WO2017181662A1 - 家电设备的联动控制方法和系统、服务器 - Google Patents

家电设备的联动控制方法和系统、服务器 Download PDF

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Publication number
WO2017181662A1
WO2017181662A1 PCT/CN2016/106149 CN2016106149W WO2017181662A1 WO 2017181662 A1 WO2017181662 A1 WO 2017181662A1 CN 2016106149 W CN2016106149 W CN 2016106149W WO 2017181662 A1 WO2017181662 A1 WO 2017181662A1
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WO
WIPO (PCT)
Prior art keywords
air conditioner
fan
server
instruction
user
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Application number
PCT/CN2016/106149
Other languages
English (en)
French (fr)
Inventor
刘锦泉
潘新运
何惠仪
Original Assignee
广东美的环境电器制造有限公司
美的集团股份有限公司
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Application filed by 广东美的环境电器制造有限公司, 美的集团股份有限公司 filed Critical 广东美的环境电器制造有限公司
Publication of WO2017181662A1 publication Critical patent/WO2017181662A1/zh

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D27/00Control, e.g. regulation, of pumps, pumping installations or pumping systems specially adapted for elastic fluids
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/30Control or safety arrangements for purposes related to the operation of the system, e.g. for safety or monitoring
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • F24F11/65Electronic processing for selecting an operating mode
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B30/00Energy efficient heating, ventilation or air conditioning [HVAC]
    • Y02B30/70Efficient control or regulation technologies, e.g. for control of refrigerant flow, motor or heating

Definitions

  • the present invention relates to the field of intelligent control technologies, and in particular, to a linkage control method for a home appliance device, a home appliance linkage control system, and a server.
  • the linkage control between household appliances is gradually increasing. For example, when the user gets up at 8 in the morning, the curtains and windows will automatically open, and then the speakers in the living room will be turned on for a while.
  • the rear air conditioner is also turned off, etc.
  • the linkage control in the related art mainly controls the sequence of opening and closing of the home appliance setting, and the linkage effect is not ideal.
  • an object of the present invention is to provide a linkage control method for a household electrical appliance, which can perform linkage control of an air conditioner and a fan according to current environmental parameters and scene instructions, thereby achieving rapid air circulation and rapid cooling, and maintaining a comfortable and energy-saving manner. , livable, less intelligent and comfortable environment.
  • Another object of the present invention is to provide a home appliance linkage control system.
  • Yet another object of the present invention is to provide a server.
  • an embodiment of the present invention provides a linkage control method for a home appliance, the home appliance including an air conditioner and a fan, the method comprising the steps of: receiving a user instruction, wherein the user instruction includes a linkage instruction and a scenario instruction; the server establishes a linkage relationship between the air conditioner and the fan according to the linkage instruction; the server acquires current environmental parameters of an environment in which the air conditioner and the fan are located, and according to the The current environment parameter and the scene instruction generate a control command to perform linkage control on the air conditioner and the fan.
  • the user instruction is first received, including the linkage instruction and the scene instruction, and then the server establishes a linkage relationship between the air conditioner and the fan according to the linkage instruction, and acquires an environment in which the air conditioner and the fan are located.
  • control terminal receives the user instruction, the control terminal transmitting the user instruction to the server by communicating with the server.
  • the server receives current environmental parameters detected by the air conditioner and/or the fan, or the server acquires current environmental parameters of the environment in which the air conditioner and the fan are located through the Internet .
  • the current environmental parameter includes an indoor ambient temperature
  • the generating a control instruction according to the current environmental parameter and the scene instruction to perform linkage control on the air conditioner and the fan includes: Determining, according to the scenario instruction, that the user is in a bedroom and entering a sleep state, determining the indoor ambient temperature; if the indoor ambient temperature is greater than or equal to a first temperature threshold, controlling the air conditioner to enter a sleep operation mode Cooling operation at a first set temperature while controlling the fan to enter a sleep wind mode and shaking the head at a first set angle; if the indoor ambient temperature is less than the first temperature threshold and greater than or equal to a second temperature threshold, then controlling The air conditioner enters a sleep operation mode and performs cooling operation at a first set temperature while controlling the fan to be in a closed state; if the indoor ambient temperature is less than the second temperature threshold and greater than or equal to a third temperature threshold, then controlling The air conditioner is in a closed state while controlling the fan to enter a sleep wind mode and A first set angle
  • the current environmental parameter includes an indoor ambient temperature
  • the generating a control instruction according to the current environmental parameter and the scene instruction to perform linkage control on the air conditioner and the fan includes: Determining, according to the scenario instruction, that the user is in a living room, determining the indoor ambient temperature; if the indoor ambient temperature is greater than or equal to the first temperature threshold, controlling the air conditioner to perform a second set temperature cooling operation, Simultaneously controlling the fan to operate in a first preset gear position of the normal wind and shaking the head at a first set angle; if the indoor ambient temperature is less than the first temperature threshold and greater than or equal to a third temperature threshold, controlling the The air conditioner operates at a first set temperature while the fan is in a closed state, wherein the first set temperature is less than the second set temperature; if the indoor ambient temperature is less than the third temperature a threshold, the air conditioner is controlled to be in a closed state, and the fan is controlled to operate in a second preset gear position of the normal wind, and Moving
  • the household electrical appliance further includes a humidifier and an air purifier, the humidifier transmitting the detected current indoor environmental humidity to the server, the air purifier to detect the current indoor
  • the air quality information is sent to the server, and the server controls the humidifier and the current indoor environment humidity and the current indoor air quality information while performing linkage control on the air conditioner and the fan.
  • the air purifier performs linkage control.
  • the server further acquires a video image of the environment in which the air conditioner and the fan are located, and pushes the video image to the control terminal for playing.
  • the linkage control method of the home appliance further includes: monitoring a physiological parameter of the user, and transmitting the physiological parameter of the user to the server; the server according to the user The physiological parameter adjusts the control command.
  • another embodiment of the present invention provides a home appliance linkage control system, including an air conditioner, a fan, and a server, wherein the server is configured to establish the according to a linkage instruction in a received user instruction. a linkage relationship between the air conditioner and the fan; the server is further configured to acquire current environmental parameters of the environment in which the air conditioner and the fan are located, and according to the current environment parameter and a scenario in the user instruction The command generates a control command to perform linkage control on the air conditioner and the fan.
  • the linkage relationship between the air conditioner and the fan is established by the server according to the linkage instruction in the received user instruction, and the current environmental parameters of the environment in which the air conditioner and the fan are located are obtained, and According to the current environmental parameters and the scene instructions in the user instruction, control commands are generated to control the air conditioner and the fan, thereby achieving rapid air circulation and rapid cooling, and maintaining a comfortable, energy-saving, livable, and less interactive intelligent and comfortable environment space.
  • the home appliance linkage control system further includes a control terminal, the control terminal is configured to receive the user instruction, and send the user instruction to the server by communicating with the server Said server.
  • the server receives current environmental parameters detected by the air conditioner and/or the fan, or the server acquires current environmental parameters of the environment in which the air conditioner and the fan are located through the Internet .
  • the current environmental parameter includes an indoor ambient temperature
  • the server determines, according to the scenario instruction, that the user is in a bedroom and enters a sleep state, determining the indoor ambient temperature
  • the indoor environment temperature is greater than or equal to the first temperature threshold
  • the server controls the air conditioner to enter the sleep operation mode and perform cooling operation at the first set temperature, while controlling the fan to enter the sleep wind mode and shaking the head at the first set angle
  • the server controls the air conditioner to enter a sleep operation mode and perform cooling operation at a first set temperature while controlling the fan In a closed state
  • the indoor ambient temperature is less than the second temperature threshold and greater than or equal to a third temperature threshold
  • the server controls the air conditioner to be in a closed state while controlling the fan to enter a sleep wind mode and Shake the head at a set angle
  • the indoor ambient temperature is less than the third temperature Value
  • the server control the air conditioner and the fan are turned
  • the current environmental parameter includes an indoor ambient temperature
  • the server determines, according to the scenario instruction, that the user is in a living room, and determines the indoor ambient temperature; if the indoor ambient temperature is greater than Equal to the first temperature threshold, the server controls the air conditioner to perform the cooling operation at the second set temperature, while controlling the fan to operate in the first preset gear position of the normal wind, and shaking the head at the first set angle;
  • the indoor environment temperature is less than the first temperature threshold and greater than or equal to a third temperature threshold, and the server controls the air conditioner to perform a cooling operation at a first set temperature, while controlling the fan to be in a closed state, wherein
  • the first set temperature is less than the second set temperature; if the indoor ambient temperature is less than the third temperature threshold, the server controls the The air conditioner is in a closed state, and controls the fan to operate in a second preset gear position of the normal wind and shakes the head at a first set angle, wherein the second preset gear position is smaller than the first preset gear position
  • the home appliance linkage control system further includes a humidifier and an air purifier, the humidifier transmitting the detected current indoor environmental humidity to the server, the air purifier detecting The current indoor air quality information is sent to the server, and the server performs linkage control on the air conditioner and the fan, and according to the current indoor environment humidity and the current indoor air quality information The humidifier and the air purifier perform linkage control.
  • the server is further configured to acquire a video image of the environment in which the air conditioner and the fan are located, and push the video image to the control terminal for playing.
  • the home appliance linkage control system further includes a monitoring device, wherein the monitoring device is configured to monitor physiological parameters of the user, and send the physiological parameters of the user to the server.
  • the server adjusts the control command according to the physiological parameter of the user.
  • an embodiment of the present invention provides a server, including: an obtaining module, configured to acquire a user instruction, where the user instruction includes a linkage instruction and a scene instruction; and a communication module, configured to The linkage instruction establishes a communication connection with the air conditioner and the fan, respectively, to establish a linkage relationship between the air conditioner and the fan; and a processing module, configured to acquire a current environment of the air conditioner and the fan An environmental parameter, and generating a control instruction according to the current environmental parameter and the scene instruction to perform linkage control on the air conditioner and the fan.
  • the user module obtains a user instruction, including a linkage instruction and a scene instruction
  • the communication module establishes a communication connection with the air conditioner and the fan according to the linkage instruction to establish linkage between the air conditioner and the fan.
  • the processing module obtains the current environmental parameters of the environment in which the air conditioner and the fan are located, and generates control commands according to the current environmental parameters and scene instructions to perform linkage control on the air conditioner and the fan, thereby achieving rapid air circulation and rapid cooling, and maintaining a comfortable state. Energy-saving, livable, and less intelligent and comfortable environment.
  • the acquisition module acquires the user instruction by communicating with the control terminal.
  • the processing module receives the current environmental parameter detected by the air conditioner and/or the fan, or the processing module acquires the current environment of the air conditioner and the environment where the fan is located through the Internet. Environmental parameters.
  • the current environmental parameter includes an indoor ambient temperature
  • the processing module determines, according to the scenario instruction, that the user is in a bedroom and enters a sleep state, and determines the indoor ambient temperature
  • the indoor environment temperature is greater than or equal to the first temperature threshold, and the processing module controls the air conditioner to enter a sleep operation mode and perform cooling operation at a first set temperature, while controlling the fan to enter a sleep wind mode and set the first setting Corner Shaking the head; if the indoor ambient temperature is less than the first temperature threshold and greater than or equal to the second temperature threshold, the processing module controls the air conditioner to enter a sleep operation mode and perform cooling operation at a first set temperature while controlling The fan is in a closed state; if the indoor ambient temperature is less than the second temperature threshold and greater than or equal to a third temperature threshold, the processing module controls the air conditioner to be in a closed state while controlling the fan to enter a sleep wind The mode is to shake the head at a first set angle; if the indoor ambient temperature is less than the third temperature threshold
  • the current environmental parameter includes an indoor ambient temperature
  • the processing module determines, according to the scenario instruction, that the user is in a living room, and determines the indoor ambient temperature; if the indoor ambient temperature And greater than or equal to the first temperature threshold, the processing module controls the air conditioner to perform the cooling operation at the second set temperature, while controlling the fan to operate in the first preset gear position of the normal wind, and shaking the head at the first set angle
  • the processing module controls the air conditioner to perform a cooling operation at a first set temperature while controlling the fan to be in a closed state, The first set temperature is less than the second set temperature; if the indoor ambient temperature is less than the third temperature threshold, the processing module controls the air conditioner to be in a closed state while controlling the The fan runs in a second preset gear position of the normal wind and shakes the head at a first set angle, wherein the second preset gear position is smaller than the first Preset
  • the processing module further acquires current indoor environment humidity and current indoor air quality information, and according to the current indoor environment humidity and the linkage control of the air conditioner and the fan
  • the current indoor air quality information is linked to the humidifier and the air purifier.
  • the processing module further acquires a video image of the environment in which the air conditioner and the fan are located, and pushes the video image to the control terminal for playing.
  • the processing module further acquires physiological parameters of the user, and adjusts the control instruction according to physiological parameters of the user.
  • FIG. 1 is a flow chart of a method of linkage control of a household electrical appliance according to an embodiment of the present invention.
  • 2 to 3 are APP program interfaces of home appliance linkage control according to an embodiment of the present invention.
  • FIG. 4 is a schematic structural diagram of a home appliance linkage control system according to an embodiment of the present invention.
  • FIG. 5 is a schematic structural diagram of a home appliance linkage control system according to another embodiment of the present invention.
  • FIG. 6 is a schematic structural diagram of a home appliance linkage control system according to still another embodiment of the present invention.
  • FIG. 7 is a schematic structural diagram of a server according to an embodiment of the present invention.
  • a linkage control method for a household electrical appliance, a home appliance linkage control system, and a server according to an embodiment of the present invention will be described below with reference to the accompanying drawings.
  • FIG. 1 is a flowchart of a linkage control method of a household electrical appliance according to an embodiment of the present invention, wherein the household electrical appliance includes an air conditioner and a fan. As shown in FIG. 1 , the linkage control method of the household electrical appliance includes the following steps:
  • control terminal transmits a user instruction to the server by communicating with the server by receiving a user instruction by the control terminal.
  • the server establishes a linkage relationship between the air conditioner and the fan according to the linkage instruction.
  • the control terminal such as a mobile phone, a tablet computer, a personal computer, etc.
  • the control terminal can first establish communication with the server through the Internet, and then the user controls the APP in the terminal (Application, application).
  • the program sends a linkage command to the server, and after receiving the linkage instruction, the server communicates with the fan and the air conditioner through the Internet respectively to establish a linkage relationship between the air conditioner and the fan.
  • the server feeds back the linkage success signal to the control terminal for display, and then the user selects a scene according to his own needs, for example, the user sleeps in the bedroom or the user just returns home, after the selection is completed, the control terminal will The scene instructions corresponding to the selected scene are sent to the server.
  • the server obtains current environmental parameters of the environment in which the air conditioner and the fan are located, and generates a control instruction according to the current environmental parameter and the scene instruction to perform linkage control on the air conditioner and the fan.
  • the server acquires current environmental parameters of the environment in which the air conditioner and the fan are located, such as indoor ambient temperature, indoor environmental humidity, and indoor air quality, and then the server according to the acquired current environmental parameters and scene instructions. Generate control commands to control the air conditioner and fan in linkage.
  • the current environment parameter, the scene instruction, the home appliance, and the control instruction corresponding to the home appliance may be correspondingly stored in the server.
  • the server obtains the corresponding home appliance by using the query according to the current environment parameter and the scene instruction.
  • the corresponding control command of the household electrical appliance and then the server controls the corresponding household electrical appliance according to the control instruction, including the opening and closing of the fan, the wind speed of the fan, the shaking angle of the fan, the opening and closing of the air conditioner, and the wind speed of the air conditioner, etc., thereby
  • the scene is used to control the fan and air conditioner in combination to accelerate the rapid circulation of air, rapid cooling, etc., and to turn on or off the fan or air conditioner under suitable indoor ambient temperature and humidity conditions, not only to ensure user comfort. To enhance the user experience and achieve energy saving.
  • the server receives current environmental parameters detected by the air conditioner and/or the fan, or the server obtains current environmental parameters of the environment in which the air conditioner and the fan are located via the Internet.
  • the server may use the current environmental parameter detected by the air conditioner as the current environmental parameter of the linkage control, or the current environmental parameter detected by the fan as the current environmental parameter of the linkage control, or the current environmental parameter detected by the air conditioner and
  • the current environmental parameters detected by the fan are used as the current environmental parameters of the linkage control, and the current environmental parameters of the environment in which the air conditioner and the fan are located can also be obtained through the Internet.
  • the current environment parameter includes an indoor environment temperature, and generating a control instruction according to the current environment parameter and the scene instruction to perform linkage control on the air conditioner and the fan, including: determining, by the server according to the scene instruction, that the user is in the bedroom and entering a sleep state Determining the indoor ambient temperature; if the indoor ambient temperature is greater than or equal to the first temperature threshold, controlling the air conditioner to enter the sleep operation mode and cooling operation at the first set temperature, while controlling the fan to enter the sleep wind mode and shaking the head at the first set angle If the indoor ambient temperature is less than the first temperature threshold and greater than or equal to the second temperature threshold, the air conditioner is controlled to enter the sleep operation mode and is cooled at the first set temperature while controlling the fan to be in a closed state; if the indoor ambient temperature is less than the second The temperature threshold is greater than or equal to the third temperature threshold, the air conditioner is controlled to be in a closed state, and the fan is controlled to enter the sleep wind mode and shakes the head at a first set angle;
  • the current environment parameter includes an indoor environment temperature, and generating a control instruction according to the current environment parameter and the scene instruction to perform linkage control on the air conditioner and the fan, including: determining, by the server according to the scene instruction, that the user is in the living room, determining the indoor environment Temperature; if the indoor ambient temperature is greater than or equal to the first temperature threshold, controlling the air conditioner to perform cooling operation at the second set temperature, while controlling the fan to operate in the first preset gear position of the normal wind, and shaking the head at the first set angle; If the indoor ambient temperature is less than the first temperature threshold and greater than or equal to the third temperature threshold, the air conditioner is controlled to The first set temperature is cooled and operated, and the fan is controlled to be in a closed state, wherein the first set temperature is less than the second set temperature; if the indoor ambient temperature is less than the third temperature threshold, the air conditioner is controlled to be in a closed state, and the fan is controlled Operate in the second preset position of the normal wind and shake the head at
  • the second preset gear position is smaller than the first preset gear position, and the second set temperature, the first preset gear position and the second preset gear position can be set according to user requirements. The details are shown in Table 2.
  • the household electrical appliance further includes a humidifier and an air purifier, the humidifier transmitting the detected current indoor environmental humidity to the server, and the air purifier transmitting the detected current indoor air quality information to the server, the server While the air conditioner and the fan are controlled in linkage, the humidifier and the air purifier are controlled in linkage according to the current indoor environment humidity and the current indoor air quality information.
  • the corresponding household electrical appliances such as a humidifier and an air purifier
  • the server can receive the current indoor environmental humidity detected by the humidifier, and receive the current indoor air quality information detected by the air purifier, and then according to the current indoor environmental humidity and the current indoor air quality.
  • the information is linked to the humidifier and the air purifier.
  • the humidifier when the indoor environment humidity is less than the first humidity threshold, the humidifier is controlled to operate at the first set humidity; and when the indoor environment humidity is greater than or equal to the second humidity threshold, the humidifier is controlled to be turned off.
  • the indoor air quality information such as PM2.5 (fine particles)
  • the purifier is controlled to be turned on; when the indoor air quality information such as PM2.5 is less than the second air quality threshold, the purifier is controlled to be turned off.
  • the first humidity threshold is greater than the second humidity threshold
  • the first air quality threshold is greater than the second air quality threshold
  • the first to second humidity thresholds, the first set humidity, and the first to second air quality thresholds may be according to user requirements. set up.
  • the air conditioner Before the user needs the air conditioner and fan linkage control, the air conditioner can be activated by a two-dimensional code or a barcode, etc., and the model of the air conditioner that may be linked with the fan is stored in the control terminal.
  • the user can first turn on the fan and the air conditioner through the remote controller, or can communicate with the smart switch disposed at the power end of the fan and the air conditioner through the control terminal to open the fan and the air conditioner through the smart switch. The device is turned on.
  • the user can select the air conditioner that needs linkage control by clicking “Select Air Conditioning Device” in the air conditioning bar, as shown in FIG. 3, in the pop-up air conditioner selection list window.
  • the model of the air conditioner that can be controlled by linkage is displayed.
  • the air conditioner selection list window will display “No linkage air conditioner is found, and the use of the linkage function requires the use of a beautiful smart air conditioner”. It is forbidden to start the linkage control function, and the linkage bar will display “First associated air conditioner”.
  • the server After receiving the linkage instruction, the server establishes a communication connection with the air conditioner and the fan through the Internet to establish a linkage relationship between the air conditioner and the fan. If the linkage relationship is successfully established, the server feeds back the linkage success signal to the control terminal for display. As shown in FIG. 2, “KFR-35GW is connected” is displayed; if the linkage relationship is not successfully established, the server feeds back the linkage failure signal to The control terminal, such as "Unconnected air conditioner linkage” is displayed, to remind the user, at this time, the user can cancel the linkage control by clicking the "Cancel" button.
  • the control terminal sends the scene instruction corresponding to the scene selected by the user to the server.
  • the server receives the current environmental parameters detected by the air conditioner and/or the fan, or obtains the current environmental parameters of the environment in which the air conditioner and the fan are located through the Internet. Then, according to the current environmental parameters and the scene instruction, the server controls the fan and the air conditioner according to the linkage rule corresponding to Table 3, so that the information exchange, mutual understanding, and mutual control between the air conditioner and the fan are realized, and the air is quickly realized. Cycle, cool down quickly, and maintain a comfortable, energy-saving, livable, less interventional smart and comfortable environment, greatly improving the user experience.
  • the server During the linkage control process, if the fan or the air conditioner has abnormal conditions such as power failure, the server also feeds back the abnormal state information to the control terminal to remind the user, so that the user can know the current linkage control state in time.
  • the linkage control can be turned off by the "close" button of the linkage bar.
  • the fan and the air conditioner are in a linked state, if the user closes the APP program, the user is also reminded.
  • one fan can link one air conditioner, and one air conditioner can link multiple fans.
  • the server When the linkage control is turned on and off, the server also synchronizes the linkage state to the air conditioner.
  • the air conditioner stores the model and related information of the currently connected fan according to the list form. Control, delete the model and related information of the fan.
  • the server further acquires a video image of the environment in which the air conditioner and the fan are located, and pushes the video image to the control terminal for playing.
  • the video image of the environment in which the air conditioner and the fan are located can be obtained by the camera, and then the video image is sent to the server through the Internet.
  • the server After processing the video image information, the server sends the video image to the control terminal, and the user can Play the video image. For example, when the user is not at home, the user can check the sleep situation of the child in the home, etc., so that the user is more assured.
  • data such as user sleep state and sleep quality are transmitted to the control terminal by face recognition technology.
  • the linkage control method of the home appliance further includes: monitoring a physiological parameter of the user, and transmitting the physiological parameter of the user to the server; and the server adjusting the control instruction according to the physiological parameter of the user.
  • the physiological parameters of the user may be monitored by the sense of body, including the user's body temperature, posture, expression, and urgency, and then the physiological parameters of the user are sent to the server, and the server adjusts the air conditioner and the wind according to the physiological parameters of the user.
  • the fan and the air conditioner can be adjusted according to the physiological parameters of the user, thereby providing the user with a comfortable and quiet indoor environment, thereby improving the user's sleep quality and sleep time.
  • the linkage control method of the household electrical appliance first receives a user instruction, including a linkage instruction and a scene instruction, and then the server establishes a linkage relationship between the air conditioner and the fan according to the linkage instruction, and acquires an air conditioner and The current environmental parameters of the environment in which the fan is located, and the generation of control commands according to the current environmental parameters and scene commands to control the air conditioner and the fan, thereby achieving rapid air circulation and rapid cooling, and maintaining a comfortable, energy-saving, livable, and less intervention. Smart and comfortable environment space.
  • the home appliance linkage control system includes an air conditioner 10, a fan 20, and a server 30.
  • the server 30 is configured to establish a linkage relationship between the air conditioner 10 and the fan 20 according to the linkage instruction in the received user instruction, and obtain current environment parameters of the environment in which the air conditioner 10 and the fan 20 are located, and according to current environmental parameters.
  • the scene command in the user command generates a control command to perform linkage control of the air conditioner 10 and the fan 20.
  • the above-described home appliance linkage control system further includes a control terminal 40 for receiving user commands and transmitting user instructions to the server 30 by communicating with the server 30.
  • the control terminal 40 (such as a mobile phone, a tablet computer, a personal computer, etc.) may first establish communication with the server 30 via the Internet, and then the user passes through the control terminal 40.
  • the APP program sends a linkage command to the server 30.
  • the server 30 After receiving the linkage command, the server 30 communicates with the fan 20 and the air conditioner 10 via the Internet to establish a linkage relationship between the air conditioner 10 and the fan 20.
  • the server 30 feeds back the linkage success signal to the control terminal 40 for display, and then the user selects a scene according to his own needs, for example, the user sleeps in the bedroom or the user just returns home, after the selection is completed.
  • the control terminal 40 transmits the scene instruction corresponding to the selected scene to the server 30.
  • the server 30 After the server 30 receives the scene instruction, the server 30 acquires current environmental parameters of the environment in which the air conditioner 10 and the fan 20 are located, such as indoor ambient temperature, indoor environmental humidity, indoor air quality, etc., and then the server 30 according to the acquired current environmental parameters and The scene command generates a control command to perform linkage control of the air conditioner 10 and the fan 20.
  • the current environment parameter, the scene command, the home appliance, and the control command corresponding to the home appliance may be correspondingly stored in the server 30.
  • the server 30 After receiving the scenario command, the server 30 acquires the corresponding home appliance according to the current environment parameter and the scenario command by using a query or the like.
  • the device and the home appliance correspond to the control command, and then the server 30 controls the corresponding home appliance according to the control command, including the opening and closing of the fan 20, the wind speed of the fan 20, the shaking angle of the fan 20, the opening and closing of the air conditioner 10, and the air conditioner.
  • the wind speed of 10, etc., to control the fan and the air conditioner according to the user's use scene to accelerate the rapid circulation of the air, rapidly cool down, etc., and turn the fan or air conditioner on and off under suitable indoor ambient temperature and humidity conditions. , not only to ensure the user's comfort, enhance the user experience, but also to reach the festival The purpose of energy.
  • server 30 receives current environmental parameters detected by air conditioner 10 and/or fan 20, or server 30 obtains current environmental parameters of the environment in which air conditioner 10 and fan 20 are located via the Internet.
  • the current environmental parameter includes an indoor ambient temperature
  • the server 30 determines that the user is in the bedroom according to the scene instruction and enters a sleep state, and determines the indoor ambient temperature; if the indoor ambient temperature is greater than or equal to The first temperature threshold, the server 30 controls the air conditioner 10 to enter the sleep operation mode and performs the cooling operation at the first set temperature, while controlling the fan 20 to enter the sleep wind mode and shake the head at the first set angle; if the indoor ambient temperature is less than the first The temperature threshold is greater than or equal to the second temperature threshold, and the server 30 controls the air conditioner 10 to enter the sleep operation mode and performs the cooling operation at the first set temperature while controlling the fan 20 to be in the off state; if the indoor ambient temperature is less than the second temperature threshold and greater than Equal to the third temperature threshold, the server 30 controls the air conditioner 10 to be in the off state, while controlling the fan 20 to enter the sleep wind mode and shaking the head at the first set angle; if the indoor ambient temperature is less than the
  • the current environmental parameter includes an indoor ambient temperature
  • the server 30 determines that the user is in the living room according to the scene instruction, and determines the indoor ambient temperature; if the indoor ambient temperature is greater than or equal to the first temperature threshold
  • the server 30 controls the air conditioner 10 to perform the cooling operation at the second set temperature, while controlling the fan 20 to operate in the first preset gear position of the normal wind and shake the head at the first set angle; if the indoor ambient temperature is less than the first temperature threshold And greater than or equal to the third temperature threshold, the server 30 controls the air conditioner 10 to perform the cooling operation at the first set temperature, while controlling the fan 20 to be in a closed state, wherein the first set temperature is less than the second set temperature; if the indoor ambient temperature When the temperature is less than the third temperature threshold, the server 30 controls the air conditioner 10 to be in the off state, and controls the fan 20 to operate in the second preset gear position of the normal wind, and shakes the head at the first set angle, wherein the second preset gear
  • the above-mentioned household appliance linkage control system further includes a humidifier 50 and an air cleaner 60, and the humidifier 50 transmits the detected current indoor environmental humidity to the server 30, and the air
  • the purifier 60 transmits the detected current indoor air quality information to the server 30, and the server 30 controls the air conditioner 10 and the fan 20 in conjunction with the current indoor environment humidity and the current indoor air quality information to the humidifier 50 and
  • the air cleaner 60 performs linkage control.
  • the corresponding household electrical appliances such as the humidifier 50 and the air purifier 60
  • the server 30 may receive the current indoor environmental humidity detected by the humidifier 30, and receive the current indoor air quality information detected by the air purifier 60, and then according to the current indoor environmental humidity.
  • the current indoor air quality information controls the humidifier 50 and the air cleaner 60 in linkage. The details are shown in Table 3, and are not described here.
  • the air conditioner 10 Before the user needs the interlock control of the air conditioner 10 and the fan 20, the air conditioner 10 may be activated by a two-dimensional code or a barcode or the like, that is, the model number of the air conditioner 10 that may be linked with the fan 20 is stored in the control terminal 40.
  • the user may first turn on the fan 20 and the air conditioner 10 through the remote controller, or may communicate with the smart switch disposed at the power end of the fan 20 and the air conditioner 10 through the control terminal 40.
  • the fan 20 and the air conditioner 10 are turned on by the smart switch.
  • the user can select the air conditioner 10 that needs linkage control by clicking "select air conditioner" in the air conditioner bar, as shown in FIG.
  • the list window shows the model of the air conditioner 10 that can be controlled by linkage.
  • the air conditioner selection list window will display “No connected air conditioner is found, and the use of the linkage function requires the use of a beautiful smart air conditioner”, and the linkage control function is prohibited from being activated, and the linkage bar is prohibited.
  • the “Associate Air Conditioner First” will be displayed.
  • the server 30 After receiving the linkage command, the server 30 establishes a communication connection with the air conditioner 10 and the fan 20 through the Internet, respectively, to establish a linkage relationship between the air conditioner 10 and the fan 20. If the linkage relationship is successfully established, the server 30 feeds back the linkage success signal to the control terminal 40 for display. As shown in FIG. 2, “KFR-35GW is connected” is displayed; if the linkage relationship is not successfully established, the server 30 fails to link. The signal is fed back to the control terminal 40, for example, “Unconnected air conditioner linkage” is displayed to remind the user, and the user can cancel the linkage control by clicking the “Cancel” button.
  • the user selects the scene by clicking the scene bar.
  • the control terminal 40 sends the scene instruction corresponding to the scene selected by the user to the server 30.
  • the server 30 receives the current environmental parameters detected by the air conditioner 10 and/or the fan 20, or acquires current environmental parameters of the environment in which the air conditioner 10 and the fan 20 are located via the Internet. Then, the server 30 controls the fan 20 and the air conditioner 10 according to the current environment parameters and the scene instruction according to the linkage rule corresponding to the table 3, so that the information exchange, mutual understanding, and mutual control between the air conditioner 10 and the fan 20 are controlled. It realizes rapid circulation of air, rapid cooling, and maintains a comfortable and comfortable environment with comfortable, energy-saving, livable and less intervention, which greatly improves the user experience.
  • the server 30 During the linkage control process, if the fan 20 or the air conditioner 10 has an abnormal condition such as power failure, the server 30 also feeds back the abnormal state information to the control terminal 40 to remind the user so that the user can know the current linkage control state in time.
  • the linkage control can be turned off by the "close" button of the linkage bar.
  • the fan 20 and the air conditioner 10 are in a linked state, if the user closes the APP program, the user is also reminded.
  • one fan 20 can link one air conditioner 10, and one air conditioner 10 can link multiple fans 20.
  • the server 30 also synchronizes the linkage state to the air conditioner 10.
  • the air conditioner 10 When the air conditioner 10 is simultaneously linked with the plurality of fans 20, the air conditioner 10 will store in the form of a list. The model and related information of the currently connected fan 20, if the linkage control is cancelled, the model and related information of the fan 20 are deleted.
  • the server 30 is further configured to acquire video images of the environment in which the air conditioner 10 and the fan 20 are located, and push the video images to the control terminal 40 for playing.
  • the video image of the environment in which the air conditioner 10 and the fan 20 are located can be obtained by the image capturing device, and then the video image is sent to the server 30 through the Internet. After the server 30 processes the video image information, the video image is sent to the control terminal 40.
  • the user can play the video image as needed. For example, when the user is not at home, the user can check the sleep situation of the child in the home, etc., so that the user is more assured.
  • data such as the user's sleep state and sleep quality are transmitted to the control terminal 40 by the face recognition technology.
  • the home appliance linkage control system further includes a monitoring device 70 for monitoring physiological parameters of the user and transmitting the physiological parameters of the user to the server 30.
  • the server 30 adjusts the control commands in accordance with the physiological parameters of the user.
  • the physiological parameter of the user may be monitored by the body feeling detecting device, including the user's body temperature, posture, expression, and urgency, etc., and then the physiological parameter of the user is sent to the server 30, and the server 30 adjusts the air conditioner 10 according to the physiological parameter of the user.
  • the wind speed and angle of the fan 20, or the air conditioner 10 or the fan 20 are turned on and off, etc., for the purpose of self-adaptation.
  • the fan 20 and the air conditioner 10 can be adjusted according to the physiological parameters of the user, thereby providing the user with a comfortable and quiet indoor environment, thereby improving the user's sleep quality and sleep time.
  • the linkage control system of the household electrical appliance establishes a linkage relationship between the air conditioner and the fan according to the linkage instruction in the received user instruction, and acquires current environmental parameters of the environment in which the air conditioner and the fan are located, and according to The current environmental parameters and the scene instructions in the user command generate control commands to control the air conditioner and the fan in combination, thereby achieving rapid air circulation and rapid cooling, and maintaining a comfortable and comfortable environment that is comfortable, energy-saving, livable, and less intervention.
  • FIG. 7 is a schematic structural diagram of a server according to an embodiment of the present invention. As shown in FIG. 7, the server includes an acquisition module 101, a communication module 102, and a processing module 103.
  • the obtaining module 101 is configured to acquire a user instruction, where the user instruction includes a linkage instruction and a scene instruction.
  • the communication module 102 is configured to establish a communication connection with the air conditioner and the fan according to the linkage instruction to establish a linkage relationship between the air conditioner and the fan.
  • the processing module 103 is configured to obtain current environmental parameters of the environment in which the air conditioner and the fan are located, and generate control commands according to the current environmental parameters and the scene instructions to perform linkage control on the air conditioner and the fan.
  • the obtaining module 101 obtains a user instruction by communicating with the control terminal.
  • the control terminal (such as a mobile phone, a tablet computer, a personal computer, etc.) can first establish communication with the server through the Internet, and then the user controls the APP in the terminal.
  • the program sends a linkage command to the acquisition module 101.
  • the communication module 102 communicates with the fan and the air conditioner through the Internet to establish a linkage relationship between the air conditioner and the fan.
  • the processing module 103 feeds back the linkage success signal to the control terminal for display, and then the user selects a scene according to the needs of the user, for example, the user sleeps in the bedroom or the user just returns home, after the selection is completed, the control is performed.
  • the terminal sends the scenario instruction corresponding to the selected scenario to the acquiring module 101.
  • the processing module 103 After receiving the scene command, the processing module 103 acquires current environmental parameters of the environment in which the air conditioner and the fan are located, such as indoor ambient temperature, indoor environmental humidity, and indoor air quality, and then the processing module 103 according to the acquired current environmental parameters and scene instructions. Generate control commands to control the air conditioner and fan in linkage. For example, the current environment parameter, the scene instruction, the home appliance, and the control instruction corresponding to the home appliance may be correspondingly stored in advance in the database of the processing module 103. After receiving the scene instruction, the processing module 103 uses the query according to the current environment parameter and the scene instruction.
  • the method obtains a control instruction corresponding to the home appliance and the home appliance, and then the processing module 103 controls the corresponding home appliance according to the control instruction, including turning on and off of the fan, wind speed of the fan, shaking angle of the fan, opening and closing of the air conditioner, and air conditioning.
  • the wind speed of the device, etc., to control the fan and the air conditioner according to the user's use scene to accelerate the rapid circulation of the air, rapid cooling, etc., and to turn the fan or the air conditioner on and off under suitable indoor ambient temperature and humidity conditions. Not only can the user's comfort be ensured, the user experience can be improved, and energy saving can be achieved.
  • the processing module 103 receives current environmental parameters detected by the air conditioner and/or the fan, or the processing module 103 obtains current environmental parameters of the environment in which the air conditioner and the fan are located via the Internet.
  • the current environmental parameter includes an indoor ambient temperature
  • the processing module 103 determines that the user is in the bedroom according to the scene instruction and enters a sleep state, and determines the indoor ambient temperature; if the indoor ambient temperature is greater than Equal to the first temperature threshold, the processing module 103 controls the air conditioner to enter the sleep operation mode and operates at the first set temperature, while controlling the fan to enter the sleep wind mode and shaking the head at the first set angle; if the indoor ambient temperature is less than the first The temperature threshold is greater than or equal to the second temperature threshold, and the processing module 103 controls the air conditioner to enter the sleep operation mode and performs cooling operation at the first set temperature while controlling the fan to be in a closed state; if the indoor ambient temperature is less than the second temperature threshold and greater than or equal to The third temperature threshold, the processing module 103 controls the air conditioner to be in a closed state, while controlling the fan to enter the sleep wind mode and shaking the head at a first set angle; if the indoor ambient temperature is less than the
  • the current environmental parameter includes an indoor ambient temperature
  • the processing module 103 determines that the indoor environment temperature is determined when the user is in the living room according to the scene instruction; if the indoor ambient temperature is greater than or equal to the first temperature Threshold, the processing module 103 controls the air conditioner to perform the cooling operation at the second set temperature, and simultaneously controls the fan to operate in the first preset gear position of the normal wind and shakes the head at the first set angle; if the indoor ambient temperature is less than the first temperature threshold And greater than or equal to the third temperature threshold, the processing module 103 controls the air conditioner to operate at the first set temperature, the same The control fan is in a closed state, wherein the first set temperature is less than the second set temperature; if the indoor ambient temperature is less than the third temperature threshold, the processing module 103 controls the air conditioner to be in a closed state, and controls the fan to be in the normal wind second.
  • the preset gear is operated and shakes the head at a first set angle, wherein the second
  • the processing module 103 further acquires the current indoor environment humidity and the current indoor air quality information, and simultaneously controls the air conditioner and the fan, and humidifies according to the current indoor environment humidity and the current indoor air quality information.
  • the air conditioner is connected to the air purifier.
  • the corresponding household electrical appliances such as a humidifier and an air purifier
  • the processing module 103 can receive the current indoor environmental humidity detected by the humidifier, and receive the current indoor air quality information detected by the air purifier, and then according to the current indoor environmental humidity, the current indoor The air quality information is linked to the humidifier and the air purifier, as shown in Table 3, and will not be described here.
  • the air conditioner Before the user needs the air conditioner and fan linkage control, the air conditioner can be activated by a two-dimensional code or a barcode, etc., and the model of the air conditioner that may be linked with the fan is stored in the control terminal.
  • the user can first turn on the fan and the air conditioner through the remote controller, or can communicate with the smart switch disposed at the power end of the fan and the air conditioner through the control terminal to open the fan and the air conditioner through the smart switch. The device is turned on.
  • the user can select the air conditioner that needs linkage control by clicking “Select Air Conditioning Device” in the air conditioning bar, as shown in FIG. 3, in the pop-up air conditioner selection list window.
  • the model of the air conditioner that can be controlled by linkage is displayed.
  • the air conditioner selection list window will display “No connected air conditioner is found, and the use of the linkage function requires the use of a beautiful smart air conditioner”, and the linkage control function is prohibited from being activated, and the linkage bar will The display "Associate Air Conditioning First" is displayed.
  • the communication module 102 After receiving the linkage instruction, the communication module 102 establishes a communication connection with the air conditioner and the fan respectively through the Internet to establish a linkage relationship between the air conditioner and the fan. If the linkage relationship is successfully established, the processing module 103 feeds back the linkage success signal to the control terminal for display. As shown in FIG. 2, the “KFR-35GW is connected” is displayed; if the linkage relationship is not successfully established, the processing module 103 associates The failure signal is fed back to the control terminal. If “Unconnected air conditioner linkage” is displayed, the user is reminded. At this time, the user can cancel the linkage control by clicking the “Cancel” button.
  • the user selects the scene by clicking the scene bar.
  • the control terminal sends the scene instruction corresponding to the scene selected by the user to the acquisition module 101.
  • the processing module 103 receives the current environmental parameters detected by the air conditioner and/or the fan, or acquires the air conditioner and the wind through the Internet. The current environmental parameters of the environment in which the fan is located. Then, the processing module 103 controls the fan and the air conditioner according to the current environment parameter and the scene instruction according to the linkage rule corresponding to Table 3, so that the information exchange, mutual understanding, and mutual control between the air conditioner and the fan realize the air.
  • the fast cycle, rapid cooling, and a smart and comfortable environment that is comfortable, energy-saving, livable, and less intervention greatly enhances the user experience.
  • the processing module 103 also feeds back the abnormal state information to the control terminal to remind the user, so that the user can know the current linkage control state in time.
  • the linkage control can be turned off by the "close" button of the linkage bar.
  • the fan and the air conditioner are in a linked state, if the user closes the APP program, the user is also reminded.
  • one fan can link one air conditioner, and one air conditioner can link multiple fans.
  • the processing module 103 synchronizes the linkage state to the air conditioner.
  • the air conditioner stores the model and related information of the currently connected fan according to the list form, if If the linkage control is canceled, the model and related information of the fan will be deleted.
  • the processing module 103 further acquires a video image of an environment in which the air conditioner and the fan are located, and pushes the video image to the control terminal for playing.
  • the video image of the environment in which the air conditioner and the fan are located can be obtained by the image capturing device, and then the video image is sent to the processing module 103 through the Internet, and the processing module 103 processes the video image information, and then sends the video image to the control terminal.
  • the user can play the video image as needed. For example, when the user is not at home, the user can check the sleep situation of the child in the home, etc., so that the user is more assured.
  • data such as user sleep state and sleep quality are transmitted to the control terminal by face recognition technology.
  • the processing module 103 also acquires physiological parameters of the user and adjusts the control commands according to the physiological parameters of the user.
  • the physiological parameters of the user including the body temperature, posture, expression, and urgency of the user, may be monitored by the sense of body, and then the physiological parameters of the user are sent to the processing module 103, and the processing module 103 adjusts the air conditioner and the fan according to the physiological parameters of the user.
  • the fan and the air conditioner can be adjusted according to the physiological parameters of the user, thereby providing the user with a comfortable and quiet indoor environment, thereby improving the user's sleep quality and sleep time.
  • the server of the embodiment of the present invention acquires a user instruction, including a linkage instruction and a scene instruction, by the acquisition module, and the communication module establishes a communication connection with the air conditioner and the fan according to the linkage instruction to establish a linkage relationship between the air conditioner and the fan.
  • the processing module acquires current environmental parameters of the environment in which the air conditioner and the fan are located, and generates control commands according to the current environmental parameters and scene instructions to perform linkage control on the air conditioner and the fan, thereby achieving rapid air circulation and rapid cooling, and maintaining a comfortable, Energy-saving, livable, and less intelligent and comfortable environment.

Abstract

一种家电设备的联动控制方法和系统、服务器,其中家电设备包括空调器(10)和风扇(20),联动控制方法包括以下步骤:接收用户指令,用户指令包括联动指令和场景指令(S1);服务器(30)根据联动指令建立空调器(10)与风扇(20)之间的联动关系(S2);服务器(30)获取空调器(10)和风扇(20)所处环境的当前环境参数,并根据当前环境参数和场景指令生成控制指令以对空调器(10)和风扇(20)进行联动控制(S3)。该方法能够根据当前环境参数和场景指令对空调器(10)和风扇(20)进行联动控制,以实现空气快速循环和快速降温以及保持一个舒适、节能、宜居,少干预的智能舒适的环境空间。

Description

家电设备的联动控制方法和系统、服务器 技术领域
本发明涉及智能控制技术领域,特别涉及一种家电设备的联动控制方法、一种家电设备联动控制系统以及一种服务器。
背景技术
随着用户智能化生活水平的不断提高,家用电器之间的联动控制也逐渐增多,例如,当用户早上8点起床时,窗帘和窗户会自动打开,然后客厅的音箱会随之开启,一段时间后空调器也关闭等。
相关技术中的联动控制主要是控制家用电器设置的顺序开启和关闭,联动效果并不是很理想。
发明内容
本发明旨在至少在一定程度上解决相关技术中的技术问题之一。为此,本发明的一个目的在于提出一种家电设备的联动控制方法,能够根据当前环境参数和场景指令对空调器和风扇进行联动控制,以实现空气快速循环和快速降温以及保持一个舒适、节能、宜居,少干预的智能舒适的环境空间。
本发明的另一个目的在于提出一种家电设备联动控制系统。
本发明的又一个目的在于提出一种服务器。
为实现上述目的,本发明一方面实施例提出了一种家电设备的联动控制方法,所述家电设备包括空调器和风扇,所述方法包括以下步骤:接收用户指令,其中,所述用户指令包括联动指令和场景指令;服务器根据所述联动指令建立所述空调器与所述风扇之间的联动关系;所述服务器获取所述空调器和所述风扇所处环境的当前环境参数,并根据所述当前环境参数和所述场景指令生成控制指令以对所述空调器和所述风扇进行联动控制。
根据本发明实施例的家电设备的联动控制方法,首先接收用户指令,包括联动指令和场景指令,然后服务器根据联动指令建立空调器与风扇之间的联动关系,并获取空调器和风扇所处环境的当前环境参数,以及根据当前环境参数和场景指令生成控制指令以对空调器和风扇进行联动控制,从而实现空气快速循环和快速降温以及保持一个舒适、节能、宜居,少干预的智能舒适的环境空间。
根据本发明的一个实施例,通过控制终端接收所述用户指令,所述控制终端通过与所述服务器进行通信以将所述用户指令发送给所述服务器。
根据本发明的一个实施例,所述服务器接收所述空调器和/或所述风扇检测的当前环境参数,或者所述服务器通过互联网获取所述空调器和所述风扇所处环境的当前环境参数。
根据本发明的一个实施例,所述当前环境参数包括室内环境温度,所述根据所述当前环境参数和所述场景指令生成控制指令以对所述空调器和所述风扇进行联动控制包括:所述服务器根据所述场景指令判断所述用户处于卧室且进入睡眠状态时,判断所述室内环境温度;如果所述室内环境温度大于等于第一温度阈值,则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;如果所述室内环境温度小于所述第一温度阈值且大于等于第二温度阈值,则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇处于关闭状态;如果所述室内环境温度小于所述第二温度阈值且大于等于第三温度阈值,则控制所述空调器处于关闭状态,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;如果所述室内环境温度小于所述第三温度阈值,则控制所述空调器和所述风扇均处于关闭状态。
根据本发明的一个实施例,所述当前环境参数包括室内环境温度,所述根据所述当前环境参数和所述场景指令生成控制指令以对所述空调器和所述风扇进行联动控制包括:所述服务器根据所述场景指令判断所述用户处于客厅时,判断所述室内环境温度;如果所述室内环境温度大于等于第一温度阈值,则控制所述空调器以第二设定温度制冷运行,同时控制所述风扇以正常风第一预设档位运行、并以第一设定角度摇头;如果所述室内环境温度小于所述第一温度阈值且大于等于第三温度阈值,则控制所述空调器以第一设定温度制冷运行,同时控制所述风扇处于关闭状态,其中,所述第一设定温度小于所述第二设定温度;如果所述室内环境温度小于所述第三温度阈值,则控制所述空调器处于关闭状态,同时控制所述风扇以正常风第二预设档位运行、并以第一设定角度摇头,其中,所述第二预设档位小于所述第一预设档位。
根据本发明的一个实施例,所述家电设备还包括加湿器和空气净化器,所述加湿器将检测到的当前室内环境湿度发送给所述服务器,所述空气净化器将检测到的当前室内空气质量信息发送给所述服务器,所述服务器在对所述空调器和所述风扇进行联动控制的同时,还根据所述当前室内环境湿度和所述当前室内空气质量信息对所述加湿器和所述空气净化器进行联动控制。
根据本发明的一个实施例,所述服务器还获取所述空调器和所述风扇所处环境的视频影像,并将所述视频影像推送给所述控制终端进行播放。
根据本发明的一个实施例,上述的家电设备的联动控制方法,还包括:监测所述用户的生理参数,并将所述用户的生理参数发送给所述服务器;所述服务器根据所述用户的生理参数调节所述控制指令。
为实现上述目的,本发明另一方面实施例提出了一种家电设备联动控制系统,包括空调器、风扇和服务器,其中,所述服务器用于根据接收到的用户指令中的联动指令建立所述空调器与所述风扇之间的联动关系;所述服务器还用于获取所述空调器和所述风扇所处环境的当前环境参数,并根据所述当前环境参数和所述用户指令中的场景指令生成控制指令以对所述空调器和所述风扇进行联动控制。
根据本发明实施例的家电设备联动控制系统,通过服务器根据接收到的用户指令中的联动指令建立空调器与风扇之间的联动关系,并获取空调器和风扇所处环境的当前环境参数,以及根据当前环境参数和用户指令中的场景指令生成控制指令以对空调器和风扇进行联动控制,从而实现空气快速循环和快速降温以及保持一个舒适、节能、宜居,少干预的智能舒适的环境空间。
根据本发明的一个实施例,上述的家电设备联动控制系统,还包括控制终端,所述控制终端用于接收所述用户指令,并通过与所述服务器进行通信以将所述用户指令发送给所述服务器。
根据本发明的一个实施例,所述服务器接收所述空调器和/或所述风扇检测的当前环境参数,或者所述服务器通过互联网获取所述空调器和所述风扇所处环境的当前环境参数。
根据本发明的一个实施例,所述当前环境参数包括室内环境温度,其中,所述服务器根据所述场景指令判断所述用户处于卧室且进入睡眠状态时,判断所述室内环境温度;如果所述室内环境温度大于等于第一温度阈值,所述服务器则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;如果所述室内环境温度小于所述第一温度阈值且大于等于第二温度阈值,所述服务器则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇处于关闭状态;如果所述室内环境温度小于所述第二温度阈值且大于等于第三温度阈值,所述服务器则控制所述空调器处于关闭状态,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;如果所述室内环境温度小于所述第三温度阈值,所述服务器则控制所述空调器和所述风扇均处于关闭状态。
根据本发明的一个实施例,所述当前环境参数包括室内环境温度,其中,所述服务器根据所述场景指令判断所述用户处于客厅时,判断所述室内环境温度;如果所述室内环境温度大于等于第一温度阈值,所述服务器则控制所述空调器以第二设定温度制冷运行,同时控制所述风扇以正常风第一预设档位运行、并以第一设定角度摇头;如果所述室内环境温度小于所述第一温度阈值且大于等于第三温度阈值,所述服务器则控制所述空调器以第一设定温度制冷运行,同时控制所述风扇处于关闭状态,其中,所述第一设定温度小于所述第二设定温度;如果所述室内环境温度小于所述第三温度阈值,所述服务器则控制所述 空调器处于关闭状态,同时控制所述风扇以正常风第二预设档位运行、并以第一设定角度摇头,其中,所述第二预设档位小于所述第一预设档位。
根据本发明的一个实施例,上述的家电设备联动控制系统,还包括加湿器和空气净化器,所述加湿器将检测到的当前室内环境湿度发送给所述服务器,所述空气净化器将检测到的当前室内空气质量信息发送给所述服务器,所述服务器在对所述空调器和所述风扇进行联动控制的同时,还根据所述当前室内环境湿度和所述当前室内空气质量信息对所述加湿器和所述空气净化器进行联动控制。
根据本发明的一个实施例,所述服务器还用于获取所述空调器和所述风扇所处环境的视频影像,并将所述视频影像推送给所述控制终端进行播放。
根据本发明的一个实施例,上述的家电设备联动控制系统,还包括监测装置,所述监测装置用于监测所述用户的生理参数,并将所述用户的生理参数发送给所述服务器,所述服务器根据所述用户的生理参数调节所述控制指令。
为实现上述目的,本发明又一方面实施例提出了一种服务器,包括:获取模块,用于获取用户指令,其中,所述用户指令包括联动指令和场景指令;通信模块,用于根据所述联动指令分别建立与空调器和风扇之间的通信连接,以建立所述空调器与所述风扇之间的联动关系;处理模块,用于获取所述空调器和所述风扇所处环境的当前环境参数,并根据所述当前环境参数和所述场景指令生成控制指令以对所述空调器和所述风扇进行联动控制。
根据本发明实施例的服务器,通过获取模块获取用户指令,包括联动指令和场景指令,通信模块根据联动指令分别建立与空调器和风扇之间的通信连接,以建立空调器与风扇之间的联动关系,处理模块获取空调器和风扇所处环境的当前环境参数,并根据当前环境参数和场景指令生成控制指令以对空调器和风扇进行联动控制,从而实现空气快速循环和快速降温以及保持一个舒适、节能、宜居,少干预的智能舒适的环境空间。
根据本发明的一个实施例,所述获取模块通过与控制终端进行通信以获取所述用户指令。
根据本发明的一个实施例,所述处理模块接收所述空调器和/或所述风扇检测的当前环境参数,或者所述处理模块通过互联网获取所述空调器和所述风扇所处环境的当前环境参数。
根据本发明的一个实施例,所述当前环境参数包括室内环境温度,其中,所述处理模块根据所述场景指令判断所述用户处于卧室且进入睡眠状态时,判断所述室内环境温度;如果所述室内环境温度大于等于第一温度阈值,所述处理模块则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇进入睡眠风模式并以第一设定角 度摇头;如果所述室内环境温度小于所述第一温度阈值且大于等于第二温度阈值,所述处理模块则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇处于关闭状态;如果所述室内环境温度小于所述第二温度阈值且大于等于第三温度阈值,所述处理模块则控制所述空调器处于关闭状态,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;如果所述室内环境温度小于所述第三温度阈值,所述处理模块则控制所述空调器和所述风扇均处于关闭状态。
根据本发明的一个实施例,所述当前环境参数包括室内环境温度,其中,所述处理模块根据所述场景指令判断所述用户处于客厅时,判断所述室内环境温度;如果所述室内环境温度大于等于第一温度阈值,所述处理模块则控制所述空调器以第二设定温度制冷运行,同时控制所述风扇以正常风第一预设档位运行、并以第一设定角度摇头;如果所述室内环境温度小于所述第一温度阈值且大于等于第三温度阈值,所述处理模块则控制所述空调器以第一设定温度制冷运行,同时控制所述风扇处于关闭状态,其中,所述第一设定温度小于所述第二设定温度;如果所述室内环境温度小于所述第三温度阈值,所述处理模块则控制所述空调器处于关闭状态,同时控制所述风扇以正常风第二预设档位运行、并以第一设定角度摇头,其中,所述第二预设档位小于所述第一预设档位。
根据本发明的一个实施例,所述处理模块还获取当前室内环境湿度和当前室内空气质量信息,并在对所述空调器和所述风扇进行联动控制的同时,根据所述当前室内环境湿度和所述当前室内空气质量信息对加湿器和空气净化器进行联动控制。
根据本发明的一个实施例,所述处理模块还获取所述空调器和所述风扇所处环境的视频影像,并将所述视频影像推送给所述控制终端进行播放。
根据本发明的一个实施例,所述处理模块还获取所述用户的生理参数,并根据所述用户的生理参数调节所述控制指令。
附图说明
本发明的上述和/或附加的方面和优点从结合下面附图对实施例的描述中将变得明显和容易理解,其中:
图1是根据本发明实施例的家电设备的联动控制方法的流程图。
图2-图3是根据本发明一个实施例的家电设备联动控制的APP程序界面。
图4是根据本发明一个实施例的家电设备联动控制系统的结构示意图。
图5是根据本发明另一个实施例的家电设备联动控制系统的结构示意图。
图6是根据本发明又一个实施例的家电设备联动控制系统的结构示意图。
图7是根据本发明一个实施例的服务器的结构示意图。
具体实施方式
下面详细描述本发明的实施例,所述实施例的示例在附图中示出,其中自始至终相同或类似的标号表示相同或类似的元件或具有相同或类似功能的元件。下面通过参考附图描述的实施例是示例性的,旨在用于解释本发明,而不能理解为对本发明的限制。
下面参照附图来描述根据本发明实施例提出的家电设备的联动控制方法、家电设备联动控制系统以及服务器。
图1是根据本发明实施例的家电设备的联动控制方法的流程图,其中,家电设备包括空调器和风扇。如图1所示,该家电设备的联动控制方法包括以下步骤:
S1,接收用户指令,其中,用户指令包括联动指令和场景指令。
根据本发明的一个实施例,通过控制终端接收用户指令,控制终端通过与服务器进行通信以将用户指令发送给服务器。
S2,服务器根据联动指令建立空调器与风扇之间的联动关系。
具体地,当用户需要空调器和风扇联动控制时,可以先将控制终端(如手机、平板电脑、个人计算机等)与服务器通过互联网建立通信,然后,用户通过控制终端中的APP(Application,应用)程序发送联动指令至服务器,服务器在接收到联动指令后,通过互联网分别与风扇和空调器进行通信,以建立空调器与风扇之间的联动关系。在空调器与风扇成功建立联动关系后,服务器将联动成功信号反馈至控制终端进行显示,然后用户根据自身需求选择场景,例如用户在卧室睡觉或者用户刚回到家中等,选择完成后,控制终端将选择的场景所对应的场景指令发送至服务器。
S3,服务器获取空调器和风扇所处环境的当前环境参数,并根据当前环境参数和场景指令生成控制指令以对空调器和风扇进行联动控制。
具体地,在服务器接收到场景指令后,服务器获取空调器和风扇所处环境的当前环境参数,例如室内环境温度、室内环境湿度以及室内空气质量等,然后服务器根据获取的当前环境参数和场景指令生成控制指令,以对空调器和风扇进行联动控制。例如,可以将当前环境参数、场景指令、家电设备以及家电设备对应的控制指令预先对应存储至服务器,服务器在接收到场景指令后,根据当前环境参数和场景指令采用查询等方式获取对应家电设备和家电设备对应的控制指令,然后服务器根据控制指令控制相应的家电设备,包括风扇的开启和关闭、风扇的风速、风扇的摇头角度、空调器的开启和关闭以及空调器的风速等,从而根据用户使用场景对风扇和空调器进行联动控制,以加速空气的快速循环、快速降温等,并在合适的室内环境温度、湿度等条件下,开启和关闭风扇或空调器,不仅可以保证用户的舒适性,提升用户体验,而且能够达到节能的目的。
根据本发明的一个实施例,服务器接收空调器和/或风扇检测的当前环境参数,或者服务器通过互联网获取空调器和风扇所处环境的当前环境参数。
也就是说,服务器可以将空调器检测的当前环境参数作为联动控制的当前环境参数,也可以将风扇检测的当前环境参数作为联动控制的当前环境参数,也可以将空调器检测的当前环境参数和风扇检测的当前环境参数作为联动控制的当前环境参数,还可以通过互联网获取空调器和风扇所处环境的当前环境参数。
根据本发明的一个实施例,当前环境参数包括室内环境温度,根据当前环境参数和场景指令生成控制指令以对空调器和风扇进行联动控制包括:服务器根据场景指令判断用户处于卧室且进入睡眠状态时,判断室内环境温度;如果室内环境温度大于等于第一温度阈值,则控制空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制风扇进入睡眠风模式并以第一设定角度摇头;如果室内环境温度小于第一温度阈值且大于等于第二温度阈值,则控制空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制风扇处于关闭状态;如果室内环境温度小于第二温度阈值且大于等于第三温度阈值,则控制空调器处于关闭状态,同时控制风扇进入睡眠风模式并以第一设定角度摇头;如果室内环境温度小于第三温度阈值,则控制空调器和风扇均处于关闭状态。从而达到快速降温的目的,满足用户实际需求,且具有节能效果。其中,第一至第三温度阈值、第一设定温度和第一设定角度可以根据用户需求设定,具体如表1所示。
表1
Figure PCTCN2016106149-appb-000001
根据本发明的一个实施例,当前环境参数包括室内环境温度,根据当前环境参数和场景指令生成控制指令以对空调器和风扇进行联动控制包括:服务器根据场景指令判断用户处于客厅时,判断室内环境温度;如果室内环境温度大于等于第一温度阈值,则控制空调器以第二设定温度制冷运行,同时控制风扇以正常风第一预设档位运行、并以第一设定角度摇头;如果室内环境温度小于第一温度阈值且大于等于第三温度阈值,则控制空调器以 第一设定温度制冷运行,同时控制风扇处于关闭状态,其中,第一设定温度小于第二设定温度;如果室内环境温度小于第三温度阈值,则控制空调器处于关闭状态,同时控制风扇以正常风第二预设档位运行、并以第一设定角度摇头。从而达到快速降温的目的,满足用户实际需求,且具有节能效果。其中,第二预设档位小于第一预设档位,第二设定温度、第一预设档位和第二预设档位可以根据用户需求设定。具体如表2所示。
表2
Figure PCTCN2016106149-appb-000002
根据本发明的一个实施例,家电设备还包括加湿器和空气净化器,加湿器将检测到的当前室内环境湿度发送给服务器,空气净化器将检测到的当前室内空气质量信息发送给服务器,服务器在对空调器和风扇进行联动控制的同时,还根据当前室内环境湿度和当前室内空气质量信息对加湿器和空气净化器进行联动控制。
也就是说,可以根据用户需求增加相应的家电设备,例如加湿器和空气净化器等,以进一步提高联动控制给用户带来的舒适性。当家电设备包括加湿器和空气净化器等时,服务器可以接收加湿器检测的当前室内环境湿度,并接收空气净化器检测到的当前室内空气质量信息,然后根据当前室内环境湿度、当前室内空气质量信息对加湿器和空气净化器进行联动控制。
具体地,如表3所示,当室内环境湿度小于第一湿度阈值时,控制加湿器以第一设定湿度运行;当室内环境湿度大于等于第二湿度阈值时,控制加湿器关闭。当室内空气质量信息如PM2.5(细微颗粒)大于等于第一空气质量阈值时,控制净化器开启;当室内空气质量信息如PM2.5小于第二空气质量阈值时,控制净化器关闭。从而保持一个舒适、节能、宜居的环境空间,大大提高了用户体验。其中,第一湿度阈值小于第二湿度阈值,第一空气质量阈值大于第二空气质量阈值,第一至第二湿度阈值、第一设定湿度以及第一至第二空气质量阈值可以根据用户需求设定。
表3
Figure PCTCN2016106149-appb-000003
Figure PCTCN2016106149-appb-000004
下面结合本发明的一个具体示例来说明本发明的家电设备的联动控制方法。
在用户需要空调器和风扇联动控制之前,可先通过二维码或条形码等将空调器激活,即将可能与风扇进行联动控制的空调器的型号存储至控制终端中。当用户需要空调器与风扇联动控制时,用户可先通过遥控器开启风扇和空调器,也可以通过控制终端与设置在风扇与空调器电源端的智能开关进行通信,以通过智能开关开启风扇和空调器开启。
在风扇和空调器开启后,如图2所示,用户可以通过点击空调栏的“选择空调设备”来选择需要联动控制的空调器,如图3所示,在弹出的空调器选择列表窗口中显示了目前可以联动控制的空调器的型号,用户在选择了型号为KFR-35GW的空调器后,点击“确定”键后,则绑定风扇与KFR-35GW的空调器的联动关系,然后用户通过点击联动栏的“开启”键后,发送联动指令至服务器。如果空调器选择列表窗口中没有可联动控制的空调器,则空调器选择列表窗口将显示“没发现可联动空调,使用联动功能需要使用美的智能空调”, 并且禁止启动联动控制功能,联动栏将显示“先关联空调”。
服务器在接收到联动指令后,通过互联网分别建立与空调器和风扇之间的通信连接,以建立空调器与风扇之间的联动关系。如果联动关系成功建立,则服务器将联动成功信号反馈至控制终端进行显示,如图2所示,显示有“KFR-35GW已连接”;如果联动关系未成功建立,则服务器将联动失败信号反馈至控制终端,如显示“未连接空调器联动”,以对用户进行提醒,此时用户可以通过点击“取消”键取消联动控制。
在联动关系成功建立后,用户通过点击场景栏以对场景进行选择,场景选择完成后,控制终端将用户选择的场景所对应的场景指令发送至服务器。服务器在接收到场景指令后,接收空调器和/或风扇检测的当前环境参数,或者通过互联网获取空调器和风扇所处环境的当前环境参数。然后,服务器根据当前环境参数和场景指令,按照表3所对应的联动规则对风扇和空调器进行控制,从而使得空调器和风扇之间信息的互通、互懂、交流互控,实现空气的快速循环,快速降温,以及保持在一个舒适、节能、宜居,少干预的智能舒适的环境空间,大大提高了用户体验。
在联动控制过程中,如果风扇或者空调器出现掉电等异常状况时,服务器还将异常状态信息反馈至控制终端以对用户进行提醒,以便用户及时了解当前联动控制状态。当用户需要结束联动控制时,可以通过联动栏的“关闭”键关闭联动控制。另外,在风扇与空调器处于联动状态下,如果用户关闭APP程序,则还对用户进行提醒。
需要说明的是,在本发明的实施例中,一台风扇可以联动一台空调器,而一台空调器可以联动多台风扇。当联动控制开启和关闭时,服务器还将联动状态同步至空调器中,当空调器同时与多台风扇联动时,空调器将按照列表形式存储当前联接的风扇的型号及相关信息,如果取消联动控制,则删除该风扇的型号及相关信息。
根据本发明的一个实施例,服务器还获取空调器和风扇所处环境的视频影像,并将视频影像推送给控制终端进行播放。
具体地,可以通过摄像装置获取空调器和风扇所处环境的视频影像,然后将视频影像通过互联网发送至服务器,服务器对视频影像信息进行处理后,将视频影像发送至控制终端,用户可以根据需求播放该视频影像。例如,当用户不在家中时,可以通过手机查看家中小孩的睡眠情况等,以使用户更加放心。或者,通过人脸识别技术将用户睡眠状态和睡眠质量等数据发送至控制终端。
根据本发明的一个实施例,上述的家电设备的联动控制方法,还包括:监测用户的生理参数,并将用户的生理参数发送给服务器;服务器根据用户的生理参数调节控制指令。
具体地,可以通过体感监测用户的生理参数,包括用户的体温、体态、表情以及急躁度等,然后将用户的生理参数发送给服务器,服务器根据用户的生理参数调节空调器与风 扇的风速和角度,或者开启和关闭空调器或风扇等,以达到自适应的目的。例如,在用户睡眠时,可以根据用户的生理参数对风扇、空调器进行调节,从而给用户提供一个舒适、安静的室内环境,进而提高用户的睡眠质量和睡眠时间。
综上所述,本发明实施例的家电设备的联动控制方法,首先接收用户指令,包括联动指令和场景指令,然后服务器根据联动指令建立空调器与风扇之间的联动关系,并获取空调器和风扇所处环境的当前环境参数,以及根据当前环境参数和场景指令生成控制指令以对空调器和风扇进行联动控制,从而实现空气快速循环和快速降温以及保持一个舒适、节能、宜居,少干预的智能舒适的环境空间。
图4是根据本发明一个实施例的家电设备联动控制系统的结构示意图。如图4所示,该家电设备联动控制系统,包括空调器10、风扇20和服务器30。
其中,服务器30用于根据接收到的用户指令中的联动指令建立空调器10与风扇20之间的联动关系,并获取空调器10和风扇20所处环境的当前环境参数,并根据当前环境参数和用户指令中的场景指令生成控制指令以对空调器10和风扇20进行联动控制。
如图4所示,上述的家电设备联动控制系统还包括控制终端40,控制终端40用于接收用户指令,并通过与服务器30进行通信以将用户指令发送给服务器30。
具体地,当用户需要空调器10和风扇20联动控制时,可以先将控制终端40(如手机、平板电脑、个人计算机等)与服务器30通过互联网建立通信,然后,用户通过控制终端40中的APP程序发送联动指令至服务器30,服务器30在接收到联动指令后,通过互联网分别与风扇20和空调器10进行通信,以建立空调器10与风扇20之间的联动关系。在空调器10与风扇20成功建立联动关系后,服务器30将联动成功信号反馈至控制终端40进行显示,然后用户根据自身需求选择场景,例如用户在卧室睡觉或者用户刚回到家中等,选择完成后,控制终端40将选择的场景所对应的场景指令发送至服务器30。
在服务器30接收到场景指令后,服务器30获取空调器10和风扇20所处环境的当前环境参数,例如室内环境温度、室内环境湿度以及室内空气质量等,然后服务器30根据获取的当前环境参数和场景指令生成控制指令,以对空调器10和风扇20进行联动控制。例如,可以将当前环境参数、场景指令、家电设备以及家电设备对应的控制指令预先对应存储至服务器30,服务器30在接收到场景指令后,根据当前环境参数和场景指令采用查询等方式获取对应家电设备和家电设备对应的控制指令,然后服务器30根据控制指令控制相应的家电设备,包括风扇20的开启和关闭、风扇20的风速、风扇20的摇头角度、空调器10的开启和关闭以及空调器10的风速等,从而根据用户使用场景对风扇和空调器进行联动控制,以加速空气的快速循环、快速降温等,并在合适的室内环境温度、湿度等条件下,开启和关闭风扇或空调器,不仅可以保证用户的舒适性,提升用户体验,而且能够达到节 能的目的。
根据本发明的一个实施例,服务器30接收空调器10和/或风扇20检测的当前环境参数,或者服务器30通过互联网获取空调器10和风扇20所处环境的当前环境参数。
根据本发明的一个实施例,如表1所示,当前环境参数包括室内环境温度,其中,服务器30根据场景指令判断用户处于卧室且进入睡眠状态时,判断室内环境温度;如果室内环境温度大于等于第一温度阈值,服务器30则控制空调器10进入睡眠运行模式并以第一设定温度制冷运行,同时控制风扇20进入睡眠风模式并以第一设定角度摇头;如果室内环境温度小于第一温度阈值且大于等于第二温度阈值,服务器30则控制空调器10进入睡眠运行模式并以第一设定温度制冷运行,同时控制风扇20处于关闭状态;如果室内环境温度小于第二温度阈值且大于等于第三温度阈值,服务器30则控制空调器10处于关闭状态,同时控制风扇20进入睡眠风模式并以第一设定角度摇头;如果室内环境温度小于第三温度阈值,服务器30则控制空调器10和风扇20均处于关闭状态。从而达到快速降温的目的,满足用户实际需求,且具有节能效果。
根据本发明的一个实施例,如表2所示,当前环境参数包括室内环境温度,其中,服务器30根据场景指令判断用户处于客厅时,判断室内环境温度;如果室内环境温度大于等于第一温度阈值,服务器30则控制空调器10以第二设定温度制冷运行,同时控制风扇20以正常风第一预设档位运行、并以第一设定角度摇头;如果室内环境温度小于第一温度阈值且大于等于第三温度阈值,服务器30则控制空调器10以第一设定温度制冷运行,同时控制风扇20处于关闭状态,其中,第一设定温度小于第二设定温度;如果室内环境温度小于第三温度阈值,服务器30则控制空调器10处于关闭状态,同时控制风扇20以正常风第二预设档位运行、并以第一设定角度摇头,其中,第二预设档位小于第一预设档位。从而达到快速降温的目的,满足用户实际需求,且具有节能效果。
根据本发明的一个实施例,如图5所示,上述的家电设备联动控制系统,还包括加湿器50和空气净化器60,加湿器50将检测到的当前室内环境湿度发送给服务器30,空气净化器60将检测到的当前室内空气质量信息发送给服务器30,服务器30在对空调器10和风扇20进行联动控制的同时,还根据当前室内环境湿度和当前室内空气质量信息对加湿器50和空气净化器60进行联动控制。
也就是说,可以根据用户需求增加相应的家电设备,例如加湿器50和空气净化器60等,以进一步提高联动控制给用户带来的舒适性。当家电设备包括加湿器50和空气净化器60等时,服务器30可以接收加湿器30检测的当前室内环境湿度,并接收空气净化器60检测到的当前室内空气质量信息,然后根据当前室内环境湿度、当前室内空气质量信息对加湿器50和空气净化器60进行联动控制。具体如表3所示,这里不再赘述。
下面结合本发明的一个具体示例来说明本发明的家电设备联动控制系统。
在用户需要空调器10和风扇20联动控制之前,可先通过二维码或条形码等将空调器10激活,即将可能与风扇20进行联动控制的空调器10的型号存储至控制终端40中。当用户需要空调器10与风扇20联动控制时,用户可先通过遥控器开启风扇20和空调器10,也可以通过控制终端40与设置在风扇20与空调器10电源端的智能开关进行通信,以通过智能开关开启风扇20和空调器10开启。
在风扇20和空调器10开启后,如图2所示,用户可以通过点击空调栏的“选择空调设备”来选择需要联动控制的空调器10,如图3所示,在弹出的空调器选择列表窗口中显示了目前可以联动控制的空调器10的型号,用户在选择了型号为KFR-35GW的空调器10后,点击“确定”键后,则绑定风扇20与KFR-35GW的空调器10的联动关系,然后用户通过点击联动栏的“开启”键后,发送联动指令至服务器30。如果空调器选择列表窗口中没有可联动控制的空调器10,则空调器选择列表窗口将显示“没发现可联动空调,使用联动功能需要使用美的智能空调”,并且禁止启动联动控制功能,联动栏将显示“先关联空调”。
服务器30在接收到联动指令后,通过互联网分别建立与空调器10和风扇20之间的通信连接,以建立空调器10与风扇20之间的联动关系。如果联动关系成功建立,则服务器30将联动成功信号反馈至控制终端40进行显示,如图2所示,显示有“KFR-35GW已连接”;如果联动关系未成功建立,则服务器30将联动失败信号反馈至控制终端40,如显示“未连接空调器联动”,以对用户进行提醒,此时用户可以通过点击“取消”键取消联动控制。
在联动关系成功建立后,用户通过点击场景栏以对场景进行选择,场景选择完成后,控制终端40将用户选择的场景所对应的场景指令发送至服务器30。服务器30在接收到场景指令后,接收空调器10和/或风扇20检测的当前环境参数,或者通过互联网获取空调器10和风扇20所处环境的当前环境参数。然后,服务器30根据当前环境参数和场景指令,按照表3所对应的联动规则对风扇20和空调器10进行控制,从而使得空调器10和风扇20之间信息的互通、互懂、交流互控,实现空气的快速循环,快速降温,以及保持在一个舒适、节能、宜居,少干预的智能舒适的环境空间,大大提高了用户体验。
在联动控制过程中,如果风扇20或者空调器10出现掉电等异常状况时,服务器30还将异常状态信息反馈至控制终端40以对用户进行提醒,以便用户及时了解当前联动控制状态。当用户需要结束联动控制时,可以通过联动栏的“关闭”键关闭联动控制。另外,在风扇20与空调器10处于联动状态下,如果用户关闭APP程序,则还对用户进行提醒。
需要说明的是,在本发明的实施例中,一台风扇20可以联动一台空调器10,而一台空调器10可以联动多台风扇20。当联动控制开启和关闭时,服务器30还将联动状态同步至空调器10中,当空调器10同时与多台风扇20联动时,空调器10将按照列表形式存储 当前联接的风扇20的型号及相关信息,如果取消联动控制,则删除该风扇20的型号及相关信息。
根据本发明的一个实施例,服务器30还用于获取空调器10和风扇20所处环境的视频影像,并将视频影像推送给控制终端40进行播放。
具体地,可以通过摄像装置获取空调器10和风扇20所处环境的视频影像,然后将视频影像通过互联网发送至服务器30,服务器30对视频影像信息进行处理后,将视频影像发送至控制终端40,用户可以根据需求播放该视频影像。例如,当用户不在家中时,可以通过手机查看家中小孩的睡眠情况等,以使用户更加放心。或者,通过人脸识别技术将用户睡眠状态和睡眠质量等数据发送至控制终端40。
根据本发明的一个实施例,如图6所示,上述的家电设备联动控制系统,还包括监测装置70,监测装置70用于监测用户的生理参数,并将用户的生理参数发送给服务器30,服务器30根据用户的生理参数调节控制指令。
具体地,可以通过体感检测装置监测用户的生理参数,包括用户的体温、体态、表情以及急躁度等,然后将用户的生理参数发送给服务器30,服务器30根据用户的生理参数调节空调器10与风扇20的风速和角度,或者开启和关闭空调器10或风扇20等,以达到自适应的目的。例如,在用户睡眠时,可以根据用户的生理参数对风扇20、空调器10进行调节,从而给用户提供一个舒适、安静的室内环境,进而提高用户的睡眠质量和睡眠时间。
本发明实施例的家电设备联动控制系统,通过服务器根据接收到的用户指令中的联动指令建立空调器与风扇之间的联动关系,并获取空调器和风扇所处环境的当前环境参数,以及根据当前环境参数和用户指令中的场景指令生成控制指令以对空调器和风扇进行联动控制,从而实现空气快速循环和快速降温以及保持一个舒适、节能、宜居,少干预的智能舒适的环境空间。
图7是根据本发明一个实施例的服务器的结构示意图。如图7所示,该服务器包括:获取模块101、通信模块102和处理模块103。
具体地,获取模块101用于获取用户指令,用户指令包括联动指令和场景指令。通信模块102用于根据联动指令分别建立与空调器和风扇之间的通信连接,以建立空调器与风扇之间的联动关系。处理模块103用于获取空调器和风扇所处环境的当前环境参数,并根据当前环境参数和场景指令生成控制指令以对空调器和风扇进行联动控制。
其中,获取模块101通过与控制终端进行通信以获取用户指令。
具体而言,当用户需要空调器和风扇联动控制时,可以先将控制终端(如手机、平板电脑、个人计算机等)与服务器通过互联网建立通信,然后,用户通过控制终端中的APP 程序发送联动指令至获取模块101,在接收到联动指令后,通信模块102通过互联网分别与风扇和空调器进行通信,以建立空调器与风扇之间的联动关系。在空调器与风扇成功建立联动关系后,处理模块103将联动成功信号反馈至控制终端进行显示,然后用户根据自身需求选择场景,例如用户在卧室睡觉或者用户刚回到家中等,选择完成后,控制终端将选择的场景所对应的场景指令发送至获取模块101。
在接收到场景指令后,处理模块103获取空调器和风扇所处环境的当前环境参数,例如室内环境温度、室内环境湿度以及室内空气质量等,然后处理模块103根据获取的当前环境参数和场景指令生成控制指令,以对空调器和风扇进行联动控制。例如,可以将当前环境参数、场景指令、家电设备以及家电设备对应的控制指令预先对应存储至处理模块103的数据库,处理模块103在接收到场景指令后,根据当前环境参数和场景指令采用查询等方式获取对应家电设备和家电设备对应的控制指令,然后处理模块103根据控制指令控制相应的家电设备,包括风扇的开启和关闭、风扇的风速、风扇的摇头角度、空调器的开启和关闭以及空调器的风速等,从而根据用户使用场景对风扇和空调器进行联动控制,以加速空气的快速循环、快速降温等,并在合适的室内环境温度、湿度等条件下,开启和关闭风扇或空调器,不仅可以保证用户的舒适性,提升用户体验,而且能够达到节能的目的。
根据本发明的一个实施例,处理模块103接收空调器和/或风扇检测的当前环境参数,或者处理模块103通过互联网获取空调器和风扇所处环境的当前环境参数。
根据本发明的一个实施例,如表1所示,当前环境参数包括室内环境温度,其中,处理模块103根据场景指令判断用户处于卧室且进入睡眠状态时,判断室内环境温度;如果室内环境温度大于等于第一温度阈值,处理模块103则控制空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制风扇进入睡眠风模式并以第一设定角度摇头;如果室内环境温度小于第一温度阈值且大于等于第二温度阈值,处理模块103则控制空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制风扇处于关闭状态;如果室内环境温度小于第二温度阈值且大于等于第三温度阈值,处理模块103则控制空调器处于关闭状态,同时控制风扇进入睡眠风模式并以第一设定角度摇头;如果室内环境温度小于第三温度阈值,处理模块103则控制空调器和风扇均处于关闭状态。从而达到快速降温的目的,满足用户实际需求,且具有节能效果。
根据本发明的一个实施例,如表2所示,当前环境参数包括室内环境温度,其中,处理模块103根据场景指令判断用户处于客厅时,判断室内环境温度;如果室内环境温度大于等于第一温度阈值,处理模块103则控制空调器以第二设定温度制冷运行,同时控制风扇以正常风第一预设档位运行、并以第一设定角度摇头;如果室内环境温度小于第一温度阈值且大于等于第三温度阈值,处理模块103则控制空调器以第一设定温度制冷运行,同 时控制风扇处于关闭状态,其中,第一设定温度小于第二设定温度;如果室内环境温度小于第三温度阈值,处理模块103则控制空调器处于关闭状态,同时控制风扇以正常风第二预设档位运行、并以第一设定角度摇头,其中,第二预设档位小于第一预设档位。从而达到快速降温的目的,满足用户实际需求,且具有节能效果。
根据本发明的一个实施例,处理模块103还获取当前室内环境湿度和当前室内空气质量信息,并在对空调器和风扇进行联动控制的同时,根据当前室内环境湿度和当前室内空气质量信息对加湿器和空气净化器进行联动控制。
也就是说,可以根据用户需求增加相应的家电设备,例如加湿器和空气净化器等,以进一步提高联动控制给用户带来的舒适性。当家电设备包括加湿器和空气净化器等时,处理模块103可以接收加湿器检测的当前室内环境湿度,并接收空气净化器检测到的当前室内空气质量信息,然后根据当前室内环境湿度、当前室内空气质量信息对加湿器和空气净化器进行联动控制,具体如表3所示,这里不再赘述。
下面结合本发明的一个具体示例来说明本发明的服务器。
在用户需要空调器和风扇联动控制之前,可先通过二维码或条形码等将空调器激活,即将可能与风扇进行联动控制的空调器的型号存储至控制终端中。当用户需要空调器与风扇联动控制时,用户可先通过遥控器开启风扇和空调器,也可以通过控制终端与设置在风扇与空调器电源端的智能开关进行通信,以通过智能开关开启风扇和空调器开启。
在风扇和空调器开启后,如图2所示,用户可以通过点击空调栏的“选择空调设备”来选择需要联动控制的空调器,如图3所示,在弹出的空调器选择列表窗口中显示了目前可以联动控制的空调器的型号,用户在选择了型号为KFR-35GW的空调器后,点击“确定”键后,则绑定风扇与KFR-35GW的空调器的联动关系,然后用户通过点击联动栏的“开启”键后,发送联动指令至获取模块101。如果空调器选择列表窗口中没有可联动控制的空调器,则空调器选择列表窗口将显示“没发现可联动空调,使用联动功能需要使用美的智能空调”,并且禁止启动联动控制功能,联动栏将显示“先关联空调”。
在接收到联动指令后,通信模块102通过互联网分别建立与空调器和风扇之间的通信连接,以建立空调器与风扇之间的联动关系。如果联动关系成功建立,则处理模块103将联动成功信号反馈至控制终端进行显示,如图2所示,显示有“KFR-35GW已连接”;如果联动关系未成功建立,则处理模块103将联动失败信号反馈至控制终端,如显示“未连接空调器联动”,以对用户进行提醒,此时用户可以通过点击“取消”键取消联动控制。
在联动关系成功建立后,用户通过点击场景栏以对场景进行选择,场景选择完成后,控制终端将用户选择的场景所对应的场景指令发送获取模块101。在接收到场景指令后,处理模块103接收空调器和/或风扇检测的当前环境参数,或者通过互联网获取空调器和风 扇所处环境的当前环境参数。然后,处理模块103根据当前环境参数和场景指令,按照表3所对应的联动规则对风扇和空调器进行控制,从而使得空调器和风扇之间信息的互通、互懂、交流互控,实现空气的快速循环,快速降温,以及保持在一个舒适、节能、宜居,少干预的智能舒适的环境空间,大大提高了用户体验。
在联动控制过程中,如果风扇或者空调器出现掉电等异常状况时,处理模块103还将异常状态信息反馈至控制终端以对用户进行提醒,以便用户及时了解当前联动控制状态。当用户需要结束联动控制时,可以通过联动栏的“关闭”键关闭联动控制。另外,在风扇与空调器处于联动状态下,如果用户关闭APP程序,则还对用户进行提醒。
需要说明的是,在本发明的实施例中,一台风扇可以联动一台空调器,而一台空调器可以联动多台风扇。当联动控制开启和关闭时,处理模块103还将联动状态同步至空调器中,当空调器同时与多台风扇联动时,空调器将按照列表形式存储当前联接的风扇的型号及相关信息,如果取消联动控制,则删除该风扇的型号及相关信息。
根据本发明的一个实施例,处理模块103还获取空调器和风扇所处环境的视频影像,并将视频影像推送给控制终端进行播放。
具体地,可以通过摄像装置获取空调器和风扇所处环境的视频影像,然后将视频影像通过互联网发送至处理模块103,处理模块103对视频影像信息进行处理后,将视频影像发送至控制终端,用户可以根据需求播放该视频影像。例如,当用户不在家中时,可以通过手机查看家中小孩的睡眠情况等,以使用户更加放心。或者,通过人脸识别技术将用户睡眠状态和睡眠质量等数据发送至控制终端。
根据本发明的一个实施例,处理模块103还获取用户的生理参数,并根据用户的生理参数调节控制指令。
具体地,可以通过体感监测用户的生理参数,包括用户的体温、体态、表情以及急躁度等,然后将用户的生理参数发送给处理模块103,处理模块103根据用户的生理参数调节空调器与风扇的风速和角度,或者开启和关闭空调器或风扇等,以达到自适应的目的。例如,在用户睡眠时,可以根据用户的生理参数对风扇、空调器进行调节,从而给用户提供一个舒适、安静的室内环境,进而提高用户的睡眠质量和睡眠时间。
本发明实施例的服务器,通过获取模块获取用户指令,包括联动指令和场景指令,通信模块根据联动指令分别建立与空调器和风扇之间的通信连接,以建立空调器与风扇之间的联动关系,处理模块获取空调器和风扇所处环境的当前环境参数,并根据当前环境参数和场景指令生成控制指令以对空调器和风扇进行联动控制,从而实现空气快速循环和快速降温以及保持一个舒适、节能、宜居,少干预的智能舒适的环境空间。
在本发明的描述中,除非另有明确的规定和限定,术语“安装”、“相连”、“连接”、“固 定”等术语应做广义理解,例如,可以是固定连接,也可以是可拆卸连接,或成一体;可以是机械连接,也可以是电连接;可以是直接相连,也可以通过中间媒介间接相连,可以是两个元件内部的连通或两个元件的相互作用关系,除非另有明确的限定。对于本领域的普通技术人员而言,可以根据具体情况理解上述术语在本发明中的具体含义。
在本说明书的描述中,参考术语“一个实施例”、“一些实施例”、“示例”、“具体示例”、或“一些示例”等的描述意指结合该实施例或示例描述的具体特征、结构、材料或者特点包含于本发明的至少一个实施例或示例中。在本说明书中,对上述术语的示意性表述不必须针对的是相同的实施例或示例。而且,描述的具体特征、结构、材料或者特点可以在任一个或多个实施例或示例中以合适的方式结合。此外,在不相互矛盾的情况下,本领域的技术人员可以将本说明书中描述的不同实施例或示例以及不同实施例或示例的特征进行结合和组合。
尽管上面已经示出和描述了本发明的实施例,可以理解的是,上述实施例是示例性的,不能理解为对本发明的限制,本领域的普通技术人员在本发明的范围内可以对上述实施例进行变化、修改、替换和变型。

Claims (24)

  1. 一种家电设备的联动控制方法,其特征在于,所述家电设备包括空调器和风扇,所述方法包括以下步骤:
    接收用户指令,其中,所述用户指令包括联动指令和场景指令;
    服务器根据所述联动指令建立所述空调器与所述风扇之间的联动关系;
    所述服务器获取所述空调器和所述风扇所处环境的当前环境参数,并根据所述当前环境参数和所述场景指令生成控制指令以对所述空调器和所述风扇进行联动控制。
  2. 根据权利要求1所述的家电设备的联动控制方法,其特征在于,通过控制终端接收所述用户指令,所述控制终端通过与所述服务器进行通信以将所述用户指令发送给所述服务器。
  3. 根据权利要求1或2所述的家电设备的联动控制方法,其特征在于,所述服务器接收所述空调器和/或所述风扇检测的当前环境参数,或者所述服务器通过互联网获取所述空调器和所述风扇所处环境的当前环境参数。
  4. 根据权利要求1所述的家电设备的联动控制方法,其特征在于,所述当前环境参数包括室内环境温度,所述根据所述当前环境参数和所述场景指令生成控制指令以对所述空调器和所述风扇进行联动控制包括:
    所述服务器根据所述场景指令判断所述用户处于卧室且进入睡眠状态时,判断所述室内环境温度;
    如果所述室内环境温度大于等于第一温度阈值,则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;
    如果所述室内环境温度小于所述第一温度阈值且大于等于第二温度阈值,则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇处于关闭状态;
    如果所述室内环境温度小于所述第二温度阈值且大于等于第三温度阈值,则控制所述空调器处于关闭状态,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;
    如果所述室内环境温度小于所述第三温度阈值,则控制所述空调器和所述风扇均处于关闭状态。
  5. 根据权利要求1所述的家电设备的联动控制方法,其特征在于,所述当前环境参数包括室内环境温度,所述根据所述当前环境参数和所述场景指令生成控制指令以对所述空调器和所述风扇进行联动控制包括:
    所述服务器根据所述场景指令判断所述用户处于客厅时,判断所述室内环境温度;
    如果所述室内环境温度大于等于第一温度阈值,则控制所述空调器以第二设定温度制 冷运行,同时控制所述风扇以正常风第一预设档位运行、并以第一设定角度摇头;
    如果所述室内环境温度小于所述第一温度阈值且大于等于第三温度阈值,则控制所述空调器以第一设定温度制冷运行,同时控制所述风扇处于关闭状态,其中,所述第一设定温度小于所述第二设定温度;
    如果所述室内环境温度小于所述第三温度阈值,则控制所述空调器处于关闭状态,同时控制所述风扇以正常风第二预设档位运行、并以第一设定角度摇头,其中,所述第二预设档位小于所述第一预设档位。
  6. 根据权利要求1-5中任一项所述的家电设备的联动控制方法,其特征在于,所述家电设备还包括加湿器和空气净化器,所述加湿器将检测到的当前室内环境湿度发送给所述服务器,所述空气净化器将检测到的当前室内空气质量信息发送给所述服务器,所述服务器在对所述空调器和所述风扇进行联动控制的同时,还根据所述当前室内环境湿度和所述当前室内空气质量信息对所述加湿器和所述空气净化器进行联动控制。
  7. 根据权利要求2所述的家电设备的联动控制方法,其特征在于,所述服务器还获取所述空调器和所述风扇所处环境的视频影像,并将所述视频影像推送给所述控制终端进行播放。
  8. 根据权利要求1所述的家电设备的联动控制方法,其特征在于,还包括:
    监测所述用户的生理参数,并将所述用户的生理参数发送给所述服务器;
    所述服务器根据所述用户的生理参数调节所述控制指令。
  9. 一种家电设备联动控制系统,其特征在于,包括空调器、风扇和服务器,其中,
    所述服务器用于根据接收到的用户指令中的联动指令建立所述空调器与所述风扇之间的联动关系;
    所述服务器还用于获取所述空调器和所述风扇所处环境的当前环境参数,并根据所述当前环境参数和所述用户指令中的场景指令生成控制指令以对所述空调器和所述风扇进行联动控制。
  10. 根据权利要求9所述的家电设备联动控制系统,其特征在于,还包括控制终端,所述控制终端用于接收所述用户指令,并通过与所述服务器进行通信以将所述用户指令发送给所述服务器。
  11. 根据权利要求9或10所述的家电设备联动控制系统,其特征在于,所述服务器接收所述空调器和/或所述风扇检测的当前环境参数,或者所述服务器通过互联网获取所述空调器和所述风扇所处环境的当前环境参数。
  12. 根据权利要求9所述的家电设备联动控制系统,其特征在于,所述当前环境参数包括室内环境温度,其中,
    所述服务器根据所述场景指令判断所述用户处于卧室且进入睡眠状态时,判断所述室内环境温度;
    如果所述室内环境温度大于等于第一温度阈值,所述服务器则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;
    如果所述室内环境温度小于所述第一温度阈值且大于等于第二温度阈值,所述服务器则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇处于关闭状态;
    如果所述室内环境温度小于所述第二温度阈值且大于等于第三温度阈值,所述服务器则控制所述空调器处于关闭状态,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;
    如果所述室内环境温度小于所述第三温度阈值,所述服务器则控制所述空调器和所述风扇均处于关闭状态。
  13. 根据权利要求9所述的家电设备联动控制系统,其特征在于,所述当前环境参数包括室内环境温度,其中,
    所述服务器根据所述场景指令判断所述用户处于客厅时,判断所述室内环境温度;
    如果所述室内环境温度大于等于第一温度阈值,所述服务器则控制所述空调器以第二设定温度制冷运行,同时控制所述风扇以正常风第一预设档位运行、并以第一设定角度摇头;
    如果所述室内环境温度小于所述第一温度阈值且大于等于第三温度阈值,所述服务器则控制所述空调器以第一设定温度制冷运行,同时控制所述风扇处于关闭状态,其中,所述第一设定温度小于所述第二设定温度;
    如果所述室内环境温度小于所述第三温度阈值,所述服务器则控制所述空调器处于关闭状态,同时控制所述风扇以正常风第二预设档位运行、并以第一设定角度摇头,其中,所述第二预设档位小于所述第一预设档位。
  14. 根据权利要求9-13中任一项所述的家电设备联动控制系统,其特征在于,还包括加湿器和空气净化器,所述加湿器将检测到的当前室内环境湿度发送给所述服务器,所述空气净化器将检测到的当前室内空气质量信息发送给所述服务器,所述服务器在对所述空调器和所述风扇进行联动控制的同时,还根据所述当前室内环境湿度和所述当前室内空气质量信息对所述加湿器和所述空气净化器进行联动控制。
  15. 根据权利要求10所述的家电设备联动控制系统,其特征在于,所述服务器还用于获取所述空调器和所述风扇所处环境的视频影像,并将所述视频影像推送给所述控制终端 进行播放。
  16. 根据权利要求9所述的家电设备联动控制系统,其特征在于,还包括监测装置,所述监测装置用于监测所述用户的生理参数,并将所述用户的生理参数发送给所述服务器,所述服务器根据所述用户的生理参数调节所述控制指令。
  17. 一种服务器,其特征在于,包括:
    获取模块,用于获取用户指令,其中,所述用户指令包括联动指令和场景指令;
    通信模块,用于根据所述联动指令分别建立与空调器和风扇之间的通信连接,以建立所述空调器与所述风扇之间的联动关系;
    处理模块,用于获取所述空调器和所述风扇所处环境的当前环境参数,并根据所述当前环境参数和所述场景指令生成控制指令以对所述空调器和所述风扇进行联动控制。
  18. 根据权利要求17所述的服务器,其特征在于,所述获取模块通过与控制终端进行通信以获取所述用户指令。
  19. 根据权利要求17或18所述的服务器,其特征在于,所述处理模块接收所述空调器和/或所述风扇检测的当前环境参数,或者所述处理模块通过互联网获取所述空调器和所述风扇所处环境的当前环境参数。
  20. 根据权利要求17所述的服务器,其特征在于,所述当前环境参数包括室内环境温度,其中,
    所述处理模块根据所述场景指令判断所述用户处于卧室且进入睡眠状态时,判断所述室内环境温度;
    如果所述室内环境温度大于等于第一温度阈值,所述处理模块则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;
    如果所述室内环境温度小于所述第一温度阈值且大于等于第二温度阈值,所述处理模块则控制所述空调器进入睡眠运行模式并以第一设定温度制冷运行,同时控制所述风扇处于关闭状态;
    如果所述室内环境温度小于所述第二温度阈值且大于等于第三温度阈值,所述处理模块则控制所述空调器处于关闭状态,同时控制所述风扇进入睡眠风模式并以第一设定角度摇头;
    如果所述室内环境温度小于所述第三温度阈值,所述处理模块则控制所述空调器和所述风扇均处于关闭状态。
  21. 根据权利要求17所述的服务器,其特征在于,所述当前环境参数包括室内环境温度,其中,
    所述处理模块根据所述场景指令判断所述用户处于客厅时,判断所述室内环境温度;
    如果所述室内环境温度大于等于第一温度阈值,所述处理模块则控制所述空调器以第二设定温度制冷运行,同时控制所述风扇以正常风第一预设档位运行、并以第一设定角度摇头;
    如果所述室内环境温度小于所述第一温度阈值且大于等于第三温度阈值,所述处理模块则控制所述空调器以第一设定温度制冷运行,同时控制所述风扇处于关闭状态,其中,所述第一设定温度小于所述第二设定温度;
    如果所述室内环境温度小于所述第三温度阈值,所述处理模块则控制所述空调器处于关闭状态,同时控制所述风扇以正常风第二预设档位运行、并以第一设定角度摇头,其中,所述第二预设档位小于所述第一预设档位。
  22. 根据权利要求17-21中任一项所述的服务器,其特征在于,所述处理模块还获取当前室内环境湿度和当前室内空气质量信息,并在对所述空调器和所述风扇进行联动控制的同时,根据所述当前室内环境湿度和所述当前室内空气质量信息对加湿器和空气净化器进行联动控制。
  23. 根据权利要求18所述的服务器,其特征在于,所述处理模块还获取所述空调器和所述风扇所处环境的视频影像,并将所述视频影像推送给所述控制终端进行播放。
  24. 根据权利要求1所述的服务器,其特征在于,所述处理模块还获取所述用户的生理参数,并根据所述用户的生理参数调节所述控制指令。
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