Mineralization apparatus control system, method, device, and mineralization apparatus
By monitoring the water flow parameters of the mineralization equipment and switching the mineralization mode, the mineral water generation process can be precisely controlled, solving the problem that the mineralization module cannot stably produce mineral water of a fixed concentration. This achieves the generation of mineral water of a stable concentration and improves the user experience.
Patent Information
- Application Number
- CN202411326863.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-11-28
- Estimated Expiration
- 2044-09-23
AI Technical Summary
The mineralization module in existing water dispenser equipment cannot stably produce mineral water of a fixed concentration. The different settling time of the mineralization material leads to large fluctuations in mineral concentration.
The mineralization equipment control system, including control components, flow components, heating components, valve body components, and power components, monitors the water flow parameters of the mineralization chamber and switches between flow mineralization mode and extraction mineralization mode based on the water flow parameters to precisely control the mineral water generation process.
This technology enables the stable production of mineral water with a fixed concentration even after prolonged use of the mineralization equipment, thus improving the user experience.
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Figure CN119257448B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of water making equipment, in particular to a mineralization equipment control system, method and device, and mineralization equipment. BACKGROUND
[0002] With the increasing improvement of living standards, drinking water health problems are widely concerned. The mainstream market often uses reverse osmosis filtering devices on water dispenser equipment to filter various impurities in water to obtain pure water, thereby ensuring drinking water safety. However, the reverse osmosis filtering device filters the beneficial minerals in water while filtering harmful substances.
[0003] The mineralization module in the existing water dispenser equipment uses mineralization materials to soak with water to obtain mineral water. However, the concentration of minerals extracted by the mineralization materials varies greatly when the mineralization materials are left to stand for different periods of time, and the mineralization module cannot stably produce mineral water with a fixed concentration. SUMMARY
[0004] Therefore, it is necessary to provide a mineralization equipment control system, method and device, and mineralization equipment capable of accurately and stably producing mineral water with a certain concentration according to the service life of a filter element.
[0005] In a first aspect, the present application provides a mineralization equipment control system, which comprises a control component, a flow component, a heating component, a first valve body component, a second valve body component, a first power component and a second power component, wherein the control component is connected to the flow component, the heating component, the first valve body component, the second valve body component, the first power component and the second power component respectively; the mineralization equipment comprises a mineralization bin and a water storage tank;
[0006] The water inlet of the mineralization bin is connected to a preset water inlet pipeline through the first valve body component, the heating component and the first power component, the water outlet of the mineralization bin is connected to the water inlet of the water storage tank through the second valve body component and the second power component, and the water outlet of the water storage tank is connected to a preset water outlet pipeline;
[0007] The flow component is arranged at the water inlet or water outlet of the mineralization bin, and the flow component is used to record the water passing amount parameter of the mineralization bin;
[0008] The control component is used to obtain the water passing amount parameter recorded by the flow component, determine a target mineralization mode according to the water passing amount parameter, and control the heating component, the first valve body component, the second valve body component, the first power component and the second power component to perform a mineral water generation step according to the target mineralization mode.
[0009] In one of the embodiments, the control component is configured to determine the target mineralization mode as a flow-through mineralization mode if the water volume parameter is less than a first water volume threshold value.
[0010] If the water volume parameter is greater than or equal to the first water volume threshold value, the control component is configured to determine the target mineralization mode as an extraction mineralization mode.
[0011] In one of the embodiments, if the target mineralization mode is the flow-through mineralization mode, the control component is configured to control the first valve body component and the first power component to be opened, and the second valve body component and the second power component to be closed, so as to access a preset water body from a preset water inlet pipeline, heat the water body to a preset temperature by the heating component, and then sequentially enter the mineralization bin and the water storage tank.
[0012] In one of the embodiments, if the target mineralization mode is the extraction mineralization mode, the control component is configured to control the first valve body component and the first power component to be opened, and the second valve body component and the second power component to be closed, so as to access a preset water body from a preset water inlet pipeline, heat the water body to a target extraction temperature by the heating component, and then enter the mineralization bin.
[0013] If the liquid level information in the water storage tank is greater than or equal to an intermediate liquid level threshold value, the control component is configured to control the first valve body component and the first power component to be closed, and the second valve body component and the second power component to be opened, so as to transfer the mineral water in the mineralization bin to the water storage tank.
[0014] If the opening duration of the second power component is greater than or equal to a preset time, the control component is configured to control the second valve body component and the second power component to be closed, and determine whether the liquid level information in the water storage tank is greater than or equal to a high liquid level threshold value.
[0015] In one of the embodiments, if the target mineralization mode is the extraction mineralization mode, the control component is configured to control the first valve body component and the first power component to be opened, and the second valve body component and the second power component to be closed, so as to access a preset water body from a preset water inlet pipeline, heat the water body to a target extraction temperature by the heating component, and then enter the mineralization bin.
[0016] If the water volume of the first power component is greater than or equal to a preset water volume threshold value, the control component is configured to control the first valve body component and the first power component to be closed, so as to perform hot extraction on the mineralization bin to obtain mineral water with a preset concentration.
[0017] If the time for the mineralization bin to perform hot extraction is greater than or equal to a target extraction time, the control component is configured to control the second valve body component and the second power component to be opened, so as to transfer the mineral water in the mineralization bin to the water storage tank.
[0018] If the opening duration of the second power component is greater than or equal to a preset time, the control component is configured to control the second valve body component and the second power component to be closed, and determine whether the liquid level information in the water storage tank is greater than or equal to a high liquid level threshold value.
[0019] If the opening duration of the second power component is greater than or equal to a preset time, the control component is configured to control the second valve body component and the second power component to be closed, and determine whether the liquid level information in the water storage tank is greater than or equal to a high liquid level threshold value.
[0020] If the liquid level information in the water storage tank is less than the high liquid level threshold, the control is switched to control the first valve body assembly and the first power assembly to open, and the second valve body assembly and the second power assembly to close, to access the preset water body from the preset water inlet pipeline, and after heating to the target extraction temperature by the heating assembly, the water body enters the mineralization bin;
[0021] If the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold, the mineral water generation step is completed.
[0022] In one of the embodiments, if the target mineralization mode is an extraction mineralization mode;
[0023] The control assembly is configured to determine a target extraction parameter according to the water passing amount parameter, wherein the target extraction parameter includes a target extraction time and a target extraction temperature;
[0024] The heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly, and the second power assembly are controlled according to the target extraction parameter to perform the mineral water generation step.
[0025] In one of the embodiments, the control assembly is configured to, if the water passing amount parameter increases, extend the target extraction time according to a corresponding relationship between the increase amount of the water passing amount parameter and the extension time of the target extraction time;
[0026] The target extraction temperature is increased according to a corresponding relationship between the increase amount of the water passing amount parameter and the increase temperature of the target extraction temperature.
[0027] In one of the embodiments, the system further includes an alarm assembly;
[0028] The control assembly is configured to control the alarm assembly to alarm when the water passing amount parameter is greater than or equal to an alarm water passing amount threshold, to prompt the user to replace the filter element.
[0029] In one of the embodiments, the water storage tank is configured with a first liquid level detector, a second liquid level detector, and a third liquid level detector, and the first liquid level detector, the second liquid level detector, and the second liquid level detector are connected to the control assembly;
[0030] The first liquid level detector is configured to send a high liquid level trigger signal to the control assembly when the liquid level information in the water storage tank is greater than or equal to a high liquid level threshold;
[0031] The second liquid level detector is configured to send a low liquid level trigger signal to the control assembly when the liquid level information in the water storage tank is less than or equal to a low liquid level threshold;
[0032] The third liquid level detector is configured to send an intermediate liquid level trigger signal to the control assembly when the liquid level information in the water storage tank is greater than or equal to an intermediate liquid level threshold value, wherein the high liquid level threshold value is greater than the intermediate liquid level threshold value, and the intermediate liquid level threshold value is greater than the low liquid level threshold value.
[0033] In one of the embodiments, the control assembly is configured to stop performing the mineral water generation step if the high liquid level trigger signal sent by the first liquid level detector is received.
[0034] The control assembly is configured to start performing the mineral water generation step if the low liquid level trigger signal sent by the third liquid level detector is received.
[0035] In one of the embodiments, the mineralization bin comprises a mineralization filter element and a membrane shell, and an atmospheric passage is arranged on the membrane shell to balance the pressure inside the mineralization bin with the external atmospheric pressure.
[0036] In a second aspect, the application further provides a mineralization device control method applied to the mineralization device control system of the first aspect, comprising:
[0037] Obtaining the water flow parameter recorded by the flow assembly;
[0038] Determining a target mineralization mode according to the water flow parameter;
[0039] Controlling the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly and the second power assembly to perform the mineral water generation step according to the target mineralization mode.
[0040] In one of the embodiments, the determining of the target mineralization mode according to the water flow parameter comprises:
[0041] If the water flow parameter is less than a first water flow threshold value, determining that the target mineralization mode is a flow-through mineralization mode;
[0042] If the water flow parameter is greater than or equal to the first water flow threshold value, determining that the target mineralization mode is an extraction mineralization mode.
[0043] In one of the embodiments, if the target mineralization mode is the flow-through mineralization mode, the controlling of the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly and the second power assembly to perform the mineral water generation step according to the target mineralization mode comprises:
[0044] Controlling the first valve body assembly, the second valve body assembly and the first power assembly to be turned on, and the second power assembly to be turned off, so as to access the preset water body from the preset water inlet pipeline, heat the preset water body to a preset temperature by the heating assembly, and then sequentially enter the mineralization bin and the water storage tank;
[0045] If the liquid level information in the water storage tank is greater than or equal to the intermediate liquid level threshold, the control assembly controls the first valve body assembly and the first power assembly to be closed, controls the second valve body assembly and the second power assembly to be opened, so that the mineral water in the mineralization bin is transferred to the water storage tank;
[0046] When the opening duration of the second power assembly is greater than or equal to the preset time, the second valve body assembly and the second power assembly are controlled to be closed, and the mineral water generation step is completed.
[0047] In one of the embodiments, if the target mineralization mode is an extraction mineralization mode, the control of the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly and the second power assembly to execute the mineral water generation step according to the target mineralization mode includes:
[0048] The first valve body assembly and the first power assembly are controlled to be opened, and the second valve body assembly and the second power assembly are controlled to be closed, so that the preset water body is accessed from the preset water inlet pipeline, heated to the target extraction temperature by the heating assembly, and then enters the mineralization bin;
[0049] When the water pumping amount of the first power assembly is greater than or equal to the preset water amount threshold, the first valve body assembly and the first power assembly are controlled to be closed, so that the mineralization bin performs hot extraction to obtain mineral water with a preset concentration;
[0050] When the time for the mineralization bin to perform hot extraction is greater than or equal to the target extraction time, the second valve body assembly and the second power assembly are controlled to be opened, so that the mineral water in the mineralization bin is transferred to the water storage tank;
[0051] When the opening duration of the second power assembly is greater than or equal to the preset time, the second valve body assembly and the second power assembly are controlled to be closed, and it is judged whether the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold;
[0052] If the liquid level information in the water storage tank is less than the high liquid level threshold, the first valve body assembly and the first power assembly are controlled to be opened, and the second valve body assembly and the second power assembly are controlled to be closed, so that the preset water body is accessed from the preset water inlet pipeline, heated to the target extraction temperature by the heating assembly, and then enters the mineralization bin;
[0053] If the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold, the mineral water generation step is completed.
[0054] In one of the embodiments, if the target mineralization mode is an extraction mineralization mode, the mineral water generation step performed by the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly and the second power assembly according to the target mineralization mode comprises:
[0055] determining a target extraction parameter according to the water passing parameter, wherein the target extraction parameter comprises a target extraction time and a target extraction temperature;
[0056] controlling the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly and the second power assembly to perform the mineral water generation step according to the target extraction parameter.
[0057] In one of the embodiments, the determining of the target extraction parameter according to the water passing parameter comprises:
[0058] if the water passing parameter increases, extending the target extraction time according to the corresponding relationship between the increase of the water passing parameter and the extension of the target extraction time;
[0059] increasing the target extraction temperature according to the corresponding relationship between the increase of the water passing parameter and the increase of the target extraction temperature.
[0060] In a third aspect, the present application further provides a mineralization equipment control device applied to the mineralization equipment control system of the first aspect, comprising:
[0061] an acquisition module configured to acquire a water passing parameter recorded by the flow assembly;
[0062] a determination module configured to determine a target mineralization mode according to the water passing parameter;
[0063] an extraction module configured to control the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly and the second power assembly to perform a mineral water generation step according to the target mineralization mode.
[0064] In a fourth aspect, the present application further provides a mineralization equipment comprising the mineralization equipment control system of the first aspect.
[0065] In a fifth aspect, the present application further provides a computer equipment comprising a memory and a processor, wherein the memory stores a computer program, and the processor implements the steps of the mineralization equipment control method of the second aspect when executing the computer program.
[0066] In a sixth aspect, the present application further provides a computer readable storage medium storing a computer program, wherein the computer program is executed by a processor to implement the steps of the mineralization equipment control method of the second aspect.
[0067] In a seventh aspect, the present application also provides a computer program product, comprising a computer program which, when executed by a processor, implements the steps of the mineralization equipment control method of the second aspect.
[0068] To sum up, the present application provides a mineralization equipment control system, method, device and mineralization equipment, comprising: a control component, a flow component, a heating component, a first valve body component, a second valve body component, a first power component and a second power component; the control component is used to obtain the water passing amount parameter recorded by the flow component; determine the target mineralization mode according to the water passing amount parameter; control the heating component, the first valve body component, the second valve body component, the first power component and the second power component to execute the mineral substance water generation step according to the target mineralization mode. The present application can keep the mineralization equipment outputting stable concentration of mineral substance water and improve the use experience of the mineralization equipment by monitoring the water passing amount of the mineralization bin and self-adaptively adjusting the extraction mode of the mineral substance water under the condition of long-time use of the mineralization equipment. BRIEF DESCRIPTION OF DRAWINGS
[0069] Figure 1 It is a structural block diagram of the mineralization equipment in one embodiment;
[0070] Figure 2 It is a structural block diagram of the mineralization equipment control system in one embodiment;
[0071] Figure 3 It is a structural schematic diagram of the mineralization equipment control system in one embodiment;
[0072] Figure 4 It is a structural schematic diagram of the mineralization equipment control system in another embodiment;
[0073] Figure 5 It is a flow schematic diagram of the mineralization equipment control method in one embodiment;
[0074] Figure 6 It is a step flow schematic diagram of determining the target mineralization mode in one embodiment;
[0075] Figure 7 It is a step flow schematic diagram of executing the mineral substance water generation step in one embodiment;
[0076] Figure 8 It is a step flow schematic diagram of executing the mineral substance water generation step in another embodiment;
[0077] Figure 9 It is a step flow schematic diagram of determining the target extraction parameter in one embodiment;
[0078] Figure 10Flow chart of steps for determining target extraction parameters in another embodiment;
[0079] Figure 11 Structure block diagram of mineralization device control device in an embodiment;
[0080] Figure 12 Internal structure diagram of computer device in an embodiment.
[0081] Summary of reference signs:
[0082] Mineralization device control system-100; control component-110; flow component-120; heating component-130; first valve body component-140; second valve body component-150; first power component-160; second power component-170; alarm component-180;
[0083] Mineralization bin-200; mineralization filter core-210; membrane shell-220; atmospheric through hole-230; heat preservation layer-240;
[0084] Water storage tank-300; first liquid level detector-310; second liquid level detector-320; third liquid level detector-330. DETAILED DESCRIPTION
[0085] In order to make the purposes, technical solutions and advantages of the present application clearer, the present application is further described in detail below in combination with the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and do not limit the present application.
[0086] The mineralization device provided by the embodiments of the present application, such as Figure 1 As shown in the figure, the mineralization device includes a mineralization device control system 100, a mineralization bin 200 and a water storage tank 300. The mineralization device control system 100 is arranged between the water body pipelines of the mineralization device, connecting the mineralization bin 200 and the water storage tank 300, so as to realize the following functions: guiding the water body into the mineralization bin 200, extracting a certain concentration of mineral substances, generating corresponding mineral water, and storing the mineral water into the water storage tank 300, and providing the user with mineral water with a preset concentration when the user takes water.
[0087] In specific embodiments, the mineralization bin 200 comprises a mineralization filter 210 and a membrane shell 220, and the membrane shell 220 is provided with an atmospheric hole 230 for balancing the pressure inside the mineralization bin 200 with the external atmospheric pressure. The mineralization filter 210 can be in the form of a compressed mineralization material and carbon rod, a mixture of mineralization material and activated carbon, or a mineralization material and activated carbon ceramic ball. In specific embodiments, the mineralization material can be a certain amount of naturally selected and treated ore material, which is used to release some mineral elements required by the human body into the water, such as silicic acid, strontium, calcium, magnesium, potassium, zinc, and other elements same as the components of natural mineral water.
[0088] The membrane shell 220 can be composed of stainless steel material or high-temperature resistant plastic. In specific embodiments, the membrane shell 220 can also be attached with a heat preservation layer 240 made of heat preservation material. The mineralization filter 210 is arranged inside the cavity formed by the membrane shell 220, and an atmospheric hole 230 is arranged on the membrane shell 220 for connecting the atmosphere, which can effectively balance the pressure inside the cavity of the mineralization bin 200 with the external atmospheric pressure, so that the pressure inside the cavity is consistent with the external atmospheric pressure. In actual application, the arrangement of the atmospheric hole 230 can effectively avoid the negative pressure in the internal cavity of the mineralization bin 200, so that the soaking liquid in the mineralization bin 200 is more easily extracted to the water storage tank 300, effectively improving the solid-liquid separation effect in the mineralization bin 200, and making the solid-liquid separation more thorough.
[0089] In this example, the water storage tank 300 is used to store the mineral water generated by the mineralization bin 200, and the water storage tank 300 can be composed of stainless steel material or high-temperature resistant plastic. It should be noted that the specific composition materials of the membrane shell 220 and the water storage tank 300 in this embodiment can be adaptively configured according to the actual application scene. The water storage tank 300 is provided with at least three liquid level detectors, including a high liquid level detector, an intermediate liquid level detector, and a low liquid level detector. The high liquid level detector is arranged at a position closer to the water inlet of the water storage tank 300, i.e., at a position higher than the bottom plane in the internal cavity of the water storage tank 300. The low liquid level detector is arranged at a position closer to the water outlet of the water storage tank 300, i.e., at a position lower than the bottom plane in the internal cavity of the water storage tank 300. The intermediate liquid level detector is arranged below the high liquid level detector at a fixed distance position from the high liquid level detector, wherein the fixed distance needs to be determined according to the storage volume of the water in the mineralization bin 200. In specific embodiments, the interval distance between the high liquid level detector and the intermediate liquid level detector corresponds to a volume in the water storage tank 300, which is equal to the volume of the soaking liquid stored in the mineralization bin 200.
[0090] In specific embodiments, the liquid level detector can also be referred to as a liquid level switch. When the high liquid level detector is triggered, it indicates that the water storage tank 300 is full of mineral water. When the low liquid level detector is triggered, it indicates that the mineral water content in the water storage tank 300 is insufficient to provide mineral water to the user immediately. When the medium liquid level detector is triggered, it indicates that the water storage tank 300 is away from being full of mineral water, and the corresponding mineralization bin 200 still has the volume to store the soaking liquid.
[0091] To solve the problem that the mineralization water machine in the prior art cannot provide stable concentration mineral water to the user in a long working state, the present embodiment provides a mineralization equipment control system 100, which can monitor the state of the mineralization filter element 210 in the mineralization bin 200 in the mineralization equipment in real time, and effectively improve the stability of the extraction concentration of mineral water by adaptively changing the mineral water extraction logic following the service life of the mineralization filter element 210.
[0092] In one embodiment, referring to Figure 2 , a mineralization equipment control system 100 is provided, which is applied to a mineralization equipment as shown in Figure 1 . The specific component structure of the mineralization equipment can refer to the description in the foregoing embodiments, which will not be repeated here.
[0093] As shown in Figure 2 , the mineralization equipment control system 100 comprises a control component 110, a flow component 120, a heating component 130, a first valve body component 140, a second valve body component 150, a first power component 160, and a second power component 170, wherein the control component 110 is connected to the flow component 120, the heating component 130, the first valve body component 140, the second valve body component 150, the first power component 160, and the second power component 170, respectively.
[0094] The water inlet of the mineralization bin 200 is connected to a preset water inlet pipeline through the first valve body component 140, the heating component 130, and the first power component 160, the water outlet of the mineralization bin 200 is connected to the water inlet of the water storage tank 300 through the second valve body component 150 and the second power component 170, and the water outlet of the water storage tank 300 is connected to a preset water outlet pipeline.
[0095] The flow component 120 is arranged at the water inlet or the water outlet of the mineralization bin 200, and the flow component 120 is used to record the water passing amount parameter of the mineralization bin 200.
[0096] The control component 110 is used to acquire the water passing amount parameter recorded by the flow component 120, determine a target mineralization time according to the water passing amount parameter, and control the heating component 130, the first valve body component 140, the second valve body component 150, the first power component 160, and the second power component 170 to execute a mineral water generation step according to the target mineralization mode.
[0097] In this embodiment, the control component 110 includes chips or circuits such as controllers, processors, or microprocessors capable of generating and distributing control commands. This embodiment does not limit the specific type of the control component 110; it can be adaptively configured according to the needs of the actual application scenario. The control component 110 is used to acquire the flow rate parameters collected by the flow component 120 and send corresponding control commands to the valve body component or power component to achieve the generation of mineral water.
[0098] The flow component 120 includes devices such as flow meters or pulse counters that can be used to monitor the flow rate of water. For example... Figure 3 and Figure 4 As shown, in this embodiment, the flow component 120 can be positioned between the inlet of the mineralization chamber 200 and the valve body assembly, or it can be positioned at any location after the outlet of the mineralization chamber 200, such as between the outlet of the mineralization chamber 200 and the valve body assembly, or between the valve body assembly and the power assembly after the outlet of the mineralization chamber 200. The positioning of the flow component 120 enables effective monitoring of the water flow rate through the mineralization filter element 210 of the mineralization chamber 200. In this embodiment, the flow rate parameter is the total water flow rate, and the flow rate parameter of the mineralization chamber 200 is the total water flow rate passing through the mineralization chamber 200.
[0099] The heating component 130 is disposed between the first valve body component 140 and the first power component 160. In this embodiment, the control component 110 is used to send a target heating command to the heating component 130. The target heating command includes a preset temperature, which can be between 40℃ and 100℃, and the specific setting of the preset temperature can be adaptively replaced. The heating component 130 can effectively heat the water entering the mineralization chamber 200. Since the dissolution rate of mineral materials in water is mainly determined by temperature and dissolution time, in order to accelerate the dissolution rate of mineral materials in water, such as the dissolution rate of metasilicic acid in water, this embodiment heats the water entering the mineralization chamber 200 to a preset temperature, which can more accurately achieve the concentration control of mineral water. The step of using heated water for mineral water extraction in this embodiment can also be called thermal extraction.
[0100] Both the first valve body assembly 140 and the second valve body assembly 150 include switching components such as solenoid valves that can be used to control the on / off state of the water pipeline. In this embodiment, the first valve body assembly 140 is positioned before the inlet of the mineralization tank 200, and the second valve body assembly 150 is positioned after the outlet of the mineralization tank 200, for realizing the control of water inflow and outflow from the mineralization tank 200. In this embodiment, the water flow state includes a conducting state and a closed state. When the corresponding valve body assembly is open, the water pipeline is in a conducting state, and water can flow through the pipe to the corresponding device. When the corresponding valve body assembly is closed, the water pipeline is in a closed state, and water can no longer flow through the pipe.
[0101] The first power assembly 160 and the second power assembly 170 include pump bodies that can provide power to the water body, such as self-suction pumps. The first power assembly 160 in this embodiment can achieve control of the preset water body flowing to the mineralization bin 200 via the heating assembly 130, the first valve body assembly 140, and the flow assembly 120 in sequence, and can also achieve control of the preset water body flowing to the water storage tank 300 via the heating assembly 130, the first valve body assembly 140, the flow assembly 120, the mineralization bin 200, the second valve body assembly 150, and the second power assembly 170 in sequence. The second power assembly 170 can achieve control of the water body in the mineralization bin 200 flowing to the water storage tank 300 via the second valve body assembly 150 and the second power assembly 170 in sequence.
[0102] In this embodiment, when the mineralization device generates mineral water, the control assembly 110 in this embodiment includes two mineral water generation modes, i.e., two target mineralization modes, which are overflow mineralization mode and extraction mineralization mode.
[0103] In the overflow mineralization mode, the control assembly 110 can first control the valve body assemblies and power assemblies except the second power assembly 170 to be opened, so that the water body directly enters the water storage tank 300 through the flow assembly 120 and the mineralization bin 200, and when the liquid level in the water storage tank 300 is greater than or equal to the intermediate liquid level threshold, the valve body assemblies and power assemblies except the second power assembly 170 are closed, and the second power assembly 170 is opened to transfer the remaining mineral water in the mineralization bin 200 to the mineralization bin 200.
[0104] In the extraction mineralization mode, the control assembly 110 can first control the corresponding power assemblies and valve body assemblies to be opened, so that the water flow enters the mineralization bin 200 through the flow assembly 120, and the extraction in the mineralization bin 200 is completed for a preset time. Then the corresponding valve body assemblies and power assemblies are controlled, so that the mineral water of a certain concentration generated in the mineralization bin 200 is transferred to the water storage tank 300. The above extraction control and mineral water transfer control are repeated until the liquid level of the mineral water in the water storage tank 300 is greater than or equal to the high liquid level threshold.
[0105] It should be noted that the volume of the water storage tank 300 in this embodiment is greater than the volume of the mineralization bin 200, and the volume of the water storage tank 300 can be several times the volume of the mineralization bin 200, which can be configured according to actual application scenarios.
[0106] Since the mineralization filter element 210 in the mineralization bin 200 has a corresponding service life, in the case of long-term use of the mineralization device, the mineralization filter element 210 will be consumed, causing the concentration of the mineral water generated in the mineralization bin 200 to be unstable.
[0107] The control component 110 in this embodiment obtains the total amount of water flowing through the mineralization bin 200 by first obtaining the water passing amount parameter collected by the flow component 120 before performing each start of the mineral water generation step. It should be noted that the water passing amount collected by the flow component 120 is equivalent to the total amount of water flowing through the mineralization bin 200. Then, the target mineralization mode corresponding to the mineral water generation step is determined according to the water passing amount parameter.
[0108] In this embodiment, when the water passing amount parameter collected by the flow component 120 is less than the first water passing amount threshold, it indicates that the use time of the mineralization device is short, and the mineralization filter element 210 has not been consumed. At this time, the mineralization filter element 210 can precipitate more minerals in a short time, and the over-flow mineralization mode can be used to directly generate mineral water of the required concentration. The control component 110 can use the over-flow mineralization mode to generate mineral water more quickly.
[0109] When the water passing amount parameter collected by the flow component 120 is greater than or equal to the first water passing amount threshold, it indicates that the use time of the mineralization device has started to consume the mineralization filter element 210. At this time, the time for the mineralization filter element 210 to precipitate minerals is correspondingly lengthened, and the control component 110 starts to use the extraction mineralization mode to generate mineral water of the required concentration, so as to more stably generate mineral water of the required concentration.
[0110] In summary, the mineralization device control system 100 provided in this embodiment can monitor the service life of the mineralization filter element 210 in the mineralization bin 200 by monitoring the water flow into the mineralization bin 200 in the system. Before the mineralization filter element 210 is consumed, the over-flow mineralization mode is used to generate mineral water more quickly, so as to more quickly provide mineral water of the required concentration for the user. After the mineralization filter element 210 is consumed to a certain extent, the extraction mineralization mode is used to generate mineral water, which can more accurately control the concentration of minerals in the mineral water, so as to more stably provide mineral water of the required concentration for the user. In addition, the heating component 130 is configured in the system in this embodiment, and the preset water input into the mineralization bin 200 is heated when generating mineral water, so as to improve the generation efficiency of the mineral water.
[0111] In one embodiment, the control component 110 is configured to determine the target mineralization mode as the over-flow mineralization mode if the water passing amount parameter is less than the first water passing amount threshold.
[0112] If the water passing amount parameter is greater than or equal to the first water passing amount threshold, the target mineralization mode is determined as the extraction mineralization mode.
[0113] In this embodiment, the first water passing amount threshold can be set to 100 liters (L) or other values, and the first water passing amount threshold can be determined based on device parameters such as the material of the mineralization filter element 210 and the size of the mineralization bin 200 in the actual application scenario.
[0114] The control component 110 determines the target mineralization mode by judging whether the water passing amount parameter collected by the flow component 120 is greater than or equal to the first water passing amount threshold before performing the mineral water generation step. It should be noted that after the target mineralization mode is changed, the control component 110 will change the control logic for the first valve body component 140, the second valve body component 150, the first power component 160 and the second power component 170. The control component 110 will not change the mineralization mode before the previous mineral water generation step is completed.
[0115] It should be noted that after each replacement of the mineralization filter core 210, the control component 110 will reset the water passing amount parameter counted by the flow component 120 to accurately record the service life of the mineralization filter core 210.
[0116] In one embodiment, as shown in FIG. 1, if the target mineralization mode is the flow-through mineralization mode, the complete execution process of the mineral water generation step is as follows: Figure 3
[0117] The control component 110 controls the first valve body component 140, the second valve body component 150 and the first power component 160 to be opened, and the second power component 170 to be closed, so as to access the preset water body from the preset water inlet pipeline, heat the preset water body to the preset temperature by the heating component 130, and then sequentially enter the mineralization bin 200 and the water storage tank 300.
[0118] If the liquid level information in the water storage tank 300 is greater than or equal to the intermediate liquid level threshold, the control component 110 controls the first valve body component 140 and the first power component 160 to be closed, and controls the second valve body component 150 and the second power component 170 to be opened, so as to transfer the mineral water in the mineralization bin 200 to the water storage tank 300.
[0119] When the opening duration of the second power component 170 is greater than or equal to the preset time, the second valve body component 150 and the second power component 170 are controlled to be closed, and the mineral water generation step is completed.
[0120] In this embodiment, the preset water body can be pure water or distilled water with low mineral concentration, and the preset water inlet pipeline can be connected to a water purification device. It should be noted that the specific setting position of the preset water inlet pipeline is not limited in this embodiment, and can be adaptively configured according to the actual application scene.
[0121] In this embodiment, the temperature of the preset water body heated by the heating component 130 is maintained at the preset temperature, and the preset temperature can be any value in the range of 40-100°C.
[0122] In this embodiment, the difference between the intermediate liquid level threshold and the high liquid level threshold corresponds to the volume of the water storage tank 300 which is equal to the volume of the water body that can be soaked in the mineralization filter core 210 in the mineralization bin 200.
[0123] In a specific embodiment, the specific value of the intermediate liquid level threshold can be adaptively set according to the actual application scenario. When the control component 110 closes the first valve body component 140 and the first power component 160, and opens the second valve body component 150 and the second power component 170 to transfer the mineral water in the mineralization chamber 200 to the water storage tank 300, the mineral water in the water storage tank 300 will be directly greater than or equal to the high liquid level threshold.
[0124] In this embodiment, the preset time for the second power component 170 to be turned on can be configured to be 10-60 seconds (s) to fully flush away the soaking water in the mineralization chamber 200 and prevent the residual water in the mineralization chamber 200 from causing excessive consumption of the mineralization filter element 210.
[0125] In one embodiment, such as Figure 3 As shown, if the target mineralization mode is extraction mineralization mode, the complete execution flow of the mineral water generation step is as follows:
[0126] The control component 110 controls the first valve body component 140 and the first power component 160 to open, and the second valve body component 150 and the second power component 170 to close, so that the preset water body is connected from the preset water inlet pipe, heated to the target extraction temperature by the heating component 130 and then enters the mineralization chamber 200.
[0127] When the pumping volume of the first power component 160 is greater than or equal to the preset water volume threshold, the first valve body component 140 and the first power component 160 are controlled to close, so that the mineralization chamber 200 can perform thermal extraction to obtain mineral water of a preset concentration.
[0128] When the thermal extraction time in the mineralization chamber 200 is greater than or equal to the target extraction time, the second valve assembly 150 and the second power assembly 170 are opened to transfer the mineral water in the mineralization chamber 200 to the water storage tank 300.
[0129] When the opening duration of the second power component 170 is greater than or equal to a preset time, the second valve body component 150 and the second power component 170 are controlled to close, and it is determined whether the liquid level information in the water storage tank 300 is greater than or equal to the high liquid level threshold.
[0130] If the liquid level in the water storage tank 300 is less than the high liquid level threshold, the system will switch to control the opening of the first valve body assembly 140 and the first power assembly 160, and the closing of the second valve body assembly 150 and the second power assembly 170, so that the preset water body can be connected from the preset water inlet pipe, heated to the target extraction temperature by the heating assembly 130, and then enter the mineralization chamber 200.
[0131] If the liquid level in the water storage tank 300 is greater than or equal to the high liquid level threshold, the mineral water generation step is completed.
[0132] In the present embodiment, the mineral water generating step is divided into two parts, namely extraction part and transfer part.
[0133] In the execution of the extraction part, the control component 110 controls the first valve body component 140 and the first power component 160 to open, and the second valve body component 150 and the second power component 170 to close according to the low liquid level signal. The first power component 160 causes the preset water body to flow to the heating component, and the preset water body is heated by the heating component to the target extraction temperature (40-100°C). After the hot water is heated to the target extraction temperature, the hot water enters the mineralization bin 200 through the first valve body component 140 and the flow component 120. When the hot water injected into the mineralization bin 200 reaches the set volume (180-1000ml), the first power component 160 detects and the control component 110 controls the first valve body component 140 and the first power component 160 to close. It should be noted that the water flow of the first power component 160 at this time is the same as the cavity volume in the internal cavity of the mineralization bin 200. The mineralization bin 200 performs hot extraction for the target extraction time (15s-30min) to obtain mineral water with a certain concentration.
[0134] In the execution of the transfer part, after the mineralization bin 200 performs hot extraction for the target extraction time, it is confirmed that the hot extraction is completed. The control component 110 controls the first power component 160, the heating component and the first valve body component 140 to close, controls the second valve body component 150 and the second power component 170 to open, and the second power component 170 transfers the mineral water extracted from the mineralization bin 200 to the water storage tank 300. When the second power component 170 operates for a preset time (10s-60s), the control component 110 controls the second valve body component 150 and the second power component 170 to close. It should be noted that the operation time of the second power component 170 can be determined according to the cavity volume of the mineralization bin 200, and at the same time, the operation time of the second power component 170 should not be too long to avoid waste of function. When the transfer part is completed, if the control component 110 does not receive the high liquid level trigger signal, the extraction part and the transfer part are re-executed until the liquid level information in the water storage tank 300 is greater than or equal to the high liquid level threshold.
[0135] In one embodiment, if the target mineralization mode is the extraction mineralization mode, the control component 110 is configured to determine target extraction parameters according to the water passing amount parameter, wherein the target extraction parameters include target extraction time and target extraction temperature.
[0136] The heating component 130, the first valve body component 140, the second valve body component 150, the first power component 160 and the second power component 170 are controlled according to the target extraction parameters to execute the mineral water generating step.
[0137] In the embodiment, the control component 110 can determine the target extraction time and the target extraction temperature in the mineral water generating step in the extraction mineralization mode according to the water passing amount parameter.
[0138] The target extraction time and the target extraction temperature are both in a corresponding relationship with the water passing amount parameter. The greater the water passing amount parameter is, the greater the target extraction time is, and the greater the target extraction temperature is. In the case of determining the target extraction parameter based on the water passing amount parameter, the heating component 130 and the corresponding valve body component and power component are controlled to implement the corresponding mineral water generating step, which can effectively realize the association of the mineral water generating step and the service life of the mineralization filter core 210. Through the monitoring of the service life of the mineralization filter core 210 in the mineralization bin 200 and the real-time adjustment of the execution logic of the mineral water generating step according to the service life of the mineralization filter core 210, the stability of the mineral water generated by the mineralization equipment is greatly improved.
[0139] In one embodiment, the control component 110 is configured to, if the water passing amount parameter increases, extend the target extraction time according to a corresponding relationship between the increase amount of the water passing amount parameter and the extension time of the target extraction time.
[0140] The target extraction temperature is increased according to a corresponding relationship between the increase amount of the water passing amount parameter and the increase temperature of the target extraction temperature.
[0141] In specific embodiments, the corresponding relationship between the increase amount of the water passing amount parameter and the extension time of the target extraction time, and the corresponding relationship between the increase amount of the water passing amount parameter and the increase temperature of the target extraction temperature can be adaptively configured based on the needs of actual application scenarios.
[0142] For example, if the water passing amount parameter is 100L, the target extraction time can be set to be in the range of 15s-30min, and the target extraction temperature is set to be in the range of 40℃-100℃. If the water passing amount parameter is 200L, the target extraction time can be set to be in the range of 2-30min, and the target extraction temperature is set to be in the range of 55℃-100℃.
[0143] It should be noted that, in the embodiment, if the first water passing amount parameter corresponds to the first extraction time and the first extraction temperature, the second water passing amount parameter corresponds to the second extraction time and the second extraction temperature, and the first water passing amount parameter is less than the second water passing amount parameter, the first extraction temperature is less than the second extraction temperature, and the first extraction time is less than the second extraction time.
[0144] In a feasible embodiment, when the water passing amount parameter reaches a certain threshold node, the target extraction parameter is updated to update the mineral water extraction logic. For example, the threshold node can be 110L, 120L, 130L, etc.
[0145] In one embodiment, the mineralization device control system 100 further comprises an alarm component 180 connected with the control component 110.
[0146] The control component 110 is configured to control the alarm component 180 to alarm when the water passing amount parameter is greater than or equal to the alarm water passing amount threshold, so as to prompt the user to replace the filter element.
[0147] In the present embodiment, the alarm water passing amount threshold can be set to 500L, and the alarm water passing amount threshold can also be adaptively set according to the actual application scene. The alarm component 180 in the present embodiment can include a buzzer, a control panel, or a faucet ring lamp, and can be configured according to the specific type of the mineralization device in the actual application scene.
[0148] The control component 110 can control the alarm component 180 to directly perform buzzer alarming to prompt the user to replace the mineralization filter element 210 of the mineralization device. The control component 110 can also control the alarm component 180 to display prompt information on the display panel of the mineralization device that the filter element needs to be replaced. The present embodiment can effectively realize the life monitoring of the mineralization filter element 210 by cooperating with the alarm component 180 to alarm, and timely remind the user to replace when the mineralization filter element 210 is used for too long.
[0149] In one embodiment, as shown in Figure 3 and Figure 4 The water storage tank 300 is configured with a first liquid level detector 310, a second liquid level detector 320, and a third liquid level detector 330, and the first liquid level detector 310, the second liquid level detector 320, and the third liquid level detector 330 are all connected with the control component 110.
[0150] The first liquid level detector 310 is configured to send a high liquid level trigger signal to the control component 110 when the liquid level information in the water storage tank 300 is greater than or equal to a high liquid level threshold;
[0151] The second liquid level detector 320 is configured to send a low liquid level trigger signal to the control component 110 when the liquid level information in the water storage tank 300 is less than or equal to a low liquid level threshold;
[0152] The third liquid level detector 330 is configured to send an intermediate liquid level trigger signal to the control component 110 when the liquid level information in the water storage tank 300 is greater than or equal to an intermediate liquid level threshold, wherein the high liquid level threshold is greater than the intermediate liquid level threshold, and the intermediate liquid level threshold is greater than the low liquid level threshold.
[0153] In the present embodiment, the setting position of the first liquid level detector 310 corresponds to the high liquid level threshold, the setting position of the second liquid level detector 320 corresponds to the low liquid level threshold, and the setting position of the third liquid level detector 330 corresponds to the intermediate liquid level threshold.
[0154] In one embodiment, the control component 110 is configured to stop the mineral water generation step if a high liquid level trigger signal is received from the first liquid level detector 310.
[0155] The control component 110 is configured to start the mineral water generation step if a low liquid level trigger signal is received from the third liquid level detector 330.
[0156] In this embodiment, the control component 110 can start and stop the mineral water generation step according to the liquid level in the water storage tank 300. By arranging the first liquid level detector 310 and the second liquid level detector 320 in the water storage tank 300, the mineral water content in the water storage tank 300 can be effectively ensured to be greater than or equal to the preset liquid level threshold at all times, thereby providing mineral water for the user at any time.
[0157] It should be noted that the first liquid level detector 310 is arranged at a distance from the bottom surface of the water storage tank 300 to ensure that a certain amount of mineral water is always stored in the water storage tank 300 and to timely remind the control component 110 to extract mineral water, thereby achieving automatic replenishment of mineral water. The second liquid level detector 320 is arranged at a distance from the top surface of the water storage tank 300 to ensure that the mineral water in the water storage tank 300 is not full, thereby preventing mineral water from remaining in the mineralization bin 200 and effectively protecting the mineralization filter element 210 in the mineralization bin 200, thereby prolonging the service life of the mineralization filter element 210.
[0158] In one embodiment, the mineralization bin 200 includes a mineralization filter element 210 and a membrane shell 220, and the membrane shell 220 is provided with an atmospheric vent hole 230 for balancing the pressure inside the mineralization bin 200 with the external atmospheric pressure.
[0159] In this embodiment, the membrane shell 220 in which the mineralization filter element 210 is arranged is provided with a corresponding atmospheric vent hole 230, which can make the extraction liquid in the cavity of the mineralization bin 200 flow more completely to the water storage tank 300, thereby achieving solid-liquid separation in the cavity of the mineralization bin 200 and effectively prolonging the service life of the mineralization filter element 210.
[0160] In summary, the mineralization equipment control system provided in this embodiment not only can achieve hot extraction of mineral water, but also can adjust the mineralization logic in a timely manner according to the service life of the mineralization filter element and further adjust the extraction parameters in the mineralization extraction logic according to the service life of the mineralization filter element, thereby achieving accurate control of the concentration of the mineral water generated by the mineralization equipment according to the service life of the mineralization filter element and making the mineralization equipment always generate mineral water with a stable concentration. At the same time, the atmospheric vent hole arranged on the cavity of the mineralization bin can make the mineralization bin more smoothly achieve solid-liquid separation, thereby greatly prolonging the service life of the mineralization filter element.
[0161] In one embodiment, as shown in Figure 5 , a mineralization device control method is provided, which is applied to the mineralization device control system 100 in Figure 2 for illustration, including the following steps:
[0162] S501, obtaining the water flow parameter recorded by the flow component;
[0163] S502, determining the target mineralization mode according to the water flow parameter;
[0164] S503, controlling the heating component, the first valve body component, the second valve body component, the first power component and the second power component to execute the mineral water generation step according to the target mineralization mode.
[0165] In one embodiment, as shown in Figure 6 , determining the target mineralization mode according to the water flow parameter includes:
[0166] S601, if the water flow parameter is less than the first water flow threshold, determining the target mineralization mode as the flow-through mineralization mode;
[0167] S602, if the water flow parameter is greater than or equal to the first water flow threshold, determining the target mineralization mode as the extraction mineralization mode.
[0168] In one embodiment, if the target mineralization mode is the flow-through mineralization mode, as shown in Figure 7 , controlling the heating component, the first valve body component, the second valve body component, the first power component and the second power component to execute the mineral water generation step according to the target mineralization mode includes:
[0169] S701, controlling the first valve body component, the second valve body component and the first power component to be opened, and the second power component to be closed, so as to access the preset water body from the preset water inlet pipeline, heat the preset water body to a preset temperature by the heating component, and then sequentially enter the mineralization bin and the water storage tank;
[0170] S702, if the liquid level information in the water storage tank is greater than or equal to the intermediate liquid level threshold, controlling the components to control the first valve body component and the first power component to be closed, and the second valve body component and the second power component to be opened, so as to transfer the mineral water in the mineralization bin to the water storage tank;
[0171] S703, when the opening duration of the second power component is greater than or equal to a preset time, controlling the second valve body component and the second power component to be closed, and completing the mineral water generation step.
[0172] In one embodiment, if the target mineralization mode is the extraction mineralization mode, as shown in Figure 8As shown, the heating assembly, first valve body assembly, second valve body assembly, first power assembly, and second power assembly are controlled according to the target mineralization mode to perform the mineral water generation step, including:
[0173] S801, control the first valve body assembly and the first power assembly to open, and the second valve body assembly and the second power assembly to close, so that the preset water body is connected from the preset water inlet pipeline, heated to the target extraction temperature by the heating assembly and then enters the mineralization chamber;
[0174] S802, when the pumping volume of the first power component is greater than or equal to the preset water volume threshold, the first valve body component and the first power component are controlled to close, so that the mineralization chamber can perform thermal extraction to obtain mineral water of a preset concentration;
[0175] S803, when the thermal extraction time in the mineralization chamber is greater than or equal to the target extraction time, the second valve body assembly and the second power assembly are controlled to open so that the mineral water in the mineralization chamber is transferred to the water storage tank.
[0176] S804, when the opening duration of the second power component is greater than or equal to the preset time, control the second valve body component and the second power component to close, and determine whether the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold.
[0177] S805, if the liquid level information in the water storage tank is less than the high liquid level threshold, jump to execute the control to open the first valve body assembly and the first power assembly, and close the second valve body assembly and the second power assembly, so as to connect the preset water body from the preset water inlet pipeline, heat it to the target extraction temperature through the heating assembly, and then enter the mineralization chamber;
[0178] S806, if the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold, the mineral water generation step is completed.
[0179] In one embodiment, if the target mineralization mode is an extractive mineralization mode, such as Figure 9 As shown, the heating assembly, first valve body assembly, second valve body assembly, first power assembly, and second power assembly are controlled according to the target mineralization mode to perform the mineral water generation step, including:
[0180] S901, determine the target extraction parameters based on the water flow rate parameters, wherein the target extraction parameters include the target extraction time and the target extraction temperature;
[0181] S902, according to the target extraction parameters, controls the heating component, the first valve body component, the second valve body component, the first power component and the second power component to perform the mineral water generation step.
[0182] In one embodiment, such as Figure 10 As shown, the target extraction parameters are determined based on the water flow rate parameters, including:
[0183] S1001, if the water flow parameter increases, according to the corresponding relationship between the increase of the water flow parameter and the extension of the target extraction time, the target extraction time is extended;
[0184] S1002, according to the corresponding relationship between the increase of the water flow parameter and the increase of the target extraction temperature, the target extraction temperature is increased.
[0185] In this embodiment, the specific implementation of the mineralization equipment control method can refer to the specific implementation in the foregoing system embodiment, which will not be described here.
[0186] To sum up, the embodiment provides a mineralization equipment control method, which can not only realize thermal extraction of mineral water, but also adjust the mineralization logic in time according to the service life of the mineralization filter core, and further adjust the extraction parameters in the mineralization extraction logic according to the service life of the mineralization filter core, so as to accurately control the concentration of the mineral water generated by the mineralization equipment according to the service life of the mineralization filter core, so that the mineralization equipment can always generate mineral water with stable concentration. At the same time, the embodiment further sets the atmospheric through hole on the cavity of the mineralization bin, so that the mineralization bin can more smoothly realize solid-liquid separation, greatly prolonging the service life of the mineralization filter core.
[0187] It should be understood that, although each step in the flowchart involved in the above embodiments is displayed in sequence according to the arrow, these steps are not necessarily executed in sequence according to the arrow. Unless otherwise specified herein, the execution of these steps is not strictly limited in sequence, and these steps can be executed in other sequences. Moreover, at least part of the steps in the flowchart 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 sequence of these steps or stages is not necessarily sequential, but can be executed in rotation or alternation with at least part of other steps or steps or stages in other steps.
[0188] Based on the same inventive concept, the embodiment of the present application also provides a mineralization equipment control device for implementing the above-mentioned mineralization equipment control method. The implementation scheme for solving the problem provided by the device is similar to the implementation scheme described in the above method, so the specific limitations in one or more mineralization equipment control device embodiments provided below can refer to the limitations of the mineralization equipment control method in the foregoing, which will not be described here.
[0189] In one embodiment, as Figure 11As shown, a mineralization device control apparatus 1100 is provided for the mineralization device control system in the foregoing embodiments, and the mineralization device control apparatus 1100 comprises an acquisition module 1110, a determination module 1120 and an extraction module 1130, wherein:
[0190] The acquisition module 1110 is configured to acquire the flow parameter of the flow component record.
[0191] The determination module 1120 is configured to determine the target mineralization mode according to the flow parameter.
[0192] The extraction module 1130 is configured to control the heating component, the first valve body component, the second valve body component, the first power component and the second power component to perform the mineral water generation step according to the target mineralization mode.
[0193] In one of the embodiments, the determination module 1120 is specifically configured to determine the target mineralization mode as the flow-through mineralization mode if the flow parameter is less than a first flow threshold, and determine the target mineralization mode as the extraction mineralization mode if the flow parameter is greater than or equal to the first flow threshold.
[0194] In one of the embodiments, the extraction module 1130 is specifically configured to control the first valve body component, the second valve body component and the first power component to be opened, and the second power component to be closed, so as to access the preset water body from the preset water inlet pipeline, heat the preset water body to a preset temperature by the heating component, and then sequentially enter the mineralization bin and the water storage tank; if the liquid level information in the water storage tank is greater than or equal to an intermediate liquid level threshold, control the first valve body component and the first power component to be closed, and control the second valve body component and the second power component to be opened, so as to transfer the mineral water in the mineralization bin to the water storage tank; when the opening duration of the second power component is greater than or equal to a preset time, control the second valve body component and the second power component to be closed, and complete the mineral water generation step.
[0195] In one of the embodiments, the extraction module 1130 is specifically configured to control the first valve body assembly and the first power assembly to be opened, and the second valve body assembly and the second power assembly to be closed, so as to access the preset water body from the preset water inlet pipeline, and then the water body is heated to the target extraction temperature by the heating assembly and then enters the mineralization bin; when the water pumping amount of the first power assembly is greater than or equal to the preset water amount threshold, the first valve body assembly and the first power assembly are controlled to be closed, so that the mineralization bin performs the hot extraction, and the mineral water with the preset concentration is obtained; when the time for the mineralization bin to perform the hot extraction is greater than or equal to the target extraction time, the second valve body assembly and the second power assembly are controlled to be opened, so that the mineral water in the mineralization bin is transferred to the water storage tank; when the opening duration of the second power assembly is greater than or equal to the preset time, the second valve body assembly and the second power assembly are controlled to be closed, and it is determined whether the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold; if the liquid level information in the water storage tank is less than the high liquid level threshold, the first valve body assembly and the first power assembly are controlled to be opened, and the second valve body assembly and the second power assembly are controlled to be closed, so as to access the preset water body from the preset water inlet pipeline, and then the water body is heated to the target extraction temperature by the heating assembly and then enters the mineralization bin; if the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold, the mineral water generation step is completed.
[0196] In one of the embodiments, the determination module 1120 is specifically configured to determine the target extraction parameter according to the water passing amount parameter, wherein the target extraction parameter includes the target extraction time and the target extraction temperature.
[0197] The extraction module 1130 is specifically configured to control the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly and the second power assembly to perform the mineral water generation step according to the target extraction parameter.
[0198] In one of the embodiments, the determination module 1120 is specifically configured to, if the water passing amount parameter increases, according to the corresponding relationship between the increase amount of the water passing amount parameter and the extension time of the target extraction time, extend the target extraction time; and according to the corresponding relationship between the increase amount of the water passing amount parameter and the increase temperature of the target extraction temperature, increase the target extraction temperature.
[0199] The above various modules in the mineralization equipment control device can be all or partially realized by software, hardware and a combination thereof. The above various modules can be embedded in or independent of a processor in a computer device in a hardware form, or can be stored in a memory in the computer device in a software form, so as to be called and executed by a processor to perform the operations corresponding to the above various modules.
[0200] In one of the embodiments, a computer device is provided, which can be a terminal, and an internal structure diagram of the computer device can be as shown in Figure 12The 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. 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 configured 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 running the operating system and the computer program in the non-volatile storage medium. The input / output interface of the computer device is configured to exchange information between the processor and external devices. The communication interface of the computer device is configured to perform wired or wireless communication with external terminals. The wireless communication can be achieved through WIFI, mobile cellular network, NFC (Near Field Communication), or other technologies. The computer program is executed by the processor to implement a mineralization device control method. The display unit of the computer device is configured to form a visually visible picture, which can be a display screen, a projection device, or a virtual reality imaging device. The display screen can be a liquid crystal display screen or an electronic ink display screen. The input device of the computer device can be a touch layer overlaid on the display screen, or a key, trackball, or touchpad arranged on the shell of the computer device. The input device can also be an external keyboard, touchpad, or mouse, etc.
[0201] Those skilled in the art can understand that Figure 12 The structure shown in the figure is only a block diagram of part of the structure related to the scheme of the present application, and does not constitute a limitation on the computer device to which the scheme of the present application is applied. The specific computer device can include more or fewer components than those shown in the figure, or combine certain components, or have a different component arrangement.
[0202] In one embodiment, a computer device is provided, including a memory and a processor, the memory storing a computer program, and the processor executing the computer program to implement the following steps:
[0203] Obtaining a water flow parameter recorded by the flow component;
[0204] Determining a target mineralization mode according to the water flow parameter;
[0205] Controlling the heating component, the first valve body component, the second valve body component, the first power component, and the second power component to execute a mineral substance water generation step according to the target mineralization mode.
[0206] In one embodiment, a computer readable storage medium is provided, storing a computer program, and the computer program is executed by a processor to implement the following steps:
[0207] Obtaining a water flow parameter recorded by the flow component;
[0208] determining a target mineralization pattern according to the flow parameter;
[0209] controlling the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly and the second power assembly to perform the mineral water generating step according to the target mineralization pattern.
[0210] In one embodiment, a computer program product is provided, comprising a computer program which, when executed by a processor, implements the following steps:
[0211] obtaining a flow parameter recorded by the flow assembly;
[0212] determining a target mineralization pattern according to the flow parameter;
[0213] controlling the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly and the second power assembly to perform the mineral water generating step according to the target mineralization pattern.
[0214] 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 (ROM), magnetic tape, floppy disk, flash memory, optical storage, high-density embedded non-volatile memory, resistive memory (ReRAM), magnetoresistive random access memory (MRAM), ferroelectric 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 but not limitation, RAM can be in various forms, such as static random access memory (SRAM) or 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.
[0215] 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, it should be considered as the scope of the present application.
[0216] 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 plant control system, characterized by, The system comprises a control component, a flow component, a heating component, a first valve body component, a second valve body component, a first power component and a second power component, wherein the control component is connected with the flow component, the heating component, the first valve body component, the second valve body component, the first power component and the second power component respectively; the mineralization device comprises a mineralization tank and a water storage tank; The water inlet of the mineralization tank is connected with a preset water inlet pipeline through the first valve body component, the heating component and the first power component, the water outlet of the mineralization tank is connected with the water inlet of the water storage tank through the second valve body component and the second power component, and the water outlet of the water storage tank is connected with a preset water outlet pipeline; The flow component is arranged at the water inlet or the water outlet of the mineralization tank, and is used for recording the water passing amount parameter of the mineralization tank; The control component is used for obtaining the water passing amount parameter recorded by the flow component, determining a target mineralization mode according to the water passing amount parameter, and controlling the heating component, the first valve body component, the second valve body component, the first power component and the second power component to perform a mineral substance water generation step according to the target mineralization mode; If the water passing amount parameter is less than a first water passing amount threshold, the control component determines that the target mineralization mode is a flow-through mineralization mode; if the target mineralization mode is the flow-through mineralization mode, the control component controls the first valve body component, the second valve body component and the first power component to be opened, and controls the second power component to be closed, so as to access a preset water body from the preset water inlet pipeline, heat the water body to a preset temperature through the heating component, and then sequentially enter the mineralization tank and the water storage tank; If the water passing amount parameter is greater than or equal to the first water passing amount threshold, it is determined that the target mineralization mode is an extraction mineralization mode; if the target mineralization mode is the extraction mineralization mode, the control component controls the first valve body component and the first power component to be opened, and controls the second valve body component and the second power component to be closed, so as to access a preset water body from the preset water inlet pipeline, heat the water body to a target extraction temperature through the heating component, and then enter the mineralization tank.
2. The system of claim 1, wherein, If the target mineralization mode is the flow-through mineralization mode; If the liquid level information in the water storage tank is greater than or equal to an intermediate liquid level threshold, the control component controls the first valve body component and the first power component to be closed, and controls the second valve body component and the second power component to be opened, so as to transfer the mineral substance water in the mineralization tank to the water storage tank; When the opening duration of the second power component is greater than or equal to a preset time, the control component controls the second valve body component and the second power component to be closed, and completes the mineral substance water generation step.
3. The system of claim 1, wherein, If the target mineralization mode is the extraction mineralization mode; When the water pumping amount of the first power component is greater than or equal to a preset water amount threshold, the control component controls the first valve body component and the first power component to be closed, so as to perform hot extraction on the mineralization tank, and obtain mineral substance water with a preset concentration; When the time of the mineralization bin performing the hot extraction is greater than or equal to the target extraction time, the second valve body assembly and the second power assembly are controlled to be opened, so that the mineral water in the mineralization bin is transferred to the water storage tank; When the opening duration of the second power assembly is greater than or equal to the preset time, the second valve body assembly and the second power assembly are controlled to be closed, and it is determined whether the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold value; If the liquid level information in the water storage tank is less than the high liquid level threshold value, the first valve body assembly and the first power assembly are controlled to be opened, and the second valve body assembly and the second power assembly are controlled to be closed, so that the preset water body is accessed from the preset water inlet pipeline, and after being heated to the target extraction temperature by the heating assembly, the mineral water is generated in the mineralization bin; If the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold value, the mineral water generation step is completed.
4. The system of claim 1, wherein, If the target mineralization mode is the extraction mineralization mode; The control assembly is configured to determine a target extraction parameter according to the water passing amount parameter, wherein the target extraction parameter includes a target extraction time and a target extraction temperature; The control assembly is configured to control the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly and the second power assembly to perform a mineral water generation step according to the target extraction parameter.
5. The system of claim 4, wherein, The control assembly is configured to, if the water passing amount parameter increases, extend the target extraction time according to a corresponding relationship between an increase amount of the water passing amount parameter and an extension time of the target extraction time; The control assembly is configured to, if the water passing amount parameter increases, increase the target extraction temperature according to a corresponding relationship between the increase amount of the water passing amount parameter and an increase temperature of the target extraction temperature.
6. The system of claim 1, wherein, The system further includes an alarm assembly. The control assembly is configured to, if the water passing amount parameter is greater than or equal to an alarm water passing amount threshold value, control the alarm assembly to alarm, so as to prompt a user to replace a filter element.
7. The system of claim 1, wherein, The water storage tank is provided with a first liquid level detector, a second liquid level detector and a third liquid level detector, and the first liquid level detector, the second liquid level detector and the second liquid level detector are connected to the control assembly. The first liquid level detector is configured to send a high liquid level trigger signal to the control assembly when the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold value. The second liquid level detector is configured to send a low liquid level trigger signal to the control assembly when the liquid level information in the water storage tank is less than or equal to a low liquid level threshold value. The third liquid level detector is configured to send an intermediate liquid level trigger signal to the control assembly when the liquid level information in the water storage tank is greater than or equal to an intermediate liquid level threshold value, wherein the high liquid level threshold value is greater than the intermediate liquid level threshold value, and the intermediate liquid level threshold value is greater than the low liquid level threshold value.
8. The system of claim 7, wherein, The control assembly is configured to, if the high liquid level trigger signal sent by the first liquid level detector is received, stop performing the mineral water generation step. The control assembly is configured to, if the low liquid level trigger signal sent by the third liquid level detector is received, start performing the mineral water generation step.
9. The system of claim 1, wherein, The mineralization bin comprises a mineralization filter element and a membrane shell, and an atmospheric passage is arranged on the membrane shell to balance the pressure inside the mineralization bin and the external atmospheric pressure.
10. A method of controlling a mineralization apparatus, characterized by, The mineralization device control system of any one of claims 1-9, comprising: acquiring a water flow parameter recorded by a flow component; determining a target mineralization mode according to the water flow parameter; controlling the heating component, the first valve component, the second valve component, the first power component, and the second power component to perform a mineral water generation step according to the target mineralization mode; the determining of the target mineralization mode according to the water flow parameter, comprising: if the water flow parameter is less than a first water flow threshold, determining that the target mineralization mode is a flow-through mineralization mode; if the water flow parameter is greater than or equal to the first water flow threshold, determining that the target mineralization mode is an extraction mineralization mode; if the target mineralization mode is the flow-through mineralization mode, the controlling of the heating component, the first valve component, the second valve component, the first power component, and the second power component to perform the mineral water generation step according to the target mineralization mode, comprising: controlling the first valve component, the second valve component, and the first power component to be opened, and the second power component to be closed, so as to access a preset water body from a preset water inlet pipeline, heat the water body to a preset temperature by the heating component, and then sequentially enter a mineralization bin and a water storage tank; if the target mineralization mode is the extraction mineralization mode, the controlling of the heating component, the first valve component, the second valve component, the first power component, and the second power component to perform the mineral water generation step according to the target mineralization mode, comprising: controlling the first valve component and the first power component to be opened, and the second valve component and the second power component to be closed, so as to access the preset water body from the preset water inlet pipeline, heat the water body to a target extraction temperature by the heating component, and then enter the mineralization bin.
11. The method of claim 10, wherein, if the target mineralization mode is the flow-through mineralization mode, the controlling of the heating component, the first valve component, the second valve component, the first power component, and the second power component to perform the mineral water generation step according to the target mineralization mode, further comprising: if the liquid level information in the water storage tank is greater than or equal to an intermediate liquid level threshold, the control component controls the first valve component and the first power component to be closed, and controls the second valve component and the second power component to be opened, so as to transfer the mineral water in the mineralization bin to the water storage tank; when the opening duration of the second power component is greater than or equal to a preset time, the second valve component and the second power component are controlled to be closed, and the mineral water generation step is completed.
12. The method of claim 10, wherein, if the target mineralization mode is the extraction mineralization mode, the controlling of the heating component, the first valve component, the second valve component, the first power component, and the second power component to perform the mineral water generation step according to the target mineralization mode, further comprising: when the water pumping amount of the first power component is greater than or equal to a preset water amount threshold, the first valve component and the first power component are controlled to be closed, so as to perform a hot extraction on the mineralization bin to obtain mineral water with a preset concentration; When the time of the mineralization bin performing the hot extraction is greater than or equal to the target extraction time, the second valve body assembly and the second power assembly are controlled to be opened to transfer the mineral water in the mineralization bin to the water storage tank; When the opening duration of the second power assembly is greater than or equal to the preset time, the second valve body assembly and the second power assembly are controlled to be closed, and it is determined whether the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold; If the liquid level information in the water storage tank is less than the high liquid level threshold, the first valve body assembly and the first power assembly are controlled to be opened, and the second valve body assembly and the second power assembly are controlled to be closed to access the preset water body from the preset water inlet pipeline, and the water body is heated to the target extraction temperature by the heating assembly and then enters the mineralization bin and the water storage tank in sequence; If the liquid level information in the water storage tank is greater than or equal to the high liquid level threshold, the mineral water generation step is completed.
13. The method of claim 10, wherein, If the target mineralization mode is the extraction mineralization mode, the extraction module is further configured to control the first valve body assembly, the second valve body assembly, and the first power assembly to be opened, and the second power assembly to be closed to access the preset water body from the preset water inlet pipeline, and the water body is heated to the preset temperature by the heating assembly and then enters the mineralization bin and the water storage tank in sequence. determining a target extraction parameter according to the water passing amount parameter, wherein the target extraction parameter comprises a target extraction time and a target extraction temperature; controlling the heating assembly, the first valve body assembly, the second valve body assembly, the first power assembly, and the second power assembly to perform the mineral water generation step according to the target extraction parameter.
14. The method of claim 13, wherein, The method for determining the target extraction parameter according to the water passing amount parameter comprises: If the water passing amount parameter increases, the target extraction time is extended according to a corresponding relationship between an increase amount of the water passing amount parameter and an extension time of the target extraction time; The target extraction temperature is increased according to a corresponding relationship between the increase amount of the water passing amount parameter and an increase temperature of the target extraction temperature.
15. A mineralization plant control device, characterized in that, The mineralization device control system comprises: an acquisition module configured to acquire a water passing amount parameter recorded by a flow component; a determination module configured to determine a target mineralization mode according to the water passing amount parameter; an extraction module configured to control a heating assembly, a first valve body assembly, a second valve body assembly, a first power assembly, and a second power assembly to perform a mineral water generation step according to the target mineralization mode; If the water passing amount parameter is less than a first water passing amount threshold, the determination module is specifically configured to determine that the target mineralization mode is the over-flow mineralization mode; If the water passing amount parameter is greater than or equal to the first water passing amount threshold, the determination module is specifically configured to determine that the target mineralization mode is the extraction mineralization mode; If the target mineralization mode is the over-flow mineralization mode, the extraction module is further configured to control the first valve body assembly, the second valve body assembly, and the first power assembly to be opened, and the second power assembly to be closed to access the preset water body from the preset water inlet pipeline, and the water body is heated to the preset temperature by the heating assembly and then enters the mineralization bin and the water storage tank in sequence. If the target mineralization mode is an extraction mineralization mode, the extraction module is further configured to control the first valve body assembly and the first power assembly to open, and the second valve body assembly and the second power assembly to close, so as to access a preset water body from the preset water inlet pipeline, and after being heated to a target extraction temperature by the heating assembly, the water body enters the mineralization bin.
16. A mineralization apparatus characterized by, The mineralization equipment control system according to any one of claims 1-9. The mineralization equipment control system according to any one of claims 1-9.
Citation Information
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