Equipment linkage control method and device, storage medium and computer program product

Through the linked control method of air conditioning and air circulation equipment, the problem of small air supply volume of air conditioning and inability to adjust humidity in the air circulation equipment is solved, and dynamic air supply intensity adjustment in the same space is achieved to improve user experience.

CN120232135AActive Publication Date: 2025-07-01XIAOMI TECH (WUHAN) CO LTD +2
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Patent Information

Application Number
CN202510713461.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-29
Publication Date
2025-07-01
Estimated Expiration
2045-05-29

AI Technical Summary

Technical Problem

Air conditioners and air circulation equipment each have limitations in adjusting humidity and temperature in home appliances. The air conditioner supply volume is small and the noise experience is poor. The air circulation equipment cannot adjust humidity and temperature, which makes it difficult for users to meet their needs.

Method used

Through the linkage control method, in response to the user's trigger operation on the operation panel, the air supply strength of the air conditioner and the air circulation equipment are interconnected, the air conditioner adjusts the temperature and humidity, and the air circulation equipment supplements the air supply strength to achieve dynamic adjustment in the same space.

Benefits of technology

Meet the user's air supply and comfort needs, provide a better blowing experience, reduce operational complexity, and improve user satisfaction.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a linkage control method and device of equipment, a storage medium and a computer program product, and relates to the technical field of equipment control, and the linkage control method comprises the steps that in response to trigger operation of a user on an operation panel, first air supply intensity of an air conditioner and second air supply intensity of air circulation equipment are controlled to be linked; wherein the air conditioner and the air circulation equipment are located in the same space, and the operation panel is a mechanical panel or a display interface in an application program. By means of the linkage control method of the equipment, the air conditioner and the air circulation equipment which are located in the same space can execute linkage air supply, and better air blowing experience is provided for a user.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of device control, and particularly to a method, device, storage medium and computer program product for the linkage control of devices. Background Art

[0002] Currently, as important products among household electrical appliances, air conditioners and air circulation devices can adjust the humidity and temperature in a room. However, due to the structural limitations of air conditioners or noise experience, the air supply volume of air conditioners is usually small, making it difficult to meet user needs; air circulation devices can promote air circulation in a room, allowing users to feel a comfortable blowing sensation, but air circulation devices cannot adjust the humidity and temperature in a room. Summary of the Invention

[0003] To overcome the problems in the related art, the present disclosure provides a method, device, storage medium and computer program product for the linkage control of devices.

[0004] According to the first aspect of the embodiments of the present disclosure, a method for the linkage control of devices is provided, including: In response to a trigger operation by a user on an operation panel, controlling the linkage of the first air supply intensity of an air conditioner and the second air supply intensity of an air circulation device; wherein, the air conditioner and the air circulation device are in the same space, the operation panel is a mechanical panel or a display interface in an application program, the operation panel is used to adjust the operation data of the air conditioner and / or the air circulation device, and the operation data includes an operation mode and / or operation parameters.

[0005] Through the above technical solution, the linkage between the air conditioner and the air circulation device can complement each other's defects. After the first air supply intensity of the air conditioner changes, the second air supply intensity of the air circulation device will also change accordingly, thereby dynamically adjusting the indoor air supply intensity, compensating for the defect of the small first air supply intensity of the air conditioner, and meeting user needs; moreover, the air conditioner can adjust the indoor temperature and humidity, thus compensating for the defect that the air circulation device cannot adjust the indoor temperature and humidity. Additionally, the air conditioner and the air circulation device are controlled to be linked only when they are in the same space, so that the air conditioner and the air circulation device perform linkage adjustment on the air supply intensity in the same space. When the air conditioner and the air circulation device in the same space are linked, the air supply linkage between the air conditioner and the air circulation device can be free from the influence of physical partitions between spaces, such as the influence of room walls, and the presented linkage air supply effect is better.

[0006] In a possible implementation, the display interface includes an air flow management interface; the air flow management interface includes an interlocking air supply control; the controlling the first air supply intensity of the air conditioner to be interlocked with the second air supply intensity of the air circulation device in response to a triggering operation of the user on the operation panel includes: controlling the first air supply intensity to be interlocked with the second air supply intensity in response to a triggering operation on the interlocking air supply control.

[0007] Through the above technical solution, by performing a touch operation on the interlocking air supply control on the air flow management interface displayed on the operation panel, the user can remotely control the interlocking of the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, without the user having to go to the location of the air conditioner or the location of the air circulation device to adjust the two to achieve the interlocking of the air supply intensity, which brings convenience to the user's operation.

[0008] In a possible implementation, the display interface further includes a setting interface; the setting interface includes a wind speed interlocking control; the controlling the first air supply intensity to be interlocked with the second air supply intensity in response to a triggering operation on the interlocking air supply control includes: controlling the first air supply intensity to be interlocked with the second air supply intensity in response to a triggering operation on the interlocking air supply control when the wind speed interlocking control is triggered.

[0009] Through the above technical solution, by displaying the setting interface, the user can configure / select the desired interlocking mode on the setting interface. If the user triggers the wind speed interlocking control on the setting interface, it means that the user expects the first air supply intensity of the air conditioner to be interlocked with the second air supply intensity of the air circulation device. Subsequently, after the user triggers the interlocking air supply control on the air flow management interface to start, the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device will be interlocked.

[0010] In a possible implementation, the display interface further includes an air flow management interface; the air flow management interface includes a wind speed interlocking control; the controlling the first air supply intensity of the air conditioner to be interlocked with the second air supply intensity of the air circulation device in response to a triggering operation of the user on the operation panel includes: controlling the first air supply intensity to be interlocked with the second air supply intensity in response to a triggering operation on the wind speed interlocking control.

[0011] Through the above technical solution, the wind speed interlocking control can be displayed on the air flow management interface. The user can trigger the wind speed interlocking control on the air flow management interface to control the interlocking of the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, without having to go to the setting interface to trigger the wind speed interlocking control and then return to the air flow management interface to trigger the interlocking air supply control to control the interlocking of the first air supply intensity and the second air supply intensity, reducing the number of user operations and bringing convenience to the user's operation.

[0012] In a possible implementation, the method further includes: in response to an operation of closing the linkage air supply control and / or the air speed linkage control, controlling the first air supply intensity and the second air supply intensity to stop linkage.

[0013] Through the above technical solution, the user can also perform an operation of closing the linkage air supply control and / or the air speed linkage control, so as to remotely control the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device to stop linkage, without having to go to the location of the air conditioner or the air circulation device to perform the closing operation, which brings convenience to the user's operation.

[0014] In a possible implementation, the method further includes: during the process of controlling the linkage of the first air supply intensity and the second air supply intensity, in response to receiving a user instruction, controlling the air circulation device to execute at the target air supply intensity indicated by the user instruction.

[0015] Through the above technical solution, during the process of controlling the linkage of the first air supply intensity and the second air supply intensity of the air conditioner, if a user instruction is received, it means that at this time, it is more desirable for the air circulation device to execute according to the user instruction, rather than according to the linkage mode with the air conditioner. The priority of the target air supply intensity indicated by the user instruction is higher than the priority of the second air supply intensity corresponding to the first air supply intensity. Therefore, the air circulation device can be controlled to execute at the target air supply intensity indicated by the user instruction to meet the user's need to adjust the second air supply intensity of the air circulation device.

[0016] Taking the first air supply intensity as the 3rd gear and the second air supply intensity as the 3rd gear as an example, before receiving the user instruction, the air conditioner output air is at the 3rd gear, and the air circulation device output air is at the 3rd gear; after receiving the user instruction, if the target air supply intensity indicated by the user instruction is the 1st gear, the air circulation device output air will be controlled to switch to the 1st gear.

[0017] In a possible implementation, there is a corresponding relationship between the first air supply intensity and the second air supply intensity. Controlling the linkage of the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device includes: in response to a change in the first air supply intensity of the air conditioner, controlling the air circulation device to switch from the target air supply intensity to the second air supply intensity corresponding to the changed first air supply intensity.

[0018] Through the above technical solution, after the first air supply intensity of the air conditioner changes, the air circulation device can be switched from the target air supply intensity to the second air supply intensity corresponding to the changed first air supply intensity, so as to restore the linkage air supply mode between the air conditioner and the air circulation device.

[0019] Taking the example where the first air supply intensity is at the 3rd gear and the corresponding second air supply intensity is at the 3rd gear, and the first air supply intensity is at the 4th gear and the corresponding second air supply intensity is at the 5th gear. Before receiving the user instruction, the air conditioner outputs air at the 3rd gear, and the air circulation device outputs circulating air at the 3rd gear; after receiving the user instruction, if the target air supply intensity indicated by the user instruction is at the 1st gear, the circulating air output by the air circulation device will be controlled to switch to the 1st gear; after the first air supply intensity changes from the 3rd gear to the 4th gear, the circulating air output by the air circulation device will be controlled to switch from the 1st gear to the 5th gear corresponding to the 4th gear.

[0020] During this process, when the first air supply intensity of the air conditioner changes, it indicates that the user has adjusted the first air supply intensity of the air conditioner. The time when the user adjusts the first air supply intensity of the air conditioner is after the time when the user adjusts the air circulation device to the target air supply intensity, which means that after the user adjusts the second air supply intensity of the air circulation device, the user adjusts the first air supply intensity of the air conditioner again. Therefore, in response to the user's latest operation behavior, the target air supply intensity currently executed by the air circulation device can be switched to the second air supply intensity corresponding to the changed first air supply intensity of the air conditioner, so as to correspondingly adjust the second air supply intensity of the air circulation device after the user adjusts the first air supply intensity of the air conditioner, and can meet the user's adjusted linked air supply demand in real time.

[0021] In a possible implementation manner, the first air supply direction of the air conditioner is the same as or opposite to the second air supply direction of the air circulation device.

[0022] Through the above technical solution, when the first air supply direction of the air conditioner is the same as the second air supply direction of the air circulation device, at this time, the air output by the air conditioner and the circulating air output by the air circulation device will have a superimposed effect, making the output air supply intensity greater; when the first air supply direction is opposite to the second air supply direction, at this time, the air conditioner and the air circulation device will output circulating air from different directions, accelerating the indoor air flow and giving the user a more comfortable blowing experience.

[0023] In a possible implementation manner, the air supply intensity range when the first air supply direction is the same as the second air supply direction is greater than the air supply intensity range when the first air supply direction is opposite to the second air supply direction. The air supply intensity range is the air gear range or the air speed range of the air circulation device; and / or, at the same first air supply intensity, the second air supply intensity when the first air supply direction is the same as the second air supply direction is greater than the second air supply intensity when the first air supply direction is opposite to the second air supply direction.

[0024] Through the above technical solution, when the first air supply direction of the air conditioner is the same as the second air supply direction of the air circulation device, the second air supply intensity is controlled to be higher, so that after the first air supply intensity output by the air conditioner and the second air supply intensity are superimposed on each other, the air circulation device can spread the air output by the air conditioner farther and with a stronger wind speed, which is beneficial to the air supply of the air conditioner and provides a stronger air supply experience for the user; when the first air supply direction of the air conditioner is opposite to the second air supply direction, the first air supply intensity and the second air supply intensity will cancel each other out, so the second air supply intensity will be controlled to be smaller, thereby reducing the influence of the second air supply intensity on the first air supply intensity.

[0025] In a possible implementation manner, any one of the following positional relationships exists between the air conditioner and the air circulation device: on the same side of the user, on both sides of the user; wherein, when the air conditioner and the air circulation device are on the same side of the user, a positional relationship of being arranged vertically or side by side exists between the air conditioner and the air circulation device.

[0026] Through the above technical solution, even if the positions between the air conditioner and the air circulation device are arbitrarily configured, the linkage between the air conditioner and the air circulation device can be realized.

[0027] In a possible implementation manner, the method further includes: determining that the air conditioner and the air circulation device are on the same side of the user, and controlling the first air supply direction of the air conditioner to be the same as the second air supply direction of the air circulation device; or, determining that the air conditioner and the air circulation device are on both sides of the user, and controlling the first air supply direction of the air conditioner to be opposite to the second air supply direction of the air circulation device.

[0028] Through the above technical solution, when the air conditioner and the air circulation device are on the same side of the user, the first air supply direction of the air conditioner is controlled to be the same as the second air supply direction of the air circulation device, so that the air output by the air conditioner and the air circulation device will be superimposed and directed towards the user, providing a stronger wind speed for the user; when the air conditioner and the air circulation device are on both sides of the user, the first air supply direction of the air conditioner can be controlled to be opposite to the second air supply direction of the air circulation device, so that the air output by the air conditioner and the air circulation device will be directed towards the user from both sides, making the output air surround the user and providing a better blowing experience for the user.

[0029] In a possible implementation manner, the control of the linkage between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device includes: when the air conditioner is in the direct blowing mode, according to the corresponding relationship between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, the air circulation device is linked and adjusted to the second air supply intensity corresponding to the first air supply intensity.

[0030] Through the above technical solution, when the air conditioner is in the direct blowing mode, the air conditioner wind output by the air conditioner will face the user. At this time, it indicates that the user has a strong cooling / heating demand. Therefore, the air circulation device can be adjusted to the second air supply intensity corresponding to the first air supply intensity based on the corresponding relationship, so that the air conditioner and the air circulation device are linked to supply air to the user, meeting the user's cooling / heating demand in the direct blowing mode.

[0031] In a possible implementation manner, the step of jointly adjusting the second air supply intensity of the air circulation device according to the first air supply intensity of the air conditioner includes: when the air conditioner is in the non-direct blowing mode, performing at least one of the following: according to the corresponding relationship between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, jointly adjusting the air circulation device to the second air supply intensity corresponding to the first air supply intensity; adjusting the second air supply intensity of the air circulation device to a preset air supply intensity; adjusting the second air supply intensity of the air circulation device to the air supply intensity set by the user.

[0032] Through the above technical solution, when the air conditioner is in the non-direct blowing mode, it indicates that the user's cooling / heating demand is low at this time. At this time, the second air supply intensity of the air circulation device can be controlled to be adjusted to the preset air supply intensity or the air supply intensity set by the user himself to meet the real-time cooling / heating demand of the user in the non-direct blowing mode.

[0033] In a possible implementation manner, the method further includes: when the air conditioner is in the non-direct blowing mode, controlling the shifting sound of the air circulation device to be in a mute state.

[0034] Through the above technical solution, when the air conditioner is in the non-direct blowing mode, the user expects the wind to avoid himself. At this time, most users are in a sleeping state. In order to ensure the user's sleep quality, the shifting sound of the air circulation device can be controlled to be in a mute state to ensure a quiet indoor sleeping environment.

[0035] In a possible implementation manner, there is a positive correlation between the first air supply intensity and the second air supply intensity.

[0036] Through the above technical solution, when the first air supply intensity of the air conditioner increases, it indicates that the user expects a greater air outlet intensity of the air conditioner, so as to achieve a rapid cooling effect. Therefore, the second air supply intensity of the air circulation device can be controlled to increase correspondingly, so as to provide the user with a greater air outlet intensity to meet the user's rapid cooling demand; on the contrary, when the first air supply intensity of the air conditioner decreases, it indicates that the user expects a smaller air outlet intensity. Therefore, the second air supply intensity of the air circulation device can be controlled to decrease correspondingly, so as to provide the user with a smaller air outlet intensity.

[0037] In a possible implementation, the air circulation device includes a cold air blower or a warm air blower; the linkage between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device includes: when the air conditioner is in the cooling mode, controlling the first air supply intensity of the air conditioner to be linked with the second air supply intensity of the cold air blower; or, when the air conditioner is in the heating mode, controlling the first air supply intensity of the air conditioner to be linked with the second air supply intensity of the warm air blower.

[0038] Through the above technical solution, when the air conditioner is in the cooling mode, the first air supply intensity of the air conditioner can be controlled to be linked with the second air supply intensity of the cold air blower, so as to provide a better air supply experience of cold air for the user; when the air conditioner is in the heating mode, the first air supply intensity of the air conditioner can be controlled to be linked with the second air supply intensity of the warm air blower, so as to provide a better air supply experience of hot air for the user.

[0039] In a possible implementation, the setting interface further includes a swing linkage control and a wind feeling linkage control; the method further includes: when at least one target control among the wind speed linkage control, the swing linkage control, and the wind feeling linkage control in the setting interface is triggered, in response to the triggering operation on the linkage air supply control, controlling the air conditioner and the air circulation device to execute according to the linkage mode indicated by the at least one target control.

[0040] Through the above technical solution, at least one target control among the wind speed linkage control, the swing linkage control, and the wind feeling linkage control can be triggered, so that the air conditioner and the air circulation device execute at least one of the wind speed linkage mode, the swing linkage mode, and the wind feeling linkage mode, providing diversified linkages between the air conditioner and the air circulation device for the user.

[0041] In a possible implementation, the method further includes: when the wind speed linkage control and the swing linkage control are triggered, controlling the air circulation device to output a third air supply intensity; the third air supply intensity is less than the second air supply intensity.

[0042] Through the above technical solution, when the wind speed linkage control and the swing linkage control are both turned on, it will trigger the air conditioner and the air circulation device to execute the swing linkage mode while executing the wind speed linkage mode. Since the air conditioner and the air circulation device will swing up and down or left and right to accelerate the indoor air circulation in the swing linkage mode, bringing a better air supply experience to the user, which brings a part of the air supply intensity. Therefore, in the wind speed linkage mode, the second air supply intensity corresponding to the first air supply intensity can be determined first, and then the circulating air with a third air supply intensity lower than the second air supply intensity can be used, and the air supply experience of the user will not be reduced.

[0043] In a possible implementation, the air flow management interface further includes an associated temperature control control; the method further includes: in response to a triggering operation on at least one target control among the associated temperature control control and the associated air supply control, controlling the air conditioner and the air circulation device to execute according to the associated mode indicated by the at least one target control.

[0044] Through the above technical solution, at least one target control among the associated temperature control control and the associated air supply control in the air flow management interface can be triggered, so that the air conditioner and the air circulation device execute at least one of the associated air supply mode and the associated temperature control mode, providing users with diversified association between the air conditioner and the air circulation device.

[0045] In a possible implementation, the controlling the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device to be associated in response to a triggering operation of the user on the operation panel includes: when both the air conditioner and the air circulation device are connected to the network, in response to a triggering operation of the user on the operation panel, controlling the first air supply intensity and the second air supply intensity to be associated.

[0046] Through the above technical solution, on the basis that the air conditioner and the air circulation device are connected to the network, for example, the air conditioner and the air circulation device are in the same network or different networks, the operation data of the two can be exchanged, so as to realize the association between the air conditioner and the air circulation device.

[0047] According to a second aspect of the embodiments of the present disclosure, there is provided an associated control device for a device, which is used to execute the device associated control method provided in the first aspect of the embodiments of the present disclosure. The device includes: an associated control module configured to control the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device to be associated in response to a triggering operation of the user on the operation panel; wherein, the air conditioner and the air circulation device are in the same space, and the operation panel is a mechanical panel or a display interface in an application program; the operation panel is used to adjust the operation data of the air conditioner and / or the air circulation device, and the operation data includes an operation mode and / or operation parameters.

[0048] According to a third aspect of the embodiments of the present disclosure, there is provided an associated control device for a device, including: a processor; a memory for storing instructions executable by the processor; wherein, the processor is configured to: execute the steps of the device associated control method provided in the first aspect of the embodiments of the present disclosure.

[0049] According to a fourth aspect of the embodiments of the present disclosure, there is provided a computer-readable storage medium having computer program instructions stored thereon, and when the program instructions are executed by a processor, the steps of the linkage control method of the device provided in the first aspect of the embodiments of the present disclosure are implemented.

[0050] According to a fifth aspect of the embodiments of the present disclosure, there is provided a computer program product including a computer program, and when the computer program is executed by a processor, the steps of the linkage control method of the device provided in the first aspect of the embodiments of the present disclosure are implemented.

[0051] It should be understood that the above general description and the following detailed description are only exemplary and explanatory, and cannot limit the present disclosure. BRIEF DESCRIPTION OF THE DRAWINGS

[0052] The accompanying drawings herein are incorporated into the specification and form a part of the specification, showing embodiments consistent with the present disclosure, and are used together with the specification to explain the principles of the present disclosure.

[0053] Figure 1 It is a schematic interaction diagram of an air conditioner, a linkage air flow management main control program and an air circulation device shown according to an exemplary embodiment.

[0054] Figure 2 It is a flowchart of the steps of a linkage control method of a device shown according to an exemplary embodiment.

[0055] Figure 3 It is a schematic diagram of an air flow management interface shown according to an exemplary embodiment.

[0056] Figure 4 It is a schematic diagram of a setting interface shown according to an exemplary embodiment.

[0057] Figure 5 It is a schematic diagram of an air flow management interface shown according to an exemplary embodiment.

[0058] Figure 6 It is a schematic module diagram of the linkage control of an air conditioner and an air circulation device shown according to an exemplary embodiment.

[0059] Figure 7 It is a schematic diagram of a device search interface shown according to an exemplary embodiment.

[0060] Figure 8 It is a schematic diagram of a network selection interface shown according to an exemplary embodiment.

[0061] Figure 9 It is a schematic diagram showing that the air supply directions of an air conditioner and an air circulation device are parallel to each other shown according to an exemplary embodiment.

[0062] Figure 10 It is a schematic diagram showing that the air supply directions of an air conditioner and an air circulation device are on the same straight line according to an exemplary embodiment.

[0063] Figure 11 It is a schematic diagram showing that the air supply directions of an air conditioner and an air circulation device are opposite according to an exemplary embodiment.

[0064] Figure 12 It is a flowchart of the steps of a method for the interlocking control of a device according to an exemplary embodiment.

[0065] Figure 13 It is a flowchart of the steps of a method for the interlocking control of a device according to an exemplary embodiment.

[0066] Figure 14 It is a block diagram of a device for the interlocking control of a device according to an exemplary embodiment.

[0067] Figure 15 It is a block diagram of a device for the interlocking control of a device according to an exemplary embodiment.

[0068] Figure 16 It is a block diagram of a device for the interlocking control of a device according to an exemplary embodiment. Detailed implementation manners

[0069] Here, the exemplary embodiments will be described in detail, and the examples are shown in the drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The implementation manners described in the following exemplary embodiments do not represent all the implementation manners consistent with the present disclosure. On the contrary, they are merely examples of devices and methods consistent with some aspects of the present disclosure as detailed in the appended claims.

[0070] It should be noted that all actions of obtaining signals, information or data in the present disclosure are carried out on the premise of complying with the corresponding data protection regulations and policies of the country where it is located and obtaining the authorization given by the owner of the corresponding device.

[0071] Figure 2 It is a flowchart of the steps of a method for the interlocking control of a device according to an exemplary embodiment, as Figure 1As shown, the interlock control method of the device is used to interlock and control an air conditioner and an air circulation device. The interlock control method of the device is executed by an interlock air flow management main control program, and the interlock air flow management main control program is installed in a cloud server. Devices such as the air conditioner, the air circulation device, the terminal, and the remote controller can call the interlock air flow management main control program, so as to realize the interlock control of the air conditioner and the air circulation device. Of course, the interlock air flow main control program can also be installed in devices such as the air conditioner, the air circulation device, the terminal, and the remote controller and be called by application programs in these devices. The present disclosure does not limit this.

[0072] In some scenarios, taking the interlock control of an air conditioner and an air circulation device by a terminal as an example, please refer to Figure 1 As shown, the interlock air flow management main control program is installed in the cloud server. The interlock air flow management main control program communicates with the air circulation device through a wireless network such as a WIFI (wireless) local area network or a Bluetooth local area network; an application program (App) is installed on the terminal, and the user can start the interlock air flow management main control program through the application program in the terminal. After receiving the user instruction sent by the terminal, the interlock air flow management main control program generates an interlock control instruction. On the one hand, the interlock control instruction is sent to the air conditioner for execution, and on the other hand, the interlock control instruction is sent to the air circulation device for execution through the wireless network.

[0073] In some scenarios, taking the interlock control of an air conditioner and an air circulation device by the air conditioner as an example, an application program is installed on the air conditioner, and the user can start the interlock air flow management main control program through the application program in the air conditioner. After receiving the user instruction sent by the air conditioner, the interlock management main control program generates an interlock control instruction. On the one hand, the interlock control instruction is sent to the air conditioner for execution, and on the other hand, the interlock control instruction is sent to the air circulation device for execution through the wireless network.

[0074] In some scenarios, taking the interlock control of an air conditioner and an air circulation device by the air circulation device as an example, an application program is installed on the air circulation device, and the user can start the interlock air flow management main control program through the application program in the air circulation device. After receiving the user instruction sent by the air conditioner, the interlock management main control program generates an interlock control instruction. On the one hand, the interlock control instruction is sent to the air conditioner for execution, and on the other hand, the interlock control instruction is sent to the air circulation device for execution through the wireless network.

[0075] Please refer to Figure 1 As shown, the interlock control method of the device includes the following steps.

[0076] In step S10, in response to a trigger operation of the user on the operation panel, the first air supply intensity of the air conditioner is controlled to be interlocked with the second air supply intensity of the air circulation device.

[0077] In a possible implementation, in response to a triggering operation by the user on the operation panel, a user instruction corresponding to the triggering operation is sent to the linkage air flow management main control program, and the linkage air flow management main control program controls the linkage of the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device based on the user instruction.

[0078] Among them, in addition to controlling the linkage of the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, the triggering operation by the user on the operation panel can also separately adjust the operation mode of the air conditioner or separately adjust the operation mode of the air circulation device.

[0079] Among them, the operation panel is used to adjust the operation data of the air conditioner and / or the air circulation device, and the operation data includes the operation mode and / or the operation parameters.

[0080] The operation modes in the operation data of the air conditioner include the air supply mode, the air sweep mode, and the temperature control and energy-saving mode. The air supply mode includes the direct air blowing mode and the air feeling mode. In the direct air blowing mode, the air supply direction of the air conditioner faces the user; in the air feeling mode, the air supply direction of the air conditioner interacts with the user, and the air supply direction of the air conditioner avoids the user, faces the user, or surrounds the user. The air sweep mode includes the up and down air sweep mode and the left and right air sweep mode. In the up and down air sweep mode, the air supply direction of the air conditioner sweeps up and down; in the left and right air sweep mode, the air supply direction of the air conditioner sweeps left and right. The temperature control and energy-saving mode includes the Lingyun energy-saving mode and the human-sensing energy-saving mode. In the Lingyun energy-saving mode and the human-sensing energy-saving mode, the air conditioner can operate in a low-power mode, achieving energy saving while taking into account the user experience. The operation parameters in the operation data of the air conditioner include the air supply intensity, the air supply direction, the air conditioner output temperature, the cooling or heating adjustment, the timing duration, etc. The user can adjust the operation parameters such as the air supply intensity, the air supply direction, and the air conditioner output temperature of the air conditioner through the operation panel.

[0081] The operation modes in the operation data of the air circulation device include the natural wind mode, the non-natural wind mode, the swing mode, and the freeze mode. Among them, in the natural wind mode, the wind speed intensity output by the air circulation device is relatively gentle, and in the non-natural wind mode, the wind speed intensity of the air circulation device can be adjusted in real time. Among them, the swing mode includes the up and down swing mode and the left and right swing mode. In the left and right swing mode, the air supply direction of the air circulation device sweeps left and right, and in the up and down swing mode, the air supply direction of the air circulation device sweeps up and down. Among them, the freeze mode indicates that the air circulation device freezes and stops swinging after swinging a certain stroke. The operation parameters in the operation data of the air circulation device include the air supply intensity, the air supply direction, the timing duration, etc.

[0082] Among them, the operation panel can be the display interface in the application program or the mechanical panel.

[0083] For example, if the operation panel is a display interface in an application, then the display interface can be a display interface of an application installed in a terminal, an air conditioner, a remote controller, or an air circulation device. By triggering one or more controls / entries / buttons on the display interface, the first air supply intensity of the air conditioner can be controlled to be linked with the second air supply intensity of the air circulation device. It is understandable that the manifestation of the trigger operation performed on the operation panel of the application includes but is not limited to: the user triggers the control through a finger or a touch device (such as a stylus, etc.). For example, the user can perform the trigger operation through the relevant gestures of the finger, and these relevant gestures can be any one of a single-click gesture, a sliding gesture, a drag gesture, a pressure recognition gesture, a long-press gesture, a short-press gesture, an area change gesture, a double-press gesture, and a double-click gesture, or a combination thereof. For another example, the user can perform a trigger operation through a touch device, such as a single-click, a double-click, or any number of clicks, etc., and can also be a long press or a short press.

[0084] For example, if the operating panel is a mechanical panel, then the mechanical panel can be a mechanical panel installed on an air conditioner, a remote control, or an air circulation device. By triggering one or more mechanical buttons on the mechanical panel, the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device can be controlled to be linked.

[0085] In some scenarios, taking the case where the operation panel is a display interface of an application in a terminal as an example, the linkage triggering of the first air supply intensity and the second air supply intensity can be achieved through the following multiple implementations.

[0086] For the first implementation, see Figure 3 As shown, the display interface in the application includes an airflow management interface, and the airflow management interface includes a linked air supply control and a linked temperature control control. The first air supply intensity and the second air supply intensity can be controlled to be linked in response to a trigger operation on the linked air supply control in the airflow management interface.

[0087] For example, the user may trigger the linkage air supply control to start, thereby starting the linkage between the first air supply intensity and the second air supply intensity.

[0088] Through the first implementation mode, the user can directly trigger the linkage air supply control to start in the airflow management interface, thereby starting the linkage between the first air supply intensity and the second air supply intensity.

[0089] Among them, in response to a closing operation on the linked air supply control, the first air supply intensity and the second air supply intensity can be controlled to stop being linked.

[0090] For the second implementation, see Figure 3As shown, the air flow management interface includes a linked air supply control, a linked temperature control, and a setting control. In response to a trigger operation on the setting control, a setting interface is displayed. The setting interface includes a wind speed linkage control. When the wind speed linkage control is activated, in response to a trigger operation on the linked air supply control, the first air supply intensity and the second air supply intensity are controlled to be linked.

[0091] Among them, the air flow management interface includes a setting control, and this setting control is linked to Figure 4 the shown setting interface, and this setting interface is used to provide an adjustment interface for the linked air supply mode and the linked temperature control mode.

[0092] For example, the user can click Figure 3 the setting control in the air flow management interface of Figure 4 to enter the shown setting interface, then click the wind speed linkage control, and then return to Figure 3 the shown air flow management interface to activate the linked air supply control, thereby activating the linkage between the first air supply intensity and the second air supply intensity.

[0093] Among them, in response to a closing operation on the linked air supply control, the first air supply intensity and the second air supply intensity can be controlled to stop linking, and the wind speed linkage control in the setting interface can be controlled to close.

[0094] Through the second implementation method, after the user triggers the activation of the wind speed linkage control in the setting interface and then returns to the air flow management interface to trigger the activation of the linked air supply control, the linkage between the first air supply intensity and the second air supply intensity can be activated.

[0095] For the third implementation method, please refer to Figure 5 As shown, the air flow management interface includes a wind speed linkage control, a swing air supply linkage control, a wind feeling linkage control, and a linked temperature control. In response to a trigger operation on the wind speed linkage control, the first air supply intensity and the second air supply intensity are controlled to be linked.

[0096] For example, the user can click Figure 5 the wind speed linkage control in the shown air flow management interface, thereby activating the linkage between the first air supply intensity and the second air supply intensity.

[0097] Among them, in response to a closing operation on the wind speed linkage control, the first air supply intensity and the second air supply intensity can be controlled to stop linking.

[0098] Through the third implementation method, after the user triggers the wind speed linkage control in the air flow management interface, the linkage between the first air supply intensity and the second air supply intensity can be activated.

[0099] Among them, the air conditioner can also be called an air conditioner, which is an air conditioning device that adjusts the temperature and humidity in the space. It has cooling function, heating function, dehumidification function, ventilation function and air purification function. Under the cooling function, the indoor heat can be transferred to the outside through the cooling system to reduce the temperature in the space; under the heating function, the outdoor heat can be transferred to the indoor through the heating system to increase the temperature in the space; under the dehumidification function, the humidity in the space can be reduced to make the indoor environment more comfortable; under the ventilation function, the outdoor air is introduced into the room and the air in the space is exhausted; under the air purification function, pollutants such as dust, pollen and bacteria in the air can be removed.

[0100] Among them, the air circulation equipment can also be called a circulation fan, which is used to generate strong and stable airflow to promote indoor air circulation, thereby making the indoor air distribution more even.

[0101] In a possible implementation, in response to a trigger operation of the user on the operation panel, the second air supply intensity of the air circulation device is linked to be adjusted according to the first air supply intensity of the air conditioner.

[0102] The air conditioner and the air circulation device are in the same space, which may be the same physical space, such as the same living area or the same office area, etc. The same living area includes the same living room, the same bedroom, etc. When it is determined that the air conditioner and the air circulation device are in the same space, the operating parameters of the air circulation device can be adjusted in linkage with the operating parameters of the air conditioner. For example, taking the operating parameter of the air conditioner as the first air supply intensity and the operating parameter of the air circulation device as the second air supply intensity as an example, when it is determined that the air conditioner and the air circulation device are in the same space, the second air supply intensity of the air circulation device can be adjusted in linkage with the first air supply intensity of the air conditioner.

[0103] The first air supply intensity and the second air supply intensity can be reflected by parameters such as air supply speed, air supply volume, wind speed level, etc. For example, if the first air supply intensity and the second air supply intensity are both wind speed levels, the wind speed level of the air circulation device can be adjusted in linkage according to the wind speed level of the air conditioner.

[0104] In a possible implementation, in the process of linking and controlling the air conditioner and the air circulation device, in addition to configuring the main control program for linking air flow management in the cloud server, please refer to Figure 6 As shown, a linkage mode selection module, a linkage air supply control module, a linkage temperature control module, a linkage control center, an air conditioning interaction module, an air circulation equipment interaction module, a linkage control center, an air conditioning linkage control module and an air circulation equipment linkage control module may also be additionally configured.

[0105] Among them, the linkage air flow management main control program is the main control program for realizing the overall linkage air flow management function between the air conditioner and the air circulation device. It is used to obtain the linkage mode control parameters set in the linkage mode selection module and send the obtained linkage mode control parameters to the linkage control center. The linkage mode control parameters indicate whether the selected mode is the linkage air supply mode or the linkage temperature control mode.

[0106] Among them, the linkage mode selection module includes a linkage air supply control module and a linkage temperature control module. The linkage mode selection module is used to respond to the user's trigger operation to activate the linkage air supply control module and / or the linkage temperature control module. For example, if the user activates the linkage air supply control, the linkage air supply control module is activated, thereby providing the user with a linkage air supply mode between the air conditioner and the air circulation device; if the user activates the linkage temperature control, the linkage temperature control module is activated, thereby providing the user with a linkage temperature control mode between the air conditioner and the air circulation device.

[0107] Among them, the linkage control center is the data interaction control center for data processing and data distribution in the overall linkage air flow management function between the air conditioner and the air circulation device. The linkage control center includes an air conditioner interaction module and an air circulation device interaction module. The air conditioner interaction module is responsible for the data interaction between the air conditioner linkage control module and the linkage control center, and the air circulation device interaction module is responsible for the data interaction between the air circulation device control module and the linkage control center.

[0108] Among them, the linkage control network center is used to execute the generation of linkage control instructions after obtaining the data sent by the linkage control center, and send the linkage control instructions to the air conditioner linkage control module and the air circulation device linkage control module through a wireless network such as a WIFI local area network or a Bluetooth local area network.

[0109] Among them, the air conditioner linkage control module is the execution end of the linkage air flow management function, and it is used to control the operation of the air conditioner in response to the linkage control instruction.

[0110] Among them, the air circulation device linkage control module is also the execution end of the linkage air flow management function, and it is used to control the operation of the air circulation device in response to the linkage control instruction.

[0111] In a possible implementation, in the linkage air supply mode, the air conditioner is the main device, and the air circulation device is the slave device. It dynamically adjusts the change of the second air supply intensity of the air circulation device based on the active change of the first air supply intensity of the air conditioner. Taking both the first air supply intensity and the second air supply intensity as wind speeds, the control interaction process in the linkage air supply mode includes the following steps: (1) The air conditioner linkage control module transmits the wind speed of the air conditioner to the linkage air supply control module through the air conditioner interaction module, the linkage control center, and the linkage mode selection module.

[0112] (2)If the user activates the wind speed linkage control on the application, the application will call the linkage air flow management master program. The linkage air flow management master program will then select the "wind speed linkage mode" from the three modes of "wind speed linkage mode", "oscillating wind linkage mode", and "wind feeling linkage mode" in the linkage air supply control module of the linkage mode selection module, thereby activating the "wind speed linkage mode".

[0113] (3)The linkage air supply control module obtains the mapping relationship between the air conditioner's wind speed setting and the air circulation device's wind speed setting in the "wind speed linkage mode", and searches for the air circulation device's wind speed setting corresponding to the air conditioner's wind speed setting.

[0114] (4)The linkage air supply control module sends the air circulation device's wind speed setting to the air circulation device linkage control module through the linkage mode selection module, the linkage control center, and the linkage control network center. The air circulation device linkage control module controls the air circulation device to execute according to the corresponding wind speed setting, thereby realizing the linkage between the air conditioner's wind speed setting and the air circulation device's wind speed setting.

[0115] Among them, during the operation of the air conditioner and the air circulation device, the air conditioner linkage control module will collect the air conditioner operation data of the air conditioner in real time and feedback it to the air conditioner interaction module, and the air conditioner interaction module will feedback it to the linkage control center; similarly, the air circulation device linkage control module will also collect the circulating fan operation data of the air circulation device in real time and feedback it to the air circulation device interaction module, and the air circulation device interaction module will then feedback it to the linkage control center. The linkage control center determines whether the air conditioner and the air circulation device are operating normally as expected based on the feedback air conditioner operation data and circulating fan operation data.

[0116] It can be understood that if the user does not activate the "wind speed linkage control or linkage air supply control", it means that the air circulation device does not accept the linkage control of the air conditioner's real-time operating wind speed setting. The air circulation device accepts the user instructions issued by the user through the application of the air circulation device, the remote control of the air circulation device, or the body buttons of the air circulation device to adjust the air circulation device's wind speed setting according to the wind speed setting indicated by the user instructions.

[0117] In a possible implementation manner, the corresponding relationship between the first air supply intensity and the second air supply intensity can be obtained. After the first air supply intensity changes, according to this corresponding relationship, the second air supply intensity is adjusted to the second air supply intensity corresponding to the changed first air supply intensity.

[0118] For example, both the first air supply intensity and the second air supply intensity are taken as the air speed gears. The air speed gears can also be simply referred to as air gears. The first air gear of the air conditioner corresponds to the first air gear of the air circulation device, and the second air gear of the air conditioner corresponds to the 20th air gear of the air circulation device. When the air conditioner is at the first air gear, the air circulation device can be controlled to be at the first air gear in a linked manner; when the air conditioner is at the second air gear, the air circulation device can be controlled to be at the 20th air gear in a linked manner.

[0119] In a possible implementation manner, the air circulation device includes a cold air blower or a warm air blower. The cold air blower is used to provide cold circulating air for the indoor space, and the warm air blower is used to provide hot circulating air for the indoor space. When the air conditioner is in the cooling mode, the second air supply intensity of the cold air blower will be adjusted in a linked manner according to the first air supply intensity of the air conditioner; when the air conditioner is in the heating mode, the second air supply intensity of the warm air blower will be adjusted in a linked manner according to the first air supply intensity of the air conditioner.

[0120] In a possible implementation manner, there is a positive correlation between the first air supply intensity and the second air supply intensity. When the first air supply intensity increases, the corresponding second air supply intensity will also increase. When the first air supply intensity of the air conditioner increases, it indicates that the user expects a greater air outlet intensity of the air conditioner, so as to achieve a rapid cooling effect. Therefore, the second air supply intensity of the air circulation device can be controlled to increase correspondingly, so as to provide the user with a greater air outlet intensity to meet the user's rapid cooling demand; on the contrary, when the first air supply intensity of the air conditioner decreases, it indicates that the user expects a smaller air outlet intensity. Therefore, the second air supply intensity of the air circulation device can be controlled to decrease correspondingly, so as to provide the user with a smaller air outlet intensity.

[0121] Through the above technical solution, in response to the user's triggering operation on the operation panel, the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device in the same space can be controlled to be linked.

[0122] During this process, the linkage between the air conditioner and the air circulation device can complement each other's defects. After the first air supply intensity of the air conditioner changes, the second air supply intensity of the air circulation device will also change accordingly, so as to dynamically adjust the indoor air supply intensity, thus making up for the defect of the smaller first air supply intensity of the air conditioner to meet the user's usage requirements; and the air conditioner can adjust the indoor temperature and humidity, thus making up for the defect that the air circulation device cannot adjust the indoor temperature and humidity. Moreover, the air conditioner and the air circulation device are controlled to be linked only when they are in the same space, so that the air conditioner and the air circulation device perform linked adjustment of the air supply intensity in the same space. When the air conditioner and the air circulation device in the same space are linked, the presented linked air supply effect is better. In addition, the user can achieve the linked control of the air conditioner and the air circulation device on the operation panel, without having to go to the location of the air conditioner or the air circulation device to adjust the air speed linkage of the air conditioner or the air circulation device, which brings convenience to the user's operation.

[0123] Figure 4 associated with Figure 5 is a schematic diagram related to an exemplary embodiment involved in the present disclosure, which is used to illustrate that in addition to triggering the linkage air supply control, other controls in the display interface can also be triggered to achieve various linkages between the air conditioner and the air circulation device, including the following various implementation manners.

[0124] In the first implementation manner, when at least one target control among the wind speed linkage control, the swing linkage control, and the wind feeling linkage control in the setting interface is triggered, in response to the triggering operation of the linkage air supply control, control the air conditioner and the air circulation device to execute according to the linkage mode indicated by the at least one target control.

[0125] Among them, the linkage mode includes a linkage air supply mode and a linkage temperature control mode. The linkage air supply mode indicates that the air supply mode of the air conditioner is linked with the air supply mode of the air circulation device. The air supply mode of the air conditioner includes a first wind speed intensity, a swing mode, and a wind feeling mode. The air supply mode of the air circulation device includes a second wind speed intensity, a swing mode, and a fixed mode. The linkage air supply mode includes a wind speed linkage mode, a swing linkage mode, and a wind feeling linkage mode. The wind speed linkage mode indicates that the first air supply intensity of the air conditioner is linked with the second air supply intensity of the air circulation device. The swing linkage mode indicates that the swing mode of the air conditioner is linked with the swing mode of the air circulation device. The wind feeling linkage mode indicates that the wind feeling mode of the air conditioner is linked with the fixed mode of the air circulation device. The linkage temperature control mode indicates that the target inner ring temperature of the air conditioner is linked with the second wind speed intensity of the air circulation device.

[0126] Among them, the wind speed linkage control is used to trigger the air conditioner and the air circulation device to be in the wind speed linkage mode. In the wind speed linkage mode, the first air supply intensity of the air conditioner is linked with the second air supply intensity of the air circulation device. Both the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device can be reflected by the wind speed gears. After the wind speed linkage control is triggered and started, if the first air supply intensity of the air conditioner increases, the second air supply intensity of the air circulation device will be controlled to increase in a linked manner. When the first air supply intensity of the air conditioner becomes larger, it indicates that the user expects a greater air supply intensity, so as to quickly cool the indoor air. At this time, the second air supply intensity of the air circulation device can be controlled to increase correspondingly, so as to provide a greater air supply intensity for the user and meet the user's rapid cooling demand; conversely, when the first air supply intensity of the air conditioner decreases, it indicates that the user expects a smaller air supply intensity. Therefore, the second air supply intensity of the air circulation device can be controlled to decrease correspondingly, so as to provide a smaller air supply intensity for the user.

[0127] Among them, the swing linkage control is used to trigger the air conditioner and the air circulation device to be in the swing linkage mode. In the swing linkage mode, the swing mode of the air conditioner is linked to the swing mode of the air circulation device. The swing mode of the air conditioner includes the up-and-down swing mode and the left-and-right swing mode, and the swing mode of the air circulation device includes the up-and-down swing mode and the left-and-right swing mode. After the swing linkage control is triggered, when the swing mode of the air conditioner is the up-and-down swing mode, it indicates that the users in the room are longitudinally distributed in front of the air conditioner. The users expect the air conditioner to swing back and forth among multiple longitudinally distributed users in the way of up-and-down swing, so as to take into account the blowing experience of multiple users at the same time. At this time, the swing mode of the air circulation device can be controlled to be the up-and-down swing mode. Then, through the up-and-down swing of the air circulation device, the up-and-down swing range of the air conditioner wind output by the up-and-down swing of the air conditioner can be made larger, so as to expand the up-and-down swing range of the air conditioner wind and meet the blowing experience of multiple users. Similarly, when the swing mode of the air conditioner is the left-and-right swing mode, it indicates that the users in the room are horizontally distributed in front of the air conditioner. The users expect the air conditioner to swing back and forth among multiple horizontally distributed users in the way of left-and-right swing, so as to take into account the blowing experience of multiple users at the same time. At this time, the swing mode of the air circulation device can be controlled to be the left-and-right swing mode. Then, through the left-and-right swing of the air circulation device, the left-and-right swing range of the air conditioner wind output by the left-and-right swing of the air conditioner can be made larger, so as to expand the left-and-right swing range of the air conditioner wind and meet the blowing experience of multiple users.

[0128] Among them, the wind feeling linkage control is used to trigger the air conditioner and the air circulation device to be in the wind feeling linkage mode. In the wind feeling linkage mode, the wind feeling mode of the air conditioner is linked to the fixed mode of the air circulation device. When controlling the wind feeling mode of the air conditioner to be linked to the fixed mode of the air circulation device, the air supply direction indicated by the fixed mode of the air circulation device can be controlled to be the same as the air supply direction indicated by the wind feeling mode of the air conditioner. For example, both of them are upward or both of them are downward.

[0129] The wind feeling mode of the air conditioner can include the sky curtain wind mode, the carpet wind mode, the surrounding wind mode, and the non-direct blowing mode. The non-direct blowing mode includes the sleep mode, the soft wind mode, the anti-direct blowing mode, etc. In the sky curtain wind mode, the carpet wind mode, and the non-direct blowing mode, the air supply direction of the air conditioner avoids the users. Among them, the sky curtain wind mode indicates that the air supply direction of the air conditioner is upward, and the output air conditioner wind diffuses at the top of the room and then naturally sinks, so that the whole room is evenly cooled / heated. The carpet wind mode indicates that the air supply direction of the air conditioner is downward, and the output air conditioner wind is sent to the ground along the wall, and then the air conditioner wind flows from bottom to top, so that the whole room is evenly cooled / heated. Usually, the sky curtain wind mode is used for refrigeration, and the carpet wind mode is used for heating. The sleep mode includes the standard sleep mode and the Lingyun sleep mode, etc. In the surrounding wind mode, the air supply direction of the air conditioner surrounds the users. In the soft wind mode, the air conditioner wind output by the air conditioner will be gently and evenly distributed in the room, reducing the discomfort caused by the direct blowing of the air conditioner wind.

[0130] The rated modes of the air circulation device include an upward rated mode and a downward rated mode.

[0131] Exemplarily, if the air feeling mode of the air conditioner is the sky curtain wind mode, it indicates that the user indoors expects the air conditioner wind output by the air conditioner to avoid directly blowing on the user. Since the air outlet direction of the air conditioner is upward in the sky curtain wind mode, the rated mode of the air circulation device can be controlled to be the upward rated mode. When the air circulation device is in the upward rated mode, it will swing upward by a preset stroke and then freeze. In this way, both the air supply direction of the air circulation device and the air supply direction of the air conditioner are upward. The air circulation device can also direct the indoor air to the air supply outlet of the air circulation device. The air output by the air conditioner and the air circulation device will flow at the top of the room and then naturally sink, so as to evenly cool / warm the entire room, thus meeting the user's requirement of wind avoiding people.

[0132] Exemplarily, when the air feeling mode of the air conditioner is the surrounding wind mode, it means that the user indoors expects the air conditioner wind output by the air conditioner to surround the user. Since the air outlet direction of the air conditioner is upward in the surrounding wind mode, the rated mode of the air circulation device can be controlled to be the upward rated mode. When the air circulation device is in the upward rated mode, it will swing upward by a preset stroke and then freeze. In this way, both the air supply direction of the air circulation device and the air supply direction of the air circulation device are upward. The air circulation device can also direct the indoor air to the position where the air supply outlet of the air conditioner is located, and then blow towards and surround the user together with the air conditioner wind output by the air conditioner, thus meeting the user's requirement of wind blowing on people.

[0133] Exemplarily, when the air feeling mode of the air conditioner is the carpet wind mode, it indicates that the user indoors also expects the air output by the air conditioner to avoid the user. Since the air outlet direction of the air conditioner is downward in the carpet wind mode, the rated mode of the air circulation device can be controlled to be the downward rated mode. When the air circulation device is in the downward rated mode, it will swing downward by a preset stroke and then freeze. In this way, both the air supply direction of the air circulation device and the air conditioner are downward. The air circulation device can also direct the indoor air to the position where the air supply outlet of the air conditioner is located. The air output by the air conditioner and the air circulation device will flow naturally from bottom to top, so as to evenly cool / warm the entire room and better meet the user's requirement of wind avoiding people.

[0134] Exemplarily, if the air feeling mode of the air conditioner is a non-direct blowing mode such as the sleep mode, the gentle wind mode, or the anti-direct blowing mode, the air circulation device is preferentially controlled to execute the natural wind mode. If the air circulation device does not have the natural wind mode, the air circulation device is controlled to execute the upward rated mode. Since the air supply direction of the air conditioner is upward in the non-direct blowing mode, the rated mode of the air circulation device can be controlled to be the upward rated mode, so that both the air supply direction of the air conditioner and the air circulation device are upward. Of course, the air circulation device can also direct the indoor air to the position where the air supply outlet of the air conditioner is located, and then the air conditioner outputs the air introduced by the air circulation device.

[0135] The scenarios where at least one target control among the wind speed linkage control, the swing linkage control, and the wind sense linkage control is triggered will be introduced below.

[0136] For example, please refer to Figure 4 As shown, if the user activates the wind speed linkage control and the swing linkage control in the Figure 4 shown settings interface, and then returns to the Figure 3 shown air flow management interface and activates the linkage air supply control, it will control the air conditioner and the air circulation device to execute the wind speed linkage mode and the swing linkage mode simultaneously. For example, when the first air supply intensity of the air conditioner increases, it will correspondingly control the second air supply intensity of the air circulation device to increase, and when the air conditioner is in the up and down swing mode, it will correspondingly control the air circulation device to be in the up and down swing mode, so as to provide the user with air conditioner wind with a larger air volume and a wider air supply range.

[0137] For example, please refer to Figure 4 As shown, if the user activates the wind speed linkage control and the wind sense linkage control in the Figure 4 shown settings interface, and then returns to the Figure 3 shown air flow management interface and activates the linkage air supply control, it will control the air conditioner and the air circulation device to execute the wind speed linkage mode and the wind sense linkage mode simultaneously. For example, when the first air supply intensity of the air conditioner decreases, it will correspondingly control the second air supply intensity of the air circulation device to decrease, and when the air conditioner is in the sky curtain wind mode, it will correspondingly control the air circulation device to be in the upward fixed mode, so as to provide the user with air conditioner wind with a smaller air volume and avoiding the user.

[0138] Of course, it is also possible to respond to the closing operation of the linkage air supply control, control at least one activated target control among the wind speed linkage control, the swing linkage control, and the wind sense linkage control to close, and control the air conditioner and the air circulation device to stop executing the linkage mode indicated by the target control. After the wind speed linkage control is closed, the second air supply intensity of the air circulation device no longer receives the linkage control of the first air supply intensity of the air conditioner, but can receive user instructions issued by the user through the application program, the remote control, or the air conditioner body, so as to adjust the second air supply intensity of the air circulation device based on the user instructions; after the swing linkage control is closed, the swing mode of the air circulation device no longer receives the linkage control of the swing mode of the air conditioner, but can receive user instructions issued by the user through the application program, the remote control, or the air conditioner body, so as to adjust the swing mode of the air circulation device based on the user instructions; after the wind sense linkage control is closed, the fixed mode of the air circulation device no longer receives the linkage control of the wind sense mode of the air conditioner, but can receive user instructions issued by the user through the application program, the remote control, or the air conditioner body, so as to adjust the fixed mode of the air circulation device based on the user instructions.

[0139] In a possible implementation, when the wind speed linkage control and the air-sweeping linkage control are triggered and started simultaneously, the air circulation device can be controlled to output a third air supply intensity, which is less than the second air supply intensity corresponding to the first air supply intensity. When the wind speed linkage control and the air-sweeping linkage control are triggered and started simultaneously, a correction coefficient less than 1 can be used to correct the second air supply intensity corresponding to the first air supply intensity to obtain a corrected third air supply intensity, and the third air supply intensity is less than the second air supply intensity.

[0140] For example, if the second air supply intensity of the air circulation device corresponding to the first air supply intensity of 2 gears of the air conditioner is 4 gears, when the air-sweeping linkage control is turned on alone, if the first air supply intensity of the air conditioner is 2 gears, the second air supply intensity of the air circulation device will be correspondingly controlled to be 4 gears; when the wind speed linkage control and the air-sweeping linkage control are triggered and started simultaneously, if the first air supply intensity of the air conditioner is 2 gears, the third air supply intensity output by the air circulation device will be correspondingly controlled to be less than 4 gears, for example, 3 gears, and the air-sweeping mode of the air conditioner will be controlled to be linked with the swinging mode of the air circulation device.

[0141] It can be understood that when the gear linkage control and the air-sweeping linkage control are turned on simultaneously, the air conditioner and the air circulation device will be triggered to execute the gear linkage mode and the air-sweeping linkage mode at the same time. Since the air circulation device will accelerate the indoor air circulation by sweeping left and right or up and down in the air-sweeping linkage mode, bringing a good blowing experience to the user, and it brings a part of the air supply intensity, so even when the circulating air is output with a lower third air supply intensity, the user's blowing experience will not be reduced. Therefore, when the gear linkage control and the air-sweeping linkage control are turned on simultaneously, a correction coefficient can be used to correct the second air supply intensity of the air circulation device, so that the corrected third air supply intensity of the air circulation device is lower than the second air supply intensity before correction. The lower third air supply intensity combined with the air supply intensity brought by air-sweeping, the air supply intensity finally delivered to the user remains basically unchanged, while ensuring the user's blowing experience, reducing energy consumption.

[0142] The second implementation mode is to control the air conditioner and the air circulation device to execute according to the linkage mode indicated by at least one target control in response to a trigger operation on at least one target control among the linkage temperature control control and the linkage air supply control.

[0143] Among them, the linkage temperature control component is used to trigger the air conditioner and the air circulation device to be in the linkage temperature control mode. In the linkage temperature control mode, the target inner ring temperature of the air conditioner is linked with the second air supply intensity of the air circulation device. The target inner ring temperature is to indicate that the air conditioner and the target inner ring temperature are the targets, and the indoor temperature is controlled to be adjusted to the set temperature of the air conditioner. The larger the target inner ring temperature is, the slower the indoor temperature is adjusted to the set temperature of the air conditioner; on the contrary, the smaller the target inner ring temperature is, the faster the indoor temperature is adjusted to the set temperature of the air conditioner. The linkage between the target inner ring temperature of the air conditioner and the second air supply intensity of the air circulation device includes: the corrected temperature of the air conditioner is linked with the second air supply intensity of the air circulation device, and there is a corresponding relationship between the corrected temperature of the air conditioner and the second air supply intensity of the air circulation device.

[0144] The target inner ring temperature of the air conditioner is obtained according to the set temperature of the air conditioner and the corrected temperature. The set temperature of the air conditioner is the expected indoor temperature set by the user, and the corrected temperature is obtained according to the second air supply intensity of the air circulation device. The higher the corrected temperature and the set temperature of the air conditioner are, the higher the obtained target inner ring temperature is. Please refer to Figure 4 The setting interface shown also includes a linkage temperature control setting interface, which is used to display the corresponding relationship between the corrected temperature and the second air supply intensity. It can be represented by a curve graph, or displayed in the form of key-value pairs, and of course it can also be displayed in other forms.

[0145] For example, refer to Figure 4 the linkage temperature control setting interface in. Taking the linkage temperature control setting interface as a curve graph as an example, the abscissa of this curve graph is the second air supply intensity, and the ordinate is the corrected temperature. The user can adjust the corrected temperature corresponding to any second air supply intensity on the curve graph. After the corrected temperature is adjusted, the target inner ring temperature of the air conditioner will also change correspondingly; after setting the corrected temperature, return to the air flow management interface shown in 3. After the user activates the linkage temperature control component in the air flow management interface, the corrected temperature of the air conditioner and the second air supply intensity between the air circulation devices can be controlled to run according to the Figure 4 corresponding relationship shown in the curve graph. After the second air supply intensity of the air circulation device changes, based on the Figure 4 curve graph shown, the corresponding corrected temperature is queried, and the target inner ring temperature of the air conditioner is calculated based on the queried corrected temperature, so as to realize the linkage between the target inner ring temperature and the second air supply intensity.

[0146] Next, it will be introduced that Figure 4 when at least one target component among the wind speed linkage component, the swing linkage component and the wind feeling linkage component in is triggered, and then return to Figure 3 the scenario of triggering the linkage air supply component and the linkage temperature control component in.

[0147] Exemplarily, please refer to Figure 4 shown. If the user is in Figure 4The wind speed linkage control and the swing linkage control are activated in the displayed setting interface, and then return to Figure 3 After activating the linkage air supply control and the linkage temperature control in the displayed air flow management interface, the air conditioner and the air circulation device will be controlled to execute the following three linkage modes: First, in the wind speed linkage mode, the second air supply intensity of the air circulation device is dynamically adjusted according to the first air supply intensity of the air conditioner; Second, in the swing linkage mode, the swing mode of the air circulation device is dynamically adjusted according to the swing mode of the air conditioner; Third, in the linkage temperature control mode, the target inner ring temperature of the air conditioner is dynamically adjusted according to the second air supply intensity of the air circulation device.

[0148] For example, please refer to Figure 4 As shown, if the user Figure 4 The wind speed linkage control and the wind sense linkage control are activated in the displayed setting interface, and then return to Figure 3 After activating the linkage air supply control and the linkage temperature control in the displayed air flow management interface, the air conditioner and the air circulation device will be controlled to execute the following three linkage modes: First, in the wind speed linkage mode, the second air supply intensity of the air circulation device is dynamically adjusted according to the first air supply intensity of the air conditioner; Second, in the wind sense linkage mode, the fixed mode of the air circulation device is dynamically adjusted according to the wind sense mode of the air conditioner; Third, in the linkage temperature control mode, the target inner ring temperature of the air conditioner is dynamically adjusted according to the second air supply intensity of the air circulation device.

[0149] In the third implementation manner, when at least one target control among the wind speed linkage control, the swing linkage control, the wind sense linkage control, and the linkage temperature control in the air flow management interface is triggered, the air conditioner and the air circulation device are controlled to execute according to the linkage mode indicated by the at least one target control.

[0150] Please refer to Figure 5 As shown, the wind speed linkage control, the swing linkage control, the wind sense linkage control, and the linkage temperature control are displayed in the air flow management interface, and the user can trigger and activate at least one of the target controls to control the air conditioner and the air circulation device to execute the corresponding linkage mode.

[0151] In a possible implementation manner, when both the air conditioner and the air circulation device are connected to the network, in response to a trigger operation by the user on the operation panel, the first air supply intensity and the second air supply intensity are controlled to be linked.

[0152] Among them, both the air conditioner and the air circulation device being connected to the network includes two situations. First, the air conditioner and the air circulation device are in the same network and communicate through this network; Second, the air conditioner and the air circulation device are in different networks and communicate through different networks.

[0153] Before the application displays the air flow management interface, a network selection interface will also be displayed. Please refer to Figure 8 As shown, this network selection interface is used to provide a configuration interface for the network name (such as the WIFI name of the Internet of Things) and network password (such as the WIFI password) of the selected air conditioner or air circulation device. Users can configure the network for the air conditioner and air circulation device on the network selection interface. For example, the connection networks of the air conditioner and air circulation device in the same space can be configured as the same network or different networks. Then, the air conditioner and air circulation device in the same space can use the same network or different networks to achieve communication connections, and then achieve linkage based on this communication connection.

[0154] In a possible implementation, a device search interface will also be displayed before the network selection interface. Please refer to Figure 7 As shown, multiple devices in multiple spaces are displayed in this device search interface. These devices can be either air conditioners or air circulation devices. In response to the user's trigger operation on the target device among the multiple devices, the network selection interface is entered. In response to the trigger operation on the network name in the network selection interface, the target network name is selected. In response to the setting operation on the network password in the network selection interface, the configuration of the network password is completed. In this way, the configuration of the network name and network password for the target device is completed. If there are two target devices with the same network name and network password among the configured multiple target devices, it means that these two target devices are under the same network, then these two target devices can establish a network connection to achieve linkage. Of course, two target devices under different networks can also achieve linkage.

[0155] For example, after the application displays Figure 7 the device search interface shown, Figure 7 the device search interface shown displays air conditioners A to E and air circulation devices A to E. If the user selects air conditioner A, the Figure 8 network selection interface will be entered, and the user configures the network name and network password for air conditioner A. Subsequently, when returning to the Figure 7 device search interface shown, the user selects air circulation device A and then enters the Figure 8 network selection interface, and the user configures the network name and network password for air circulation device A. In this way, after the user configures the network for air conditioner A and air circulation device A, if the user configures the same network name and network password for air conditioner A and air circulation device A, then air conditioner A and air circulation device A belong to the same network; if the user configures different network names and network passwords for air conditioner A and air circulation device A, then air conditioner A and air circulation device A belong to different networks.

[0156] Through the above technical solution, the user can Figure 3At least one target control among the linkage air supply control and the linkage temperature control is triggered to start in the airflow management interface shown, or it can also be in Figure 4 At least one target control among the wind speed linkage control, the swing linkage control, and the wind feeling linkage control is triggered to start in the setting interface shown, or it can also be in Figure 5 At least one target control among the wind speed linkage control, the swing linkage control, and the wind feeling linkage control is triggered to start in the airflow management interface shown, which provides a variety of diverse operations for triggering the air conditioner and the air circulation device to enter the corresponding linkage mode.

[0157] Table 1 below is an exemplary embodiment involved in the present disclosure, which is used to interpret various exemplary schemes for the corresponding relationship between the first air supply intensity and the second air supply intensity.

[0158]

[0159] Table 1 As shown in Table 1 above, the air conditioner firmware wind speed refers to the wind speed on the body or remote control of the air conditioner, and the air conditioner App plugin wind speed refers to the wind speed on the App plugin installed on the air conditioner. The wind speed displayed by the air conditioner firmware wind speed is the same as that of the air conditioner App plugin wind speed; the air circulation device firmware wind speed refers to the wind speed on the body or remote control of the air circulation device, and the air circulation device App plugin wind speed refers to the wind speed on the App plugin installed on the air circulation device. The air circulation device firmware wind speed is inconsistent with the air circulation device App plugin wind speed, and there is a corresponding relationship between the air circulation device firmware wind speed and the air circulation device App plugin wind speed.

[0160] In the first exemplary scheme, when the air conditioner is in the direct blowing mode, according to the corresponding relationship between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, the air circulation device is linked and adjusted to the second air supply intensity corresponding to the first air supply intensity.

[0161] Among them, the direct blowing mode indicates that the air supply direction of the air conditioner faces the user. When the user's position changes, the air supply direction of the air conditioner can also be dynamically adjusted to face the user.

[0162] The direct blowing mode of the air conditioner includes a non-automatic wind speed mode and an automatic wind speed mode. In the non-automatic wind speed mode, the air conditioner wind speed is adjusted by the user, and in the automatic wind speed mode, the air conditioner wind speed is automatically adjusted by the air conditioner system.

[0163] When the air conditioner is in the non-automatic wind mode of the direct blowing mode, if the user sets the air conditioner wind gear to any wind gear between the 1st wind gear and the Max (maximum) wind gear, the linkage air supply control module will find the air circulation device App plug-in wind gear or the air circulation device firmware wind gear corresponding to the air conditioner wind gear according to the corresponding relationship in Table 1, and control the air circulation device to execute the corresponding circulation device App plug-in wind gear or the air circulation device firmware wind gear.

[0164] When the air conditioner is in the automatic wind mode of the direct blowing mode, if the air conditioner wind gear is automatically adjusted to any wind gear between the 1st wind gear and the Max wind gear, the linkage air supply control module will find the air circulation device App plug-in wind gear or the air circulation device firmware wind gear corresponding to the air conditioner wind gear according to the corresponding relationship in Table 1, and control the air circulation device to execute the corresponding circulation device App plug-in wind gear or the air circulation device firmware wind gear.

[0165] The second exemplary solution is that when the air conditioner is in the non-direct blowing mode, the air circulation device is controlled to be in the natural wind mode. When the air conditioner is in the non-direct blowing mode, at this time, the wind gear of the air conditioner can be adjusted by the user or automatically adjusted by the air conditioner.

[0166] It can be understood that when the air conditioner is in the non-direct blowing mode, it means that the user expects the air output by the air conditioner to avoid the user. Therefore, the air circulation device can be controlled to be in the natural wind mode. In the natural wind mode, the noise of the air circulation device is small, and the output air is relatively gentle, thus realizing the linkage with the non-direct blowing mode of the air conditioner.

[0167] Among them, the non-direct blowing mode indicates that the air supply direction of the air conditioner avoids the user. When the user's position changes, the air supply direction of the air conditioner can also be dynamically adjusted to avoid the user. The non-direct blowing mode includes standard sleep mode, Lingyun sleep mode, soft wind mode, anti-direct blowing mode, etc. in the wind feeling mode.

[0168] Among them, the air circulation device executes any one of the following in the natural wind mode: (1) According to the corresponding relationship between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, the air circulation device is linked and adjusted to the second air supply intensity corresponding to the first air supply intensity.

[0169] Please refer to Table 1. If the air conditioner gear is any gear between the 1st gear and the Max gear, the linkage air supply control module will find the air circulation device App plug-in gear or the air circulation device firmware gear corresponding to the air conditioner gear according to the corresponding relationship in Table 1, and control the air circulation device to execute the corresponding circulation device App plug-in gear or the air circulation device firmware gear.

[0170] (2) Adjusting the second air supply intensity of the air circulation device to a preset air supply intensity.

[0171] The preset air supply intensity is the default air supply intensity of the air circulation device, for example, wind speed 2. For example, when the air conditioner is in the non-direct wind mode, the air circulation device can be adjusted to the natural wind mode, and the air circulation device can be linked to control the air circulation device to be in wind speed 2 in the natural wind mode.

[0172] (3) Adjusting the second air supply intensity of the air circulation device to the air supply intensity set by the user.

[0173] The user can set the wind speed of the air circulation device in the natural wind mode, for example, to wind speed 1. After the user sets the air circulation device in the natural wind mode to wind speed 1, when the air conditioner is in the non-direct wind mode, the air circulation device can be adjusted to the natural wind mode, and the air circulation device can be linked to control the air circulation device to wind speed 1 in the natural wind mode.

[0174] In a possible implementation, the first air supply direction of the air conditioner is the same as or opposite to the second air supply direction of the air circulation device.

[0175] The first air supply direction and the second air supply direction are the same means that the first air supply direction and the second air supply direction face the same direction, and the first air supply direction and the second air supply direction are parallel to each other or in a straight line. For example, see Figure 9 As shown, the air conditioner and the air circulation device are located on the same side, and the first air supply direction of the air conditioner and the second air supply direction of the air circulation device are parallel to each other and face forward; for another example, refer to Figure 10 As shown, the air conditioner and the air circulation device are located on the same side, and the first air supply direction of the air conditioner and the second air supply direction of the air circulation device are located on the same straight line and are both directed toward the right of the air circulation device.

[0176] The first air supply direction is opposite to the second air supply direction. Figure 11 As shown, the air conditioner and the air circulation device are located on opposite sides, the first air supply direction of the air conditioner is opposite to the second air supply direction of the air circulation device, the first air supply direction of the air conditioner is toward the air circulation device, and the second air supply direction of the air circulation device is toward the air conditioner.

[0177] In one possible embodiment, the second air supply intensity range corresponding to the first air supply intensity range when the first air supply direction is the same as the second air supply direction is greater than the second air supply intensity range corresponding to the first air supply intensity range when the first air supply direction is opposite to the second air supply direction. The first air supply intensity range is the range in which the first air supply intensity is located, and the second air supply intensity range is the range in which the second air supply intensity is located.

[0178] For example, as shown in Table 1, when the air conditioner is in the direct blowing mode at wind speed levels 1 to 2, if the first air supply direction is the same as the second air supply direction ( Figure 1 the same side position of the air conditioner in Figure 1 indicates that the first air supply direction is the same as the second air supply direction), the second air supply intensity range of the air circulation device can be configured as wind speed levels 1 to 20; if the first air supply direction is opposite to the second air supply direction ( Figure 1 the opposite side position of the air conditioner in Figure 1 indicates that the first air supply direction is opposite to the second air supply direction), the second air supply intensity range of the air circulation device can be configured as wind speed levels 1 to 10.

[0179] Another example, as shown in Table 1, when the air conditioner is in the direct blowing mode at wind speed levels 1 to max, if the first air supply direction is the same as the second air supply direction, the second air supply intensity range of the air circulation device can be configured as wind speed levels 1 to 100; if the first air supply direction is opposite to the second air supply direction, the second air supply intensity range of the air circulation device can be configured as wind speed levels 1 to 35.

[0180] Among them, at the same first air supply intensity, the second air supply intensity when the first air supply direction is the same as the second air supply direction is greater than the second air supply intensity when the first air supply direction is opposite to the second air supply direction.

[0181] For example, as shown in Table 1, when the air conditioner is in the direct blowing mode at wind speed level 2, if the first air supply direction is the same as the second air supply direction, the second air supply intensity of the air circulation device can be configured as wind speed level 20; if the first air supply direction is opposite to the second air supply direction, the second air supply intensity of the air circulation device can be configured as wind speed level 10.

[0182] Another example, as shown in Table 1, when the air conditioner is in the direct blowing mode at wind speed level 5, if the first air supply direction is the same as the second air supply direction, the second air supply intensity of the air circulation device can be configured as wind speed level 70; if the first air supply direction is opposite to the second air supply direction, the second air supply intensity of the air circulation device can be configured as wind speed level 30.

[0183] With the above technical solution, since the range of the second air supply intensity when the first air supply direction is the same as the second air supply direction is greater than the range of the second air supply intensity when the first air supply direction is opposite to the second air supply direction, or at the same first air supply intensity, the second air supply intensity when the first air supply direction is the same as the second air supply direction is greater than the second air supply intensity when the first air supply direction is opposite to the second air supply direction, so when the first air supply direction of the air conditioner is the same as the second air supply direction of the air circulation device, the first air supply intensity and the second air supply intensity output by the air conditioner can be superimposed on each other, and the air circulation device can spread the air output by the air conditioner farther and with a stronger wind speed, which is beneficial to the air supply of the air conditioner and gives the user a stronger refrigeration effect experience; when the first air supply direction of the air conditioner is opposite to the second air supply direction, the first air supply intensity and the second air supply intensity will cancel each other out, so the second air supply intensity will be controlled to be smaller, thereby reducing the influence of the second air supply intensity on the first air supply intensity.

[0184] Figure 12 This is an exemplary embodiment related to the present disclosure, which is used to interpret an exemplary solution after receiving a user instruction during the process of jointly controlling the air supply intensity in the space by the air conditioner and the air circulation device. It includes the following steps: In step S20, during the process of jointly adjusting the second air supply intensity according to the first air supply intensity, in response to receiving a user instruction, control the air circulation device to execute at the target air supply intensity indicated by the user instruction.

[0185] The user instruction is used to indicate the target air supply intensity that the air circulation device needs to execute. Taking the target air supply intensity as the target wind speed gear as an example, the user instruction indicates the target wind speed gear that the air circulation device needs to execute. The user instruction can be an instruction triggered by the user at the App (application program) plug-in end of the air circulation device, the remote control of the air circulation device, or the body control button of the air circulation device. Among them, if the control panel of the air circulation device is the display interface of the application program installed in the air circulation device, then the user instruction can be triggered on the display interface; if the control panel of the air circulation device is the mechanical panel of the air circulation device, then the user instruction can be triggered on the body control button of the mechanical panel.

[0186] In a possible implementation manner, during the process of adjusting the second air supply intensity according to the first air supply intensity within the wind speed linkage period, if no user instruction is received, the air circulation device will continue to be controlled to execute the second air supply intensity corresponding to the first air supply intensity at the starting time point of the wind speed linkage period of the air conditioner.

[0187] In a possible implementation manner, during the process of adjusting the second air supply intensity according to the first air supply intensity within the wind speed linkage period, if a user instruction is received, the air circulation device is controlled to execute at the target air supply intensity indicated by the user instruction until the end time point of the wind speed linkage period is reached, and this end time point is also the time point when the changed first air supply intensity is received.

[0188] Wherein, a single wind speed linkage period is the period experienced by the state change of the first air supply intensity of the air conditioner, and each wind speed linkage period can be equal or unequal. This wind speed linkage period is determined according to the switching time of the first air supply intensity, and no limitation is made here.

[0189] For example, taking the first air supply intensity of the air conditioner as the wind gear, if the wind gears of the air conditioner include the first gear, the second gear, and the third gear, then the time experienced by the air conditioner changing from the first gear to the second gear is the first wind speed linkage period, the time experienced by the air conditioner changing from the second gear to the third gear is the second wind speed linkage period, and the time experienced by the air conditioner switching from the third gear to the second gear is the third wind speed linkage period.

[0190] Wherein, the change of the first air supply intensity of the air conditioner can be the change of the first air supply intensity triggered by the user through the App (application program) plug-in end of the air conditioner, the remote control of the air conditioner, or the body control button of the air conditioner, or it can also be the change of the first air supply intensity automatically triggered by the air conditioner based on the operating mode.

[0191] In some scenarios, when the air conditioner is in the non-automatic wind mode of the direct blowing mode, if the air conditioner is in the first gear, at this time the linkage air flow management main control program will control the wind gear of the air circulation device to be the wind gear corresponding to the first gear of the air conditioner; if the user triggers the air conditioner to switch from the first gear to the second gear through the remote control of the air conditioner, at this time the linkage air flow management main control program will control the wind gear of the air circulation device to switch to the wind gear corresponding to the second gear of the air conditioner. Among them, within the wind speed linkage period when the air conditioner changes from the first gear to the second gear, if no user instruction is received by triggering the remote control of the air circulation device by the user, the air circulation device will be controlled to continue to execute the wind gear corresponding to the first gear of the air conditioner; if a user instruction to execute the fourth gear is received by triggering the air circulation device through the remote control / body or App plug-in end of the air circulation device by the user, the air circulation device will be controlled to execute the fourth gear, so as to switch from the wind gear corresponding to the first gear of the air conditioner to the fourth gear.

[0192] In a possible implementation, after the user enables the linked air supply control to start the linked air supply control module, the air conditioner linked control module will read the air conditioner's wind speed setting in real time and transmit the air conditioner's wind speed setting to the linked air supply control module in real time through the air conditioner interaction module, the linked control center, and the linked mode selection module, so that the linked air supply control module can obtain the air conditioner's wind speed setting in real time. The linked air supply module then determines the wind speed setting that the air circulation device should execute at this time according to the real-time wind speed setting of the air conditioner and the mapping table in Table 1 above, and encapsulates the wind speed setting that the air circulation device should execute at this time in the linked control instruction, and issues it to the air circulation device through the linked mode selection module, the linked control center, the linked control network center, and the air circulation device linked control module. During this process, if the wind speed setting that the air circulation device should execute in the received linked control instruction changes, it means that this wind speed linkage cycle ends and the next wind speed linkage cycle begins. Therefore, before the wind speed setting executed in the linked control instruction received by the air circulation device changes, if a user instruction is received, the air circulation device is controlled to execute according to the target wind speed intensity indicated by the user instruction until a linked control instruction after the wind speed setting change is received and the next wind speed linkage cycle begins.

[0193] In a possible implementation, there is a corresponding relationship between the firmware wind speed setting of the air circulation device and the wind speed range of the App plug-in wind speed setting of the air circulation device. If the target wind speed setting indicated by the received user instruction is greater than the maximum wind speed in the App plug-in wind speed range corresponding to the current firmware wind speed setting and less than the minimum wind speed in the App plug-in wind speed range corresponding to the next firmware wind speed setting, the firmware wind speed setting of the air circulation device is controlled to remain the current firmware wind speed setting.

[0194] For example, as shown in Table 1 above, the firmware wind speed settings of the air circulation device are Wind Speed Setting 1 and Wind Speed Setting 2. When the air supply directions of the air conditioner and the air circulation device are on the same side, the App plug-in wind speed range corresponding to Wind Speed Setting 1 is Wind Speed Setting 1 to Wind Speed Setting 20; the App plug-in wind speed range corresponding to Wind Speed Setting 2 is Wind Speed Setting 35 to Wind Speed Setting 50. When the target wind speed setting indicated in the user instruction is Wind Speed Setting 34, which is greater than the maximum wind speed of 20 in the current App plug-in wind speed range of Wind Speed Setting 1 to Wind Speed Setting 20 and less than the minimum wind speed of 35 in the next App plug-in wind speed range, the firmware wind speed setting of the air circulation device will be controlled to remain Wind Speed Setting 1, but it will be displayed as Wind Speed Setting 34 in the App plug-in wind speed setting.

[0195] In addition, when determining the air duct of the air circulation device corresponding to the air duct of the air conditioner, since the air duct that the linkage air flow management main control program can control is the air duct of the air circulation device App plug-in, when obtaining the air duct of the air conditioner, first find the air duct of the air circulation device App plug-in corresponding to the air duct of the air conditioner, and then adjust the firmware air duct of the air circulation device accordingly based on the air duct of the air circulation device App plug-in.

[0196] For example, referring to Table 1, if the air duct of the air conditioner is the second air duct and it is determined that the air supply directions of the air conditioner and the air circulation device are the same, then it can be determined that the air duct of the air circulation device App plug-in corresponding to the second air duct of the air conditioner is the 20th air duct. Then, the firmware air duct of the air circulation device corresponding to the 20th air duct of the air circulation device App plug-in is the first air duct, and the firmware air duct of the air circulation device will be controlled to be displayed as the first air duct.

[0197] In step S30, in response to the change in the first air supply intensity of the air conditioner, control the air circulation device to switch from the target air supply intensity to the second air supply intensity corresponding to the changed first air supply intensity.

[0198] In a possible implementation manner, if the first air supply intensity of the air conditioner changes, it indicates that the end time point of the wind speed linkage period has been reached. At this time, the air circulation device can be controlled to switch from the target air supply intensity indicated by the user to the second air supply intensity corresponding to the changed first air supply intensity, so as to resume the linkage between the air conditioner and the air circulation device.

[0199] In some scenarios, when the air conditioner is in the non-automatic wind mode of the direct blowing mode, if the air conditioner is in the first air duct, the linkage air flow management main control program will then control the air circulation device to execute the air duct corresponding to the first air duct of the air conditioner; if the user triggers the air conditioner to switch from the first air duct to the second air duct through the remote control of the air conditioner, the linkage air flow management main control program will then control the air circulation device to execute the air duct corresponding to the second air duct of the air conditioner.

[0200] During the wind speed linkage period when the air conditioner changes from the first air duct to the second air duct, if no user instruction triggered by the user through the remote control of the air circulation device is received, the air circulation device will be controlled to continue to execute the air duct corresponding to the first air duct of the air conditioner; if a user instruction for the air circulation device to execute the fourth air duct is received through the remote control / body / App plug-in end of the air circulation device by the user, the air circulation device will be controlled to execute the fourth air duct, so that the air duct of the air circulation device switches from the air duct corresponding to the first air duct of the air conditioner to the fourth air duct indicated by the user instruction; if the air conditioner has already changed from the first air duct to the second air duct, the air circulation device will be controlled to execute the air duct corresponding to the second air duct of the air conditioner, rather than the fourth air duct indicated by the user instruction, in order to resume the linkage control between the air conditioner and the air device.

[0201] It can be understood that the wind speed linkage scenario between the air conditioner and the air circulation device can be applied within each wind speed linkage cycle. If a user instruction is received within each wind speed linkage cycle, the air circulation device will be controlled to preferentially execute according to the target air supply intensity indicated by the user instruction until the end of the wind speed linkage cycle or until the first air supply intensity of the air conditioner changes.

[0202] Through the above technical solution, on the one hand, during the process of adjusting the second air supply intensity in linkage with the first air supply intensity, if a user instruction is received, the air circulation device will be controlled to preferentially execute the target air supply intensity indicated by the user instruction. Thus, when faced with two options of system automatic linkage control and user control, user control is preferred, thereby improving the user experience; on the other hand, after the first air supply intensity of the air conditioner changes, it indicates that the user has adjusted the first air supply intensity or the air conditioner has adjusted the first air supply intensity based on the current operating mode. Therefore, the air circulation device can be controlled to switch from the target air supply intensity indicated by the user instruction to the second air supply intensity corresponding to the changed first air supply intensity of the air conditioner, thereby restoring the linkage air supply mode between the air conditioner and the air circulation device and giving the user a better air supply experience.

[0203] The following are exemplary embodiments involved in the present disclosure, which are used to interpret exemplary solutions for the arrangement positions and air outlet directions of the air conditioner and the air circulation device. The air conditioner and the air circulation device can be arranged on the same side or both sides of the user position, including the following two control solutions.

[0204] In the first control solution, the arrangement positions of the air conditioner and the air circulation device are on the same side of the user. And in the case of determining that the air conditioner and the air circulation device are on the same side of the user position, the first air supply direction of the air conditioner is controlled to be the same as the second air supply direction of the air circulation device.

[0205] In a possible implementation manner, the arrangement positions of the air conditioner and the air circulation device on the same side of the user include: the air conditioner and the air circulation device are on one side of the user, and the air conditioner and the air circulation device are arranged vertically or side by side. The side-by-side arrangement includes the air conditioner and the air circulation device being arranged longitudinally side by side or horizontally side by side.

[0206] For example, when the air conditioner and the air circulation device are arranged vertically, the air conditioner and the air circulation device can be installed on the wall at the same time, with the air conditioner above the air circulation device, and the air supply directions of the air conditioner and the air circulation device both facing the user activity area (such as a sofa).

[0207] For example, when the air conditioner and the air circulation device are arranged horizontally side by side, the air conditioner and the air circulation device can be arranged horizontally side by side on one side of the user activity area, and the air outlet directions of the air conditioner and the air circulation device both face the user activity area.

[0208] For example, when the air conditioner and the air circulation device are arranged side by side longitudinally, they can be arranged side by side longitudinally on one side of the user activity area, and the air outlet directions of the air conditioner and the air circulation device both face the user activity area.

[0209] In a possible implementation, it is determined that the air conditioner and the air circulation device are on the same side of the user position, and the first air supply direction of the air conditioner is controlled to be the same as the second air supply direction of the air circulation device, and both face the user position.

[0210] Among them, the user position can be reflected by the user activity area or the real-time position of the user. For example, if the user activity area is on the bed and it is determined that the air conditioner and the air circulation device are on the same side of the bed, the first air supply direction of the air conditioner can be controlled to be the same as the second air supply direction of the air circulation device, both facing the bed. Another example is that when the real-time position of the user is detected at the position of the coffee table in the living room, if it is determined that the air conditioner and the air circulation device are on the same side of the coffee table, the first air supply direction of the air conditioner can be controlled to be the same as the second air supply direction, both facing the coffee table.

[0211] In a possible implementation, when the air conditioner is in the direct blowing mode, if it is determined that the air conditioner and the air circulation device are on the same side of the user position, the first air supply direction of the air conditioner can be controlled to be the same as the second air supply direction of the air circulation device.

[0212] Through the first control scheme, when the air conditioner is in the direct blowing mode, it indicates that the user wants the wind to face the user. At this time, if it is determined that the air conditioner and the air circulation device are on the same side of the user position, for example, the air conditioner and the air circulation device are on the right side of the user, the first air supply direction of the air conditioner can be controlled to be the same as the second air supply direction, and both face the user position on the left side. At this time, the air-conditioning wind output by the air conditioner and the circulating wind output by the air circulation device will both be superimposed and face the user on the left side, making the intensity of the wind blowing towards the user larger to meet the user's direct blowing feeling.

[0213] For the second control scheme, it is determined that the air conditioner and the air circulation device are on both sides of the user position, and the first air supply direction of the air conditioner is controlled to be opposite to the second air supply direction of the air circulation device.

[0214] In a possible implementation, the arrangement positions of the air conditioner and the air circulation device on both sides of the user include: the air conditioner and the air circulation device are on both sides of the user and the air conditioner, the user, and the air circulation device are on the same straight line; the air conditioner and the air circulation device are on both sides of the user and the air conditioner, the user, and the air circulation device are not on the same straight line.

[0215] In a possible implementation, it is determined that the air conditioner and the air circulation device are located on both sides of the user's position, and the first air supply direction of the air conditioner is controlled to be opposite to the second air supply direction of the air circulation device, and both are directed towards the user's position.

[0216] Among them, the user's position can be reflected by the user's activity area or the user's real-time position. For example, if the user's activity area is on the bed and it is determined that the air conditioner and the air circulation device are on both sides of the bed, the first air supply direction of the air conditioner can be controlled to be opposite to the second air supply direction of the air circulation device, and both are directed towards the bed. Another example is that if the user's real-time position is detected at the position of the coffee table in the living room and it is determined that the air conditioner and the air circulation device are on both sides of the coffee table, the first air supply direction of the air conditioner can be controlled to be opposite to the second air supply direction, and both are directed towards the coffee table.

[0217] In a possible implementation, when the air conditioner is in the direct blowing mode, if it is determined that the air conditioner and the air circulation device are on both sides of the user's position, the first air supply direction of the air conditioner can be controlled to be opposite to the second air supply direction of the air circulation device.

[0218] Through the second control scheme, when the air conditioner is in the direct blowing mode, it indicates that the user wants the wind to blow towards the user. At this time, if it is determined that the air conditioner and the air circulation device are on both sides of the user's position, the first air supply direction of the air conditioner can be controlled to be opposite to the second air supply direction of the air circulation device, and both are directed towards the user's position, so that the air-conditioning wind output by the air conditioner and the circulating wind output by the air circulation device both blow towards the user, enabling the user to feel the cold / hot wind around, so as to meet the user's direct blowing feeling.

[0219] Figure 13 This is an exemplary embodiment related to the present disclosure, which is used to interpret an exemplary scheme when the air conditioner is in the non-direct blowing mode, including the following steps: In step S40, when the air conditioner is in the non-direct blowing mode, the shifting sound of the air circulation device is controlled to be in a silent state.

[0220] In a possible implementation, when the air conditioner is in the non-direct blowing mode, the air circulation device can be controlled to enter the natural wind mode and the shifting sound of the air circulation device is disabled.

[0221] Among them, the shifting sound is the prompting sound brought by the shifting of the air circulation device when the air circulation device switches wind gears. Each time the air circulation device switches a wind gear, a prompting sound similar to "beep beep" will be output.

[0222] In a possible implementation, after the air conditioner switches from the non-direct blowing mode to other modes such as the direct blowing mode, it can be controlled that after the air circulation device exits the natural wind mode, the shifting sound of the air circulation device is restored.

[0223] Through the above technical solution, when the air conditioner is in a non-direct-blowing mode such as standard sleep mode, Lingyun sleep mode, gentle wind mode, or anti-direct-blowing mode, it indicates that the user wants to keep the indoor environment quiet. At this time, the air circulation device can be controlled to enter the natural wind mode, and the gear-shifting sound of the air circulation device will be disabled in the natural wind mode, thereby avoiding the noise brought by the gear-shifting sound to the indoor environment and improving the user experience.

[0224] Figure 14 It is a block diagram of a linkage control device of a device shown according to an exemplary embodiment. Referring to Figure 14 The linkage control device 1400 of the device includes a linkage control module 1410.

[0225] The linkage control module 1410 is configured to control the linkage of the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device in response to a trigger operation of the user on the operation panel; wherein, the air conditioner and the air circulation device are in the same space, and the operation panel is a mechanical panel or a display interface in an application program.

[0226] In a possible implementation manner, the display interface includes an air flow management interface; the air flow management interface includes a linkage air supply control; the linkage control module 1410 is further configured to control the linkage of the first air supply intensity and the second air supply intensity in response to a trigger operation on the linkage air supply control.

[0227] In a possible implementation manner, the display interface further includes a setting interface; the linkage control module 1410 is further configured to, in the case where the wind speed linkage control is triggered, control the linkage of the first air supply intensity and the second air supply intensity in response to a trigger operation on the linkage air supply control.

[0228] In a possible implementation manner, the display interface further includes an air flow management interface; the air flow management interface includes a wind speed linkage control; the linkage control module 1410 is further configured to control the linkage of the first air supply intensity and the second air supply intensity in response to a trigger operation on the wind speed linkage control.

[0229] In a possible implementation manner, the linkage control device 1400 of the device further includes: A stop module, configured to control the first air supply intensity and the second air supply intensity to stop linkage in response to a closing operation on the linkage air supply control and / or the wind speed linkage control.

[0230] In a possible implementation manner, the linkage control device 1400 of the device further includes: The user response module is configured to, during the process of controlling the linkage between the first air supply intensity and the second air supply intensity, in response to receiving a user instruction, control the air circulation device to execute at the target air supply intensity indicated by the user instruction.

[0231] In a possible implementation manner, there is a corresponding relationship between the first air supply intensity and the second air supply intensity. The linkage control module 1410 is further configured to, in response to a change in the first air supply intensity of the air conditioner, control the air circulation device to switch from the target air supply intensity to the second air supply intensity corresponding to the changed first air supply intensity.

[0232] In a possible implementation manner, the first air supply direction of the air conditioner is the same as or opposite to the second air supply direction of the air circulation device.

[0233] In a possible implementation manner, the air supply intensity range when the first air supply direction is the same as the second air supply direction is greater than the air supply intensity range when the first air supply direction is opposite to the second air supply direction. The air supply intensity range is the wind gear range or the wind speed range of the air circulation device; and / or, at the same first air supply intensity, the second air supply intensity when the first air supply direction is the same as the second air supply direction is greater than the second air supply intensity when the first air supply direction is opposite to the second air supply direction.

[0234] In a possible implementation manner, any one of the following positional relationships exists between the air conditioner and the air circulation device: on the same side of the user, on both sides of the user; wherein, when the air conditioner and the air circulation device are on the same side of the user, there is a vertical arrangement or a side-by-side arrangement positional relationship between the air conditioner and the air circulation device.

[0235] In a possible implementation manner, the linkage control device 1400 of the device further includes: a control module, configured to determine that the air conditioner and the air circulation device are on the same side of the user, and control the first air supply direction of the air conditioner to be the same as the second air supply direction of the air circulation device; or, determine that the air conditioner and the air circulation device are on both sides of the user, and control the first air supply direction of the air conditioner to be opposite to the second air supply direction of the air circulation device.

[0236] In a possible implementation manner, the linkage control module 1410 is further configured to, when the air conditioner is in the direct blowing mode, according to the corresponding relationship between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, link and adjust the air circulation device to the second air supply intensity corresponding to the first air supply intensity.

[0237] In a possible implementation, the linkage control module 1410 is further configured to perform at least one of the following when the air conditioner is in the non-direct-blowing mode: According to the correspondence between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, the air circulation device is linked and adjusted to the second air supply intensity corresponding to the first air supply intensity; Adjust the second air supply intensity of the air circulation device to a preset air supply intensity; Adjust the second air supply intensity of the air circulation device to the air supply intensity set by the user.

[0238] In a possible implementation, the linkage control device 1400 of the device further includes: A mute module, configured to control the shift sound of the air circulation device to be in a mute state when the air conditioner is in the non-direct-blowing mode.

[0239] In a possible implementation, there is a positive correlation between the first air supply intensity and the second air supply intensity.

[0240] In a possible implementation, the air circulation device includes a cold air blower or a warm air blower; the linkage control module 1410 is further configured to control the linkage between the first air supply intensity of the air conditioner and the second air supply intensity of the cold air blower when the air conditioner is in the cooling mode; or, control the linkage between the second air supply intensity of the air conditioner and the second air supply intensity of the warm air blower when the air conditioner is in the heating mode.

[0241] In a possible implementation, In a possible implementation, the setting interface further includes a swing linkage control and a wind feeling linkage control; the linkage control device 1400 of the device further includes: A linkage control module, configured to, when at least one target control among the wind speed linkage control, the swing linkage control, and the wind feeling linkage control in the setting interface is triggered, in response to the triggering operation on the linkage air supply control, control the air conditioner and the air circulation device to execute according to the linkage mode indicated by the at least one target control.

[0242] In a possible implementation, the linkage control device 1400 of the device further includes: A linkage control module, configured to, when the wind speed linkage control and the swing linkage control are triggered, control the air circulation device to output a third air supply intensity; the third air supply intensity is less than the second air supply intensity.

[0243] In a possible implementation, the airflow management interface further includes an interlock temperature control control; the interlock control device 1400 of the device further includes: An interlock control module, configured to control the air conditioner and the air circulation device to execute according to the interlock mode indicated by the at least one target control in response to a trigger operation on at least one of the interlock temperature control control and the interlock air supply control.

[0244] In a possible implementation, the interlock control module 1410 is further configured to, when the air conditioner and the air circulation device are communicatively connected, control the first air supply intensity and the second air supply intensity to be interlocked in response to a trigger operation by the user on the operation panel.

[0245] Regarding the device in the above embodiment, the specific manner in which each module performs operations has been described in detail in the embodiment related to the method, and will not be elaborated here.

[0246] The present disclosure also provides a computer-readable storage medium, on which computer program instructions are stored, and when the program instructions are executed by a processor, the steps of the interlock control method of the device provided by the present disclosure are implemented.

[0247] Figure 15 It is a block diagram of an interlock control device 1500 of a device shown according to an exemplary embodiment. For example, the device 1500 may be a mobile phone, a computer, an air conditioner, an air circulation device, etc. An application program may be installed in these devices 1500, and when the application program runs, it calls the interlock airflow management main control program in the server. When the user performs one or more trigger operations on the application program, the application program also calls the interlock airflow management main control program to control the air conditioner and / or the air circulation device.

[0248] Refer to Figure 15 , the device 1500 may include one or more of the following components: a first processing component 1502, a first memory 1504, a first power supply component 1506, a multimedia component 1508, an audio component 1510, a first input / output interface 1512, a sensor component 1514, and a communication component 1516.

[0249] The first processing component 1502 generally controls the overall operation of the device 1500, such as operations associated with display, telephone calls, data communication, camera operations, and recording operations. The first processing component 1502 may include one or more processors 1520 to execute instructions to complete all or part of the steps of the above-described methods. Additionally, the first processing component 1502 may include one or more modules to facilitate interaction between the first processing component 1502 and other components. For example, the first processing component 1502 may include a multimedia module to facilitate interaction between the multimedia component 1508 and the first processing component 1502.

[0250] The first memory 1504 is configured to store various types of data to support the operation of the device 1500. Examples of such data include instructions for any application or method operating on the device 1500, contact data, phone book data, messages, pictures, videos, and the like. The first memory 1504 may be implemented by any type of volatile or non-volatile storage device or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, a magnetic disk, or an optical disk.

[0251] The first power component 1506 provides power to various components of the device 1500. The first power component 1506 may include a power management system, one or more power supplies, and other components associated with generating, managing, and distributing power for the device 1500.

[0252] The multimedia component 1508 includes a screen that provides an output interface between the device 1500 and the user. In some embodiments, the screen may include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen may be implemented as a touch screen to receive input signals from the user. The touch panel includes one or more touch sensors to sense touches, swipes, and gestures on the touch panel. The touch sensors may sense not only the boundaries of the touch or swipe actions but also detect the duration and pressure associated with the touch or swipe operations. In some embodiments, the multimedia component 1508 includes a front camera and / or a rear camera. When the device 1500 is in an operating mode, such as a shooting mode or a video mode, the front camera and / or the rear camera may receive external multimedia data. Each of the front camera and the rear camera may be a fixed optical lens system or have focal length and optical zoom capabilities.

[0253] The audio component 1510 is configured to output and / or input audio signals. For example, the audio component 1510 includes a microphone (MIC), which is configured to receive external audio signals when the device 1500 is in an operating mode, such as a call mode, a recording mode, and a voice recognition mode. The received audio signals can be further stored in the first memory 1504 or transmitted via the communication component 1516. In some embodiments, the audio component 1510 further includes a speaker for outputting audio signals.

[0254] The first input / output interface 1512 provides an interface between the first processing component 1502 and a peripheral interface module, and the peripheral interface module can be a keyboard, a click wheel, buttons, etc. These buttons can include but are not limited to: a home button, a volume button, a start button, and a lock button.

[0255] The sensor component 1514 includes one or more sensors for providing status assessments of various aspects of the device 1500. For example, the sensor component 1514 can detect the on / off state of the device 1500, the relative positioning of components, such as the display and keypad of the device 1500. The sensor component 1514 can also detect a change in the position of the device 1500 or a component of the device 1500, the presence or absence of user contact with the device 1500, the orientation or acceleration / deceleration of the device 1500, and the temperature change of the device 1500. The sensor component 1514 can include a proximity sensor configured to detect the presence of nearby objects without any physical contact. The sensor component 1514 can also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications. In some embodiments, the sensor component 1514 can further include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.

[0256] The communication component 1516 is configured to facilitate communication between the device 1500 and other devices in a wired or wireless manner. The device 1500 can access a wireless network based on communication standards, such as WiFi, 2G, or 3G, or a combination thereof. In an exemplary embodiment, the communication component 1516 receives a broadcast signal or broadcast-related information from an external broadcast management system via a broadcast channel. In an exemplary embodiment, the communication component 1516 further includes a near field communication (NFC) module to facilitate short-range communication. For example, the NFC module can be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology, and other technologies.

[0257] In an exemplary embodiment, the apparatus 1500 may be implemented by one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (FPGAs), controllers, microcontrollers, microprocessors, or other electronic components for performing the interlocking control method of the above device.

[0258] In an exemplary embodiment, a non-transitory computer-readable storage medium including instructions is also provided, such as a first memory 1504 including instructions that can be executed by a processor 1520 of the apparatus 1500 to complete the interlocking control method of the above device. For example, the non-transitory computer-readable storage medium may be a ROM, a random access memory (RAM), a CD-ROM, magnetic tape, a floppy disk, and an optical data storage device, etc.

[0259] In another exemplary embodiment, a computer program product is also provided. The computer program product includes a computer program that can be executed by a programmable device, and the computer program has a code portion for performing the interlocking control method of the above device when executed by the programmable device.

[0260] Figure 16 is a block diagram of an interlocking control device 1600 of a device shown according to an exemplary embodiment. For example, the apparatus 1600 may be provided as a server. Referring to Figure 16 , the apparatus 1600 includes a second processing component 1622, which further includes one or more processors, and memory resources represented by a second memory 1632 for storing instructions executable by the second processing component 1622, such as application programs. The application programs stored in the second memory 1632 may include one or more modules each corresponding to a set of instructions. In addition, the second processing component 1622 is configured to execute instructions to perform the interlocking control method of the above device.

[0261] The apparatus 1600 may further include a second power supply component 1626 configured to perform power management of the apparatus 1600, a wired or wireless network interface 1650 configured to connect the apparatus 1600 to a network, and a second input / output interface 1658. The apparatus 1600 may operate based on an operating system stored in the second memory 1632.

Claims

1. A linkage control method for a device, characterized in that, Including: In response to a triggering operation by a user on an operation panel, controlling the linkage between a first air supply intensity of an air conditioner and a second air supply intensity of an air circulation device; wherein, the air conditioner and the air circulation device are in the same space, the operation panel is a mechanical panel or a display interface in an application program, the operation panel is used to adjust the operation data of the air conditioner and / or the air circulation device, and the operation data includes an operation mode and / or operation parameters.

2. The method according to claim 1, characterized in that, The display interface includes an air flow management interface; the air flow management interface includes a linkage air supply control; the controlling the linkage between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device in response to a triggering operation by the user on the operation panel includes: In response to a triggering operation on the linkage air supply control, controlling the linkage between the first air supply intensity and the second air supply intensity.

3. The method according to claim 2, wherein The display interface further includes a setting interface, and the setting interface includes a wind speed linkage control; the controlling the linkage between the first air supply intensity and the second air supply intensity in response to a triggering operation on the linkage air supply control includes: When the wind speed linkage control is triggered, in response to a triggering operation on the linkage air supply control, controlling the linkage between the first air supply intensity and the second air supply intensity.

4. The method according to claim 1, characterized in that The display interface further includes an air flow management interface; the air flow management interface includes a wind speed linkage control; the controlling the linkage between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device in response to a triggering operation by the user on the operation panel includes: In response to a triggering operation on the wind speed linkage control, controlling the linkage between the first air supply intensity and the second air supply intensity.

5. The method according to any one of claims 2 to 4, characterized in that The method further includes: In response to a closing operation on the linkage air supply control and / or the wind speed linkage control, controlling the first air supply intensity and the second air supply intensity to stop linkage.

6. The method according to claim 1, characterized in that, The method further includes: During the process of controlling the linkage between the first air supply intensity and the second air supply intensity, in response to receiving a user instruction, controlling the air circulation device to execute with a target air supply intensity indicated by the user instruction.

7. The method according to claim 6, characterized in that, There is a corresponding relationship between the first air supply intensity and the second air supply intensity, and the controlling the linkage between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device includes: In response to a change in the first air supply intensity of the air conditioner, controlling the air circulation device to switch from the target air supply intensity to the second air supply intensity corresponding to the changed first air supply intensity.

8. The method according to claim 1, characterized in that, The first air supply direction of the air conditioner is the same as or opposite to the second air supply direction of the air circulation device.

9. The method according to claim 8, characterized in that, The air supply intensity range when the first air supply direction is the same as the second air supply direction is greater than the air supply intensity range when the first air supply direction is opposite to the second air supply direction, and the air supply intensity range is the gear range or the wind speed range of the air circulation device; and / or At the same first air supply intensity, the second air supply intensity when the first air supply direction is the same as the second air supply direction is greater than the second air supply intensity when the first air supply direction is opposite to the second air supply direction.

10. The method according to claim 1, characterized in that There is any one of the following positional relationships between the air conditioner and the air circulation device: on the same side of the user, on both sides of the user; Wherein, when the air conditioner and the air circulation device are on the same side of the user, there is a positional relationship of being arranged vertically or side by side between the air conditioner and the air circulation device.

11. The method according to claim 10, wherein The method further includes: Determining that the air conditioner and the air circulation device are on the same side of the user, and controlling the first air supply direction of the air conditioner to be the same as the second air supply direction of the air circulation device; or, Determining that the air conditioner and the air circulation device are on both sides of the user, and controlling the first air supply direction of the air conditioner to be opposite to the second air supply direction of the air circulation device.

12. According to the method described in any one of claims 1 to 4 or 6 to 11, characterized in that, The controlling the first air supply intensity of the air conditioner to be linked with the second air supply intensity of the air circulation device includes: When the air conditioner is in the direct blowing mode, according to the corresponding relationship between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, the air circulation device is linked and adjusted to the second air supply intensity corresponding to the first air supply intensity.

13. According to the method described in any one of claims 1 to 4 or 6 to 11, characterized in that, The linking and adjusting the second air supply intensity of the air circulation device according to the first air supply intensity of the air conditioner includes: When the air conditioner is in the non-direct blowing mode, perform at least one of the following: According to the corresponding relationship between the first air supply intensity of the air conditioner and the second air supply intensity of the air circulation device, the air circulation device is linked and adjusted to the second air supply intensity corresponding to the first air supply intensity; Adjusting the second air supply intensity of the air circulation device to a preset air supply intensity; Adjusting the second air supply intensity of the air circulation device to the air supply intensity set by the user.

14. The method according to claim 13, characterized in that, The method further includes: When the air conditioner is in the non-direct blowing mode, controlling the shifting sound of the air circulation device to be in a mute state.

15. According to the method described in any one of claims 1 to 4 or 6 to 11, characterized in that, There is a positive correlation between the first air supply intensity and the second air supply intensity.

16. The method according to any one of claims 1 to 4 or 6 to 11, characterized in that The air circulation device includes a cold air blower or a warm air blower; the controlling the first air supply intensity of the air conditioner to be linked with the second air supply intensity of the air circulation device includes: When the air conditioner is in the cooling mode, controlling the first air supply intensity of the air conditioner to be linked with the second air supply intensity of the cold air blower; or, When the air conditioner is in the heating mode, controlling the second air supply intensity of the air conditioner to be linked with the second air supply intensity of the warm air blower.

17. The method according to claim 3, characterized in that, The setting interface further includes a swing linkage control and a wind feeling linkage control; the method further includes: When at least one target control among the wind speed linkage control, the swing linkage control, and the wind feeling linkage control in the setting interface is triggered, in response to the triggering operation on the linkage air supply control, controlling the air conditioner and the air circulation device to execute according to the linkage mode indicated by the at least one target control.

18. The method according to claim 17, wherein The method further includes: When the wind speed linkage control and the swing linkage control are triggered, controlling the air circulation device to output a third air supply intensity; the third air supply intensity is less than the second air supply intensity.

19. The method according to claim 2, wherein The air flow management interface further includes a linkage temperature control; the method further includes: In response to a triggering operation on at least one target control among the linkage temperature control control and the linkage air supply control, control the air conditioner and the air circulation device to execute according to the linkage mode indicated by the at least one target control.

20. The method according to claim 1, characterized in that, The controlling the first air supply intensity of the air conditioner to be linked with the second air supply intensity of the air circulation device in response to a triggering operation by the user on the operation panel includes: When both the air conditioner and the air circulation device are connected to the network, in response to a triggering operation by the user on the operation panel, control the first air supply intensity and the second air supply intensity to be linked.

21. A linkage control device for a device, characterized in that, A linkage control method for an apparatus for executing any one of claims 1 to 20, the apparatus including: A linkage control module configured to control the first air supply intensity of the air conditioner to be linked with the second air supply intensity of the air circulation device in response to a triggering operation by the user on the operation panel; wherein, the air conditioner and the air circulation device are in the same space, the operation panel is a mechanical panel or a display interface in an application program; the operation panel is used to adjust the operation data of the air conditioner and / or the air circulation device, and the operation data includes an operation mode and / or operation parameters.

22. A linkage control device for a device, characterized in that, Including: A processor; A memory for storing instructions executable by the processor; Wherein, the processor is configured to: Execute the method according to any one of claims 1 to 20.

23. A computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by the processor, the steps of the method according to any one of claims 1 to 20 are implemented.

24. A computer program product, characterized in that, Including a computer program, and when the computer program is executed by the processor, the steps of the method according to any one of claims 1 to 20 are implemented.

Citation Information

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