Equipment linkage control method and device, storage medium and computer program product
Through the linkage control method between air conditioners and air circulation equipment, the problem of small air supply volume of air conditioners and the inability to adjust temperature and humidity in the air circulation equipment is solved, achieving more effective indoor environment adjustment and a more comfortable user experience.
Patent Information
- Application Number
- CN202510713476.8
- 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
Existing air conditioners and air circulation equipment have limitations in regulating indoor humidity and temperature. The air conditioner supply is small and it is difficult to meet user needs, while air circulation equipment cannot adjust temperature and humidity.
Through a linkage control method of the device, in response to the user's trigger operation on the operation panel, the target inner ring temperature of the air conditioner is controlled to link with the air supply strength of the air circulation device, so as to realize coordinated adjustment between the air conditioner and the air circulation device.
The air supply volume of the air circulation equipment is realized to compensate for the defect of insufficient air supply volume of the air conditioner. The air conditioner can adjust the indoor temperature and humidity. After the air supply strength of the air circulation equipment changes, the target inner ring temperature of the air conditioner adapts to change, providing a more comfortable cooling and heating experience.
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Figure CN120232136A_ABST
Abstract
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 the user's usage requirements; air circulation devices can promote the air flow 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 existing 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 between the target inner ring temperature of an air conditioner and the first air supply intensity of an air circulation device; wherein, the air conditioner and the air circulation device are located 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, the operation data includes an operation mode and / or operation parameters, and the target inner ring temperature is the target indoor environmental temperature in the space.
[0005] Through the above technical solutions, the linkage between the air conditioner and the air circulation device can complement each other's deficiencies. After the first air supply intensity of the air circulation device changes, the target inner ring temperature of the air conditioner will also adaptively change. On the one hand, the air supply volume output by the air circulation device will make up for the deficiency of the small air supply volume 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 deficiency that the air circulation device cannot adjust the indoor temperature and humidity. On the other hand, the target inner ring temperature of the air conditioner will consider the change in the first air supply intensity of the air circulation device, and thus, after the change in the first air supply intensity of the air circulation device, coordinately adjust the target inner ring temperature of the air conditioner to give the user a more comfortable cooling and heating experience. On the third hand, when the air conditioner and the air circulation device are in the same space, the linkage between the air conditioner and the air circulation device is controlled to perform a linkage adjustment on the target inner ring temperature of the air conditioner and the first air supply intensity of the air circulation device in the same space. When the air conditioner and the air circulation device in the same space are linked, the presented linkage temperature control effect is better. On the fourth hand, the user can achieve the linkage 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 conditioner or the air circulation device to achieve the linkage, which brings convenience to the user's operation.
[0006] In a possible implementation manner, the display interface includes an air flow management interface, and the air flow management interface includes a linkage temperature control control. Responding to a trigger operation of the user on the operation panel to control the linkage between the target inner ring temperature of the air conditioner and the first air supply intensity of the air circulation device includes: responding to a trigger operation on the linkage temperature control control to control the linkage between the target inner ring temperature and the first air supply intensity.
[0007] Through the above technical solutions, by performing a touch operation on the linkage temperature control control on the air flow management interface displayed on the operation panel, the user can remotely control the linkage between the target inner ring temperature of the air conditioner and the first 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 linkage between the target inner ring temperature and the first air supply intensity, which brings convenience to the user's operation.
[0008] In a possible implementation manner, the method further includes: responding to a closing operation on the linkage temperature control control to control the target inner ring temperature and the first air supply intensity to stop linking.
[0009] Through the above technical solutions, the user can also perform a closing operation on the linkage temperature control control, thereby remotely controlling the target inner ring temperature of the air conditioner and the first air supply intensity of the air circulation device to stop linking without having to go to the location of the air conditioner or the location of the air circulation device to perform a closing operation, which brings convenience to the user's operation.
[0010] In a possible implementation manner, the target internal ambient temperature of controlling the air conditioner is linked with a first air supply intensity of an air circulation device, including: according to the first air supply intensity, the target internal ambient temperature is linked and adjusted.
[0011] Through the above technical solution, the target internal temperature change of the air conditioner can be dynamically adjusted after the first air supply intensity of the air circulation device changes, thereby adaptively providing users with a better cooling and heating experience.
[0012] In a possible implementation, the target internal temperature of the air conditioner is adjusted in linkage with the first air supply intensity of the air circulation device, including: correcting the set internal temperature of the air conditioner according to the first air supply intensity to obtain the target internal temperature; the set internal temperature is the indoor ambient temperature initially set on the air conditioner.
[0013] Through the above technical solution, the set inner ring temperature set by the user is the temperature that the user expects to achieve. When the air conditioner is controlled separately, the air conditioner can be controlled to output the set inner ring temperature to meet the user's needs. When the air circulation device is linked with the air conditioner, the circulating air output by the air circulation device will also bring some additional cooling and heating feelings to the user. Therefore, the set inner ring temperature will be corrected based on the first air supply intensity of the air circulation device to obtain the target inner ring temperature, so that the final target inner ring temperature is the temperature value obtained on the basis of considering the cooling and heating amount brought by the circulating air of the air circulation device. Then, cooling and heating with the target inner ring temperature as the target will be more in line with the user's physical feeling.
[0014] In a possible implementation, the modes for correcting the set internal ring temperature include a first correction mode, a second correction mode, and a third correction mode; the set internal ring temperature of the air conditioner is corrected according to the first air supply intensity to obtain the target internal ring temperature, including: in the first correction mode, the second correction mode, or the third correction mode, a corrected temperature is obtained according to the first air supply intensity; and the target internal ring temperature is obtained according to the corrected temperature and the set internal ring temperature.
[0015] Through the above technical solution, different correction modes can be used to obtain the corrected temperature, providing diversified operations for obtaining the corrected temperature.
[0016] In one possible implementation, in the first correction mode, and when the air circulation device is in a non-natural wind mode, different first air supply intensities correspond to different correction temperatures; in the first correction mode, and when the air circulation device is in a natural wind mode, different first air supply intensities correspond to different correction temperatures, or the different first air supply intensities correspond to the same correction temperature.
[0017] Through the above technical solution, when the air circulation device is in the non-natural wind mode, the wind speed of the circulating wind output by the air circulation device at this time is relatively higher than that in the natural wind mode. Therefore, the influence of the circulating wind output by the air circulation device on the air conditioning refrigeration and heating is relatively large. Therefore, the corrected temperature can be obtained based on the first air supply intensity of the circulating wind output by the air circulation device, so that after the air conditioner combines the circulating wind output by the air circulation device, it can output an indoor temperature that more conforms to the user's body feeling; when the air circulation device is in the natural wind mode, the wind speed of the circulating wind output by the air circulation device at this time is relatively lower than that in the non-natural wind mode. Therefore, the influence of the circulating wind output by the air circulation device on the air conditioning refrigeration or heating is relatively small. Therefore, when the first air supply intensity of the air circulation device changes, a unified corrected temperature can also be used to correct the set inner ring temperature. For example, the corrected temperature of 0 is used to correct the set inner ring temperature, so as to weaken the influence of the circulating wind of the air circulation device on the air conditioning refrigeration and heating.
[0018] In a possible implementation manner, there is a positive correlation between the different first air supply intensities and the different corrected temperatures, and the corrected temperature is a predefined temperature.
[0019] Through the above technical solution, if the first air supply intensity of the air circulation device increases, it will bring a greater air supply intensity to the user at this time, and the user will also feel a strong cold wind with a faster wind speed, which will instead bring a bad refrigeration experience to the user. Therefore, the corrected temperature can be increased, so that the target inner ring temperature of the air conditioner increases. After the target inner ring temperature increases, the temperature drop speed of the air conditioner becomes slower, so as to comprehensively consider the strong cold wind brought by the higher air supply intensity and improve the user's refrigeration experience; if the first air supply of the air circulation device decreases, it will bring a smaller air supply intensity to the user at this time, and the wind speed of the cold wind felt by the user is slower, and the refrigeration experience may not be guaranteed. Therefore, the corrected temperature can be decreased, so that the target inner ring temperature of the air conditioner decreases, and the temperature drop speed of the air conditioner becomes faster, so as to let the rapidly decreasing refrigeration temperature make up for the defect of low air supply intensity, thereby ensuring the user's refrigeration experience.
[0020] In a possible implementation manner, obtaining the corrected temperature according to the first air supply intensity includes: in the second correction mode, obtaining the corrected temperature according to the first air supply intensity and a first correction function when the air conditioner is in the direct blowing mode; or, obtaining the corrected temperature according to the first air supply intensity and a second correction function when the air conditioner is in the non-direct blowing mode; wherein, the corrected temperature obtained based on the second correction function is less than the corrected temperature obtained based on the first correction function.
[0021] Through the above technical solution, when the air conditioner is in the direct blowing mode, the air conditioner wind output by the air conditioner directly blows on the user. At this time, the user has a better cooling experience. If the target inner loop temperature is set relatively low, the user will feel that the temperature output by the air conditioner drops rapidly, and the user will feel that the direct blowing wind quickly becomes cold, which instead leads to a lower cooling experience for the user. Therefore, when the air conditioner is in the direct blowing mode, the first correction function is used to obtain a higher corrected temperature, thereby obtaining a higher target inner loop temperature. After the target inner loop temperature is increased, the temperature drop speed of the air conditioner becomes slower, so that the user feels that the direct blowing wind slowly becomes cold, improving the user's cooling experience. Similarly, when the air conditioner is in the non-direct blowing mode, the air conditioner wind output by the air conditioner avoids the user. At this time, the user also has a relatively good cooling experience. If the target inner loop temperature is set relatively high, the user will feel that the air conditioner wind output by the air conditioner avoids the user and the temperature drops slowly, which instead leads to a low cooling experience for the user. Therefore, when the air conditioner is in the non-direct blowing mode, the second correction function is used to obtain a lower corrected temperature, so that the target inner loop temperature of the air conditioner decreases. After the target inner loop temperature decreases, the temperature drop speed of the air conditioner becomes faster, and while the air conditioner wind avoids the user, the user can also feel that the indoor temperature drops rapidly, improving the user's cooling experience.
[0022] In a possible implementation manner, the method further includes: obtaining the second correction function according to a correction coefficient and the first correction function.
[0023] In a possible implementation manner, when the air conditioner is in the direct blowing mode, the corresponding air circulation device is in the non-natural wind mode; when the air conditioner is in the non-direct blowing mode, the corresponding air circulation device is in the natural wind mode.
[0024] Through the above technical solution, when the air conditioner is in the direct blowing mode, the air circulation device can be controlled to be in the non-natural wind mode in a linked manner. In this way, while the air conditioner directly blows on the user, the air circulation device can output non-natural wind to meet the user's direct blowing demand; when the air conditioner is in the non-direct blowing mode, the air circulation device can be controlled to be in the natural wind mode in a linked manner. In this way, while the air conditioner avoids directly blowing on the user, the air circulation device can output natural wind to meet the user's wind avoidance demand.
[0025] In a possible implementation manner, the influencing factors of the first correction function and the second correction function both include: the real-time outer loop temperature outside the space, the real-time inner loop temperature inside the space, the set inner loop temperature, the first air supply intensity, and the second air supply intensity of the air conditioner.
[0026] Through the above technical solution, various factors such as the real-time inner ring temperature, the real-time outer ring temperature, the set inner ring temperature, the second air supply intensity of the air conditioner, and the first air supply intensity of the air circulation device can be comprehensively considered to obtain a corrected temperature, making the obtained corrected temperature more accurate and real, and then the obtained target inner ring temperature is more in line with the user's needs in the current environment.
[0027] In a possible implementation manner, in the third correction mode, the corrected temperature is a temperature configured by the user, and the corrected temperature is within a preset correction range.
[0028] Through the above technical solution, the user can adjust the corrected temperature corresponding to the first air supply intensity of the air circulation device in the linkage temperature control setting interface. For example, when the user likes cold, the corrected temperature corresponding to the air circulation device can be adjusted lower, and then the finally obtained target inner ring temperature will also be lower, so that the air conditioner can quickly cool down at the same first air supply intensity to meet the user's preference for cold; when the user is afraid of cold, the corrected temperature corresponding to the air circulation device can be adjusted higher, and then the finally obtained target inner ring temperature will be higher, so that the target inner ring temperature of the air conditioner will be higher at the same first air supply intensity, and the air conditioner can cool down slowly to meet the user's preference for heat.
[0029] In a possible implementation manner, the step of correcting the set inner ring temperature of the air conditioner according to the first air supply intensity to obtain the target inner ring temperature includes: when the operation duration of the air conditioner is greater than a preset duration and / or the real-time inner ring temperature in the space is less than a target value, correcting the set inner ring temperature according to the first air supply intensity to obtain the target inner ring temperature; wherein, the target value is obtained according to the set inner ring temperature and a preset temperature difference.
[0030] Through the above technical solution, in the first aspect, since the air conditioner needs to cool and heat the space after being turned on, and the corrected temperature is obtained by upwardly correcting the set inner loop temperature, if the corrected temperature is immediately used to correct the set inner loop temperature after the air conditioner is turned on, the target inner loop temperature of the air conditioner will increase. After the target inner loop temperature increases, the cooling rate / heating rate of the air conditioner after being turned on will become slower. Therefore, the corrected temperature is used to correct the set inner loop temperature after the operating duration of the air conditioner after being turned on reaches a preset duration, so as to reduce the influence of the correction scheme on the cooling rate / heating rate of the air conditioner during the operating duration. In the second aspect, the air conditioner does not operate continuously during operation. For example, the compressor does not operate continuously, but stops operating when the real-time inner loop temperature provided by the compressor is close to the set inner loop temperature, and the compressor restarts when the gap between the real-time inner loop temperature and the set inner loop temperature is large. During this process, the compressor starts and stops frequently. When the real-time inner loop temperature in the space is less than the target value, it indicates that the real-time inner loop temperature is relatively close to the set inner loop temperature. At this time, the air conditioner compressor may stop. Therefore, the correction scheme can be used to obtain the corrected temperature, thereby increasing the target inner loop temperature. After the target inner loop temperature increases, the real-time inner loop temperature will decrease to the set inner loop temperature more slowly, thereby increasing the duration for the real-time inner loop temperature to reach the set inner loop temperature and reducing the probability of the compressor stopping operation, so as to ensure the service life of the compressor.
[0031] In a possible implementation manner, the display interface includes a setting interface, and the setting interface includes an associated temperature control setting interface that displays the corresponding relationship between the first air supply intensity and the corrected temperature; the method further includes: in response to a configuration operation on the corrected temperature, displaying a first corresponding relationship on the associated temperature control setting interface; the first corresponding relationship is the corresponding relationship between the first air supply intensity and the adjusted corrected temperature.
[0032] Through the above technical solution, the user can modify the corrected temperature corresponding to the first air supply intensity in the setting interface of the application program, which brings convenience to the user's modification.
[0033] In a possible implementation manner, the setting interface further includes a restoration control; the method further includes: in response to a trigger operation on the restoration control, controlling the corresponding relationship between the first air supply intensity and the corrected temperature to be restored from the first corresponding relationship to a second corresponding relationship; the second corresponding relationship is the corresponding relationship in the first correction mode or the second correction mode.
[0034] Through the above technical solution, the user can click the restoration control in the setting interface of the application program, so as to restore the pre-configured corresponding relationship with one click.
[0035] In a possible implementation, the air flow management interface further includes an interlocking air supply control; the method further includes: in response to a triggering operation on at least one target control among the interlocking air supply control and the interlocking temperature control, controlling the air conditioner and the air circulation device to execute the interlocking mode corresponding to the at least one target control.
[0036] Through the above technical solution, at least one target control among the interlocking temperature control and the interlocking 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 interlocking air supply mode and the interlocking temperature control mode, providing the user with diversified interlocking between the air conditioner and the air circulation device. Among them, the interlocking air supply mode includes at least one of the wind speed interlocking mode, the air sweep interlocking mode, and the wind feeling interlocking mode.
[0037] In a possible implementation, the display interface further includes a setting interface, and the setting interface includes a wind speed interlocking control, an air sweep interlocking control, and a wind feeling interlocking control; the method further includes: in the case where at least one target air supply control among the wind speed interlocking control, the air sweep interlocking control, and the wind feeling interlocking control is triggered, in response to a triggering operation on the interlocking air supply control, controlling the air conditioner and the air circulation device to execute the interlocking mode corresponding to the at least one target air supply control.
[0038] Through the above technical solution, at least one target air supply control among the wind speed interlocking control, the air sweep interlocking control, and the wind feeling interlocking control can be triggered, so that the air conditioner and the air circulation device execute at least one of the wind speed interlocking mode, the air sweep interlocking mode, and the wind feeling interlocking mode, providing the user with diversified interlocking between the air conditioner and the air circulation device.
[0039] In a possible implementation, the air flow management interface further includes a wind speed interlocking control, an air sweep interlocking control, and a wind feeling interlocking control; the method further includes: in response to a triggering operation on at least one target control among the wind speed interlocking control, the air sweep interlocking control, the wind feeling interlocking control, and the interlocking temperature control, controlling the air conditioner and the air circulation device to execute the interlocking mode corresponding to the at least one target control.
[0040] Through the above technical solution, integrating the wind speed interlocking control, the air sweep interlocking control, the wind feeling interlocking control, and the interlocking temperature control in the air flow management interface can eliminate the need for the user to go to other interfaces to trigger each interlocking control, bringing convenience to the user's operation.
[0041] In a possible implementation, the controlling the target inner loop temperature of the air conditioner to be linked with the first air supply intensity of the air circulation device in response to a triggering operation of a user on an operation panel includes: when the air conditioner is connected to the air circulation device to the network, in response to the triggering operation of the user on the operation panel, controlling the target inner loop temperature to be linked with the first air supply intensity.
[0042] Through the above technical solution, on the basis that both 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 linkage between the air conditioner and the air circulation device.
[0043] According to a second aspect of the embodiments of the present disclosure, there is provided a linkage control device for a device, configured to execute the device linkage control method provided in the first aspect of the embodiments of the present disclosure. The device includes: A linkage control module, configured to control the target inner loop temperature of the air conditioner to be linked with the first air supply intensity of the air circulation device in response to a triggering operation of a user on an operation panel; wherein, the air conditioner and the air circulation device are located 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, the operation data includes an operation mode and / or operation parameters, and the target inner loop temperature is the target indoor environment temperature in the space.
[0044] According to a third aspect of the embodiments of the present disclosure, there is provided a linkage control device for a device, including: a processor and a memory for storing processor-executable instructions; wherein, the processor is configured to: execute the device linkage control method provided in the first aspect of the embodiments of the present disclosure.
[0045] According to a fourth aspect of the embodiments of the present disclosure, there is provided a computer-readable storage medium, on which a computer program is stored, and when the computer program is executed by a processor, it implements the device linkage control method provided in the first aspect of the embodiments of the present disclosure.
[0046] According to a fifth aspect of the embodiments of the present disclosure, there is provided a computer program product, and when the computer program is executed by a processor, it implements the device linkage control method provided in the first aspect of the embodiments of the present disclosure.
[0047] 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
[0048] 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.
[0049] Figure 1 It is a schematic diagram showing the interaction between an air conditioner, an associated air flow management main control program, and an air circulation device according to an exemplary embodiment.
[0050] Figure 2 It is a flowchart of a method for associated control of a device according to an exemplary embodiment.
[0051] Figure 3 It is a schematic diagram of an air flow management interface according to an exemplary embodiment.
[0052] Figure 4 It is a schematic diagram of a setting interface according to an exemplary embodiment.
[0053] Figure 5 It is a schematic diagram of an air flow management interface according to an exemplary embodiment.
[0054] Figure 6 It is a flowchart of a method for associated control of a device according to an exemplary embodiment.
[0055] Figure 7 It is a schematic diagram of modules for associated control of an air conditioner and an air circulation device according to an exemplary embodiment.
[0056] Figure 8 It is a schematic diagram of a device search interface according to an exemplary embodiment.
[0057] Figure 9 It is a schematic diagram of a network selection interface according to an exemplary embodiment.
[0058] Figure 10 It is a block diagram of an associated control device for a device according to an exemplary embodiment.
[0059] Figure 11 It is a block diagram of an associated control device for a device according to an exemplary embodiment.
[0060] Figure 12 It is a block diagram of an associated control device for a device according to an exemplary embodiment. Detailed implementation manners
[0061] Here, the exemplary embodiments will be described in detail, and examples thereof 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 embodiments described in the following exemplary embodiments do not represent all embodiments 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.
[0062] Figure 2 is a flowchart of the steps of a linkage control method for a device shown according to an exemplary embodiment. As Figure 1 shown, the linkage control method for the device is used to perform linkage control on an air conditioner and an air circulation device. The linkage control method for the device is executed by a linkage air flow management main control program, and the linkage 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 control can call the linkage air flow management main control program, so as to realize the linkage control of the air conditioner and the air circulation device. Of course, the linkage 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 control and be called by application programs in these devices. The present disclosure does not limit this.
[0063] In some scenarios, taking the terminal control of the linkage of the air conditioner and the air circulation device as an example, please refer to Figure 1 shown. The linkage air flow management main control program is installed in the cloud server. The linkage 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. The user can start the linkage air flow management main control program through the application program in the terminal. After receiving the user instruction sent by the terminal, the linkage air flow management main control program generates a linkage control instruction. On the one hand, the linkage control instruction is sent to the air conditioner for execution, and on the other hand, the linkage control instruction is sent to the air circulation device for execution through the wireless network.
[0064] In some scenarios, taking the air conditioner control of the linkage of the air conditioner and the air circulation device as an example, an application program is installed on the air conditioner. The user can start the linkage 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 linkage management main control program generates a linkage control instruction. On the one hand, the linkage control instruction is sent to the air conditioner for execution, and on the other hand, the linkage control instruction is sent to the air circulation device for execution through the wireless network.
[0065] In some scenarios, taking the air circulation device control of the linkage of the air conditioner and the air circulation device as an example, an application program is installed on the air circulation device. The user can start the linkage 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 linkage management main control program generates a linkage control instruction. On the one hand, the linkage control instruction is sent to the air conditioner for execution, and on the other hand, the linkage control instruction is sent to the air circulation device for execution through the wireless network.
[0066] Please refer to Figure 1 shown. The linkage control method for the device includes the following steps.
[0067] In step S10, in response to a triggering operation by the user on the operation panel, the target inner loop temperature of the air conditioner is controlled to be linked with the first air supply intensity of the air circulation device.
[0068] In a possible implementation manner, 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 target inner loop temperature of the air conditioner to be linked with the first air supply intensity of the air circulation device based on the user instruction.
[0069] Among them, the operation panel can be an operation panel on devices such as a terminal, an air conditioner, an air circulation device, a remote control, etc. 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.
[0070] Among them, the operation mode in the operation data of the air conditioner includes a air supply mode, a swing mode, and a temperature control and energy saving mode.
[0071] For the air supply mode of the air conditioner, the air supply mode includes a direct blowing mode and a wind feeling mode. In the direct blowing mode, the air supply direction of the air conditioner faces the user. In the wind feeling mode, the air supply direction of the air conditioner interacts with the user. In the wind feeling mode, the air supply direction of the air conditioner avoids the user, faces the user, or surrounds the user. The wind feeling mode includes a three-dimensional air supply mode and a non-direct blowing mode. The three-dimensional air supply mode indicates that the air conditioner outputs air-conditioning air in different directions to achieve more comprehensive temperature adjustment in the space. The three-dimensional air supply mode includes a sky curtain wind mode, a carpet wind mode, and a surrounding wind mode. The sky curtain wind mode indicates that the air supply direction of the air conditioner is upward, and the output air-conditioning air 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-conditioning air is sent along the wall to the ground, and the air-conditioning air then 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 surrounding wind mode indicates that the air-conditioning air output by the air conditioner surrounds the user; the non-direct blowing mode indicates that the air-conditioning air output by the air conditioner is natural wind, and the non-direct blowing mode includes a sleep mode, a soft wind mode, a direct-blow prevention mode, etc. The sleep mode includes a standard sleep mode, a Lingyun sleep mode, etc.
[0072] For the swing mode of the air conditioner, the swing mode includes an up-down swing mode and a left-right swing mode. In the up-down swing mode, the air supply direction of the air conditioner swings up and down; in the left-right swing mode, the air supply direction of the air conditioner swings left and right.
[0073] For the temperature control and energy saving mode of the air conditioner, the temperature control and energy saving mode includes a Lingyun energy saving mode and a human sense energy saving mode. In the Lingyun energy saving mode and the human sense energy saving mode, the air conditioner can operate in a low power consumption mode, achieving energy saving while taking into account the user experience.
[0074] The operating parameters in the air conditioner's operating data include air supply intensity, air supply direction, target internal temperature of the air conditioner, cooling or heating adjustment, timing duration, etc. Users can adjust the air supply intensity, air supply direction, air conditioner output temperature and other operating parameters of the air conditioner through the operation panel.
[0075] Among them, the operation modes in the operation data of the air circulation device include natural wind mode, non-natural wind mode, swing mode, and freeze mode. In the natural wind mode, the wind speed intensity output by the air circulation device is gentle, and in the non-natural wind mode, the wind speed intensity of the air circulation device can be adjusted in real time. The swing mode includes an up and down swing mode and a 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. The freeze mode indicates that the air circulation device stops swinging after a certain stroke, and the freeze mode includes an upward freeze mode and a downward freeze mode. The upward freeze mode indicates that the air outlet direction of the air circulation device swings upward and then freezes, and the downward freeze mode indicates that the air outlet direction of the air circulation device swings downward and then freezes. The swing of the air outlet direction of the air circulation device may also refer to the swing of the air circulation device body.
[0076] Among them, the operating parameters in the operating data of the air circulation equipment include air supply intensity, air supply direction, timing duration, etc.
[0077] The operation panel may be a display interface in an application program or a mechanical panel.
[0078] 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 target internal temperature of the air conditioner can be controlled to be linked to the first 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.
[0079] For example, if the operation panel is a mechanical panel, the mechanical panel can be 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 target inner ring temperature of the air conditioner can be linked to the first air supply intensity of the air circulation device.
[0080] Among them, the air conditioner can also be called an air-conditioning unit, which is an air-conditioning device that adjusts the temperature and humidity in a space and has functions such as refrigeration, heating, dehumidification, ventilation, and air purification. Under the refrigeration function, it can transfer indoor heat to the outside through the refrigeration system to lower the temperature in the space; under the heating function, it can transfer outdoor heat to the indoor through the heating system to raise the temperature in the space; under the dehumidification function, it can reduce the humidity in the space to make the indoor environment more comfortable; under the ventilation function, it can introduce outdoor air into the indoor and discharge the air in the space; under the air purification function, it can remove pollutants such as dust, pollen, and bacteria in the air.
[0081] Among them, the air circulation device can also be called a circulation fan, which is used to generate strong and stable airflows to promote the circulation of indoor air, so that the indoor air distribution is more uniform.
[0082] In a possible implementation, it can respond to the user's trigger operation on the operation panel and link and adjust the target inner ring temperature of the air conditioner according to the first air supply intensity of the air circulation device.
[0083] Among them, the air conditioner and the air circulation device are in the same space, which can be that the air conditioner and the air circulation device are in the same physical space, such as in 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 operation data of the air circulation device can be linked and adjusted through the operation data of the air circulation device. For example, taking the operation data of the air circulation device as the first air supply intensity and the operation data of the air circulation device as the target inner ring temperature, when it is determined that the air conditioner and the air circulation device are in the same space, the target inner ring temperature of the air conditioner can be linked and adjusted through the first air supply intensity of the air circulation device.
[0084] Among them, the target inner ring temperature of the air conditioner is the target indoor environment temperature in the space, and the indoor temperature is controlled to reach the set inner ring temperature with the target inner ring temperature as the goal. In the refrigeration scenario, the smaller the target inner ring temperature, the faster the set inner ring temperature is reached. On the contrary, the larger the target inner ring temperature, the slower the set inner ring temperature is reached.
[0085] For example, if the user sets the temperature to 16°C and the current indoor temperature is 28°C, and if the target inner loop temperature is 15°C, then cooling will be carried out with the target inner loop temperature of 15°C as the goal, controlling the current indoor temperature to slowly reach the user-set temperature of 16°C from 28°C; if the target inner loop temperature is 5°C, then cooling will be carried out with the target inner loop temperature of 5°C as the goal, controlling the current indoor temperature to quickly reach the user-set temperature of 16°C from 28°C.
[0086] Among them, the first air supply intensity of the air circulation device indicates the wind speed intensity of the circulating air output by the air circulation device. This first air supply intensity can be reflected by the wind speed gear and the air supply volume. When the wind speed gear is higher and the air supply volume is larger, the first air supply intensity of the air circulation device is higher.
[0087] For example, taking the first air supply intensity as the wind speed gear, the target inner loop temperature of the air conditioner can be controlled according to the wind speed gear of the air circulation device.
[0088] Through the above technical solutions, on the one hand, the air supply volume output by the air circulation device will make up for the defect of the small air supply volume 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; on the other hand, the target inner loop temperature of the air conditioner will consider the change of the first air supply intensity of the air circulation device, so after the change of the first air supply intensity of the air circulation device, the target inner loop temperature of the air conditioner will be coordinately adjusted to give the user a more comfortable cooling and heating experience; on the third hand, when the air conditioner and the air circulation device are in the same space, the air conditioner and the air circulation device are controlled to be linked, which is to perform linked adjustment on the target inner loop temperature of the air conditioner and the first air supply intensity of the air circulation device in the same space. When the air conditioner and the air circulation device in the same space are linked, the presented linked temperature control effect is better; on the fourth hand, the user can realize the linked control of the air conditioner and the air circulation device on the operation panel, without having to go to the location where the air conditioner or the air circulation device is located to adjust the air conditioner or the air circulation device to achieve linkage, which brings convenience to the user's operation.
[0089] Figures 3 - 5 This is an exemplary embodiment related to the above step S10, which is used to interpret an exemplary solution for realizing the linkage between the air conditioner and the air circulation device by triggering the linked temperature control control, including: the display interface includes an air flow management interface, and the air flow management interface includes a linked temperature control control; in response to the triggering operation on the linked temperature control control, the target inner loop temperature and the first air supply intensity are controlled to be linked.
[0090] Among them, the air flow management interface is a management interface that provides the linkage between the air conditioner and the air circulation device. The air flow management interface may include controls, pictures, texts, links, etc., and it can support one or more input methods, such as picture input, text input, voice input, video input, touch selection input, touch drawing input, file upload input, etc. Of course, pictures, texts, links and other information can also be included in other interfaces proposed in any embodiment of the present disclosure.
[0091] Among them, the air flow management interface includes a linkage control. The linkage control is an entrance for the air conditioner and the air circulation device to be in the corresponding linkage mode. After starting the linkage control, the air conditioner and the air circulation device can be turned on to be in the linkage mode indicated by the linkage control. Please refer to Figure 3 As shown, the linkage control includes a linkage temperature control control and a linkage air supply control.
[0092] For the linkage temperature control control, the linkage temperature control control is an entrance to trigger the linkage of the operating parameters of the air conditioner and the operating parameters of the air circulation device. For example, it is an entrance to trigger the linkage of the target inner ring temperature of the air conditioner and the first air supply intensity of the air circulation device. After the user triggers the start of the linkage temperature control control, the linkage of the target inner ring temperature of the air conditioner and the first air supply intensity of the air circulation device can be started. Taking the air circulation device as the main device and the air conditioner as the slave device, after the first air supply intensity of the air circulation device changes, the target inner ring temperature of the air conditioner is linked and controlled to change, so as to achieve the linkage temperature control effect of controlling the target inner ring temperature in the room based on the first air supply intensity.
[0093] For the linkage air supply control, the linkage air supply control is an entrance to trigger the linkage of the operating mode of the air conditioner and the operating mode of the air circulation device. For example, it is an entrance to trigger the linkage of the air supply mode of the air conditioner and the air supply mode of the air circulation device. After the user triggers the start of the linkage air supply control, the linkage of the air supply mode of the air conditioner and the air supply mode of the air circulation device can be started. Taking the air conditioner as the main device and the air circulation device as the slave device, after the air supply mode of the air conditioner changes, the air supply mode of the air circulation device is linked and controlled to change, so as to control the air conditioner and the air circulation device to be in the corresponding linkage air supply mode.
[0094] The linkage air supply modes when the air supply mode of the air conditioner is linked with the air supply mode of the air circulation device include a wind speed linkage mode, a wind feeling linkage mode and a swing wind linkage mode. Please refer to Figure 4As shown, the display interface further includes a settings interface, which is an interface for setting the linked air supply mode and the linked temperature control mode. The settings interface includes a linked air supply settings interface and a linked temperature control settings interface. The linked air supply settings interface is an interface for setting the air supply mode of the air conditioner and the air supply mode of the air circulation device. The linked air supply settings interface includes a wind speed linkage control, a swing linkage control, and a wind feeling linkage control. The linked temperature control settings interface is an interface for setting the corresponding relationship between the target inner ring temperature of the air conditioner and the first air supply intensity of the air circulation device. The linked temperature control settings interface shows the corresponding relationship between the target inner ring temperature and the first air supply intensity. Please refer to Figure 3 As shown, the airflow management interface includes a settings control, which is used to link to Figure 4 the settings interface shown. After the user triggers the settings control, they can enter Figure 4 the settings interface shown. Of course, the settings interface can also be entered in other ways without the user triggering the settings control. The present disclosure does not limit this.
[0095] Please refer to Figure 4 As shown, the wind speed linkage control is an entrance for triggering the air conditioner and the air circulation device to be in the wind speed linkage mode. In the wind speed linkage mode, the second air supply intensity of the air conditioner is linked to the first air supply intensity of the air circulation device. The air conditioner can be used as the main device and the air circulation device as the slave device. When the second air supply intensity of the air conditioner changes, the first air supply intensity of the air circulation device is linked and adjusted. In the wind speed linkage mode, both the second air supply intensity of the air conditioner and the first air supply intensity of the air circulation device can be reflected by the wind speed gears, and the second air supply intensity of the air conditioner is positively correlated with the first air supply intensity of the air circulation device.
[0096] Exemplarily, after the wind speed linkage control is triggered and activated, if the second air supply intensity of the air conditioner increases, it will linkedly control the first air supply intensity of the air circulation device to increase. When the second air supply intensity of the air conditioner becomes larger, it indicates that the user expects a greater air supply intensity to quickly cool the indoor air. At this time, the first air supply intensity of the air circulation device can be controlled to increase correspondingly, so as to provide the user with a greater air supply intensity and meet the user's rapid cooling demand. Conversely, when the second air supply intensity of the air conditioner decreases, it indicates that the user expects a smaller air supply intensity. Therefore, the first air supply intensity of the air circulation device can be controlled to decrease correspondingly, so as to provide the user with a smaller air supply intensity.
[0097] Please refer to Figure 4As shown, the wind sense linkage control is an entrance for triggering the air conditioner and the air circulation device to be in the wind sense linkage mode. In the wind sense linkage mode, the wind sense mode of the air conditioner is linked with the freeze mode of the air circulation device. The air conditioner can be used as the master device and the air circulation device as the slave device. When the wind sense mode of the air conditioner changes, the freeze mode of the air circulation device is adjusted in linkage. When controlling the wind sense mode of the air conditioner to be linked with the freeze mode of the air circulation device, the air supply direction indicated by the freeze mode of the air circulation device can be controlled to be the same as the air supply direction indicated by the wind sense mode of the air conditioner, both of which are upward or both of which are downward.
[0098] For example, after the wind sensing linkage control is triggered and started, if the wind sensing mode of the air conditioner is the skylight wind mode, surround wind mode, sleep mode, soft wind mode, and anti-direct blowing mode, and the air supply direction of the air conditioner is upward, the air circulation device can be controlled to be in the upward freeze mode, so that the air supply direction of the air circulation device is also upward; if the wind sensing mode of the air conditioner is the carpet wind mode, and the air supply direction of the air conditioner is downward, the air circulation device can be controlled to be in the downward freeze mode, so that the air supply direction of the air circulation device is also downward.
[0099] It can be understood that if the air feeling mode of the air conditioner is the sky curtain wind mode, it means 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 fixed mode of the air circulation device can be controlled to be the upward fixed mode. When the air circulation device is in the upward fixed mode, it will swing upward by a preset stroke and then freeze. In this way, the air supply direction of the air circulation device and the air supply direction of the air conditioner are both 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. If 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 fixed mode of the air circulation device can be controlled to be the upward fixed mode. When the air circulation device is in the upward fixed mode, it will swing upward by a preset stroke and then freeze. In this way, the air supply direction of the air circulation device and the air supply direction of the air circulation device are both 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. If the air feeling mode of the air conditioner is the carpet wind mode, it means 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 fixed mode of the air circulation device can be controlled to be the downward fixed mode. When the air circulation device is in the downward fixed mode, it will swing downward by a preset stroke and then freeze. In this way, the air supply direction of the air circulation device and the air conditioner are both 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. 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 will be preferentially controlled to execute the natural wind mode. If the air circulation device does not have the natural wind mode, the air circulation device will be controlled to execute the upward fixed mode. Since the air supply direction of the air conditioner is upward in the non-direct blowing mode, the fixed mode of the air circulation device can be controlled to be the upward fixed mode, so that the air supply direction of the air conditioner and the air circulation device are both 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 the air conditioner then outputs the wind introduced by the air circulation device, so that the wind output to the indoor is natural wind.
[0100] Please refer to Figure 4As shown, the sweep linkage control is an entrance for triggering the air conditioner and the air circulation device to be in the sweep linkage mode. In the sweep linkage mode, the sweep mode of the air conditioner is linked with the swing mode of the air circulation device. The air conditioner can be used as the main device and the air circulation device as the slave device. When the sweep mode of the air conditioner changes, the swing mode of the air circulation device can be adjusted in linkage.
[0101] For example, after the air sweep linkage control is triggered, when the air conditioner starts the up and down sweep mode, it will link the control of the air circulation device to start the up and down swing mode, and when the air conditioner is turned off, the up and down sweep mode will link the control of the air circulation device to turn off the up and down swing mode; when the air conditioner starts the left and right sweep mode, it will link the control of the air circulation device to start the left and right swing mode, and when the air conditioner is turned off the left and right sweep mode, it will link the control of the air circulation device to turn off the left and right swing mode.
[0102] It can be understood that when the air-conditioning sweeping mode is the up and down sweeping mode, it means that the indoor users are distributed vertically in front of the air-conditioning, and the users expect the air-conditioning to sweep back and forth on the multiple users distributed vertically by sweeping up and down, so as to take into account the blowing experience of multiple users at the same time. At this time, the swinging mode of the air circulation device can be controlled to be an up and down swinging mode. Then, the up and down swinging of the air circulation device can make the up and down sweeping range of the air-conditioning wind output by the air-conditioning sweeping up and down larger, thereby expanding the up and down sweeping range of the air-conditioning wind to meet the user's usage needs; similarly, when the air-conditioning sweeping mode is the left and right sweeping mode, it means that the indoor users are distributed horizontally in front of the air-conditioning, and the users expect the air-conditioning to sweep back and forth on the multiple users distributed horizontally by sweeping left and right, so as to take into account the blowing experience of multiple users at the same time. At this time, the swinging mode of the air circulation device can be controlled to be a left and right swinging mode. Then, the left and right swinging of the air circulation device can make the left and right sweeping range of the air-conditioning wind output by the air-conditioning sweeping left and right larger, thereby expanding the left and right sweeping range of the air-conditioning wind to meet the user's usage needs.
[0103] In a possible implementation, in response to a triggering operation on at least one target control among the linked air supply control and the linked temperature control control, the air conditioner and the air circulation device are controlled to execute a linkage mode corresponding to the at least one target control.
[0104] For example, see Figure 3 As shown, after the user triggers the linked air supply control, the air conditioner and the air circulation equipment will be controlled to be in the linked air supply mode corresponding to the linked air supply control; after the user triggers the linked temperature control control, the air conditioner and the air circulation equipment will be controlled to be in the linked temperature control mode corresponding to the linked temperature control control; after the user triggers the linked air supply control and the linked temperature control control, the air conditioner and the air circulation equipment will be controlled to be in the linked air supply mode and the linked temperature control mode at the same time.
[0105] It is also possible to control the air conditioner and the air circulation device to stop executing the linkage mode corresponding to the target control based on the closing operation of at least one of the linkage air supply control and the linkage temperature control.
[0106] Exemplarily, for the linkage temperature control, in response to the closing operation of the linkage temperature control, it is possible to control the target inner ring temperature and the first air supply intensity to stop the linkage. After the linkage temperature control is closed, the target inner ring temperature of the air conditioner no longer receives the linkage control of the first air supply intensity of the air circulation device, but can receive user instructions issued by the user through the application, remote control or the air conditioner body, so as to adjust the target inner ring temperature of the air conditioner based on the user instructions.
[0107] Exemplarily, for the linkage air supply control, in response to the closing operation of the linkage air supply control, it is possible to control the air supply mode of the air conditioner and the air supply mode of the air circulation device to stop the linkage. After the linkage air supply control is closed, the air supply mode of the air circulation device no longer receives the linkage control of the air supply mode of the air conditioner, but can receive user instructions issued by the user through the application, remote control or the air circulation device body, so as to adjust the air supply mode of the air circulation device based on the user instructions.
[0108] Through this implementation method, when the user directly triggers at least one target control among the linkage air supply control and the linkage temperature control in the air flow management interface, the air conditioner and the air circulation device can be controlled to execute the linkage mode corresponding to at least one target control, thereby providing the user with diversified linkage options between the air conditioner and the air circulation device and enriching the linkage scenarios.
[0109] In a possible implementation method, when at least one target air supply control among the air speed linkage control, the air sweep linkage control and the air feeling linkage control is triggered, in response to the triggering operation of the linkage air supply control, the air conditioner and the air circulation device are controlled to execute the linkage mode corresponding to at least one target air supply control.
[0110] Exemplarily, please refer to Figure 4 as shown. If the user activates the air speed linkage control and the air sweep linkage control in the Figure 4 shown setting interface and then returns to the Figure 3 shown air flow management interface to activate the linkage air supply control and the linkage temperature control, the air conditioner and the air circulation device will be controlled to execute the following three linkage modes: First, in the air speed linkage mode, the first air supply intensity of the air circulation device is dynamically adjusted according to the second air supply intensity of the air conditioner; second, in the air sweep linkage mode, the swing mode of the air circulation device is dynamically adjusted according to the air sweep 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.
[0111] 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 and the linkage temperature control, 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 first air supply intensity of the air circulation device is dynamically adjusted according to the second 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 first air supply intensity of the air circulation device.
[0112] It is also possible to respond to the closing operation of at least one target air supply control among the wind speed linkage control, the swing linkage control, and the wind sense linkage control, and control the air conditioner and the air circulation device to stop executing the linkage mode corresponding to the target air supply control.
[0113] For example, for the wind speed linkage control, it is possible to respond to the closing operation of the wind speed linkage control and control the second air supply intensity of the air conditioner and the first air supply intensity of the air circulation device to stop linkage. After the wind speed linkage control is closed, the first air supply intensity of the air circulation device no longer receives the linkage control of the second air supply intensity of the air conditioner, but can receive user instructions issued by the user through the application, the remote control, or the body of the air circulation device, so as to adjust the first air supply intensity of the air circulation device based on the user instructions.
[0114] For example, for the swing linkage control, it is possible to respond to the closing operation of the swing linkage control and control the swing mode of the air conditioner and the swing mode of the air circulation device to stop linkage. 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, the remote control, or the body of the air circulation device, so as to adjust the swing mode of the air circulation device based on the user instructions.
[0115] For example, for the wind sense linkage control, it is possible to respond to the closing operation of the wind sense linkage control and control the wind sense mode of the air conditioner and the fixed mode of the air circulation device to stop linkage. 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, the remote control, or the body of the air circulation device, so as to adjust the fixed mode of the air circulation device based on the user instructions.
[0116] It is also possible to respond to the closing operation of the linked air supply control, control the closing of the wind speed linkage mode, the air sweeping linkage mode, and the wind feeling linkage mode, and further control the air conditioner and the air circulation device to stop executing the wind speed linkage mode, the air sweeping linkage mode, and the wind feeling linkage mode.
[0117] Exemplarily, if the user Figure 4 After starting at least one target air supply control among the air supply linkage control, the air sweeping linkage control, and the wind feeling linkage control in the setting interface shown, if the user Figure 3 After starting the linked air supply control in the air flow linkage interface shown, the air conditioner and the air circulation device will execute the linkage mode corresponding to at least one target air supply control; conversely, if the user Figure 3 After closing the linked air supply control in the air flow linkage interface shown, at least one target air supply control started before will be closed, thereby stopping the execution of the linkage mode corresponding to at least one target air supply control.
[0118] Through this implementation method, after the user triggers the start of at least one target air supply control among the wind feeling linkage control, the wind speed linkage control, and the air sweeping linkage control in the setting interface, and then returns to the air flow management interface to trigger the start of the linked air supply control, the linked air supply mode between the air conditioner and the air circulation device will be the linked air supply mode indicated by at least one target air supply control, providing the user with a diverse selection of linked air supply modes and enriching the linked scenarios.
[0119] In a possible implementation method, the air flow management interface includes a wind feeling linkage control, a wind speed linkage control, an air sweeping linkage control, and a linked temperature control control. In response to the triggering operation of at least one target control among the wind feeling linkage control, the wind speed linkage control, the air sweeping linkage control, and the linked temperature control control, the air conditioner and the air circulation device are controlled to execute the linkage mode indicated by at least one target control.
[0120] Exemplarily, please refer to Figure 5 Shown in Figure 5 Another schematic diagram of the air flow management interface is proposed. When the user triggers at least one target control among the wind feeling linkage control, the wind speed linkage control, the air sweeping linkage control, and the linked temperature control control in the air flow management interface, the air conditioner and the air circulation device can be controlled to execute at least one linkage mode among the wind feeling linkage mode, the wind speed linkage mode, the air sweeping linkage mode, and the linked temperature control mode.
[0121] Through this implementation method, multiple linked controls are integrated in the air flow management interface. The user can enter different linked modes by triggering different linked controls in the air flow management interface, without the need for the user to go to other interfaces to set the linked mode, which brings convenience to the user's operation.
[0122] Through the above technical solution, the user can Figure 3In the airflow management interface shown, at least one target control among the linkage air supply control and the linkage temperature control is triggered to start, so as to control the air conditioner and the air circulation device to execute at least one of the linkage air supply mode and the linkage temperature control mode; it is also possible to Figure 4 In the setting interface shown, 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, so as to control the air conditioner and the air circulation device to execute at least one of the wind speed linkage mode, the swing linkage mode, and the wind feeling linkage mode; it is also possible to Figure 5 In the airflow management interface shown, 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, so as to control the air conditioner and the air circulation device to execute at least one of the wind speed linkage mode, the swing linkage mode, the wind feeling linkage mode, and the linkage temperature control mode. The user enters different linkage modes through different display interfaces or different controls, which provides a variety of diversified operations for triggering the air conditioner and the air circulation device to enter the corresponding linkage modes.
[0123] Figure 6 is an exemplary embodiment involved in the above step S10, which is used to interpret an exemplary solution for linkage adjustment of the target inner ring temperature of the air conditioner based on the first air supply intensity of the air circulation device, and includes the following steps: In step S11, the set inner ring temperature of the air conditioner is corrected according to the first air supply intensity to obtain the target inner ring temperature.
[0124] Among them, the set inner ring temperature is the indoor environment temperature initially set on the air conditioner, and this set inner ring temperature can be set by the user or automatically adjusted by the air conditioner based on the user's needs.
[0125] Exemplarily, the user sets the set inner ring temperature of the air conditioner to 20 °C through the air conditioner body, the air conditioner remote control, or the application program of the air conditioner, then this 20 °C is the set inner ring temperature that the user expects to reach; or the user sets the air conditioner to the sleep mode, and in the sleep mode, the air conditioner will automatically set the set inner ring temperature to 26 °C.
[0126] Among them, the target inner ring temperature is the indoor environment temperature comprehensively obtained by integrating the user's needs, the operating mode of the air conditioner, and the operating parameters of the air circulation device. For example, the target inner ring temperature is determined by the set inner ring temperature based on the user's needs, the remaining correction temperature indicated by the operating mode of the air conditioner, and the first air supply intensity among the operating parameters of the air circulation device. The operating modes of the air conditioner also include the energy-saving mode, the sleep mode, and the human-sensing mode. In these operating modes, the air conditioner will automatically obtain other correction temperatures based on these operating modes. In the energy-saving mode and the sleep mode, the temperature output by the air conditioner is relatively low, so the other correction temperatures will become lower, thereby making the obtained target inner ring temperature decrease.
[0127] Exemplarily, the calculation formula for the target inner ring temperature is as follows: T 目标内环温 = T 设定内环温 + T 联动控温修正 + T 其他修正 (1) In formula (1), T 目标内环温 is the target inner ring temperature finally calculated; T 设定内环温 is the set inner ring temperature; T 联动控温修正 is the corrected temperature calculated according to the first air supply intensity; T 其他修正 is other corrected temperatures obtained based on the operating mode of the air conditioner.
[0128] It can be seen from formula (1) that the target inner ring temperature is the sum of the set inner ring temperature, the corrected temperature corresponding to the first air supply intensity, and other corrected temperatures.
[0129] Among them, when the air conditioner is in the direct blowing mode, the corresponding air circulation device is in the non-natural wind mode; when the air conditioner is in the non-direct blowing mode, the corresponding air circulation device is in the natural wind mode.
[0130] It can be understood that when the air conditioner is in the direct blowing mode and the air circulation device is in the non-natural wind mode, the air conditioner output air directly blows the user and the air supply intensity of the circulating air output by the air circulation device is greater than that in the natural wind mode. Therefore, the direct blowing wind with a larger air supply intensity can be blown towards the user to better meet the user's need for the wind to blow on people; when the air conditioner is in the non-direct blowing mode and the air circulation device is in the natural wind mode, the air conditioner output air avoids the user and the air supply intensity of the circulating air output by the air circulation is smaller than that in the non-natural wind mode, and the circulating air output by the air circulation device is natural wind. Therefore, the natural wind with a smaller air supply intensity can be controlled to flow indoors to better meet the user's need for the wind to avoid people.
[0131] Of course, when the air conditioner is in the direct blowing mode, during the linkage process of the direct blowing mode of the air conditioner and the non-natural wind mode of the air circulation device, the user can also control the air circulation device to switch to the natural wind mode through the body of the air circulation device or the App or the remote controller. During the linkage process of the non-direct blowing mode of the air conditioner and the natural wind mode of the air circulation device, the user can also control the air circulation device to switch to the non-natural wind mode through the body of the air circulation device or the App or the remote controller, and the present disclosure does not limit this.
[0132] Among them, the modes for correcting the set inner ring temperature include the first correction mode, the second correction mode, and the third correction mode. Therefore, the corrected temperature can be obtained according to the first air supply intensity in the first correction mode, the second correction mode, or the third correction mode; the target inner ring temperature can be obtained according to the corrected temperature and the set inner ring temperature.
[0133] An exemplary scheme for obtaining the corrected temperature in the first correction mode is introduced below. The first correction mode is a correction mode performed according to the corresponding relationship between the first air supply intensity and the corrected temperature.
[0134] In the first correction mode, and when the air circulation device is in the non-natural wind mode, different first air supply intensities correspond to different correction temperatures.
[0135] Different first air supply intensities correspond to different correction temperatures, and there is a positive correlation between different first air supply intensities and different correction temperatures, and the correction temperature is a predefined temperature.
[0136]
[0137] Table 1 For example, taking the first air supply intensity as the windshield as an example, refer to Table 1. In Table 1, the firmware windshield of the air conditioner refers to the windshield displayed on the air conditioner body or the air conditioner remote control, and the App plug-in windshield is the windshield displayed on the application for adjusting the operating data of the air conditioner; the firmware windshield of the air circulation device refers to the windshield displayed on the air circulation device body or the air circulation device remote control, and the App plug-in windshield of the air circulation device refers to the windshield displayed on the application for adjusting the operating data of the air circulation device.
[0138] In a possible implementation, since the system can control the air circulation device to be in a non-natural wind mode when the air conditioner is in the direct wind mode, the user can also manually control the air circulation device to be in a non-natural wind mode through the App or remote control of the air circulation device or the body of the air circulation device when the air conditioner is in the non-direct wind mode. Therefore, the two scenarios of the air conditioner being in the direct wind mode and the non-direct wind mode can be used to respectively illustrate the relationship between the wind speed of the air circulation device and the corrected temperature when the air circulation device is in the non-natural wind mode.
[0139] In the first scenario, when the air conditioner is in direct wind mode and the system linkage controls the air circulation device in non-natural wind mode, the different wind speeds of the air circulation device in non-natural wind mode and the different correction temperatures have the following corresponding relationships. According to the following corresponding relationships, the correction temperature corresponding to the wind speed of the air circulation device can be obtained: (1) When the firmware speed setting of the air conditioner or the App plug-in speed setting is 1~2, and the operating speed setting of the air circulation device is 1 speed setting of the firmware or 1~25 speed setting of the App plug-in, T 联动控温修正 The value of is the correction temperature T1, and the value range of the correction temperature T1 is between 0~1℃, for example, 0.5℃.
[0140] (2) When the firmware speed setting of the air conditioner or the App plug-in speed setting is 3~4, and the operating speed setting of the air circulation device is 2 in the firmware or 26~50 in the App plug-in, T 联动控温修正 The value of is the correction temperature T2, and the value range of the correction temperature T2 is between 0.5~1.5℃, for example, 1℃.
[0141] (3) When the firmware speed setting of the air conditioner or the App plug-in speed setting is 5~6, and the operating speed setting of the air circulation device is 3 in the firmware or 51~75 in the App plug-in, T 联动控温修正 The value of is the correction temperature T3, and the value range of the correction temperature T3 is between 1~2℃, for example, 1.5℃.
[0142] (4) When the firmware speed setting of the air conditioner or the App plug-in speed setting is 7 to max speed setting, and the operating speed setting of the air circulation device is 4 speed setting of the firmware or 76 to 100 speed setting of the App plug-in, T 联动控温修正 The value of is the correction temperature T4, and the value range of the correction temperature T4 is between 1.5~2.5℃, for example, 2℃.
[0143] Among them, the second air supply intensity when the air conditioner is in direct wind mode is directly proportional to the first air supply intensity when the air circulation equipment is in non-natural wind mode. Taking the second air supply intensity and the first air supply intensity as wind speeds for example, when the wind speed of the air conditioner is increased, the wind speed of the air circulation equipment will be controlled to increase; conversely, when the wind speed of the air conditioner is reduced, the wind speed of the air circulation equipment will be controlled to decrease.
[0144] Among them, it can be seen from the above four corresponding relationships that the first air supply intensity of the air circulation device is proportional to the correction temperature. Taking the first air supply intensity as the windshield as an example, after the windshield of the air circulation device increases, the correction temperature will be controlled to increase, thereby controlling the target internal temperature of the air circulation device to increase; conversely, after the windshield of the air circulation device decreases, the correction temperature will be controlled to decrease, thereby controlling the target internal temperature of the air circulation device to decrease.
[0145] Among them, the direct blowing wind mode of the air conditioner includes automatic wind mode and non-automatic wind mode. The automatic wind mode means that the air conditioner can adaptively adjust the windshield changes of the air conditioner, and the non-automatic wind mode means that the air conditioner adjusts the windshield changes of the air conditioner based on user instructions.
[0146] When the air conditioner is in the non-automatic wind mode in the direct wind mode and the linkage-controlled air circulation device is in the non-natural wind mode, the wind gear of the air circulation device and the corrected temperature have the above four corresponding relationships. When the air conditioner is in the automatic wind mode in the direct wind mode and the linkage-controlled air circulation device is in the non-natural wind mode, the wind gear of the air circulation device and the corrected temperature also have the above four corresponding relationships.
[0147] In the first scenario, when the air conditioner is in the direct blowing mode and the linked air circulation device is in the non-natural wind mode, when the air volume of the air conditioner output increases, the air volume of the circulating air output by the air circulation device will correspondingly increase, and the corrected temperature corresponding to the air volume of the circulating air also increases. Then the finally calculated target inner ring temperature will also increase. Conversely, when the air volume of the air conditioner output decreases, the air volume of the circulating air output by the air circulation device will correspondingly decrease, and the corrected temperature corresponding to the air volume of the circulating air also decreases. Then the finally calculated target inner ring temperature will also decrease.
[0148] When the air conditioner is in the direct blowing mode and the air circulation device is in the non-natural wind mode, the air volume of the air conditioner output and the air volume of the circulating air output by the air circulation device will increase synchronously. At this time, it will bring a greater air supply intensity to the user and make the user feel a colder wind with a faster wind speed, which will instead bring a bad cooling experience to the user. Therefore, the corrected temperature can be increased so that the temperature of the finally calculated target inner ring temperature of the air conditioner increases, thereby slowly reducing the indoor temperature, allowing the user to feel the indoor temperature slowly decreasing while feeling the colder wind with a faster wind speed, thus improving the user's cooling experience.
[0149] The air volume of the air conditioner output and the air volume of the circulating air output by the air circulation device will decrease synchronously. At this time, it will bring a smaller air supply intensity to the user, and the user will feel a slower cold wind speed, and the cooling experience cannot be guaranteed. Therefore, the corrected temperature can be reduced so that the finally calculated target inner ring temperature of the air conditioner decreases, thereby quickly reducing the indoor temperature, and using the quickly reduced indoor temperature to make up for the defect of low air supply intensity, thus guaranteeing the user's cooling experience.
[0150] In the second scenario, when the air conditioner is in the non-direct blowing mode and the user manually controls the air circulation device to be in the non-natural wind mode through the App or remote control of the air circulation device or the body of the air circulation device, there are also the same four corresponding relationships between different air volumes of the air circulation device and different corrected temperatures as in the first scenario. According to these four corresponding relationships, the corrected temperature corresponding to the air volume of the air circulation device can be obtained.
[0151] For example, if the user manually controls the air circulation device to be in the non-natural wind mode, and the operating air volume of the air circulation device in the non-natural wind mode is the firmware 1 air volume or the APP plug-in 1-25 air volumes, then the value of T 联动控温修正 can be determined as the corrected temperature T1.
[0152] For example, if the user manually controls the air circulation device to be in the non-natural wind mode, and the operating air volume of the air circulation device in the non-natural wind mode is the firmware 2 air volume or the APP plug-in 26-50 air volumes, the value of T 联动控温修正 is the corrected temperature T2.
[0153] For example, if the user manually controls the air circulation device to be in non-natural wind mode, and the operating wind speed of the air circulation device in the non-natural wind mode is wind speed 3 in the firmware or wind speed 51-75 in the APP plug-in, T 联动控温修正 The value of is the corrected temperature T3.
[0154] For example, if the user manually controls the air circulation device to be in non-natural wind mode, and the operating wind speed of the air circulation device in the non-natural wind mode is wind speed 4 in the firmware or wind speed 76-100 in the APP plug-in, T 联动控温修正 The value of is the corrected temperature T4.
[0155] Among them, the non-direct wind mode of the air conditioner indicates that the air-conditioned wind output by the air conditioner avoids the user. The non-direct wind mode includes sleep mode, soft wind mode and anti-direct blowing mode. The sleep mode includes Lingyun energy-saving mode and standard sleep mode.
[0156] Through the second scenario, when the air conditioner is in non-direct wind mode, and the user manually controls the air circulation device to be in non-natural wind mode, if the windshield of the air circulation device is increased, it will bring greater air supply intensity to the user, and the user will also feel strong cold wind with faster wind speed, which will bring a bad cooling experience to the user. Therefore, the correction temperature can be increased to increase the temperature of the final target internal ring temperature of the air conditioner, so as to slowly reduce the indoor temperature, and let the indoor temperature slowly reduce to balance the strong wind brought by the air circulation device, thereby improving the user's cooling experience. If the windshield of the air circulation device is reduced, it will bring a smaller air supply intensity to the user, and the user will feel a slower cold wind speed, and the cooling experience cannot be guaranteed. Therefore, the correction temperature can be reduced to reduce the final target internal ring temperature of the air conditioner, so as to quickly reduce the indoor temperature, and let the indoor temperature quickly reduce to make up for the defect of low air supply intensity, thereby ensuring the user's cooling experience.
[0157] In the first correction mode, and when the air circulation device is in the natural wind mode, different first air supply intensities correspond to different correction temperatures, or different first air supply intensities correspond to the same correction temperature.
[0158] In a possible implementation, since the user can manually control the air circulation device to be in natural wind mode through the air circulation device's App, remote control, or the air circulation device's body when the air conditioner is in direct wind mode, the system can also control the air circulation device to be in natural wind mode when the air conditioner is in non-direct wind mode. Therefore, the relationship between the wind speed of the air circulation device and the corrected temperature when the air circulation device is in natural wind mode can be explained in two scenarios, namely, the air conditioner is in direct wind mode and non-direct wind mode.
[0159] In the third scenario, when the air conditioner is in the direct blowing mode and the user manually controls the air circulation device to be in the natural wind mode through the App of the air circulation device, the remote control or the body of the air circulation device, there are also the four corresponding relationships in the first scenario between different wind speeds of the air circulation device and different corrected temperatures. According to these four corresponding relationships, the corrected temperature corresponding to the wind speed of the air circulation device can be obtained.
[0160] For example, if the user manually controls the air circulation device to be in the natural wind mode, and the operating wind speed of the air circulation device in the natural wind mode is the firmware 1 wind speed or the APP plug-in 1-25 wind speeds, then it can be determined that the value of T 联动控温修正 is the corrected temperature T1.
[0161] For example, if the user manually controls the air circulation device to be in the natural wind mode, and the operating wind speed of the air circulation device in the natural wind mode is the firmware 2 wind speed or the APP plug-in 26-50 wind speeds, the value of T 联动控温修正 is the corrected temperature T2.
[0162] For example, if the user manually controls the air circulation device to be in the natural wind mode, and the operating wind speed of the air circulation device in the natural wind mode is the firmware 3 wind speed or the APP plug-in 51-75 wind speeds, the value of T 联动控温修正 is the corrected temperature T3.
[0163] For example, if the user manually controls the air circulation device to be in the natural wind mode, and the operating wind speed of the air circulation device in the natural wind mode is the firmware 4 wind speed or the APP plug-in 76-100 wind speeds, the value of T 联动控温修正 is the corrected temperature T4.
[0164] Among them, when the air conditioner is in the non-automatic wind mode in the direct blowing mode and the user manually controls the air circulation device to be in the natural wind mode, there are the above four corresponding relationships between the wind speed of the air circulation device and the corrected temperature.
[0165] Through the third scenario, when the air conditioner is in direct blowing mode and the user manually adjusts the air circulation device to be in natural wind mode, the relationship between the operating wind speed of the air circulation device in natural wind mode and the corrected temperature is still positively correlated. When the air conditioner is in direct blowing mode, it means that the user has a need for wind blowing on people and expects the wind output by the air conditioner to be directed towards the user in real time. At this time, if the user manually adjusts the air circulation device to be in natural wind mode, the corrected temperature corresponding to the windshield of the air circulation device in natural wind mode can be determined. If the windshield of the air circulation device in natural wind mode is higher, a higher corrected temperature can be used, so that the air conditioner outputs a higher target internal temperature, so that the user can feel the indoor temperature slowly drop while feeling a higher direct blowing wind speed, reducing the user's feeling of being too cold; conversely, if the wind speed of the air circulation device in natural wind mode is lower, a lower corrected temperature can be used, so that the air conditioner outputs a lower target internal temperature, so that the user can feel the indoor temperature drop rapidly while feeling a lower direct blowing wind speed, reducing the user's feeling of being overheated.
[0166] In the fourth scenario, when the air conditioner is in the non-direct wind mode and the system linkage controls the air circulation equipment to be in the natural wind mode, the corrected temperature of the air circulation equipment in the natural wind mode is the same corrected temperature.
[0167] For example, taking the same correction temperature of 0 as an example, when the air conditioner is in non-direct wind mode and the system linkage controls the air circulation device to be in natural wind mode, the correction temperature can be controlled to 0, so that the target internal temperature of the air conditioner is close to the user's set internal temperature.
[0168] Among them, the direct blowing air mode of the air conditioner includes automatic wind mode and non-automatic wind mode. When the air conditioner is in the automatic wind mode of the direct blowing air mode and the system linkage controls the air circulation device to be in the natural wind mode, the same correction temperature can also be used to correct the set inner ring temperature to obtain the target inner ring temperature. When the air conditioner is in the non-automatic wind mode of the direct blowing air mode and the user manually controls the air circulation device to be in the natural wind mode, the windshield of the air circulation device also corresponds to the same correction temperature.
[0169] Through the fourth scenario, when the air conditioner is in non-direct blowing wind modes such as sleep mode, anti-direct blowing mode and soft wind mode, if the system linkage controls the air circulation device to be in natural wind mode, it means that the air conditioner and the air circulation device are both outputting natural wind at this time, or the air-conditioned wind output by the air conditioner avoids the user and the air circulation device outputs natural wind, thereby reducing the user's direct blowing feeling. Therefore, in this scenario, the corrected temperature of the air circulation device in natural wind mode can be controlled to 0 or a lower corrected temperature, so that the cooling temperature output by the air conditioner can be as low as possible and close to the user-set internal ring temperature, while the air conditioner provides the user with the required temperature while meeting the user's wind avoidance needs.
[0170] An exemplary solution for obtaining the corrected temperature in the second correction mode will be introduced below.
[0171] In the second correction mode, the corrected temperature is obtained according to the first air supply intensity and the first correction function when the air linkage device is in the non-natural wind mode; or, the corrected temperature is obtained according to the first air supply intensity and the second correction function when the air linkage device is in the natural wind mode.
[0172] Among them, the first correction function is the correction function adopted when the air conditioner is in the direct blowing mode. When the air conditioner is in the direct blowing mode, the air circulation device can be linked to be in the non-natural wind mode and can also be manually controlled by the user to be in the natural wind mode.
[0173] Among them, in the second correction mode, the real-time inner loop temperature, the set inner loop temperature, the second air supply intensity of the air conditioner, and the first air supply intensity of the air circulation device are all negatively correlated with the corrected temperature; the real-time outer loop temperature is positively correlated with the corrected temperature. Exemplarily, the expression of the first correction function is as follows: (2) In formula (2), T 联动控温修正 is the corrected temperature calculated based on the first correction function; is the correction factor of T 外环 , and its value range is 0.5 to 0.8; is the correction factor of T 内环 , and its value range is -0.1 to -0.3; is the correction factor of T 设定 , and its value range is -0.2 to -0.5; is the correction factor of F 空调风档 , and its value range is -0.4 to -0.7; is the correction factor of F 循环扇风档 , and its value range is -0.6 to -1.0; T 外环 is the real-time outer loop temperature; T 设定 is the set inner loop temperature; F 空调风档 is the second air supply intensity of the air conditioner, such as the air conditioner wind speed; F 循环扇风档 is the first air supply intensity of the air circulation device, such as the air circulation device wind speed.
[0174] Among them, the correction factor in front of the second air supply intensity of the air conditioner and the first air supply intensity of the air circulation device The correction factor in front is configured as a negative number because: the correction temperature is positive, and the target inner loop temperature obtained based on the positive correction temperature will also increase adaptively. When the first air supply intensity of the air circulation device and the second air supply intensity of the air conditioner increase simultaneously, it indicates that the user's cooling demand has increased. If the correction factors in front of both are positive numbers, it will cause the final obtained correction temperature and the target inner loop temperature to increase, and the indoor temperature will be relatively high, unable to meet the user's current increased cooling demand.
[0175] Therefore, the correction factors in front of the first air supply intensity of the air circulation device and the second air supply intensity of the air conditioner are configured as negative numbers. On the one hand, because the correction temperature is positive, the positive correction temperature will correct the set inner loop temperature upward, increasing the indoor wind speed while raising the target inner loop temperature, reducing the probability that the user experiences strong cold wind, and enhancing the user's wind feeling experience; on the other hand, when the first air supply intensity of the air circulation device and the second air supply intensity of the air conditioner increase simultaneously, it indicates that the user has a greater cooling demand. Since the correction factors in front of the first air supply intensity and the second air supply intensity are negative numbers, the obtained correction temperature is relatively small. Although the target inner loop temperature obtained through the correction temperature will increase, the amplitude of its increase is small, thus ensuring the user's cooling demand; on the third hand, when the change amplitude of the target inner loop temperature of the air conditioner is relatively large, the air conditioner compressor may be damaged due to overheating. Therefore, the correction factors in front of the first air supply intensity and the second air supply intensity are set as negative numbers to reduce the change amplitude of the target inner loop temperature of the air conditioner and achieve overheat protection for the air conditioner compressor.
[0176] Among them, the reason for setting the correction factor in front of the real-time inner loop temperature as a negative number is: when the real-time inner loop temperature is relatively low and the indoor air is cold enough, there is no need for the air conditioner to input a large amount of cooling capacity at this time. Therefore, by setting the correction factor in front of the real-time inner loop temperature as a negative number, the lower the real-time inner loop temperature, the larger the calculated correction temperature, so that the obtained target inner loop temperature is also larger. After the target inner loop temperature becomes larger, the cooling speed can be reduced, and the cooling capacity input by the air conditioner will adaptively decrease, thus saving cooling capacity.
[0177] Among them, the reason for setting the correction factor in front of the set inner loop temperature as a negative number is: when the change amplitude of the target inner loop temperature of the air conditioner is relatively large, the air conditioner compressor may be damaged due to overheating. Therefore, the correction factor in front of the set inner loop temperature is also set as a negative number, thereby adaptively reducing the correction temperature, reducing the change amplitude of the target inner loop temperature of the air conditioner, and achieving overheat protection for the air conditioner compressor.
[0178] Among them, the correction factor in front of the real-time outer loop temperature The reason for setting it to a positive number is that when the real-time outer ambient temperature is higher, if the target inner ambient temperature of the air conditioner is set too low, it will cause the air conditioner compressor to be overloaded. Therefore, the correction factor in front of the real-time outer ambient temperature is set to a positive number. When the real-time outer ambient temperature increases, the correction temperature adaptability increases, so that the target inner ambient temperature of the air conditioner also increases adaptively, reducing the air conditioner overload phenomenon.
[0179] Among them, the second correction function is the correction function adopted when the air conditioner is in the non-direct-blowing mode. When the air conditioner is in the non-direct-blowing mode, the air circulation device can be linked to be in the natural wind mode or can be manually controlled by the user to be in the non-natural wind mode.
[0180] Among them, the correction temperature obtained based on the second correction function is less than the correction temperature obtained based on the first correction function. For example, the second correction function can be obtained according to the correction coefficient and the first correction function, and the correction coefficient is less than 1.
[0181] Exemplarily, the expression of the second correction function is as follows: (3) In formula (3), T 联动控温修正_智能 is the correction temperature obtained based on the second correction function; is the correction coefficient, and the value range of this correction coefficient is 0.4 to 0.8.
[0182] It can be seen from formula (3) that the expression after multiplying the correction coefficient and the first correction function can be used as the second correction function. Since this correction coefficient is less than 1, the correction temperature obtained based on the second correction function will be less than the correction temperature obtained based on the first correction function. Then, the target inner ambient temperature obtained based on the second correction mode will be less than the target inner ambient temperature obtained based on the first correction function.
[0183] It can be understood that when the air conditioner is in the direct-blowing mode, the air conditioner output air blows directly at the user. At this time, the user's cooling experience is better. If the target inner ambient temperature is set too low, the user will feel that the direct-blowing air output by the air conditioner cools down quickly, which will instead lead to a lower user cooling experience. Therefore, when the air conditioner is in the direct-blowing mode, the first correction function is used to obtain the target inner ambient temperature, so that the target inner ambient temperature of the air conditioner becomes relatively higher, so that the user can feel the direct-blowing air while feeling the direct-blowing air cooling down slowly, improving the user's cooling experience.
[0184] Similarly, when the air conditioner is in non-direct wind mode, the conditioned wind output by the air conditioner avoids the user, and the cooling experience felt by the user is also better at this time. If the target inner ring temperature is set higher, the user will feel that the cooling speed of the air conditioner output is slower, which leads to a low cooling experience for the user. Therefore, when the air conditioner is in non-direct wind mode, the second correction function is used to obtain the target inner ring temperature, so that the target inner ring temperature of the air conditioner becomes relatively low. While the conditioned wind avoids the user, the user can also feel the rapid drop in indoor temperature, thereby improving the user's cooling experience.
[0185] It can be seen from the above formulas (2) and (3) that the influencing factors of the first correction function and the second correction function include: the real-time external ring temperature outside the space, the real-time internal ring temperature inside the space, the set internal ring temperature, the first air supply intensity and the second air supply intensity of the air conditioner.
[0186] It can be understood that in the first correction mode, the influence of the first air supply intensity of the air circulation equipment on the target inner ring temperature is simply considered without considering other factors. Therefore, when the first air supply intensity of the air circulation equipment increases, the target inner ring temperature will be controlled to increase in conjunction, and the two are positively correlated to meet the user's wind feeling experience; in the second correction mode, in addition to considering the influence of the first air supply intensity of the air circulation equipment on the target inner ring temperature, the real-time inner ring temperature, the real-time outer ring temperature, and the influence of the second air supply intensity of the air conditioner on the target inner ring temperature are also considered. Therefore, taking all factors into consideration, when the first air supply intensity of the air circulation equipment increases, the target inner ring temperature will be controlled to be adaptively smaller in conjunction, and the two are negatively correlated. While satisfying the user's wind feeling experience, it also meets the user's increased cooling needs.
[0187] An exemplary scheme for obtaining the corrected temperature in the third correction mode will be described below.
[0188] In the third correction mode, the correction temperature is a temperature configured by the user, and the correction temperature is within a preset correction range.
[0189] The preset correction range may be 0-3°C, and the user may define different correction temperatures under the first correction temperature.
[0190] In one possible embodiment, the display interface includes a setting interface, which includes a linkage temperature control setting interface for displaying the correspondence between the first air supply intensity and the corrected temperature of the air circulation equipment. The first correspondence can be displayed on the linkage temperature control setting interface in response to a configuration operation of the corrected temperature.
[0191] Among them, the corresponding relationship between the first air supply intensity and the corrected temperature of the air circulation equipment displayed in the setting interface includes the corresponding relationship between the first air supply intensity and the corrected temperature under any one of the first correction method, the second correction method and the third correction method.
[0192] Among them, the first correspondence relationship is the correspondence relationship between the first air supply intensity and the adjusted corrected temperature.
[0193] Among them, the configuration operation can be an operation of setting the corrected temperature or an operation of adjusting the corrected temperature.
[0194] Among them, the linkage temperature control setting interface can be represented by a curve graph, can also be displayed in the form of key-value pairs, and of course can also be displayed in other forms.
[0195] Exemplarily, taking the linkage temperature control setting interface as a curve graph, the abscissa of the curve graph is the air supply intensity of the air circulation device, and the ordinate is the corrected temperature. The user can adjust the corrected temperature corresponding to any 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 Figure 3 the airflow management interface shown. After the user activates the linkage temperature control control in the airflow management interface, the corrected temperature of the air conditioner and the first air supply intensity of the air circulation device can be controlled to operate according to the Figure 4 correspondence relationship shown in the curve graph in. After the first air supply intensity of the air circulation device changes, based on Figure 4 the curve graph shown in, the corresponding corrected temperature is queried, and the target inner ring temperature of the air conditioner is calculated based on the queried corrected temperature.
[0196] Through this implementation method, the user can adjust the corrected temperature corresponding to the first air supply intensity of the air circulation device on the linkage temperature control setting interface. When the user likes cold, the corrected temperature corresponding to the air circulation device can be adjusted lower, and then the finally obtained target inner ring temperature will also be lower, so that at the same first air supply intensity, the target inner ring temperature of the air conditioner will be lower to quickly reduce the indoor temperature to meet the user's preference for cold; when the user likes hot, the corrected temperature corresponding to the air circulation device can be adjusted higher, and then the finally obtained target inner ring temperature will be higher, so that at the same first air supply intensity, the target inner ring temperature of the air conditioner will be higher to slowly reduce the indoor temperature to meet the user's preference for hot.
[0197] In a possible implementation method, the setting interface includes a restoration control. The restoration control can be set in the linkage temperature control setting interface, and can also respond to the triggering operation of the restoration control to control the correspondence relationship between the first air supply intensity and the corrected temperature to be restored from the first correspondence relationship to the second correspondence relationship.
[0198] Among them, the second correspondence relationship is the correspondence relationship in the first correction mode or the second correction mode.
[0199] For example, if the user adjusts the correction temperature in the linkage temperature control setting interface, causing a change in the correspondence between the first air supply intensity and the correction temperature, then the restoration control can be triggered to restore this correspondence to any of the four correspondence relationships in the first correction mode described above. Taking the air supply intensity being a wind speed as an example, it can be restored to the following four correspondence relationships: (1) The first wind speed of the air circulation device corresponds to the correction temperature T1; (2) The second wind speed of the air circulation device corresponds to the correction temperature T2; (2) The third wind speed of the air circulation device corresponds to the correction temperature T3; (2) The fourth wind speed of the air circulation device corresponds to the correction temperature T4.
[0200] For example, if the user adjusts the correction temperature in the linkage temperature control setting interface, causing a change in the correspondence between the first air supply intensity and the correction temperature, then the restoration control can be triggered to restore this correspondence to any one of the two expression relationships in the second correction mode described above.
[0201] Through this implementation, when the user is not satisfied with the correspondence they set, the restoration control can be triggered to restore the pre-configured second correspondence. Under the second correspondence, the correction temperature corresponding to the first air supply intensity can be adjusted according to the preset correspondence in the first correction mode, or the correction temperature corresponding to the first air supply intensity can be calculated according to the first correction function or the second correction function in the second correction mode.
[0202] In a possible implementation, when the operating duration of the air conditioner is greater than a preset duration and / or the real-time inner loop temperature in the space is less than the target value, the set inner loop temperature can be corrected according to the first air supply intensity to obtain the target inner loop temperature.
[0203] Among them, the operating duration of the air conditioner can be the operating duration of the compressor. This operating duration of the compressor is the operating duration after the compressor is started this time. The value range of the preset duration is 5 min to 30 min.
[0204] Among them, the target value is obtained based on the set inner loop temperature and the temperature difference. For example, it can be the sum of the set inner loop temperature and the temperature difference. The value range of the temperature difference is 1°C to 5°C.
[0205] When the operating duration of the air conditioner is greater than the preset duration and / or the real-time inner loop temperature is less than the target value, any one of the first correction mode, the second correction mode, and the third correction mode described above can be used to calculate the correction temperature. If the conditions of the preset duration or the target value are not met, the correction temperature can be set to 0. It is also possible not to correct the set inner loop temperature when the real-time inner loop temperature in the space is greater than or equal to the target value.
[0206] The reason for starting the correction scheme only when the operating duration of the air conditioner is greater than the preset duration is as follows: Since the air conditioner needs to cool or heat the space after it is turned on, and the corrected temperature is to correct the set inner loop temperature upward, if the corrected temperature is used to correct the set inner loop temperature immediately after the air conditioner is turned on, the target inner loop temperature of the air conditioner will increase. After the target inner loop temperature increases, the cooling rate / heating rate after the air conditioner is turned on will decrease. Therefore, the corrected temperature can be used to correct the set inner loop temperature after the operating duration of the air conditioner reaches the preset duration, so as to reduce the impact on the cooling rate / heating rate of the air conditioner during the operating duration.
[0207] The reason for starting the correction scheme only when the real-time inner loop temperature is less than the sum of the set inner loop temperature and the temperature difference is as follows: The air conditioner does not operate continuously during operation. For example, the compressor does not operate continuously. Instead, when the real-time inner loop temperature provided by the compressor is close to the set inner loop temperature, it will stop operating. When there is a certain gap between the real-time inner loop temperature and the set inner loop temperature, the compressor will restart, and the compressor will start and stop frequently during this process. When the real-time inner loop temperature in the space is less than the target value, it means that the real-time inner loop temperature is relatively close to the set inner loop temperature. At this time, the air conditioner compressor may stop. Therefore, the correction scheme can be used to obtain the corrected temperature, thereby increasing the target inner loop temperature. After the target inner loop temperature increases, the cooling rate of the real-time inner loop temperature in the space becomes slower, so that the real-time inner loop temperature reaches the set inner loop temperature more slowly, lengthening the duration for the real-time inner loop temperature to reach the set inner loop temperature, thereby extending the operating duration of the compressor and reducing the start-stop times of the compressor, thus ensuring the service life of the compressor. For example, if the set inner loop temperature is 16°C, when the real-time inner loop temperature provided by the compressor is 16°C, the real-time inner loop temperature provided by the compressor has reached the set inner loop temperature set by the user, and the compressor will be controlled to stop operating for energy conservation; when the real-time inner loop temperature is greater than 16°C, for example, 20°C, the compressor will restart, so that the real-time inner loop temperature of the space is stabilized near 16°C, which will cause the compressor to start and stop frequently after reaching 16°C frequently. By setting the correction scheme to start when the real-time inner loop temperature is less than the sum of the set inner loop temperature and the temperature difference, taking the temperature difference as 3°C as an example, when the real-time inner loop temperature is less than 19°C (set inner loop temperature + temperature difference), the correction scheme can be started, so as to adaptively correct the target inner loop temperature upward. After the target inner loop temperature increases, the real-time inner loop temperature of 19°C will reach the set inner loop temperature of 16°C more slowly. In this way, the duration for the real-time inner loop temperature to reach the set inner loop temperature is lengthened, and the compressor will not stop operating, thus lengthening the continuous operating duration of the compressor and reducing the frequency of frequent start-stop of the compressor, and improving the service life of the compressor.
[0208] The reason for not starting the correction scheme when the real-time inner loop temperature is greater than or equal to the sum of the set inner loop temperature and the temperature difference is as follows: When the real-time inner loop temperature is greater than the sum of the set inner loop temperature and the temperature difference, it indicates that the gap between the real-time inner loop temperature and the set inner loop temperature is relatively large. At this time, if the correction temperature is used to correct the target inner loop temperature upward, it will affect the cooling rate / heating rate of the air conditioner. Therefore, when the real-time inner loop temperature is greater than the sum of the set inner loop temperature and the temperature difference, the correction scheme is not adopted to correct the target inner loop temperature, so as to ensure the cooling rate / heating rate of the air conditioner.
[0209] In a possible implementation manner, during the process of jointly controlling the air conditioner and the air circulation device, in addition to configuring the main control program for jointly managing the air flow in the cloud server, please refer to Figure 7 As shown, a jointly controlled mode selection module, a jointly controlled air supply control module, a jointly controlled temperature control module, a jointly controlled central control module, an air conditioner interaction module, an air circulation device interaction module, a jointly controlled central control module, an air conditioner joint control module, and an air circulation device joint control module can also be additionally configured.
[0210] Among them, the main control program for jointly managing the air flow is the main control program for realizing the overall jointly managed air flow function between the air conditioner and the air circulation device. It is used to obtain the jointly controlled mode control parameters set in the jointly controlled mode selection module and send the obtained jointly controlled mode control parameters to the jointly controlled central control module. The jointly controlled mode control parameters indicate whether the jointly controlled air supply mode or the jointly controlled temperature control mode is selected.
[0211] Among them, the jointly controlled mode selection module includes a jointly controlled air supply control module and a jointly controlled temperature control module. The jointly controlled mode selection module is used to respond to the user's trigger operation to activate the jointly controlled air supply control module and / or the jointly controlled temperature control module. For example, if the user activates the jointly controlled air supply control, the jointly controlled air supply control module is activated, thereby providing the user with a jointly controlled air supply mode between the air conditioner and the air circulation device; if the user activates the jointly controlled temperature control, the jointly controlled temperature control module is activated, thereby providing the user with a jointly controlled temperature control mode between the air conditioner and the air circulation device.
[0212] Among them, the jointly controlled central control module is a data interaction control center for data processing and data distribution in realizing the overall jointly managed air flow function between the air conditioner and the air circulation device. The jointly controlled central control module 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 joint control module and the jointly controlled central control module, and the air circulation device interaction module is responsible for the data interaction between the air circulation device control module and the jointly controlled central control module.
[0213] Among them, the linkage control network center is used to generate a linkage control instruction after obtaining the data sent by the linkage control center, and send the linkage control instruction to the air-conditioning linkage control module and the air circulation equipment linkage control module through a wireless network such as a WIFI local area network or a Bluetooth local area network.
[0214] Among them, the air-conditioning 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.
[0215] Among them, the air circulation equipment 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 equipment in response to the linkage control instruction.
[0216] In a possible implementation manner, in the linkage temperature control mode, the air circulation equipment is used as the main device, and the air conditioner is used as the slave device, and the target inner ring temperature of the air conditioner is dynamically adjusted based on the change of the first air supply intensity of the air circulation equipment.
[0217] Among them, in the linkage temperature control mode, if the correction mode is the first correction mode, the control interaction process in the first correction mode includes the following steps: (1) The air circulation equipment linkage control module first collects the current first air supply intensity of the air circulation equipment, and then sends the first air supply intensity to the linkage temperature control module through the air circulation equipment interaction module, the linkage control center, and the linkage mode selection module.
[0218] (2) If the user starts the linkage temperature control control on the application, the application will call the linkage air flow management main control program, and the linkage air flow management main control program will select the linkage temperature control mode from the linkage mode selection module to trigger the linkage temperature control module to execute the query function.
[0219] (3) The linkage temperature control module queries the correction temperature corresponding to the first air supply intensity based on the obtained first air supply intensity, and calculates the target inner ring temperature of the air conditioner based on the correction temperature.
[0220] (4) The linkage temperature control module sends the target inner ring temperature of the air conditioner to the air-conditioning linkage control module through the linkage mode selection module, the linkage control center, and the linkage control network center, and the air-conditioning linkage control module then controls the air conditioner to execute the target inner ring temperature.
[0221] Among them, in the linkage temperature control mode, if the selected correction mode is the second correction mode, the control interaction process in the second correction mode includes the following steps: (1) The air circulation equipment linkage control module first collects the current first air supply intensity of the air circulation equipment, and then sends the first air supply intensity to the linkage temperature control module through the air circulation equipment interaction module, the linkage control center, and the linkage mode selection module.
[0222] (2) The air conditioner linkage control module collects the current operating mode of the air conditioner, the real-time indoor loop temperature in the space, and the real-time outdoor loop temperature outside the space, and sends these operating data to the linkage temperature control module through the air conditioner interaction module, the linkage control center, and the linkage mode selection module.
[0223] (3) If the user activates the linkage temperature control control on the application, the application will call the main control program of the linkage air flow management. The main control program of the linkage air flow management will then select the linkage temperature control mode from the linkage mode selection module, triggering the linkage temperature control module to execute the calculation function.
[0224] (4) Based on the obtained operating data such as the current operating mode of the air conditioner, the real-time indoor loop temperature in the space, and the real-time outdoor loop temperature outside the space, and the current first air supply intensity of the air circulation device, if the current operating mode of the air conditioner is the direct blowing mode, the linkage temperature control module substitutes these operating data into the first correction function to obtain the corrected temperature; if the current operating mode of the air conditioner is the non-direct blowing mode, the linkage temperature control module substitutes these operating data into the second correction function to obtain the corrected temperature, and then obtains the target indoor loop temperature of the air conditioner based on the corrected temperature.
[0225] (5) The linkage temperature control module sends the target indoor loop temperature of the air conditioner to the air conditioner linkage control module through the linkage mode selection module, the linkage control center, and the linkage control network center. The air conditioner linkage control module then controls the air conditioner to execute the target indoor loop temperature.
[0226] Among them, during the operation of the air conditioner and the air circulation device, the air conditioner linkage control module will collect the operating 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 operating 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 judges whether the air conditioner and the air circulation device are operating normally as expected based on the feedback operating data of the air conditioner and the air circulation device.
[0227] It can be understood that if the user does not activate the "linkage temperature control control", it means that the target indoor loop temperature of the air conditioner does not accept the linkage control of the first air supply intensity of the real-time operation of the air circulation device. The air conditioner accepts the user instructions sent 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, and executes according to the target indoor loop temperature indicated by the user instructions.
[0228] Figure 8 And Figure 9 are exemplary embodiments involved in the present disclosure, which are used to interpret an exemplary solution for controlling the linkage of an air conditioner and an air circulation device under the same network or different networks, including the following steps.
[0229] In a possible implementation manner, 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, the target inner ring temperature is controlled to be linked with the first air supply intensity.
[0230] Among them, both the air conditioner and the air circulation device being connected to the network includes two situations. One is that the air conditioner and the air circulation device are in the same network and communicate through this network; the other is that the air conditioner and the air circulation device are in different networks and communicate through different networks.
[0231] Before the application displays the air flow management interface, a network selection interface will also be displayed. Please refer to Figure 9 As shown, this network selection interface is used to provide a configuration interface for the network name (such as WIFI name) and network password (such as WIFI password) of the selected air conditioner or air circulation device. The user can configure the network for the air conditioner and the air circulation device on the network selection interface. For example, the connection networks of the air conditioner and the air circulation device in the same space can be configured as the same network or different networks. Then, the air conditioner and the air circulation device in the same space can use the same network or different networks to achieve communication connection, and further achieve linkage based on this communication connection. For example, the user can first long-press Figure 9 the button for selecting WIFI in the Internet of Things option of, so as to expand the WIFI list, and then select one of the WIFI names from the WIFI list; then enter the WIFI password under this WIFI name in the password input field, so as to complete the network configuration of this device.
[0232] Optionally, a device search interface will also be displayed before the network selection interface. Please refer to Figure 8 As shown, the 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 a triggering operation of the user on the target device among the multiple devices, enter the network selection interface. In response to a triggering operation on the network name in the network selection interface, select the target network name; in response to a setting operation on the network password in the network selection interface, complete the configuration of the network password. 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 in the same network, then these two target devices can establish a network connection to achieve linkage. Of course, two target devices in different networks can also achieve linkage.
[0233] For example, after the application displays Figure 8 the device search interface shown, Figure 8The displayed device search interface shows Air Conditioners A - E and Air Circulation Devices A - E. If the user selects Air Conditioner A, then it will enter Figure 9 the network selection interface, where the user configures the network name and network password for Air Conditioner A; subsequently, when returning to Figure 8 the device search interface shown, the user selects Air Circulation Device A and then enters Figure 9 the network selection interface, where 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 can 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.
[0234] Through the above technical solution, the air conditioner and the air circulation device can be equipped with the same network or different networks, enabling the air conditioner and the air circulation device to communicate using the same network or different networks, and on the basis of achieving communication, interacting with their operating parameters and / or operating modes, thereby realizing the linkage between the target inner - loop temperature of the air conditioner and the first air supply intensity of the air circulation device.
[0235] Figure 10 is a block diagram of a linkage control device for a device shown according to an exemplary embodiment. Referring to Figure 10 , the linkage control device 1000 of the device includes a linkage control module 1010.
[0236] The linkage control module 1010 is configured to control the linkage between the target inner - loop temperature of the air conditioner and the first air supply intensity in response to a trigger operation by the user on the operation panel; wherein, the air conditioner and the air circulation device are located 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 operating data of the air conditioner and / or the air circulation device, the operating data includes an operating mode and / or operating parameters, and the target inner - loop temperature is the target indoor environmental temperature in the space.
[0237] In a possible implementation manner, the display interface includes an air flow management interface, and the air flow management interface includes a linkage temperature control control; the linkage control module 1010 is further configured to control the linkage between the target inner - loop temperature and the first air supply intensity in response to a trigger operation on the linkage temperature control control.
[0238] In a possible implementation manner, the linkage control device 1000 of the device further includes: The closing module is configured to control the stop of the linkage between the target inner ring temperature and the first air supply intensity in response to a closing operation on the linkage temperature control control.
[0239] In a possible implementation manner, the linkage control module 1010 is further configured to link and adjust the target inner ring temperature according to the first air supply intensity.
[0240] In a possible implementation manner, the linkage control module 1010 is further configured to correct the set inner ring temperature of the air conditioner according to the first air supply intensity to obtain the target inner ring temperature; the set inner ring temperature is the initially set indoor environment temperature on the air conditioner.
[0241] In a possible implementation manner, the modes of correcting the set inner ring temperature include a first correction mode, a second correction mode, and a third correction mode; the linkage control module 1010 is further configured to obtain a correction temperature according to the first air supply intensity in the first correction mode, the second correction mode, or the third correction mode; and obtain the target inner ring temperature according to the correction temperature and the set inner ring temperature.
[0242] In a possible implementation manner, in the first correction mode and when the air circulation device is in the non-natural wind mode, different first air supply intensities correspond to different correction temperatures; in the first correction mode and when the air circulation device is in the natural wind mode, different first air supply intensities correspond to different correction temperatures, or different first air supply intensities correspond to the same correction temperature.
[0243] In a possible implementation manner, there is a positive correlation between the different first air supply intensities and the different correction temperatures, and the correction temperature is a predefined temperature.
[0244] In a possible implementation manner, the linkage control module 1010 is further configured to obtain the correction temperature according to the first air supply intensity and a first correction function when the air conditioner is in the direct blowing mode in the second correction mode; or obtain the correction temperature according to the first air supply intensity and a second correction function when the air conditioner is in the non-direct blowing mode; wherein the correction temperature obtained based on the second correction function is less than the correction temperature obtained based on the first correction function.
[0245] In a possible implementation manner, the linkage control device 1000 of the device further includes: A correction module configured to obtain the second correction function according to a correction coefficient and the first correction function.
[0246] In a possible implementation manner, when the air conditioner is in the direct blowing mode, the corresponding air circulation device is in the non-natural wind mode; when the air conditioner is in the non-direct blowing mode, the corresponding air circulation device is in the natural wind mode.
[0247] In a possible implementation manner, the influencing factors of the first correction function and the second correction function both include: the real-time outer ring temperature outside the space, the real-time inner ring temperature inside the space, the set inner ring temperature, the first air supply intensity, and the second air supply intensity of the air conditioner.
[0248] In a possible implementation manner, in the third correction mode, the corrected temperature is the temperature configured by the user, and the corrected temperature is within the preset correction range.
[0249] In a possible implementation manner, the linkage control module 1010 is further configured to, when the operation duration of the air conditioner is greater than the preset duration and / or the real-time inner ring temperature inside the space is less than the target value, correct the set inner ring temperature according to the first air supply intensity to obtain the target inner ring temperature; wherein, the target value is obtained according to the set inner ring temperature and the preset temperature difference.
[0250] In a possible implementation manner, the display interface includes a setting interface, and the setting interface includes a linkage temperature control setting interface for displaying the corresponding relationship between the first air supply intensity and the corrected temperature; the linkage control device 1000 of this device further includes: A display module, configured to, in response to a configuration operation on the corrected temperature, display a first corresponding relationship on the linkage temperature control setting interface; the first corresponding relationship is the corresponding relationship between the first air supply intensity and the adjusted corrected temperature.
[0251] In a possible implementation manner, the setting interface further includes a restoration control; the linkage control device 1000 of this device further includes: A restoration module, configured to, in response to a trigger operation on the restoration control, control the corresponding relationship between the first air supply intensity and the corrected temperature to be restored from the first corresponding relationship to a second corresponding relationship; the second corresponding relationship is the corresponding relationship in the first correction mode or the second correction mode.
[0252] In a possible implementation manner, the air flow management interface further includes a linkage air supply control; the linkage control device 1000 of this device further includes: A linkage control module, configured to, in response to a trigger operation on at least one target control among the linkage air supply control and the linkage temperature control control, control the air conditioner and the air circulation device to execute the linkage mode corresponding to the at least one target control.
[0253] In a possible implementation, the display interface further includes a settings interface, and the settings interface includes a wind speed linkage control, a swing wind linkage control, and a wind feeling linkage control; the linkage control device 1000 of the device further includes: A linkage control module, configured to, when at least one target air supply control among the wind speed linkage control, the swing wind linkage control, and the wind feeling linkage control 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 the linkage mode corresponding to the at least one target air supply control.
[0254] In a possible implementation, the air flow management interface further includes a wind speed linkage control, a swing wind linkage control, and a wind feeling linkage control; the linkage control device 1000 of the device further includes: A linkage control module, configured to, in response to the triggering operation on at least one target control among the wind speed linkage control, the swing wind linkage control, the wind feeling linkage control, and the linkage temperature control, control the air conditioner and the air circulation device to execute the linkage mode corresponding to the at least one target control.
[0255] In a possible implementation, the linkage control module 1010 is further configured to, when the air conditioner and the air circulation device are connected to the network, in response to the triggering operation of the user on the operation panel, control the target inner ring temperature to be linked with the first air supply intensity.
[0256] Regarding the device in the above embodiments, the specific manners in which each module performs operations have been described in detail in the embodiments related to the method, and will not be elaborated herein.
[0257] The present disclosure further 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 linkage control method of the device provided by the present disclosure are implemented.
[0258] Figure 11 It is a block diagram of a linkage control device 1100 of a device shown according to an exemplary embodiment. For example, the device 1100 may be a mobile phone, a computer, an air conditioner, an air circulation device, etc. Application programs can be installed in these devices 1100. When the application programs run, they call the linkage air flow management main control program in the server. When the user performs one or more triggering operations on the application programs, the application programs also call the linkage air flow management main control program to implement the control of the air conditioner and / or the air circulation device.
[0259] Refer to Figure 11, the device 1100 may include one or more of the following components: a first processing component 1102, a first memory 1104, a first power supply component 1106, a multimedia component 1108, an audio component 1110, a first input / output interface 1112, a sensor component 1111, and a communication component 1116.
[0260] The first processing component 1102 generally controls the overall operation of the device 1100, such as operations associated with display, telephone calls, data communication, camera operations, and recording operations. The first processing component 1102 may include one or more processors 1120 to execute instructions to complete all or part of the steps of the above-mentioned device linkage control method. In addition, the first processing component 1102 may include one or more modules to facilitate the interaction between the first processing component 1102 and other components. For example, the first processing component 1102 may include a multimedia module to facilitate the interaction between the multimedia component 1108 and the first processing component 1102.
[0261] The first memory 1104 is configured to store various types of data to support the operation of the device 1100. Examples of such data include instructions for any application or method operating on the device 1100, contact data, phone book data, messages, pictures, videos, etc. The first memory 1104 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.
[0262] The first power supply component 1106 provides power to various components of the device 1100. The first power supply component 1106 may include a power management system, one or more power supplies, and other components associated with generating, managing, and distributing power for the device 1100.
[0263] The multimedia component 1108 includes a screen that provides an output interface between the device 1100 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 can 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 can sense not only the boundaries of a touch or swipe action but also detect the duration and pressure associated with the touch or swipe operation. In some embodiments, the multimedia component 1108 includes a front camera and / or a rear camera. When the device 1100 is in an operation mode, such as a shooting mode or a video mode, the front camera and / or the rear camera can receive external multimedia data. Each of the front camera and the rear camera can be a fixed optical lens system or have a focal length and optical zoom capabilities.
[0264] The audio component 1110 is configured to output and / or input audio signals. For example, the audio component 1110 includes a microphone (MIC) that is configured to receive external audio signals when the device 1100 is in an operation 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 1104 or transmitted via the communication component 1116. In some embodiments, the audio component 1110 further includes a speaker for outputting audio signals.
[0265] The first input / output interface 1112 provides an interface between the first processing component 1102 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 power button, and a lock button.
[0266] The sensor component 1111 includes one or more sensors for providing a status assessment of various aspects of the device 1100. For example, the sensor component 1111 can detect the on / off state of the device 1100, the relative positioning of components, such as the display and the keypad of the device 1100. The sensor component 1111 can also detect a change in the position of the device 1100 or a component of the device 1100, the presence or absence of user contact with the device 1100, the orientation or acceleration / deceleration of the device 1100, and the temperature change of the device 1100. The sensor component 1111 can include a proximity sensor that is configured to detect the presence of nearby objects without any physical contact. The sensor component 1111 can also include a light sensor, such as a CMOS or a CCD image sensor, for use in imaging applications. In some embodiments, the sensor component 1111 can further include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.
[0267] The communication component 1116 is configured to facilitate communication between the device 1100 and other devices in a wired or wireless manner. The device 1100 can access a communication standard-based wireless network, such as WiFi, 2G, or 3G, or a combination thereof. In an exemplary embodiment, the communication component 1116 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 1116 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.
[0268] In an exemplary embodiment, the device 1100 can 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 linkage control method of the above device.
[0269] In an exemplary embodiment, a non-transitory computer-readable storage medium including instructions is also provided, such as a first memory 1104 including instructions, and the above instructions can be executed by a processor 1120 of the device 1100 to complete the linkage control method of the above device. For example, the non-transitory computer-readable storage medium can be a ROM, Random Access Memory (RAM), CD-ROM, magnetic tape, floppy disk, and optical data storage device, etc.
[0270] In another exemplary embodiment, a computer program product is also provided, and 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 linkage control method of the above device when executed by the programmable device.
[0271] Figure 12 is a block diagram of a linkage control device 1200 of a device shown according to an exemplary embodiment. For example, the device 1200 can be provided as a server. Referring to Figure 12 , the device 1200 includes a second processing component 1222, which further includes one or more processors, and memory resources represented by a second memory 1232 for storing instructions executable by the second processing component 1222, such as application programs. The application programs stored in the second memory 1232 can include one or more modules each corresponding to a set of instructions. In addition, the second processing component 1222 is configured to execute instructions to perform the linkage control method of the above device.
[0272] The apparatus 1200 may further include a second power supply component 1226 configured to perform power management of the apparatus 1200, a wired or wireless network interface 1250 configured to connect the apparatus 1200 to a network, and a second input / output interface 1258. The apparatus 1200 may operate based on an operating system stored in the second memory 1232.
Claims
1. A method for interlocking control of a device, characterized in that, Including: In response to a triggering operation of a user on an operation panel, controlling the linkage between a target inner ring temperature of an air conditioner and a first air supply intensity of an air circulation device; wherein, the air conditioner and the air circulation device are located 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 operation data of the air conditioner and / or the air circulation device, the operation data includes an operation mode and / or operation parameters, and the target inner ring temperature is a target indoor environment temperature in the space.
2. The method according to claim 1, wherein The display interface includes an air flow management interface, and the air flow management interface includes a linkage temperature control control; the controlling the linkage between the target inner ring temperature of the air conditioner and the first air supply intensity of the air circulation device in response to a triggering operation of the user on the operation panel includes: In response to a triggering operation on the linkage temperature control control, controlling the linkage between the target inner ring temperature and the first air supply intensity.
3. The method according to claim 2, wherein The method further includes: In response to a closing operation on the linkage temperature control control, controlling the target inner ring temperature and the first air supply intensity to stop linkage.
4. The method according to claim 1, characterized in that The controlling the linkage between the target inner ring temperature of the air conditioner and the first air supply intensity of the air circulation device includes: Linkage-adjusting the target inner ring temperature according to the first air supply intensity.
5. The method according to claim 4, characterized in that, The linkage-adjusting the target inner ring temperature of the air conditioner according to the first air supply intensity of the air circulation device includes: Correcting a set inner ring temperature of the air conditioner according to the first air supply intensity to obtain the target inner ring temperature; the set inner ring temperature is an indoor environment temperature initially set on the air conditioner.
6. The method according to claim 5, characterized in that, The modes of correcting the set inner ring temperature include a first correction mode, a second correction mode and a third correction mode; the correcting the set inner ring temperature of the air conditioner according to the first air supply intensity to obtain the target inner ring temperature includes: In the first correction mode, the second correction mode or the third correction mode, obtaining a correction temperature according to the first air supply intensity; Obtaining the target inner ring temperature according to the correction temperature and the set inner ring temperature.
7. The method according to claim 6, characterized in that, In the first correction mode and when the air circulation device is in a non-natural wind mode, different first air supply intensities correspond to different correction temperatures; In the first correction mode and when the air circulation device is in a natural wind mode, different first air supply intensities correspond to different correction temperatures, or different first air supply intensities correspond to the same correction temperature.
8. The method according to claim 7, wherein There is a positive correlation between the different first air supply intensities and the different correction temperatures, and the correction temperature is a predefined temperature.
9. The method according to claim 6, characterized in that, The obtaining the correction temperature according to the first air supply intensity includes: In the second correction mode, obtaining the correction temperature according to the first air supply intensity and a first correction function when the air conditioner is in a direct blowing mode; or, obtaining the correction temperature according to the first air supply intensity and a second correction function when the air conditioner is in a non-direct blowing mode; Wherein, the correction temperature obtained based on the second correction function is less than the correction temperature obtained based on the first correction function.
10. The method according to claim 9, wherein The method further includes: Obtain the second correction function according to the correction coefficient and the first correction function.
11. The method according to claim 9, wherein When the air conditioner is in the direct blowing mode, the corresponding air circulation device is in the non-natural wind mode; when the air conditioner is in the non-direct blowing mode, the corresponding air circulation device is in the natural wind mode.
12. The method according to any one of claims 9 to 11, characterized in that The influencing factors of the first correction function and the second correction function both include: the real-time outer ring temperature outside the space, the real-time inner ring temperature inside the space, the set inner ring temperature, the first air supply intensity, and the second air supply intensity of the air conditioner.
13. The method according to claim 6, characterized in that, In the third correction mode, the corrected temperature is the temperature configured by the user, and the corrected temperature is within the preset correction range.
14. The method according to claim 5, characterized in that, The correcting the set inner ring temperature of the air conditioner according to the first air supply intensity to obtain the target inner ring temperature includes: When the running duration of the air conditioner is greater than the preset duration and / or the real-time inner ring temperature inside the space is less than the target value, correct the set inner ring temperature according to the first air supply intensity to obtain the target inner ring temperature; wherein, the target value is obtained according to the set inner ring temperature and the preset temperature difference.
15. The method according to claim 6, wherein The display interface includes a setting interface, and the setting interface includes an associated temperature control setting interface for displaying the corresponding relationship between the first air supply intensity and the corrected temperature; the method further includes: In response to a configuration operation on the corrected temperature, display a first corresponding relationship on the associated temperature control setting interface; the first corresponding relationship is the corresponding relationship between the first air supply intensity and the adjusted corrected temperature.
16. The method according to claim 15, wherein The setting interface further includes a restoration control; the method further includes: In response to a trigger operation on the restoration control, control the corresponding relationship between the first air supply intensity and the corrected temperature to be restored from the first corresponding relationship to a second corresponding relationship; the second corresponding relationship is the corresponding relationship in the first correction mode or the second correction mode.
17. The method according to claim 2, wherein The air flow management interface further includes an associated air supply control; the method further includes: In response to a trigger operation on at least one target control among the associated air supply control and the associated temperature control, control the air conditioner and the air circulation device to execute the associated mode corresponding to the at least one target control.
18. The method according to claim 17, wherein The display interface further includes a setting interface, and the setting interface includes a wind speed association control, a swing association control, and a wind feeling association control; the method further includes: When at least one target air supply control among the wind speed association control, the swing association control, and the wind feeling association control is triggered, in response to a trigger operation on the associated air supply control, control the air conditioner and the air circulation device to execute the associated mode corresponding to the at least one target air supply control.
19. The method according to claim 2, wherein The air flow management interface further includes a wind speed association control, a swing association control, and a wind feeling association control; the method further includes: In response to a trigger operation on at least one target control among the wind speed association control, the swing association control, the wind feeling association control, and the associated temperature control, control the air conditioner and the air circulation device to execute the associated mode corresponding to the at least one target control.
20. The method according to claim 1, characterized in that, Controlling the target inner loop temperature of the air conditioner to be linked with the first air supply intensity of the air circulation device in response to a triggering operation by the user on the operation panel includes: When the air conditioner is connected to the air circulation device to the network, in response to a triggering operation by the user on the operation panel, controlling the target inner loop temperature to be linked with the first air supply intensity.
21. A linkage control device for a device, characterized in that, A linkage control method for implementing the device according to any one of claims 1 to 20, the device including: A linkage control module configured to control the target inner loop temperature of the air conditioner to be linked with the first 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 located 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, the operation data includes an operation mode and / or operation parameters, and the target inner loop temperature is the target indoor environment temperature in the space.
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 steps of 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, it implements the steps of the method according to any one of claims 1 to 20.
24. A computer program product, characterized in that, Including a computer program which, when executed by the processor, implements the steps of the method according to any one of claims 1 to 20.
Citation Information
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