WO2020124848A1 - 空调器的控制方法、空调器及存储介质 - Google Patents

空调器的控制方法、空调器及存储介质 Download PDF

Info

Publication number
WO2020124848A1
WO2020124848A1 PCT/CN2019/080204 CN2019080204W WO2020124848A1 WO 2020124848 A1 WO2020124848 A1 WO 2020124848A1 CN 2019080204 W CN2019080204 W CN 2019080204W WO 2020124848 A1 WO2020124848 A1 WO 2020124848A1
Authority
WO
WIPO (PCT)
Prior art keywords
wind wheel
air conditioner
air
speed
distance
Prior art date
Application number
PCT/CN2019/080204
Other languages
English (en)
French (fr)
Inventor
周向阳
张滔
杜顺开
汪先送
Original Assignee
广东美的制冷设备有限公司
美的集团股份有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 广东美的制冷设备有限公司, 美的集团股份有限公司 filed Critical 广东美的制冷设备有限公司
Publication of WO2020124848A1 publication Critical patent/WO2020124848A1/zh

Links

Classifications

    • 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
    • F24F11/70Control systems characterised by their outputs; Constructional details thereof
    • F24F11/72Control systems characterised by their outputs; Constructional details thereof for controlling the supply of treated air, e.g. its pressure
    • F24F11/74Control systems characterised by their outputs; Constructional details thereof for controlling the supply of treated air, e.g. its pressure for controlling air flow rate or air velocity
    • F24F11/77Control systems characterised by their outputs; Constructional details thereof for controlling the supply of treated air, e.g. its pressure for controlling air flow rate or air velocity by controlling the speed of ventilators
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F1/00Room units for air-conditioning, e.g. separate or self-contained units or units receiving primary air from a central station
    • F24F1/0007Indoor units, e.g. fan coil units
    • F24F1/0011Indoor units, e.g. fan coil units characterised by air outlets
    • F24F1/0014Indoor units, e.g. fan coil units characterised by air outlets having two or more outlet openings
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F1/00Room units for air-conditioning, e.g. separate or self-contained units or units receiving primary air from a central station
    • F24F1/0007Indoor units, e.g. fan coil units
    • F24F1/0018Indoor units, e.g. fan coil units characterised by fans
    • F24F1/0033Indoor units, e.g. fan coil units characterised by fans having two or more fans
    • 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
    • F24F11/64Electronic processing using pre-stored data
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2120/00Control inputs relating to users or occupants
    • F24F2120/10Occupancy
    • F24F2120/12Position of occupants
    • 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 application relates to the field of air conditioners, and in particular, to a control method of an air conditioner, an air conditioner, and a computer-readable storage medium.
  • the cross-flow fan has a soft air supply at low speed, but it has no advantage in long-distance air supply; the centrifugal fan has a long air supply distance , But the air supply is still concentrated at low speeds, and it is not possible to supply air softly in a wide range. In this way, there is a lack of an air conditioner that can not only supply air from a long distance, but also provide a wide range of soft air supply to meet the needs of users for different wind sensations at different distances.
  • the main purpose of this application is to provide a control method for an air conditioner, an air conditioner and a computer-readable storage medium. Different distances require different styles.
  • the present application provides a method for controlling an air conditioner
  • the air conditioner includes a first air outlet, a second air outlet, a counter-rotating fan and a single fan
  • the counter-rotating fan is directed to the first air outlet Air supply
  • the single fan sends air to the second air outlet
  • the control method of the air conditioner includes the following steps:
  • the wind wheel is controlled to operate at the corresponding target speed.
  • the counter-rotating fan includes a built-in wind wheel and an external wind wheel, and the air outlet of the air conditioner flows from the built-in wind wheel to the external wind wheel.
  • the steps of obtaining the target rotational speed corresponding to each wind wheel of the counter-rotating fan and the single fan respectively include:
  • the acquired target speed of the built-in wind wheel is greater than the target speed of the external wind wheel, and the air supply direction of the external wind wheel and the internal wind wheel the same.
  • control method of the air conditioner further includes:
  • the acquired target speed of the wind wheel of the single fan is greater than the target speed of the external wind wheel, and/or the target speed of the wind wheel of the single fan is less than the target speed of the built-in wind wheel.
  • the counter-rotating fan includes a built-in wind wheel and an external wind wheel, and the air outlet of the air conditioner flows from the built-in wind wheel to the external wind wheel.
  • the steps of obtaining the target rotational speed corresponding to each wind wheel of the counter-rotating fan and the single fan respectively include:
  • the acquired target speed of the built-in wind wheel is less than the target speed of the external wind wheel.
  • the wind direction is the same.
  • control method of the air conditioner further includes:
  • the acquired target speed of the wind wheel of the single fan is less than the target speed of the external wind wheel, and/or the target speed of the wind wheel of the single fan is greater than the target speed of the built-in wind wheel.
  • the step of separately obtaining the target rotational speed corresponding to each wind wheel of the counter-rotating fan and the single fan according to the air supply distance includes:
  • the step of separately obtaining the target rotational speed corresponding to each wind wheel of the counter-rotating fan and the single fan according to the air supply distance includes:
  • the rotation speed of the wind wheel of the single fan is adjusted according to the air supply distance, and the rotation speed corresponding to each wind wheel of the counter-rotating fan is adjusted to the lowest speed ;
  • the step of controlling the wind wheel to operate at the corresponding target speed includes:
  • the wind wheel is controlled to stop running. .
  • the step of obtaining the air supply distance includes:
  • the blowing distance is generated based on the distance.
  • the step of generating the blowing distance according to the distance includes:
  • An average value of the distance is calculated, and the air supply distance is obtained according to the average value.
  • the present application also provides an air conditioner, the air conditioner includes a first air outlet, a second air outlet, a counter-rotating fan and a single fan, the counter-rotating fan sends air to the first air outlet , The single fan sends air to the second air outlet, and the air conditioner includes:
  • the air conditioner includes a memory, a processor, and a control program of the air conditioner stored on the memory and operable on the processor.
  • the control program of the air conditioner is executed by the processor, the air conditioner is implemented as described above Of the control method of the device.
  • the present application also provides a computer-readable storage medium on which a control program for an air conditioner is stored.
  • the control program of the air conditioner is executed by a processor, the air conditioner is implemented as described above Steps of the control method.
  • the air conditioner control method, air conditioner, and computer-readable storage medium provided by the present application obtain air supply distances; according to the air supply distances, obtain targets corresponding to each wind wheel of the counter-rotating fan and the single fan, respectively Speed; control the wind wheel to run at the corresponding target speed.
  • an air conditioner that can not only supply air from a long distance, but also provide soft air supply in a large range, it meets the needs of users for different wind sensations at different distances.
  • FIG. 1 is a schematic diagram of a hardware operating environment of a terminal according to an embodiment of the present application
  • FIG. 2 is a schematic flowchart of a first embodiment of a control method for an air conditioner of this application
  • FIG. 3 is a schematic flowchart of a second embodiment of a control method for an air conditioner of this application.
  • FIG. 4 is a schematic flowchart of a third embodiment of a control method for an air conditioner of this application.
  • FIG. 5 is a schematic flowchart of a fourth embodiment of a control method for an air conditioner of this application.
  • FIG. 6 is a front view of the air conditioner of this application.
  • FIG. 7 is a side view of the air conditioner of the present application.
  • the present application provides a control method for an air conditioner.
  • an air conditioner that can not only supply air from a long distance, but also provide soft air supply in a wide range, it meets the needs of users for different wind sensations at different distances.
  • FIG. 1 is a schematic diagram of a hardware operating environment of a terminal according to an embodiment of the present application
  • the terminal in the embodiment of the present application may be an air conditioner.
  • the air conditioner may include a processor 1001 such as a CPU, a memory 1002, a communication bus 1003, a counter-rotating fan 1004, and a single fan 1005.
  • the communication bus 1003 is used to realize the connection communication between the various components in the air conditioner.
  • the memory 1002 may be a high-speed RAM memory or a stable memory (non-volatile memory), such as disk storage.
  • the memory 1002 may optionally be a storage device independent of the foregoing processor 1001.
  • FIG. 1 does not constitute a limitation on the terminal in the embodiments of the present application, and may include more or fewer components than those illustrated, or a combination of certain components, or different components. Layout.
  • the memory 1002 as a computer storage medium may include a control program of the air conditioner.
  • the processor 1001 may be used to call the control program of the air conditioner stored in the memory 1002, and perform the following operations:
  • the wind wheel is controlled to operate at the corresponding target speed.
  • the processor 1001 may call the control program of the air conditioner stored in the memory 1002, and also perform the following operations:
  • the acquired target speed of the built-in wind wheel is greater than the target speed of the external wind wheel, and the air supply direction of the external wind wheel and the internal wind wheel the same.
  • the processor 1001 may call the control program of the air conditioner stored in the memory 1002, and also perform the following operations:
  • the acquired target speed of the wind wheel of the single fan is greater than the target speed of the external wind wheel, and/or the target speed of the wind wheel of the single fan is less than the target speed of the built-in wind wheel.
  • the processor 1001 may call the control program of the air conditioner stored in the memory 1002, and also perform the following operations:
  • the acquired target speed of the built-in wind wheel is less than the target speed of the external wind wheel.
  • the wind direction is the same.
  • the processor 1001 may call the control program of the air conditioner stored in the memory 1002, and also perform the following operations:
  • the acquired target speed of the wind wheel of the single fan is less than the target speed of the external wind wheel, and/or the target speed of the wind wheel of the single fan is greater than the target speed of the built-in wind wheel.
  • the processor 1001 may call the control program of the air conditioner stored in the memory 1002, and also perform the following operations:
  • the processor 1001 may call the control program of the air conditioner stored in the memory 1002, and also perform the following operations:
  • the rotation speed of the wind wheel of the single fan is adjusted according to the air supply distance, and the rotation speed corresponding to each wind wheel of the counter-rotating fan is adjusted to the lowest speed ;
  • the processor 1001 may call the control program of the air conditioner stored in the memory 1002, and also perform the following operations:
  • the wind wheel is controlled to stop running. .
  • the processor 1001 may call the control program of the air conditioner stored in the memory 1002, and also perform the following operations:
  • the blowing distance is generated based on the distance.
  • the processor 1001 may call the control program of the air conditioner stored in the memory 1002, and also perform the following operations:
  • An average value of the distance is calculated, and the air supply distance is obtained according to the average value.
  • the air conditioner is provided with a plurality of air outlets, wherein at least one of the air outlets is provided with a counter-rotating fan 10, and at least one of the air outlets is provided with a single fan 20, the counter-rotating fan includes
  • the two oppositely arranged fans are a built-in wind wheel 11 and an external wind wheel 12, respectively.
  • the air outlet of the air conditioner flows from the internal wind wheel to the external wind wheel; the air conditioner obtains the air supply distance, And obtain the target rotational speed of the counter-rotating fan and the single fan according to the air supply distance, and control the counter-rotating fan and the single fan to operate at the target speed.
  • Wind air conditioners meet the needs of users for different wind sensations at different distances.
  • control method of the air conditioner includes:
  • Step S10 Obtain the air supply distance.
  • the air conditioner is provided with a plurality of air outlets.
  • at least one of the air outlets is provided with a counter-rotating fan 10
  • at least one of the air outlets is provided with a single fan 20.
  • the counter-rotating fan 10 includes two wind wheels arranged oppositely, namely a built-in wind wheel 11 and an external wind wheel 12, the distance between the built-in wind wheel 11 and the air outlet is greater than the distance between the external wind wheel 12 and the air outlet
  • the single fan 20 may be an axial fan or an oblique flow fan.
  • the air conditioner is preferably provided with two air outlets, wherein the first air outlet is provided with a pair of cyclones 10, the second air outlet is provided with a single fan 20, and the pair of cyclones are directed to the first air outlet
  • the single fan sends air to the second air outlet.
  • the first air outlet is set as an upper air outlet of the air conditioner, and the second air outlet is set as a lower air outlet of the air conditioner. In this way, the air blowing effect to the cyclone fan can be increased.
  • An image acquisition device is provided on the air conditioner, and the image acquisition device may be a camera.
  • the air conditioner can determine the user of the space where the air conditioner is located through the image acquisition device, or it can be through the radar sensor.
  • the air supply distance has multiple acquisition methods, which may be acquired based on receiving a remote controller instruction, or may be acquired through an image acquisition device or a distance detection device.
  • the acquisition method of the air delivery distance is not limited to the above, and may be based on The actual situation needs to determine how to obtain the air supply distance.
  • the air conditioner obtains the air supply distance
  • the distance between the user and the air conditioner is acquired; the air supply distance is generated according to the distance.
  • each user may correspond to an air supply distance, or multiple users may correspond to an average air supply distance. Therefore, the step of generating the blowing distance according to the distance may be by calculating an average value of the distance, and obtaining the blowing distance according to the average value.
  • Step S20 Acquire target speeds corresponding to the wind wheels of the counter-rotating fan and the single fan respectively according to the air supply distance.
  • Step S30 Control the wind wheel to run at the corresponding target speed.
  • the counter-rotating fan includes a built-in wind wheel and an external wind wheel.
  • the air conditioner can obtain the target speed of the built-in wind wheel of the cyclone and the target speed of the external wind wheel and the wind wheel of the single fan according to the determined air supply distance. Target speed.
  • the corresponding distance interval is determined according to the air supply distance, and then the target rotation speed corresponding to each wind wheel in the distance interval is obtained according to the distance interval.
  • the target rotation speed of each wind wheel in each distance section may be preset.
  • the speed of the built-in wind wheel is greater than the speed of the external wind wheel
  • set The speed of the wind wheel of a single fan is less than the sum of the speeds of the built-in wind wheel and the external wind wheel.
  • the rotation speed of the wind wheel of the single fan is set to be greater than the target rotation speed of the external wind wheel
  • the target speed of the wind wheel of the single fan is set to be less than the target rotation speed of the built-in wind wheel.
  • the rotational speed of the wind wheel of the single fan is set to be greater than the target rotational speed of the external wind wheel, and the rotational speed of the wind wheel of the single fan is set to be less than the sum of the rotational speeds of the internal wind wheel and the external wind wheel.
  • the target speed of the built-in wind wheel of the cyclone is 650 rpm
  • the target speed of the external wind wheel is 570 rpm
  • the target speed of the fan is 600 rpm. According to this target speed combination, the long-distance soft air supply at the air supply distance of 9 meters can be achieved.
  • the rotation speed of the built-in wind wheel is less than the rotation speed of the external wind wheel
  • the rotation speed of the wind wheel of the single fan is set Less than the sum of the rotation speed of the built-in wind wheel and the external wind wheel.
  • the rotation speed of the wind wheel of the single fan is set to be less than the target rotation speed of the external wind wheel
  • the target speed of the wind wheel of the single fan is set to be greater than the target rotation speed of the built-in wind wheel.
  • the rotation speed of the wind wheel of the single fan is set to be greater than the target rotation speed of the built-in wind wheel, and the rotation speed of the wind wheel of the single fan is set to be less than the sum of the rotation speeds of the built-in wind wheel and the external wind wheel.
  • the target speed of the built-in wind wheel of the cyclone is 250 rpm
  • the target speed of the external wind wheel is 400 rpm.
  • the target speed of the fan is 300 rpm, and according to this target speed combination, a short-distance soft air supply at the air supply distance of 4 meters can be achieved.
  • the preset distance is 5 meters.
  • the target rotational speed of the internal and external wind wheels of the cyclone can be set to two wind turbines with a distance of less than 2 meters, respectively: the internal wind wheel is 100 rpm, the external wind wheel is 250 Revolutions per minute; the target speeds of two fans at a distance of 2-4 meters are: built-in wind wheel 200 rpm, external wind wheel 400 rpm; two distances 4-5 meters
  • the target speeds of the fans are: 400 rpm for the built-in wind wheel and 550 rpm for the external wind wheel;
  • the target speeds of the two fans at a distance of 5-8 meters are: 600 rpm for the built-in wind wheel, 500 rpm for external wind wheel;
  • the target speed of two fans at a distance of 8-10 meters are: 700 rpm for built-in wind wheel, 600 rpm for external wind wheel; 10-12 for distance range
  • the target speeds of the two fans at the meter are: 800 rpm for the built-in wind wheel and 700 rpm for the external wind wheel.
  • the rotation speed of the wind wheel of the single fan can be set to 200 rpm when the distance interval is less than 2 meters; set to 350 rpm when the distance interval is 2-4 meters; and the distance interval is 4- Set to 450 rpm at 5 meters; 550 rpm at 5-8 meters; 650 rpm at 8-10 meters; 10 to 12 meters 750 rpm.
  • the acquired target speed of the built-in wind wheel is greater than the target speed of the external wind wheel, and the air supply direction of the external wind wheel and the internal wind wheel The same, and the obtained target speed of the wind wheel of the single fan is greater than the target speed of the external wind wheel, and/or the target speed of the wind wheel of the single fan is less than the target speed of the built-in wind wheel.
  • the acquired target speed of the built-in wind wheel is less than the target speed of the external wind wheel.
  • the wind direction is the same, and the obtained target speed of the wind wheel of the single fan is less than the target speed of the external wind wheel, and/or the target speed of the wind wheel of the single fan is greater than the target speed of the built-in wind wheel Rotating speed.
  • the supply air interval may be determined according to the supply air distance first, and the rotation speed of the built-in wind turbine in the supply air interval may be acquired as the target rotation speed of the built-in wind turbine, and the The rotation speed of the external wind wheel in the air supply section is taken as the target rotation speed of the external wind wheel. Then calculate the sum of the target speed of the built-in wind wheel and the external wind wheel, and then find the average speed between the two, and use the calculated average speed as the target speed of the wind wheel of the single fan.
  • the air conditioner includes a first air outlet, a second air outlet, a counter-rotating fan and a single fan, the counter-rotating fan sends air to the first air outlet, and the single fan
  • the control method of the air conditioner includes: obtaining an air supply distance; according to the air supply distance, respectively obtaining a target rotational speed corresponding to each wind wheel of the counter-rotating fan and the single fan; The wind wheel is controlled to operate at the corresponding target speed.
  • the respective phases of the wind wheels of the pair of cyclones and the single fan are obtained respectively
  • the steps of the corresponding target speed include:
  • Step S21 When the air supply distance is greater than the preset distance, adjust the rotation speed corresponding to each wind wheel of the pair of cyclones according to the air supply distance, and adjust the rotation speed of the wind wheel of the single fan to the lowest Rotating speed.
  • step S23 the adjusted rotation speed is used as the target rotation speed.
  • the air supply interval when the air supply distance is greater than the preset distance, the air supply interval may be determined according to the air supply distance, and the rotational speeds of the internal and external wind wheels of the cyclone fan may be adjusted to be set in the air supply interval At the same time, the speed of the wind wheel of the single fan is adjusted to the minimum speed.
  • the value range of the minimum rotation speed of the wind wheel of the single fan may be 0 rpm to 100 rpm.
  • the preset distance is 2 meters.
  • the minimum speed of the wind wheel of the single fan is set to 50 rpm.
  • each wind turbine phase of the counter cyclone is adjusted according to the air supply distance Corresponding rotation speed, and adjust the rotation speed of the wind wheel of the single fan to the lowest rotation speed.
  • the preset threshold is set to 1 person. In this way, when the user's demand for air supply is small, and when the user is at a long distance, the user can be supplied with air by controlling the cyclone to meet the user's air demand, while reducing the speed of the fan wheel of the single fan or closing the single fan The wind wheel of the fan to save energy.
  • the rotation speed corresponding to each wind wheel of the pair of cyclones is adjusted according to the air supply distance, and the speed of the wind wheel of the single fan is adjusted The speed is adjusted to the lowest speed; the adjusted speed is used as the target speed.
  • the wind wheels of the counter-rotating fan and the single fan are respectively obtained according to the air supply distance
  • the steps for the corresponding target speed include:
  • Step S22 When the air supply distance is less than or equal to a preset distance, adjust the rotation speed of the wind wheel of the single fan according to the air supply distance, and adjust the rotation speed corresponding to each wind wheel of the counter-rotating fan Is the lowest speed.
  • step S23 the adjusted rotation speed is used as the target rotation speed.
  • the air supply interval when the air supply distance is less than or equal to the preset distance, the air supply interval may be determined according to the air supply distance, and the rotation speed of the wind wheel of the single fan may be adjusted to the speed set in the air supply interval. , Adjust the rotation speed of the built-in wind wheel and the external wind wheel of the cyclone to the lowest speed.
  • the value range of the minimum rotation speed of the built-in wind wheel may be 0 to 100 rpm; the value range of the minimum rotation speed of the external wind wheel may be 0 to 100 rpm.
  • the preset distance is 2 meters.
  • the minimum speed of the built-in wind wheel is set to 50 rpm; the minimum speed of the external wind wheel is set to 50 rpm.
  • each wind turbine phase of the counter cyclone is adjusted according to the air supply distance Corresponding rotation speed, and adjust the rotation speed of the wind wheel of the single fan to the lowest rotation speed.
  • the preset threshold is set to 1 person. In this way, when the user's demand for air supply is small, and when the user is closer to the air conditioner, such as within 2 meters, the single fan is controlled to supply air to the user to meet the user's air supply demand, while reducing the cyclone Rotate the speed of each wind wheel of the turbine or turn off each wind wheel of the cyclone to save energy.
  • the adjusted rotation speed of the built-in wind wheel, external wind wheel and single fan wind wheel of the counter-rotating fan is taken as the target speed, and the external wind wheel, built-in wind wheel and single fan wind wheel of the counter-rotating fan are controlled according to Run at the corresponding target speed.
  • the built-in wind wheel is controlled to stop running; when the minimum speed of the external wind wheel is set to 0 rpm, the external wind wheel is controlled to stop running.
  • the rotation speed of the wind wheel of the single fan is adjusted according to the air supply distance, and each wind wheel of the counter-rotating fan is phased The corresponding speed is adjusted to the lowest speed; the adjusted speed is used as the target speed.
  • the single fan is controlled to supply air to the user to meet the user's air demand, while reducing the speed of each wind wheel of the cyclone or turning off each wind of the cyclone Round to save energy.
  • the step of obtaining the air supply distance includes:
  • Step S11 When it is detected that there is a user in the function space of the air conditioner, obtain the distance between the user and the air conditioner.
  • Step S12 Generate the air supply distance according to the distance.
  • Step S13 Calculate an average value of the distance, and obtain the air supply distance according to the average value.
  • the air supply distance may be obtained by acquiring the distance between a user and the air conditioner as the air supply distance, or by generating an average distance based on the distances between multiple users and the air conditioner to This average distance is taken as the air supply distance. For example, there are two users in the detected space of the air conditioner, one user is 5 meters away from the air conditioner, and the other user is 2 meters away from the air conditioner, so the calculated air supply distance is 3.5 meters.
  • the acquisition of the air supply distance may also be obtained by receiving the air supply distance data input by the user.
  • the air supply distance is generated according to the distance, and the distance is calculated The average value is obtained based on the average value. In this way, the air supply distance of the air conditioner is obtained.
  • the present application also proposes an air conditioner including a first air outlet, a second air outlet, a counter-rotating fan and a single fan, the counter-rotating fan sends air to the first air outlet, the A single fan sends air to the second air outlet, the air conditioner includes a memory, a processor, and a control program of the air conditioner stored on the memory and operable on the processor, the processor executes the The control program implements the steps of the air conditioner control method described in the above embodiment.
  • the present application also proposes a computer-readable storage medium, wherein the computer-readable storage medium includes a control program for an air conditioner, which is implemented when the processor is executed by a processor as described in the above embodiment The steps of the air conditioner control method.
  • the methods in the above embodiments can be implemented by means of software plus a necessary general hardware platform, and of course, can also be implemented by hardware, but in many cases the former is better Implementation.
  • the technical solution of the present application can be embodied in the form of a software product in essence or part that contributes to the existing technology, and the computer software product is stored in a storage medium (such as ROM/RAM as described above) , Disk, CD), including several instructions to make a terminal device (which can be a TV, mobile phone, computer, server, air conditioner, or network equipment, etc.) to perform the method described in each embodiment of the present application.

Landscapes

  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Signal Processing (AREA)
  • Physics & Mathematics (AREA)
  • Fuzzy Systems (AREA)
  • Mathematical Physics (AREA)
  • Fluid Mechanics (AREA)
  • Air Conditioning Control Device (AREA)

Abstract

本申请公开了一种空调器的控制方法,所述空调器包括第一出风口、第二出风口、对旋风机和单风机,所述对旋风机向所述第一出风口送风,所述单风机向所述第二出风口送风,所述空调器的控制方法包括以下步骤:获取送风距离;以及根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速;控制所述风轮以对应的所述目标转速运行。本申请还公开了一种空调器以及计算机可读存储介质。

Description

空调器的控制方法、空调器及存储介质
相关申请
本申请要求2018年12月20日申请的,申请号为201811569111.9,名称为“空调器的控制方法、空调器及存储介质”的中国专利申请的优先权,在此将其全文引入作为参考。
技术领域
本申请涉及空调器领域,尤其涉及一种空调器的控制方法、空调器以及计算机可读存储介质。
背景技术
在现有的空调器中,大多都是搭载单一型式的贯流风机或者离心风机,贯流风风机低转速下送风柔和,但在远距离送风方面不具有优势;离心风机送风距离较远,但低转速下仍然送风集中,无法大范围柔和送风。这样一来,缺乏一种既能远距离送风,又能大范围柔和送风的空调器,以满足用户在不同距离对不同风感的需求。
申请内容
本申请的主要目的在于提供一种空调器的控制方法、空调器以及计算机可读存储介质,通过实现一种既能远距离送风,又能大范围柔和送风的空调器,满足了用户在不同距离对不同风感的需求。
为实现上述目的,本申请提供一种空调器的控制方法,所述空调器包括第一出风口、第二出风口、对旋风机和单风机,所述对旋风机向所述第一出风口送风,所述单风机向所述第二出风口送风,所述空调器的控制方法包括以下步骤:
获取送风距离;
根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速;
控制所述风轮以对应的所述目标转速运行。
可选地,所述对旋风机包括内置风轮和外置风轮,所述空调器的出风,由所述内置风轮流向所述外置风轮,所述根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速的步骤包括:
在所述送风距离大于预设距离时,获取到的所述内置风轮的目标转速大于所述外置风轮的目标转速,所述外置风轮和所述内置风轮的送风方向相同。
可选地,所述空调器的控制方法还包括:
获取到的所述单风机的风轮的目标转速大于所述外置风轮的目标转速,和/或所述单风机的风轮的目标转速小于所述内置风轮的目标转速。
可选地,所述对旋风机包括内置风轮和外置风轮,所述空调器的出风,由所述内置风轮流向所述外置风轮,所述根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速的步骤包括:
在所述送风距离小于或等于所述预设距离时,获取到的所述内置风轮的目标转速小于所述外置风轮的目标转速,所述外置风轮以及内置风轮的送风方向相同。
可选地,所述空调器的控制方法还包括:
获取到的所述单风机的风轮的目标转速小于所述外置风轮的目标转速,和/或所述单风机的风轮的目标转速大于所述内置风轮的目标转速。
可选地,所述根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速的步骤包括:
及在所述送风距离大于预设距离时,根据所述送风距离调整所述对旋风机的各个风轮相对应的转速,并将所述单风机的风轮的转速调整为最低转速;
将调整后的转速作为目标转速。
可选地,所述根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速的步骤包括:
在所述送风距离小于或者等于预设距离时,根据所述送风距离调整所述单风机的风轮的转速,并将所述对旋风机的各个风轮相对应的转速调整为最低转速;
将调整后的转速作为目标转速。
可选地,所述控制所述风轮以对应的所述目标转速运行的步骤包括:
在所述风轮的所述目标转速为零转速时,控制所述风轮停止运行。。
可选地,所述获取送风距离的步骤包括:
在检测到所述空调器的作用空间内存在用户时,获取用户与所述空调器之间的距离;
根据所述距离生成所述送风距离。
可选地,所述根据所述距离生成所述送风距离的步骤包括:
计算所述距离的平均值,根据所述平均值得到所述送风距离。
为实现上述目的,本申请还提供一种空调器,所述空调器包括第一出风口、第二出风口、对旋风机和单风机,所述对旋风机向所述第一出风口送风,所述单风机向所述第二出风口送风,所述空调器包括:
所述空调器包括存储器、处理器及存储在所述存储器上并可在所述处理器上运行的空调器的控制程序,所述空调器的控制程序被所述处理器执行时实现如上述空调器的控制方法的步骤。
为实现上述目的,本申请还提供一种计算机可读存储介质,所述计算机可读存储介质上存储有空调器的控制程序,所述空调器的控制程序被处理器执行时实现如上述空调器的控制方法的步骤。
本申请提供的空调器的控制方法、空调器以及计算机可读存储介质,获取送风距离;根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速;控制所述风轮以对应的所述目标转速运行。这样,通过实现一种既能远距离送风,又能大范围柔和送风的空调器,满足了用户在不同距离对不同风感的需求。
附图说明
图1为本申请实施例方案涉及的实施例终端的硬件运行环境示意图;
图2为本申请空调器的控制方法第一实施例的流程示意图;
图3为本申请空调器的控制方法第二实施例的流程示意图;
图4为本申请空调器的控制方法第三实施例的流程示意图;
图5为本申请空调器的控制方法第四实施例的流程示意图;
图6为本申请空调器的正视图;
图7为本申请空调器的侧视图。
本申请目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
具体实施方式
应当理解,此处所描述的具体实施例仅仅用以解释本申请,并不用于限定本申请。
本申请提供一种空调器的控制方法,通过实现一种既能远距离送风,又能大范围柔和送风的空调器,满足了用户在不同距离对不同风感的需求。
如图1所示,图1是本申请实施例方案涉及的实施例终端的硬件运行环境示意图;
本申请实施例终端可以是空调器。
如图1所示,该空调器可以包括:处理器1001,例如CPU,存储器1002,通信总线1003,对旋风机1004以及单风机1005。其中,通信总线1003用于实现该空调器中各组成部件之间的连接通信。存储器1002可以是高速RAM存储器,也可以是稳定的存储器(non-volatile memory),例如磁盘存储器。存储器1002可选的还可以是独立于前述处理器1001的存储装置。
本领域技术人员可以理解,图1中示出的终端的结构并不构成对本申请实施例终端的限定,可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件布置。
如图1所示,作为一种计算机存储介质的存储器1002中可以包括空调器的控制程序。
在图1所示的服务器中,处理器1001可以用于调用存储器1002中存储的空调器的控制程序,并执行以下操作:
获取送风距离;
根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速;
控制所述风轮以对应的所述目标转速运行。
可选地,处理器1001可以调用存储器1002中存储的空调器的控制程序,还执行以下操作:
在所述送风距离大于预设距离时,获取到的所述内置风轮的目标转速大于所述外置风轮的目标转速,所述外置风轮和所述内置风轮的送风方向相同。
可选地,处理器1001可以调用存储器1002中存储的空调器的控制程序,还执行以下操作:
获取到的所述单风机的风轮的目标转速大于所述外置风轮的目标转速,和/或所述单风机的风轮的目标转速小于所述内置风轮的目标转速。
可选地,处理器1001可以调用存储器1002中存储的空调器的控制程序,还执行以下操作:
在所述送风距离小于或等于所述预设距离时,获取到的所述内置风轮的目标转速小于所述外置风轮的目标转速,所述外置风轮以及内置风轮的送风方向相同。
可选地,处理器1001可以调用存储器1002中存储的空调器的控制程序,还执行以下操作:
获取到的所述单风机的风轮的目标转速小于所述外置风轮的目标转速,和/或所述单风机的风轮的目标转速大于所述内置风轮的目标转速。
可选地,处理器1001可以调用存储器1002中存储的空调器的控制程序,还执行以下操作:
在所述送风距离大于预设距离时,根据所述送风距离调整所述对旋风机的各个风轮相对应的转速,并将所述单风机的风轮的转速调整为最低转速;
将调整后的转速作为目标转速。
可选地,处理器1001可以调用存储器1002中存储的空调器的控制程序,还执行以下操作:
在所述送风距离小于或者等于预设距离时,根据所述送风距离调整所述单风机的风轮的转速,并将所述对旋风机的各个风轮相对应的转速调整为最低转速;
将调整后的转速作为目标转速。
可选地,处理器1001可以调用存储器1002中存储的空调器的控制程序,还执行以下操作:
在所述风轮的所述目标转速为零转速时,控制所述风轮停止运行。。
可选地,处理器1001可以调用存储器1002中存储的空调器的控制程序,还执行以下操作:
在检测到所述空调器的作用空间内存在用户时,获取用户与所述空调器之间的距离;
根据所述距离生成所述送风距离。
可选地,处理器1001可以调用存储器1002中存储的空调器的控制程序,还执行以下操作:
计算所述距离的平均值,根据所述平均值得到所述送风距离。
本实施例根据上述方案,所述空调器设有多个出风口,其中,至少一个所述出风口设有对旋风机10,以及至少一个所述出风口设有单风机20,对旋风机包括相对设置的二个风机,分别为内置风轮11和外置风轮12,所述空调器的出风,由所述内置风轮流向所述外置风轮,;空调器获取送风距离,并根据所述送风距离获取所述对旋风机和所述单风机的目标转速,控制所述对旋风机和所述单风机以所述目标转速运行。这样,通过给用户配置至少一个对旋风机10送风,或者给多个用户配置至少一个对旋风机10以及单风机20送风,实现一种既能远距离送风,又能大范围柔和送风的空调器,满足了用户在不同距离对不同风感的需求。
参照图2,在一实施例中,所述空调器的控制方法包括:
步骤S10、获取送风距离。
本实施例中,参照图6,所述空调器设有多个出风口,参照图7,至少一个所述出风口设有对旋风机10,以及至少一个所述出风口设有单风机20,其中,所述对旋风机10包括相对设置的二个风轮,分别为内置风轮11和外置风轮12,内置风轮11与出风口的距离大于外置风轮12与出风口的距离,在空调器通过对旋风机出风时,输出风流由内置风轮流向外置风轮,再经出风口出风;所述单风机20可以是轴流风机,也可以斜流风机。
可选地,所述空调器优选设置两个出风口,其中,第一出风口设置有对旋风机10,第二出风口设置有单风机20,所述对旋风机向所述第一出风口送风,所述单风机向所述第二出风口送风。在空调器通过对旋风机出风时,输出风流由内置风轮流经外置风轮,再通过第一出风口出风。
可选地,所述第一出风口设置为空调器的上出风口,所述第二出风口设置为空调器的下出风口。这样,可以增大对旋风机的送风效果。
空调器上设有图像采集装置,图像采集装置可以为摄像头。空调器可以通过图像采集装置来确定空调器所在空间的用户,也可以是通过雷达感应器。
所述送风距离具有多种获取方式,可以是基于接收到遥控器指令获取的,也可以是通过图像采集装置或者距离检测装置获取的,送风距离的获取方式不限于上述所述,可以根据实际情况需要确定送风距离的获取方式。
具体地,在空调器获取送风距离时,在检测到所述空调器的作用空间内存在用户时,获取用户与所述空调器之间的距离;根据所述距离生成所述送风距离。需要说明的是,在检测到多个用户时,根据实际情况需要,可以是每个用户都对应一个送风距离,也可以是多个用户对应着一个平均的送风距离。因此,所述根据所述距离生成所述送风距离的步骤可以是通过计算所述距离的平均值,根据所述平均值得到所述送风距离。
步骤S20、根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速。
步骤S30、控制所述风轮以对应的所述目标转速运行。
对旋风机包括内置风轮和外置风轮,空调器可以根据确定的送风距离,分别获取对旋风机的内置风轮的目标转速和外置风轮的目标转速,以及单风机的风轮的目标转速。
具体地,根据送风距离确定对应的距离区间,然后根据所述距离区间获取各个风轮在该距离区间对应的目标转速。其中,可以是预先设置各个风轮在各距离区间的目标转速。
首先,预先设置一个预设距离,在设置各个风轮在各个距离区间的目标转速时,设置距离大于预设距离的各个距离区间中,内置风轮的转速大于外置风轮的转速,以及设置单风机的风轮的转速小于内置风轮和外置风轮的转速之和。可选地,设置单风机的风轮的转速大于所述外置风轮的目标转速,以及设置所述单风机的风轮的目标转速小于所述内置风轮的目标转速。可选地,设置单风机的风轮的转速大于所述外置风轮的目标转速,以及设置单风机的风轮的转速小于内置风轮和外置风轮的转速之和。
例如,在送风距离为9米,以及预设距离为5米时,此时对旋风机的内置风轮的目标转速650转/分钟,外置风轮的目标转速为570转/分钟,单风机的目标转速为600转/分钟,按此目标转速组合实现9米送风距离处的远距离柔和送风。
在设置各个风轮在各个距离区间的目标转速时,设置距离小于或者等于预设距离的各个距离区间中,内置风轮的转速小于外置风轮的转速,以及设置单风机的风轮的转速小于内置风轮和外置风轮的转速之和。可选地,设置单风机的风轮的转速小于所述外置风轮的目标转速,以及设置所述单风机的风轮的目标转速大于所述内置风轮的目标转速。可选地,设置单风机的风轮的转速大于所述内置风轮的目标转速,以及设置单风机的风轮的转速小于内置风轮和外置风轮的转速之和。
例如,在送风距离为4米,以及预设距离为5米时,此时对旋风机的内置风轮的目标转速250转/分钟,外置风轮的目标转速为400转/分钟,单风机的目标转速为300转/分钟,按此目标转速组合实现4米送风距离处的近距离柔和送风。
可选地,所述预设距离为5米。
可选地,对旋风机的内置风轮和外置风轮目标转速的设置可以是距离区间小于2米的两个风机的目标转速分别为:内置风轮100转/分钟,外置风轮250转/分钟;距离区间为2-4米处的两个风机的目标转速分别为:内置风轮200转/分钟,外置风轮400转/分钟;距离区间为4-5米处的两个风机的目标转速分别为:内置风轮400转/分钟,外置风轮550转/分钟;距离区间为5-8米处的两个风机的目标转速分别为:内置风轮600转/分钟,外置风轮500转/分钟;距离区间为8-10米处的两个风机的目标转速分别为:内置风轮700转/分钟,外置风轮600转/分钟;距离区间为10-12米处的两个风机的目标转速分别为:内置风轮800转/分钟,外置风轮700转/分钟。
可选地,单风机的风轮的转速设置,可以是在距离区间小于2米的时设置为200转/分钟;距离区间为2-4米时设置为350转/分钟;距离区间为4-5米时设置为450转/分钟;距离区间为5-8米时设置为550转/分钟;距离区间为8-10米时设置为650转/分钟;距离区间为10-12米时设置为750转/分钟。
这样,在送风距离大于预设距离时,获取到的所述内置风轮的目标转速大于所述外置风轮的目标转速,所述外置风轮和所述内置风轮的送风方向相同,以及获取到的所述单风机的风轮的目标转速大于所述外置风轮的目标转速,和/或所述单风机的风轮的目标转速小于所述内置风轮的目标转速。
在所述送风距离小于或等于所述预设距离时,获取到的所述内置风轮的目标转速小于所述外置风轮的目标转速,所述外置风轮以及内置风轮的送风方向相同,以及获取到的所述单风机的风轮的目标转速小于所述外置风轮的目标转速,和/或所述单风机的风轮的目标转速大于所述内置风轮的目标转速。
可选地,在获取单机的风轮的目标转速时,可以是先根据送风距离确定送风区间,并获取在该送风区间中内置风轮的转速作为内置风轮的目标转速,以及该送风区间中外置风轮的转速作为外置风轮的目标转速。然后计算内置风轮和外置风轮的目标转速之和,再求两者之间的平均转速,并将计算得到的平均转速作为单风机的风轮的目标转速。
在获取到对旋风机的外置风轮和内置风轮的目标转速,以及单风机的风轮的目标转速后,控制对旋风机的外置风轮、内置风轮和单风机的风轮根据相对应的目标转速运行。
在第一实施例中,所述空调器包括第一出风口、第二出风口、对旋风机和单风机,所述对旋风机向所述第一出风口送风,所述单风机向所述第二出风口送风,所述空调器的控制方法包括:获取送风距离;根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速;控制所述风轮以对应的所述目标转速运行。这样,通过实现一种既能远距离送风,又能大范围柔和送风的空调器,满足了用户在不同距离对不同风感的需求。
在第二实施例中,如图3所示,在上述图2所示的实施例基础上,所述根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速的步骤包括:
步骤S21、在所述送风距离大于预设距离时,根据所述送风距离调整所述对旋风机的各个风轮相对应的转速,并将所述单风机的风轮的转速调整为最低转速。
步骤S23、将调整后的转速作为目标转速。
本实施例中,可以是在送风距离大于预设距离时,根据送风距离确定送风区间,并将对旋风机的内置风轮和外置风轮的转速调整为在该送风区间设定的转速,同时,将单风机的风轮的转速调整为最低转速。可选地,单风机的风轮的最低转速的取值区间可以是0转/分钟至100转/分钟。
可选地,预设距离为2米。
可选地,单风机的风轮的最低转速设置为50转/分钟。
需要说明的是,根据实际情况需要,可以是在检测到空调器的作用空间内的用户数量小于或等于预设阈值时,则根据所述送风距离调整所述对旋风机的各个风轮相对应的转速,并将所述单风机的风轮的转速调整为最低转速。可选地,所述预设阈值设置为1人。这样,在用户对送风需求小时,并且在用户处于较远距离时,通过控制对旋风机为用户送风,以满足用户的送风需求的同时,降低单风机的风轮的转速或者关闭单风机的风轮,以节约能源。
将调整后的对旋风机的内置风轮、外置风轮,以及单风机的风轮的转速作为目标转速,并控制对旋风机的外置风轮、内置风轮和单风机的风轮根据相对应的目标转速运行。其中,在单风机的风轮的最低转速设置为0转/分钟时,控制单风机的风轮停止运行。
在第二实施例中,在所述送风距离大于预设距离时,根据所述送风距离调整所述对旋风机的各个风轮相对应的转速,并将所述单风机的风轮的转速调整为最低转速;将调整后的转速作为目标转速。这样,利用对旋风机送风柔和,以及能广域送风的优点,以满足用户在远距离的送风需求。
在第三实施例中,如图4所示,在上述图2至图3的实施例基础上,所述根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速的步骤包括:
步骤S22、在所述送风距离小于或者等于预设距离时,根据所述送风距离调整所述单风机的风轮的转速,并将所述对旋风机的各个风轮相对应的转速调整为最低转速。
步骤S23、将调整后的转速作为目标转速。
本实施例中,可以是在送风距离小于或者等于预设距离时,根据送风距离确定送风区间,并将单风机的风轮的转速调整为在该送风区间设定的转速,同时,将对旋风机的内置风轮和外置风轮的转速调整为最低转速。可选地,内置风轮的最低转速的取值区间可以是0转/分钟至100转/分钟;外置风轮的最低转速的取值区间可以是0转/分钟至100转/分钟。
可选地,预设距离为2米。
可选地,内置风轮的最低转速设置为50转/分钟;外置风轮的最低转速设置为50转/分钟。
需要说明的是,根据实际情况需要,可以是在检测到空调器的作用空间内的用户数量小于或等于预设阈值时,则根据所述送风距离调整所述对旋风机的各个风轮相对应的转速,并将所述单风机的风轮的转速调整为最低转速。可选地,所述预设阈值设置为1人。这样,在用户对送风需求小时,并且在用户处于离空调器较较近的距离时,比如2米内,通过控制单风机为用户送风,以满足用户的送风需求的同时,降低对旋风机各个风轮的转速或者关闭旋风机的各个风轮,以节约能源。
将调整后的对旋风机的内置风轮、外置风轮,以及单风机的风轮的转速作为目标转速,并控制对旋风机的外置风轮、内置风轮和单风机的风轮根据相对应的目标转速运行。其中,在内置风轮的最低转速设置为0转/分钟时,控制内置风轮停止运行;在外置风轮的最低转速设置为0转/分钟时,通过控制外置风轮停止运行。
在第三实施例中,在所述送风距离小于或者等于预设距离时,根据所述送风距离调整所述单风机的风轮的转速,并将所述对旋风机的各个风轮相对应的转速调整为最低转速;将调整后的转速作为目标转速。这样,在用户处于离空调器较较近的距离时,通过控制单风机为用户送风,以满足用户的送风需求的同时,降低对旋风机各个风轮的转速或者关闭旋风机的各个风轮,以节约能源。
在第四实施例中,如图5所示,在上述图2至图4的实施例基础上,所述获取送风距离的步骤包括:
步骤S11、在检测到所述空调器的作用空间内存在用户时,获取用户与所述空调器之间的距离。
步骤S12、根据所述距离生成所述送风距离。
步骤S13、计算所述距离的平均值,根据所述平均值得到所述送风距离。
本实施例中,所述送风距离的获取,可以是获取一个用户距离空调器之间的距离作为送风距离,也可以是根据多个用户与空调器之间的距离,生成平均距离,以该平均距离作为送风距离。比如,在检测到所述空调器的作用空间内存在两个用户,其中一个用户距离空调器5米位置,另一个用户距离空调器2米位置,因此计算得到送风距离为3.5米。
当然,根据实际情况需要,所述送风距离的获取,也可以是通过接收到用户输入的送风距离数据。
在第四实施例中,在检测到所述空调器的作用空间内存在用户时,获取用户与所述空调器之间的距离,根据所述距离生成所述送风距离,计算所述距离的平均值,根据所述平均值得到所述送风距离。这样,实现了对空调器送风距离的获取。
此外,本申请还提出一种空调器,所述空调器包括第一出风口、第二出风口、对旋风机和单风机,所述对旋风机向所述第一出风口送风,所述单风机向所述第二出风口送风,所述空调器包括存储器、处理器及存储在存储器上并可在处理器上运行的空调器的控制程序,所述处理器执行所述空调器的控制程序时实现如以上实施例所述的空调器的控制方法的步骤。
此外,本申请还提出一种计算机可读存储介质,其中,所述计算机可读存储介质包括空调器的控制程序,所述空调器的控制程序被处理器执行时实现如以上实施例所述的空调器的控制方法的步骤。
上述本申请实施例序号仅仅为了描述,不代表实施例的优劣。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到上述实施例方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件,但很多情况下前者是更佳的实施方式。基于这样的理解,本申请的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在如上所述的一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是电视机,手机,计算机,服务器,空调器,或者网络设备等)执行本申请各个实施例所述的方法。
以上仅为本申请的优选实施例,并非因此限制本申请的专利范围,凡是利用本申请说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本申请的专利保护范围内。

Claims (15)

  1. 一种空调器的控制方法,其中,所述空调器包括第一出风口、第二出风口、对旋风机和单风机,所述对旋风机向所述第一出风口送风,所述单风机向所述第二出风口送风,所述空调器的控制方法包括以下步骤:
    获取送风距离;
    根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速;以及
    控制所述风轮以对应的所述目标转速运行。
  2. 如权利要求1所述的空调器的控制方法,其中,所述对旋风机包括内置风轮和外置风轮,所述空调器的出风,由所述内置风轮流向所述外置风轮,所述根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速的步骤包括:
    在所述送风距离大于预设距离的条件下,获取到的所述内置风轮的目标转速大于所述外置风轮的目标转速。
  3. 如权利要求2所述空调器的控制方法,其中,所述空调器的控制方法还包括:
    获取到的所述单风机的风轮的目标转速大于所述外置风轮的目标转速,和/或所述单风机的风轮的目标转速小于所述内置风轮的目标转速。
  4. 如权利要求1所述的空调器的控制方法,其中,所述对旋风机包括内置风轮和外置风轮,所述空调器的出风,由所述内置风轮流向所述外置风轮,所述根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速的步骤包括:
    在所述送风距离小于或等于所述预设距离的条件下,获取到的所述内置风轮的目标转速小于所述外置风轮的目标转速。
  5. 如权利要求4所述的空调器的控制方法,其中,所述空调器的控制方法还包括:
    获取到的所述单风机的风轮的目标转速小于所述外置风轮的目标转速,和/或所述单风机的风轮的目标转速大于所述内置风轮的目标转速。
  6. 如权利要求3或5所述的空调器的控制方法,其中,所述单风机的风轮的目标转速小于所述内置风轮的目标转速和所述外置风轮的目标转速之和。
  7. 如权利要求3或5所述的空调器的控制方法,其中,所述空调器的控制方法还包括:
    在获取得到所述内置风轮的目标转速和所述外置风轮的目标转速的条件下,计算所述内置风轮的目标转速和所述外置风轮的目标转速之间的平均值;以及
    将计算得到的所述平均值作为所述单风机的风轮的目标转速。
  8. 如权利要求1所述的空调器的控制方法,其中,所述根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速的步骤包括:
    在所述送风距离大于预设距离的条件下,根据所述送风距离调整所述对旋风机的各个风轮相对应的转速,并将所述单风机的风轮的转速调整为最低转速;以及
    将调整后的转速作为目标转速。
  9. 如权利要求1所述的空调器的控制方法,其中,所述根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速的步骤包括:
    在所述送风距离小于或者等于预设距离的条件下,根据所述送风距离调整所述单风机的风轮的转速,并将所述对旋风机的各个风轮相对应的转速调整为最低转速;以及
    将调整后的转速作为目标转速。
  10. 如权利要求8或9所述的空调器的控制方法,其中,所述控制所述风轮以对应的所述目标转速运行的步骤包括:
    在所述风轮的所述目标转速为零转速的条件下,控制所述风轮停止运行。
  11. 如权利要求1所述的空调器的控制方法,其中,所述获取送风距离的步骤包括:
    在检测到所述空调器的作用空间内存在用户的条件下,获取用户与所述空调器之间的距离;以及
    根据所述距离生成所述送风距离。
  12. 如权利要求11所述的空调器的控制方法,其中,所述根据所述距离生成所述送风距离的步骤包括:
    计算所述距离的平均值,根据所述平均值得到所述送风距离。
  13. 如权利要求1所述的空调器的控制方法,其中,所述获取送风距离的步骤包括:
    接收用户输入的送风距离。
  14. 一种空调器,其中,所述空调器包括第一出风口、第二出风口、对旋风机和单风机,所述对旋风机向所述第一出风口送风,所述单风机向所述第二出风口送风,所述空调器还包括处理器和控制器,其中:
    所述处理器,获取送风距离,并根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速;以及
    所述控制器,控制所述风轮以对应的所述目标转速运行。
  15. 一种计算机可读存储介质,其中,所述计算机可读存储介质上存储有空调器的控制程序,所述空调器的控制程序被处理器执行时以下所述的空调器的控制方法的步骤:
    获取送风距离;
    根据所述送风距离,分别获取所述对旋风机和所述单风机各个风轮相对应的目标转速;以及
    控制所述风轮以对应的所述目标转速运行。
PCT/CN2019/080204 2018-12-20 2019-03-28 空调器的控制方法、空调器及存储介质 WO2020124848A1 (zh)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
CN201811569111.9 2018-12-20
CN201811569111.9A CN109668278B (zh) 2018-12-20 2018-12-20 空调器的控制方法、空调器及存储介质

Publications (1)

Publication Number Publication Date
WO2020124848A1 true WO2020124848A1 (zh) 2020-06-25

Family

ID=66145802

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2019/080204 WO2020124848A1 (zh) 2018-12-20 2019-03-28 空调器的控制方法、空调器及存储介质

Country Status (2)

Country Link
CN (1) CN109668278B (zh)
WO (1) WO2020124848A1 (zh)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2023029535A1 (zh) * 2021-08-31 2023-03-09 青岛海尔空调器有限总公司 柜机空调的控制方法、控制***、电子设备和存储介质

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112303831B (zh) * 2019-07-29 2021-11-23 广东美的制冷设备有限公司 空调室内机及控制方法、装置和可读存储介质
CN110749042B (zh) * 2019-10-31 2022-04-19 广东美的制冷设备有限公司 空调的控制方法、***及空调
CN111441982B (zh) * 2020-03-31 2022-04-01 佛山市云米电器科技有限公司 送风参数的配置方法、***、计算机可读存储介质
CN111412615B (zh) * 2020-03-31 2022-03-11 广东美的制冷设备有限公司 基于空调器的涡环运动控制方法、空调、存储介质及装置

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2008202869A (ja) * 2007-02-21 2008-09-04 Matsushita Electric Ind Co Ltd 空気調和機の室外機
CN106440235A (zh) * 2016-10-31 2017-02-22 邯郸美的制冷设备有限公司 一种空调及其送风控制方法和装置
CN108266808A (zh) * 2018-03-20 2018-07-10 广东美的制冷设备有限公司 空调柜机及空调器
CN108332293A (zh) * 2018-03-20 2018-07-27 广东美的制冷设备有限公司 空调柜机和空调器

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2004109190A2 (en) * 2003-06-04 2004-12-16 Lg Electronics Inc. Air conditioner
CN107525154A (zh) * 2017-10-11 2017-12-29 珠海格力电器股份有限公司 空调内机及空调器
CN108800313A (zh) * 2018-04-02 2018-11-13 珠海格力电器股份有限公司 空调器及空调器控制方法
CN109520083B (zh) * 2018-11-15 2020-06-23 广东美的制冷设备有限公司 空调器的控制方法、空调器及计算机可读存储介质

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2008202869A (ja) * 2007-02-21 2008-09-04 Matsushita Electric Ind Co Ltd 空気調和機の室外機
CN106440235A (zh) * 2016-10-31 2017-02-22 邯郸美的制冷设备有限公司 一种空调及其送风控制方法和装置
CN108266808A (zh) * 2018-03-20 2018-07-10 广东美的制冷设备有限公司 空调柜机及空调器
CN108332293A (zh) * 2018-03-20 2018-07-27 广东美的制冷设备有限公司 空调柜机和空调器

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2023029535A1 (zh) * 2021-08-31 2023-03-09 青岛海尔空调器有限总公司 柜机空调的控制方法、控制***、电子设备和存储介质

Also Published As

Publication number Publication date
CN109668278A (zh) 2019-04-23
CN109668278B (zh) 2020-06-23

Similar Documents

Publication Publication Date Title
WO2020124848A1 (zh) 空调器的控制方法、空调器及存储介质
WO2020098407A1 (zh) 空调器的控制方法、空调器及计算机可读存储介质
WO2020098408A1 (zh) 空调器及其控制方法和计算机可读存储介质
WO2020220656A1 (zh) 空调器的控制方法、空调器及计算机可读存储介质
WO2020155358A1 (zh) 智能家居设备联动控制方法、装置及智能家居设备
WO2020258574A1 (zh) 空调器的控制方法、装置、空调器和存储介质
WO2019174090A1 (zh) 截屏文件分享的控制方法、装置、设备和计算机存储介质
WO2020155360A1 (zh) 家电设备的配网方法、家电设备、移动终端及存储介质
WO2017206456A1 (zh) 一种视频通话中视频图像展示方法及装置
WO2019114553A1 (zh) 空气调节器及其控制方法、装置以及存储介质
WO2018076861A1 (zh) 数据传输的控制方法、装置、存储介质、服务器及***
WO2020015060A1 (zh) 用电量异常评估方法、装置、设备和计算机存储介质
WO2017071363A1 (zh) 密码的共享方法、密码的共享***及终端设备
WO2018233352A1 (zh) 数据传输方法、装置、终端以及计算机可读存储介质
WO2019114552A1 (zh) 空气调节装置及控制方法、终端和存储介质
WO2021031334A1 (zh) 空调***及其空调控制方法、空调控制装置
WO2020093707A1 (zh) 空调器控制方法、空调器及计算机可读存储介质
WO2019114565A1 (zh) 空气调节器的调节方法、装置以及存储介质
WO2018145597A1 (zh) 基于移动终端的屏幕补光拍照方法及***、移动终端
WO2020135049A1 (zh) 显示面板的过流保护方法及显示装置
WO2019114587A1 (zh) 虚拟现实终端的信息处理方法、装置及可读存储介质
WO2017090931A1 (ko) 이벤트 관리 서비스를 제공하는 전자 장치 및 방법
WO2020007099A1 (zh) 电视终端控制方法、设备及计算机可读存储介质
EP3366008A1 (en) Electronic apparatus and sensor arrangement method thereof
WO2020134788A1 (zh) 空调器的控制方法、空调器及计算机可读存储介质

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 19901101

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

32PN Ep: public notification in the ep bulletin as address of the adressee cannot be established

Free format text: NOTING OF LOSS OF RIGHTS PURSUANT TO RULE 112(1) EPC (EPO FORM 1205A DATED 02/11/2021)

122 Ep: pct application non-entry in european phase

Ref document number: 19901101

Country of ref document: EP

Kind code of ref document: A1