Mineralization apparatus, and control method and device for mineralization apparatus

By incorporating heating, mineralization, and water storage modules into the mineralization equipment, and utilizing solenoid valves and pumps, the problem of large fluctuations in mineral concentration within the equipment was solved, achieving precise control and stable concentration output of the mineralized water.

CN117263355BActive Publication Date: 2025-11-28GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202311484646.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-08
Publication Date
2025-11-28
Estimated Expiration
2043-11-08

AI Technical Summary

Technical Problem

Existing mineralization equipment suffers from large fluctuations in mineral concentration, making it impossible to precisely control the mineral concentration in water.

Method used

By setting up heating, mineralization, and water storage modules, and combining the control of solenoid valves and pumps, the system can heat, mineralize, and store water, ensuring that the mineralized water reaches the preset concentration before being stored in the water storage module, thus avoiding fluctuations in mineral concentration.

Benefits of technology

It achieves precise control over mineralized water, ensuring a stable mineral concentration when users draw water, with water quality comparable to natural mineral water.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The application relates to a mineralization device. The mineralization device comprises a water inlet pipeline, a heating module, a water inlet end of the heating module being connected to the water inlet pipeline, a mineralization module, a water inlet end of the mineralization module being connected to a water outlet end of the heating module, a water storage module, a water inlet end of the water storage module being connected to a water outlet end of the mineralization module, and a water outlet end of the water storage module being connected to a water outlet pipeline. The concentration of mineralized water stored in the water storage module reaches a preset concentration. The mineralization device can accurately control the concentration of minerals in water.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of household appliances, in particular to a mineralization device, a control method and device of the mineralization device, a computer readable storage medium and a computer program product. BACKGROUND

[0002] With the improvement of people's living standards, people pay more and more attention to the health of drinking water. At present, there are mineralization devices on the market that not only have water supply function but also add mineral function. Therefore, the mineralization device can also be called a mineral water machine. Generally, the mineral water machine adds solid mineralization material to the filter core to re-mineralize the water supply. Through the water-rock interaction between the mineral and the water, a certain concentration of minerals is released into the water body to provide the minerals needed by the human body in the water.

[0003] However, the mineral concentration in the drinking water is very low when the mineralization device is flowing, and a certain concentration of minerals can be precipitated after standing. However, only the water soaked in the mineralization material cavity has minerals, and there are no minerals after flowing, which makes the mineral concentration fluctuate greatly, and the mineral concentration in the water cannot be accurately controlled. SUMMARY

[0004] Therefore, it is necessary to provide a mineralization device, a control method and device of the mineralization device, a computer readable storage medium and a computer program product that can accurately control the mineral concentration in the water to solve the problem of large fluctuation of mineral concentration in the water after mineralization in the prior art.

[0005] In a first aspect, the present application provides a mineralization device. The mineralization device comprises:

[0006] a heating module, a water inlet end of the heating module being connected to a water inlet pipeline;

[0007] a mineralization module, a water inlet end of the mineralization module being connected to a water outlet end of the heating module;

[0008] a water storage module, a water inlet end of the water storage module being connected to a water outlet end of the mineralization module, and a water outlet end of the water storage module being connected to a water outlet pipeline; wherein the concentration of the mineralized water stored in the water storage module reaches a preset concentration.

[0009] In one embodiment, the mineralization device further comprises a first electromagnetic valve and a pump connected between the water inlet pipeline and the water inlet end of the heating module.

[0010] The first electromagnetic valve is opened when a mineralization start condition is met, and the pump is started when the mineralization start condition is met.

[0011] In one embodiment, the mineralization device further comprises: a first electromagnetic valve and a pump connected between the water inlet pipeline and the water inlet end of the heating module, and a second electromagnetic valve connected between the water outlet end of the heating module and the water inlet end of the mineralization module; a mineralization high liquid level switch is arranged in the mineralization module;

[0012] The pump and the heating module stop working when the hot water in the mineralization module reaches the mineralization high liquid level switch; wherein the water temperature of the hot water reaches a set temperature;

[0013] The first electromagnetic valve and the second electromagnetic valve are closed when the hot water in the mineralization module reaches the mineralization high liquid level switch.

[0014] In one embodiment, the pump is started when the mineralization water concentration in the mineralization module reaches the preset concentration;

[0015] The second electromagnetic valve is opened when the mineralization water concentration in the mineralization module reaches the preset concentration.

[0016] In one embodiment, a mineralization low liquid level switch is further arranged in the mineralization module;

[0017] The first electromagnetic valve is opened when the mineralization water in the mineralization module reaches the mineralization low liquid level switch;

[0018] The heating module starts working when the mineralization water in the mineralization module reaches the mineralization low liquid level switch.

[0019] In one embodiment, the water storage module is provided with a water storage high liquid level switch;

[0020] The pump stops working when the mineralization water in the water storage module reaches the water storage high liquid level switch.

[0021] In one embodiment, the water storage module is further provided with a water storage low liquid level switch;

[0022] The pump is started when the mineralization water in the water storage module reaches the water storage low liquid level switch;

[0023] The first electromagnetic valve is opened when the mineralization water in the water storage module reaches the water storage low liquid level switch.

[0024] In one embodiment, the water outlet pipeline comprises a first water outlet, and the mineralization device further comprises: a third electromagnetic valve and a heat exchanger connected between the water inlet end of the heating module and the first water outlet, and a check valve connected between the water outlet end of the water storage module and the water inlet end of the pump;

[0025] The third electromagnetic valve is opened when the warm water taking condition is met.

[0026] In one embodiment, the water outlet pipeline comprises a second water outlet, and the mineralization device further comprises a fourth electromagnetic valve connected between the water outlet end of the heating module and the second water outlet pipeline, and a check valve and a pump connected between the water outlet end of the water storage module and the water inlet end of the heating module.

[0027] The fourth electromagnetic valve is opened when the hot water taking condition is met.

[0028] In a second aspect, the present application provides a control method of a mineralization device, applied to the mineralization device of any one of the first aspect, and the method comprises:

[0029] Determining whether the mineralization device meets a mineralization starting condition;

[0030] In the case that the mineralization device meets the mineralization starting condition, controlling the heating module to heat the water provided by the water inlet pipeline, and controlling the mineralization module to mineralize the heated water to obtain mineralized water reaching a preset concentration, and storing the mineralized water reaching the preset concentration in the water storage module to output the mineralized water reaching the preset concentration through the water outlet pipeline.

[0031] In one embodiment, the determination of whether the mineralization device meets the mineralization starting condition comprises:

[0032] In the case that the mineralized water reaching the preset concentration in the water storage module reaches a low liquid level switch of the water storage module, it is determined that the mineralization device meets the mineralization starting condition.

[0033] In one embodiment, the method further comprises:

[0034] Controlling the heating module to heat the water to a set temperature.

[0035] In one embodiment, the method further comprises:

[0036] When the hot water in the mineralization module reaches a high liquid level switch, controlling the stop of the delivery of the hot water into the mineralization module, and controlling the heating module to stop working; wherein the water temperature of the hot water reaches the set temperature.

[0037] In one embodiment, the method further comprises:

[0038] Obtaining the mineral substance concentration before the mineralization processing of the mineralization module and the mineral substance concentration after the mineralization processing;

[0039] In the case that the difference between the mineral substance concentration after the mineralization processing and the mineral substance concentration before the mineralization processing is within a preset range, it is determined that the mineralized water in the mineralization module reaches the preset concentration, and the mineralization module is controlled to stop the mineralization processing.

[0040] In one embodiment, the method further comprises:

[0041] When the mineralized water reaching the preset concentration in the water storage module reaches the water storage high liquid level switch, it is determined that the mineralization device does not meet the mineralization starting condition.

[0042] In a third aspect, the present application provides a control device of a mineralization device, applied to any one of the mineralization devices in the first aspect, and the device comprises:

[0043] A determination module is configured to determine whether the mineralization device meets the mineralization starting condition.

[0044] A control module is configured to, when the mineralization device meets the mineralization starting condition, control the heating module to heat the water supplied by the water inlet pipeline, control the mineralization module to mineralize the heated water, obtain mineralized water reaching a preset concentration, store the mineralized water reaching the preset concentration in the water storage module, and output the mineralized water reaching the preset concentration through the water outlet pipeline.

[0045] In a fourth aspect, the present application further provides a computer readable storage medium. The computer readable storage medium has a computer program stored thereon, and the computer program is executed by a processor to implement the following steps:

[0046] Determine whether the mineralization device meets the mineralization starting condition.

[0047] When the mineralization device meets the mineralization starting condition, control the heating module to heat the water supplied by the water inlet pipeline, control the mineralization module to mineralize the heated water, obtain mineralized water reaching a preset concentration, store the mineralized water reaching the preset concentration in the water storage module, and output the mineralized water reaching the preset concentration through the water outlet pipeline.

[0048] In a fifth aspect, the present application further provides a computer program product. The computer program product comprises a computer program, and the computer program is executed by a processor to implement the following steps:

[0049] Determine whether the mineralization device meets the mineralization starting condition.

[0050] When the mineralization device meets the mineralization starting condition, control the heating module to heat the water supplied by the water inlet pipeline, control the mineralization module to mineralize the heated water, obtain mineralized water reaching a preset concentration, store the mineralized water reaching the preset concentration in the water storage module, and output the mineralized water reaching the preset concentration through the water outlet pipeline.

[0051] The mineralization device, the control method, the device, the computer readable storage medium and the computer program product of the mineralization device can improve the efficiency of releasing mineral elements in hot water by determining whether the mineralization device meets the mineralization starting condition, and heating the water provided by the water inlet pipeline by the heating module in the case that the mineralization device meets the mineralization starting condition, so that the efficiency of the mineralization device obtaining mineralized water reaching the preset concentration can be improved when the mineralization module controls the hot water to be mineralized. Since the mineralized water is stored in the water storage module after the mineral concentration in the water body reaches the preset concentration, the mineral concentration in the water body is prevented from fluctuating greatly, the mineral concentration in the mineralized water can be accurately controlled, and when the user takes water, the mineralized water reaching the preset concentration in the water storage module can be directly output to the user through the water outlet pipeline, thereby meeting the water taking demand of the user. BRIEF DESCRIPTION OF DRAWINGS

[0052] Figure 1 The structure block diagram of the mineralization device in an embodiment is shown in FIG. 1.

[0053] Figure 2 The structure block diagram of the mineralization device in another embodiment is shown in FIG. 2.

[0054] Figure 3 The structure block diagram of the mineralization device in another embodiment is shown in FIG. 3.

[0055] Figure 4 The structure block diagram of the mineralization device in another embodiment is shown in FIG. 4.

[0056] Figure 5 The structure block diagram of the mineralization device in another embodiment is shown in FIG. 5.

[0057] Figure 6 The structure block diagram of the mineralization device in another embodiment is shown in FIG. 6.

[0058] Figure 7 The structure block diagram of the mineralization device in another embodiment is shown in FIG. 7.

[0059] Figure 8 The structure block diagram of the mineralization device in another embodiment is shown in FIG. 8.

[0060] Figure 9 The structure block diagram of the mineralization device in another embodiment is shown in FIG. 9.

[0061] Figure 10 The structure block diagram of the mineralization device in another embodiment is shown in FIG. 10.

[0062] Figure 11 The flowchart of the control method of the mineralization device in an embodiment is shown in FIG. 11.

[0063] Figure 12 The structure block diagram of the control device of the mineralization device in an embodiment is shown in FIG. 12.

[0064] Explanation of reference numerals in the attached figures:

[0065] Mineralization equipment 100;

[0066] Water inlet pipe 102, heating module 104, mineralization module 106, water storage module 108, water outlet pipe 110;

[0067] First solenoid valve 202, pump 204;

[0068] Second solenoid valve 302;

[0069] Mineralization high level switch 1061, mineralization low level switch 1062;

[0070] Water storage high level switch 1081, water storage low level switch 1082;

[0071] First outlet 802, third solenoid valve 804, heat exchanger 806, check valve 808;

[0072] Second outlet 902, fourth solenoid valve 904. Detailed Implementation

[0073] 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.

[0074] like Figure 1 As shown in the diagram, this application provides a structural block diagram of a mineralization device 100. The mineralization device 100 includes a water inlet pipe 102, a heating module 104, a mineralization module 106, a water storage module 108, and a water outlet pipe 110. The water inlet pipe 102 is connected to the water inlet of the heating module 104, the water outlet of the heating module 104 is connected to the water inlet of the mineralization module 106, the water outlet of the mineralization module 106 is connected to the water inlet of the water storage module 108, and the water outlet of the water storage module 108 is connected to the water outlet pipe 110.

[0075] Specifically, the water inlet pipe 102 is used for water supply. The heating module 104 is used for heating the water supply to obtain hot water. Thus, by inputting the hot water into the mineralization module 106, the mineralization module 106 can perform mineralization treatment on the hot water to obtain mineralized water with a preset concentration.

[0076] In some embodiments, the mineralization module 106 can be a mineralization chamber, which is a container or cavity. The exterior can be made of stainless steel or high-temperature resistant plastic, and may also have an insulation layer made of insulating material. The mineralization chamber contains mineralizing material, which is generally a certain amount of naturally selected and processed mineral material. Heated water can react with the mineralizing material to release some common mineral elements needed by the human body into the water. The released mineral elements are basically the same as those in natural mineral water, such as metasilicic acid, strontium, calcium, magnesium, potassium, and zinc, thus obtaining mineralized water. Mineralized water refers to purified water containing mineral elements needed by the human body. Specifically, the water storage module 108 is used to store mineralized water at a preset concentration. The water storage module 108 can be a water tank, and its volume is generally N times or more the volume of the mineralization chamber, where N is greater than or equal to 1. Therefore, when a user takes water, the mineralized water in the water storage module 108 can be directly delivered to the water outlet pipe 110 to meet the user's water needs.

[0077] In some embodiments, the mineralization device 100 may further include a water purification module connected between the water inlet pipe 102 and the heating module 104. Thus, the water purification module can purify the water supplied by the water inlet pipe to obtain purified water, the heating module 104 can heat the purified water, and the mineralization module 106 can perform mineralization treatment on the heated purified water.

[0078] exist Figure 1 Based on the illustrated embodiments, as Figure 2 As shown, the mineralization equipment 100 may further include a first solenoid valve 202 and a pump 204 connected between the water inlet pipe 102 and the water inlet end of the heating module 104. Specifically, the first solenoid valve 202 opens when the mineralization start-up conditions are met, and the pump 204 starts when the mineralization start-up conditions are met. Thus, the water supplied by the water inlet pipe 102 can be transported to the heating module 104 for heating through the first solenoid valve 202 via the pump 204.

[0079] The mineralization start-up conditions refer to the conditions under which the mineralization equipment initiates the mineralization process to obtain mineralized water. Whether the mineralization equipment meets the start-up conditions can be determined based on whether there is sufficient mineralized water at a preset concentration in the water storage module 108. Specifically, the water storage module 108 is equipped with a low-level water level switch. When the mineralized water at the preset concentration in the water storage module 108 reaches the low-level water level switch, it is determined that the mineralization equipment meets the start-up conditions. Alternatively, it can be determined based on whether the user triggers the process. Specifically, when the mineralization equipment receives a start-up operation for the mineralization process triggered by the user, it is determined that the start-up conditions are met. The user can trigger the start-up operation for the mineralization process through voice, a button on the main body of the mineralization equipment 100, or a button displayed on the display screen of the mineralization equipment 100.

[0080] exist Figure 1 Based on the illustrated embodiments, as Figure 3 As shown, the mineralization device 100 may further include a second solenoid valve 302 connected between the outlet of the heating module 104 and the inlet of the mineralization module 106. In some embodiments, the second solenoid valve 302 opens when the water temperature in the heating module 104 reaches a set temperature. Thus, hot water can be obtained through the heating module 104, and when the hot water is delivered to the mineralization module 106, the mineralizing material in the mineralization module 106 can react with the hot water to produce minerals, improving the efficiency of releasing minerals into the water. In some embodiments, the second solenoid valve may be in a default open state when the mineralization device 100 is powered on. In some embodiments, the second solenoid valve may also open when the mineralization start-up conditions are met.

[0081] exist Figures 1-3 Based on the illustrated embodiments, as Figure 4 As shown, the mineralization equipment 100 may further include: a first solenoid valve 202 and a pump 204 connected between the water inlet pipe 102 and the water inlet end of the heating module 104; and a second solenoid valve 302 connected between the water outlet end of the heating module 104 and the water inlet end of the mineralization module 106. A mineralization high-level switch 1061 is provided in the mineralization module 106. Specifically, the pump 204 and the heating module 104 stop working when the hot water in the mineralization module 106 reaches the mineralization high-level switch 1061; the first solenoid valve 202 and the second solenoid valve 302 close when the hot water in the mineralization module 106 reaches the mineralization high-level switch 1061; wherein the water temperature reaches the set temperature.

[0082] When the hot water in the mineralization module 106 reaches the high-level mineralization switch 1061, by closing the pump 204 and the second solenoid valve 302, the continued supply of hot water from the heating module 104 to the mineralization module 106 via the second solenoid valve 302 is stopped. This allows the mineralization module 106 to react the currently supplied hot water with the mineralizing material, releasing mineral elements from the hot water. Simultaneously, by closing the first solenoid valve 202 and stopping the heating module 104, the continued supply of water from the inlet pipe 102 to the heating module 104 for heating is stopped. Furthermore, even if the user is taking warm water at this time, the closure of the first solenoid valve 202 prevents the mixing of unmineralized water with the mineralized water.

[0083] When the mineralization module 106 performs the mineralization process, when the concentration of the mineralized water in the mineralization module 106 reaches the preset concentration, the pump 204 is started and the second electromagnetic valve 302 is opened. Thus, by opening the second electromagnetic valve 302, the pipeline between the pump 204 and the mineralization module 106 can be connected to transport the mineralized water in the mineralization module 106 reaching the preset concentration to the water storage module 108 for storage. Further, when the user takes water, the mineralized water in the water storage module 108 can be directly transported to the water outlet pipeline 110 to meet the user's water taking demand.

[0084] In some embodiments, whether the concentration of the mineralized water in the mineralization module 106 reaches the preset concentration can be determined according to the mineral substance concentration before the mineralization module performs the mineralization process and the mineral substance concentration after the mineralization process. The mineral substance concentration before the mineralization process refers to the total dissolved solids (TDS) concentration of the hot water before the mineralization module performs the mineralization process, and the mineral substance concentration after the mineralization process refers to the TDS concentration of the hot water after the mineralization module performs the mineralization process.

[0085] Specifically, a water quality sensor can be arranged in the mineralization module 106, and the mineral substance concentration before the mineralization module performs the mineralization process and the mineral substance concentration after the mineralization process can be obtained through the water quality sensor. When the difference between the mineral substance concentration after the mineralization process and the mineral substance concentration before the mineralization process is within a preset range, it is determined that the mineralized water in the mineralization module reaches the preset concentration. The preset range can be 10 ppm-100 ppm.

[0086] It should be understood that when the mineralized water reaching the preset concentration in the mineralization module 106 is transferred to the water storage module 108, the mineralized water in the mineralization module 106 gradually decreases. In order to supplement the mineralized water in time to control the mineralization module 106 to start the mineralization process, the mineralization module 106 is connected with the water supply pipeline 202. Figure 4 In some embodiments, as shown in FIG. 1, the mineralization module 106 is also connected with the water supply pipeline 202. Figure 5 The mineralization module 106 is also provided with a mineralization low liquid level switch 1062. When the mineralized water in the mineralization module 106 reaches the mineralization low liquid level switch 1062, the first electromagnetic valve 202 is opened and the heating module 104 starts to work.

[0087] In combination with FIG. 1, the mineralization module 106 is also connected with the water supply pipeline 202. Figure 5In some embodiments, when the second electromagnetic valve 302 is opened when the water temperature of the heated water in the heating module 104 reaches the set temperature, the second electromagnetic valve 302 can be closed. Thus, by closing the second electromagnetic valve 302, the pipeline between the pump 204 and the mineralization module 106 is not communicated, and the remaining mineralized water in the mineralization module 106 that reaches the preset concentration will stop being transferred to the water storage module 108. By opening the first electromagnetic valve 202 and controlling the heating module 104 to work, the water supply can be delivered to the heating module 104 through the first electromagnetic valve 202 by the pump 204 for heating. Further, when the temperature of the water supply heated by the heating module 104 reaches the set temperature, the second electromagnetic valve 302 can be opened to deliver the heated water to the mineralization module 106 by the pump 204. It should be understood that the heating module in this embodiment adopts a water storage heating mode, that is, the heating module heats a certain amount of water supply, and the second electromagnetic valve 302 is opened when the heated water reaches the set temperature to deliver the heated water to the mineralization module 106 through the second electromagnetic valve 302 to increase the water level of the heated water in the mineralization module. Further, when the water level of the heated water reaches the mineralization high liquid level switch, the heating module, the first electromagnetic valve, the second electromagnetic valve, and the pump can be controlled according to the contents of the foregoing embodiments.

[0088] In combination Figure 5 In some embodiments, when the second electromagnetic valve 302 is in a default open state, if the mineralized water in the mineralization module 106 reaches the mineralization low liquid level switch 1062, the first electromagnetic valve 202 is opened and the heating module 104 is controlled to work, so that the water supply can be delivered to the heating module 104 through the first electromagnetic valve 202 by the pump 204 for heating, and the heated water is delivered to the mineralization module through the second electromagnetic valve 302 to increase the water level of the heated water in the mineralization module. It should be understood that in this embodiment, the heating module adopts a mode of instant heating of water, that is, the water passing through the heating module can instantaneously reach the set temperature. Thus, when the second electromagnetic valve 302 is in the default open state, the heated water can be immediately delivered to the mineralization module through the second electromagnetic valve. Further, when the water level of the heated water reaches the mineralization high liquid level switch, the heating module, the first electromagnetic valve, the second electromagnetic valve, and the pump can be controlled according to the contents of the foregoing embodiments.

[0089] In some embodiments, the mineralization device 100 may further include a conveying pipeline connecting the mineralization module 106 and the water storage module 108. During the process of conveying mineralized water from the mineralization module 106 to the water storage module 108 via the conveying pipeline, when the mineralized water in the mineralization module 106 reaches the low-level mineralization switch 1062, it indicates that the mineralized water in the mineralization module 106 is insufficient and needs to be prepared. In this case, the conveying pipeline is controlled to stop conveying mineralized water to the water storage module 108, allowing the mineralization module 106 to prepare mineralized water again. Only when the prepared mineralized water is sufficient (i.e., reaches the high-level mineralization switch) will the mineralized water be conveyed back to the water storage module 108. It should be understood that when the mineralized water in the mineralization module 106 reaches the mineralization low level switch 1062, even if the second solenoid valve is not closed, the mineralized water can be stopped from being delivered to the water storage module 108 by controlling the delivery pipeline. This can prevent the situation where hot water is mixed with the mineralized water in the mineralization module by the pump and then delivered to the water storage module 108.

[0090] It should be understood that when mineralized water of a preset concentration is transferred from mineralization module 106 to water storage module 108, the amount of mineralized water in water storage module 108 gradually increases. To prevent the mineralized water in water storage module 108 from overflowing, combined with... Figure 4 In some embodiments, such as Figure 6 As shown, a high-level water switch 1081 is provided in the water storage module 108. When the mineralized water in the water storage module 108 reaches the high-level water switch 1081, the pump 204 stops working. Therefore, when the pump 204 stops working, the mineralized water in the mineralization module 106 will not continue to be transferred to the water storage module 108, which can prevent the water storage module 108 from continuing to store mineralized water when it is already full.

[0091] To ensure the water provided to users contains essential minerals, the mineralized water in the storage module 108 can be directly supplied to the outlet pipe 110 when a user draws water, thus meeting their water needs. However, as the frequency of water draws increases, the amount of mineralized water in the storage module 108 gradually decreases. To guarantee that there is sufficient mineralized water in the storage module 108 when a user draws water, [further steps are needed]. Figure 2 Based on the illustrated embodiments, in one embodiment, such as Figure 7 As shown, the water storage module 108 is equipped with a low water level switch 1082. When the mineralized water in the water storage module 108 reaches the low water level switch 1082, it is determined that the mineralization equipment meets the mineralization start-up conditions. Thus, the mineralization equipment 100 can perform the process of obtaining mineralized water to store mineralized water in the water storage module 108 that has reached the high water level switch.

[0092] In practical use, to meet users' water needs, the mineralization equipment 100 can provide both warm and hot water to users. Specifically, the aforementioned water outlet pipe 110 may include a first outlet and a second outlet, with the first outlet providing warm water and the second outlet providing hot water.

[0093] In one embodiment, such as Figure 8 As shown, the water outlet pipe 110 of the mineralization equipment 100 includes a first water outlet 802. The mineralization equipment 100 also includes: a third solenoid valve 804 and a heat exchanger 806 connected between the water inlet of the heating module 104 and the first water outlet 802, and a check valve 808 connected between the water outlet of the water storage module 108 and the water inlet of the pump 204. Thus, by setting the check valve 808, backflow of mineralized water in the water storage module 108 can be prevented. When the conditions for warm water intake are met, the third solenoid valve 804 and the pump 204 are opened. The pump 204 can transport the mineralized water stored in the water storage module 108 to the heat exchanger 806 for heat exchange to form warm water that meets the user's needs, and output the warm water to the user through the first water outlet 802.

[0094] It should be noted that during the user's water intake process, the mineralization equipment 100 does not perform a mineralization process to avoid the unmineralized water being pumped by pump 204 and transported to heat exchanger 806 through third solenoid valve 804 to mix with mineralized water when the user takes water.

[0095] exist Figure 3 Based on the illustrated embodiments, in one embodiment, such as Figure 9 As shown, the water outlet pipe 110 of the mineralization device 100 includes a second water outlet 902. The mineralization device 100 may also include a fourth solenoid valve 904 connected between the water outlet of the heating module 104 and the second water outlet 902, a check valve 808 connected between the water outlet of the water storage module and the water inlet of the heating module, and a pump 204. Thus, when the hot water intake conditions are met, the pump 204 and the fourth solenoid valve 904 are opened, and the mineralized water stored in the water storage module 108 can be transported to the heating module 104 for heating through the pump 204. When the water is heated to a temperature that meets the user's water intake requirements, hot water can be output to the user through the second water outlet 904.

[0096] In conjunction with the above embodiments, such as Figure 10The diagram shows a structural schematic of a mineralization device 100. The mineralization device 100 includes: an inlet pipe 102, a heating module 104, a first solenoid valve 202 and a pump 204 connected between the inlet pipe 102 and the inlet end of the heating module 104, a third solenoid valve 804 and a heat exchanger 806 connected between the outlet end of the heating module 104 and a first outlet 802, a mineralization module 106, a second solenoid valve 302 connected between the outlet end of the heating module 104 and the inlet end of the mineralization module 106, a fourth solenoid valve 904 connected between the outlet end of the heating module 104 and a second outlet 902, a water storage module 108 connected to the outlet end of the mineralization module 106, and a check valve 808 connected between the outlet end of the water storage module 108 and the inlet end of the pump 204. The mineralization module 106 is equipped with a high-level mineralization switch 1061 and a low-level mineralization switch 1062, and the water storage module 108 is equipped with a high-level water storage switch 1081 and a low-level water storage switch 1082. The heat exchanger 806 can also be located between the outlet of the water storage module 108 and the inlet of the pump 204; this embodiment does not impose specific limitations.

[0097] based on Figure 10 In this structure, when the mineralization equipment 100 meets the mineralization start-up conditions, the first solenoid valve 202 opens and the pump 204 starts, thereby delivering the water supplied by the inlet pipe 102 to the heating module 104 for heating via the pump 204. The heating module 104 heats the water to the set temperature, and after obtaining hot water, it controls the second solenoid valve 302 to open, thus delivering the hot water to the mineralization module 106 via the pump 204. When the hot water in the mineralization module 106 reaches the mineralization high level switch 1061, the pump 204 stops working, the first solenoid valve 202 and the second solenoid valve 302 close, and the heating module 104 stops working. Thus, the supply of water to the heating module 104 can be stopped, and the supply of hot water to the mineralization module 106 can also be stopped. Moreover, when the heating module 104 stops working, it can prevent the second solenoid valve 302 from opening and causing hot water to be stored in the mineralization module 106 again during the mineralization process of the mineralization module 106 due to the residual water in the heating pipe of the heating module 104 reaching the set temperature. This also prevents the hot water in the mineralization module from exceeding the mineralization high level switch.

[0098] Furthermore, when the mineralizing material in the mineralization module 106 reacts with the hot water to release mineral elements into the hot water, and the mineral concentration in the hot water reaches a preset concentration, the pump 204 starts and the second solenoid valve 302 opens, so that the mineralized water in the mineralization module 106 that has reached the preset concentration can be transported to the water storage module 108 through the pump 204.

[0099] With the delivery of the mineralized water, the mineralized water in the mineralization module 106 gradually decreases. In order to replenish the mineralized water in time, when the mineralized water in the mineralization module 106 reaches the mineralization low liquid level switch 1062, the first electromagnetic valve 202 is opened, the second electromagnetic valve 302 is closed, and the heating module 104 starts to work. Thus, by opening the first electromagnetic valve 202, the water provided by the water inlet pipeline 102 can be delivered to the heating module for heating by the pump 204. By closing the second electromagnetic valve 302, the unheated water at the set temperature can be prevented from being delivered to the mineralization module 106 by the pump 204 when the heating module 104 heats the water supply. Further, when the heating module 104 heats the water supply to the set temperature to obtain hot water, the second electromagnetic valve 302 can be opened at this time to deliver the hot water to the mineralization module 106 for mineralization treatment.

[0100] With the delivery of the mineralized water, the mineralized water in the mineralization module 106 gradually decreases. In order to replenish the mineralized water in time, when the mineralized water in the mineralization module 106 reaches the mineralization low liquid level switch 1062, the first electromagnetic valve 202 is opened, the second electromagnetic valve 302 is closed, and the heating module 104 starts to work. Thus, by opening the first electromagnetic valve 202, the water provided by the water inlet pipeline 102 can be delivered to the heating module for heating by the pump 204. By closing the second electromagnetic valve 302, the unheated water at the set temperature can be prevented from being delivered to the mineralization module 106 by the pump 204 when the heating module 104 heats the water supply. Further, when the heating module 104 heats the water supply to the set temperature to obtain hot water, the second electromagnetic valve 302 can be opened at this time to deliver the hot water to the mineralization module 106 for mineralization treatment.

[0101] It should be understood that the dissolution rate of the mineralization material in water is mainly determined by the temperature and the dissolution time. In order to accelerate the dissolution rate of the mineralization material in water, the application adopts a hot extraction method, that is, the mineralization material is soaked in hot water at a certain temperature in the cavity to precipitate, and the precipitated liquid is collected in a water storage module after the concentration reaches the preset concentration, so that the concentration of minerals in the water body can be accurately and stably controlled, and the water quality can be comparable to natural mineral water.

[0102] In combination with the above embodiment, in one embodiment, as shown in Figure 11 a control method of a mineralization device is provided. The method is applied to the controller in the mineralization device 100 described above, and includes the following steps:

[0103] S1102, determining whether the mineralization device satisfies a mineralization starting condition.

[0104] In this embodiment, the mineralization start condition refers to a condition under which the mineralization device starts a mineralization process to obtain mineralized water. Whether the mineralization device 100 meets the mineralization start condition is determined in the following several implementation manners, which are specifically as follows:

[0105] In one implementation manner, the mineralization device 100 is determined to meet the mineralization start condition when the mineralized water reaching the preset concentration in the water storage module 108 reaches the water storage low liquid level switch 1082 of the water storage module 108. For example, in combination with Figure 2 or Figure 10 , the controller controls the first electromagnetic valve 302 to open and the pump 204 to start, so as to deliver the water supply provided by the water inlet pipeline 102 to the heating module 104 through the first electromagnetic valve 202 for heating by the pump 204.

[0106] In another implementation manner, the mineralization start condition is determined to be met when the mineralization device 100 receives a start operation of the mineralization process triggered by a user. The start operation of the mineralization process can be triggered by the user through at least one of voice, a button provided on the main body of the mineralization device 100, or a key displayed on the display screen of the mineralization device 100.

[0107] In some embodiments, when the mineralized water reaching the preset concentration in the water storage module 108 reaches the water storage high liquid level switch 1081, it indicates that the water storage module 108 is in a full water state, so that it can be determined that the mineralization device does not meet the mineralization start condition, and the mineralization device does not start the process of obtaining mineralized water.

[0108] In some embodiments, when the mineralized water reaching the preset concentration in the water storage module 108 reaches the water storage high liquid level switch 1081, it is determined that the mineralization device 100 does not meet the mineralization start condition.

[0109] S1104, in the case where the mineralization device meets the mineralization start condition, the controller controls the heating module to heat the water supply provided by the water inlet pipeline, and controls the mineralization module to perform mineralization treatment on the heated water supply, so as to obtain mineralized water reaching a preset concentration, and store the mineralized water reaching the preset concentration in the water storage module, so as to output the mineralized water reaching the preset concentration through the water outlet pipeline.

[0110] In some embodiments, the controller controls the heating module 104 to heat the water supply to a set temperature to obtain hot water. For example, in combination with Figure 3 , the controller controls the second electromagnetic valve 302 to open, and inputs the hot water into the mineralization module 106 for mineralization treatment by the pump 204. The set temperature can be any temperature in the range of 40-100°C.

[0111] In one embodiment, when the hot water in the mineralization module 106 reaches the mineralization high liquid level switch 1061, the controller controls to stop conveying hot water into the mineralization module 106 and controls the heating module 104 to stop working. Wherein, the temperature of the hot water reaches the set temperature, by controlling the heating module to stop working, the situation that hot water is still input into the mineralization module 106 when the mineralization module 106 is performing mineralization treatment can be avoided. Specifically, in combination with Figure 4 , the controller can stop conveying hot water into the mineralization module 106 by controlling the pump 204 to stop working and the first electromagnetic valve 202 and the second electromagnetic valve 302 to close.

[0112] In one embodiment, whether the mineralization module 106 stops the mineralization treatment process can be determined according to the mineral concentration before the mineralization module performs mineralization treatment and the mineral concentration after the mineralization treatment. Specifically, based on the water quality sensor arranged in the mineralization module 106, the mineral concentration before the mineralization module performs mineralization treatment and the mineral concentration after the mineralization treatment are obtained; when the difference between the mineral concentration after the mineralization treatment and the mineral concentration before the mineralization treatment is within a preset range, it is determined that the mineralized water in the mineralization module reaches a preset concentration, and the mineralization module is controlled to stop performing mineralization treatment. Further, the mineralized water reaching the preset concentration can be conveyed to the water storage module 108 for storage, so that when the user takes water, the mineralized water in the water storage module 108 can be directly output to the user through the water outlet pipeline, and the water quality is comparable to natural mineral water.

[0113] In summary, based on the method shown in Figure 11 , by determining whether the mineralization device meets the mineralization starting condition, when the mineralization device meets the mineralization starting condition, the water provided by the water inlet pipeline is heated by the heating module to obtain hot water, which can improve the efficiency of releasing mineral elements in the hot water, so that when the mineralization module performs mineralization treatment on the hot water, the efficiency of obtaining mineralized water reaching a preset concentration by the mineralization device can be improved. Since the mineralized water is stored in the water storage module only after the mineral concentration in the water body reaches the preset concentration, the situation that the mineral concentration in the water body fluctuates greatly can be avoided, the mineral concentration in the mineralized water can be accurately controlled, and when the user takes water, the mineralized water reaching the preset concentration in the water storage module 108 can be directly output to the user through the water outlet pipeline, which can meet the user's water taking demand and the water quality is comparable to natural mineral water.

[0114] It should be understood that although the steps in the flowcharts involved in the above embodiments are shown in sequence according to the arrows, the steps are not necessarily executed in the order indicated by the arrows. Unless otherwise specified herein, the execution of the steps is not strictly limited in sequence, and the steps can be executed in other orders. Moreover, at least some of the steps in the flowcharts involved in the above embodiments can include multiple steps or multiple stages, which are not necessarily executed at the same time, but can be executed at different times, and the execution order of the steps or stages is not necessarily sequential, but can be alternately executed with at least part of other steps or steps or stages in other steps.

[0115] Based on the same inventive concept, the embodiments of the present application also provide a control device of a mineralization device for implementing the control method of the mineralization device. The implementation scheme for solving the problem provided by the device is similar to the implementation scheme described in the above method, and therefore the specific limitations in one or more control device embodiments of the mineralization device provided below can refer to the limitations of the control method of the mineralization device described above, which will not be repeated here.

[0116] In one embodiment, as shown in Figure 12 A control device of a mineralization device is provided, comprising: a determination module 1202 and a control module 1204, wherein:

[0117] The determination module 1202 is configured to determine whether the mineralization device satisfies a mineralization starting condition.

[0118] The control module 1204 is configured to, in a case where the mineralization device satisfies the mineralization starting condition, control a heating module to heat water supplied by a water supply pipeline, and control a mineralization module to mineralize the heated water to obtain mineralized water reaching a preset concentration, and store the mineralized water reaching the preset concentration in a water storage module, so as to output the mineralized water reaching the preset concentration through a water outlet pipeline.

[0119] In one embodiment, the determination module 1202 is further configured to determine that the mineralization device satisfies the mineralization starting condition in a case where the mineralized water reaching the preset concentration in the water storage module reaches a low water level switch of the water storage module.

[0120] In one embodiment, the control module 1204 is further configured to control the heating module to heat the water to a set temperature.

[0121] In one embodiment, the control module 1204 is further configured to, when hot water in the mineralization module reaches a high water level switch, control to stop feeding the hot water into the mineralization module, and control the heating module to stop working; wherein the water temperature of the hot water reaches the set temperature. In one embodiment, the control module 1204 is further configured to, when hot water in the mineralization module reaches a high water level switch, control to stop feeding the hot water into the mineralization module, and control the heating module to stop working; wherein the water temperature of the hot water reaches the set temperature.

[0122] In an embodiment, the determining module 1202 is further configured to acquire the mineral concentration before the mineralization module performs the mineralization treatment and the mineral concentration after the mineralization treatment; and determine that the mineralized water in the mineralization module reaches the preset concentration when the difference between the mineral concentration after the mineralization treatment and the mineral concentration before the mineralization treatment is within a preset range; and the control module 1204 is further configured to control the mineralization module to stop performing the mineralization treatment.

[0123] In an embodiment, the determining module 1202 is further configured to determine that the mineralization device does not meet the mineralization starting condition when the mineralized water reaching the preset concentration in the water storage module reaches the water storage high liquid level switch.

[0124] The modules in the control device of the mineralization device described above can be implemented by software, hardware, or a combination thereof, in whole or in part. The modules described above can be embedded in or independent of the processor in the mineralization device in hardware form, or stored in the memory in the mineralization device in software form, so as to be called and executed by the processor to perform the operations corresponding to the modules.

[0125] In an embodiment, a mineralization device is provided, including a memory and a processor, the memory storing a computer program, and the processor implementing the following steps when executing the computer program:

[0126] determining whether the mineralization device meets a mineralization starting condition; and in the case that the mineralization device meets the mineralization starting condition, controlling the heating module to heat the water supplied by the water supply pipeline, and controlling the mineralization module to perform the mineralization treatment on the heated water to obtain mineralized water reaching a preset concentration, and storing the mineralized water reaching the preset concentration in the water storage module to output the mineralized water reaching the preset concentration through the water outlet pipeline.

[0127] In an embodiment, the processor further implements the following step when executing the computer program: determining that the mineralization device meets the mineralization starting condition when the mineralized water reaching the preset concentration in the water storage module reaches the water storage low liquid level switch of the water storage module.

[0128] In an embodiment, the processor further implements the following step when executing the computer program: controlling the heating module to heat the water to a set temperature.

[0129] In an embodiment, the processor further implements the following step when executing the computer program: when the hot water in the mineralization module reaches the mineralization high liquid level switch, controlling to stop delivering the hot water to the mineralization module, and controlling the heating module to stop working; wherein the water temperature of the hot water reaches the set temperature.

[0130] In one embodiment, the processor, when executing the computer program, also implements the following steps: obtaining the mineral concentration before the mineralization module performs the mineralization treatment and the mineral concentration after the mineralization treatment; determining that the mineralization water in the mineralization module reaches the preset concentration when the difference between the mineral concentration after the mineralization treatment and the mineral concentration before the mineralization treatment is within a preset range, and controlling the mineralization module to stop performing the mineralization treatment.

[0131] In one embodiment, the processor, when executing the computer program, also implements the following steps: determining that the mineralization device does not meet the mineralization start condition when the mineralization water reaching the preset concentration in the water storage module reaches the water storage high liquid level switch.

[0132] In one embodiment, a computer readable storage medium is provided, and the computer readable storage medium stores a computer program. The computer program is executed by a processor to implement the following steps:

[0133] determining whether the mineralization device meets the mineralization start condition; in the case that the mineralization device meets the mineralization start condition, controlling the heating module to heat the water supplied by the water inlet pipeline, and controlling the mineralization module to perform the mineralization treatment on the heated water to obtain the mineralization water reaching the preset concentration, and storing the mineralization water reaching the preset concentration in the water storage module.

[0134] In one embodiment, the processor, when executing the computer program, also implements the following steps: determining that the mineralization device meets the mineralization start condition when the mineralization water reaching the preset concentration in the water storage module reaches the water storage low liquid level switch of the water storage module.

[0135] In one embodiment, the processor, when executing the computer program, also implements the following steps: controlling the heating module to heat the water to the set temperature.

[0136] In one embodiment, the processor, when executing the computer program, also implements the following steps: when the hot water in the mineralization module reaches the mineralization high liquid level switch, controlling to stop delivering the hot water to the mineralization module, and controlling the heating module to stop working; wherein the water temperature of the hot water reaches the set temperature.

[0137] In one embodiment, the processor, when executing the computer program, also implements the following steps: obtaining the mineral concentration before the mineralization module performs the mineralization treatment and the mineral concentration after the mineralization treatment; determining that the mineralization water in the mineralization module reaches the preset concentration when the difference between the mineral concentration after the mineralization treatment and the mineral concentration before the mineralization treatment is within a preset range, and controlling the mineralization module to stop performing the mineralization treatment.

[0138] In one embodiment, the processor, when executing the computer program, also implements the following steps: determining that the mineralization device does not meet the mineralization start condition when the mineralization water reaching the preset concentration in the water storage module reaches the water storage high liquid level switch.

[0139] In one embodiment, a computer program product is provided, comprising a computer program which, when executed by a processor, implements the following steps:

[0140] determining whether the mineralization device meets a mineralization starting condition; in the case that the mineralization device meets the mineralization starting condition, controlling the heating module to heat the water supplied by the water supply pipeline, and controlling the mineralization module to mineralize the heated water to obtain mineralized water reaching a preset concentration, and storing the mineralized water reaching the preset concentration in the water storage module.

[0141] In one embodiment, the computer program, when executed by the processor, further implements the following step: determining that the mineralization device meets the mineralization starting condition in the case that the mineralized water reaching the preset concentration in the water storage module reaches a low water level switch of the water storage module.

[0142] In one embodiment, the computer program, when executed by the processor, further implements the following step: controlling the heating module to heat the water to a set temperature.

[0143] In one embodiment, the computer program, when executed by the processor, further implements the following step: when the hot water in the mineralization module reaches a high water level switch, controlling the hot water to stop being delivered to the mineralization module, and controlling the heating module to stop working; wherein the water temperature of the hot water reaches the set temperature.

[0144] In one embodiment, the computer program, when executed by the processor, further implements the following steps: obtaining a mineral substance concentration before the mineralization module performs mineralization processing and a mineral substance concentration after the mineralization processing; in the case that a difference between the mineral substance concentration after the mineralization processing and the mineral substance concentration before the mineralization processing is within a preset range, determining that the mineralized water in the mineralization module reaches the preset concentration, and controlling the mineralization module to stop performing the mineralization processing.

[0145] In one embodiment, the computer program, when executed by the processor, further implements the following step: when the mineralized water reaching the preset concentration in the water storage module reaches a high water level switch, determining that the mineralization device does not meet the mineralization starting condition.

[0146] Those skilled in the art can understand that all or part of the processes in the above-mentioned embodiment methods can be completed by instructing the relevant hardware through a computer program. The computer program can be stored in a non-volatile computer readable storage medium, and when the computer program is executed, the processes of the above-mentioned embodiments of the methods can be included. Any reference to memory, database or other medium used in the embodiments provided in the present application can include at least one of non-volatile and volatile memory. Non-volatile memory can include read-only memory (Read-Only Memory, ROM), magnetic tape, floppy disk, flash memory, optical storage, high-density embedded non-volatile memory, resistive memory (ReRAM), magnetoresistive random access memory (Magnetoresistive Random Access Memory, MRAM), ferroelectric memory (Ferroelectric Random Access Memory, FRAM), phase change memory (Phase Change Memory, PCM), graphene memory, etc. Volatile memory can include random access memory (Random Access Memory, RAM) or external cache memory, etc. As an illustration but not limitation, RAM can be in various forms, such as static random access memory (Static Random Access Memory, SRAM) or dynamic random access memory (Dynamic Random Access Memory, DRAM), etc. The database involved in the embodiments provided in the present application can include at least one of a relational database and a non-relational database. The non-relational database can include a distributed database based on a block chain, etc., without being limited thereto. The processor involved in the embodiments provided in the present application can be a general-purpose processor, a central processing unit, a graphics processing unit, a digital signal processor, a programmable logic device, a data processing logic device based on quantum computing, etc., without being limited thereto.

[0147] Any combination of the technical features of the above embodiments can be made. In order to make the description simple, all possible combinations of the technical features in the above embodiments are not described, however, as long as the combination of the technical features does not exist contradictory, it should be considered as the scope of the present application.

[0148] The above embodiments only express several implementation manners of the present application, and the description is more specific and detailed, but it should not be understood as a limitation on the scope of the patent of the present application. It should be pointed out that for ordinary skilled in the art, without departing from the concept of the present application, a number of modifications and improvements can be made, which are within the scope of protection of the present application. Therefore, the protection scope of the present application should be subject to the appended claims.

Claims

1. A mineralization apparatus, characterized in that, The mineralization device comprises a heating module, a mineralization module, a water storage module, a second electromagnetic valve connected between the water outlet end of the heating module and the water inlet end of the mineralization module, and a controller, the water inlet end of the heating module is connected with a water inlet pipeline, the water inlet end of the mineralization module is connected with the water outlet end of the heating module, the water inlet end of the water storage module is connected with the water outlet end of the mineralization module, and the water outlet end of the water storage module is connected with a water outlet pipeline; the mineralization module is provided with a mineralization high liquid level switch; the second electromagnetic valve is closed by default, is opened when the water temperature of hot water in the heating module reaches a set temperature, and is electrically connected with the controller; The controller is used to determine whether the mineralization device meets a mineralization starting condition, control the heating module to heat water supplied by the water inlet pipeline under the condition that the mineralization device meets the mineralization starting condition, control the mineralization module to perform mineralization treatment on the heated water, obtain mineralized water reaching a preset concentration, store the mineralized water reaching the preset concentration in the water storage module, and output the mineralized water reaching the preset concentration through the water outlet pipeline. The controller is further used to control the stop of the delivery of hot water reaching the set temperature into the mineralization module and control the stop of the heating module when hot water in the mineralization module reaches the mineralization high liquid level switch.

2. Mineralization apparatus according to claim 1, characterized in that The mineralization device further comprises a first electromagnetic valve and a pump connected between the water inlet pipeline and the water inlet end of the heating module. The first electromagnetic valve is opened when the mineralization starting condition is met, and the pump is started when the mineralization starting condition is met.

3. The mineralization apparatus of claim 1, wherein, The mineralization device further comprises a first electromagnetic valve and a pump connected between the water inlet pipeline and the water inlet end of the heating module. The pump stops working when hot water in the mineralization module reaches the mineralization high liquid level switch. The first electromagnetic valve is closed when hot water in the mineralization module reaches the mineralization high liquid level switch.

4. The mineralization apparatus of claim 3, wherein, The mineralization module is further provided with a mineralization low liquid level switch. The first electromagnetic valve is opened when mineralized water in the mineralization module reaches the mineralization low liquid level switch. The heating module starts working when mineralized water in the mineralization module reaches the mineralization low liquid level switch.

5. The mineralization apparatus of claim 3, wherein, The water storage module is provided with a water storage high liquid level switch. The pump stops working when mineralized water in the water storage module reaches the water storage high liquid level switch.

6. The mineralization apparatus of claim 2, wherein, The water storage module is provided with a water storage low liquid level switch. The pump is started when mineralized water in the water storage module reaches the water storage low liquid level switch. The first electromagnetic valve is opened when mineralized water in the water storage module reaches the water storage low liquid level switch.

7. The mineralization apparatus of claim 2, wherein, The water outlet pipeline comprises a first water outlet, and the mineralization device further comprises a third electromagnetic valve and a heat exchanger connected between the water inlet end of the heating module and the first water outlet, and a check valve connected between the water outlet end of the water storage module and the water inlet end of the pump. The third electromagnetic valve is opened when a warm water taking condition is met.

8. The mineralization apparatus of claim 3, wherein, The water outlet pipeline comprises a second water outlet, and the mineralization device further comprises a fourth electromagnetic valve connected between the water outlet end of the heating module and the second water outlet, and a check valve and a pump connected between the water outlet end of the water storage module and the water inlet end of the heating module. The fourth electromagnetic valve is opened when a hot water taking condition is met.

9. A control method of a mineralization apparatus, characterized by, The method is applied to the mineralization device of any one of claims 1-8, and the method comprises: determining whether the mineralization device meets a mineralization starting condition; controlling the heating module to heat the water supplied by the water inlet pipeline and controlling the mineralization module to mineralize the heated water to obtain mineralized water reaching a preset concentration, and storing the mineralized water reaching the preset concentration in the water storage module to output the mineralized water reaching the preset concentration through the water outlet pipeline, when the mineralization device meets the mineralization starting condition; The method further comprises: controlling the stop of the delivery of hot water reaching the set temperature to the mineralization module and controlling the heating module to stop working when the hot water in the mineralization module reaches the mineralization high liquid level switch.

10. The control method according to claim 9, characterized by, The determination of whether the mineralization device meets the mineralization starting condition comprises: determining that the mineralization device meets the mineralization starting condition when the mineralized water reaching the preset concentration in the water storage module reaches the water storage low liquid level switch of the water storage module.

11. The control method according to claim 9, characterized by, The method further comprises: obtaining the mineral substance concentration before the mineralization processing of the mineralization module and the mineral substance concentration after the mineralization processing; controlling the mineralization module to stop the mineralization processing when the mineralized water in the mineralization module reaches the preset concentration, in a case that the difference between the mineral substance concentration after the mineralization processing and the mineral substance concentration before the mineralization processing is within a preset range.

12. The control method according to claim 9, characterized by, The method further comprises: determining that the mineralization device does not meet the mineralization starting condition when the mineralized water reaching the preset concentration in the water storage module reaches the water storage high liquid level switch.

13. The control method according to claim 9, characterized by, The determination of whether the mineralization device meets the mineralization starting condition comprises: determining that the mineralization device meets the mineralization starting condition when a user-triggered starting operation of the mineralization processing process is received.

14. A control device of a mineralization apparatus, characterized by, The apparatus is configured to implement the steps of the method of any one of claims 9-13.

15. A computer readable storage medium having stored thereon a computer program, characterized in that, The computer program, when executed by a processor, implements the steps of the method of any one of claims 9-13.

16. A computer program product comprising a computer program, characterized in that, The computer program, when executed by a processor, implements the steps of the method of any one of claims 9-13.

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