WO2022100464A1 - 空调器的控制方法和控制设备 - Google Patents

空调器的控制方法和控制设备 Download PDF

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Publication number
WO2022100464A1
WO2022100464A1 PCT/CN2021/127667 CN2021127667W WO2022100464A1 WO 2022100464 A1 WO2022100464 A1 WO 2022100464A1 CN 2021127667 W CN2021127667 W CN 2021127667W WO 2022100464 A1 WO2022100464 A1 WO 2022100464A1
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WIPO (PCT)
Prior art keywords
air supply
target
air
duration
swing
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PCT/CN2021/127667
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English (en)
French (fr)
Inventor
臧元强
庄佳兰
Original Assignee
重庆海尔空调器有限公司
青岛海尔空调器有限总公司
青岛海尔空调电子有限公司
海尔智家股份有限公司
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Application filed by 重庆海尔空调器有限公司, 青岛海尔空调器有限总公司, 青岛海尔空调电子有限公司, 海尔智家股份有限公司 filed Critical 重庆海尔空调器有限公司
Publication of WO2022100464A1 publication Critical patent/WO2022100464A1/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
    • 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
    • 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
    • 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
    • F24F11/50Control or safety arrangements characterised by user interfaces or communication
    • F24F11/52Indication arrangements, e.g. displays
    • 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
    • F24F11/50Control or safety arrangements characterised by user interfaces or communication
    • F24F11/61Control or safety arrangements characterised by user interfaces or communication using timers
    • 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
    • F24F11/79Control systems characterised by their outputs; Constructional details thereof for controlling the supply of treated air, e.g. its pressure for controlling the direction of the supplied air
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/08Air-flow control members, e.g. louvres, grilles, flaps or guide plates
    • F24F13/10Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers
    • F24F13/14Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers built up of tilting members, e.g. louvre
    • F24F13/1413Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers built up of tilting members, e.g. louvre using more than one tilting member, e.g. with several pivoting blades
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/08Air-flow control members, e.g. louvres, grilles, flaps or guide plates
    • F24F13/10Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers
    • F24F13/14Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers built up of tilting members, e.g. louvre
    • F24F13/15Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers built up of tilting members, e.g. louvre with parallel simultaneously tiltable lamellae

Definitions

  • the present invention relates to the technical field of air conditioners, and in particular, to a control method and control device of an air conditioner.
  • the current air-conditioning products support automatic up and down and left and right sweeping
  • the air conditioner can only achieve a single up and down sweep, left and right sweep, or both at the same time, and the user cannot control the duration of the air conditioner sweeping the area defined by itself.
  • the present invention is proposed to provide a control method and control apparatus for an air conditioner that overcome the above problems or at least partially solve the above problems.
  • One object of the present invention is to facilitate the user to adjust the air conditioner.
  • a further object of the present invention is to improve the intelligence level of the air supply of the air conditioner.
  • the present invention provides a control method for an air conditioner, comprising:
  • the indoor unit includes:
  • the air deflector is arranged horizontally at the air outlet of the indoor unit, and is configured to rotate up and down along the air outlet to adjust the vertical air supply direction of the indoor unit;
  • a plurality of swing blades are longitudinally arranged at the air outlet, and are configured to swing left and right along the air outlet to adjust the horizontal air supply direction of the indoor unit, and
  • the plurality of air blowing areas are the plurality of air blowing areas arranged in rows and columns obtained by being divided according to the vertical air blowing direction and the transverse air blowing direction, respectively.
  • the wind deflector corresponds to a plurality of preset up and down rotation angles
  • the swing leaf corresponds to a plurality of preset left and right swing angles
  • the row distribution of the air supply area is set according to the up and down rotation angle, and the column distribution of the air supply area is set according to the left and right swing angle.
  • the step of calculating the air supply duration of the indoor unit to the target air supply area according to the temperature regulation instruction includes:
  • the step of calculating the continuous air supply duration of the air deflector and the swing blade to the target air supply area according to the temperature regulation instruction includes:
  • the steps of calculating the duration of continuous air supply when the wind deflector rotates to the target up and down rotation angle and the swing blade swings to the target left and right swing angle according to the temperature regulation instruction include:
  • the temperature regulation command calculate the continuous air supply duration when the air deflector rotates to the target vertical rotation angle from the number of air supply areas at the target row position and the number of target air supply areas, and
  • the continuous air supply duration for the swing blade to swing to the target left and right swing angle is calculated from the number of air supply areas at the target row position and the number of target air supply areas.
  • t is the continuous air supply time when the air deflector rotates to the target up and down rotation angle
  • num is the number of air supply areas at the target row position
  • num0 is the number of target air supply areas at the target row position
  • t is the continuous air supply time for the swing blade to swing to the target left and right swing angle
  • num is the number of air supply areas at the target row position
  • num0 is The number of target air supply zones at the target column position.
  • t is the continuous air supply time when the air deflector rotates to the target up and down rotation angle
  • num is the number of air supply areas at the target row position
  • num0 is the number of target air supply areas at the target row position
  • t is the continuous air supply time when the swing blade swings to the target left and right swing angle
  • num is the number of air supply areas at the target row position
  • num0 is The number of target air supply zones at the target column position.
  • the method before the step of acquiring multiple air supply areas pre-divided by the air supply range of the indoor unit of the air conditioner, the method further includes:
  • the terminal device sends the air supply area acquisition command by scanning the code.
  • a control device for an air conditioner which includes a memory and a processor, where a computer program is stored in the memory, and the processor is configured to run the computer program to execute any one of the above control methods .
  • the present invention divides at least part of the display interface of the display screen of the target terminal device into multiple visible areas after acquiring multiple air supply areas pre-divided by the air supply range of the indoor unit of the air conditioner, and the multiple visible areas One-to-one correspondence with multiple air supply areas. Therefore, the user can select the visual area to be adjusted on the mobile terminal, and it is convenient for the user to adjust the air conditioner.
  • the present invention obtains the visible area selected by the user on the target terminal device as the target visible area, and obtains the temperature adjustment instruction corresponding to the target visible area input by the user on the target terminal device. After that, the air supply area corresponding to the target visible area is determined and used as the target air supply area, and the air supply time of the indoor unit to the target air supply area is calculated according to the temperature regulation instruction, thereby improving the intelligent level of air supply of the air conditioner.
  • FIG. 1 is a schematic structural diagram of an indoor unit of an air conditioner according to an embodiment of the present invention.
  • FIG. 2 is a schematic diagram of an air supply range of an indoor unit according to an embodiment of the present invention.
  • FIG. 3 is a schematic diagram of a target terminal device according to an embodiment of the present invention.
  • FIG. 4 is a control block diagram of an air conditioner according to an embodiment of the present invention.
  • Fig. 5 is the structural block diagram of the control device of the air conditioner in Fig. 4;
  • FIG. 6 is a schematic flowchart of a control method of an air conditioner according to an embodiment of the present invention.
  • FIG. 1 is a schematic structural diagram of an indoor unit 100 of an air conditioner according to an embodiment of the present invention
  • FIG. 2 is a schematic diagram of an air supply range of the indoor unit 100 according to an embodiment of the present invention.
  • the indoor unit 100 of the air conditioner includes a wind deflector 110 and a plurality of swing blades 120 .
  • the air deflector 110 is arranged horizontally at the air outlet 130 of the indoor unit 100, and is configured to rotate up and down along the air outlet 130 of the indoor unit 100 to adjust the vertical air supply direction of the indoor unit 100;
  • the air outlet 130 of the indoor unit 100 is configured to swing left and right along the air outlet 130 to adjust the lateral air supply direction of the indoor unit 100 .
  • the air supply range of the indoor unit 100 is pre-divided into a plurality of air supply areas 400, and the plurality of air supply areas 400 are a plurality of air supply areas arranged in rows and columns obtained by dividing each of the vertical air supply directions and the horizontal air supply directions. 400.
  • the wind deflector 110 corresponds to a plurality of preset up and down rotation angles
  • the swing blade 120 corresponds to a plurality of preset left and right swing angles.
  • the row distribution of the air supply area 400 is set according to the up and down rotation angle
  • the column distribution of the air supply area 400 is set according to the left and right swing angle.
  • FIG. 3 is a schematic diagram of a target terminal device 200 according to an embodiment of the present invention.
  • the multiple visual areas 500 correspond to the multiple air supply areas 400 one-to-one.
  • Target terminal terminal devices include but are not limited to mobile phones, iPads, etc.
  • the display screen 210 of the target terminal device 200 may be a touchable display screen 210, and at least part of the interface of the display screen 210 of the target terminal may also display buttons 220, so that the user can touch the display screen 210 of the target terminal to select the desired screen.
  • the visible area 500 to be adjusted and the corresponding temperature adjustment command is input.
  • FIG. 4 is a control block diagram of an air conditioner according to an embodiment of the present invention
  • FIG. 5 is a structural block diagram of a control device 300 of the air conditioner in FIG. 4 . 4 and 5, the control device 300 of the air conditioner includes a memory and a processor 310, the memory 320 stores a computer program 321, and the processor 310 is configured to run the computer program 321 to execute the air conditioner of any of the following embodiments. Control Method.
  • the control device 300 of the air conditioner can be arranged on a network side device such as a server and a cloud, and is connected with the air conditioner and the terminal device through data to receive instructions from the terminal device, so that the air conditioner performs corresponding control.
  • a network side device such as a server and a cloud
  • the control device 300 of the air conditioner may also be installed in the air conditioner or the terminal device as a part of the air conditioner or the terminal device, so as to receive instructions from the terminal device, so that the air conditioner performs corresponding control.
  • FIG. 6 is a diagram of a control method for an air conditioner according to an embodiment of the present invention. Schematic flow chart. As shown in Figure 6, the method may include at least the following steps:
  • Step S602 Acquire a plurality of ventilation areas 400 pre-divided by the ventilation range of the indoor unit 100 of the air conditioner.
  • Step S604 Divide at least part of the display interface of the display screen 210 of the target terminal device 200 into a plurality of visible areas 500 , and the plurality of visible areas 500 are in one-to-one correspondence with the plurality of air supply areas 400 .
  • Step S606 Obtain the visible area 500 selected by the user on the target terminal device 200 as the target visible area, and obtain the temperature adjustment instruction corresponding to the target visible area input by the user on the target terminal device 200.
  • Step S608 Determine the air supply area 400 corresponding to the target visible area and use it as the target air supply area, and calculate the air supply duration of the indoor unit 100 to the target air supply area according to the temperature regulation instruction.
  • the present invention divides at least part of the display interface of the display screen 210 of the target terminal device 200 into a plurality of visible areas after acquiring the multiple air supply areas 400 pre-divided by the air supply range of the indoor unit 100 of the air conditioner, and the Each visible area corresponds to the plurality of air supply areas 400 one-to-one. Therefore, the user can select the visual area to be adjusted on the mobile terminal, and it is convenient for the user to adjust the air conditioner. Further, the present invention obtains the visible area 500 selected by the user in the target terminal device 200 as the target visible area, and obtains the temperature adjustment instruction corresponding to the target visible area input by the user on the target terminal device 200.
  • the air supply area 400 corresponding to the target visible area is determined and used as the target air supply area, and the air supply duration of the indoor unit 100 to the target air supply area is calculated according to the temperature regulation instruction. Thereby, the intelligent level of air supply of the air conditioner is improved.
  • the method before the above step S608, the method further includes: receiving an air supply area acquisition instruction sent by the terminal device and using the terminal device as the target terminal device 200, wherein the terminal device sends the air supply by scanning a code Region get command.
  • the target terminal device 200 may also obtain multiple viewable areas 500 by logging in to the corresponding system through an account and password.
  • the method of scanning code is especially suitable for large-scale conferences, which is more convenient for participants to operate.
  • calculating the air supply duration of the indoor unit 100 to the target air supply area according to the temperature adjustment instruction mentioned in the above step S608 may specifically include: calculating the pair of air deflectors 110 and the swing vanes 120 according to the temperature adjustment instruction The duration of continuous air supply in the target air supply area.
  • the continuous air supply duration of the air deflector 110 and the swing blade 120 to the target air supply area according to the temperature regulation instruction, firstly determine the row position and column position corresponding to the target air supply area and use them as the target row position respectively. and target column position. Then, the up and down rotation angle corresponding to the target row position is determined and used as the target up and down rotation angle, and the left and right swing angle corresponding to the target column position is determined and used as the target left and right swing angle. Then, according to the temperature adjustment instruction, the duration of continuous air supply during which the wind deflector 110 rotates to the target vertical rotation angle and the swing blade 120 swings to the target left and right swing angle is calculated.
  • calculating the duration of continuous air supply for the wind deflector 110 to rotate to the target up-down rotation angle and the swing blade 120 to the target left-to-right swing angle according to the temperature adjustment instruction may include: according to the temperature adjustment instruction
  • the number of air supply areas and the number of target air supply areas are used to calculate the continuous air supply time for the air deflector 110 to rotate to the target up and down rotation angle, and the swing blade 120 to swing to the target is calculated from the number of air supply areas at the target row position and the number of target air supply areas.
  • the duration of continuous air supply at the left and right swing angle is used to calculate the continuous air supply time for the air deflector 110 to rotate to the target up and down rotation angle, and the swing blade 120 to swing to the target is calculated from the number of air supply areas at the target row position and the number of target air supply areas.
  • press when the temperature adjustment trend corresponding to the temperature adjustment command is consistent with the heat exchange trend of the air conditioner, press Calculate the continuous air supply duration when the wind deflector 110 rotates to the target up and down rotation angle and the swing blade 120 swings to the target left and right swing angle, where T is the standard cycle time, T can be set according to actual needs, k is the air supply compensation value, k can be taken as 0.5.
  • t is the continuous air supply time for the air deflector 110 to rotate to the target vertical rotation angle
  • num is the target row position
  • the number of air supply areas, num0 is the number of target air supply areas for the target row position.
  • t is the continuous air supply time for the swing blade 120 to swing to the target left and right swing angle
  • num is the air supply area at the target row position.
  • num0 is the number of target air supply areas at the target column location.
  • the target visible area is A
  • the temperature adjustment trend corresponding to the temperature adjustment command is temperature rise
  • the air conditioner is in the heating mode at this time.
  • the number of air supply areas of the target row position where the target air supply area A corresponding to the visible area A is located is 6, and the target air supply area of the target row position is only the target air supply area A, so the target air supply area of the target row position is the target air supply area.
  • the number of regions is 1.
  • the wind deflector 110 rotates to the target vertical rotation angle and the swing blade 120 swings to the target left and right swing angle.
  • the temperature of the target air supply area can be raised or lowered as soon as possible to improve the user experience.
  • the Calculate the continuous air supply duration when the wind deflector 110 rotates to the target up and down rotation angle and the swing blade 120 swings to the target left and right swing angle where k is the air supply compensation value, k can be 0.5, T is the standard cycle duration, Set according to actual needs.
  • t is the continuous air supply duration when the wind deflector 110 rotates to the target vertical rotation angle
  • num is the number of air supply areas at the target row position
  • num0 is the number of target air supply areas at the target row position.
  • t is the continuous air supply time for the swing blade 120 to swing to the target left and right swing angle
  • num is the air supply area at the target row position.
  • num0 is the number of target air supply areas at the target column location.
  • k is equal to 0. That is, when the air supply area at the target row position or the target column position is both the target air supply area, the air deflector 110 or the swing vane 120 is made to skip the corresponding target row position or target column position.
  • the target visible area is A
  • the temperature adjustment trend corresponding to the temperature adjustment command is temperature rise
  • the air conditioner is in the cooling mode at this time.
  • the number of air supply areas of the target row position where the target air supply area A corresponding to the visible area A is located is 6, and the target air supply area of the target row position is only the target air supply area A, so the target air supply area of the target row position is the target air supply area.
  • the number of regions is 1.
  • Substitute the number of air supply areas at the target row position and the number of target air supply areas into *T it can be calculated that the continuous air supply duration for the air deflector 110 to rotate to the target vertical rotation angle corresponding to the target row position is 1.33T; the number of air supply areas at the target column position where the target air supply area A is located is 3, The number of target air supply areas at the target column position is 1.
  • the duration of continuous air supply during which the wind deflector 110 rotates to the target up and down rotation angle and the swing blade 120 swings to the target left and right swing angle is shortened.
  • the temperature rising trend or falling trend of the target area can be slowed down, so as to improve the user experience.
  • the present invention provides a control method and control device for an air conditioner.
  • the control method provided by the present invention after acquiring a plurality of air supply areas pre-divided by the air supply range of the indoor unit 100 of the air conditioner, the target terminal At least part of the display interface of the display screen 210 of the device 200 is divided into multiple visible areas, and the multiple visible areas correspond to the multiple air supply areas one-to-one. Therefore, the user can select the visual area to be adjusted on the mobile terminal, and it is convenient for the user to adjust the air conditioner.
  • the present invention obtains the visible area selected by the user on the target terminal device 200 as the target visible area, and obtains the temperature adjustment instruction corresponding to the target visible area input by the user on the target terminal device 200 . After that, the air supply area corresponding to the target visible area is determined and used as the target air supply area, and the air supply time of the indoor unit 100 to the target air supply area is calculated according to the temperature regulation instruction, thereby improving the intelligent level of air supply of the air conditioner .
  • the duration of the rotation of the wind deflector 110 to the target vertical rotation angle and the swing of the swing blade 120 to the target left and right swing angle are extended.
  • Air supply duration when the temperature adjustment trend corresponding to the temperature adjustment command is inconsistent with the heat exchange trend of the air conditioner, shorten the continuous air supply during which the air deflector 110 rotates to the target vertical rotation angle and the swing blade 120 swings to the target left and right swing angle. time to improve user experience.

Abstract

一种空调器的控制方法和控制设备,其中,控制方法包括:获取以空调器的室内机的送风范围预先划分的多个送风区域;将目标终端设备的显示屏的至少部分显示界面划分为多个可视区域,多个可视区域与多个送风区域一一对应;获取用户在目标终端设备选择的可视区域并将其作为目标可视区域,且获取用户在目标终端设备上输入的与目标可视区域对应的调温指令;确定目标可视区域对应的送风区域并将其作为目标送风区域,根据调温指令计算室内机对目标送风区域的送风时长。基于本发明提供的方案,方便了用户调节空调器且提高了空调器送风的智能化水平。

Description

空调器的控制方法和控制设备 技术领域
本发明涉及空调技术领域,特别是涉及空调器的控制方法和控制设备。
背景技术
随着人们生活水平的提高,用户对于家电使用体验方面的要求越来越高,不再局限于制热制冷能力和功耗等方面。在互联网高速发展的当下,人们对空调器的智能控制方面提出了更高的需求。
目前的空调产品,虽然支持自动上下及左右扫风,但在实际操作上不免有些不足。比如,对于上下和左右扫风的功能,空调器只能实现单一的上下扫风、左右扫风或两者同时扫风,用户无法控制空调器对自身定义的区域的扫风时长。
发明内容
鉴于上述问题,提出了本发明以便提供一种克服上述问题或者至少部分地解决上述问题的空调器的控制方法和控制设备。
本发明的一个的目的是方便用户调节空调器。
本发明的一个进一步的目的提高空调器送风的智能化水平。
根据本发明的一个方面,本发明提供了一种空调器的控制方法,其包括:
获取以空调器的室内机的送风范围预先划分的多个送风区域;
将目标终端设备的显示屏的至少部分显示界面划分为多个可视区域,多个可视区域与多个送风区域一一对应;
获取用户在目标终端设备选择的可视区域并将其作为目标可视区域,且获取用户在目标终端设备上输入的与目标可视区域对应的调温指令;
确定目标可视区域对应的送风区域并将其作为目标送风区域,根据调温指令计算室内机对目标送风区域的送风时长。
可选地,室内机包括:
导风板,横向设置在室内机的出风口处,配置为沿出风口上下转动,以调整室内机的纵向送风方向;及
多个摆叶,纵向设置在出风口处,配置为沿出风口左右摆动,以调整室内机的横向送风方向,并且
多个送风区域为按照纵向送风方向和横向送风方向分别进行划分以得到的行列排布的多个送风区域。
可选地,导风板对应多个预设的上下转动角度;及
摆叶对应多个预设的左右摆动角度,并且
送风区域的行分布按照上下转动角度设置,送风区域的列分布按照左右摆动角度设置。
可选地,根据调温指令计算室内机对目标送风区域的送风时长的步骤包括:
根据调温指令计算导风板和摆叶对目标送风区域的持续送风时长。
可选地,根据调温指令计算导风板和摆叶对目标送风区域的持续送风时长的步骤包括:
确定目标送风区域对应的行位置和列位置并分别将其作为目标行位置和目标列位置;
确定目标行位置对应的上下转动角度并将其作为目标上下转动角度,且
确定目标列位置对应的左右摆动角度并将其作为目标左右摆动角度;
根据调温指令计算导风板转动至目标上下转动角度和摆叶摆动至目标左右摆动角度的持续送风时长。
可选地,根据调温指令计算导风板转动至目标上下转动角度和摆叶摆动至目标左右摆动角度的持续送风时长的步骤包括:
根据调温指令,由目标行位置的送风区域的数量和目标送风区域的数量计算导风板转动至目标上下转动角度的持续送风时长,及
由目标列位置的送风区域的数量和目标送风区域的数量计算摆叶摆动至目标左右摆动角度的持续送风时长。
可选地,在调温指令对应的调温趋势与空调器的换热趋势一致的情况下,
按照
Figure PCTCN2021127667-appb-000001
计算导风板转动至目标上下转动角度和摆叶摆动至目标左右摆动角度的持续送风时长,式中,k是送风补偿值,T是标准周期时长,并且
对于计算导风板转动至目标上下转动角度的持续送风时长,上述式中,t是导风板转动至目标上下转动角度的持续送风时长,num是目标行位置的送风区域的数量,num0是目标行位置的目标送风区域的数量;
对于计算摆叶摆动至目标左右摆动角度的持续送风时长,上述式中,t 是摆叶摆动至目标左右摆动角度的持续送风时长,num是目标列位置的送风区域的数量,num0是目标列位置的目标送风区域的数量。
可选地,在调温指令对应的调温趋势与空调器的换热趋势不一致的情况下,
按照
Figure PCTCN2021127667-appb-000002
计算导风板转动至目标上下转动角度和摆叶摆动至目标左右摆动角度的持续送风时长,式中,k是送风补偿值,T是标准周期时长,并且
对于计算导风板转动至目标上下转动角度的持续送风时长,上述式中,t是导风板转动至目标上下转动角度的持续送风时长,num是目标行位置的送风区域的数量,num0是目标行位置的目标送风区域的数量;
对于计算摆叶摆动至目标左右摆动角度的持续送风时长,上述式中,t是摆叶摆动至目标左右摆动角度的持续送风时长,num是目标列位置的送风区域的数量,num0是目标列位置的目标送风区域的数量。
可选地,获取以空调器的室内机的送风范围预先划分的多个送风区域的步骤之前还包括:
接收终端设备发送的送风区域获取指令并将终端设备作为目标终端设备,其中,
终端设备通过扫码发送送风区域获取指令。
根据本发明的另一个方面,还提供了一种空调器的控制设备,其包括存储器和处理器,存储器中存储有计算机程序,处理器被设置为运行计算机程序以执行上述任一项的控制方法。
本发明在获取以空调器的室内机的送风范围预先划分的多个送风区域后,将目标终端设备的显示屏的至少部分显示界面划分为多个可视区域,且多个可视区域与多个送风区域一一对应。从而使用户可以在移动终端上选择想要调节的可视区域,方便用户调节空调器。
进一步地,本发明获取用户在目标终端设备选择的可视区域并将其作为目标可视区域,且获取用户在目标终端设备上输入的与目标可视区域对应的调温指令。在之后确定目标可视区域对应的送风区域并将其作为目标送风区域,根据调温指令计算室内机对目标送风区域的送风时长,从而提高了空调器送风的智能化水平。
根据下文结合附图对本发明具体实施例的详细描述,本领域技术人员将 会更加明了本发明的上述以及其他目的、优点和特征。
附图说明
后文将参照附图以示例性而非限制性的方式详细描述本发明的一些具体实施例。附图中相同的附图标记标示了相同或类似的部件或部分。本领域技术人员应该理解,这些附图未必是按比例绘制的。附图中:
图1是根据本发明一个实施例的空调器的室内机的结构示意图;
图2是根据本发明一个实施例的室内机的送风范围的示意图;
图3是根据本发明一个实施例的目标终端设备的示意图;
图4是根据本发明一个实施例的空调器的控制框图;
图5是图4中的空调器的控制设备的结构框图;
图6是根据本发明一个实施例的空调器的控制方法的示意性流程图。
具体实施方式
图1是根据本发明一个实施例的空调器的室内机100的结构示意图;图2是根据本发明一个实施例的室内机100的送风范围的示意图。参见图1、2所示,空调器的室内机100包括导风板110和多个摆叶120。其中,导风板110横向设置在室内机100的出风口130处,配置成沿室内机100的出风口130上下转动,以调整室内机100的纵向送风方向;多个摆叶120纵向设置在室内机100的出风口130处,配置成沿出风口130左右摆动,以调整室内机100的横向送风方向。室内机100的送风范围被预先划分为多个送风区域400,多个送风区域400是按照纵向送风方向和横向送风方向分别进行划分而得到的行列排布的多个送风区域400。
具体地,参见图2所示,导风板110对应多个预设的上下转动角度,摆叶120对应多个预设的左右摆动角度。送风区域400的行分布是按照上下转动角度设置的,送风区域400的列分布是按照左右摆动角度设置的。导风板110转动至不同上下转动角度情况下,室内机100对不同行位置的送风区域400送风;摆叶120转动至不同左右摆动角度的情况下,室内机100对不同列位置的送风区域400送风。
图3是根据本发明一个实施例的目标终端设备200的示意图。参见图3所示,目标终端设备200的显示屏210的至少部分界面被划分为多个可视区域500,多个可视区域500与多个送风区域400一一对应。目标终端终端设 备包括但不限于手机、iPad等。目标终端设备200的显示屏210可是可触控的显示屏210,目标终端的显示屏210的至少部分界面还可以显示按键220,从而使用户可通过触控目标终端的显示屏210以选定想要调节的可视区域500以及输入相应的调温指令。
图4是根据本发明一个实施例的空调器的控制框图;图5是图4中的空调器的控制设备300的结构框图。参见图4、5所示,空调器的控制设备300包括存储器和处理器310,存储器320中存储有计算机程序321,处理器310被设置为运行计算机程序321以执行以下任意实施例的空调器的控制方法。
空调器的控制设备300可以布置在服务器、云端等网络侧设备,与空调器和终端设备通过数据相连,以接收终端设备的指令,使空调器执行相应控制。
空调器的控制设备300还可以作为空调器或终端设备的一部分,设置在空调器或终端设备内,以接收终端设备的指令,使空调器执行相应控制。
基于上文提出的空调器的控制设备300,本发明还提出了一种由空调器的控制设备300执行的空调器的控制方法,图6是根据本发明一个实施例的空调器的控制方法的示意性流程图。如图6所示,该方法可以至少包括如下步骤:
步骤S602:获取以空调器的室内机100的送风范围预先划分的多个送风区域400。
步骤S604:将目标终端设备200的显示屏210的至少部分显示界面划分为多个可视区域500,多个可视区域500与多个送风区域400一一对应。
步骤S606:获取用户在目标终端设备200选择的可视区域500并将其作为目标可视区域,且获取用户在目标终端设备200上输入的与目标可视区域对应的调温指令。
步骤S608:确定目标可视区域对应的送风区域400并将其作为目标送风区域,根据调温指令计算室内机100对目标送风区域的送风时长。
本发明在获取以空调器的室内机100的送风范围预先划分的多个送风区域400后,将目标终端设备200的显示屏210的至少部分显示界面划分为多个可视区域,且多个可视区域与多个送风区域400一一对应。从而使用户可以在移动终端上选择想要调节的可视区域,方便用户调节空调器。进一步地,本发明获取用户在目标终端设备200选择的可视区域500并将其作为目标可 视区域,且获取用户在目标终端设备200上输入的与目标可视区域对应的调温指令。在之后确定目标可视区域对应的送风区域400并将其作为目标送风区域,根据调温指令计算室内机100对目标送风区域的送风时长。从而提高了空调器送风的智能化水平。
在本发明一些实施例中,在上文步骤S608前,该方法还包括:接收终端设备发送的送风区域获取指令并将终端设备作为目标终端设备200,其中,终端设备通过扫码发送送风区域获取指令。
在实际应用中,目标终端设备200还可以通过账号密码登录相应系统的方式来获取多个可视区域500。扫码的方式相对于账号密码登录的方式而言,尤其适用于大型会议的情况,更加方便与会人员操作。
在本发明一些实施例中,上文步骤S608提到的根据调温指令计算室内机100对目标送风区域的送风时长可以具体包括:根据调温指令计算导风板110和摆叶120对目标送风区域的持续送风时长。
具体地,根据调温指令计算导风板110和摆叶120对目标送风区域的持续送风时长中,首先是确定目标送风区域对应的行位置和列位置并分别将其作为目标行位置和目标列位置。之后确定目标行位置对应的上下转动角度并将其作为目标上下转动角度、确定目标列位置对应的左右摆动角度并将其作为目标左右摆动角度。之后根据调温指令计算导风板110转动至目标上下转动角度和摆叶120摆动至目标左右摆动角度的持续送风时长。
具体地,根据调温指令计算导风板110转动至目标上下转动角度和摆叶120摆动至目标左右摆动角度的持续送风时长可以包括:根据调温指令,由目标行位置的送风区域的数量和目标送风区域的数量计算导风板110转动至目标上下转动角度的持续送风时长,及由目标列位置的送风区域的数量和目标送风区域的数量计算摆叶120摆动至目标左右摆动角度的持续送风时长。
在本发明一些实施例中,在调温指令对应的调温趋势与空调器的换热趋势一致的情况下,按
Figure PCTCN2021127667-appb-000003
计算导风板110转动至目标上下转动角度和摆叶120摆动至目标左右摆动角度的持续送风时长,式中,T是标准周期时长,T可以根据实际需要设置,k是送风补偿值,k可以取0.5。
具体地,对于计算导风板110转动至目标上下转动角度的持续送风时长的情况,上述式中,t是导风板110转动至目标上下转动角度的持续送风时长,num是目标行位置的送风区域的数量,num0是目标行位置的目标送风 区域的数量。
而对于计算摆叶120摆动至目标左右摆动角度的持续送风时长的情况,上述式中,t是摆叶120摆动至目标左右摆动角度的持续送风时长,num是目标列位置的送风区域的数量,num0是目标列位置的目标送风区域的数量。
在一个示例中,参见图2、3所示,目标可视区域为A,调温指令对应的调温趋势为升温,空调器此时为制热模式。与可视区域A对应的目标送风区域A所在的目标行位置的送风区域的数量为6,目标行位置的目标送风区域仅是目标送风区域A,因此目标行位置的目标送风区域的数量为1。将目标行位置的送风区域的数量和目标送风区域的数量代入上述公式,可计算出导风板110转动至与目标行位置对应的目标上下转动角度的持续送风时长为1.67T;目标送风区域A所在的目标列位置的送风区域的数量为3,目标列位置的目标送风区域的数量为1。将目标列位置的送风区域的数量和目标送风区域的数量代入上述公式中可计算出摆叶120摆动至与目标列位置对应的目标左右摆动角度的持续送风时长为1.83T。
本发明在调温指令对应的调温趋势与空调器的换热趋势一致的情况下,延长导风板110转动至目标上下转动角度和摆叶120摆动至目标左右摆动角度的持续送风时长。从而可以尽快提高或降低目标送风区域的温度,以提高用户体验。
在本发明另一些实施例中,在调温指令对应的调温趋势与空调器的换热趋势不一致的情况下,按照
Figure PCTCN2021127667-appb-000004
计算导风板110转动至目标上下转动角度和摆叶120摆动至目标左右摆动角度的持续送风时长,式中,k是送风补偿值,k可以取0.5,T是标准周期时长,T可以根据实际需要设置。
具体地,在本实施例中,对于计算导风板110转动至目标上下转动角度的持续送风时长的情况,上述式中,t是导风板110转动至目标上下转动角度的持续送风时长,num是目标行位置的送风区域的数量,num0是目标行位置的目标送风区域的数量。
而对于计算摆叶120摆动至目标左右摆动角度的持续送风时长的情况,上述式中,t是摆叶120摆动至目标左右摆动角度的持续送风时长,num是目标列位置的送风区域的数量,num0是目标列位置的目标送风区域的数量。
需要说明地是,在本实施例中,在num-num0=0的情况下,k等于0。 即在目标行位置或目标列位置的送风区域均为目标送风区域时,使导风板110或摆叶120略过相应的目标行位置或目标列位置。
在一个示例中,仍参见图2、3所示,目标可视区域为A,调温指令对应的调温趋势为升温,空调器此时为制冷模式。与可视区域A对应的目标送风区域A所在的目标行位置的送风区域的数量为6,目标行位置的目标送风区域仅是目标送风区域A,因此目标行位置的目标送风区域的数量为1。将目标行位置的送风区域的数量和目标送风区域的数量代入
Figure PCTCN2021127667-appb-000005
*T,可计算出导风板110转动至与目标行位置对应的目标上下转动角度的持续送风时长为1.33T;目标送风区域A所在的目标列位置的送风区域的数量为3,目标列位置的目标送风区域的数量为1。将目标列位置的送风区域的数量和目标送风区域的数量代入
Figure PCTCN2021127667-appb-000006
中可计算出摆叶120摆动至与目标列位置对应的目标左右摆动角度的持续送风时长为1.167T。
本发明在调温指令对应的调温趋势与空调器的换热趋势不一致的情况下,缩短导风板110转动至目标上下转动角度和摆叶120摆动至目标左右摆动角度的持续送风时长,从而可以减缓目标区域的温度上升趋势或下降趋势,以提高用户体验。
本发明提供的一种空调器的控制方法和控制设备,在本发明提供的控制方法中,在获取以空调器的室内机100的送风范围预先划分的多个送风区域后,将目标终端设备200的显示屏210的至少部分显示界面划分为多个可视区域,且多个可视区域与多个送风区域一一对应。从而使用户可以在移动终端上选择想要调节的可视区域,方便用户调节空调器。
进一步地,本发明获取用户在目标终端设备200选择的可视区域并将其作为目标可视区域,且获取用户在目标终端设备200上输入的与目标可视区域对应的调温指令。在之后确定目标可视区域对应的送风区域并将其作为目标送风区域,根据调温指令计算室内机100对目标送风区域的送风时长,从而提高了空调器送风的智能化水平。
再进一步地,本发明在调温指令对应的调温趋势与空调器的换热趋势一致的情况下,延长导风板110转动至目标上下转动角度和摆叶120摆动至目标左右摆动角度的持续送风时长;在调温指令对应的调温趋势与空调器的换热趋势不一致的情况下,缩短导风板110转动至目标上下转动角度和摆叶120摆动至目标左右摆动角度的持续送风时长,从而可以提高用户体验。
至此,本领域技术人员应认识到,虽然本文已详尽示出和描述了本发明的多个示例性实施例,但是,在不脱离本发明精神和范围的情况下,仍可根据本发明公开的内容直接确定或推导出符合本发明原理的许多其他变型或修改。因此,本发明的范围应被理解和认定为覆盖了所有这些其他变型或修改。

Claims (10)

  1. 一种空调器的控制方法,包括:
    获取以所述空调器的室内机的送风范围预先划分的多个送风区域;
    将目标终端设备的显示屏的至少部分显示界面划分为多个可视区域,所述多个可视区域与所述多个送风区域一一对应;
    获取用户在所述目标终端设备选择的可视区域并将其作为目标可视区域,且获取用户在所述目标终端设备上输入的与所述目标可视区域对应的调温指令;
    确定所述目标可视区域对应的送风区域并将其作为目标送风区域,根据所述调温指令计算所述室内机对所述目标送风区域的送风时长。
  2. 根据权利要求1所述的控制方法,其中,所述室内机包括:
    导风板,横向设置在所述室内机的出风口处,配置为沿所述出风口上下转动,以调整所述室内机的纵向送风方向;及
    多个摆叶,纵向设置在所述出风口处,配置为沿所述出风口左右摆动,以调整所述室内机的横向送风方向,并且
    所述多个送风区域为按照所述纵向送风方向和所述横向送风方向分别进行划分以得到的行列排布的多个送风区域。
  3. 根据权利要求2所述的控制方法,其中,
    所述导风板对应多个预设的上下转动角度;及
    所述摆叶对应多个预设的左右摆动角度,并且
    所述送风区域的行分布按照所述上下转动角度设置,所述送风区域的列分布按照所述左右摆动角度设置。
  4. 根据权利要求3所述的控制方法,其中,根据所述调温指令计算所述室内机对所述目标送风区域的送风时长的步骤包括:
    根据所述调温指令计算所述导风板和所述摆叶对所述目标送风区域的持续送风时长。
  5. 根据权利要求4所述的控制方法,其中,根据所述调温指令计算所述 导风板和所述摆叶对所述目标送风区域的持续送风时长的步骤包括:
    确定所述目标送风区域对应的行位置和列位置并分别将其作为目标行位置和目标列位置;
    确定所述目标行位置对应的上下转动角度并将其作为目标上下转动角度,且
    确定所述目标列位置对应的左右摆动角度并将其作为目标左右摆动角度;
    根据所述调温指令计算所述导风板转动至所述目标上下转动角度和所述摆叶摆动至所述目标左右摆动角度的持续送风时长。
  6. 根据权利要求5所述的控制方法,其中,根据所述调温指令计算所述导风板转动至所述目标上下转动角度和所述摆叶摆动至所述目标左右摆动角度的持续送风时长的步骤包括:
    根据所述调温指令,由所述目标行位置的所述送风区域的数量和所述目标送风区域的数量计算所述导风板转动至所述目标上下转动角度的持续送风时长,及
    由所述目标列位置的所述送风区域的数量和所述目标送风区域的数量计算所述摆叶摆动至所述目标左右摆动角度的持续送风时长。
  7. 根据权利要求6所述的控制方法,其中,在所述调温指令对应的调温趋势与所述空调器的换热趋势一致的情况下,
    按照
    Figure PCTCN2021127667-appb-100001
    计算所述导风板转动至所述目标上下转动角度和所述摆叶摆动至所述目标左右摆动角度的持续送风时长,式中,k是送风补偿值,T是标准周期时长,并且
    对于计算所述导风板转动至所述目标上下转动角度的持续送风时长,上述式中,t是所述导风板转动至所述目标上下转动角度的持续送风时长,num是所述目标行位置的所述送风区域的数量,num0是所述目标行位置的所述目标送风区域的数量;
    对于计算所述摆叶摆动至所述目标左右摆动角度的持续送风时长,上述式中,t是所述摆叶摆动至所述目标左右摆动角度的持续送风时长,num是所述目标列位置的所述送风区域的数量,num0是所述目标列位置的目标送 风区域的数量。
  8. 根据权利要求6所述的控制方法,其中,在所述调温指令对应的调温趋势与所述空调器的换热趋势不一致的情况下,
    按照
    Figure PCTCN2021127667-appb-100002
    计算所述导风板转动至所述目标上下转动角度和所述摆叶摆动至所述目标左右摆动角度的持续送风时长,式中,k是送风补偿值,T是标准周期时长,并且
    对于计算所述导风板转动至所述目标上下转动角度的持续送风时长,上述式中,t是所述导风板转动至所述目标上下转动角度的持续送风时长,num是所述目标行位置的所述送风区域的数量,num0是所述目标行位置的所述目标送风区域的数量;
    对于计算所述摆叶摆动至所述目标左右摆动角度的持续送风时长,上述式中,t是所述摆叶摆动至所述目标左右摆动角度的持续送风时长,num是所述目标列位置的所述送风区域的数量,num0是所述目标列位置的目标送风区域的数量。
  9. 根据权利要求1所述的控制方法,其中,获取以所述空调器的室内机的送风范围预先划分的多个送风区域的步骤之前还包括:
    接收终端设备发送的送风区域获取指令并将所述终端设备作为目标终端设备,其中,
    所述终端设备通过扫码发送所述送风区域获取指令。
  10. 一种空调器的控制设备,包括存储器和处理器,所述存储器中存储有计算机程序,所述处理器被设置为运行所述计算机程序以执行权利要求1至9中任一项所述的控制方法。
PCT/CN2021/127667 2020-11-16 2021-10-29 空调器的控制方法和控制设备 WO2022100464A1 (zh)

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Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070119958A1 (en) * 2004-10-06 2007-05-31 Lawrence Kates Electronically-controlled register vent for zone heating and cooling
JP2010139119A (ja) * 2008-12-10 2010-06-24 Nec Fielding Ltd 空調制御システム及び空調制御方法
CN104279712A (zh) * 2014-10-13 2015-01-14 广东美的制冷设备有限公司 空调器的控制方法和空调器
CN106765578A (zh) * 2017-01-05 2017-05-31 青岛海尔空调器有限总公司 空调器
CN109059223A (zh) * 2018-06-29 2018-12-21 广东美的制冷设备有限公司 空气调节设备及其控制方法和装置
CN110094856A (zh) * 2019-04-15 2019-08-06 青岛海尔空调电子有限公司 空调器及其送风控制方法
CN112432325A (zh) * 2020-11-16 2021-03-02 青岛海尔空调器有限总公司 一种空调器的控制方法和控制设备

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN107036227A (zh) * 2016-02-03 2017-08-11 美的集团股份有限公司 空调器控制方法及空调器

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070119958A1 (en) * 2004-10-06 2007-05-31 Lawrence Kates Electronically-controlled register vent for zone heating and cooling
JP2010139119A (ja) * 2008-12-10 2010-06-24 Nec Fielding Ltd 空調制御システム及び空調制御方法
CN104279712A (zh) * 2014-10-13 2015-01-14 广东美的制冷设备有限公司 空调器的控制方法和空调器
CN106765578A (zh) * 2017-01-05 2017-05-31 青岛海尔空调器有限总公司 空调器
CN109059223A (zh) * 2018-06-29 2018-12-21 广东美的制冷设备有限公司 空气调节设备及其控制方法和装置
CN110094856A (zh) * 2019-04-15 2019-08-06 青岛海尔空调电子有限公司 空调器及其送风控制方法
CN112432325A (zh) * 2020-11-16 2021-03-02 青岛海尔空调器有限总公司 一种空调器的控制方法和控制设备

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