Mineralized water machine, control method and device thereof and computer equipment
By obtaining the identification information of the carrying equipment, confirming the target object file and automatically controlling the mineralized water machine to output mineralized water with corresponding mineral concentration, it solves the problem of users needing to frequently adjust mineralized water concentration, and improves the convenience and user experience of mineralized water machine.
Patent Information
- Application Number
- CN202411905371.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-23
- Publication Date
- 2025-05-06
AI Technical Summary
When users use mineralized water machines, the mineral concentration needs to be readjusted every time they use mineralized water, which has problems of insufficient convenience and flexibility.
By obtaining the identification information of the carrying equipment, confirming the target object file, and automatically controlling the mineralized water machine to output mineralized water with the corresponding mineral concentration.
The mineralized water mineral concentration output by the mineralized water machine is matched with the needs of the water objects, and the convenience and user experience of the mineralized water machine are improved.
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Figure CN119937353A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of drinking water equipment, and in particular to a mineralized water machine and a control method, device, computer equipment, computer-readable storage medium and computer program product thereof. Background Art
[0002] With the development of smart homes and people's increasing attention to drinking water health issues, various water purifiers, mineralized water machines and other products have gradually developed to provide people with pure water or water with minerals to meet different drinking water needs. Among them, water with minerals can be prepared by mineralized water machines. Mineralized water machines mineralize water by adding solid mineralizing materials to the filter element, and release a certain concentration of minerals into the water body through the water-rock reaction between ore and water to obtain mineralized water.
[0003] Mineralized water requires a certain amount of minerals to be dissolved in water by mineralizing materials. Based on different dissolution rates or dissolution times, mineralized water with different mineral concentrations can be prepared. However, different people have different needs for mineralized water. When using a mineralized water machine, users need to readjust the concentration of minerals every time they use mineralized water, which is inconvenient and inflexible. Summary of the invention
[0004] Based on this, it is necessary to provide a mineral water machine and its control method, device, computer equipment, computer-readable storage medium and computer program product that can improve convenience in response to the above technical problems.
[0005] In a first aspect, the present application provides a mineralized water machine control method, the method comprising:
[0006] Obtaining identification information of a communication device; the communication device is a device carried by a water user;
[0007] Confirming a target object file from an object file library based on the identification information; the object file library includes a plurality of sub-files, and the sub-files represent the corresponding relationship between the water-using object and the water demand;
[0008] Based on the target object profile, the mineralized water machine is controlled to output mineralized water with a corresponding mineral concentration.
[0009] In one embodiment, before confirming the target object profile from the object profile library based on the identification information, the method further includes:
[0010] Establishing each sub-file based on different communication devices, and recording the water demand in the historical water demand that matches each of the communication devices into each of the sub-files;
[0011] The water intake preference corresponding to each of the communication devices is determined according to the water demand in each of the sub-files, and is entered into each of the sub-files accordingly to obtain the object archive.
[0012] In one embodiment, before controlling the mineralized water machine to output mineralized water with a corresponding mineral concentration based on the target object profile, the method further includes:
[0013] According to the target object profile, a preferred working mode is determined from the working modes of the mineral water machine, and a push prompt is given through the display device of the mineral water machine.
[0014] In one embodiment, before controlling the mineralized water machine to output mineralized water with a corresponding mineral concentration based on the target object profile, the method further includes:
[0015] Obtaining liquid level information of the water storage tank of the mineral water machine;
[0016] When the liquid level information is lower than a low liquid level threshold, the mineralization bin of the mineralized water machine is controlled to input raw mineralized water into the water storage tank; and the mineralization bin is in communication with the water storage tank.
[0017] In one embodiment, after obtaining the liquid level information of the water tank of the mineral water machine, the method further includes:
[0018] When the liquid level information is lower than the medium liquid level threshold, a set volume of pure water is input into the mineralization tank;
[0019] When the immersion time of the pure water reaches a preset immersion threshold, the mineralization bin is controlled to input the original mineralized water into the water storage tank until the liquid level information triggers a high liquid level threshold.
[0020] In one embodiment, when the immersion time of the pure water reaches a preset immersion threshold, the mineralization bin is controlled to input the original mineralized water into the water storage tank until the liquid level information triggers a high liquid level threshold, and the method further includes:
[0021] A preset water concentration for a current time period is determined according to the object archive, and a corresponding preset soaking threshold is determined based on the preset water concentration.
[0022] In one embodiment, the method further comprises:
[0023] Recording the water flow rate output from the mineralization bin;
[0024] When the water flow rate output by the mineralization bin is greater than the preset water flow rate, the mineralization water machine is controlled to generate a prompt message.
[0025] In one embodiment, the step of controlling the mineralized water machine to output mineralized water having a corresponding mineral concentration based on the target object profile includes:
[0026] determining a target concentration of mineralized water based on the target object profile;
[0027] The working state of the water outlet switch of the mineralized water machine is controlled according to the target concentration so that the mineralized water machine outputs mineralized water of the target concentration; the water outlet switch is respectively arranged in the water storage tank of the mineralized water machine and the pure water output pipeline of the mineralized water machine.
[0028] In a second aspect, the present application also provides a mineralized water machine control device, the device comprising:
[0029] A response module, used to obtain identification information of a communication device; the communication device is a device carried by a water user;
[0030] An analysis module, configured to confirm a target object file from an object file library based on the identification information; the object file library includes a plurality of sub-files, and the sub-files represent a corresponding relationship between a water-using object and a water demand;
[0031] A control module is used to control the mineralized water machine to output mineralized water with a corresponding mineral concentration based on the target object file.
[0032] In a third aspect, the present application further provides a mineralized water machine, the mineralized water machine comprising a pure water input pipeline, a pure water output pipeline, a mineralized water pipeline and a controller, the pure water input pipeline is connected to the pure water output pipeline and the mineralized water pipeline, the controller is connected to the pure water input pipeline, the pure water output pipeline and the mineralized water pipeline;
[0033] The pure water input pipeline is used to connect pure water, the mineralized water pipeline is used to generate mineralized water, and the controller is used to control the mineralized water pipeline and the pure water output pipeline to output mineralized water with different mineral concentrations based on the methods described in the above embodiments.
[0034] In one embodiment, the mineralized water pipeline includes a mineralization bin and a water storage tank, the mineralization bin is connected to the water storage tank and the pure water input pipeline, and the water storage tank is connected to the controller.
[0035] In one of the embodiments, the mineralized water pipeline further includes a heating element disposed between the pure water input pipeline and the mineralization chamber.
[0036] In one of the embodiments, the mineralized water pipeline further includes a flow meter disposed between the mineralization bin and the water storage tank.
[0037] In a fourth aspect, the present application further provides a computer device, comprising a memory and a processor, wherein the memory stores a computer program, and when the processor executes the computer program, the following steps are implemented:
[0038] Obtaining identification information of a communication device; the communication device is a device carried by a water user;
[0039] Confirming a target object file from an object file library based on the identification information; the object file library includes a plurality of sub-files, and the sub-files represent the corresponding relationship between the water-using object and the water demand;
[0040] Based on the target object profile, the mineralized water machine is controlled to output mineralized water with a corresponding mineral concentration.
[0041] In a fifth aspect, the present application further provides a computer-readable storage medium having a computer program stored thereon, wherein when the computer program is executed by a processor, the following steps are implemented:
[0042] Obtaining identification information of a communication device; the communication device is a device carried by a water user;
[0043] Confirming a target object file from an object file library based on the identification information; the object file library includes a plurality of sub-files, and the sub-files represent the corresponding relationship between the water-using object and the water demand;
[0044] Based on the target object profile, the mineralized water machine is controlled to output mineralized water with a corresponding mineral concentration.
[0045] In a sixth aspect, the present application further provides a computer program product, including a computer program, which implements the following steps when executed by a processor:
[0046] Obtaining identification information of a communication device; the communication device is a device carried by a water user;
[0047] Confirming a target object file from an object file library based on the identification information; the object file library includes a plurality of sub-files, and the sub-files represent the corresponding relationship between the water-using object and the water demand;
[0048] Based on the target object profile, the mineralized water machine is controlled to output mineralized water with a corresponding mineral concentration.
[0049] The above-mentioned mineralized water machine and its control method, device, computer equipment, computer-readable storage medium and computer program product include obtaining identification information of a communication device, confirming a target object file from an object archive based on the identification information, and controlling the mineralized water machine to output mineralized water with a corresponding mineral concentration based on the target object file. Among them, the communication device is a device carried by a water user, and the object archive includes a plurality of sub-files, each of which represents the correspondence between the water user and the water demand. By calling the corresponding target object file according to the communication device, it is helpful to ensure that the mineral concentration of the mineralized water output by the mineralized water machine matches the demand of the water user, thereby improving the convenience of the mineralized water machine. BRIEF DESCRIPTION OF THE DRAWINGS
[0050] In order to more clearly illustrate the technical solutions in the embodiments of the present application or related technologies, the drawings required for use in the embodiments of the present application or related technical descriptions will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other related drawings can be obtained based on these drawings without paying creative work.
[0051] Figure 1 A schematic diagram of the structure of a mineral water machine in one embodiment;
[0052] Figure 2 A schematic diagram of a flow chart of a mineral water machine control method in one embodiment;
[0053] Figure 3 A schematic diagram of a flow chart of a mineral water machine control method in another embodiment;
[0054] Figure 4 A schematic diagram of a flow chart of a mineral water machine control method in another embodiment;
[0055] Figure 5 A schematic diagram of a flow chart of a mineralized water machine control method in yet another embodiment;
[0056] Figure 6 A schematic diagram of the steps of a mineral water machine control method in one embodiment;
[0057] Figure 7 A schematic diagram of the steps of a mineral water machine control method in another embodiment;
[0058] Figure 8 A schematic diagram of the steps of a mineral water machine control method in another embodiment;
[0059] Fig. 9 It is a structural schematic diagram of a mineral water machine in another embodiment;
[0060] Fig.10is a structural block diagram of a mineralized water machine control device in one embodiment;
[0061] Fig.11 FIG. 4 is a diagram showing the internal structure of a computer device in one embodiment. DETAILED DESCRIPTION
[0062] In order to make the purpose, technical solution and advantages of the present application more clearly understood, the present application is further described in detail below in conjunction with 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.
[0063] It is understood that the terms "first", "second", etc. used in this application may be used herein to describe various elements, but these elements are not limited by these terms. These terms are only used to distinguish a first element from another element. For example, without departing from the scope of this application, a first resistor may be referred to as a second resistor, and similarly, a second resistor may be referred to as a first resistor. Both the first resistor and the second resistor are resistors, but they are not the same resistor.
[0064] It can be understood that the “connection” in the following embodiments should be understood as “electrical connection”, “communication connection”, etc. if the connected circuits, modules, units, etc. have electrical signals or data transmission between each other.
[0065] When used herein, the singular forms "a", "an", and "said / the" may also include plural forms, unless the context clearly indicates otherwise. It should also be understood that the terms "include / comprise" or "have" and the like specify the presence of stated features, wholes, steps, operations, components, parts, or combinations thereof, but do not exclude the possibility of the presence or addition of one or more other features, wholes, steps, operations, components, parts, or combinations thereof. At the same time, the term "and / or" used in this specification includes any and all combinations of the relevant listed items.
[0066] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art to which this application belongs. The terms used herein in the specification of this application are only for the purpose of describing specific embodiments and are not intended to limit this application.
[0067] The mineralized water machine control method provided in the embodiment of the present application can be applied to various types of mineralized water machines. Figure 1As shown, the present application also provides a mineralized water machine, which includes a pure water input pipeline 102, a pure water output pipeline 104, a mineralized water pipeline 106 and a controller (not shown in the figure), the pure water input pipeline 102 connects the pure water output pipeline 104 and the mineralized water pipeline 106, and the controller connects the pure water input pipeline 102, the pure water output pipeline 104 and the mineralized water pipeline 106.
[0068] Among them, the pure water input pipeline 102 is used to access pure water and transfer pure water to each pipeline in the mineralized water machine. A solenoid valve can be provided in the pure water input pipeline 102 to control the flow of pure water in the pure water input pipeline 102. The pure water output pipeline 104 is connected to the pure water input pipeline 102, and can be used to receive and output pure water in the pure water input pipeline 102. The mineralized water pipeline 106 is connected to the pure water input pipeline 102, and is used to access pure water and mineralize the pure water to generate mineralized water. By dissolving mineralized substances in pure water, pure water is converted into mineralized water. The mineralized water pipeline 106 can store mineralized water and output mineralized water under the control of the controller. The controller is used to control the mineralized water pipeline 106 and the pure water output pipeline 104 to output mineralized water with different mineral concentrations based on the mineralized water machine control method recorded in each embodiment of the present application. Specifically, the mineralized water pipeline 106 outputs mineralized water, and the pure water output pipeline 104 outputs pure water. The controller adjusts the mixing ratio of the mineralized water and the pure water to obtain mineralized water with different mineral concentrations.
[0069] Optionally, the controller can be a chip or processor that implements the control function in the mineralized water machine, or it can be a cloud server that remotely interacts with the mineralized water machine. The cloud server can control the mineralized water machine by obtaining various data of the mineralized water machine and combining the data stored in the cloud server to adjust the concentration of minerals in the mineralized water output by the mineralized water machine.
[0070] In an exemplary embodiment, Figure 2 As shown, a control method for a mineralized water machine is provided, and the method is applied to a controller of a mineralized water machine as an example for description, including the following steps 202 to 206. Among them:
[0071] Step 202: Acquire identification information of the communication device.
[0072] Among them, the communication device is a device carried by the water user. The water user may be a user of a mineral water machine, and the user wears a communication device on his body, so that the communication range of the communication device moves with the water user. Among them, the communication device may be a device with communication functions such as Bluetooth, NFC (Near Field Communication), and local area network, and it may be a portable wearable device, such as a smart watch, a smart bracelet, a head-mounted device, etc. When the distance between the communication device and the mineral water machine is less than a certain value, a communication connection can be established with the mineral water machine, and the controller can obtain the identification information of the communication device through interaction.
[0073] Specifically, the controller interacts with the communication device and obtains the identification information of the communication device by obtaining the device ID, serial number, and communication identity authentication of the communication device. The identification information is unique, that is, each communication device has unique identification information that is not repeated with other communication devices. Then the identification information can be bound to the water user wearing the communication device. When the identification information of a certain communication device is obtained, it indicates that the water user wearing the communication device comes to the mineral water machine to get water.
[0074] Optionally, taking the application of this method to a cloud server as an example, the cloud server can simultaneously establish a communication connection with the mineralized water machine and the communication device, and continuously obtain the location information of the mineralized water machine and the communication device, and based on the position difference between the two, determine whether the water user needs to fetch water.
[0075] Furthermore, when multiple communication devices establish communication connections with the controller at the same time, that is, the controller can communicate with multiple communication devices at the same time and obtain identification information of multiple communication devices, water extraction priority can be set between the communication devices. For example, it can be judged based on the signal strength when interacting with the communication device, and the communication device with higher signal strength is used as the communication device that currently needs to extract water. It can also be based on the time period of appearance of each communication device in the historical water demand, and the communication device with the highest probability of appearing in this time period is used as the communication device that currently needs to extract water. It can also be obtained by interacting with each communication device. The location information of each communication device is obtained, and the communication device closest to the location of the mineral water machine is used as the communication device that currently needs to extract water.
[0076] Step 204: confirm the target object archive from the object archive based on the identification information.
[0077] Among them, the object archive includes multiple sub-files, and the sub-files represent the corresponding relationship between the water-using object and the water demand. The object archive is established based on each communication device. Each communication device is equivalent to a corresponding water-using object, and a sub-file is established accordingly, and multiple sub-files are combined into an object archive. Exemplarily, the communication device can have the function of distinguishing or recording the water-using object. For example, the communication device can monitor the user's health data, and can classify the user portrait of the water-using object according to characteristics such as age, gender, and body shape, such as children, young and middle-aged people, and the elderly. Different user portrait classifications can correspond to different mineral concentration requirements. The water-taking preference of the water-using object can also be sorted out in the sub-file according to the recorded water demand. For example, if a water-using object often takes 200 ml of warm water at 7 o'clock in the morning, this water-taking preference can be sorted and recorded in the corresponding sub-file.
[0078] Specifically, the controller determines the sub-file corresponding to the identification information from the object archive according to the identification information of the communication device, that is, determines the water user and the water demand of the water user. The selected sub-file is used as the target object file, and the water demand, water extraction preference and other data information in the sub-file are retrieved accordingly to facilitate the subsequent control of the mineralized water machine.
[0079] The object archive is established based on communication equipment and historical water demand. Figure 3 As shown, before step 204 , the mineral water machine control method further includes steps 302 to 306 .
[0080] Step 302: Create sub-files based on different communication devices, and enter the water demand in the history that matches each communication device into each sub-file.
[0081] The historical water demand includes the previous water demand, which can be recorded from the time when the mineral water machine is activated, or can be recorded after periodic updates, or can be recorded when the user manually turns it on and off. The historical water demand includes a large number of water demands at previous times, that is, the water extraction records of the mineral water machine in the past. For example, the historical water demand is obtained in a cycle of one week, including but not limited to information such as water temperature, water volume, water use time, and water extraction plan.
[0082] Specifically, the controller establishes different sub-files according to different communication devices, and each sub-file corresponds to a water user. The water demands when establishing a communication connection with the communication device are screened out from the historical water demands, and these water demands are classified according to the different communication devices, corresponding to, for example, the sub-files corresponding to the communication devices, to complete the classification and recording of the historical water demands, so that each sub-file can distinguish the water demands of each water user.
[0083] Optionally, taking the application of this method to a cloud server as an example, the cloud server can obtain water production control information and water output control information from the mineral water machine, that is, historical water demand. The cloud server can also obtain the location information of the communication device, the information of the water user corresponding to the communication device, and the health data of the user object from the communication device. The cloud server can integrate this information and data, establish sub-files for different communication devices, and further screen and classify the historical water demand to complete the entry of each sub-file.
[0084] Step 304, determine the water intake preference corresponding to each communication device according to the water demand in each sub-file, and enter it into each sub-file accordingly to obtain an object file library.
[0085] Specifically, the controller can analyze the water demand entered in each sub-file and determine the corresponding water intake preference for each sub-file. For example, the water use time in the water demand is integrated, and the water use time with higher frequency is analyzed as the time period preference in the water intake preference; the water consumption in the water demand is analyzed to determine the water consumption range, and the median, average or the water consumption with the most occurrences is selected as the water quantity preference in the water intake preference; the water temperature in the water demand is analyzed to determine the water temperature range, and the water temperature with the most occurrences is selected as the water temperature preference in the water intake preference. After analyzing the water demand in each sub-file, the water intake preference corresponding to each communication device is determined, that is, the water intake preference of each water-using object, and the corresponding sub-file is entered to complete the entry of the sub-file. Each sub-file is integrated and packaged as an object archive.
[0086] Step 206, based on the target object file, control the mineralized water machine to output mineralized water with a corresponding mineral concentration.
[0087] Specifically, according to the selected target object file, based on the data information in the target object file, that is, the water demand of the water user, the controller can control the mineralized water machine to output mineralized water corresponding to the water demand according to the target object file. The water demand includes the mineral concentration, and the controller can control the mineralized water machine to output mineralized water with the corresponding mineral concentration.
[0088] Furthermore, water demand may also include water intake parameters such as water temperature and water volume, and the mineralized water machine may output mineralized water corresponding to the water intake preference in the target object file, wherein the mineral concentration, water temperature and water volume of the mineralized water are all obtained based on the water intake preference.
[0089] The mineral water machine may not directly control the output of mineral water according to the water intake preference of the target object profile, but recommend a working mode that matches the target object profile. Figure 4 As shown, before step 206, the mineral water machine control method further includes step 402: determining a preferred working mode from the working modes of the mineral water machine according to the target object profile, and pushing a prompt through the display device of the mineral water machine.
[0090] Specifically, according to the content in the target object file, that is, the water intake preference in the target object file, the controller can select a working mode that matches the water intake preference from the multiple working modes of the mineralized water machine as the preferred working mode. The working modes of the mineralized water machine include the output of mineralized water with different mineral concentrations, and can be output in combination with different water temperatures and water volumes. Then, according to the mineral concentration, water temperature, and water volume preferred by the water user in the water intake preference, a working mode that is the same as or similar to the water intake preference of the water user is selected as the preferred working mode. After obtaining the preferred working mode, the controller controls the display device of the mineralized water machine to adjust accordingly, and pushes the preferred working mode as the first display in the display device, or pushes the preferred working mode with a display color different from other working modes, or pushes the preferred working mode with a display area different from other working modes. In this way, the push prompt of the preferred working mode is realized, so that the water user can conveniently select the mineralized water that suits him and is accustomed to him.
[0091] Furthermore, within a preset time, if no user-triggered working mode selection instruction is received, that is, the water user does not actively select the working mode of the mineral water machine, the controller can execute step 206 to control the mineral water machine to directly output mineralized water with a mineral concentration corresponding to the target object file.
[0092] The above-mentioned mineralized water machine control method includes obtaining identification information of a communication device, confirming a target object file from an object archive based on the identification information, and controlling the mineralized water machine to output mineralized water with a corresponding mineral concentration based on the target object file. The communication device is a device carried by a water user, and the object archive includes a plurality of sub-files, each of which represents a corresponding relationship between a water user and a water demand. By calling the corresponding target object file according to the communication device, it is helpful to ensure that the mineral concentration of the mineralized water output by the mineralized water machine matches the demand of the water user, thereby improving the convenience of the mineralized water machine.
[0093] In an exemplary embodiment, Figure 5 As shown, before step 206, the mineralized water machine control method also needs to prepare and store the mineralized water, wherein the mineralized water preparation process correspondingly includes steps 502 to 504.
[0094] Step 502, obtaining the liquid level information of the water storage tank of the mineral water machine.
[0095] Specifically, the mineralized water machine includes a mineralized water pipeline, and a water storage tank is arranged in the mineralized water pipeline. The material of the water storage tank can be stainless steel or high temperature resistant plastic, which is used to store the original mineralized water. The concentration of the original mineralized water is determined by the mineralization process of the mineralized water pipeline, which is usually a fixed concentration value set in the controller. The mineralized water pipeline can also include a liquid level sensing device of the controller, which is arranged in the water storage tank and can monitor the liquid level information in the water storage tank. Optionally, multiple liquid level sensing devices can be arranged in the water storage tank to accurately monitor multiple liquid levels. Exemplarily, the liquid level sensing device includes a low liquid level sensor, a middle liquid level sensor and a high liquid level sensor, and the setting heights of the three sensors are from low to high to monitor different liquid levels.
[0096] Specifically, the controller is connected to the mineralized water pipeline of the mineralized water machine, specifically connected to the liquid level sensing device in the mineralized water pipeline, and can obtain the liquid level information of the water storage tank of the mineralized water machine.
[0097] Step 504: When the liquid level information is lower than the low liquid level threshold, the mineralization bin of the mineralized water machine is controlled to input raw mineralized water into the water storage tank.
[0098] The mineralized water pipeline includes a mineralization tank and a water storage tank, and the mineralization tank is connected to the water storage tank. The mineralization tank is used to dissolve minerals in the pure water in the mineralization tank to generate raw mineralized water of a certain concentration, and the raw mineralized water is input into the water storage tank for storage under the control of the controller.
[0099] It should be noted that mineralized water requires a certain amount of minerals to be dissolved in the water by the mineralized material. The concentration of minerals dissolved in the water by the flow of water is extremely low, and the mineralized material needs to be left standing in the water to precipitate a certain concentration of minerals. Moreover, the concentration of precipitated minerals varies depending on the length of time the mineralized material is left standing in the water. The dissolution rate of mineralized materials composed of minerals in water is mainly determined by temperature and dissolution time. In order to accelerate the dissolution rate of mineralized materials in water, such as metasilicic acid, the pure water in the mineralization bin can be heated to hot water, which can speed up the preparation of mineralized water in the mineralization bin, and after the concentration of precipitated mineralized materials reaches a set value, the mineralized water is collected in a water storage tank for storage. Specifically, the mineralized water pipeline also includes a heating element, which is arranged between the mineralization bin and the pure water input pipeline, and can heat the pure water input into the mineralization bin to increase the mineralization rate.
[0100] Specifically, the controller is connected to the liquid level sensing device to detect the liquid level information. When the liquid level information is lower than the low liquid level threshold, that is, the liquid level height represented by the liquid level information is lower than the low liquid level threshold, for example, when the low liquid level sensor detects that the liquid level is too low, the water tank needs to be replenished. The controller controls the mineralization bin of the mineralized water machine to input the original mineralized water into the water tank to replenish the water in the water tank in time.
[0101] In this embodiment, by obtaining the liquid level information of the water tank of the mineral water machine and controlling the mineralization warehouse to replenish the water in the water tank in time when the liquid level information is lower than the low liquid level threshold, it is beneficial to prioritize the user's water demand and improve the applicability of the mineral water machine.
[0102] In an exemplary embodiment, Figure 6 As shown, after step 502 , the mineral water machine control method further includes steps 602 to 604 .
[0103] Step 602: When the liquid level information is lower than the medium liquid level threshold, a set volume of pure water is input into the mineralization tank.
[0104] Among them, the middle liquid level threshold, the low liquid level threshold and the high liquid level threshold can all be designated liquid level information stored in the controller, and subsequent control is performed by comparing and judging the acquired liquid level information with the above designated liquid level information.
[0105] Specifically, the controller is connected to the liquid level sensing device to detect the liquid level information. When the liquid level information is lower than the middle liquid level threshold, that is, the liquid level height represented by the liquid level information is lower than the middle liquid level threshold, for example, when the middle liquid level sensor detects that the liquid level is too low, it is necessary to prepare the original mineralized water in time. The controller controls the mineralized water machine to input a set volume of pure water into the mineralization bin, so that the pure water can be mineralized in the mineralization bin. Optionally, the set volume can match the inner cavity capacity of the mineralization bin.
[0106] Step 604, when the immersion time of pure water reaches a preset immersion threshold, the mineralization bin is controlled to input raw mineralized water into the water storage tank until the liquid level information triggers a high liquid level threshold.
[0107] Specifically, the mineralization bin prepares the original mineralized water by mineralizing pure water. The preparation process requires the mineralized materials in the mineralization bin to be immersed in pure water. When the immersion time of the pure water reaches the preset immersion threshold, it means that the pure water has been converted into the original mineralized water, and the preparation of the original mineralized water is completed. The controller controls the mineralization bin to input the original mineralized water into the water storage tank until the liquid level information triggers the high liquid level threshold.
[0108] Furthermore, the mineralization bin may be provided with a drain outlet. When the liquid level information in the water storage tank triggers a high liquid level threshold but the original mineralized water in the mineralization bin has not been completely drained, the original mineralized water may be discharged through the drain outlet to avoid affecting the subsequent preparation of original mineralized water.
[0109] The preset soaking threshold value may be a value stored in the controller, and may be determined based on an object archive. In an exemplary embodiment, before step 604, the mineralized water machine control method further includes step 702: determining a preset water concentration for the current time period according to the object archive, and determining a corresponding preset soaking threshold value based on the preset water concentration.
[0110] Affected by the dissolution rate, the preparation time of mineralized water is relatively long. When different users require mineralized water with different mineral concentrations, the mineralized water machine needs different times to prepare mineralized water. Therefore, when users are currently using the mineral water machine, they need to consider the requirements of different users for the mineral concentration of different mineralized waters and make corresponding adjustments.
[0111] Specifically, based on the water intake preferences in multiple sub-profiles in the object archive, the controller filters the sub-profiles according to the water use time in the water intake preferences, and takes the sub-profile corresponding to the water intake preference that matches the current time period as the reference sub-profile. In the water intake preferences of the reference sub-profile, the water use concentration is analyzed, that is, the mineralized water with the mineral concentration having the highest probability of being taken in each reference sub-profile is obtained. The mineral concentration that appears most frequently among the water use concentrations is used as the preset water use concentration for the current time period, indicating that these water use objects may use water during the current time period, and the mineral concentration with the highest probability of using water among these water use objects is the preset water use concentration.
[0112] Since different mineral concentrations correspond to different preset soaking times, that is, the mineralization chamber needs different durations to prepare the original mineralized water with corresponding concentrations, the controller determines the corresponding preset soaking time based on the selected preset water use concentration to control the mineral concentration of the original mineralized water prepared in the mineralization chamber.
[0113] Exemplarily, according to different mineral concentrations, mineralized water can be divided into light mineral water, ordinary mineralized water, and rich mineral water, and their corresponding preset soaking times can be T1, T2, and T3, where T1 < T2 < T3. When the mineralized water machine is used for the first time or the object archive has not been established yet, it is default to prepare rich mineral water with a preset soaking time of T3.
[0114] In this embodiment, by using the mineralization chamber to prepare the original mineralized water and being able to determine the soaking time of pure water according to the object archive to prepare the original mineralized water with different mineral concentrations, and then inputting the original mineralized water into the water storage tank for storage, it is beneficial to intelligently generate the original mineralized water, meet the user's needs, and reduce the waiting time.
[0115] In an exemplary embodiment, as Figure 7 shown, the mineralized water machine control method further includes steps 802 to 804.
[0116] Step 802, record the water flow rate output by the mineralization chamber.
[0117] Specifically, the mineralized water pipeline further includes a flow meter, which is arranged on the pipeline between the mineralization chamber and the water storage tank and can detect the water flow rate output from the mineralization chamber. The controller is connected to the flow meter and can obtain and record the water flow rate detected by the flow meter.
[0118] Step 804, when the water flow rate outputted from the mineralization chamber is greater than the preset water flow rate, the mineralization water machine is controlled to generate a prompt message.
[0119] Specifically, the controller stores a preset water flow rate, and the value of the preset water flow rate is related to the amount of mineralized materials in the mineralization bin. As the original mineralized water is prepared, the mineralization effect of the mineralized materials will gradually weaken, resulting in insufficient mineral concentration of the mineralized water. The controller will compare the recorded water flow rate output from the mineralization bin with the preset water flow rate. When the water flow rate output from the mineralization bin is greater than the preset water flow rate, it indicates that the mineralized materials in the mineralization bin are ineffective. The controller controls the mineralized water machine to generate a prompt message to prompt the user to replace the mineralized materials. Exemplarily, the mineralized water machine may include a buzzer or a display device, which can generate a prompt message by generating a buzzer or displaying a replacement prompt.
[0120] In this embodiment, by taking into account the service life of the mineralized material in the mineralization bin, the user can be promptly reminded to replace the mineralized material when the water flow rate output by the mineralization bin is greater than the preset water flow rate, which is beneficial to ensuring the stable output of mineralized water from the mineralized water machine.
[0121] In an exemplary embodiment, Figure 8 As shown, step 206 includes steps 902 to 904 .
[0122] Step 902: determining a target concentration of mineralized water based on the target object profile.
[0123] Specifically, after determining the target object profile, the controller determines the target concentration of the mineralized water based on the water intake preference in the target object profile.
[0124] Step 904, controlling the working state of the water outlet switch of the mineral water machine according to the target concentration, so that the mineral water machine outputs mineral water of the target concentration.
[0125] There are more than two water outlet switches, which are respectively arranged on the water storage tank of the mineralized water machine and the pure water output pipeline of the mineralized water machine. The water outlet switch arranged on the water storage tank of the mineralized water machine can control the water output of the water storage tank, and the water storage tank outputs the original mineralized water; the water outlet switch arranged on the pure water output pipeline of the mineralized water machine can control the water output of the pure water output pipeline, and the pure water output pipeline outputs pure water. Exemplarily, the water outlet switch can be a solenoid valve.
[0126] Specifically, the controller controls the water outlet switch according to the target concentration. By controlling the water outlet switch on the water storage tank and the water outlet switch on the pure water output pipeline, the switching time of the two switches is adjusted to achieve a mixture of pure water and original mineralized water in different proportions, and then output mineralized water of different concentrations to achieve the output of mineralized water of the target concentration.
[0127] In this embodiment, the water outlet switch on the water tank and the water outlet switch on the pure water output pipeline are controlled by the controller to adjust the mixture of pure water and original mineralized water in different proportions. Mineralized water can be output according to the target concentration to meet the needs of water users, thereby improving the applicability and convenience of the mineral water machine.
[0128] Based on the same technical concept, the present application also provides a mineralized water machine, such as Figure 1 As shown, the mineralized water machine includes a pure water input pipeline 102, a pure water output pipeline 104, a mineralized water pipeline 106 and a controller (not shown in the figure), the pure water input pipeline 102 connects the pure water output pipeline 104 and the mineralized water pipeline 106, and the controller connects the pure water input pipeline 102, the pure water output pipeline 104 and the mineralized water pipeline 106.
[0129] Among them, the pure water input pipeline 102 is used to access pure water and transfer pure water to each pipeline in the mineralized water machine. A solenoid valve can be provided in the pure water input pipeline 102 to control the flow of pure water in the pure water input pipeline 102. The pure water output pipeline 104 is connected to the pure water input pipeline 102, and can be used to receive and output pure water in the pure water input pipeline 102. The mineralized water pipeline 106 is connected to the pure water input pipeline 102, and is used to access pure water and mineralize the pure water to generate mineralized water. By dissolving mineralized substances in pure water, pure water is converted into mineralized water. The mineralized water pipeline 106 can store mineralized water and output mineralized water under the control of the controller. The controller is used to control the mineralized water pipeline 106 and the pure water output pipeline 104 to output mineralized water with different mineral concentrations based on the methods recorded in the above embodiments. Specifically, the mineralized water pipeline 106 outputs mineralized water, and the pure water output pipeline 104 outputs pure water. The controller adjusts the mixing ratio of the mineralized water and the pure water to obtain mineralized water with different mineral concentrations.
[0130] In one embodiment, the mineralized water pipeline 106 includes a mineralization chamber and a water storage tank. The mineralization chamber is connected to the water storage tank and the pure water input pipeline 102, and the water storage tank is connected to the controller.
[0131] Specifically, the mineralized water pipeline 106 includes a mineralization warehouse and a water storage tank, and the mineralization warehouse is connected to the water storage tank. The material of the water storage tank can be stainless steel or high temperature resistant plastic, which is used to store the original mineralized water. The concentration of the original mineralized water is determined by the mineralization process of the mineralized water pipeline 106, which is usually a fixed concentration value set in the controller. The mineralized water pipeline 106 can also include a liquid level sensing device of the controller, which is arranged in the water storage tank and can monitor the liquid level information in the water storage tank. Optionally, multiple liquid level sensing devices can be arranged in the water storage tank to accurately monitor multiple liquid levels. Exemplarily, the liquid level sensing device includes a low liquid level sensor, a middle liquid level sensor and a high liquid level sensor, and the three sensors are arranged from low to high to monitor different liquid levels. The mineralization warehouse is used to dissolve minerals in the pure water in the mineralization warehouse, generate a certain concentration of original mineralized water, and input the original mineralized water into the water storage tank for storage under the control of the controller.
[0132] In one embodiment, the mineralized water pipeline 106 further includes a heating element disposed between the pure water input pipeline 102 and the mineralization chamber. The heating element can heat the pure water input into the mineralization chamber to increase the mineralization rate.
[0133] In one embodiment, the mineralized water pipeline 106 further includes a flow meter disposed between the mineralization bin and the water storage tank. The flow meter can detect the water flow rate output from the mineralization bin. The controller is connected to the flow meter, and can obtain the water flow rate detected by the flow meter and record it, so that the controller can monitor the mineralized material in the mineralization bin and remind the user to replace it in time.
[0134] In order to better understand the above scheme, combined with Figure 1 The application scenario shown is explained in detail below in conjunction with a specific embodiment.
[0135] In one embodiment, the mineral water machine is Fig. 9 As shown, it includes a pure water input pipeline, a pure water output pipeline, a mineralized water pipeline and a controller, wherein the pure water input pipeline includes a solenoid valve 1, the pure water output pipeline includes a solenoid valve 5, and the mineralized water pipeline includes a self-priming pump, a check valve, a heating element, a flow meter, a mineralization bin, a water storage tank, a solenoid valve 2, a solenoid valve 3 and a solenoid valve 4. The mineralization bin is provided with a mineralized carbon rod for realizing the mineralization of pure water; it is also provided with a vent hole for balancing the air pressure inside and outside the mineralization bin; the mineralization bin is also provided with an insulation layer for preserving the temperature of the hot water heated by the heating element to improve the mineralization efficiency. A low liquid level switch, a middle liquid level switch and a high liquid level switch are provided in the water storage tank, which are respectively used to detect liquid level information. Specifically, the role and function of each component are as follows:
[0136] Self-priming pump: used for the transfer of pure water, mainly transferring pure water from the pure water inlet to the heating element to facilitate heating of the heating element.
[0137] Heating element: used to heat pure water to the set temperature, with its own temperature sensing package to achieve temperature detection and stabilization.
[0138] Solenoid valves 1, 2, 3, 4, 5: used to control the opening and closing of the pipeline. The specific usage is recorded below.
[0139] Flow meter: used to measure the amount of water flowing through the mineralized filter element (mineralized carbon rod), used to realize the life reminder function, and remind the filter element to be replaced after the set amount of water flowing through is reached. It is used to measure the amount of water flowing into the water storage tank when switching the water path, and can also be called a pulse counter, etc.
[0140] Mineralization chamber: a container or cavity, mainly composed of a mineralization filter element, a membrane shell and an insulation layer. The mineralization filter element is in the form of a compressed mineralized material and a carbon rod, or a mixed form of a mineralized material and activated carbon, or a mineralized material and an activated carbon ceramic ball. Among them, the mineralized material is generally a certain amount of natural selected and processed ore material, which mainly releases some conventional mineral elements required by the human body into the water, which is basically the same as the components of natural mineral water, such as metasilicic acid, strontium, calcium, magnesium, potassium, zinc, etc. The membrane shell outside the mineralization chamber can be made of stainless steel or high-temperature resistant plastic, and can be provided with an insulation layer, which can be an insulation material. A small hole (vent) is opened in the outer shell of the mineralization chamber to connect to the atmosphere, so that the pressure of the mineralization chamber is consistent with the outside world, so that after the thermal extraction of the mineralized water is completed, the self-priming pump can transfer the extract (original mineralized water) of the mineralization chamber to the water storage tank.
[0141] Water tank: used to store raw mineralized water. The water tank can be made of stainless steel or high-temperature resistant plastic. There are low liquid level switch, middle liquid level switch and high liquid level switch on the water tank. The low liquid level switch indicates that the water tank is short of water; the middle liquid level switch is used to indicate that extraction is needed to prepare mineral water; the high liquid level switch is used to indicate that the water tank is full.
[0142] The specific mineral water machine control process is as follows:
[0143] Recommended water use plans based on identity recognition: The mineral water machine can intelligently generate drinking water plans suitable for users (children, young and middle-aged people, the elderly, etc.) based on the identity information bound to the user on the wearable device, and start the corresponding mineral water program to avoid the user from wasting time selecting functions in front of the mineral water machine before each use. At the same time, water use plans are also recommended based on the user's daily drinking habits: when the user wears the wearable device and takes water, their drinking habits (including but not limited to the water temperature, water volume, water collection time, and water collection plan) can be collected. After continuously collecting drinking habits for a period (7 days), a water collection plan is automatically recommended to the user in a 24-hour cycle. For example, warm water in the morning, boiled water at noon, and boiling water for tea in the afternoon.
[0144] Mineralized water preparation: When the low liquid level switch signal is detected, solenoid valve 1 and solenoid valve 2 are opened, solenoid valve 3, solenoid valve 4, and solenoid valve 5 are closed, and the self-priming pump is started. Pure water (purified water, generally pure water or distilled water with a low mineral concentration) is passed through a flow meter and enters the heating element to be heated to a set temperature, which is set in the range of 40°C - 100°C. The hot water enters the mineralization chamber after passing through solenoid valve 2. At this time, the reading detected by the flow meter is the water volume in the mineralization chamber and also the water volume flowing through the mineralization filter element. Accumulating this reading can be used to calculate the life of the mineralization filter element. When the flow meter detects that the hot water injected into the mineralization chamber has reached the set volume (which can be 180 - 1000 ml, and this set volume is the same as the immersion volume of the mineralization chamber), the self-priming pump, the heating element, solenoid valve 1, and solenoid valve 2 are closed. The mineralization chamber undergoes thermal extraction, and the extraction time is executed according to the set time. That is, a certain concentration of extraction liquid (raw mineralized water) can be obtained through thermal extraction.
[0145] When the extraction in the mineralization chamber reaches the set time (15 s - 30 min), the extraction is completed. At this time, the heating element, solenoid valve 1, solenoid valve 2, and solenoid valve 5 are closed, and solenoid valve 3, solenoid valve 4, and the self-priming pump are opened simultaneously. The self-priming pump transfers the extraction liquid in the mineralization chamber to the water storage tank. At this time, the reading feedback by the flow meter is the water volume entering the water storage tank. When the water volume entering the water storage tank reaches the set volume, solenoid valve 3, solenoid valve 4, and the self-priming pump are closed. When the high liquid level switch of the water storage tank is not triggered, the mineralized water can be output normally. Among them, the volume of the water storage tank is larger than the volume of the mineralization chamber. In this step, the set extraction cycle is divided into three gears (light mineral water, ordinary mineralized water, rich mineral water), corresponding to different extraction times T1, T2, T3 respectively. The values of the three times are all distributed in the range of 15 s - 30 min, and T1 < T2 < T3. When the user uses it for the first time, the extraction duration defaults to T3. Subsequently, according to the target profile library established based on the user identity corresponding to the wearable device and the associated water intake preferences, mineralized water with corresponding concentrations can be prepared in advance in the mineralization chamber during each water usage period.
[0146] When the mineral concentration of the water selected by the user is lower than the mineralized water concentration stored in the water storage tank, the system will automatically dilute the mineralized water taken by the user according to the water intake volume so that the user can obtain mineralized water with the set concentration. In this step, the system calculates the dilution ratio and first opens the mineralized water branch, that is, the water outlet switch set on the water storage tank. At this time, solenoid valve 3 and the self-priming pump are opened, and the other solenoid valves 1, 2, 4, and 5 are closed; when the set value of mineralized water is taken, solenoid valve 3 is closed, solenoid valve 1 and solenoid valve 5 are opened, the water outlet switch on the pure water output pipeline is opened, and the corresponding proportion of pure water is taken to dilute the mineralized water to obtain mineralized water with the target concentration.
[0147] During the use of the mineral water machine, when the flow meter detects that the cumulative amount of water passing through the mineral filter reaches the designed water flow rate, for example 100L, the controller can output a signal to remind the user to replace the filter and control the mineral water machine to generate corresponding prompt information, which can be in the form of a body buzzer or a faucet light ring to inform the user.
[0148] In this embodiment, the system can adjust different water preparation programs according to the matching of the wearable device with the water user and the corresponding prediction of the water intake situation, so that the user can conveniently use mineral water of different concentrations, and can also complete the preparation of mineral water in advance by recording the user's water intake preference. This is conducive to ensuring that the mineral concentration of the mineralized water output by the mineralized water machine matches the needs of the water user and improves the convenience of the mineralized water machine.
[0149] It should be understood that, although the steps in the flowcharts involved in the above embodiments are displayed in sequence according to the indication of the arrows, these steps are not necessarily executed in sequence according to the order indicated by the arrows. Unless there is a clear explanation in this article, the execution of these steps is not strictly limited in order, and these steps can be executed in other orders. Moreover, at least a part of the steps in the flowcharts involved in the above embodiments may include multiple steps or multiple stages, and these steps or stages are not necessarily executed at the same time, but can be executed at different times, and the execution order of these steps or stages is not necessarily carried out in sequence, but can be executed in turn or alternately with other steps or at least a part of the steps or stages in other steps.
[0150] Based on the same inventive concept, the embodiment of the present application also provides a mineralized water machine control device for implementing the mineralized water machine control method involved above. The implementation scheme for solving the problem provided by the device is similar to the implementation scheme recorded in the above method, so the specific limitations in one or more embodiments of the mineralized water machine control device provided below can refer to the limitations of the mineralized water machine control method above, and will not be repeated here.
[0151] In an exemplary embodiment, Fig.10 As shown, a mineral water machine control device is provided, including: a response module 1020, an analysis module 1040 and a control module 1060, wherein:
[0152] The response module 1020 is used to obtain identification information of a communication device; the communication device is a device carried by a water user;
[0153] The analysis module 1040 is used to confirm the target object file from the object file library based on the identification information; the object file library includes multiple sub-files, and the sub-files represent the corresponding relationship between the water use object and the water demand;
[0154] The control module 1060 is used to control the mineralized water machine to output mineralized water with a corresponding mineral concentration based on the target object file.
[0155] In one of the embodiments, the mineralized water machine control device also includes a file creation module, which is used to create each sub-file based on different communication devices before the analysis module 1040 confirms the target object file from the object archive based on the identification information, and enter the water demand in the historical water demand that matches each communication device into each sub-file; determine the water extraction preference corresponding to each communication device according to the water demand in each sub-file, and enter each sub-file accordingly to obtain an object archive.
[0156] In one embodiment, the mineralized water machine control device also includes a push module, which is used to determine the preferred working mode from the working modes of the mineralized water machine according to the target object file before the control module 1060 controls the mineralized water machine to output mineralized water with a corresponding mineral concentration based on the target object file, and push a prompt through the display device of the mineralized water machine.
[0157] In one embodiment, the mineralized water machine control device also includes a mineralized water storage module, which is used for the control module 1060 to obtain the liquid level information of the water storage tank of the mineralized water machine before controlling the mineralized water machine to output mineralized water with a corresponding mineral concentration based on the target object file, and when the liquid level information is lower than the low liquid level threshold, the mineralization bin of the mineralized water machine is controlled to input the original mineralized water into the water storage tank; the mineralization bin is connected to the water storage tank.
[0158] In one embodiment, the mineralized water storage module is further used to input a set volume of pure water into the mineralization bin after obtaining the liquid level information of the water storage tank of the mineralized water machine when the liquid level information is lower than the medium liquid level threshold. When the immersion time of the pure water reaches the preset immersion threshold, the mineralization bin is controlled to input the original mineralized water into the water storage tank until the liquid level information triggers the high liquid level threshold.
[0159] In one of the embodiments, the mineralized water storage module is also used to control the mineralization bin to input raw mineralized water into the water storage tank when the immersion time of pure water reaches a preset immersion threshold, until the liquid level information triggers a high liquid level threshold, determine the preset water concentration for the current time period according to the object archive, and determine the corresponding preset immersion threshold based on the preset water concentration.
[0160] In one of the embodiments, the mineralized water machine control device further includes a prompt module for recording the water flow rate outputted from the mineralization bin, and controlling the mineralized water machine to generate a prompt message when the water flow rate outputted from the mineralization bin is greater than a preset water flow rate.
[0161] In one embodiment, the control module 1060 is also used to control the working state of the water outlet switch of the mineral water machine according to the target concentration, so that the mineral water machine outputs mineralized water of the target concentration; the water outlet switch is respectively arranged in the water storage tank of the mineral water machine and the pure water output pipeline of the mineral water machine.
[0162] Each module in the above-mentioned mineralized water machine control device can be implemented in whole or in part by software, hardware and their combination. Each module can be embedded in or independent of the processor in the computer device in the form of hardware, or can be stored in the memory in the computer device in the form of software, so that the processor can call and execute the corresponding operations of each module.
[0163] In an exemplary embodiment, a computer device is provided. The computer device may be a terminal, and its internal structure diagram may be as shown in FIG. Fig.11 As shown. The computer device includes a processor, a memory, an input / output interface, a communication interface, a display unit and an input device. 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. 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 a computer program. The internal memory provides an environment for the operation of the operating system and the computer program in the non-volatile storage medium. The input / output interface of the computer device is used to exchange information between the processor and the external device. The communication interface of the computer device is used to communicate with an external terminal in a wired or wireless manner, and the wireless manner can be realized through WIFI, a mobile cellular network, near field communication (Near Field Communication, NFC) or other technologies. When the computer program is executed by the processor, a mineral water machine control method is realized. 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, and the input device of the computer device can be a touch layer covering the display screen, or a button, trackball or touchpad set on the computer device shell, or an external keyboard, touchpad or mouse.
[0164] Those skilled in the art will understand that Fig.11 The structure shown in the figure is only a block diagram of a part of the structure related to the solution of the present application, and does not constitute a limitation on the computer device to which the solution of the present application is applied. The specific computer device may include more or fewer components than those shown in the figure, or combine certain components, or have a different arrangement of components.
[0165] In one embodiment, a computer device is further provided, including a memory and a processor, wherein a computer program is stored in the memory, and the processor implements the steps in the above method embodiments when executing the computer program.
[0166] 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 steps in the above-mentioned method embodiments are implemented.
[0167] In one embodiment, a computer program product is provided, including a computer program, which implements the steps in the above method embodiments when executed by a processor.
[0168] A person of ordinary skill in the art can understand that all or part of the processes in the above-mentioned embodiment method can be completed by instructing the relevant hardware through a computer program, and 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-mentioned methods. Among them, any reference to the memory, database or other medium used in the embodiments provided in the present application can include at least one of non-volatile memory and volatile memory. Non-volatile memory can include read-only memory (ROM), magnetic tape, floppy disk, flash memory, optical memory, high-density embedded non-volatile memory, resistive random access memory (ReRAM), magnetic random access memory (MRAM), ferroelectric random access memory (FRAM), phase change memory (PCM), graphene memory, etc. Volatile memory can include random access memory (RAM) or external cache memory, etc. As an illustration and not limitation, RAM can be in various forms, such as static random access memory (SRAM) or dynamic random access memory (DRAM). The database involved in each embodiment provided in this application may include at least one of a relational database and a non-relational database. Non-relational databases may include distributed databases based on blockchains, etc., but are not limited to this. The processor involved in each embodiment provided in this application may be a general-purpose processor, a central processing unit, a graphics processor, a digital signal processor, a programmable logic device, a data processing logic device based on quantum computing, an artificial intelligence (AI) processor, etc., but are not limited to this.
[0169] The technical features of the above embodiments may be combined arbitrarily. To make the description concise, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this application.
[0170] The above-described embodiments only express several implementation methods of the present application, and the descriptions thereof are relatively specific and detailed, but they cannot be understood as limiting the scope of the present application. It should be pointed out that, for a person of ordinary skill in the art, several variations and improvements can be made without departing from the concept of the present application, and these all belong to the protection scope of the present application. Therefore, the protection scope of the present application shall be subject to the attached claims.
Claims
1. A mineral water machine control method, characterized in that: The method comprises: Obtaining identification information of a communication device; the communication device is a device carried by a water user; Confirming a target object file from an object file library based on the identification information; the object file library includes a plurality of sub-files, and the sub-files represent the corresponding relationship between the water-using object and the water demand; Based on the target object profile, the mineralized water machine is controlled to output mineralized water with a corresponding mineral concentration.
2. The method according to claim 1, characterized in that Before confirming the target object archive from the object archive based on the identification information, the method further includes: Establishing each sub-file based on different communication devices, and recording the water demand in the historical water demand that matches each of the communication devices into each of the sub-files; The water intake preference corresponding to each of the communication devices is determined according to the water demand in each of the sub-files, and is entered into each of the sub-files accordingly to obtain the object archive.
3. The method according to claim 1, characterized in that Before controlling the mineralized water machine to output mineralized water having a corresponding mineral concentration based on the target object profile, the method further includes: According to the target object profile, a preferred working mode is determined from the working modes of the mineral water machine, and a push prompt is given through the display device of the mineral water machine.
4. The method according to claim 1, characterized in that: Before controlling the mineralized water machine to output mineralized water having a corresponding mineral concentration based on the target object profile, the method further includes: Obtaining liquid level information of the water storage tank of the mineral water machine; When the liquid level information is lower than a low liquid level threshold, the mineralization bin of the mineralized water machine is controlled to input raw mineralized water into the water storage tank; and the mineralization bin is in communication with the water storage tank.
5. The method according to claim 4, characterized in that After obtaining the liquid level information of the water storage tank of the mineral water machine, the method further includes: When the liquid level information is lower than the medium liquid level threshold, a set volume of pure water is input into the mineralization tank; When the immersion time of the pure water reaches a preset immersion threshold, the mineralization bin is controlled to input the original mineralized water into the water storage tank until the liquid level information triggers a high liquid level threshold.
6. The method according to claim 5, characterized in that When the soaking time of the pure water reaches a preset soaking threshold, the mineralization bin is controlled to input the original mineralized water into the water storage tank until the liquid level information triggers a high liquid level threshold, and the method further includes: A preset water concentration for a current time period is determined according to the object archive, and a corresponding preset soaking threshold is determined based on the preset water concentration.
7. The method according to any one of claims 4 to 6, characterized in that: The method further comprises: Recording the water flow rate output from the mineralization bin; When the water flow rate output by the mineralization bin is greater than the preset water flow rate, the mineralization water machine is controlled to generate a prompt message.
8. The method according to claim 1, characterized in that The step of controlling the mineralized water machine to output mineralized water having a corresponding mineral concentration based on the target object profile includes: determining a target concentration of mineralized water based on the target object profile; The working state of the water outlet switch of the mineralized water machine is controlled according to the target concentration so that the mineralized water machine outputs mineralized water of the target concentration; the water outlet switch is respectively arranged in the water storage tank of the mineralized water machine and the pure water output pipeline of the mineralized water machine.
9. A mineral water machine control device, characterized in that: The device comprises: A response module, used to obtain identification information of a communication device; the communication device is a device carried by a water user; An analysis module, configured to confirm a target object file from an object file library based on the identification information; the object file library includes a plurality of sub-files, and the sub-files represent a corresponding relationship between a water-using object and a water demand; A control module is used to control the mineralized water machine to output mineralized water with a corresponding mineral concentration based on the target object file.
10. A mineralized water machine, characterized in that: The mineralized water machine comprises a pure water input pipeline, a pure water output pipeline, a mineralized water pipeline and a controller, wherein the pure water input pipeline is connected to the pure water output pipeline and the mineralized water pipeline, and the controller is connected to the pure water input pipeline, the pure water output pipeline and the mineralized water pipeline; The pure water input pipeline is used to connect pure water, the mineralized water pipeline is used to generate mineralized water, and the controller is used to control the mineralized water pipeline and the pure water output pipeline to output mineralized water with different mineral concentrations based on the method described in any one of claims 1-8.
11. The mineralized water machine according to claim 10, characterized in that: The mineralized water pipeline includes a mineralization bin and a water storage tank. The mineralization bin is connected to the water storage tank and the pure water input pipeline, and the water storage tank is connected to the controller.
12. The mineralized water machine according to claim 11, characterized in that: The mineralized water pipeline also includes a heating element arranged between the pure water input pipeline and the mineralization bin.
13. The mineralized water machine according to claim 11, characterized in that: The mineralized water pipeline also includes a flow meter arranged between the mineralization bin and the water storage tank.
14. A computer device comprising a memory and a processor, wherein the memory stores a computer program, wherein: When the processor executes the computer program, the steps of the method according to any one of claims 1 to 8 are implemented.
15. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the steps of the method according to any one of claims 1 to 8 are implemented.
Citation Information
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