Air treatment system, control method and device, electronic equipment and storage medium

By obtaining and executing high-priority control instructions in the air treatment system, the control conflict problem in the linkage scenario of air supply equipment is solved, and the user experience is improved.

CN120232140APending Publication Date: 2025-07-01DAIKIN INDUSTRIES LTD
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Patent Information

Application Number
CN202311837280.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-28
Publication Date
2025-07-01

AI Technical Summary

Technical Problem

In the air treatment system, in the scenario where multiple air treatment equipment are linked, the control instructions of the air supply equipment may conflict with other control instructions, resulting in the inability to meet user needs and affect the user experience.

Method used

During the operation of the air supply device according to the first control instruction of the device linkage scenario, the second control instruction is obtained and a high priority control instruction is executed to ensure reasonable equipment control.

Benefits of technology

Through the execution of priority control instructions, the control rationality of air supply equipment is improved and the user experience is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides an air treatment system, a control method and device, electronic equipment and a storage medium. A second control instruction can be obtained when air supply equipment in the air treatment system operates according to a first control instruction related to an equipment linkage scene, and under the condition that the second control instruction comprises control over the air supply equipment, the control instruction with the high priority in the first control instruction and the second control instruction is executed. Therefore, the air supply equipment can be controlled more reasonably, and the user experience is improved.
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Description

Technical Field

[0001] This application relates to the field of air treatment, and particularly to an air treatment system, a control method, a device, an electronic device, and a storage medium. Background Art

[0002] With the continuous progress of science and technology and the improvement of living standards, people's requirements for the living environment are getting higher and higher. Among them, the indoor air quality, etc. are important measurement indicators of the living environment. For example, when the air quality is poor, it is necessary to purify the air through a ventilation device, or adjust the humidity of the air through a humidity adjustment device, or adjust the temperature of the air through a temperature adjustment device, and so on.

[0003] It should be noted that the above introduction of the technical background is only for the convenience of clearly and completely explaining the technical solution of this application and facilitating the understanding of those skilled in the art. It cannot be considered that the above technical solutions are well-known to those skilled in the art just because these solutions are described in the background art part of this application. Summary of the Invention

[0004] The inventor found that in an air treatment system, there are scenarios or modes where more than one air treatment device is linked, that is, device linkage scenarios. For example, in a device linkage scenario, more than one air treatment device can be controlled, or at least one other air treatment device can be automatically controlled accordingly based on the detection results of at least one air treatment device.

[0005] Taking the ventilation device of the air treatment system as an example, during the operation of the ventilation device according to a control instruction related to a device linkage scenario, if other received control instructions also involve the control of this ventilation device, it may affect the control effect of the control instruction related to the device linkage scenario, unable to meet the user's needs and affecting the user experience.

[0006] To solve at least one of the above problems, the embodiments of this application provide an air treatment system, a control method, a device, an electronic device, and a storage medium. During the operation of the ventilation device in the air treatment system according to a first control instruction related to a device linkage scenario, a second control instruction can be obtained. When the second control instruction includes the control of the ventilation device, the control instruction with the higher priority among the first control instruction and the second control instruction is executed. Thus, more reasonable control of the ventilation device can be achieved, improving the user experience.

[0007] According to the first aspect of the embodiments of the present application, a control method for an air treatment system is provided. The air treatment system includes a temperature adjustment device, a humidity adjustment device, and a air supply device. The control method includes: during the operation of the air supply device according to a first control instruction related to a device linkage scenario, obtaining a second control instruction; and when the second control instruction includes control of the air supply device, executing the control instruction with a higher priority among the first control instruction and the second control instruction.

[0008] According to the second aspect of the embodiments of the present application, an air treatment system is provided. The air treatment system includes a temperature adjustment device, a humidity adjustment device, an air supply device, and a control device. During the operation of the air supply device according to a first control instruction related to a device linkage scenario, the control device obtains a second control instruction. When the second control instruction includes control of the air supply device, the control device executes the control instruction with a higher priority among the first control instruction and the second control instruction.

[0009] According to the third aspect of the embodiments of the present application, an electronic device is provided. The electronic device includes: a memory that stores a computer program; and a processor that, when executing the computer program, implements the method described in the first aspect of the embodiments of the present application.

[0010] According to the fourth aspect of the embodiments of the present application, a computer-readable storage medium is provided, on which a computer program is stored. When the computer program is executed by a processor, the method described in the first aspect of the embodiments of the present application is implemented.

[0011] According to the fifth aspect of the embodiments of the present application, a control device for an air treatment system is provided. The air treatment system includes a temperature adjustment device, a humidity adjustment device, and an air supply device. The control device includes: an obtaining unit that obtains a second control instruction during the operation of the air supply device according to a first control instruction related to a device linkage scenario; and a control unit that, when the second control instruction includes control of the air supply device, executes the control instruction with a higher priority among the first control instruction and the second control instruction.

[0012] One of the beneficial effects of the embodiments of the present application is that: in the air treatment system, a second control instruction is obtained during the operation of the air supply device according to a first control instruction related to a device linkage scenario. When the second control instruction includes control of the air supply device, the control instruction with a higher priority among the first control instruction and the second control instruction is executed. Thus, more reasonable control of the air supply device can be achieved, improving the user experience.

[0013] Reference is made to the following description and the accompanying drawings, which disclose in detail specific embodiments of the present application and indicate the ways in which the principles of the present application can be employed. It should be understood that the embodiments of the present application are not limited in scope thereby. Within the spirit and terms of the appended claims, the embodiments of the present application include many variations, modifications, and equivalents.

[0014] The feature information described and illustrated for one embodiment can be used in the same or similar manner in one or more other embodiments, combined with the feature information in other embodiments, or substituted for the feature information in other embodiments.

[0015] It should be emphasized that the term "comprising / including" as used herein refers to the presence of feature information, whole parts, steps, or components, but does not exclude the presence or addition of one or more other feature information, whole parts, steps, or components. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Many aspects of the present application can be better understood with reference to the following drawings. The components in the drawings are not drawn to scale, but are only for showing the principles of the present application. For the convenience of showing and describing some parts of the present application, the corresponding parts in the drawings may be enlarged or reduced. The elements and feature information described in one drawing or one embodiment of the present application can be combined with the elements and feature information shown in one or more other drawings or embodiments. In addition, in the drawings, like reference numerals denote corresponding components in several drawings and can be used to indicate the corresponding components used in more than one embodiment.

[0017] In the drawings:

[0018] Figure 1 is a schematic diagram of a control method for an air treatment system according to an embodiment of the present application;

[0019] Figure 2 is another schematic diagram of a control method for an air treatment system according to an embodiment of the present application;

[0020] Figure 3 is a schematic diagram of an air treatment system according to an embodiment of the present application;

[0021] Figure 4 is another schematic diagram of an air treatment system according to an embodiment of the present application;

[0022] Figure 5 is a schematic diagram of an electronic device according to an embodiment of the present application;

[0023] Figure 6 is a schematic diagram of a control device for an air treatment system according to an embodiment of the present application. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0024] The preferred embodiments of the present application will be described below with reference to the accompanying drawings.

[0025] Embodiment 1

[0026] Embodiment 1 of the present application provides a control method for an air treatment system. The air treatment system includes a temperature adjustment device, a humidity adjustment device, and a air supply device.

[0027] Figure 1 is a schematic diagram of the control method for the air treatment system according to the embodiment of the present application. As Figure 1 shown, the method:

[0028] Step 101: During the operation of the air supply device according to a first control instruction related to an equipment linkage scenario, obtain a second control instruction; and

[0029] Step 102: When the second control instruction includes control of the air supply device, execute the control instruction with the higher priority among the first control instruction and the second control instruction.

[0030] According to the above embodiment, since the equipment linkage scenario involves more than one air treatment device, the control instructions related to the equipment linkage scenario include control of more than one air treatment device. When the air treatment device executes the control instructions related to the equipment scenario linkage, the user may not be able to clearly understand the multiple air treatment devices involved in the control instructions and the specific control content. Therefore, other controls that conflict with the current control may be performed, resulting in the inability to achieve the expected control effect and affecting the user experience.

[0031] Through the above embodiment, when the air supply device in the air treatment system operates according to the first control instruction related to the equipment linkage scenario, if a second control instruction is obtained, and when the second control instruction includes control of the air supply device, execute the control instruction with the higher priority among the first control instruction and the second control instruction. Thus, more reasonable control of the air supply device can be achieved, improving the user experience.

[0032] In some embodiments, in the air treatment system, the air treatment device may include at least one of the following: a temperature adjustment device, a humidity adjustment device, or an air supply device.

[0033] The temperature adjustment device has the function of adjusting the temperature of the air, for example, including the indoor unit of an air conditioning system or a floor heating device, etc.

[0034] The humidity adjustment device has the function of adjusting the humidity of the air, for example, including a humidification module or a dehumidification module, etc.

[0035] The air supply device is used to supply air to the target space, for example, including a fresh air treatment device, a total heat exchanger, a ventilation device, etc.

[0036] In some embodiments, the air handling system may further include a control device. The control device may include at least one of the following: a server, a gateway device, a central controller, a wall controller, a remote controller, and a control board. The control device may execute the control method of the embodiments of the present application.

[0037] In some embodiments, the first control instruction is related to a device linkage scenario, and the first control instruction includes the control of more than one air handling device. The more than one air handling device may include a air supply device, and thus, the air supply device may operate according to the first control instruction.

[0038] In some embodiments, the device linkage scenario may be various scenarios or modes involving more than one air handling device. For example, a strong humidification mode, a carbon dioxide linkage mode, a fine particulate matter (PM2.5) linkage mode, etc.

[0039] For example, in the strong humidification mode, the air supply device and the humidity adjustment device may be controlled to increase the humidity of the air in a short time;

[0040] In the carbon dioxide linkage mode, when the sensor detects that the carbon dioxide concentration exceeds the set value, the air supply device is automatically turned on to reduce the carbon dioxide concentration in the target space below the set value;

[0041] In the PM2.5 linkage mode, the sensor may detect the PM2.5 concentration inside and outside the room, and according to the detection result, set the operation mode and operation air volume of the air supply device. For example, when the PM2.5 concentration in the outdoor space is higher than the PM2.5 concentration in the indoor space, the operation mode of the air supply device is set to the internal circulation mode, and so on.

[0042] In some embodiments, the second control instruction may also be a control instruction related to a device scenario linkage. However, the present application is not limited thereto, and the second control instruction may also be other types of instructions.

[0043] In some embodiments, the first control instruction and the second control instruction may include at least one of the following control information: a switch state, an operation mode, or an operation parameter.

[0044] Taking the air handling device as an air supply device as an example, the switch state may be the switch state of the air supply device; the operation mode may be an internal circulation mode, an external circulation mode (also known as a total heat exchange mode), etc.; the operation parameter may be an operation air volume, etc. The present application is not limited thereto, and for other air handling devices, the above control information may be other corresponding contents.

[0045] In some embodiments, the control mode of the above control information may include a fixed control mode and a switchable control mode. For example, when the control mode of the control information is a fixed control mode, the control information is set to a fixed value; when the control mode of the control information is a switchable control mode, the control information can be switched according to program logic or actual conditions, etc.

[0046] For example, taking the strong humidification mode as an example, in the control instructions related to the strong humidification mode, the switch state, operation mode, and operation parameters of the air supply device are all in a fixed control mode. That is, in the strong humidification mode, the switch state of the air supply device must be on (ON), the operation mode must be the alternation of the internal circulation and the external circulation, and the operation air volume must be at the high gear (H gear).

[0047] Another example is the carbon dioxide linkage mode. In the control instructions related to the carbon dioxide linkage mode, the switch state and operation mode of the air supply device are in a fixed control mode, and the operation parameters are in a switchable control mode. That is, the switch state of the air supply device must be on (ON), the operation mode must be the external circulation, and the operation air volume can be switched according to program logic or actual conditions, etc. For example, it can be set to a low gear, a medium gear, or a high gear, etc.

[0048] In some embodiments, in step 101, obtaining the second control instruction may include the control device receiving the second control instruction from other devices, or the control device generating the second control instruction, or the control device making the second control instruction including the schedule setting information received or generated in advance take effect, etc.

[0049] The schedule setting information may include the scheduled time for executing the second control instruction. For example, the control device receives or generates the second control instruction with the schedule setting information and starts timing. When the scheduled time in the schedule setting information is reached, the second control instruction takes effect. Among them, the time when the control device receives or generates the second control instruction can be before or during the operation of the air supply device according to the first control instruction. For example, the central controller generated a control instruction for intelligent purification scheduled at 9:00 this morning based on user input information yesterday. When 9:00 is reached, the control instruction for intelligent purification takes effect.

[0050] In some embodiments, in step 102, the control of the air supply device included in the second control instruction may be that the control information of the air supply device in the second control instruction is different from the control information of the air supply device in the first control instruction. For example, when the first control instruction is a control instruction related to the strong humidification mode and the second control instruction is a control instruction related to the carbon dioxide linkage mode, the operation mode in the first control instruction is the alternation of the internal circulation and the external circulation, and the operation mode in the second control instruction is the external circulation. The operation modes of the two are different.

[0051] In some embodiments, the priorities of the first control instruction and the second control instruction can be determined in various ways. For example, among the first control instruction and the second control instruction, the control instruction including schedule setting information has a higher priority. Thus, according to the schedule setting information, the corresponding control instruction can be executed at a preset time, thereby avoiding confusing the user and improving the user experience.

[0052] The schedule setting information can include periodic time information, for example, 8:00 am every Saturday, 9:00 pm every day, etc.; or, the schedule setting information can also include non-periodic time information, for example, the time after a preset duration, for example, after 2 hours, etc.

[0053] The user set the intelligent purification mode yesterday, scheduled to perform intelligent purification at 9:00 today; at 8:00 today, the user clicked to run the strong humidification mode (at this time, the air volume gear of the air supply device was fixed at the H gear); when the time reached 9:00 today, the control device received the operation instruction for intelligent purification. Since the operation instruction for intelligent purification includes schedule setting information while the operation instruction for strong humidification does not include schedule setting information, the priority of the operation instruction for intelligent purification is higher, and the air treatment system switches from the strong humidification mode to the intelligent purification mode.

[0054] When there is a conflict between operation modes, the mode including schedule setting information is given priority, thereby avoiding confusing the user, for example, why the preset scene mode does not run, etc.

[0055] In some embodiments, when neither the first control instruction nor the second control instruction includes schedule setting information, the priority of the control instruction can be determined according to at least one of the following conditions: the type of the control instruction; whether the air quality data related to the control instruction is abnormal; the control method of the control information in the control instruction; or the acquisition time of the control instruction.

[0056] In some embodiments, the type of the control instruction includes, for example, a scene setting instruction. The scene setting instruction is used to make the air treatment system operate in a specified scene. The scene can be pre-set, and different scenes have different control methods. For example, the scene can include: formaldehyde removal mode, pet care mode, sleep mode, away mode, strong deodorization mode, intelligent mildew inhibition mode, or away floor heating energy-saving mode, etc. This application is not limited thereto, and the type of the control instruction can also include, for example, a strong humidification instruction, a carbon dioxide linkage instruction, a PM2.5 linkage instruction, etc.

[0057] Table 1 shows the priorities of the control instructions in this application. Taking the types of control instructions including scene setting instructions, strong humidification instructions, carbon dioxide linkage instructions, and PM2.5 linkage instructions as examples, Table 1 shows the priorities of various types of control instructions.

[0058] Table 1 Schematic of the priorities of the control instructions in this application

[0059]

[0060] As shown in Table 1, the scene setting instructions include schedule setting information, and its priority is higher than other instructions. In addition, the priority of the strong humidification instructions is higher than that of the carbon dioxide linkage instructions and the PM2.5 linkage instructions, and the priorities of the carbon dioxide linkage instructions and the PM2.5 linkage instructions are the same.

[0061] In some embodiments, the air quality data related to the control instruction can be the air quality data that the control instruction can adjust. The air quality data can include at least one of the following: air temperature, air humidity, carbon dioxide concentration, fine particulate matter (PM2.5) concentration, inhalable particulate matter (PM10) concentration, volatile organic compound (VOC) concentration, concentration of indoor organic gaseous substances (TVOC), nitrogen oxide concentration, ozone concentration, etc.

[0062] In some embodiments, when determining the priority according to whether the air quality data related to the control instruction is abnormal, the priority of the control instruction corresponding to the abnormal air quality data is high. For example: taking the first control instruction as the PM2.5 linkage instruction and the second control instruction as the carbon dioxide linkage instruction as examples, when the sensor detects that the carbon dioxide concentration in the target space is higher than the first set value and the PM2.5 concentration is lower than the second set value, the carbon dioxide concentration is abnormal and the PM2.5 concentration is not abnormal. The priority of the carbon dioxide linkage instruction corresponding to the carbon dioxide concentration is higher than that of the PM2.5 linkage instruction. Therefore, the air treatment system switches from the PM2.5 linkage mode to the carbon dioxide linkage mode; the air supply device operates according to the carbon dioxide linkage instruction. As shown in Table 1, the operation mode of the air supply device is fixed to the external circulation.

[0063] Similarly, when the sensor detects that the PM2.5 concentration in the target space is higher than the second set value, the PM2.5 concentration is abnormal. The priority of the PM2.5 linkage instruction corresponding to the PM2.5 concentration is higher. Therefore, the air treatment system does not switch the operation mode.

[0064] In some embodiments, when determining the priority according to the control mode of the control information in the control instruction, the control instruction with a fixed control mode of the control information has a higher priority than the control instruction with a switchable control mode of the control information, or, in the control instruction, the more control information with a fixed control mode, the higher the priority of the control instruction.

[0065] For example: taking the first control instruction as the PM2.5 linkage instruction and the second control instruction as the carbon dioxide linkage instruction as an example, as shown in Table 1, the operation mode of the air supply device in the carbon dioxide linkage instruction is fixed as the external circulation mode, and the operation mode in the PM2.5 linkage instruction is not switchable. The priority of the carbon dioxide linkage instruction corresponding to the carbon dioxide concentration is higher. Therefore, the air handling system switches from the PM2.5 linkage mode to the carbon dioxide linkage mode.

[0066] In some embodiments, the later obtained control instruction has a higher priority. For example: taking the first control instruction as the PM2.5 linkage instruction and the second control instruction as the carbon dioxide linkage instruction as an example, since the carbon dioxide linkage instruction is obtained after the PM2.5 linkage instruction, the priority of the carbon dioxide linkage instruction is higher. Therefore, the air handling system switches from the PM2.5 linkage mode to the carbon dioxide linkage mode.

[0067] In some embodiments, when determining the priorities of the first control instruction and the second control instruction according to multiple conditions, the priorities of the first control instruction and the second control instruction can be determined according to the multiple conditions and the priorities of the multiple conditions.

[0068] In some embodiments, the priorities of the above conditions from high to low are: the type of the control instruction; whether the air quality data related to the control instruction is abnormal; the control mode of the control information in the control instruction; the acquisition time of the control instruction.

[0069] For example, when judging the priorities of the first control instruction and the second control instruction: the control instruction including the schedule setting information has a higher priority than the control instruction not including the schedule setting information;

[0070] In the case where both control instructions include the schedule setting information or neither includes the schedule setting information, the priority is determined according to the type of the control instruction. For example, the priority of the strong humidification instruction is higher than the priorities of the carbon dioxide linkage instruction and the PM2.5 linkage instruction;

[0071] In the case where the priorities corresponding to the types of the two control instructions are the same, the control instruction corresponding to the abnormal air quality data has a higher priority than the control instruction corresponding to the non-abnormal air quality data;

[0072] When the air quality data corresponding to the two control instructions are both abnormal or both normal, the control mode of the control information is that the fixed control instruction has a higher priority than the switchable control instruction of the control information;

[0073] When the control modes of the control information corresponding to the two control instructions are both fixed or both switchable, the later obtained control instruction has a higher priority.

[0074] This application is not limited to this, and the priorities of the above conditions can also be in other orders.

[0075] In some embodiments, it is not limited to determining the priorities of the first control instruction and the second control instruction according to the schedule setting information. For example, the priorities of the first control instruction and the second control instruction can be related to the adjustment requirements of the corresponding air quality data, and the control instruction corresponding to the air quality data with a higher adjustment requirement has a higher priority.

[0076] For example, the adjustment requirement of the abnormal air quality data is higher than that of the normal air quality data. In other words, the control instruction corresponding to the abnormal air quality data has a higher priority than the control instruction corresponding to the normal air quality data.

[0077] In some embodiments, as Figure 1 shown, the control method may further include:

[0078] Step 103: When the priorities of the first control instruction and the second control instruction are the same, continue to execute the first control instruction and send a prompt message to the user, or execute the second control instruction.

[0079] That is to say, when the priorities of the first control instruction and the second control instruction are the same, the first control instruction that is running can be preferentially executed, or the later obtained second control instruction can also be preferentially executed.

[0080] In some embodiments, as Figure 1 shown, the control method may further include:

[0081] Step 104: When the second control instruction does not include the control information for the air handling device, execute the second control instruction.

[0082] Table 2 is a schematic illustration of the execution mode of the control instructions in this application. As shown in Table 2, when both the first control instruction and the second control instruction include the control of the air supply device, if the first control instruction includes schedule setting information and the second control instruction does not include schedule setting information, the first control instruction is continuously executed; if the first control instruction does not include schedule setting information and the second control instruction includes schedule setting information, the second control instruction is executed, or, both the first control instruction and the second control instruction include schedule setting information, or, neither the first control instruction nor the second control instruction includes a timing instruction, then the second control instruction obtained after execution is executed.

[0083] When one of the first control instruction and the second control instruction does not include the control of the air supply device, or neither the first control instruction nor the second control instruction includes the control of the air supply device, the second control instruction obtained after execution is executed.

[0084] Table 2 Schematic illustration of the execution mode of the control instructions in this application

[0085]

[0086] Figure 2 is another schematic diagram of the control method of the air handling system according to the embodiment of this application. As Figure 2 shown, the control method includes:

[0087] Step 201: Obtain the second control instruction;

[0088] Step 202: Determine whether the air supply device is in an operating state. If it is determined to be in an operating state, step 203 is executed; otherwise, step 206 is executed;

[0089] Step 203: Determine the first control instruction for which the air supply device is currently operating;

[0090] Step 204: Determine whether the priority of the first control instruction is higher than the priority of the second control instruction. If it is determined to be the case, step 205 is executed; otherwise, step 206 is executed;

[0091] Step 205: The air supply device continues to operate according to the first control instruction, and a prompt message is sent to the user;

[0092] Step 206: The air supply device operates according to the second control instruction.

[0093] It should be noted that the above drawings only schematically illustrate the embodiments of this application, but this application is not limited thereto. For example, the execution order between various operations can be appropriately adjusted. In addition, some other operations can be added or some of the operations can be reduced (for example, the operations or steps corresponding to the dotted boxes in the drawings). Those skilled in the art can make appropriate modifications according to the above content, not limited to the records in the above drawings.

[0094] Each of the above embodiments only exemplarily illustrates the embodiments of the present application. However, the present application is not limited thereto, and appropriate modifications can be made on the basis of each of the above embodiments. For example, each of the above embodiments can be used alone, or one or more of the above embodiments can be combined.

[0095] According to the above embodiments, in an air handling system, a second control instruction is obtained during the period when the air supply device operates according to a first control instruction related to a device linkage scenario. When the second control instruction includes the control of the air supply device, the control instruction with the higher priority among the first control instruction and the second control instruction is executed. Thereby, more reasonable control of the air supply device can be achieved, improving the user experience.

[0096] Embodiment 2

[0097] Embodiment 2 of the present application provides an air handling system, which corresponds to the method described in Embodiment 1. The specific content can refer to the description in Embodiment 1.

[0098] Figure 3 is a schematic diagram of the air handling system according to the embodiments of the present application. As Figure 3 shown, the air handling system 300 includes a temperature adjustment device 301, a humidity adjustment device 302, an air supply device 303, and a control device 304.

[0099] Among them, during the period when the air supply device 303 operates according to a first control instruction related to a device linkage scenario, the control device 304 obtains a second control instruction. When the second control instruction includes the control of the air supply device 303, the control instruction with the higher priority among the first control instruction and the second control instruction is executed.

[0100] According to the above embodiments, in an air handling system, a second control instruction is obtained during the period when the air supply device operates according to a first control instruction related to a device linkage scenario. When the second control instruction includes the control of the air supply device, the control instruction with the higher priority among the first control instruction and the second control instruction is executed. Thereby, more reasonable control of the air supply device can be achieved, improving the user experience.

[0101] In some embodiments, the temperature adjustment device 301 has the function of adjusting the temperature of the air, such as including an indoor unit of an air conditioning system or a floor heating device, etc.

[0102] In some embodiments, the humidity adjustment device 302 has the function of adjusting the humidity of the air, such as including a humidification module or a dehumidification module, etc.

[0103] In some embodiments, the air supply device 303 is configured to supply air to a target space, such as a fresh air treatment device, an enthalpy exchanger, a ventilation device, etc.

[0104] In some embodiments, the control device 304 includes at least one of the following: a server, a gateway device, a centralized controller, a wall controller, a remote controller, and a control board.

[0105] Figure 4 is another schematic diagram of the air treatment system according to the embodiments of the present application. In Figure 4 the figure, the arrowed pipelines connecting modules or devices are air pipelines; the solid lines between modules or devices represent refrigerant pipelines; the dashed lines between modules or devices represent communication connections, which can be wired or wireless connections.

[0106] As Figure 4 shown, the air treatment system includes an air supply device 303, a humidity adjustment device 302, a temperature adjustment device 301, and a control device 304. The air supply device 303 supplies air to the indoor space and includes a fan 3031. The humidity adjustment device 302 is disposed on the downstream side of the air path of the air supply device 303 and is configured to adjust the humidity of the air output by the air supply device 303. The temperature adjustment device 301 is disposed in the indoor space and is configured to adjust the temperature of the air in the indoor space.

[0107] In some embodiments, as Figure 4 shown, the temperature adjustment device 301 is an indoor unit in an air conditioning system. The air conditioning system can be a commercial air conditioning system or a household air conditioning system.

[0108] In some embodiments, the air conditioning system may include at least one set of outdoor units 305 and at least one indoor unit connected to each set of outdoor units. That is to say, in the air conditioning system, one or more sets of outdoor units can be included, and each set of outdoor units includes at least one outdoor unit; for one set of outdoor units, the set of outdoor units is connected to at least one indoor unit.

[0109] For example, the air conditioning system includes one outdoor unit and one indoor unit connected to the outdoor unit.

[0110] For example, the air conditioning system includes one outdoor unit and at least two indoor units connected to the outdoor unit.

[0111] For example, the air conditioning system includes at least two outdoor units and at least two indoor units connected to the at least two outdoor units.

[0112] For example, a set of outdoor units and at least one indoor unit connected to the set of outdoor units form a refrigerant system, or multiple sets of outdoor units and at least one indoor unit respectively connected to the multiple sets of outdoor units form multiple refrigerant systems. Thus, the air conditioning system can include one refrigerant system or multiple refrigerant systems.

[0113] In some embodiments, the outdoor unit and the indoor unit can be air conditioning devices of various models, types, forms, and capacities. For example, the form of the indoor unit can be four-side air outlet, two-side air outlet, duct machine, floor air outlet, or skirting air outlet, etc.; the form of the outdoor unit can be single-fan up air outlet, double-fan up air outlet, single-fan front air outlet, or double-fan front air outlet, etc.

[0114] In some embodiments, the temperature adjustment device 301 can also be a floor heating device. The floor heating device can be connected to the outdoor unit through a refrigerant pipeline, and the floor heating device is connected to the floor heating heat dissipation pipeline in the indoor space through a floor heating water pipeline. For example, the outdoor unit and the floor heating device form an air source heat pump water heater, which uses the heat in the air and the operation of the compressor to heat water; the floor heating device can include a water heat exchange unit, and the refrigerant flowing out of the compressor of the outdoor unit enters the water heat exchange unit of the floor heating device through the refrigerant pipeline and exchanges heat with water, so as to achieve the purpose of heating water, and the heated water is introduced into the floor heating heat dissipation pipeline in the indoor space through the floor heating water pipeline to supply heat to the indoor space. In some embodiments, the outdoor unit and the floor heating device are split-type or integrated.

[0115] In some embodiments, the air supply device 303 includes at least one of a fresh air treatment device, a total heat exchange device (for example, with or without an internal circulation function), and a ventilation device (for example, with or without an internal circulation function).

[0116] As Figure 4 shown, in the air supply device 303, OA represents the outdoor side air inlet (intake port, air inlet), EA represents the outdoor side exhaust outlet (exhaust port, air outlet), SA represents the indoor side air supply port (air supply port), and RA represents the indoor side air return port (air return port). The fan 3031 of the air supply device 303 is used to form an air flow, so as to introduce air into the indoor space.

[0117] In some embodiments, the air supply device 303 may include a purification unit for purifying air. The purification unit can, for example, adjust the concentration of the corresponding air components introduced into the indoor space. For example, it can reduce at least one of the concentration of fine particulate matter (PM2.5), inhalable particulate matter (PM10), volatile organic compounds (VOC), total volatile organic compounds (TVOC), nitrogen oxides, ozone, etc. in the air. This application is not limited thereto, and the purification unit can also be provided in the humidity adjustment device 302, the temperature adjustment device 301, etc.

[0118] In addition, in some embodiments, the air supply device 303 may further include a fan and a total heat exchanger for discharging air to the outside. The total heat exchanger can adjust the temperature of the introduced outdoor air, thereby enabling the temperature of the air sent into the indoor space to be within an appropriate range, and further improving the user experience.

[0119] In some embodiments, the air supply device 303 may have an internal circulation mode and an external circulation mode.

[0120] The internal circulation mode is not to supply outdoor air to the indoor space, but to return the air returned from the indoor space to the indoor space. For example, in the internal circulation mode, air circulates between SA and RA.

[0121] The external circulation mode includes supplying outdoor air to the indoor space while discharging the air returned from the indoor space to the outside, and performing total heat exchange between the outdoor air and the indoor air. For example, in the external circulation mode, air enters from OA, is discharged from SA, then enters from RA and is discharged from EA.

[0122] In some embodiments, the air supply device 303 may not have an internal circulation function. For example, air enters from OA, is discharged from SA, then enters from RA and is discharged from EA.

[0123] As Figure 4 shown, the humidity adjustment device 302 is provided on the air path output side of the air supply device 303, for example, Figure 4 the side where SA is located.

[0124] In some embodiments, the humidity adjustment device 302 has the function of adjusting the humidity of air. For example, the humidity adjustment device 302 can humidify the air and / or dehumidify the air.

[0125] The humidity adjustment device 302 may include at least one of a humidification module and a dehumidification module. The humidity adjustment device 302 can switch between using the humidification module or the dehumidification module as needed.

[0126] In some embodiments, the humidification module can be a humidification module based on various humidification principles.

[0127] For example, the humidification module humidifies based on anhydrous humidification. Moisture in the air is adsorbed by the hygroscopic material. The air passes through the hygroscopic sector of the humidification rotating wheel for moisture absorption, and then the humidification rotating wheel passes through the dehumidification area for dehumidification. The warm and humid air is sent into the room by the fan.

[0128] Again, for example, the humidification module humidifies based on spray humidification. Spray humidification directly inputs water vapor into the room by the action of the spray head.

[0129] Again, for example, the humidification module humidifies based on steam humidification. After the saturated steam is separated from water and steam, the dry steam enters the spray pipe through the regulating valve and is ejected from the spray holes with a sound-absorbing metal mesh, realizing the humidification of the air.

[0130] Again, for example, the humidification module humidifies based on a wet film, which includes a humidification unit (a water storage tank and a wet film). The water in the water storage tank flows into the wet film. After the wet film absorbs water, a uniform water film is formed. When dry air passes through the wet film, water molecules fully absorb the heat in the air and vaporize and evaporate, increasing the humidity of the air and forming moist air.

[0131] In some embodiments, when the humidification module humidifies based on a wet film, the humidifying device can further include a temperature regulating unit. The temperature regulating unit can be located on the upstream side of the humidification unit (the water storage tank and the wet film) and is used to adjust the temperature of the introduced air, such as heating. The heated air is transported into the humidification unit, which can improve the humidification efficiency of the humidification unit.

[0132] For temperature regulating units based on different principles, the ways of adjusting the temperature can be different.

[0133] For example, if the temperature regulating unit regulates the temperature based on the heat exchange principle, then the temperature regulating ability (temperature) can be adjusted by adjusting the opening degree of the valve in the refrigerant pipeline of the heat exchange module. For example, the temperature regulating ability can be improved by increasing the opening degree of the valve (such as an electric valve).

[0134] Again, for example, if the temperature regulating unit regulates the temperature based on the electric auxiliary heating principle, then the temperature regulating ability can be adjusted by adjusting the output power of the electric auxiliary heating element.

[0135] In some embodiments, the dehumidification module can reduce the air humidity in various ways. For example, the dehumidification module includes a first heat exchanger. After the air passes through the first heat exchanger (evaporator), the temperature decreases (for example, the air is cooled below the dew point temperature), and the excess moisture in the air condenses, thereby reducing the air humidity.

[0136] In some embodiments, the dehumidification module may further include a second heat exchanger (reheat heat exchanger), which is disposed on the air path output side of the first heat exchanger and is connected to the first heat exchanger through a refrigerant pipeline. The second heat exchanger is used to heat the dehumidified air, so as to prevent the user comfort from being affected by the decrease in the temperature of the dehumidified air.

[0137] In some embodiments, when the dehumidification module performs dehumidification operation, the first heat exchanger operates as an evaporator and the second heat exchanger operates as a condenser.

[0138] In some embodiments, as Figure 4 shown, the regulated objects of the air handling system of the present application may include multiple indoor spaces. The air output after the humidity regulating device 302 performs humidity regulation can be sent to the multiple indoor spaces through the air pipeline 306 respectively. In each indoor space, a temperature regulating device 301 is respectively provided. In addition, in some embodiments, the temperature regulating device 301 may also be provided in some indoor spaces, while the temperature regulating device 301 is not provided in some indoor spaces. Wherein, an indoor space may be a room, or a region within a room.

[0139] The specific processing procedures of the above-mentioned various devices may refer to the relevant descriptions in Embodiment 1, and will not be elaborated here.

[0140] The above embodiments only exemplarily illustrate the embodiments of the present application, but the present application is not limited thereto, and appropriate modifications can also be made on the basis of the above embodiments. For example, the above embodiments can be used alone, or one or more of the above embodiments can be combined.

[0141] It should be noted that only the components or modules related to the present application are described above, but the present application is not limited thereto. The air handling system may further include other components or modules. For the specific content of these components or modules, reference can be made to the related art. In addition, for simplicity, only the connection relationships between the various components or modules are exemplarily shown in the drawings, but those skilled in the art should clearly understand that other connection relationships can also be adopted.

[0142] According to the above embodiments, in the air handling system, a second control instruction is obtained during the period when the air supply device operates according to the first control instruction related to the device linkage scenario. When the second control instruction includes the control of the air supply device, the control instruction with the higher priority in the first control instruction and the second control instruction is executed. Thereby, the air supply device can be controlled more reasonably, and the user experience can be improved.

[0143] Embodiment 3

[0144] Embodiment 3 of the present application provides an electronic device. The steps executed by the processor of the electronic device correspond to all or part of the steps of the control method described in Embodiment 1, and the specific content can be referred to the description in Embodiment 1.

[0145] Figure 5 It is a schematic diagram of the composition of the electronic device according to an embodiment of the present application. As Figure 5 shown, the electronic device 500 may include a processor 510 and a memory 520; the memory 520 is coupled to the processor 510. It should be noted that this figure is exemplary; other types of structures can also be used to supplement or replace this structure to achieve telecommunication functions or other functions.

[0146] In one embodiment, the processor 510 may be configured to: during the operation of the air supply device according to a first control instruction related to the device linkage scenario, obtain a second control instruction; and in the case where the second control instruction includes the control of the air supply device, execute the control instruction with a higher priority among the first control instruction and the second control instruction.

[0147] As Figure 5 shown, the electronic device 500 may further include: a communication module 530, an input unit 540, a display 550, a speaker 560, a microphone 570, and a power supply 580. It should be noted that the electronic device 500 does not necessarily have to include Figure 5 all the components shown in; in addition, the electronic device 500 may further include Figure 5 components not shown in, and reference can be made to the related art.

[0148] As Figure 5 shown, the processor 510 is sometimes also referred to as a controller or an operation control, and may include a microprocessor or other processor devices and / or logic devices. The processor 510 receives inputs and controls the operations of the various components of the electronic device 500.

[0149] Among them, the memory 520, for example, may be one or more of a buffer, a flash memory, a hard drive, a removable medium, a volatile memory, a non-volatile memory, or other suitable devices. It can store various data, and can also store programs for executing relevant information. And the processor 510 can execute the programs stored in the memory 520 to achieve information storage or processing, etc. The functions of other components are similar to those in the prior art, and will not be elaborated here. The various components of the electronic device 500 can be implemented by dedicated hardware, firmware, software, or a combination thereof without departing from the scope of the present invention.

[0150] According to the above embodiments, in the air handling system, a second control instruction is obtained during the operation of the air supply device according to the first control instruction related to the device linkage scenario. When the second control instruction includes the control of the air supply device, the control instruction with the higher priority among the first control instruction and the second control instruction is executed. Thereby, more reasonable control of the air supply device can be achieved, improving the user experience.

[0151] Embodiment 4

[0152] Embodiment 4 of the present application provides a control device for an air handling system. The control device of the air handling system corresponds to the control method of the air handling system described in Embodiment 1, and the specific content can refer to the description in Embodiment 1.

[0153] Figure 6 is a schematic diagram of the control device of the air handling system according to the embodiments of the present application. As Figure 6 shown, the device 600 includes:

[0154] An acquisition unit 601 that acquires a second control instruction during the operation of the air supply device according to the first control instruction related to the device linkage scenario;

[0155] A control unit 602 that executes the control instruction with the higher priority among the first control instruction and the second control instruction when the second control instruction includes the control of the air supply device.

[0156] The specific functions of the above respective units can refer to the relevant steps in Embodiment 1, and will not be elaborated here.

[0157] Each of the above embodiments only exemplarily illustrates the embodiments of the present application, but the present application is not limited thereto, and appropriate modifications can also be made on the basis of each of the above embodiments. For example, each of the above embodiments can be used alone, or one or more of the above embodiments can be combined.

[0158] It should be noted that only the components or modules related to the present application are described above, but the present application is not limited thereto. Other components or modules can be added to the air handling system, or the shown components or modules can be reduced (for example, the components or modules corresponding to the dashed boxes in the drawings). For the specific content of these components or modules, reference can be made to the related art. In addition, for simplicity, only the connection relationships between the respective components or modules are exemplarily shown in the drawings, but those skilled in the art should clearly understand that other connection relationships can also be adopted.

[0159] According to the above embodiments, in the air handling system, during the period when the air supply device operates according to the first control instruction related to the device linkage scenario, a second control instruction is obtained. When the second control instruction includes the control of the air supply device, the control instruction with the higher priority among the first control instruction and the second control instruction is executed. Thus, more reasonable control of the air supply device can be achieved, improving the user experience.

[0160] An embodiment of the present application also provides a computer-readable program, which, when executed, causes the computer to execute the control method described in the embodiments of the present application.

[0161] An embodiment of the present application also provides a computer-readable storage medium, wherein the storage medium stores a computer program, and the computer-readable program causes the computer to execute the control method described in the embodiments of the present application.

[0162] The devices and methods described above in the embodiments of the present application can be implemented by hardware or by a combination of hardware and software. The present application relates to such a computer-readable program that, when executed by a logic component, can cause the logic component to implement the above-mentioned device or component, or cause the logic component to implement the above-mentioned various methods or steps.

[0163] An embodiment of the present application also relates to a storage medium for storing the above program, such as a hard disk, a magnetic disk, an optical disk, a DVD, a flash memory, etc.

[0164] It should be noted that the limitations on the steps involved in the present application, without affecting the implementation of the specific solution, are not considered as limiting the sequence of the steps. The steps written in the front can be executed first, or can be executed later, or even can be executed simultaneously. As long as the solution can be implemented, it should be regarded as falling within the protection scope of the present application.

[0165] The present application has been described above in combination with specific implementation manners, but those skilled in the art should understand that these descriptions are exemplary and do not limit the protection scope of the present application. Those skilled in the art can make various modifications and variations to the present application according to the spirit and principle of the present application, and these modifications and variations are also within the scope of the present application.

Claims

1. A control method for an air handling system, the air handling system comprising a temperature adjustment device, a humidity adjustment device, and a air supply device, characterized in that, The control method includes: During the operation of the air supply device according to a first control instruction related to an equipment linkage scenario, obtaining a second control instruction; and When the second control instruction includes control of the air supply device, executing the control instruction with a higher priority among the first control instruction and the second control instruction.

2. The method according to claim 1, wherein At least one of the following control information is included in the first control instruction and the second control instruction: switch state, operation mode, or operation parameter.

3. The method according to claim 2, wherein The control modes of the control information include a fixed control mode and a switchable control mode.

4. The method according to claim 1, wherein Among the first control instruction and the second control instruction, the control instruction including schedule setting information has a higher priority.

5. The method according to claim 1, characterized in that, When neither the first control instruction nor the second control instruction includes schedule setting information, the priority of the control instruction is determined according to at least one of the following conditions: The type of the control instruction; Whether the air quality data related to the control instruction is abnormal; The control mode of the control information in the control instruction; or The acquisition time of the control instruction.

6. The method according to claim 5, wherein The priority of the control instruction related to the abnormal air quality data is higher than that of the control instruction related to the non-abnormal air quality data.

7. The method according to claim 5, wherein The control instruction with a fixed control mode of the control information has a higher priority than the control instruction with a switchable control mode of the control information.

8. The method according to claim 5, wherein The later obtained control instruction has a higher priority.

9. The method according to claim 5, wherein When determining the priority of the first control instruction and the second control instruction according to multiple said conditions, the priority of the first control instruction and the second control instruction is determined according to multiple said conditions and the priority of multiple said conditions.

10. The method according to claim 9, characterized in that, The priority of the conditions is, from high to low in sequence: The type of the control instruction; Whether the air quality data related to the control instruction is abnormal; The control mode of the control information in the control instruction; The acquisition time of the control instruction.

11. The method according to claim 1, wherein The priority of the first control instruction and the second control instruction is related to the adjustment requirement degree of the corresponding air quality data, and the control instruction corresponding to the air quality data with a higher adjustment requirement degree has a higher priority.

12. The method according to claim 11, wherein The adjustment requirement degree of the abnormal air quality data is higher than that of the non-abnormal air quality data.

13. The method according to claim 1, wherein The method further includes: When the priorities of the first control instruction and the second control instruction are the same, continuing to execute the first control instruction and sending a prompt message to the user, or executing the second control instruction; or The method further includes: executing the second control instruction when the second control instruction does not include control information for the air handling device.

14. A control device for an air handling system, the air handling system comprising a temperature regulating device, a humidity regulating device and a air supply device, characterized in that, The control device includes: an acquisition unit that acquires a second control instruction during a period when the air supply device operates according to a first control instruction related to a device linkage scenario; and a control unit that executes a control instruction with a higher priority among the first control instruction and the second control instruction when the second control instruction includes control of the air supply device.

15. An air treatment system, characterized in that, The air handling system includes a temperature adjustment device, a humidity adjustment device, an air supply device, and a control device, wherein, during a period when the air supply device operates according to a first control instruction related to a device linkage scenario, the control device acquires a second control instruction, and when the second control instruction includes control of the air supply device, executes a control instruction with a higher priority among the first control instruction and the second control instruction.

16. The system according to claim 15, wherein the control device includes at least one of the following: a server, a gateway device, a central controller, a wall controller, a remote controller, and a control board.

17. The system according to claim 15, wherein among the first control instruction and the second control instruction, a control instruction including schedule setting information has a higher priority.

18. The system according to claim 15, characterized in that, When neither the first control instruction nor the second control instruction includes schedule setting information, the priority of the control instruction is determined according to at least one of the following conditions: the type of the control instruction; whether air quality data related to the control instruction is abnormal; the control mode of the control information in the control instruction; or the acquisition time of the control instruction.

19. An electronic device, characterized in that, The electronic device includes: a memory that stores a computer program; and a processor that, when executing the computer program, implements the method according to any one of claims 1-13.

20. A computer-readable storage medium having a computer program stored thereon, characterized in that, The computer program, when executed by the processor, implements the method according to any one of claims 1-13.