monitoring of the water flow rate flowing into the extraction module 130 or the water storage module 150. In this embodiment, the flow rate parameter refers to the total water flow rate passing through the flow component 160, including the water flow rate flowing into the extraction module 130 and the water flow rate flowing into the water storage module 150.

[0142] In this embodiment, the alarm water overflow threshold can also be adaptively set according to the needs of the actual application scenario. For example, the alarm water overflow threshold can be set to 100L or 150L. The alarm in this embodiment may include devices such as a buzzer, control panel, or faucet ring light, which can be configured according to the specific type of mineralization equipment in the actual application scenario.

[0143] The control module 110 can control the alarm to sound a buzzer, prompting the user to replace the mineralization filter element 1311 of the mineralization equipment. It can also control the display panel of the mineralization equipment to display a message indicating that the filter element needs replacement. In this embodiment, the flow component 160 monitors the lifespan of the mineralization filter element 1311 in the mineralization chamber 131 and triggers an alarm when the lifespan of the filter element 1311 exceeds a certain threshold. This timely reminder ensures that the filter element 1311 is replaced after prolonged use, guaranteeing a stable concentration of the mineral water extracted from the mineralization chamber 131.

[0144] In summary, this embodiment provides a mineralization system 100 that not only enables thermal extraction of mineral water and precisely controls the concentration of mineral water produced by the mineralization equipment, but also provides an alarm based on the service life of the mineralization filter element 1311, allowing for timely replacement of the filter element 1311. Furthermore, this embodiment also improves solid-liquid separation by providing an atmospheric vent 1313 in the cavity of the mineralization chamber 131, significantly extending the service life of the mineralization filter element 1311. Additionally, this embodiment allows for flexible adjustment of the concentration of mineral water prepared by the mineralization system 100 based on user water intake information, thereby providing users with mineral water of the target concentration that meets their needs.

[0145] In a more detailed embodiment, the complete execution flow of the mineral water extraction step includes:

[0146] When the control module 110 detects that the liquid level in the water storage tank 151 is lower than a preset low liquid level threshold, it begins to extract mineral water. The control module 110 first controls the opening of the first solenoid valve 132 and the fifth solenoid valve 122, and closes the second solenoid valve 133, the third solenoid valve 152, and the fourth solenoid valve 153. The self-priming pump 121 then starts, allowing the preset water (purified water, low-mineral-concentration pure water or distilled water) to sequentially pass through the fifth solenoid valve 122, the self-priming pump 121, the flow meter 161, the heating module 140, and the second solenoid valve 133 into the mineralization chamber 131. The heating module 140 heats the preset water to 40 degrees Celsius or 100 degrees Celsius. The control module 110 obtains the hot water flow rate parameters through the flow meter 161. When the flow meter 161 detects that the hot water flow rate has reached a certain volume, namely the soaking volume of the mineralization chamber 131 (generally 180-1000ml), it controls the self-priming pump 121, the heating module 140, the fifth solenoid valve 122, and the first solenoid valve 132 to close, so as to carry out thermal extraction. After the mineralization chamber 131 has carried out thermal extraction for a preset time, mineral water of a preset concentration is obtained.

[0147] The complete execution process for performing the mineral water transfer step includes:

[0148] After the extraction in the mineralization chamber 131 reaches the set time (15s-30min), the first thermal extraction step is completed. The control module 110 controls the heating module, the fifth solenoid valve 122, the first solenoid valve 132, and the fourth solenoid valve 153 to close, while the second solenoid valve 133, the third solenoid valve 152, and the self-priming pump 121 simultaneously open. The self-priming pump 121 transfers the mineral water of the preset concentration extracted from the mineralization chamber 131 to the water storage tank 151. The control module 110 also records the amount of water entering the water storage tank 151 through the flow meter 161. When the amount of water entering the water storage tank 151 reaches the set value (generally 180-1000ml), the control module 110 controls the third solenoid valve 152, the second solenoid valve 133, and the self-priming pump 121 to close.

[0149] The complete execution process for mineral water intake includes:

[0150] If the mineral concentration of the mineral water in the water storage tank 151 is equal to the mineral concentration of the water taken by the user, then the mineral water of the target concentration will be output directly through the first water outlet pipe connected to the outlet of the water storage tank 151.

[0151] If the mineral concentration of the mineral water in the storage tank 151 is lower than the mineral concentration of the water taken by the user, the control module 110 calculates the pure water flow rate required to dilute the mineral water in the storage tank 151. It first opens the third solenoid valve 152 and the self-priming pump 121, while closing the other solenoid valves, allowing the mineral water in the storage tank 151 to flow out through the inlet. After a certain flow rate of mineral water is taken from the storage tank 151, the self-priming pump 121 is started again, the third solenoid valve 152 is closed, and the fourth solenoid valve 153 and the fifth solenoid valve 122 are opened to extract pure water of the corresponding flow rate to dilute the mineral water and obtain the target concentration of mineral water.

[0152] In one embodiment, such as Figure 4 As shown, a mineralization system control method is provided, which can be applied to... Figure 2 Taking the mineralization system 100 in the example, the following steps are included:

[0153] S401, during the extraction of mineral water, the control drive module and heating module are activated to introduce a preset water body from a preset inlet pipe, and the preset water body enters the extraction module via the drive module and heating module. The heating module heats the preset water body to a preset temperature, and the extraction module converts the preset water body into mineral water of a preset concentration.

[0154] S402, when transferring mineral water, the control drive module is activated so that the mineral water enters the water storage module from the extraction module via the drive module;

[0155] S403, when mineral water is taken out, the water storage module is controlled to provide mineral water of the target concentration according to the target water taking instruction.

[0156] In this embodiment, the specific implementation method of the mineralization system control method can be referred to the specific implementation method in the foregoing system embodiment, and will not be repeated here.

[0157] In summary, this embodiment provides a mineralization system control method that not only enables thermal extraction of mineral water but also allows for flexible provision of mineral water of appropriate concentrations according to user preferences, greatly enriching the usage of the mineralization equipment. Furthermore, this embodiment also facilitates solid-liquid separation by providing atmospheric vents in the mineralization chamber, significantly extending the service life of the mineralization filter element.

[0158] It should be understood that although the steps in the flowcharts of the above embodiments are shown sequentially according to the arrows, these steps are not necessarily executed in the order indicated by the arrows. Unless explicitly stated herein, there is no strict order restriction on the execution of these steps, and they can be executed in other orders. Moreover, at least some steps in the flowcharts of the above embodiments may include multiple steps or multiple stages. These steps or stages are not necessarily completed at the same time, but can be executed at different times. The execution order of these steps or stages is not necessarily sequential, but can be performed alternately or in turn with other steps or at least some of the steps or stages of other steps.

[0159] In one embodiment, a mineralization device is provided, which includes the mineralization system described in the foregoing embodiments. In this embodiment, the mineralization device can be a mineralized water dispenser or any terminal device capable of producing mineral water.

[0160] In one embodiment, a computer device is provided, which may be a terminal, and its internal structure diagram may be as follows: Figure 5As shown, the computer device includes a processor, memory, input / output interface, communication interface, display unit, and input device. The processor, memory, and input / output interface are connected via a system bus, and the communication interface, display unit, and input device are also connected to the system bus via the input / output interface. The processor provides computing and control capabilities. The memory includes non-volatile storage media and internal memory. The non-volatile storage media stores the operating system and computer programs. The internal memory provides an environment for the operation of the operating system and computer programs in the non-volatile storage media. The input / output interface is used for exchanging information between the processor and external devices. The communication interface is used for wired or wireless communication with external terminals; wireless communication can be achieved through Wi-Fi, mobile cellular networks, NFC (Near Field Communication), or other technologies. When the computer program is executed by the processor, it implements a mineralization system control method. The display unit is used to form a visually visible image and can be a display screen, projection device, or virtual reality imaging device. The display screen can be an LCD screen or an e-ink screen. The input device of the computer device can be a touch layer covering the display screen, or buttons, trackballs, or touchpads set on the casing of the computer device, or external keyboards, touchpads, or mice, etc.

[0161] Those skilled in the art will understand that Figure 5 The structure shown is merely a block diagram of a portion of the structure related to the present application and does not constitute a limitation on the computer device to which the present application is applied. Specific computer devices may include more or fewer components than those shown in the figure, or combine certain components, or have different component arrangements.

[0162] In one embodiment, a computer device is provided, including a memory and a processor, wherein the memory stores a computer program, and the processor executes the computer program to perform the following steps:

[0163] During the extraction of mineral water, the control drive module and heating module are activated to introduce a preset water body from the preset inlet pipe, and the preset water body enters the extraction module through the drive module and heating module; the heating module is used to heat the preset water body to a preset temperature, and the extraction module is used to convert the preset water body into mineral water of a preset concentration;

[0164] When transferring mineral water, the control drive module is activated so that the mineral water flows from the extraction module through the drive module into the water storage module.

[0165] When mineral water is extracted, the water storage module is controlled to provide mineral water of the target concentration according to the target water extraction command.

[0166] In one embodiment, a computer-readable storage medium is provided having a computer program stored thereon, the computer program performing the following steps when executed by a processor:

[0167] During the extraction of mineral water, the control drive module and heating module are activated to introduce a preset water body from the preset inlet pipe, and the preset water body enters the extraction module through the drive module and heating module; the heating module is used to heat the preset water body to a preset temperature, and the extraction module is used to convert the preset water body into mineral water of a preset concentration;

[0168] When transferring mineral water, the control drive module is activated so that the mineral water flows from the extraction module through the drive module into the water storage module.

[0169] When mineral water is extracted, the water storage module is controlled to provide mineral water of the target concentration according to the target water extraction command.

[0170] In one embodiment, a computer program product is provided, including a computer program that, when executed by a processor, performs the following steps:

[0171] During the extraction of mineral water, the control drive module and heating module are activated to introduce a preset water body from the preset inlet pipe, and the preset water body enters the extraction module through the drive module and heating module; the heating module is used to heat the preset water body to a preset temperature, and the extraction module is used to convert the preset water body into mineral water of a preset concentration;

[0172] When transferring mineral water, the control drive module is activated so that the mineral water flows from the extraction module through the drive module into the water storage module.

[0173] When mineral water is extracted, the water storage module is controlled to provide mineral water of the target concentration according to the target water extraction command.

[0174] Those skilled in the art will understand that all or part of the processes in the above embodiments can be implemented by a computer program instructing related hardware. The computer program can be stored in a non-volatile computer-readable storage medium. When executed, the computer program can include the processes of the embodiments described above. Any references to memory, databases, or other media used in the embodiments provided in this application can include at least one of non-volatile and volatile memory. Non-volatile memory can include read-only memory (ROM), magnetic tape, floppy disk, flash memory, optical memory, high-density embedded non-volatile memory, resistive random access memory (ReRAM), magnetic random access memory (MRAM), ferroelectric random access memory (FRAM), phase change memory (PCM), graphene memory, etc. Volatile memory can include random access memory (RAM) or external cache memory, etc. By way of illustration and not limitation, RAM can take many forms, such as Static Random Access Memory (SRAM) or Dynamic Random Access Memory (DRAM). The databases involved in the embodiments provided in this application may include at least one type of relational database and non-relational database. Non-relational databases may include, but are not limited to, blockchain-based distributed databases. The processors involved in the embodiments provided in this application may be general-purpose processors, central processing units, graphics processing units, digital signal processors, programmable logic devices, quantum computing-based data processing logic devices, etc., and are not limited to these.

[0175] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0176] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of this patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this application should be determined by the appended claims.

Claims

1. A mineralization system, characterized in that, The utility model relates to a mineral water extraction device and a control method thereof, comprising: a control module, a driving module, an extraction module, a heating module and a water storage module; the control module is connected with the driving module, the extraction module, the heating module and the water storage module respectively; one end of the driving module is connected with a preset water inlet pipeline, and the other end of the driving module is connected with a water inlet of the extraction module through the heating module; a water outlet of the extraction module is connected with the water storage module through the driving module; when extracting mineral water, the control module controls the driving module and the heating module to start, so that the preset water body is connected with the preset water inlet pipeline and enters the extraction module through the driving module and the heating module; the heating module is used for heating the preset water body to a preset temperature, and the extraction module is used for converting the preset water body into mineral water with a preset concentration; when transferring mineral water, the control module controls the driving module to start, so that the mineral water enters the water storage module from the extraction module through the driving module; when taking out mineral water, the control module controls the water storage module to provide mineral water with a target concentration according to a target water taking instruction; when extracting mineral water, the control module is used for obtaining a target extraction instruction, wherein the target extraction instruction includes a preset concentration corresponding to the extracted mineral water; after the preset water body enters the extraction module through the driving module and the heating module, the extraction module is controlled according to the target extraction instruction for a preset time to obtain mineral water with a preset concentration; if the preset concentration corresponding to the target extraction instruction is a first concentration, the control module controls the extraction module to extract for a first preset time to obtain mineral water with the first concentration; if the preset concentration corresponding to the target extraction instruction is a second concentration, the control module controls the extraction module to extract for a second preset time to obtain mineral water with the second concentration; if the preset concentration corresponding to the target extraction instruction is a third concentration, the control module controls the extraction module to extract for a third preset time to obtain mineral water with the third concentration, wherein the first concentration is less than the second concentration, the second concentration is less than the third concentration, the first preset time is less than the second preset time, and the second preset time is less than the third preset time; the control module is further used for determining the target extraction instruction according to user water taking information, wherein the user water taking information includes concentration information of mineral water taken by a user within a preset time period and frequency information of mineral water with a corresponding concentration taken by the user; if the frequency information of mineral water with the first concentration taken by the user within a preset time period is greater than or equal to a preset frequency threshold, it is determined that the preset concentration corresponding to the target extraction instruction is the first concentration; if the frequency information of mineral water with the second concentration taken by the user within a preset time period is greater than or equal to a preset frequency threshold, it is determined that the preset concentration corresponding to the target extraction instruction is the second concentration; if the frequency information of mineral water with the third concentration taken by the user within a preset time period is greater than or equal to a preset frequency threshold, it is determined that the preset concentration corresponding to the target extraction instruction is the third concentration.

2. The mineralization system of claim 1, wherein, The extraction module comprises a mineralization bin, a first electromagnetic valve and a second electromagnetic valve; the first electromagnetic valve and the second electromagnetic valve are connected to the control module and are used for switching operation according to the control instruction of the control module; One end of the first electromagnetic valve is connected to a water inlet of the mineralization bin, and the other end of the first electromagnetic valve is connected to the heating module; one end of the second electromagnetic valve is connected to a water outlet of the mineralization bin, and the other end of the second electromagnetic valve is connected to the driving module.

3. The mineralization system of claim 2, wherein, The mineralization bin comprises a mineralization filter element and a membrane shell, and an atmospheric hole is arranged on the membrane shell and is used for balancing the pressure inside the mineralization bin and the external atmospheric pressure.

4. The mineralization system of claim 1, wherein, The higher the preset concentration corresponding to the target extraction instruction is, the longer the preset time for which the control module controls the extraction module to extract is.

5. The mineralization system of claim 1, wherein, The water storage module comprises a water storage tank, a third electromagnetic valve and a first water outlet pipeline; The water inlet of the water storage tank is connected to the driving module through the third electromagnetic valve, the water outlet of the water storage tank is connected to the first water outlet pipeline, and the first water outlet pipeline is used for outputting mineral water with a target concentration.

6. The mineralization system of claim 5, wherein, A preset number of liquid level detection components are arranged in the water storage tank, and the liquid level detection components are connected to the control module; The control module acquires liquid level information in the water storage tank through the liquid level detection components; If the liquid level information is greater than or equal to a first liquid level threshold, the control module stops extracting mineral water; If the liquid level information is less than or equal to a second liquid level threshold, the control module starts extracting mineral water and transferring mineral water, wherein the first liquid level threshold is greater than the second liquid level threshold.

7. The mineralization system of claim 5, wherein, The water storage module further comprises a fourth electromagnetic valve, a first check valve and a second water outlet pipeline; One end of the fourth electromagnetic valve is connected to the third electromagnetic valve and the first check valve respectively, the first check valve is connected to the driving module, the other end of the fourth electromagnetic valve is connected to the second water outlet pipeline, and the second water outlet pipeline is used for outputting mineral water with a target concentration.

8. The mineralization system of claim 7, wherein, If the mineral concentration corresponding to the target water taking instruction is equal to the mineral concentration of the mineral water in the water storage tank, the control module controls the water storage module to output mineral water with a target concentration through the first water outlet pipeline; If the mineral concentration corresponding to the target water taking instruction is less than the mineral concentration of the mineral water in the water storage tank, the control module controls the water storage module to output mineral water with a target concentration through the second water outlet pipeline.

9. The mineralization system of claim 8, wherein, If the mineral concentration corresponding to the target water taking instruction is less than the mineral concentration of the mineral water in the water storage tank, the control module controls the third electromagnetic valve to be opened for a preset time and then closed, so that the mineral water in the water storage tank flows to the second water outlet pipeline; The driving module is controlled to draw a preset flow of pure water according to the target water taking instruction, and the pure water flows to the second water outlet pipeline through the first check valve; The fourth electromagnetic valve is controlled to be opened, and mineral water with a target concentration is output through the second water outlet pipeline.

10. The mineralization system of claim 1, wherein, The driving module comprises a self-priming pump, a fifth electromagnetic valve and a second check valve; One end of the self-priming pump is connected to the preset water inlet pipeline through the fifth electromagnetic valve, and the other end of the self-priming pump is connected to the extraction module through the second check valve. The other end of the self-priming pump is connected to the heating module and the water storage module respectively.

11. The mineralization system of claim 1, wherein, Further comprising: a flow component; The flow component is arranged between the driving module and the heating module, and is connected to the control module; The flow component is used to record the water passing parameter of the pipeline between the driving module and the heating module; If the water passing parameter is greater than or equal to the alarm water passing threshold, the control module controls the corresponding alarm to alarm, prompting the user to replace the filter element.

12. A method of controlling a mineralization system, characterized by, Applied to the mineralization system of any one of claims 1-11, comprising: When extracting mineral water, the driving module and the heating module are controlled to start to access the preset water body from the preset water inlet pipeline, and the preset water body enters the extraction module through the driving module and the heating module; the heating module is used to heat the preset water body to a preset temperature, and the extraction module is used to convert the preset water body into mineral water with a preset concentration; When transferring mineral water, the driving module is controlled to start to make the mineral water enter the water storage module from the extraction module through the driving module; When taking out mineral water, the water storage module is controlled to provide mineral water with a target concentration according to a target water taking instruction.

13. A mineralization apparatus, characterized in that, The mineralization system of any one of claims 1-11.

Citation Information

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