Air water generator control method and device, air water generator and medium

By obtaining water level information based on the target control scheme in the air water maker and generating control instructions, the problem of the existing technology that cannot meet diversified water use scenarios and precise water use management is solved, and flexible and precise control of the air water maker is achieved.

CN120065820AInactive Publication Date: 2025-05-30SHENZHEN JUNLE ELECTRIC CO LTD
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Patent Information

Application Number
CN202510148231.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-11
Publication Date
2025-05-30
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The simple water level control method of existing air water makers cannot meet the requirements of diversified water use scenarios and more accurate water use management.

Method used

By obtaining the first water level information of the air water maker based on the target control plan, and generating control instructions including stopping water production, starting water production, stopping water purification, starting water purification, water discharging and water discharging cannot be released based on the first water level information and the target control plan, to accurately control the working status of the air water maker.

Benefits of technology

It realizes precise regulation of air water maker in different scenarios, and can more flexibly and accurately control the working status of air water maker to meet the needs of users in various complex water use situations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of air water production machines, and discloses an air water production machine control method and device, an air water production machine and a medium. The method comprises the steps that based on a target control scheme, first water level information of the air water production machine is obtained; according to the first water level information and the target control scheme, control instructions are generated, the control instructions comprise a first instruction, a second instruction and a third instruction, the first instruction is a water production stopping instruction or a water production starting instruction, the second instruction is a water purification stopping instruction or a water purification starting instruction, and the third instruction is a water purification starting instruction. The third instruction is a water-releasing instruction or a water-non-releasing instruction; and controlling the air water generator to work according to the control instruction. Accurate regulation and control of the air water generator in different scenes based on the target control scheme and the first water level information are achieved, the working state of the air water generator can be more flexibly and accurately controlled, and the requirements of users under various complex water consumption conditions are met through the target control scheme.
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Description

Technical Field

[0001] The present invention relates to the technical field of air water making machines, and particularly to a control method, device, air water making machine and medium for an air water making machine. Background Art

[0002] An air water making machine extracts water from the air through specific technologies and converts it into usable water, and is widely used in areas where water is scarce or the water source is inconvenient.

[0003] In existing air water making machines, usually two simple water level control switches are used to achieve basic operation control, that is, stop the machine when the water is full and start making water when there is no water. However, this traditional control method cannot meet the requirements of diverse water usage scenarios and more precise water usage management. Summary of the Invention

[0004] Based on this, in view of the technical problem that the existing air water making machine stops when the water is full and starts making water when there is no water, and cannot meet the requirements of diverse water usage scenarios and more precise water usage management, a control method, device, air water making machine and medium for an air water making machine are proposed.

[0005] In a first aspect, a control method for an air water making machine is provided, and the method includes:

[0006] Obtain the first water level information of the air water making machine based on a target control scheme;

[0007] Generate a control instruction according to the first water level information and the target control scheme, wherein the control instruction includes: a first instruction, a second instruction, and a third instruction, the first instruction is a stop water making instruction or a start water making instruction, the second instruction is a stop water purification instruction or a start water purification instruction, and the third instruction is a water dischargeable instruction or a non-water dischargeable instruction;

[0008] Control the operation of the air water making machine according to the control instruction.

[0009] In a second aspect, a control device for an air water making machine is provided, and the device includes:

[0010] A data acquisition module, configured to obtain the first water level information of the air water making machine based on a target control scheme;

[0011] A control instruction determination module, configured to generate a control instruction according to the first water level information and the target control scheme, wherein the control instruction includes: a first instruction, a second instruction, and a third instruction, the first instruction is a stop water making instruction or a start water making instruction, the second instruction is a stop water purification instruction or a start water purification instruction, and the third instruction is a water dischargeable instruction or a non-water dischargeable instruction;

[0012] A control module for controlling the operation of the air-to-water machine according to the control instruction.

[0013] In a third aspect, an air-to-water machine is provided. The air-to-water machine includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the steps of the above-mentioned air-to-water machine control method are implemented.

[0014] In a fourth aspect, a computer-readable storage medium is provided. The computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the steps of the above-mentioned air-to-water machine control method are implemented.

[0015] The air-to-water machine control method, device, air-to-water machine and medium of the present application obtain the first water level information of the air-to-water machine based on the target control scheme, and generate instructions including the first instruction, the second instruction and the third instruction according to the first water level information and the target control scheme, realizing the precise regulation of the air-to-water machine in different scenarios based on the target control scheme and the first water level information, being able to control the working state of the air-to-water machine more flexibly and accurately, meeting the needs of users in various complex water use situations through the target control scheme, and effectively solving the problem that the existing simple control methods of stopping the machine when the water is full and starting the machine when there is no water cannot meet the requirements of diversified water use scenarios and more precise water use management. Description of the Drawings

[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0017] Among them:

[0018] Figure 1 It is an application environment diagram of the air-to-water machine control method in an embodiment;

[0019] Figure 2 It is a flowchart of the air-to-water machine control method in an embodiment;

[0020] Figure 3 It is a structural block diagram of the air-to-water machine control device in an embodiment;

[0021] Figure 4 It is a structural block diagram of the air-to-water machine in an embodiment. Detailed Embodiments

[0022] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0023] In existing air water making machines, usually two simple water level control switches are adopted to achieve basic operation control, that is, stop when the water is full and start making water when there is no water. However, this traditional control method has the following defects: First, the water use flexibility is insufficient and cannot well adapt to the changes in different water use demands; Second, it may cause water resource waste or insufficiency. For example, it cannot make water in time when water is urgently needed, or continuously make water when a large amount of water is not needed; Third, it is impossible to accurately control the water level, which may affect the operation stability and efficiency of the air water making machine; Fourth, it is difficult to meet the requirements of precise water level regulation in some special scenarios, restricting the application scope of the air water making machine. That is to say, the traditional control method cannot meet the requirements of diversified water use scenarios and more precise water use management.

[0024] The air water making machine control method provided by the embodiments of the present invention can be applied in an application environment such as Figure 1 where the client 3 communicates with the server 2 and the air water making machine 1 through the network.

[0025] Optionally, the client 3 obtains the target control scheme through the server 2. The client 3 is configured to implement the following steps: Based on the target control scheme, obtain the first water level information of the air water making machine; According to the first water level information and the target control scheme, generate a control instruction, and the control instruction includes: a first instruction, a second instruction, and a third instruction. The first instruction is a stop making water instruction or a start making water instruction, the second instruction is a stop purifying water instruction or a start purifying water instruction, and the third instruction is a water dischargeable instruction or a non-water dischargeable instruction; Control the operation of the air water making machine 1 according to the control instruction.

[0026] Optionally, the air water making machine 1 can obtain the target control scheme from the client 3, or it can be a target control scheme preset at the time of factory, or it can be a target control scheme personalized generated based on a preset method. The air water making machine 1 is configured to implement the following steps: Based on the target control scheme, obtain the first water level information of the air water making machine; According to the first water level information and the target control scheme, generate a control instruction, and the control instruction includes: a first instruction, a second instruction, and a third instruction. The first instruction is a stop making water instruction or a start making water instruction, the second instruction is a stop purifying water instruction or a start purifying water instruction, and the third instruction is a water dischargeable instruction or a non-water dischargeable instruction; Control the operation of the air water making machine 1 according to the control instruction.

[0027] In this application, the first water level information of the air water maker is obtained based on the target control scheme, and the first instruction, the second instruction, and the third instruction are generated according to the first water level information and the target control scheme, realizing the precise regulation of the air water maker in different scenarios based on the target control scheme and the first water level information, being able to control the working state of the air water maker more flexibly and accurately, meeting the needs of users in various complex water usage situations through the target control scheme, and effectively solving the problem that the existing simple control methods of stopping when the water is full and starting when there is no water cannot meet the diverse water usage scenarios and the requirements of more precise water usage management.

[0028] Please refer to Figure 4 , the air water maker includes: an intelligent control system, an air purification system, a water production system, a water purification system, and a water supply system. The intelligent control system controls the operation of the air purification system, the water production system, the water purification system, and the water supply system.

[0029] The air in the external environment enters the air filter element of the air purification system, and then enters the evaporator of the water production system. The water droplets condensed by the evaporator enter the water collection tank of the water purification system for storage.

[0030] When the refrigerant in the evaporator evaporates, it absorbs the heat of the surrounding environment, thereby reducing the temperature of the evaporator surface. When the air containing moisture flows through the evaporator surface, the moisture in the air will condense into water droplets when it meets the cold, and these water droplets are collected to become available water.

[0031] The water production system also includes: a condenser and a compression pump.

[0032] The condenser converts the gaseous refrigerant after passing through the evaporator into a liquid state. In this process, the gaseous refrigerant releases heat, and these heats are dissipated. At the same time, the condenser also helps to improve the water production efficiency, enabling the air water maker to operate stably and continuously, ensuring that the produced water can be properly processed and stored.

[0033] The compression pump is used to compress the gaseous refrigerant after passing through the evaporator and then input it into the condenser to increase the pressure and temperature of the refrigerant. Through compression, the refrigerant can circulate better in the system, so that the evaporator can effectively absorb heat from the air, and the condenser can smoothly release heat to maintain the continuous progress of the entire air water production process. The compression pump provides power support for the refrigeration cycle of the air water maker.

[0034] The air passing through the evaporator enters the vortex fan of the air purification system and is discharged to the external environment through the air outlet of the air purification system.

[0035] The booster pump of the water purification system pressurizes the water in the water collection tank and then inputs it into the water purification filter element. After being purified by the water purification filter element, the water becomes purified water, and the purified water enters the purified water tank of the water supply system for storage. The purified water in the purified water tank is discharged from the air water maker through the water pump of the water supply system, and the discharged water is used by users.

[0036] It can be understood that the booster pump of the water purification system can also directly discharge the water in the water collection tank from the air water maker, and the discharged water is used by users. That is to say, the second instruction is a stop water purification instruction, or the second instruction is a start water purification instruction, or the second instruction is a start water purification instruction and an allow water discharge instruction. The allow water discharge instruction is an instruction to operate to directly discharge the water in the water collection tank from the air water maker.

[0037] A booster pump is a device that can increase the pressure of a liquid. It raises the pressure of the liquid through mechanical operation, enabling it to flow and be transmitted more powerfully.

[0038] The intelligent control system includes: a memory, a processor, and a computer program stored in the memory and executable on the processor.

[0039] Optionally, when the processor executes the computer program, it implements the steps of the air water maker control method of the present application to control the operation of the air purification system, water making system, water purification system, and water supply system.

[0040] Optionally, when the processor executes the computer program, it receives the control instruction sent by the client 3. When the processor executes the computer program, it controls the operation of the air purification system, water making system, water purification system, and water supply system based on the control instruction sent by the client 3.

[0041] Among them, the client 3 can be but is not limited to various personal computers, laptop computers, smart phones, tablet computers, and portable wearable devices. The server 2 can be implemented by an independent server or a server cluster composed of multiple servers. The present invention will be described in detail through specific embodiments below.

[0042] Please refer to Figure 2 as shown Figure 2 This is a flowchart of an air water maker control method provided by an embodiment of the present invention, including the following steps:

[0043] S1: Based on the target control scheme, obtain the first water level information of the air water maker;

[0044] The target control scheme describes the control scheme of the air water maker.

[0045] The target control scheme can be input by the user, can be preset, can also be selected from multiple pre-stored control schemes, or can be a target control scheme generated based on a preset method.

[0046] Specifically, when determining the target control scheme, obtain the first water level information of the air water maker.

[0047] Optionally, the first water level information includes: the water level information of the collection tank and the water level information of the purification tank.

[0048] Optionally, the first water level information includes: the water level information of the collection tank.

[0049] The water level information of the collection tank, that is, the actual water level information of the collection tank. A water level sensor can be installed in the collection tank, and the actual water level information of the collection tank can be detected through the water level sensor.

[0050] The water level information of the purification tank, that is, the actual water level information of the purification tank. A water level sensor can be installed in the purification tank, and the actual water level information of the purification tank can be detected through the water level sensor.

[0051] Optionally, a water level sensor can be set in the collection tank to detect the water level information in the collection tank in real time and continuously, and the water level information detected by this water level sensor is used as the water level information of the collection tank.

[0052] Optionally, water level sensors can also be set at multiple water levels in the collection tank. For example, three water level sensors are set. Through the detection data of each water level sensor, the water level information of the collection tank can be determined. For example, the water levels in the collection tank are set from low to high as the first water level, the second water level, and the third water level. When the water level sensors set at the first water level and the second water level both detect water, and the water level sensor set at the third water level does not detect water, the water level information corresponding to the second water level is used as the water level information of the collection tank. That is to say, for the collection tank, among the water level information corresponding to the water level sensors that detect water, select the water level information with the largest value as the water level information of the collection tank.

[0053] Optionally, a water level sensor can be set in the purification tank to detect the water level information in the purification tank in real time and continuously, and the water level information detected by this water level sensor is used as the water level information of the purification tank.

[0054] Optionally, water level sensors can also be set at multiple water levels in the purification tank. For example, three water level sensors are set. Through the detection data of each water level sensor, the water level information of the purification tank can be determined. That is to say, for the purification tank, among the water level information corresponding to the water level sensors that detect water, select the water level information with the largest value as the water level information of the purification tank.

[0055] S2: Generate a control instruction according to the first water level information and the target control scheme, where the control instruction includes: a first instruction, a second instruction, and a third instruction. The first instruction is a stop water production instruction or a start water production instruction. The second instruction is a stop water purification instruction or a start water purification instruction. The third instruction is a water dischargeable instruction or a non-water dischargeable instruction.

[0056] Optionally, determine the control instruction by using a look-up table method according to the first water level information and the target control scheme.

[0057] The stop water production instruction is an instruction to stop water production for storage in the water collection tank. The start water production instruction is an instruction to start water production for storage in the water collection tank.

[0058] The stop water purification instruction is an instruction to stop inputting the water in the water collection tank into the water purification filter element for purification. The start water purification instruction is an instruction to start inputting the water in the water collection tank into the water purification filter element for purification.

[0059] The water dischargeable instruction is an instruction to allow the purified water in the purified water tank to be discharged from the air water maker. The non-water dischargeable instruction is an instruction not to allow the purified water in the purified water tank to be discharged from the air water maker.

[0060] S3: Control the operation of the air water maker according to the control instruction.

[0061] Specifically, according to the control instruction, control one or more of the air purification system, water production system, water purification system, and water supply system of the air water maker to operate.

[0062] If the control instruction includes: a stop water production instruction, then control the air purification system and water production system of the air water maker to stop operating to stop water production for storage in the water collection tank.

[0063] If the control instruction includes: a start water production instruction, then control the air purification system and water production system of the air water maker to start operating to start water production for storage in the water collection tank.

[0064] If the control instruction includes: a stop water purification instruction, then control the water purification system of the air water maker to stop operating to stop inputting the water in the water collection tank into the water purification filter element for purification.

[0065] If the control instruction includes: a start water purification instruction, then control the water purification system of the air water maker to start operating to input the water in the water collection tank into the water purification filter element for purification.

[0066] If the control instruction includes: a water dischargeable instruction, the water supply system of the air water maker is controlled to start working, so that the water supply system can discharge the water in the clean water tank from the air water maker according to the user's needs.

[0067] If the control instruction includes: a non-water dischargeable instruction, the water supply system of the air water maker is controlled to stop working, and it is not allowed to discharge the clean water in the clean water tank from the air water maker.

[0068] It can be understood that the control instruction may further include a fourth instruction, and the fourth instruction includes a standby instruction or a shutdown instruction. When the water level information of the water collection tank in the first water level information is greater than or equal to the full water collection tank water level data, if the preset strategy of the air water maker is the first identifier, the fourth instruction is determined as the standby instruction, and if the preset strategy of the air water maker is the second identifier, the fourth instruction is determined as the shutdown instruction.

[0069] In this embodiment, by obtaining the first water level information of the air water maker based on the target control scheme, and generating control instructions including the first instruction, the second instruction, and the third instruction according to the first water level information and the target control scheme, the precise regulation of the air water maker in different scenarios based on the target control scheme and the first water level information is realized, the working state of the air water maker can be controlled more flexibly and accurately, the needs of users in various complex water use situations are met through the target control scheme, and the problem that the existing technology cannot meet the requirements of diversified water use scenarios and more precise water use management due to the simple control methods of full water shutdown and no water startup is effectively solved.

[0070] In one embodiment, the first water level information includes: the water level information of the water collection tank and the water level information of the clean water tank. The step of generating a control instruction according to the target water level information and the target control scheme includes:

[0071] S21: If the water level information of the water collection tank is less than or equal to the first water collection tank water level data in the target control scheme, it is determined that the first instruction in the control instruction is a start water production instruction;

[0072] Specifically, if the water level information of the water collection tank is less than or equal to the first water collection tank water level data in the target control scheme, this means that the water stored in the water collection tank is less than or equal to the minimum water storage amount of the water collection tank required by the target control scheme, and the water storage amount of the water collection tank needs to be increased. Therefore, it is determined that the first instruction in the control instruction is a start water production instruction.

[0073] The water storage amount of the water collection tank is the water storage amount of the water collection tank.

[0074] S22: If the water level information of the water collection tank is greater than or equal to the second water collection level data in the target control scheme, then determine that the first instruction in the control instruction is a water production stop instruction;

[0075] Specifically, if the water level information of the water collection tank is greater than or equal to the second water collection level data in the target control scheme, this means that the water stored in the water collection tank has reached the maximum water storage capacity required by the target control scheme, and the water storage capacity of the water collection tank does not need to be increased. Therefore, determine that the first instruction in the control instruction is a water production stop instruction.

[0076] Optionally, the full water collection level data and the second water collection level data can be the same or different.

[0077] S23: If the water level information of the water collection tank is greater than or equal to the third water collection level data in the target control scheme, and the water level information of the clean water tank is less than or equal to the first clean water level data in the target control scheme, then determine that the second instruction in the control instruction is a clean water start instruction;

[0078] Specifically, if the water level information of the water collection tank is greater than or equal to the third water collection level data in the target control scheme, this means that the water collection tank is allowed to drain water outwards. The water level information of the clean water tank is less than or equal to the first clean water level data in the target control scheme, which means that the clean water tank can still increase its water storage capacity. Therefore, if the water level information of the water collection tank is greater than or equal to the third water collection level data in the target control scheme, and the water level information of the clean water tank is less than or equal to the first clean water level data in the target control scheme, this means that the purification condition is met. Therefore, determine that the second instruction in the control instruction is a clean water start instruction.

[0079] S24: If the water level information of the clean water tank is greater than or equal to the second clean water level data in the target control scheme, then determine that the second instruction in the control instruction is a clean water stop instruction;

[0080] Specifically, if the water level information of the clean water tank is greater than or equal to the second clean water level data in the target control scheme, this means that the clean water tank does not need to continue increasing its water storage capacity. Therefore, determine that the second instruction in the control instruction is a clean water stop instruction.

[0081] S25: If the water level information of the clean water tank is greater than or equal to the third clean water level data in the target control scheme, then determine that the third instruction in the control instruction is a water discharge allowable instruction;

[0082] Specifically, if the water level information of the clean water tank is greater than or equal to the third clean water level data in the target control scheme, it means that the water stored in the clean water tank is greater than or equal to the water storage capacity of the clean water tank required for water discharge as permitted by the target control scheme at this time. Therefore, the third instruction in the control instruction is determined to be a water dischargeable instruction.

[0083] S26: If the water level information of the clean water tank is less than the third clean water level data in the target control scheme, then the third instruction in the control instruction is determined to be a non-water dischargeable instruction.

[0084] Specifically, if the water level information of the clean water tank is less than the third clean water level data in the target control scheme, it means that the water stored in the clean water tank is less than the minimum water storage capacity of the clean water tank required for water discharge as permitted by the target control scheme at this time, and the clean water tank cannot continue to discharge water. Therefore, the third instruction in the control instruction is determined to be a non-water dischargeable instruction.

[0085] In this embodiment, by accurately comparing and judging the water level information of the collection tank and the clean water tank with the corresponding water level data in the target control scheme, precise control of operations such as water production, water purification, and water discharge is achieved. When the water level of the collection tank reaches specific conditions, a start or stop water production instruction can be accurately issued; when the water level of the clean water tank meets different situations, the start or stop water purification instruction and the status of the water discharge instruction can be determined accordingly. This mechanism ensures the orderliness and efficiency of the operation of the entire air water maker, can reasonably utilize resources, guarantee the smooth progress of the water production and water treatment processes, and can also flexibly adjust the operations of each link according to the actual water level situation, improving the intelligence and automation level of the air water maker.

[0086] In one embodiment, the target control scheme includes: time period, time period category, and water level data set;

[0087] If the time period category is the low water consumption period, the first numerical value of the total water level of the collection tank of the air water maker is the second collection water level data of the water level data set with the time period category of the low water consumption period, and the first numerical value of the total water level of the clean water tank of the air water maker is the second clean water level data of the water level data set with the time period category of the low water consumption period;

[0088] If the time period category is the high water consumption period, the second numerical value of the total water level of the collection tank of the air water maker is the second collection water level data of the water level data set with the time period category of the high water consumption period, and the second numerical value of the total water level of the clean water tank of the air water maker is the second clean water level data of the water level data set with the time period category of the high water consumption period.

[0089] Optionally, the first value is 50% and the second value is 100%. It can be understood that the first value and the second value can also be other ratios, which are not limited herein.

[0090] The time period is a period of time between a start time and an end time.

[0091] In this embodiment, the water level data is dynamically adjusted according to the time period category. During the low water consumption period, the second water collection level data and the second purified water level data of the water collection tank and the purified water tank are set to the first value of the total water level, which helps to reasonably control resources and reduce unnecessary energy consumption and equipment operation costs. During the high water consumption period, it is correspondingly increased to the second value of the total water level, which can better meet the high water consumption demand and ensure the continuity and stability of water use.

[0092] In one embodiment, the method further includes:

[0093] S41: When the air water maker is in the automatic working mode, based on a first time interval, obtain first data, determine the target control scheme according to the first data, and determine monitoring time data according to the first data, where the first data includes at least one of the current actual ambient humidity, the current actual ambient temperature, and historical water use data;

[0094] A temperature sensor can be installed in the air water maker to detect the temperature of the environment around the air water maker through the temperature sensor. A humidity sensor can be installed in the air water maker to detect the humidity of the environment around the air water maker through the humidity sensor.

[0095] Specifically, when the air water maker is in the automatic working mode, at the start time of each interval period of the first time interval, the data detected in real time by the temperature sensor of the air water maker can be obtained as the current actual ambient temperature of the first data, or the current actual ambient temperature of the first data can be obtained from a third-party application.

[0096] When the air water maker is in the automatic working mode, at the start time of each interval period of the first time interval, the data detected in real time by the humidity sensor of the air water maker can be obtained as the current actual ambient humidity of the first data, or the current actual ambient humidity of the first data can be obtained from a third-party application.

[0097] The historical water use data can be obtained from the storage space of the air water maker or from the client.

[0098] The historical water use data describes the situation of the user using the air water maker. The historical water use data includes the associated data of the water use time and the water consumption.

[0099] Optionally, according to the first data, a look-up table method is used to determine a solution identifier, and the control solution corresponding to the determined solution identifier is used as the target control solution. The solution identifier can be a unique identifier for a control solution such as a solution ID, solution name, etc.

[0100] Optionally, the first data is input into a pre-trained solution prediction model for classification prediction, the vector element with the largest value is selected from the predicted vectors, the classification category corresponding to the selected vector element (i.e., the solution identifier) is used as the target identifier, and the control solution corresponding to the target identifier is used as the target control solution.

[0101] The pre-trained solution prediction model is a pre-trained multi-classification model. The model structure and model training method of the solution prediction model can be selected from the prior art and will not be elaborated here.

[0102] Optionally, according to the first data, a look-up table method is used to determine a first identifier, and the time data corresponding to the determined first identifier is used as the monitoring time data.

[0103] Optionally, the first data is input into a pre-trained time data prediction model for classification prediction, the vector element with the largest value is selected from the predicted vectors, the classification category corresponding to the selected vector element (i.e., the first identifier) is used as the second identifier, and the time data corresponding to the second identifier is used as the monitoring time data. The first identifier can be a unique identifier for a time data such as an ID, name, etc.

[0104] The pre-trained time data prediction model is a pre-trained multi-classification model. The model structure and model training method of the time data prediction model can be selected from the prior art and will not be elaborated here.

[0105] The monitoring time data describes one or each interval duration.

[0106] S42: Based on the monitoring time data, second data is obtained, third data is determined according to the second data, and the target control solution is updated according to the third data, where the second data includes: the current actual environmental humidity and / or the current actual environmental temperature.

[0107] Specifically, taking the time when the monitoring time data is determined in step S41 as the start time, second data is obtained at the time points corresponding to each interval duration of the monitoring time data.

[0108] Optionally, according to the second data, a look-up table method is used to determine the third data.

[0109] According to the third data, the target control solution is replaced and updated.

[0110] When the air water maker is in the automatic working mode in this embodiment, based on the first time interval, the first data is obtained to determine the target control scheme, thus realizing the periodic re-determination of the target control scheme, ensuring the timeliness and accuracy of the scheme; the monitoring time data is determined through the first data, the second data is further obtained based on this monitoring time data, the third data is determined according to the second data, and then the target control scheme is updated by using the third data. In this way, the target control scheme is finely adjusted within an interval period, greatly improving the ability of the air water maker to adapt to different environmental conditions and changes in water use requirements, enabling it to operate more flexibly and efficiently, stably providing high-quality water sources under various complex conditions, and effectively enhancing the overall performance and adaptability of the air water maker.

[0111] In one embodiment, the method further includes:

[0112] S51: Obtain the fourth data, where the fourth data includes the current actual environmental humidity and the current actual environmental temperature;

[0113] Specifically, the fourth data can be obtained at the start time of each interval period of the second time interval, or at each time point of the preset time list.

[0114] S52: Determine whether the fourth data meets the preset operating conditions;

[0115] Specifically, a regular expression is used to determine whether the fourth data meets the preset operating conditions.

[0116] Optionally, the preset operating conditions are that the humidity is 50%RH - 95%RH and the temperature is 10°C - 35°C.

[0117] Wherein, if the current actual environmental humidity of the fourth data is within 50%RH - 95%RH and the current actual environmental temperature of the fourth data is within 10°C - 35°C, it is determined that the fourth data meets the preset operating conditions; if the current actual environmental humidity of the fourth data is outside 50%RH - 95%RH or the current actual environmental temperature of the fourth data is outside 10°C - 35°C, it is determined that the fourth data does not meet the preset operating conditions.

[0118] S53: If it is satisfied, determine that the air water maker is in the automatic working mode;

[0119] Specifically, if it is satisfied, at this time it means that the conditions of the environment where the air water maker is located meet the environmental requirements for water production. Therefore, it is determined that the air water maker is in the automatic working mode.

[0120] S54: If not satisfied, it is determined that the air water maker is in a non-automatic working mode.

[0121] Specifically, if not satisfied, this means that the conditions of the environment where the air water maker is located do not meet the environmental requirements for water production. Therefore, it is determined that the air water maker is in a non-automatic working mode.

[0122] In this embodiment, when the fourth data meets the preset operating conditions, it is determined that the air water maker is in an automatic working mode, enabling the air water maker to operate in a reasonable external environment and meet the user's water demand; when the fourth data does not meet the preset operating conditions, it is determined that the air water maker is in a non-automatic working mode, thereby preventing the air water maker from operating in an unreasonable external environment, avoiding the situation where the air water maker does not produce water or produces less water, reducing equipment wear and the probability of failure caused by unreasonable operation, and extending the service life of the air water maker.

[0123] In one embodiment, the method further includes:

[0124] S541: If the air water maker is in a non-automatic working mode, generate a water replenishment instruction.

[0125] Specifically, if the air water maker is in a non-automatic working mode, this means that the air water maker cannot produce water from the moisture in the air. To ensure that the air water maker can continue to provide water to the user, therefore, a water replenishment instruction is generated.

[0126] S542: According to the water replenishment instruction, control the water replenishment valve of the air water maker to be connected, so as to replenish water to the collection tank and / or the purification tank of the air water maker through an external water source.

[0127] Specifically, when receiving the water replenishment instruction, control the water replenishment valve of the air water maker to be connected. By connecting the water replenishment valve, the external water source can replenish water to the collection tank and / or the purification tank of the air water maker, thereby increasing the water source of the air water maker.

[0128] The water replenishment valve uses a solenoid valve.

[0129] In this embodiment, when the air water maker is in a non-automatic working mode, water is replenished to the collection tank and / or the purification tank of the air water maker through an external water source, thereby ensuring that there is always water in the air water maker and expanding the application scenarios of the air water maker.

[0130] In one embodiment, the method further includes:

[0131] S61: Obtain a drainage signal.

[0132] Specifically, it can be a drainage signal input by the user, or a drainage signal actively triggered by the program file implementing the present application according to preset conditions. For example, a drainage signal is actively triggered once every 24 hours.

[0133] S62: In response to the drainage signal, control the air water maker to drain the water in the clean water tank of the air water maker into the collection tank of the air water maker.

[0134] Specifically, in response to the drainage signal, control the air water maker to drain all the water in the clean water tank of the air water maker into the collection tank of the air water maker.

[0135] In this embodiment, in response to the drainage signal, control the air water maker to drain the water in the clean water tank of the air water maker into the collection tank of the air water maker, which avoids waste of the water in the clean water tank and ensures that the water quality in the clean water tank is fresh and clean.

[0136] Please refer to Figure 3 As shown, in one embodiment, an air water maker control device is provided, and the device includes:

[0137] A data acquisition module 801, configured to acquire first water level information of the air water maker based on a target control scheme;

[0138] A control instruction determination module 802, configured to generate a control instruction according to the first water level information and the target control scheme, where the control instruction includes: a first instruction, a second instruction, and a third instruction, the first instruction is a stop water production instruction or a start water production instruction, the second instruction is a stop water purification instruction or a start water purification instruction, and the third instruction is a water dischargeable instruction or a non-water dischargeable instruction;

[0139] A control module 803, configured to control the operation of the air water maker according to the control instruction.

[0140] In this embodiment, by acquiring the first water level information of the air water maker based on the target control scheme and generating instructions including a first instruction, a second instruction, and a third instruction according to the first water level information and the target control scheme, precise regulation of the air water maker in different scenarios is achieved based on the target control scheme and the first water level information, and the working state of the air water maker can be controlled more flexibly and precisely. The needs of users in various complex water use situations are met through the target control scheme, and the problem that the existing simple control methods of stopping water production when the water is full and starting water production when there is no water cannot meet the diverse water use scenarios and more precise water use management requirements is effectively solved.

[0141] In one embodiment, the first water level information includes: the water level information of the water collection tank and the water level information of the purified water tank. The step of generating a control instruction in the control instruction determination module 802 according to the target water level information and the target control scheme includes:

[0142] If the water level information of the water collection tank is less than or equal to the first water collection level data in the target control scheme, determine that the first instruction in the control instruction is a start water production instruction;

[0143] If the water level information of the water collection tank is greater than or equal to the second water collection level data in the target control scheme, determine that the first instruction in the control instruction is a stop water production instruction;

[0144] If the water level information of the water collection tank is greater than or equal to the third water collection level data in the target control scheme, and the water level information of the purified water tank is less than or equal to the first purified water level data in the target control scheme, determine that the second instruction in the control instruction is a start purified water instruction;

[0145] If the water level information of the purified water tank is greater than or equal to the second purified water level data in the target control scheme, determine that the second instruction in the control instruction is a stop purified water instruction;

[0146] If the water level information of the purified water tank is greater than or equal to the third purified water level data in the target control scheme, determine that the third instruction in the control instruction is a water dischargeable instruction;

[0147] If the water level information of the purified water tank is less than the third purified water level data in the target control scheme, determine that the third instruction in the control instruction is a non-water dischargeable instruction.

[0148] In one embodiment, the target control scheme includes: time period, time period category, and water level data set;

[0149] If the time period category is a low water consumption period, the second water collection level data of the water level data set with the time period category of low water consumption period is 50% of the total water level of the water collection tank of the air water maker, and the second purified water level data of the water level data set with the time period category of low water consumption period is 50% of the total water level of the purified water tank of the air water maker;

[0150] If the time period category is a high water consumption period, the second water collection level data of the water level data set with the time period category of high water consumption period is 100% of the total water level of the water collection tank of the air water maker, and the second purified water level data of the water level data set with the time period category of high water consumption period is 100% of the total water level of the purified water tank of the air water maker.

[0151] In one embodiment, the device further includes: a solution determination module, and the solution determination module is configured to:

[0152] When the air water maker is in the automatic working mode, based on a first time interval, obtain first data, and determine the target control solution according to the first data, and determine monitoring time data according to the first data, where the first data includes at least one of the current actual ambient humidity, the current actual ambient temperature, and the historical water usage data;

[0153] Based on the monitoring time data, obtain second data, determine third data according to the second data, and update the target control solution according to the third data, where the second data includes the current actual ambient humidity and / or the current actual ambient temperature.

[0154] In one embodiment, the device further includes: a mode determination module, and the mode determination module is configured to:

[0155] Obtain fourth data, where the fourth data includes the current actual ambient humidity and the current actual ambient temperature;

[0156] Determine whether the fourth data meets a preset operating condition;

[0157] If it meets, determine that the air water maker is in the automatic working mode;

[0158] If it does not meet, determine that the air water maker is in the non - automatic working mode.

[0159] In one embodiment, the device further includes: a water replenishment module, and the water replenishment module is configured to:

[0160] If the air water maker is in the non - automatic working mode, generate a water replenishment instruction;

[0161] According to the water replenishment instruction, control the water replenishment valve of the air water maker to be connected, so as to replenish water to the water collection tank and / or the water purification tank of the air water maker through an external water source.

[0162] In one embodiment, the device further includes: a water purification tank emptying module, and the water purification tank emptying module is configured to:

[0163] Obtain a drainage signal;

[0164] In response to the drainage signal, control the air water maker to drain the water in the water purification tank of the air water maker into the water collection tank of the air water maker.

[0165] In one embodiment, an air water maker is provided. The air water maker includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the following steps are implemented:

[0166] Based on a target control scheme, obtain the first water level information of the air water maker;

[0167] Generate a control instruction according to the first water level information and the target control scheme. The control instruction includes: a first instruction, a second instruction, and a third instruction. The first instruction is a stop water production instruction or a start water production instruction. The second instruction is a stop water purification instruction or a start water purification instruction. The third instruction is a water dischargeable instruction or a non-water dischargeable instruction;

[0168] Control the operation of the air water maker according to the control instruction.

[0169] In this embodiment, by obtaining the first water level information of the air water maker based on the target control scheme, and generating an instruction including a first instruction, a second instruction, and a third instruction according to the first water level information and the target control scheme, precise regulation of the air water maker in different scenarios is achieved based on the target control scheme and the first water level information. The working state of the air water maker can be controlled more flexibly and precisely. The needs of users in various complex water use situations are met through the target control scheme, effectively solving the problem in the prior art that the simple control methods of stopping water production when the water tank is full and starting water production when there is no water cannot meet the requirements of diverse water use scenarios and more precise water use management.

[0170] In one embodiment, a computer-readable storage medium is provided. The computer-readable storage medium stores a computer program. When the computer program is executed by a processor, the following steps are implemented:

[0171] Based on a target control scheme, obtain the first water level information of the air water maker;

[0172] Generate a control instruction according to the first water level information and the target control scheme. The control instruction includes: a first instruction, a second instruction, and a third instruction. The first instruction is a stop water production instruction or a start water production instruction. The second instruction is a stop water purification instruction or a start water purification instruction. The third instruction is a water dischargeable instruction or a non-water dischargeable instruction;

[0173] Control the operation of the air water maker according to the control instruction.

[0174] In this embodiment, the first water level information of the air water maker is obtained based on the target control scheme, and the first instruction, the second instruction, and the third instruction are generated according to the first water level information and the target control scheme, realizing the precise regulation of the air water maker in different scenarios based on the target control scheme and the first water level information, being able to control the working state of the air water maker more flexibly and accurately, meeting the needs of users in various complex water use situations through the target control scheme, and effectively solving the problem that the existing simple control methods of stopping when the water is full and starting when there is no water cannot meet the diverse water use scenarios and more precise water use management requirements.

[0175] It should be noted that for the functions or steps that the above computer-readable storage medium or computer device can achieve, reference can be made to the relevant descriptions on the server side and the client side in the foregoing method embodiments. To avoid repetition, they will not be described in detail here.

[0176] Those of ordinary skill in the art can understand that all or part of the processes in the above method embodiments can be completed by instructing relevant hardware through a computer program. The computer program can be stored in a non-volatile computer-readable storage medium. When the computer program is executed, it can include the processes of the above method embodiments. Among them, any reference to the memory, storage, database, or other media used in the various embodiments provided in the present application can include non-volatile and / or volatile memories. Non-volatile memories can include read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM), or flash memory. Volatile memories can include random access memory (RAM) or external cache memory. By way of illustration and not limitation, RAM is available in various forms, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDR SDRAM), enhanced SDRAM (ESDRAM), synchronous link DRAM (SLDRAM), Rambus direct RAM (RDRAM), direct memory bus dynamic RAM (DRDRAM), and Rambus dynamic RAM (RDRAM), etc.

[0177] Those skilled in the art can clearly understand that for the convenience and brevity of description, only the above division of each functional unit and module is used as an example. In actual applications, the above functions can be allocated to different functional units and modules according to needs, that is, the internal structure of the device is divided into different functional units or modules to complete all or part of the functions described above.

[0178] The above-described embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the various embodiments of the present invention, and should all be included within the protection scope of the present invention.

Claims

1. A method for controlling an air water generator, characterized in that: The method comprises: Based on the target control scheme, first water level information of the air water generator is obtained; Generate a control instruction according to the first water level information and the target control scheme, wherein the control instruction includes: a first instruction, a second instruction and a third instruction, the first instruction is an instruction to stop water production or an instruction to start water production, the second instruction is an instruction to stop water purification or an instruction to start water purification, and the third instruction is an instruction to release water or an instruction to not release water; The air water generator is controlled to operate according to the control instruction.

2. The air water generator control method according to claim 1, characterized in that: The first water level information includes: water level information of a water collecting tank and water level information of a clean water tank. The step of generating a control instruction according to the target water level information and the target control scheme includes: If the water level information of the water collecting tank is less than or equal to the first water collecting level data in the target control scheme, determining that the first instruction in the control instruction is an instruction to start water production; If the water level information of the water collecting tank is greater than or equal to the second water collecting water level data in the target control scheme, determining that the first instruction in the control instruction is an instruction to stop water production; If the water level information of the water collecting tank is greater than or equal to the third water collecting level data in the target control scheme, and the water level information of the water purification tank is less than or equal to the first water purification level data in the target control scheme, then the second instruction in the control instruction is determined to be a water purification start instruction; If the water level information of the clean water tank is greater than or equal to the second clean water level data in the target control scheme, determining that the second instruction in the control instruction is a stop water purification instruction; If the water level information of the clean water tank is greater than or equal to the third clean water level data in the target control scheme, then determining that the third instruction in the control instruction is a water discharge instruction; If the clean water tank water level information is less than the third clean water level data in the target control scheme, it is determined that the third instruction in the control instruction is a non-draining instruction.

3. The air water generator control method according to claim 2, characterized in that: The target control scheme includes: time periods, time period categories and water level data sets; If the time period category is water consumption valley, the second water collection level data of the water level data set when the time period category is water consumption valley is 50% of the total water level of the water collection tank of the air water generator, and the second water purification level data of the water level data set when the time period category is water consumption valley is 50% of the total water level of the water purification tank of the air water generator; If the time period category is peak water usage, the second water collection level data of the water level data set whose time period category is peak water usage is 100% of the total water level of the water collection tank of the air water generator, and the second water purification level data of the water level data set whose time period category is peak water usage is 100% of the total water level of the water purification tank of the air water generator.

4. The air water generator control method according to claim 1, characterized in that: The method further comprises: When the air water generator is in an automatic working mode, first data is acquired based on a first time interval, the target control scheme is determined according to the first data, and monitoring time data is determined according to the first data, wherein the first data includes: at least one of current actual ambient humidity, current actual ambient temperature, and historical water use data; Based on the monitoring time data, second data is acquired, and according to the second data, third data is determined, and according to the third data, the target control scheme is updated, wherein the second data includes: current actual ambient humidity and / or current actual ambient temperature.

5. The air water generator control method according to claim 4, characterized in that: The method further comprises: Acquire fourth data, wherein the fourth data includes current actual ambient humidity and current actual ambient temperature; Determining whether the fourth data meets a preset operating condition; If the conditions are met, it is determined that the air water generator is in automatic working mode; If not, it is determined that the air water generator is in a non-automatic working mode.

6. The air water generator control method according to claim 5, characterized in that: The method further comprises: If the air water generator is in a non-automatic working mode, a water replenishment instruction is generated; According to the water replenishment instruction, the water replenishment valve of the air water making machine is controlled to be connected so as to replenish water to the water collecting tank of the air water making machine and / or the clean water tank of the air water making machine through an external water source.

7. The air water generator control method according to claim 1, characterized in that: The method further comprises: Get drainage signal; In response to the drainage signal, the air water generator is controlled to discharge the water in the clean water tank of the air water generator into the water collecting tank of the air water generator.

8. An air water making machine control device, characterized in that: The device comprises: A data acquisition module, used for acquiring first water level information of the air water generator based on a target control scheme; A control instruction determination module, used to generate a control instruction according to the first water level information and the target control scheme, wherein the control instruction includes: a first instruction, a second instruction and a third instruction, the first instruction is an instruction to stop water production or an instruction to start water production, the second instruction is an instruction to stop water purification or an instruction to start water purification, and the third instruction is an instruction to release water or an instruction to not release water; A control module is used to control the operation of the air water generator according to the control instruction.

9. An air water generator, characterized in that: The air water making machine includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the steps of the air water making machine control method according to any one of claims 1 to 7 are implemented.

10. A computer-readable storage medium, characterized in that: The computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the steps of the air water generator control method according to any one of claims 1 to 7 are implemented.