Mineralization system and mineralization equipment
Through the combination of drive module, extraction module, heating module and water storage module, thermal extraction technology is used to solve the problem that existing water dispenser equipment cannot stably produce fixed concentration of mineral water, and the precise control and flexible adjustment of mineral water concentration is achieved to meet the diverse needs of users.
Patent Information
- Application Number
- CN202422317896.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-09-23
AI Technical Summary
Existing water dispenser equipment cannot stably produce fixed concentrations of mineral water, and cannot flexibly provide users with mineral water concentrations that meet their needs.
The combination of driving module, extraction module, heating module and water storage module is adopted to control the water temperature and extraction time through thermal extraction technology, accurately control the mineral water concentration, and provide the target concentration of mineral water according to user needs.
It realizes stable control and flexible adjustment of mineral water concentration, can provide different concentrations of mineral water according to user needs, and improves the flexibility of mineralization equipment.
Smart Images

Figure CN223163287U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of water treatment equipment, and particularly to a mineralization system and a mineralization device. Background Art
[0002] With the increasing living standards, the issue of drinking water health has been widely concerned. In the mainstream market, reverse osmosis filtration devices are often used in drinking water dispensers to filter various impurities in the water body to obtain pure water, thereby ensuring drinking water safety. However, while filtering harmful substances, the reverse osmosis filtration device also filters out beneficial minerals in the water.
[0003] In the existing mineralization module of drinking water dispensers, mineralized water is obtained by soaking mineralization materials in water. However, since the concentration of minerals precipitated by the mineralization materials standing for different times fluctuates greatly, the mineralization module cannot stably produce mineralized water with a fixed concentration. In daily life, users require mineralized water with different concentrations, and the existing drinking water dispensers cannot flexibly provide mineralized water with the required concentration for users. Summary of the Utility Model
[0004] Based on this, in view of the above technical problems, it is necessary to provide a mineralization system and a mineralization device that can stably produce mineralized water with a certain concentration and provide mineralized water with the required concentration for users.
[0005] In a first aspect, the present application provides a mineralization system, including: a driving module, an extraction module, a heating module, and a water storage module;
[0006] One end of the driving module is connected to a preset water inlet pipeline, and the other end of the driving module is connected to the water inlet of the extraction module through the heating module. The water outlet of the extraction module is connected to the water storage module through the driving module;
[0007] When extracting mineralized water, the driving module and the heating module are started to access a 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 mineralized water with a preset concentration;
[0008] When transferring mineralized water, the driving module is started to make the mineralized water enter the water storage module from the extraction module through the driving module;
[0009] When taking out mineralized water, the water storage module provides mineralized water with a target concentration according to a target water intake instruction.
[0010] In one embodiment, the extraction module includes a mineralization chamber, a first solenoid valve, and a second solenoid valve;
[0011] One end of the first solenoid valve is connected to the water inlet of the mineralization tank, 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 water outlet of the mineralization tank, and the other end of the second solenoid valve is connected to the driving module.
[0012] In one embodiment, the mineralization tank includes a mineralization filter element and a membrane housing, and an air through-hole is provided on the membrane housing, and the air through-hole is used to balance the pressure inside the mineralization tank and the external air pressure.
[0013] In one embodiment, after the preset water body enters the extraction module through the driving module and the heating module, the extraction module extracts for a preset time according to a target extraction instruction to obtain mineral water with a preset concentration, wherein the target extraction instruction includes the preset concentration corresponding to the extracted mineral water.
[0014] In one embodiment, the higher the preset concentration corresponding to the target extraction instruction, the longer the preset extraction time of the extraction module.
[0015] In one embodiment, if the preset concentration corresponding to the target extraction instruction is the first concentration, the extraction module extracts for a first preset time to obtain mineral water with the first concentration;
[0016] If the preset concentration corresponding to the target extraction instruction is the second concentration, the extraction module extracts for a second preset time to obtain mineral water with the second concentration;
[0017] If the preset concentration corresponding to the target extraction instruction is the third concentration, the extraction module extracts 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.
[0018] In one embodiment, the target extraction instruction is determined according to user water intake information, wherein the user water intake information includes the concentration information of the mineral water taken out by the user within a preset time period and the frequency information of the mineral water with the corresponding concentration taken out by the user.
[0019] In one embodiment, if the frequency information of the mineral water with the first concentration taken out by the user within the preset time is greater than or equal to a preset number threshold, it is determined that the preset concentration corresponding to the target extraction instruction is the first concentration;
[0020] If the frequency information of the mineral water with the second concentration taken out by the user within the preset time is greater than or equal to a preset number threshold, it is determined that the preset concentration corresponding to the target extraction instruction is the second concentration;
[0021] If the frequency information of the mineral water with the third concentration taken out by the user within the preset time is greater than or equal to the preset number threshold, determine that the preset concentration corresponding to the target extraction instruction is the third concentration.
[0022] In one embodiment, the water storage module includes a water storage tank, a third solenoid valve, and a first water outlet pipeline;
[0023] The water inlet of the water storage tank is connected to the drive module through the third solenoid 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 to output mineral water with a target concentration.
[0024] In one embodiment, a preset number of liquid level detection components are arranged in the water storage tank;
[0025] The liquid level detection component is used to obtain the liquid level information in the water storage tank;
[0026] If the liquid level information is greater than or equal to the first liquid level threshold, stop extracting mineral water;
[0027] If the liquid level information is less than or equal to the second liquid level threshold, start extracting and transferring mineral water, where the first liquid level threshold is greater than the second liquid level threshold.
[0028] In one embodiment, the water storage module further includes a fourth solenoid valve, a first check valve, and a second water outlet pipeline;
[0029] One end of the fourth solenoid valve is connected to the third solenoid valve, one 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 pipeline, and the second water outlet pipeline is used to output mineral water with a target concentration.
[0030] In one embodiment, if the mineral concentration corresponding to the target water intake instruction is equal to the mineral concentration of the mineral water in the water storage tank, the water storage module outputs mineral water with a target concentration through the first water outlet pipeline;
[0031] If the mineral concentration corresponding to the target water intake instruction is less than the mineral concentration of the mineral water in the water storage tank, the water storage module outputs mineral water with a target concentration through the second water outlet pipeline.
[0032] In one embodiment, if the mineral concentration corresponding to the target water intake instruction is less than the mineral concentration of the mineral water in the water storage tank, the third solenoid valve is 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;
[0033] The driving module pumps a preset flow rate of pure water according to the target water intake instruction and flows it through the first check valve to the second water outlet pipeline;
[0034] The fourth solenoid valve opens, and mineral water with a target concentration is output through the second water outlet pipeline.
[0035] In one embodiment, the driving module includes a self-priming pump, a fifth solenoid valve, and a second check valve;
[0036] One end of the self-priming pump is used to connect to the preset water inlet pipeline through the fifth solenoid valve, and one end of the self-priming pump is also connected to the extraction module through the second check valve;
[0037] The other end of the self-priming pump is respectively connected to the heating module and the water storage module.
[0038] In one embodiment, it further includes: a flow component and an alarm;
[0039] The flow component is arranged between the driving module and the heating module;
[0040] The flow component is used to record the water flow parameter of the pipeline between the driving module and the heating module;
[0041] If the water flow parameter is greater than or equal to the alarm water flow threshold, the alarm gives an alarm to prompt the user to replace the filter element.
[0042] In a second aspect, the present application also provides a mineralization device, including the mineralization system described in the first aspect.
[0043] In summary, the present application proposes a mineralization system and a mineralization device, including: a driving module, an extraction module, a heating module, and a water storage module; one end of the driving module is connected to a preset water inlet pipeline, the other end of the driving 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 driving module; when extracting mineral water, the present application heats a preset water body to achieve thermal extraction, can stably produce mineral water with a preset concentration, stores the mineral water in the water storage module, and provides mineral water with a target concentration according to the target water intake instruction, which can flexibly meet the water intake requirements of users for mineral water with different concentrations. BRIEF DESCRIPTION OF THE DRAWINGS
[0044] Figure 1 It is a structural block diagram of the mineralization system in one embodiment;
[0045] Figure 2 It is a structural block diagram of the mineralization system in another embodiment;
[0046] Figure 3Schematic structural diagram of a mineralization system in an embodiment;
[0047] Figure 4 Schematic flowchart of a control method for a mineralization system in an embodiment;
[0048] Figure 5 Internal structure diagram of a computer device in an embodiment.
[0049] Summary of reference numerals:
[0050] Mineralization system - 100; Control module - 110; Driving module - 120; Self - priming pump - 121; Fifth solenoid valve - 122; Second check valve - 123;
[0051] Extraction module - 130; Mineralization bin - 131; Mineralization filter element - 1311; Membrane housing - 1312; Atmosphere through - hole - 1313; Thermal insulation layer - 1314; First solenoid valve - 132; Second solenoid valve - 133;
[0052] Heating module - 140; Heater - 141;
[0053] 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;
[0054] Flow component 160; Flowmeter - 161. Detailed implementation manners
[0055] In order to make the objectives, technical solutions and advantages of the present application clearer and more understandable, the present application will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.
[0056] Refer to Figure 1 , a mineralization system 100 is provided, including: a control module 110, a driving module 120, an extraction module 130, a heating module 140 and a water storage module 150.
[0057] In this embodiment, the control module 110 includes chips or circuits such as controllers, processors or microprocessors that can implement the generation and distribution of control instructions. The specific type of the control module 110 is not limited in this embodiment and can be adaptively configured according to the needs of actual application scenarios.
[0058] The driving module 120 includes a pump body such as a self-priming pump 121 that can provide power for the water body. The driving module 120 in this embodiment can access a preset water body from a preset water inlet pipeline and drive the preset water body to flow in a specified water flow direction. In this embodiment, the preset water body can be raw water, or distilled water or pure water after treatment, and this embodiment does not limit the preset water body. The specific installation position of the preset water inlet pipeline can be adaptively configured based on the demand for the preset water body in the actual application scenario.
[0059] The extraction module 130 includes a mineralization bin 131 for realizing the mineralization of the water body. The extraction module 130 in this embodiment can perform thermal extraction after filling a preset water body with a certain flow rate and at a certain temperature, so as to convert the preset water body into mineral water with a certain concentration. In the actual application scenario, the concentration of the mineral water extracted by the extraction module 130 is related to the inlet water flow rate and the inlet water temperature. In this embodiment, by controlling the inlet water flow rate and the inlet water temperature of the preset water body entering the extraction module 130, precise control of the concentration of the extracted mineral water is achieved.
[0060] The heating module 140 includes a heater 141 that can heat the preset water body. In this embodiment, the control module 110 can send a target heating instruction to the heating module 140, and the target heating instruction includes a preset temperature, which can be 40°C - 100°C, and the specific setting of the preset temperature can be adaptively replaced. In this embodiment, the heating module 140 is arranged between the driving module 120 and the extraction module 130, and can effectively heat the water body entering the extraction module 130. Since the dissolution rate of the mineralization material in water is mainly determined by temperature and dissolution time, in order to accelerate the dissolution rate of the mineralization material in water, such as the dissolution rate of metasilicic acid in water, in this embodiment, by heating the water body entering the extraction module 130 to the preset temperature, more precise control of the concentration of the mineral water can be achieved. The step of using the heated water for mineral water extraction in this embodiment can also be called thermal extraction.
[0061] The water storage module 150 includes a water storage tank 151 that can store mineral water. In this embodiment, the water storage module 150 is used to realize the storage of mineral water and the supply of mineral water. When the user operates the mineralization device to perform mineral water extraction treatment, the control module 110 will receive the corresponding target water extraction instruction, and the control module 110 controls the water storage module 150 to provide the user with mineral water with a target concentration that meets the target water extraction instruction. It should be noted that the concentration of the mineral water can be divided into high concentration, normal concentration, and low concentration.
[0062] Such as Figure 2As shown in the figure, the control module 110 is respectively connected to the driving module 120, the extraction module 130, the heating module 140, and the water storage module 150. One end of the driving module 120 is connected to the preset water inlet pipeline, and the other end of the driving 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 driving module 120.
[0063] In this embodiment, the control module 110 of the mineralization system 100 needs to control the corresponding driving module 120, extraction module 130, heating module 140, and water storage module 150 to achieve the extraction, transfer, and removal of mineral water. Among them, the extraction process of mineral water is mainly used to prepare mineral water with a certain concentration. The transfer process of mineral water is mainly used to transfer the mineral water from the extraction module 130 to the water storage module 150. The removal process of mineral water is mainly used to supply mineral water with a concentration that meets the user's needs to the user.
[0064] When extracting mineral water, the control module 110 controls the driving module 120 and the heating module 140 to start, so as to access the preset water body from the preset water inlet pipeline, and make the preset water body enter the extraction module 130 through the driving 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 with a preset concentration.
[0065] In this embodiment, after receiving the start instruction for the extraction process of mineral water, the control module 110 will control the corresponding driving module 120 and heating module 140 to start. The driving module 120 provides the driving force of the water body, so that the preset water body flows from the preset water inlet pipeline to the heating module 140, and then from the heating module 140 to the extraction module 130. When flowing through the heating module 140, the heating module 140 heats the preset water body to a preset temperature value (40°C - 100°C). After flowing into the extraction module 130, a thermal extraction process is performed in the extraction module 130 for a preset time.
[0066] It should be noted that the residence time of the preset water body in the extraction module 130 corresponds to the preset concentration of the mineral water finally obtained in the extraction module 130. In this embodiment, the preset concentration can be obtained from the target extraction instruction sent by the control module 110. For example, the user can configure in advance the concentration of the mineral water obtained during the mineralization extraction process of the mineralization device. There can be physical buttons or virtual buttons corresponding to different concentrations set on the mineralization device. After the user presses the physical button or virtual button corresponding to the concentration, the control module 110 generates a target extraction instruction corresponding to the concentration.
[0067] In this embodiment, in the default state, the preset concentration can be a high concentration, so that the water storage module 150 can flexibly provide mineral water with the required concentration for the user according to the user's needs.
[0068] When transferring the mineral water, the control module 110 controls the driving module 120 to start, so that the mineral water enters the water storage module 150 from the extraction module 130 via the driving module 120.
[0069] In this embodiment, after the control module 110 controls the corresponding extraction module 130 to perform the thermal extraction process for a preset time, a mineral water transfer process will be immediately performed to transfer the mineral water to the water storage module 150 in a timely manner. At the same time, the control module 110 will collect the liquid level information in the water storage module 150 in real time. When the liquid level information is less than the high liquid level threshold, the control module 110 will perform the mineral water extraction process again until the liquid level information is greater than or equal to the high liquid level threshold.
[0070] It should be noted that when the control module 110 collects that the liquid level information is less than the low liquid level threshold, it will start the mineral water extraction process. The start condition of the mineral water extraction process can also be manually triggered by the user or automatically triggered at a specified time, which is not limited in this embodiment.
[0071] When taking out the mineral water, the control module 110 controls the water storage module 150 to provide mineral water with the target concentration according to the target water intake instruction.
[0072] In this embodiment, when receiving the mineral water intake instruction, that is, the target water intake instruction, the control module 110 will analyze the required concentration corresponding to the mineral water intake instruction, that is, the target concentration. The control module 110 will provide mineral water with the target concentration for the user through the corresponding water outlet channel of the water storage module 150 according to the corresponding target water intake instruction. In an actual application scenario, if the target concentration of the mineral water required by the user is lower than the concentration of the mineral water stored in the water storage module 150, the control module 110 can start the corresponding driving module 120 to drive a certain flow of pure water from the preset water inlet pipeline through the driving module 120 into the water storage module 150, and combine it with a certain flow of high-concentration mineral water released from the water storage module 150 to dilute and obtain mineral water with the target concentration, and then output the mineral water with the target concentration through the corresponding water outlet pipeline of the water storage module 150.
[0073] In summary, this embodiment provides a mineralization system 100, which can not only accurately control the mineral concentration in the mineral water through thermal extraction, but also ensure the stability of the mineral concentration of the mineral water by adjusting the extraction time inside the extraction module 130. And the mineralization system 100 provided in this embodiment can flexibly provide mineral water with the target concentration for the user according to the user's needs, greatly enriching the usage flexibility of the mineralization equipment.
[0074] In one embodiment, as Figure 3 shown, the extraction module 130 includes a mineralization bin 131, a first solenoid valve 132, and a second solenoid valve 133. Among them, both the first solenoid valve 132 and the second solenoid valve 133 are connected to the control module 110 and are used to perform opening and closing actions according to the control instructions of the control module 110.
[0075] One end of the first solenoid valve 132 is connected to the water inlet of the mineralization bin 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 water outlet of the mineralization bin 131, and the other end of the second solenoid valve 133 is connected to the driving module 120.
[0076] In this embodiment, the opening and closing of the first solenoid valve 132 determines whether the mineralization bin 131 can intake water. The opening and closing of the second solenoid valve 133 determines whether the mineralization bin 131 can discharge water. During different control processes, the control module 110 controls the first solenoid valve 132 and the second solenoid valve 133 to perform corresponding opening and closing to achieve the water flow direction that meets the requirements.
[0077] For example, during the extraction process of mineral water, 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 bin 131 after being heated by the heating module 140. After the control module 110 monitors that the water body with a preset flow rate has flowed to the heating module 140, it will control the first solenoid valve 132 to close after a preset time to cooperate with the extraction bin to perform thermal extraction.
[0078] During the transfer process of mineral water, the control module 110 will control the second solenoid valve 133 to open and the first solenoid valve 132 to close, so that the mineral water with a preset concentration in the mineralization bin 131 is transferred to the water storage module 150.
[0079] During the process of taking out mineral water, both the first solenoid valve 132 and the second solenoid valve 133 remain closed.
[0080] In one embodiment, as Figure 3 shown, the mineralization bin 131 includes a mineralization filter element 1311 and a membrane housing 1312. An air vent hole 1313 is provided on the membrane housing 1312, and the air vent hole 1313 is used to balance the pressure inside the mineralization bin 131 and the external air pressure.
[0081] In a specific embodiment, the mineralization chamber 131 includes a mineralization filter element 1311 and a membrane housing 1312. An atmospheric through-hole 1313 is provided on the membrane housing 1312, and the atmospheric through-hole 1313 is used to balance the pressure inside the mineralization chamber 131 and the external air pressure. Among them, the mineralization filter element 1311 can be in the form of compression of mineralization materials and carbon rods, or in the form of a mixture of mineralization materials and activated carbon, or in the form of mineralization materials and activated carbon ceramic balls. In a specific embodiment, the mineralization materials can adopt a certain amount of ore materials that have been naturally selected and processed, and are used to release some mineral elements required by the human body into the water, such as elements the same as those in natural mineral water, such as metasilicic acid, strontium, calcium, magnesium, potassium, zinc, etc.
[0082] The membrane housing 1312 can be composed of stainless steel materials or high-temperature resistant plastics. In a specific embodiment, a heat insulation layer 1314 can also be attached to the membrane housing 1312, and the heat insulation layer 1314 is made of heat insulation materials. The mineralization filter element 1311 is arranged inside the cavity formed by the membrane housing 1312. An atmospheric through-hole 1313 is provided on the membrane housing 1312 for connecting to the atmosphere, which can effectively balance the pressure inside the cavity of the mineralization chamber 131 and the external atmospheric pressure, so that the pressure inside the cavity is consistent with the external atmospheric pressure. In the actual application process, the setting of the atmospheric through-hole 1313 can effectively prevent the generation of negative pressure inside the cavity of the mineralization chamber 131, making the soaking liquid in the mineralization chamber 131 easier to be pumped out to the water storage tank 151, effectively improving the solid-liquid separation effect in the mineralization chamber 131 and making the solid-liquid separation more thorough.
[0083] In one embodiment, as Figure 3 shown, when extracting mineral water, the control module 110 is used to obtain a target extraction instruction, where the target extraction instruction includes a preset concentration corresponding to the extracted mineral water;
[0084] 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 according to the target extraction instruction to extract for a preset time to obtain mineral water with a preset concentration.
[0085] In this embodiment, the target extraction instruction can be set by the user directly operating the mineralization device. For example, the preset concentration parameter is set through the display screen of the mineralization device to generate the corresponding target extraction instruction. The target extraction instruction can also be adaptively updated by the mineralization device according to the user's usage situation. For example, when the user's water intake operations are of the same concentration for a certain period of time, the mineralization device will automatically generate a target extraction instruction corresponding to this concentration.
[0086] 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 in 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 defaults to T3.
[0087] 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 user water-taking time recorded by the control module 110.
[0088] 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.
[0089] 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.
[0090] 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;
[0091] 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;
[0092] 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.
[0093] 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.
[0094] 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 in the range of 15s - 30min.
[0095] In one embodiment, as Figure 3 shown, the control module 110 is further configured to determine a target extraction instruction according to the user's water intake information, where the user's water intake information includes the concentration information of the mineral water taken out by the user within a preset time period and the frequency information of the mineral water with the corresponding concentration taken out by the user.
[0096] In this embodiment, the preset time period is n hours or n days before the user's current water intake operation, where n is a positive integer. The control module 110 records the concentration of the mineral water corresponding to each water intake operation of the user within the preset time period to count the frequency information of the mineral water with the corresponding concentration taken out within the preset time period.
[0097] For example, the preset time period is 2 hours before the user's current water intake operation. After the user takes water at 12:00, the control module 110 obtains the user's water intake information of the mineralization device from 10:00 to 12:00. The user's water intake information includes 10 times of light mineral water, 30 times of mineralized water, and 13 times of rich mineral water. At this time, the control module 110 can determine the target extraction instruction according to the user's water intake information. At this time, the preset concentration in the target extraction instruction corresponds to the concentration of the mineralized water
[0098] In one embodiment, if the frequency information of the mineral water with the first concentration taken out by the user within the preset time is greater than or equal to the preset number threshold, it is determined that the preset concentration corresponding to the target extraction instruction is the first concentration;
[0099] If the frequency information of the mineral water with the second concentration taken out by the user within the preset time is greater than or equal to the preset number threshold, it is determined that the preset concentration corresponding to the target extraction instruction is the second concentration;
[0100] If the frequency information of the mineral water with the third concentration taken out by the user within the preset time is greater than or equal to the preset number threshold, it is determined that the preset concentration corresponding to the target extraction instruction is the third concentration.
[0101] In this embodiment, the preset number threshold can be configured according to the requirements of the actual application scenario. It should be noted that the preset number threshold is associated with the preset time period for collecting the user's water intake information. The longer the preset time period, the higher the preset number threshold.
[0102] In a specific embodiment, if the frequency information of the mineral water corresponding to each concentration taken out by the user is less than the preset number threshold, the preset concentration corresponding to the target extraction instruction obtained by the control module 110 remains unchanged.
[0103] This embodiment can effectively implement the function of flexibly providing mineral water for users by adaptively adjusting the preset concentration corresponding to the target extraction instruction according to the user's water intake information. And the mineralization device in this embodiment can realize mineralization and water production in advance during the period when no one takes water, so as to provide mineral water with a concentration meeting the requirements for users faster.
[0104] In one embodiment, as Figure 3 shown, the water storage module 150 includes a water storage tank 151, a third solenoid valve 152, and a first water outlet pipeline.
[0105] The water inlet of the water storage tank 151 is connected to the drive module 120 through the third solenoid valve 152, the water outlet of the water storage tank 151 is connected to the first water outlet pipeline, and the first water outlet pipeline is used to output mineral water with a target concentration.
[0106] In this example, the water storage tank 151 is used to store the mineral water generated by the mineralization bin 131. The water storage tank 151 can be made of stainless steel or high-temperature resistant plastic. It should be noted that the specific composition material of the water storage tank 151 in this embodiment can be adaptively configured according to the needs of the actual application scenario. It should be noted that the volume of the water storage tank 151 in this embodiment is larger than the volume of the mineralization bin 131, and the volume of the water storage tank 151 can be several times the volume of the mineralization bin 131, and can be specifically configured according to the needs of the actual application scenario.
[0107] The third solenoid valve 152 is used to control the on-off state of the water path corresponding to the water inlet of the water storage tank 151. When the third solenoid valve 152 is opened, the water inlet of the water storage tank 151 can perform the water inlet operation and the water outlet operation. The water outlet of the water storage tank 151 is connected to the first water outlet pipeline, wherein the first water outlet pipeline is used to output the mineral water stored in the water storage tank 151.
[0108] In a specific embodiment, when the preset concentration corresponding to the target extraction instruction is equal to the concentration of the mineral water stored in the water storage tank 151, the control module 110 controls the water storage tank 151 to output the mineral water with the target concentration through the first water outlet pipeline.
[0109] In one embodiment, a preset number of liquid level detection components are arranged in the water storage tank 151, and the liquid level detection components are connected to the control module 110. As Figure 3 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.
[0110] The control module 110 obtains the liquid level information in the water storage tank 151 through the liquid level detection components;
[0111] If the liquid level information is greater than or equal to the first liquid level threshold, the control module 110 stops extracting mineral water;
[0112] If the liquid level information is less than or equal to the second liquid level threshold, the control module 110 starts to extract and transfer the mineral water, wherein the first liquid level threshold is greater than the second liquid level threshold.
[0113] In this embodiment, the first liquid level switch 1511 is arranged at a position closer to the water inlet of the water storage tank 151, that is, at a position where the inner cavity of the water storage tank 151 is higher than the bottom plane. The second liquid level switch 1512 is arranged at a position where the distances from the water inlet and the water outlet of the water storage tank 151 are close, that is, at a position with a medium height relative to the bottom plane of the inner cavity of the water storage tank 151. The low liquid level switch is arranged at a position closer to the water outlet of the water storage tank 151, that is, at a position where the inner cavity of the water storage 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 storage tank 151 is full of mineral water. When the low liquid level switch is triggered, it indicates that the content of mineral water in the water storage tank 151 is insufficient and cannot provide mineral water for users immediately.
[0114] It should be noted that the installation position of the first liquid level switch 1511 is 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 the control module 110 is timely reminded to extract mineral water to realize the automatic replenishment of mineral water. The installation distance of the second liquid level switch 1512 is at a certain distance from the top surface of the water storage tank 151 to ensure that the mineral water in the water storage tank 151 will not be full, so as to prevent the mineral water from remaining in the mineralization bin 131, effectively protecting the mineralization filter element 1311 in the mineralization bin 131 and prolonging the service life of the mineralization filter element 1311.
[0115] It should be noted that the liquid level detection component can be a liquid level switch, or a liquid level sensor, a liquid level detector, etc. The specific type of the liquid level detection component is not limited in this embodiment.
[0116] In one embodiment, as Figure 3 shown, the water storage module 150 further includes a fourth solenoid valve 153, a first check valve and a second water outlet pipeline.
[0117] 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 driving module 120 through a first check valve. The other end of the fourth solenoid valve 153 is connected to the second water outlet pipeline, and the second water outlet pipeline is used to output mineral water with a target concentration.
[0118] In this embodiment, the fourth solenoid valve 153 is used to control the on-off state of the second water outlet pipeline. When the fourth solenoid valve 153 is turned on, mineral water with a target concentration can be output through the second water outlet pipeline of the water storage module 150.
[0119] The first check valve 154 is used to prevent the water in the water storage tank 151 from flowing back. During the dilution process of mineral water, it can also provide a water pipe space for the dilution process of mineral water, so that the mineral water and pure water in the water storage tank 151 are combined to obtain mineral water with a target concentration.
[0120] In one embodiment, if the mineral concentration corresponding to the target water intake instruction 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 with the target concentration through the first water outlet pipeline;
[0121] If the mineral concentration corresponding to the target water intake instruction is less than 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 with the target concentration through the second water outlet pipeline.
[0122] In this embodiment, if the mineral concentration corresponding to the target water intake instruction is less than the mineral concentration of the mineral water in the water storage tank 151, it is necessary to control the water storage module 150 to cooperate with the driving module 120 to achieve the dilution of the mineral water, so as to combine the mineral water and pure water in the water storage tank 151 to obtain mineral water with the target concentration that meets the requirements.
[0123] In a specific embodiment, as Figure 3 shown, if the mineral concentration corresponding to the target water intake instruction 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; controls the driving module 120 to extract a preset flow rate of pure water via the first check valve and flow to the second water outlet pipeline; controls the fourth solenoid valve 153 to open, and outputs mineral water with the target concentration through the second water outlet pipeline.
[0124] In this embodiment, the preset flow rate needs to be analyzed by the control module 110 according to the difference between the mineral concentration corresponding to the target water intake instruction and the mineral concentration of the mineral water in the water storage tank 151. The control of the preset flow rate can be achieved by sending a corresponding driving instruction to the driving module 120.
[0125] In one embodiment, the driving module 120 includes a self-priming pump 121, a fifth solenoid valve 122, and a second check valve 123.
[0126] One end of the self-priming pump 121 is used to connect to a preset water inlet pipeline through the fifth solenoid valve 122, and one end of the self-priming pump 121 is also connected to the extraction module 130 through the second check valve 123.
[0127] The other end of the self-priming pump 121 is respectively connected to the heating module 140 and the water storage module 150.
[0128] In this embodiment, the self-priming pump 121 can provide the driving force in the corresponding water flow direction, so that the water body flows in the direction of the corresponding treatment procedure. The fifth solenoid valve 122 is used to control the on-off state of the preset water inlet pipeline. When the fifth solenoid valve 122 is opened, the self-priming pump 121 can extract a certain flow rate of pure water through the preset water inlet pipeline.
[0129] The second check valve 123 is used to prevent the water body from flowing back to the extraction module 130.
[0130] In one embodiment, as Figures 1 - 3 shown, the mineralization system 100 further includes: a flow component 160, wherein the flow component 160 is arranged between the driving module 120 and the heating module 140, and the flow component 160 is connected to the control module 110.
[0131] The flow component 160 is used to record the water passing parameter of the pipeline between the driving module 120 and the heating module 140.
[0132] If the water passing parameter is greater than or equal to the alarm water passing threshold, the control module 110 controls the corresponding alarm to alarm to prompt the user to replace the filter element.
[0133] In this embodiment, the flow component 160 includes a flowmeter 161 or a pulse counter and other devices that can be used to monitor the water flow. The flow component 160 in this embodiment can be between the driving module 120 and the heating module 140, that is, between the self-priming pump 121 and the heating module 140. The installation position of the flow component 160 can effectively monitor the water flow of the water body flowing into the extraction module 130 or the water storage module 150. The water passing parameter in this embodiment is the total water flow passing through the flow component 160, including the water flow flowing into the extraction module 130 and the water flow flowing into the water storage module 150.
[0134] In this embodiment, the alarm water passing threshold can also be adaptively set according to the needs of the actual application scenario. For example, the alarm water passing threshold can be set to 100L or 150L. The alarm in this embodiment can include a buzzer, a control panel or a faucet ring light and other devices, and can be specifically configured according to the specific type of the mineralization equipment in the actual application scenario.
[0135] The control module 110 can control the alarm to directly give a buzzer alarm to prompt 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 prompt message for replacing the filter element. The flow component 160 in this embodiment realizes the life monitoring of the mineralization filter element 1311 in the mineralization bin 131, and alarms when the life of the mineralization filter element 1311 exceeds a certain threshold, which can timely remind the user to replace it when the mineralization filter element 1311 is used for too long, so as to ensure the stable concentration of the mineral water extracted by the mineralization bin 131.
[0136] In summary, this embodiment provides a mineralization system 100, which can not only achieve the thermal extraction of mineral water, accurately control the concentration of the mineral water generated by the mineralization device, but also alarm according to the service life of the mineralization filter element 1311 to replace the mineralization filter element 1311 in time. At the same time, this embodiment also sets an air vent 1313 on the cavity of the mineralization chamber 131, so that the mineralization chamber 131 can more smoothly achieve solid-liquid separation, greatly extending the service life of the mineralization filter element 1311. In addition, this embodiment can also flexibly adjust the concentration of the mineral water prepared by the mineralization system 100 according to the user's water intake information, so as to provide the user with mineral water with a target concentration that meets the requirements.
[0137] In a more detailed embodiment, the complete execution process of the mineral water extraction step in this embodiment includes:
[0138] When the control module 110 monitors that the liquid level in the water storage tank 151 is less than or equal to the preset low liquid level threshold, it starts to extract mineral water. The control module 110 first controls the first solenoid valve 132 and the fifth solenoid valve 122 to open, the second solenoid valve 133, the third solenoid valve 152 and the fourth solenoid valve 153 to close, and the self-priming pump 121 to open, so that the preset water body (purified water, pure water or distilled water with low mineral concentration) sequentially passes 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 and enters the mineralization chamber 131. Among them, the heating module 140 is used to heat the preset water body to 40 degrees Celsius or 100 degrees Celsius. The control module 110 obtains the water passing parameter of the hot water through the flow meter 161. When the flow meter 161 detects that the flow rate of the hot water reaches a certain volume, that is, the soaking volume of the mineralization chamber 131 (generally 180-1000 ml), the control module 110 controls the self-priming pump 121, the heating module 140, the fifth solenoid valve 122 and the first solenoid valve 132 to close for thermal extraction. After the mineralization chamber 131 performs thermal extraction for a preset time, mineral water with a preset concentration is obtained.
[0139] The complete execution process of the mineral water transfer step includes:
[0140] After the extraction time in the mineralization chamber 131 reaches a set time (15 seconds to 30 minutes), the 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. The second solenoid valve 133, the third solenoid valve 152, and the self-priming pump 121 are simultaneously opened. The self-priming pump 121 transfers the mineral water of a preset concentration obtained by extraction from the mineralization chamber 131 to the water storage tank 151. The control module 110 simultaneously 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 a set value (generally 180-1000 ml), the control module 110 controls the third solenoid valve 152, the second solenoid valve 133, and the self-priming pump 121 to close.
[0141] The complete process for executing the mineral water extraction procedure includes:
[0142] 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, the mineral water of the target concentration is directly output through the first water outlet pipe connected to the output port of the water storage tank 151 .
[0143] If the mineral concentration of the mineral water in water tank 151 is lower than the mineral concentration of the water drawn by the user, control module 110 calculates the pure water flow rate required to dilute the mineral water in water tank 151 and first opens third solenoid valve 152 and self-priming pump 121 while closing all other solenoid valves, allowing the mineral water in water tank 151 to flow out through the water inlet of water tank 151. After a certain flow rate of mineral water is drawn from water tank 151, self-priming pump 121 is restarted, third solenoid valve 152 is closed, and fourth solenoid valve 153 and fifth solenoid valve 122 are opened to extract pure water corresponding to the flow rate information and dilute it with the mineral water to obtain mineral water of the target concentration.
[0144] In one embodiment, Figure 4 As shown, a mineralization system control method is provided, which is applied to Figure 2 The mineralization system 100 in FIG. 1 is used as an example to illustrate the invention, which includes the following steps:
[0145] S401, when extracting mineral water, controls the drive module and the heating module to start, so that a predetermined water body is connected through a predetermined water inlet pipe, and the predetermined water body enters the extraction module through the drive module and the heating module. The heating module is used to heat the predetermined water body to a predetermined temperature, and the extraction module is used to convert the predetermined water body into mineral water of a predetermined concentration;
[0146] S402, when transferring mineral water, controlling the driving module to start, so that the mineral water enters the water storage module from the extraction module via the driving module;
[0147] S403. When taking out the mineral water, control the water storage module to provide mineral water with a target concentration according to the target water intake instruction.
[0148] In this embodiment, the specific implementation manner of the mineralization system control method can refer to the specific implementation manner in the foregoing system embodiment, and will not be elaborated herein one by one.
[0149] In summary, this embodiment provides a mineralization system control method, which can not only realize the thermal extraction of mineral water, but also flexibly provide mineral water with corresponding concentrations according to user preferences, greatly enriching the usage modes of mineralization equipment. At the same time, this embodiment also sets an air vent on the cavity of the mineralization chamber, enabling the mineralization chamber to more smoothly achieve solid-liquid separation and greatly extending the service life of the mineralization filter element.
[0150] It should be understood that although the steps in the flowcharts involved in the above embodiments are shown in sequence according to the arrows, these steps are not necessarily executed in the order indicated by the arrows. Unless otherwise clearly stated in this article, the execution of these steps has no strict order limit, and these steps can be executed in other orders. Moreover, at least some of the steps in the flowcharts involved in the above embodiments may include multiple steps or multiple stages. These steps or stages are not necessarily executed 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 executed alternately or alternately with at least a part of other steps or steps in other steps.
[0151] In one embodiment, a mineralization device is provided. The mineralization device includes the mineralization system in the foregoing embodiment. In this embodiment, the mineralization device can be a mineralization water dispenser or any terminal device capable of preparing mineral water.
[0152] In one embodiment, a computer device is provided. The computer device can be a terminal, and its internal structure diagram can be as Figure 5As shown in the figure. The computer device includes a processor, a memory, an input / output interface, a communication interface, a display unit, and an input device. Among them, the processor, the memory, and the input / output interface are connected through a system bus, and the communication interface, the display unit, and the input device are connected to the system bus through the input / output interface. Among them, the processor of the computer device is used to provide computing and control capabilities. The memory of the computer device includes a non-volatile storage medium and an internal memory. The non-volatile storage medium stores an 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 medium. The input / output interface of the computer device is used to exchange information between the processor and external devices. The communication interface of the computer device is used to communicate with external terminals in a wired or wireless manner, and the wireless manner can be implemented through WIFI, a mobile cellular network, NFC (Near Field Communication), or other technologies. When the computer program is executed by the processor, it implements a method for controlling a mineralization system. The display unit of the computer device is used to form a visually visible picture, which can be a display screen, a projection device, or a virtual reality imaging device. The display screen can be a liquid crystal display screen or an electronic ink display screen. The input device of the computer device can be a touch layer covering the display screen, or a button, a trackball, or a touchpad provided on the housing of the computer device, or an external keyboard, touchpad, or mouse, etc.
[0153] Those skilled in the art can understand that Figure 5 the structure shown in the figure is only a block diagram of some structures related to the solution of this application, and does not constitute a limitation on the computer device to which the solution of this application is applied. The specific computer device may include more or fewer components than those shown in the figure, or combine some components, or have different component arrangements.
[0154] In one embodiment, a computer device is provided, including a memory and a processor. A computer program is stored in the memory. When the processor executes the computer program, the following steps are implemented:
[0155] When extracting mineral water, control the driving module and the heating module to start, so as to access a preset water body from a preset water inlet pipeline, and make the preset water body enter 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;
[0156] When transferring mineral water, control the driving module to start, so that the mineral water enters the water storage module from the extraction module through the driving module;
[0157] When taking out mineral water, control the water storage module to provide mineral water with a target concentration according to a target water intake instruction.
[0158] In one embodiment, a computer-readable storage medium is provided, on which a computer program is stored. When the computer program is executed by a processor, the following steps are implemented:
[0159] When extracting mineral water, control the driving module and the heating module to start, so as to access a preset water body from a preset water inlet pipeline, and make the preset water body enter 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;
[0160] When transferring the mineral water, control the driving module to start, so that the mineral water enters the water storage module from the extraction module through the driving module;
[0161] When taking out the mineral water, control the water storage module to provide mineral water with a target concentration according to a target water intake instruction.
[0162] In one embodiment, a computer program product is provided, including a computer program. When the computer program is executed by a processor, the following steps are implemented:
[0163] When extracting mineral water, control the driving module and the heating module to start, so as to access a preset water body from a preset water inlet pipeline, and make the preset water body enter 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;
[0164] When transferring the mineral water, control the driving module to start, so that the mineral water enters the water storage module from the extraction module through the driving module;
[0165] When taking out the mineral water, control the water storage module to provide mineral water with a target concentration according to a target water intake instruction.
[0166] Those of ordinary skill in the art can understand that all or part of the processes in the methods of the above embodiments can be completed by instructing relevant hardware through a computer program. The computer program can be stored in a non-volatile computer-readable storage medium. When the computer program is executed, it can include the processes of the embodiments of the above methods. Among them, any reference to a memory, database, or other medium used in the embodiments provided in the present application can include at least one of non-volatile and volatile memories. Non-volatile memories can include read-only memory (ROM), magnetic tapes, floppy disks, flash memories, optical memories, high-density embedded non-volatile memories, resistive random access memories (ReRAM), magnetoresistive random access memories (MRAM), ferroelectric random access memories (FRAM), phase change memories (PCM), graphene memories, etc. Volatile memories can include random access memory (RAM) or external cache memories, etc. By way of illustration and not limitation, RAM can be in various forms, such as static random access memory (SRAM) or dynamic random access memory (DRAM), etc. The databases involved in the embodiments provided in the present application can include at least one of relational databases and non-relational databases. Non-relational databases can include distributed databases based on blockchain, etc., without limitation. The processors involved in the embodiments provided in the present application can be general-purpose processors, central processing units, graphics processing units, digital signal processors, programmable logic devices, data processing logics based on quantum computing, etc., without limitation.
[0167] The technical features of the above embodiments can be combined arbitrarily. For the sake of brevity of description, 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, it should be considered as the scope described in this specification.
[0168] The above-described embodiments merely represent several implementation manners of the present application. The description thereof is relatively specific and detailed, but it should not be construed as a limitation on the patent scope of the present application. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present application, several modifications and improvements can still be made, and these all belong to the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the appended claims.
Claims
1. A mineralization system, characterized in that, Including: A driving module, an extraction module, a heating module, and a water storage module; One end of the driving module is connected to a preset water inlet pipeline, and the other end of the driving module is connected to the water inlet of the extraction module through the heating module. The water outlet of the extraction module is connected to the water storage module through the driving module; When extracting mineral water, the driving module and the heating module are started to access a preset water body from the preset water inlet pipeline, and the preset water body enters the extraction module via 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 the mineral water, the driving module is started to make the mineral water enter the water storage module from the extraction module via the driving module; When taking out the mineral water, the water storage module provides mineral water with a target concentration according to a target water intake instruction.
2. The mineralization system according to claim 1, wherein The extraction module includes a mineralization chamber, a first solenoid valve, and a second solenoid valve; One end of the first solenoid valve is connected to the water 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 water outlet of the mineralization chamber, and the other end of the second solenoid valve is connected to the driving module.
3. The mineralization system according to claim 2, characterized in that, The mineralization chamber includes a mineralization filter element and a membrane housing, and an air vent hole is provided on the membrane housing. The air vent hole is used to balance the pressure inside the mineralization chamber and the external air pressure.
4. The mineralization system according to claim 2, wherein After the preset water body enters the extraction module via the driving module and the heating module, the extraction module extracts for a preset time according to a target extraction instruction to obtain mineral water with a preset concentration, where the target extraction instruction includes the preset concentration corresponding to the extracted mineral water.
5. The mineralization system according to claim 4, wherein The higher the preset concentration corresponding to the target extraction instruction, the longer the preset extraction time of the extraction module.
6. The mineralization system according to claim 4, characterized in that, If the preset concentration corresponding to the target extraction instruction is the first concentration, the extraction module extracts for a first preset time to obtain mineral water with the first concentration; If the preset concentration corresponding to the target extraction instruction is the second concentration, the extraction module extracts for a second preset time to obtain mineral water with the second concentration; If the preset concentration corresponding to the target extraction instruction is the third concentration, the extraction module extracts for a 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.
7. The mineralization system according to claim 4, wherein, The target extraction instruction is determined according to user water intake information, where the user water intake information includes the concentration information of the mineral water taken out by the user within a preset time period and the frequency information of the mineral water with the corresponding concentration taken out by the user.
8. The mineralization system according to claim 7, characterized in that, If the frequency information of the mineral water with the first concentration taken out by the user within the preset time is greater than or equal to a preset number threshold, it is determined that the preset concentration corresponding to the target extraction instruction is the first concentration; If the frequency information of the mineral water with the second concentration taken out by the user within the preset time is greater than or equal to the preset number threshold, determine that the preset concentration corresponding to the target extraction instruction is the second concentration; If the frequency information of the mineral water with the third concentration taken out by the user within the preset time is greater than or equal to the preset number threshold, determine that the preset concentration corresponding to the target extraction instruction is the third concentration.
9. The mineralization system according to claim 1, wherein, The water storage module includes a water storage tank, a third solenoid valve, and a first water outlet pipeline; The water inlet of the water storage tank is connected to the drive module through the third solenoid 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 to output mineral water with a target concentration.
10. The mineralization system according to claim 9, characterized in that, A preset number of liquid level detection components are arranged in the water storage tank; The liquid level detection component is used to obtain the liquid level information in the water storage tank; If the liquid level information is greater than or equal to the first liquid level threshold, stop extracting mineral water; If the liquid level information is less than or equal to the second liquid level threshold, start extracting and transferring mineral water, where the first liquid level threshold is greater than the second liquid level threshold.
11. The mineralization system according to claim 9, characterized in that, The water storage module further includes a fourth solenoid valve, a first check valve, and a second water outlet pipeline; One end of the fourth solenoid valve is connected to the third solenoid valve, one end of the fourth solenoid valve is also connected to the drive module through the first check valve, and the other end of the fourth solenoid valve is connected to the second water outlet pipeline, and the second water outlet pipeline is used to output mineral water with a target concentration.
12. The mineralization system according to claim 11, characterized in that, If the mineral concentration corresponding to the target water intake instruction is equal to the mineral concentration of the mineral water in the water storage tank, the water storage module outputs mineral water with a target concentration through the first water outlet pipeline; If the mineral concentration corresponding to the target water intake instruction is less than the mineral concentration of the mineral water in the water storage tank, the water storage module outputs mineral water with a target concentration through the second water outlet pipeline.
13. The mineralization system according to claim 12, characterized in that, If the mineral concentration corresponding to the target water intake instruction is less than the mineral concentration of the mineral water in the water storage tank, the third solenoid valve is 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 drive module pumps a preset flow of pure water according to the target water intake instruction and flows it through the first check valve to the second water outlet pipeline; The fourth solenoid valve is opened to output mineral water with a target concentration through the second water outlet pipeline.
14. The mineralization system according to claim 1, wherein, The drive module includes a self-priming pump, a fifth solenoid valve, and a second check valve; One end of the self-priming pump is used to be connected to the preset water inlet pipeline through the fifth solenoid valve, and one end of the self-priming pump is also connected to the extraction module through the second check valve; The other end of the self-priming pump is respectively connected to the heating module and the water storage module.
15. The mineralization system according to claim 1, characterized in that, It further includes: A flow component and an alarm; The flow component is arranged between the drive module and the heating module; The flow component is used to record the water passing parameter of the pipeline between the drive module and the heating module; If the water passing parameter is greater than or equal to the alarm water passing threshold, the alarm gives an alarm to prompt the user to replace the filter element.
16. A mineralization device, characterized in that, It includes the mineralization system according to any one of claims 1-15.
Citation Information
Cited By
Mineralization system, mineralization system control method and mineralization equipment
CN119240966A
Mineralization system, mineralization system control method and mineralization equipment
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