WO2021143333A1 - 空调器、空调器的控制方法和计算机可读存储介质 - Google Patents

空调器、空调器的控制方法和计算机可读存储介质 Download PDF

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Publication number
WO2021143333A1
WO2021143333A1 PCT/CN2020/128956 CN2020128956W WO2021143333A1 WO 2021143333 A1 WO2021143333 A1 WO 2021143333A1 CN 2020128956 W CN2020128956 W CN 2020128956W WO 2021143333 A1 WO2021143333 A1 WO 2021143333A1
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WO
WIPO (PCT)
Prior art keywords
air
air conditioner
deflector
air outlet
wind
Prior art date
Application number
PCT/CN2020/128956
Other languages
English (en)
French (fr)
Inventor
刘奇伟
姬安生
谢鹏
何健
翟富兴
郑辉
郭绍胜
易正清
贺杰
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
Priority claimed from CN202010061302.5A external-priority patent/CN111140915A/zh
Priority claimed from CN202020121594.2U external-priority patent/CN211400031U/zh
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
Priority to EP20914484.9A priority Critical patent/EP4080125A4/en
Publication of WO2021143333A1 publication Critical patent/WO2021143333A1/zh
Priority to US17/863,541 priority patent/US20220341622A1/en

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Classifications

    • 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
    • F24F13/082Grilles, registers or guards
    • 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
    • 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
    • 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
    • F24F1/0043Indoor units, e.g. fan coil units characterised by mounting arrangements
    • F24F1/0057Indoor units, e.g. fan coil units characterised by mounting arrangements mounted in or on a wall
    • 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
    • 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
    • F24F13/12Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers built up of sliding members
    • 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
    • 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
    • F24F13/20Casings or covers
    • 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
    • F24F13/20Casings or covers
    • F24F2013/205Mounting a ventilator fan therein

Definitions

  • This application relates to the technical field of air conditioners, and in particular to an air conditioner, an air conditioner control method, and a computer-readable storage medium.
  • the air supply of the air conditioner in the related art is guided to a specific direction through the air deflector, and the air supply of the air conditioner is easily blown directly to the human body, resulting in poor user experience.
  • This application aims to solve at least one of the technical problems existing in the prior art or related technologies.
  • the first aspect of the present application provides an air conditioner.
  • the second aspect of the application provides a control method of an air conditioner.
  • the third aspect of the present application provides a computer-readable storage medium.
  • the first aspect of the present application proposes an air conditioner, including: a housing, the housing is provided with an opening; a first air guide plate, the first air guide plate is connected to the housing, and the first air guide The plate and the opening define an air outlet; the air dispersing component, the dispersing component is formed with a dispersing part, the dispersing part is suitable for passing the air flow through and is suitable for dispersing and flowing the passing air flow, wherein the dispersing part is suitable for It moves relative to the shell, and the air dispersing component opens or closes the air outlet through the movement.
  • the first air guide plate and the housing define an air outlet, and the air dissipating component can close or open the air outlet.
  • the air dissipating component can form the appearance of the air conditioner with the casing to avoid The air outlet is exposed.
  • outside air enters the air conditioner for heat exchange and can be directly discharged through the air outlet defined between the first air guide plate and the housing for cooling or heating, or through the air outlet through the diffuser.
  • the air component discharges the air supply through the diffuser, providing different working modes, higher freedom of use, and improved user experience.
  • the air outlet can be closed by the air dissipating assembly, and the air dissipating assembly, the first air guide plate and the shell are integrated
  • the appearance of the product can be improved.
  • the air conditioner provided by the present application moves relative to the casing through the air dissipating assembly, and the setting of the air dissipating assembly to open or close the air outlet through movement can provide different working modes.
  • the air conditioner closes the air outlet, the air conditioner
  • the air is discharged through the air dissipating component located at the air outlet, and the air dissipating component of the air dissipating component can diffuse the air flow through, so as to realize the windlessness of the wind. It is understandable that the wind will change the original after passing through the wind dissipating structure.
  • the flow direction of the air conditioner can flow in different directions, so as to realize no wind feeling.
  • the air from the air conditioner is discharged through the air outlet defined by the first air guide plate and the opening of the housing, the air conditioner normally blows the air, and the direct air discharge from the air conditioner can improve the cooling or heating effect of the air conditioner.
  • the above-mentioned air conditioner provided in this application may also have the following additional technical features:
  • the opening is formed with a notch
  • the first wind deflector is adapted to cover a part of the notch and define an air outlet with the notch.
  • the shape of the opening of the housing and the manner of forming the air outlet are further provided.
  • the opening is formed with a notch
  • the first air guide plate is adapted to cover a part of the notch and define an air outlet with the notch.
  • the air conditioner can blow a large amount of air through the notch to improve the cooling or heating effect of the air conditioner.
  • the first wind deflector is arranged to rotate, and the first wind deflector is adapted to rotate to change the direction of the wind from the air outlet.
  • the first air guide plate is rotated, and the first air guide plate is rotated to change the direction of the air outlet.
  • the air supply direction of the air conditioner which can avoid the air supply to the human body to improve comfort, or make the air supply to the human body to feel the cooling or heating effect of the air conditioner as soon as possible;
  • the first air deflector The rotation setting can be used in combination with the opening or closing of the dispersing component to provide different working modes, which can further improve the user experience.
  • the air dissipating component closes the air outlet while the first air guide plate rotates to change the direction of the air outlet so that the direction of the air outlet faces the bottom of the housing to avoid the human body.
  • the air supply of the air conditioner can pass through the air dissipating part of the air dissipating assembly
  • the sending out can also be sent out through the air outlet at the same time, which can reduce the wind resistance of the air conditioner and improve the cooling or heating effect of the air conditioner when the air conditioner has no sense of wind.
  • the air dispersing component opens the air outlet while the first air deflector rotates to change the direction of the air outlet
  • the shape and size of the air outlet can be changed, and the flow rate of the air supply can be further changed under the same air volume. It can be understood that the smaller the air outlet, the greater the air flow rate, and the larger the air outlet, the smaller the air flow rate.
  • the first wind deflector is slidably arranged, and the first wind deflector is adapted to move between the sliding out of the housing and the sliding in the housing.
  • the sliding arrangement of the first air guide plate can slide out or slide into the housing, and the shape of the air outlet can be relatively adjusted.
  • the sliding setting of the first air deflector can be combined with the opening or closing of the air dispersing component to provide different working modes, which can further improve the user experience.
  • the air dissipating assembly closes the air outlet while the first air guide plate slides to change the shape of the air outlet.
  • the air from the air conditioner can be sent out through the air dissipating part of the air dissipating assembly at the same time. Sending out through the air outlet can reduce the wind resistance of the air conditioner and improve the cooling or heating effect of the air conditioner when the air conditioner does not feel the wind.
  • the first air deflector is adapted to lie on and cooperate with the air dispersing component to be combined to define a cavity, and the cavity is in communication with the air outlet.
  • the cavity can buffer the air supply of the air conditioner, which can improve the performance of the air dispersing component.
  • the air dispersing effect further improves the windless effect of the air supply of the air conditioner.
  • the housing is respectively formed with side openings at both ends of the longitudinal direction of the split line of the first air deflector and the air dispersing assembly, and the side openings are in communication with the cavity.
  • the cavity is formed with a side opening for exhaust air, and the air flow is blown out from the side to avoid direct wind blowing from the front. This achieves a sense of windless air, and also reduces the overall air resistance, which further improves The uniformity of the room temperature enhances the product experience.
  • an air outlet is provided on the first air deflector.
  • an air outlet is provided on the first air guide plate, and the air supply of the air conditioner can be sent out through the air outlet to avoid direct blowing of wind from the front, to achieve a sense of windlessness, and reduce
  • the overall wind resistance is improved, the uniformity of the room temperature is further improved, and the product experience is improved.
  • the first air guide plate may be arranged at the lower part of the housing, and the air dispersing component is located on the front side of the housing.
  • the air dissipating component closes the air outlet, the air supplied by the air conditioner can be discharged to the lower part of the air conditioner through the first air guide plate and will not be directly blown to the human body. It can also be discharged after being diffused by the air dissipating component to achieve no wind.
  • Sensing air supply when the air dissipating component opens the air outlet, the air from the air conditioner can be discharged to the lower part of the air conditioner through the first air guide plate, or it can be directly exhausted through the air outlet, which can improve the cooling and heating effect, understandable
  • the air dispersing component opens the air outlet, the air outlet is in an unobstructed state, and the air from the air conditioner is preferentially discharged through the air outlet, and the air outlet on the first guide plate plays a role of reducing wind resistance.
  • the air outlet includes a through hole; or the air outlet includes an air outlet grill; or the air outlet includes a wind-dissipating rotary blade, and the wind-dissipating rotary blade is suitable for passing the airflow and is suitable for To make the passing air flow diffuse and flow.
  • the air outlet may include at least one of a through hole, an air outlet grating, and a fan vane.
  • the air supply of the air conditioner can be directly discharged through the through holes, reducing the wind resistance of the air supply, and improving the cooling or heating effect of the air conditioner;
  • the setting of the air outlet grille the air supply of the air conditioner is discharged through the air outlet It is convenient to adjust the direction of the air supply; through the setting of the dispersing cyclone, the airflow can be diffused and flowed when the air supply of the air conditioner is discharged through the air outlet part, and then the direction of the air supply of the air conditioner can be changed to achieve a windless air supply.
  • the first air guide plate has an air guide surface; wherein the air guide surface is at least partially defined as a curved surface, or the wind guide surface is at least partially defined as a flat surface.
  • a specific structure of the first air guide plate is further provided, and at least part of the air guide surface is defined as a concave arc surface, so that the air supply of the air conditioner can be guided through the concave arc surface.
  • it can prevent the air supply of the air conditioner from directly impacting the first air guide plate, resulting in the attenuation of the air flow rate, which can ensure the air supply volume of the air conditioner, and can improve the cooling or heating efficiency of the air conditioner; on the other hand, the cooling or heating efficiency of the air conditioner can be improved;
  • the setting can change the direction of the air supply of the air conditioner, which is convenient for making the air supply of the air conditioner blow in the desired direction.
  • the setting of the concave arc surface can form a certain angle between the air supply of the air conditioner and the wall on which the air conditioner is mounted, which improves the air supply efficiency and makes users more comfortable. Improve the user experience.
  • the wind dispersing component includes: a first fan blade, the first fan blade has a first blade; a second fan blade, the second fan blade has a second blade, the second fan blade and the first fan blade
  • One fan blade is arranged along the axial direction, the second fan blade is suitable for rotating, and the second fan blade is suitable for rotating to the first position and the second position.
  • One blade is staggered along the axial direction of the wind dispersing part, and when the second fan blade is in the second position, the second blade and the first blade at least partially overlap in the axial direction of the wind dispersing part.
  • the wind dispersing part includes a first fan blade and a second fan blade, and the second fan blade can be rotated and axially staggered or partially overlapped with the first fan blade.
  • Such dissipating components can form different ways of dissipating wind and provide different degrees of dissipating effects.
  • the gap between the second blade on the second fan blade and the first blade on the first fan blade is small, and the air conditioner sends air through the diffuser It is more difficult to discharge the components, so most of the airflow is discharged through the first air deflector, or through the gap between the first air deflector and the housing; when the second fan blade and the first fan blade partially overlap in the axial direction At this time, the gap between the second blade on the second fan blade and the first blade on the first fan blade is large, and the resistance of the air flow out is small.
  • the air from the air conditioner can be discharged through the air dissipating component, and the first blade and the first blade
  • the second blade diffuses and flows the airflow, and realizes air supply without wind. Furthermore, different overlapping areas of the first fan blade and the second fan blade can provide different wind dispersing effects.
  • the air conditioner further includes: a second air deflector arranged at the air outlet, and the second air deflector is adapted to rotate to adjust the flow from the air outlet to the first air deflector and disperse the wind.
  • the air volume of the component is adapted to rotate to adjust the flow from the air outlet to the first air deflector and disperse the wind.
  • the air volume of the first air deflector and the air dispersing component is adjusted by the rotation of the second air deflector, so that the user can reasonably allocate the air supply direction and air volume based on their own needs, and the user has a higher degree of freedom and improves the user experience .
  • different working modes can be provided by the arrangement of the first wind deflector, the second wind deflector and the wind dispersing component.
  • the air conditioner can be controlled to work in the normal air supply mode
  • the air dissipating component can be controlled to open the air outlet
  • the second air guide plate can be controlled to rotate to direct the air supply of the air conditioner toward The air outlet is distributed so that the air is sent out through the air outlet
  • the air conditioner can be controlled to work in a windless mode
  • the air dissipating component can be controlled to close the air outlet
  • the second air deflector can be controlled Rotate to distribute the air volume in the direction of the air dispersing component, so that the air can be supplied through the air dispersing component
  • the air conditioner further includes: the air conditioner has a first form, the air conditioner is in the first form, the air diffuser closes the air outlet, the second air guide plate rotates to a first angle, The two fan blades are in the first position, the first wind deflector rotates to a second angle, or the first wind deflector slides to fit the air dissipating component; and/or the air conditioner has a second form, and the air conditioner is in a second form Downward, the air dispersing assembly moves to close the air outlet, the second air deflector rotates to a third angle, the second fan blade is at the second position, the first air deflector rotates to a fourth angle or the first air deflector slides to and The air dissipating components are in a snap fit; and/or the air conditioner has a third form, the air dispersing assembly moves to open the air outlet when the air conditioner is in the third form, the second air deflector rotates to a fifth angle, and the first air deflect
  • the air conditioner has a variety of forms, and the user has a higher degree of freedom, which is convenient for improving the user experience.
  • the air dispersing component closes the air outlet, the first air guide plate and the air dispersing component are in a close fit, and the second fan blade is in the first position.
  • the operation mode of the air conditioner is dispersing wind There is no sense of wind on the component side, that is, the air flows out and diffuses from the side of the first air deflector.
  • the air outlet is located at the front of the housing, and the air diffuser assembly for closing or opening the air supply outlet is also located at the front of the housing.
  • the air outlet is formed between the first air deflector and the housing, and the first air deflector is located at the front of the housing.
  • the air supplied by the air conditioner is distributed to the first wind deflector through the rotation of the second wind deflector to a first angle, and the second fan blade is in the first position, so that the second blade on the second fan blade
  • the gap between the first blade and the first blade on the first fan blade is small, and it is more difficult for the air to be discharged through the diffuser assembly.
  • the first wind deflector rotates to a second angle or the first wind deflector slides to interact with the diffuser.
  • the components are lapped and matched, and the gap between the first air deflector and the diffuser component is also small, so that most of the airflow is discharged through the first air deflector, and there is no wind on the front side of the air conditioner.
  • the first form is especially suitable for users When the air conditioner is at the front end of the air conditioner, cooling and air supply can improve user experience.
  • the air dissipating component closes the air outlet, the first air guide plate and the air dissipating component are in contact with each other, and the second fan blade is in the second position.
  • the operation mode of the air conditioner is the first
  • the air outlet is located at the front of the housing, and the air diffuser assembly for closing or opening the air supply outlet is also located at the front of the housing.
  • the air outlet is formed between the first air deflector and the housing, and the first air deflector is located at the front of the housing.
  • the air supplied by the air conditioner is distributed to the air dispersing component through the second air deflector rotating to a third angle, and the second fan blade is in the second position, so that the second blade and the second blade on the second fan blade are in the second position.
  • the gap between the first blades on a fan blade is relatively large, and the resistance of the air flow out of the air dispersing component is small, so that most of the air flow will be discharged by the air dispersing component, which can achieve no wind on the lower side of the air conditioner.
  • the second form is special It is suitable for cooling and supplying air when the user is at the bottom of the air conditioner, which can improve the user experience.
  • the air dispersing component opens the air outlet, and the second air guide plate rotates to a fifth angle.
  • the operation mode of the air conditioner is the normal cooling mode for air supply.
  • the air outlet is located at the front of the housing, and the air diffuser assembly for closing or opening the air supply outlet is also located at the front of the housing.
  • the air outlet is formed between the first air deflector and the housing, and the first air deflector is located at the front of the housing.
  • the air dispersing component opens the air outlet, and the air supply of the air conditioner is guided to the air outlet by turning the second air deflector to a fifth angle, and the first air deflector rotates to a sixth angle or the first air deflector slides
  • the direction of the air outlet is toward the upper part of the housing, which facilitates the air supply of the air conditioner to be biased to the upper side, and the cold air is uniformly settled and not blown directly.
  • the third form is particularly suitable for the cooling mode and can improve the user experience.
  • the air diffuser opens the air outlet, the second air deflector rotates to a seventh angle, the first air deflector rotates to an eighth angle, or the first air deflector slides to open the air outlet.
  • the air conditioner The operating mode is heating mode air supply.
  • the air outlet is located at the front of the housing, and the air diffuser assembly for closing or opening the air supply outlet is also located at the front of the housing.
  • the air outlet is formed between the first air deflector and the housing, and the first air deflector is located at the front of the housing.
  • the air supply of the air conditioner is distributed to the direction of the first wind deflector by rotating the second air deflector to the seventh angle, the first air deflector rotates to the eighth angle or the first air deflector slides to open the outlet
  • the air outlet is directed toward the lower side of the air conditioner, so that the air supply of the air conditioner can be biased to the lower side and the hot air can be pressed down.
  • the fourth form is particularly suitable for heating mode and can improve user experience.
  • the air dissipating component moves to close the air outlet.
  • the supply air is discharged through the air dissipating component, which can realize the windless air supply.
  • the air dissipating component covers the air outlet and disperses the air.
  • the wind component, the first wind deflector and the shell have an integrated appearance, which improves the product quality.
  • the housing has a receiving portion, and at least a part of the air dispersing component is received in the receiving portion.
  • the housing further includes a receiving part, at least a part of the air dispersing component is housed in the receiving part, the receiving part can fix and accommodate the air dispersing component, and can prevent the air from the air conditioner from flowing through the dispersing air
  • the dissipating components are separated from the air conditioner due to the driving effect of the air supply, which improves the service life of the air conditioner, reduces the frequency of repair and maintenance, and further enhances the product experience.
  • the accommodating portion includes a accommodating groove
  • the air dispersing component is slidably connected to the accommodating groove, wherein the air dispersing component slides relative to the accommodating groove to extend out of the accommodating groove or be accommodated in the accommodating groove.
  • the accommodating part further includes a accommodating groove, and the air dispersing component is slidably connected with the accommodating groove, and the air dispersing component can slide relative to the accommodating groove to extend out of the accommodating groove or be accommodated in the accommodating groove.
  • the accommodating groove has a simple structure and is easy to manufacture, which is beneficial to reduce production costs.
  • the air dissipating component is slidably connected with the accommodating groove. When the air dissipating component is stored in the accommodating groove, the dispersing effect of the air dispersing component on the air supply is reduced, so that the air conditioner Normal air supply.
  • the dispersing component When the dispersing component extends out of the containing groove, the dispersing component can be slid into the containing groove to realize the storage of the dispersing component, and it can also be slid out of the containing groove and combined with the wind guide into a cavity to achieve There is no sense of wind, which makes the air conditioner more convenient to use.
  • the housing further includes a face frame and a panel, the opening is formed on the face frame, and the panel and the face frame define a receiving part; wherein the receiving part is located at the front of the housing.
  • the housing further includes a panel, and at the same time further provides a location for the accommodating part.
  • the arrangement of the panel facilitates the formation of the accommodating part and makes the air conditioner more beautiful; the accommodating part is located at the front of the shell, so that the air dissipating component can be accommodated on the front side of the shell, and the air conditioner is turned on in the windless mode At this time, the air dispersing component directly protrudes from the receiving part on the front side of the casing to be combined with the first carrier to form a cavity, and the receiving part is arranged on the front side of the casing to avoid an increase in the height of the air conditioner.
  • the second aspect of the present application proposes an air conditioner control method, which is used in the air conditioner of any of the above technical solutions, including: receiving a control instruction, and controlling the movement of the air dispersing component according to the control instruction to open or close the air outlet.
  • the control method of the air conditioner provided by the present application further controls the movement of the air dissipating assembly according to the control instruction to open or close the air outlet by receiving a control instruction.
  • the air dissipating assembly of the air conditioner can be controlled to close the air outlet, so that the air dispersing The air component and the air conditioner form an integrated appearance.
  • the air dissipating component when the air conditioner is turned on, when the air dissipating component closes the air outlet, the air dissipating component can also realize the air supply in a non-wind-sensing mode or control the air dissipating component of the air conditioner to turn on
  • the air outlet the air from the air conditioner is directly sent out through the air outlet, which can improve the cooling or heating effect of the air conditioner;
  • the air dissipating assembly can be controlled to close the air outlet through the control command, so that the air dissipating assembly is first
  • the wind deflector and the shell have an integrated appearance, which can improve the product grade.
  • control command may include a variety of commands, such as a shutdown command and a power-on command.
  • the power-on command may further include a heating command and a cooling command.
  • the cooling command may further include a normal air supply command and a windless air supply command.
  • the air supply command further includes the air supply command with no sense of wind on the front side and the air supply command with no sense of wind on the lower side.
  • the shutdown command and the windless air supply command are used to control the movement of the air dissipating assembly to close the air outlet; the normal air supply command and the heating command are used to control the movement of the air dissipating assembly to open the air outlet.
  • the above-mentioned air conditioner control method provided in this application may also have the following additional technical features:
  • control instruction includes a first instruction, receiving a control instruction, and controlling the movement of the diffuser assembly to open or close the air outlet according to the control instruction, specifically including: receiving the first instruction, and controlling according to the first instruction
  • the air dissipating component closes the air outlet.
  • the first instruction is received, and the air dispersing component is controlled to close the air outlet according to the first instruction.
  • the first command may be a front-side no-wind-sensing air supply command, which is used to control the air dissipating component to close the air outlet to achieve a no-wind feeling on the side of the air dissipating component of the air conditioner.
  • the method further includes: controlling the second air deflector of the air conditioner to rotate to a first angle, and controlling The first wind deflector is rotated to a second angle, and the second fan blade of the air conditioner is controlled to be at the first position; or the second wind deflector of the air conditioner is controlled to rotate to the first angle, and the first wind deflector is controlled to slide with The air dispersing component is lap-fitted and controls the second fan blade to be in the first position.
  • a step after the step of receiving the first instruction and controlling the air dissipating component to close the air outlet according to the first instruction is further provided.
  • the air supply of the air conditioner can be preferentially guided downwards to achieve the front side There is no sense of wind for air supply.
  • the air outlet is located at the front of the housing, and the air dispersing assembly for closing or opening the air supply is also located at the front of the housing.
  • An air outlet is formed between the first air deflector and the housing.
  • the first wind deflector is located at the bottom of the casing, and the air supplied by the air conditioner is distributed to the first wind deflector through the second wind deflector rotating to a first angle, and the second fan blade is in the first position, so that the second fan
  • the gap between the second blade on the blade and the first blade on the first fan blade is small, and it is more difficult for the air to be discharged through the air dispersing assembly, and the first wind deflector rotates to the second angle or the first wind deflector
  • the plate slides to fit the air dissipating assembly, and the gap between the first air guide plate and the air dissipating assembly is also small, so that most of the air flow is discharged through the first air guide plate, and the front side of the air conditioner can be achieved without wind. Improve user experience.
  • control instruction includes a second instruction, receiving the control instruction, and controlling the movement of the dispersing component to open or close the air outlet according to the control instruction, specifically including: receiving the second instruction, according to the second instruction Command and control the movement of the air dissipating component to close the air outlet.
  • the second instruction is received, and the air dispersing component is controlled to close the air outlet according to the second instruction.
  • the second command may be an air supply command with no sense of wind on the lower side, which is used to control the air dissipating component to close the air outlet to achieve a sense of no wind on the side of the first wind deflector of the air conditioner.
  • the method further includes: controlling the second wind deflector of the air conditioner to rotate to a third angle , Control the first air deflector to rotate to a fourth angle, and control the second fan blade of the air conditioner to be in the second position; or control the second air deflector of the air conditioner to rotate to a third angle, and control the sliding of the first air deflector It is matched with the wind dispersing component and controls the second fan blade to be in the second position.
  • a step after receiving a second instruction and controlling the movement of the air dissipating component to close the air outlet according to the second instruction is further provided.
  • the air supply of the air conditioner can be guided forward in priority, and no lower side
  • the wind-sensing air supply, specifically, the air outlet is located at the front of the housing, and the air diffuser assembly for closing or opening the air supply is also located at the front of the housing.
  • the air outlet is formed between the first air deflector and the housing.
  • An air deflector is located at the bottom of the casing, and the air supplied by the air conditioner is distributed to the air dissipating components by rotating the second air deflector to a third angle, and the second fan blade is in the second position so that the The gap between the second blade and the first blade on the first fan blade is large, and the resistance of the air flow out is small, so that most of the air flow will be discharged by the air dispersing component, so that there is no wind on the lower side of the air conditioner.
  • the second command is particularly It is suitable for cooling and supplying air when the user is at the bottom of the air conditioner, which can improve the user experience.
  • control method of the air conditioner further includes: controlling the second fan blade to switch between the first position and the second position; wherein, the second fan blade is in the first position to maintain the first position. Duration, the second fan blade is in the second position to maintain the second duration.
  • the second fan blade is switched between the first position and the second position, and the second fan blade stays in the first position for the first time period, and the second fan blade is in the second position for the second time period.
  • control instruction includes a third instruction, receiving the control instruction, and controlling the movement of the dispersing component to open or close the air outlet according to the control instruction, specifically including: receiving the third instruction, according to the third instruction Command and control the movement of the air dissipating component to open the air outlet.
  • the third instruction is received, and the movement of the dispersing component is controlled according to the third instruction to open the air outlet.
  • the third instruction may be a normal air supply instruction in the cooling instruction, which is used to control the air dissipating component to open the air outlet to realize the normal cooling and air supply of the air conditioner.
  • the method further includes: controlling the second air deflector of the air conditioner to rotate to a fifth angle , Controlling the first air deflector to rotate to a sixth angle; or controlling the second air deflector of the air conditioner to rotate to a fifth angle, and controlling the first air deflector to slide to open the air outlet.
  • the air outlet Located at the front of the shell, the air dispersing assembly is used to close or open the air supply opening.
  • the air outlet is also located at the front of the shell.
  • An air outlet is formed between the first air deflector and the shell. The first air deflector is located at the bottom of the shell.
  • the second air deflector rotates to the fifth angle to guide the air supply of the air conditioner to the air outlet
  • the first air deflector rotates to the sixth angle or the first air deflector slides to open the air outlet so that the direction of the air outlet faces the housing
  • the upper part is convenient for the air supply of the air conditioner to be biased to the upper side, so that the cold air is uniformly settled and not blown directly. It is especially suitable for the cooling mode and can improve the user experience.
  • control instruction includes a fourth instruction, receives the control instruction, and controls the movement of the dispersing component to open or close the air outlet according to the control instruction, which specifically includes: receiving the fourth instruction, according to the fourth instruction. Command and control the movement of the air dissipating component to open the air outlet.
  • the fourth instruction is received, and the movement of the dispersing component is controlled according to the fourth instruction to open the air outlet.
  • the fourth command may be a heating command, which is used to control the air dissipating component to open the air outlet to realize heating of the air conditioner.
  • the method further includes: controlling the second air deflector of the air conditioner to rotate to a seventh angle , Controlling the first air deflector to rotate to an eighth angle; or controlling the second air deflector of the air conditioner to rotate to a seventh angle, and controlling the first air deflector to slide to open the air outlet.
  • a step after receiving a fourth instruction and controlling the movement of the air dispersing component to open the air outlet according to the fourth instruction is further provided.
  • the heating of the air conditioner can be realized through this technical solution.
  • the air outlet is located at the front of the housing, and the air diffuser assembly for closing or opening the air supply outlet is also located at the front of the housing.
  • the air outlet is formed between the first air deflector and the housing, and the first air deflector is located at the front of the housing.
  • the air supply of the air conditioner is distributed to the direction of the first wind deflector by rotating the second air deflector to the seventh angle, the first air deflector rotates to the eighth angle or the first air deflector slides to open the outlet
  • the air outlet is directed toward the lower side of the air conditioner, so that the air supply of the air conditioner can be biased to the downward side, and the hot air can be pressed down. It is especially suitable for heating mode and can improve the user experience.
  • control instruction includes a shutdown instruction.
  • the step of controlling the movement of the diffuser assembly to open or close the air outlet according to the control instruction includes: receiving the shutdown instruction and controlling according to the shutdown instruction The air dissipating component moves to close the air outlet.
  • control instruction further includes a shutdown instruction.
  • the air dissipating assembly is controlled to move to close the air outlet according to the shutdown instruction.
  • the air dissipating assembly, the first air deflector and the shell are integrated
  • the appearance enhances the product grade.
  • the third aspect of the present application proposes a computer-readable storage medium with a computer program stored on the computer-readable storage medium, and when the computer program is executed by a processor, the control method of the air conditioner of any of the above technical solutions is realized.
  • the computer-readable storage medium provided by the third aspect of the present application realizes the control method of the air conditioner according to any of the technical solutions of the second aspect when the computer program is executed by the processor, and thus has the air conditioner of any of the technical solutions of the second aspect.
  • the full technical effects of the control method of, will not be repeated here.
  • Fig. 1 shows a schematic diagram of a three-dimensional structure of an air conditioner according to an embodiment of the present application
  • Fig. 2 shows a front view of the air dispersing component of the air conditioner according to another embodiment of the present application when the air outlet is opened;
  • Fig. 3 shows a front view of the air dissipating component of the air conditioner according to another embodiment of the present application when the air outlet is closed;
  • Fig. 4 shows a three-dimensional schematic diagram of the working state of the air conditioner according to an embodiment of the present application
  • Figure 5 shows a schematic diagram of a part of the exploded structure of an air conditioner according to an embodiment of the invention
  • Fig. 6 shows a schematic structural diagram of an air conditioner according to an embodiment of the present application
  • Fig. 7 shows a schematic structural diagram of an air conditioner in a first form according to an embodiment of the present application
  • Fig. 8 shows a schematic structural diagram of an air conditioner in a second form according to an embodiment of the present application
  • Fig. 9 shows a schematic structural diagram of an air conditioner according to an embodiment of the present application when it is in a third form
  • FIG. 10 shows a schematic structural diagram of the air conditioner in a fourth form according to an embodiment of the present application.
  • Fig. 11 shows a schematic structural diagram of an air conditioner according to another embodiment of the present application.
  • FIG. 12 shows a schematic diagram of the structure of the air conditioner in the normal air supply mode of another embodiment of the present application.
  • FIG. 13 shows a schematic structural diagram of an air conditioner in another embodiment of the present application when working in a windless air supply mode
  • Fig. 14 shows a schematic structural diagram of a wind dispersing component according to an embodiment of the present application
  • FIG. 15 shows a schematic diagram of a partial exploded structure of a wind dispersing component according to an embodiment of the present application
  • FIG. 16 shows a schematic flowchart of a control method of an air conditioner according to the twelfth embodiment of the present application
  • FIG. 17 shows a schematic flowchart of a control method of an air conditioner according to a thirteenth embodiment of the present application.
  • Fig. 18 shows a schematic flowchart of a control method of an air conditioner according to a fourteenth embodiment of the present application
  • FIG. 19 shows a schematic flowchart of a control method of an air conditioner according to a fifteenth embodiment of the present application.
  • Fig. 20 shows a schematic flowchart of a control method of an air conditioner according to a sixteenth embodiment of the present application
  • FIG. 21 shows a schematic flowchart of a control method of an air conditioner according to a seventeenth embodiment of the present application.
  • FIG. 22 shows a schematic flowchart of a control method of an air conditioner according to Embodiment 18 of the present application
  • FIG. 23 shows a schematic flowchart of a control method of an air conditioner according to the nineteenth embodiment of the present application.
  • FIG. 24 shows a schematic flowchart of a control method of an air conditioner according to Embodiment 20 of the present application.
  • FIG. 25 shows a schematic flowchart of a control method of an air conditioner according to Embodiment 21 of the present application.
  • FIG. 26 shows a schematic flowchart of a control method of an air conditioner according to Embodiment 22 of the present application.
  • FIG. 27 shows a schematic flowchart of a control method of an air conditioner according to Embodiment 23 of the present application.
  • FIG. 28 shows a schematic flowchart of a control method of an air conditioner according to a twenty-fourth embodiment of the present application
  • FIG. 29 shows a schematic flowchart of a control method of an air conditioner according to Embodiment 25 of the present application.
  • FIG. 30 shows a schematic flowchart of a control method of an air conditioner according to Embodiment 26 of the present application.
  • FIG. 31 shows a schematic flow chart of controlling the air conditioner to work in the first form of the air conditioner control method according to the specific embodiment of the present application
  • FIG. 32 shows a schematic flow chart of controlling the air conditioner to work in the second mode of the air conditioner control method according to the specific embodiment of the present application
  • FIG. 33 shows a schematic flow chart of controlling the air conditioner to work in the third mode of the air conditioner control method according to the specific embodiment of the present application
  • FIG. 34 shows a schematic flow chart of controlling the air conditioner to work in the fourth form of the air conditioner control method according to the specific embodiment of the present application
  • FIG. 35 shows a schematic flowchart of controlling the air conditioner to work in the first normal mode of the air conditioner control method according to the specific embodiment of the present application
  • Fig. 36 shows a schematic flow chart of controlling the air conditioner to work in a windless mode in the air conditioner control method according to a specific embodiment of the present application.
  • an embodiment of the present application provides an air conditioner, including: a housing 100, a first air deflector 200, and an air dissipating component 300.
  • the housing 100 is provided with an opening 102; the first air deflector 200 is connected to the housing 100, and the first air deflector 200 and the opening 102 define an air outlet 104; the air dispersing component 300 is formed with a dispersing part 302.
  • the air dispersing component 302 is adapted to allow air to pass through and to diffuse the passing air flow.
  • the air dissipating assembly 300 is adapted to move relative to the housing 100, and the air dissipating assembly 300 opens or closes the air outlet 104 through movement.
  • the first air guide plate 200 and the housing 100 define an air outlet 104, and the air dispersing assembly 300 can close or open the air outlet 104.
  • the air dispersing assembly 300 can be connected to the housing 100
  • the appearance of the air conditioner is formed to prevent the air outlet 104 from being exposed.
  • the outside air enters the air conditioner for heat exchange and can be directly discharged through the air outlet 104 defined between the first air guide plate 200 and the housing 100 for cooling. Or heating, the air can also be diffused through the air outlet 104 through the air dissipating component 302, which provides different working modes, has a higher degree of freedom of use, and improves user experience.
  • the air conditioner provided by the present application is shown in FIG. 4, where the arrow facing the air conditioner indicates the direction of air intake, and the arrow far away from the air conditioner indicates the direction of air outlet.
  • the air outlet 104 can be closed by the air dissipating assembly 300.
  • the air dissipating assembly 300, the first air guide plate 200 and the housing 100 have an integrated appearance, which can improve the product quality.
  • the air conditioner provided by the present application moves relative to the housing 100 through the air dispersing assembly 300, and the setting of the air dispersing assembly 300 to open or close the air outlet 104 through movement can provide different working modes, as shown in FIG.
  • the assembly 300 closes the air outlet 104
  • the air from the air conditioner is discharged through the air dissipating assembly 300 located at the air outlet 104, and the air dissipating component 302 of the air dissipating assembly 300 can diffuse the air flow through, thereby achieving a sense of windlessness.
  • the wind can flow in different directions after changing the original flow direction after passing through the wind dispersing structure, so as to realize the windlessness of the wind, even if people directly face the air outlet 104 of the air conditioner, they will not feel it.
  • the large airflow improves the user experience; as shown in FIG. 2, when the air dispersing assembly 300 opens the air outlet 104, the air supply of the air conditioner is defined by the first air deflector 200 and the opening 102 of the housing 100
  • the air outlet 104 of the air conditioner is discharged from the air conditioner, and the air from the air conditioner is normally discharged, and the air from the air conditioner is directly discharged to improve the cooling or heating effect of the air conditioner.
  • an embodiment of the present application provides an air conditioner, including: a housing 100, a first air deflector 200, and an air dissipating component 300.
  • the housing 100 is provided with an opening 102; the first air deflector 200 is connected to the housing 100, and the first air deflector 200 and the opening 102 define an air outlet 104; the air dispersing component 300 is formed with a dispersing part 302.
  • the air dispersing component 302 is adapted to allow air flow to pass through and to diffuse the passing air flow.
  • the air dissipating assembly 300 is adapted to move relative to the housing 100, and the air dissipating assembly 300 opens or closes the air outlet 104 through movement.
  • the opening 102 is formed with a notch, and the first wind deflector 200 is suitable for covering a part of the notch and defines an air outlet 104 with the notch.
  • the shape of the opening 102 of the housing 100 and the manner of forming the air outlet 104 are further provided.
  • the opening 102 is formed with a notch.
  • the first air guide plate 200 is adapted to cover a part of the notch and define an air outlet 104 with the notch.
  • the air conditioner can blow a large amount of air through the notch to improve the cooling or heating of the air conditioner. Effect.
  • an embodiment of the present application provides an air conditioner, including: a housing 100, a first air deflector 200, and an air dissipating component 300.
  • the housing 100 is provided with an opening 102; the first air deflector 200 is connected to the housing 100, and the first air deflector 200 and the opening 102 define an air outlet 104; the air dispersing component 300 is formed with a dispersing part 302.
  • the air dispersing component 302 is suitable for passing airflow and diffusing the passing airflow.
  • the air dispersing assembly 300 is adapted to move relative to the housing 100, and the air dispersing assembly 300 opens or closes the air outlet 104 through movement.
  • the first wind deflector 200 is arranged to rotate, and the first wind deflector 200 is adapted to rotate to change the direction of the wind from the air outlet 104.
  • the first air guide plate 200 is rotated, and the first air guide plate 200 is rotated to change the direction of the air outlet 104.
  • the first air deflector The 200 rotation setting can be used in combination with the opening or closing of the dispersing component 300 to provide different working modes, which can further improve the user experience.
  • the air dispersing assembly 300 closes the air outlet 104 while the first air guide plate 200 rotates to change the direction of the air outlet 104 so that the direction of the air outlet 104 faces the bottom of the housing 100 to avoid the human body.
  • the air dissipating component 302 of the air assembly 300 can also be sent out through the air outlet 104 at the same time, which can reduce the air resistance of the air conditioner and improve the cooling or heating effect of the air conditioner when the air conditioner does not feel the air.
  • the air dispersing assembly 300 opens the air outlet 104 while the first air guide plate 200 rotates to change the direction of the air outlet 104, the shape and size of the air outlet 104 can be changed, and the flow rate of the air supply can be changed under the same air volume. It can be understood that the smaller the air outlet 104 is, the greater the air flow rate is, and the larger the air outlet 104 is, the smaller the air flow rate is.
  • an embodiment of the present application provides an air conditioner, including: a housing 100, a first air deflector 200, and an air dissipating component 300.
  • the housing 100 is provided with an opening 102; the first air deflector 200 is connected to the housing 100, and the first air deflector 200 and the opening 102 define an air outlet 104; the air dispersing component 300 is formed with a dispersing part 302.
  • the air dispersing component 302 is suitable for passing airflow and diffusing the passing airflow.
  • the air dispersing assembly 300 is adapted to move relative to the housing 100, and the air dispersing assembly 300 opens or closes the air outlet 104 through movement.
  • the first wind deflector 200 is slidably arranged, and the first wind deflector 200 is adapted to move between sliding out of the housing 100 and sliding in the housing 100.
  • the sliding arrangement of the first air guide plate 200 can slide out or slide into the housing 100, and the shape of the air outlet 104 can be relatively adjusted.
  • the sliding setting of the first air deflector 200 can be combined with the opening or closing of the air dispersing assembly 300 to provide different working modes, which can further improve the user experience.
  • the air dispersing assembly 300 closes the air outlet 104 while the first air guide plate 200 slides to change the shape of the air outlet 104.
  • the air outlet 104 avoids the human body, as shown in FIG. 13, the arrow toward the air conditioner indicates the inlet The direction of the wind.
  • the arrow far away from the air conditioner indicates the direction of wind.
  • the air from the air conditioner can be sent out through the air dissipating component 302 of the air dissipating assembly 300 and at the same time through the air outlet 104, which can send air without a sense of wind in the air conditioner. In the case of reducing the wind resistance of the air supply of the air conditioner, the cooling or heating effect of the air conditioner is improved.
  • an embodiment of the present application provides an air conditioner.
  • the housing 100 is along the joint line of the first air deflector 200 and the air dispersing assembly 300.
  • Side openings 106 are respectively formed at both ends in the length direction of the, and the side openings 106 are in communication with the cavity.
  • the cavity is formed with a side opening 106 for exhaust air, and the air flow is blown out from the side to avoid direct wind blowing from the front, which achieves a sense of windless air, and also reduces the overall air resistance, which further improves The uniformity of the room temperature is improved, and the product experience is improved.
  • the air flow can flow out from the air outlet portion on the first air deflector 200, the air dissipating member 302, and the side openings 106 on both sides of the housing 100, thereby forming at least four air outlet positions, while ensuring the air volume. , Weaken the impact of the airflow, that is, form a 4D windless sense of wind.
  • an embodiment of the present application provides an air conditioner.
  • the casing 100 is along the length of the joint line of the first air deflector 200 and the air dispersing assembly 300
  • Side openings 106 are respectively formed at both ends of the direction, and the side openings 106 communicate with the cavity.
  • the cavity is formed with a side opening 106 for exhaust air, and the air flow is blown out from the side to avoid direct wind blowing from the front, which achieves a sense of windless air, and also reduces the overall air resistance, which further improves The uniformity of the room temperature is improved, and the product experience is improved.
  • an embodiment of the present application provides an air conditioner, and the first air guide plate 200 is provided with an air outlet.
  • the first air deflector 200 is provided with an air outlet, and the air supply of the air conditioner can be sent out through the air outlet to avoid direct blowing of wind from the front, so as to achieve a windless air outlet, and also It reduces the overall wind resistance, further improves the uniformity of the room temperature, and enhances the product experience.
  • the first wind deflector 200 may be disposed at the lower part of the housing 100, and the air dispersing assembly 300 is located at the front side of the housing 100.
  • the air dissipating assembly 300 closes the air outlet 104, the air from the air conditioner can be discharged to the lower part of the air conditioner through the first air guide plate 200 and not directly blown to the human body, or the air can be diffused by the air dissipating assembly 300 and then discharged.
  • the air dispersing assembly 300 opens the air outlet 104, the air from the air conditioner can be discharged to the lower part of the air conditioner through the first air guide plate 200, or it can be directly exhausted through the air outlet 104, which can improve cooling In relation to the heating effect, it can be understood that when the air dissipating assembly 300 opens the air outlet 104, the air outlet 104 is in an unobstructed state, and the air from the air conditioner is preferentially discharged through the air outlet 104, and the air outlet on the first guide plate plays a role Reduce the effect of wind resistance.
  • the air outlet portion includes a through hole; or the air outlet portion includes an air outlet grating; or the air outlet portion includes a wind-dissipating vortex blade, which is suitable for passing airflow through and suitable for dispersing and flowing the passing airflow .
  • the air outlet may include at least one of a through hole, an air outlet grating, and a wind vane.
  • the air supply of the air conditioner can be directly discharged through the through holes, reducing the wind resistance of the air supply, and improving the cooling or heating effect of the air conditioner;
  • the setting of the air outlet grille the air supply of the air conditioner is discharged through the air outlet It is convenient to adjust the direction of the air supply; through the setting of the dispersing cyclone, the airflow can be diffused and flowed when the air supply of the air conditioner is discharged through the air outlet part, and then the direction of the air supply of the air conditioner can be changed to achieve a windless air supply.
  • the first air guide plate 200 has an air guide surface 202; wherein, the air guide surface 202 It is at least partially defined as a curved surface, or the air guide surface 202 is at least partially defined as a plane.
  • a specific structure of the first air guide plate 200 is further provided, and at least part of the air guide surface 202 is defined as a concave arc surface, so that the air supply of the air conditioner can be guided through the concave arc surface.
  • it can prevent the air supply of the air conditioner from directly impacting the first air guide plate 200, resulting in the attenuation of the air supply flow rate, which can ensure the air supply of the air conditioner, and improve the cooling or heating efficiency of the air conditioner;
  • the setting of the air conditioner can change the direction of the air supply of the air conditioner, which is convenient for making the air supply of the air conditioner blow in the desired direction.
  • the setting of the concave arc surface can form a certain angle between the air supply of the air conditioner and the wall on which the air conditioner is mounted, which improves the air supply efficiency and makes users more comfortable. Improve the user experience.
  • the wind guide surface 202 of the first wind deflector 200 is a concave arc surface, that is, the first wind deflector 200 is recessed toward the bottom of the air conditioner, so that the wind can be guided to the upper side of the air conditioner, and the air outlet is prevented from flowing out. The wind blows directly.
  • the wind dissipating component 302 includes a first fan blade 3022, and the first fan blade 3022 has The first blade; the second fan blade 3024, the second fan blade 3024 has a second blade, the second fan blade 3024 and the first fan blade 3022 are arranged in the axial direction, the second fan blade 3024 is suitable for rotation, and the second fan blade 3024 is adapted to rotate to the first position and the second position, wherein when the second fan blade 3024 is in the first position, the second blade and the first blade are staggered along the axial direction of the wind dispersing part 302, and when the second fan blade 3024 is in the first position In the second position, the second blade and the first blade at least partially overlap in the axial direction of the wind dispersing component 302.
  • the air dispersing part 302 includes a first fan blade 3022 and a second fan blade 3024, and the second fan blade 3024 can be rotated and axially offset from the first fan blade 3022. Or the axial parts are overlapped, so that the dispersing member 302 can form different ways of dispersing wind and provide different degrees of dispersing effect.
  • the air conditioner sends It is more difficult for the wind to be discharged through the air dispersing assembly 300, so that most of the air flow is discharged through the first wind deflector 200, or through the gap between the first wind deflector 200 and the housing 100;
  • the second fan blade 3024 When it overlaps with the first fan blade 3022 in the axial direction, the gap between the second blade on the second fan blade 3024 and the first blade on the first fan blade 3022 is large, the resistance of the air flow out is small, and the air conditioner sends air It can be discharged through the air dispersing member 302, and the air flow is diffused and flowed through the first blade and the second blade, so as to realize the windless air supply.
  • different overlapping areas of the first fan blade 3022 and the second fan blade 3024 can provide different wind dispersing effects.
  • the air dispersing part can be clamped and fixed by the first base part 304 and the second base part 306, the air dispersing part is supported by the support rod 310, and the first base part 304 and the first base part 304 are connected to each other by the connecting part 308.
  • the second base portion 306 can make the structure of the wind dispersing component 300 more stable and improve the service life.
  • the connecting portion 308 includes a first connecting piece 3082, a second connecting piece 3084, and a third connecting piece 3086.
  • the second connecting piece 3084 is used to connect the first connection and the second connection.
  • One of the connections is provided on the first base portion 304 and the other is provided on the second base portion 306.
  • an embodiment of the present application provides an air conditioner, further comprising: a second air deflector 400, which is arranged at the air outlet 104, and the second air deflector
  • the air plate 400 is adapted to rotate to adjust the amount of air flowing from the air outlet 104 to the first air guide plate 200 and the air dispersing assembly 300.
  • the second air deflector 400 is rotated to adjust the air volume of the first air deflector 200 and the air dispersing assembly 300, so that the user can reasonably allocate the air supply direction and air volume based on their own needs, and the user has a higher degree of freedom and improves Improve the user experience.
  • different working modes can be provided by the arrangement of the first wind deflector 200, the second wind deflector 400 and the wind dispersing component 300.
  • the air conditioner can be controlled to work in the normal air supply mode
  • the air dissipating assembly 300 can be controlled to open the air outlet 104
  • the second air guide plate 400 can be controlled to rotate to send the air conditioner
  • the air volume is distributed toward the air outlet, so that the air is sent out through the air outlet 104
  • the air conditioner can be controlled to work in a windless mode
  • the air dispersing assembly 300 can be controlled to close the air outlet 104.
  • the air volume is distributed to the first air deflector 200 and the air dispersing assembly 300, and the air is discharged through the first air deflector 200 and the air dispersing assembly 300 at the same time.
  • reducing or avoiding the direct air supply to the user can ensure the cooling or heating effect of the air conditioner in the state of no wind.
  • the air conditioner further includes: the air conditioner has a first form, the air conditioner is in the first form, the air dispersing assembly 300 closes the air outlet 104, and the second air guide plate 400 rotates to the first form.
  • the air conditioner has a second In the second form, the air conditioner is in the second form, the air dispersing assembly 300 moves to close the air outlet 104, the second wind deflector 400 rotates to a third angle, the second fan blade 3024 is in the second position, and the first wind deflector 200 rotates To the fourth angle or the first air guide plate 200 slides to fit the air dispersing assembly 300; and/or the air conditioner has a third form, and the air dispersing assembly 300 moves to open the air outlet 104 when the air conditioner is in the third form ,
  • the second air conditioner has a third form, and the air dispersing assembly 300 moves to open the air outlet 104 when the air conditioner is in the third form ,
  • the second air conditioner has a third form, and the air dispersing assembly 300 moves to open the air
  • the air conditioner has a variety of forms, and the user has a higher degree of freedom, which is convenient for improving the user experience.
  • the air dispersing assembly 300 closes the air outlet 104, the first air deflector 200 and the air dispersing assembly 300 are in abutting fit, and the second fan blade 3024 is in the first position.
  • the operation mode of the air conditioner is that there is no wind-sensing air supply on the side of the air dispersing assembly 300, that is, the air flow flows out from the side of the first air guide plate 200 and diffuses.
  • the air outlet 104 is located at the front of the housing 100, and the air diffuser assembly 300 for closing or opening the air supply outlet is also located at the front of the housing 100.
  • the air outlet 104 is formed between the first air deflector 200 and the housing 100.
  • the first wind deflector 200 is located at the bottom of the housing 100, and the air supplied by the air conditioner is distributed to the first wind deflector 200 by rotating the second wind deflector 400 to a first angle, and the second fan blade 3024 is in the first position. Position so that the gap between the second blade on the second fan blade 3024 and the first blade on the first fan blade 3022 is small, and it is more difficult for the air to be discharged through the air dispersing assembly 300, and the first wind deflector 200 Rotate to a second angle or the first wind deflector 200 slides to fit into the air dispersing assembly 300. The gap between the first wind deflector 200 and the dispersing assembly 300 is also small, so that most of the airflow passes through the first wind deflector. When the plate 200 is discharged, there is no wind on the front side of the air conditioner.
  • the first form is particularly suitable for cooling and air supply when the user is at the front end of the air conditioner, which can improve the user experience.
  • the arrow toward the air conditioner indicates the direction of air intake
  • the arrow far away from the air conditioner indicates the direction of wind.
  • the second air deflector 400 rotates to a first angle
  • the second air deflector 400 and the diffuser assembly The angle between the extension line 300 toward the upper receiving portion of the housing 100 is an acute angle, and the wind guide surface of the second wind deflector 400 faces the side of the first wind deflector 200; the first wind deflector 200 rotates to the second angle or the first angle.
  • the wind deflector 200 slides to fit with the wind dispersing assembly 300.
  • One end of the first wind deflector 200 abuts against the wind dispersing assembly 300, so that the gap between the first wind deflector 200 and the wind deflector is small, and the first wind deflector 200 A gap is formed between the other end of the wind deflector 200 and the housing 100, which facilitates the blowing of air through the lower side of the air conditioner.
  • the air dispersing assembly 300 closes the air outlet 104, the first air deflector 200 and the air dispersing assembly 300 are in abutting fit, and the second fan blade 3024 is in the second position.
  • the air conditioner The operating mode of is that there is no sense of wind on the side of the first air deflector 200, that is, the air flows out and diffuses from the side of the air dispersing component 300.
  • the air outlet 104 is located at the front of the housing 100, and the air diffuser assembly 300 for closing or opening the air supply outlet is also located at the front of the housing 100.
  • the air outlet 104 is formed between the first air deflector 200 and the housing 100.
  • the first wind deflector 200 is located at the bottom of the housing 100, and the second wind deflector 400 rotates to a third angle to distribute the air supplied by the air conditioner to the diffuser assembly 300, and the second fan blade 3024 is in the second position,
  • the gap between the second blade on the second fan blade 3024 and the first blade on the first fan blade 3022 is larger, and the resistance of the air flow out of the air dispersing assembly 300 is small, so that most of the air flow will be discharged by the air dispersing assembly 300 ,
  • the lower side of the air conditioner can be realized that there is no wind.
  • the second form is particularly suitable for cooling and air supply when the user is at the bottom of the air conditioner, which can improve the user experience.
  • the arrow toward the air conditioner indicates the direction of air intake, and the arrow far from the air conditioner indicates the direction of wind.
  • the second air deflector 400 rotates to a third angle, and the second air deflector 400 and the diffuser assembly
  • the angle between the extension line 300 toward the upper receiving portion of the housing 100 is an obtuse or right angle, the air guiding surface of the second air deflector 400 faces the side of the air dispersing assembly 300; the first air deflector 200 rotates to the fourth angle or the first
  • the air guide plate 200 slides to fit with the air dispersing assembly 300, and one end of the first air guide plate 200 abuts against the air dissipating assembly 300 to facilitate the blowing of air through the front side of the air conditioner.
  • the air dispersing assembly 300 opens the air outlet 104, and the second air guide plate 400 rotates to a fifth angle.
  • the operating mode of the air conditioner is the normal cooling mode for air supply.
  • the air outlet 104 is located at the front of the housing 100, and the air diffuser assembly 300 for closing or opening the air supply outlet is also located at the front of the housing 100.
  • the air outlet 104 is formed between the first air deflector 200 and the housing 100.
  • the first air guide plate 200 is located at the bottom of the housing 100, the air diffuser assembly 300 opens the air outlet 104, and the second air guide plate 400 rotates to a fifth angle to guide the air supply of the air conditioner to the air outlet 104, the first air guide The plate 200 rotates to a sixth angle or the first air guide plate 200 slides to open the air outlet 104 so that the direction of the air outlet 104 faces the upper part of the housing 100, which facilitates the air supply of the air conditioner to be biased to the upper side, and the cold air is uniformly settled.
  • the third form is especially suitable for cooling mode, which can improve user experience.
  • the arrow toward the air conditioner indicates the direction of air intake
  • the arrow far from the air conditioner indicates the direction of wind.
  • the second air deflector 400 rotates to a fifth angle
  • the second air deflector 400 and the diffuser assembly The angle between the extension line 300 toward the upper receiving portion of the housing 100 is an obtuse or right angle, and the air guiding surface of the second air deflector 400 faces the side of the air dispersing assembly 300;
  • the first air deflector 200 rotates to a sixth angle or a first angle.
  • the air guide plate 200 slides to open the air outlet 104 to facilitate the blowing of air to guide the wind through the air outlet 104 on the front side of the air conditioner.
  • the air dispersing assembly 300 opens the air outlet 104, the second air deflector 400 rotates to a seventh angle, the first air deflector 200 rotates to an eighth angle, or the first air deflector 200 slides to open the air outlet 104.
  • the operation mode of the air conditioner is heating mode and air supply.
  • the air outlet 104 is located at the front of the housing 100, and the air diffuser assembly 300 for closing or opening the air supply outlet is also located at the front of the housing 100.
  • the air outlet 104 is formed between the first air deflector 200 and the housing 100.
  • the first air deflector 200 is located at the bottom of the housing 100, and the air conditioner is distributed to the direction of the first air deflector 200 by rotating the second air deflector 400 to the seventh angle, and the first air deflector 200 rotates to the second angle.
  • the eight-angle or first air guide plate 200 slides to open the air outlet 104 so that the air outlet 104 faces the lower side of the air conditioner, which is convenient for the air supply of the air conditioner to be biased to the lower side to achieve hot air downward pressure.
  • the fourth form is particularly suitable In heating mode, it can improve user experience.
  • the arrow toward the air conditioner indicates the direction of air intake, and the arrow far away from the air conditioner indicates the direction of wind.
  • the second air deflector 400 rotates to a seventh angle, and the second air deflector 400 is connected to the The angle between the extension line of the air dispersing assembly 300 toward the upper receiving portion of the housing 100 is an acute angle, and the air guiding surface of the second air guiding plate 400 faces the first air guiding plate 200; the first air guiding plate 200 rotates to an eighth angle Or, the first air guide plate 200 slides to open the air outlet 104, so that the air can be sent to the lower side of the air conditioner through the air outlet 104 of the air conditioner.
  • the air dispersing assembly 300 moves to close the air outlet 104.
  • the air conditioner When the air conditioner is working, the blown air is discharged through the air dispersing assembly 300, which can realize the windless air supply.
  • the air diffuser assembly 300 shields the air outlet 104, and the air diffuser assembly 300, the first air deflector 200, and the housing 100 have an integrated appearance, which improves the product quality.
  • an embodiment of the present application provides an air conditioner.
  • the housing 100 has a receiving portion 110, and at least a part of the air dispersing assembly 300 is received in the receiving Department.
  • the housing 100 further includes a accommodating portion 110, and at least a part of the air dispersing assembly 300 is accommodated in the accommodating part 110.
  • the accommodating part 110 can fix and accommodate the air dissipating assembly 300 and prevent air-conditioning.
  • the air dispersing assembly 300 is separated from the air conditioner due to the driving effect of the air supply, which improves the service life of the air conditioner, reduces the frequency of repair and maintenance, and further enhances the product experience.
  • the receiving portion 110 includes a receiving groove 112, and the air dispersing component 300 is slidably connected to the receiving groove 112, wherein the air dispersing component 300 slides relative to the receiving groove 112 to extend out of the receiving groove 112 or Housed in the accommodating tank 112.
  • the accommodating portion 110 further includes a accommodating groove 112, and the air dispersing assembly 300 is slidably connected to the accommodating groove 112, and the air dispersing assembly 300 can slide relative to the accommodating groove 112 to extend out of the accommodating groove 112 or be accommodated in the accommodating groove 112. .
  • the accommodating groove 112 has a simple structure and is easy to manufacture, which is beneficial to reduce production costs.
  • the air dispersing assembly 300 is slidably connected to the accommodating groove 112. When the air dispersing assembly 300 is stored in the accommodating groove 112, the impact of the air dispersing assembly 300 on the air supply is reduced. The dispersing effect enables the air conditioner to supply air normally.
  • the air dispersing assembly 300 When the air dispersing assembly 300 extends out of the accommodating groove 112, the air dispersing assembly 300 can be slid into the accommodating groove 112 to realize the storage of the air dispersing assembly 300, and it can also be stored by the accommodating groove 112.
  • the sliding out and the air guide part are combined into a cavity to achieve a windless sense of wind, which makes the air conditioner more convenient to use.
  • the housing 100 further includes a face frame 114 and a face plate 116, the opening 102 is formed on the face frame 114, and the face plate 116 and the face frame 114 define a receiving part 110; wherein, the receiving part 110 is located at the front of the housing 100.
  • the housing 100 further includes a panel 116, and further provides a location for the receiving portion 110.
  • the arrangement of the panel 116 facilitates the formation of the receiving part 110 and makes the air conditioner more beautiful; the receiving part 110 is located at the front of the housing 100, so that the air dissipating assembly 300 can be housed in the front side of the housing 100, and the air conditioner is turned on In the windless mode, the air dispersing assembly 300 directly extends from the receiving portion 110 on the front side of the housing 100 to be combined with the first carrier to form a cavity, and the receiving portion 110 is arranged on the front side of the housing 100. Avoiding the increase in the height of the air conditioner.
  • an embodiment of the present application provides a method for controlling an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 802 Receive a control instruction, and control the movement of the dispersing component to open or close the air outlet according to the control instruction.
  • the control method of the air conditioner provided by the present application further controls the movement of the air dissipating assembly according to the control instruction to open or close the air outlet by receiving a control instruction.
  • the air dissipating assembly of the air conditioner can be controlled to close the air outlet, so that the air dispersing The air component and the air conditioner form an integrated appearance.
  • the air dissipating component when the air conditioner is turned on, when the air dissipating component closes the air outlet, the air dissipating component can also realize the air supply in a non-wind-sensing mode or control the air dissipating component of the air conditioner to turn on
  • the air outlet the air from the air conditioner is directly sent out through the air outlet, which can improve the cooling or heating effect of the air conditioner;
  • the air dissipating assembly can be controlled to close the air outlet through the control command, so that the air dissipating assembly is first
  • the wind deflector and the shell have an integrated appearance, which can improve the product grade.
  • control command may include a variety of commands, such as a shutdown command and a power-on command.
  • the power-on command may further include a heating command and a cooling command.
  • the cooling command may further include a normal air supply command and a windless air supply command.
  • the air supply command further includes the air supply command with no sense of wind on the front side and the air supply command with no sense of wind on the lower side.
  • the shutdown command and the windless air supply command are used to control the movement of the air dissipating assembly to close the air outlet; the normal air supply command and the heating command are used to control the movement of the air dissipating assembly to open the air outlet.
  • an embodiment of the present application provides a method for controlling an air conditioner, including:
  • Step 902 Receive a first instruction, and control the air dispersing component to close the air outlet according to the first instruction.
  • the first instruction is received, and the air dispersing component is controlled to close the air outlet according to the first instruction.
  • the first command may be a front-side no-wind-sensing air supply command, which is used to control the air dissipating component to close the air outlet to achieve a no-wind feeling on the side of the air dissipating component of the air conditioner.
  • an embodiment of the present application provides a method for controlling an air conditioner, including:
  • Step 1002 Receive a first instruction, and control the air dispersing component to close the air outlet according to the first instruction;
  • Step 1004 Control the second wind deflector of the air conditioner to rotate to a first angle, control the first wind deflector to rotate to a second angle, and control the second fan blade of the air conditioner to be at the first position.
  • an embodiment of the present application provides a control method of an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 1102 Receive a first instruction, and control the air dispersing component to close the air outlet according to the first instruction;
  • Step 1104 Control the second wind deflector of the air conditioner to rotate to a first angle, control the first wind deflector to slide to fit with the air dispersing component, and control the second fan blade to be at the first position.
  • a step after the step of receiving the first instruction and controlling the air dissipating component to close the air outlet according to the first instruction is further provided.
  • the air supply of the air conditioner can be preferentially directed downwards to achieve the front side There is no sense of wind for air supply.
  • the air outlet is located at the front of the housing, and the air dispersing assembly for closing or opening the air supply is also located at the front of the housing.
  • An air outlet is formed between the first air deflector and the housing.
  • the first wind deflector is located at the bottom of the casing, and the air supplied by the air conditioner is distributed to the first wind deflector through the second wind deflector rotating to a first angle, and the second fan blade is in the first position, so that the second fan
  • the gap between the second blade on the blade and the first blade on the first fan blade is small, and it is more difficult for the air to be discharged through the air dispersing assembly, and the first wind deflector rotates to the second angle or the first wind deflector
  • the board slides to fit the air dissipating assembly, and the gap between the first air guide plate and the air dissipating assembly is also small, so that most of the air flow is discharged through the first air guide plate, which can realize that there is no wind on the front side of the air conditioner. Improve user experience.
  • an embodiment of the present application provides a method for controlling an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 1202 Receive a second instruction, and control the movement of the dispersing component to close the air outlet according to the second instruction.
  • the second instruction is received, and the air dispersing component is controlled to close the air outlet according to the second instruction.
  • the second command may be an air supply command with no sense of wind on the lower side, which is used to control the air dissipating component to close the air outlet to achieve a sense of no wind on the side of the first wind deflector of the air conditioner.
  • an embodiment of the present application provides a control method of an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 1302 Receive a second instruction, and control the movement of the dispersing component to close the air outlet according to the second instruction;
  • Step 1304 Control the second wind deflector of the air conditioner to rotate to a third angle, control the first wind deflector to rotate to a fourth angle, and control the second fan blade of the air conditioner to be at the second position.
  • an embodiment of the present application provides a control method of an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 1402 Receive a second instruction, and control the movement of the dispersing component to close the air outlet according to the second instruction;
  • Step 1404 Control the second wind deflector of the air conditioner to rotate to a third angle, control the first wind deflector to slide to fit with the air dispersing component, and control the second fan blade to be at the second position.
  • a step after receiving a second instruction and controlling the movement of the air dispersing component to close the air outlet according to the second instruction is further provided.
  • the air supply of the air conditioner can be given priority to guide the air forward, and the lower side
  • the wind-sensing air supply, specifically, the air outlet is located at the front of the housing, and the air dispersing assembly for closing or opening the air supply is also located at the front of the housing.
  • the air outlet is formed between the first air deflector and the housing.
  • An air deflector is located at the bottom of the casing, and the air supplied by the air conditioner is distributed to the air dissipating assembly by rotating the second air deflector to a third angle, and the second fan blade is in the second position, so that the The gap between the second blade and the first blade on the first fan blade is large, and the resistance of the air flow out is small, so that most of the air flow will be discharged by the air dispersing component, which can achieve no wind under the air conditioner.
  • the second command is particularly It is suitable for cooling and supplying air when the user is at the bottom of the air conditioner, which can improve the user experience.
  • an embodiment of the present application provides a method for controlling an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 1502 Receive a control instruction, and control the movement of the dispersing component to open or close the air outlet according to the control instruction;
  • Step 1504 Control the second fan blade to switch between the first position and the second position.
  • the second fan blade is kept in the first position for the first time length, and the second fan blade is kept in the second position for the second time length.
  • the second fan blade is switched between the first position and the second position, and further the second fan blade stays in the first position for the first period of time, and the second fan blade is in the second position for the second period of time.
  • an embodiment of the present application provides a control method of an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 1602 Receive a third instruction, and control the movement of the dispersing component to open the air outlet according to the third instruction.
  • the third instruction is received, and the movement of the dispersing component is controlled according to the third instruction to open the air outlet.
  • the third instruction may be a normal air supply instruction in the cooling instruction, which is used to control the air dissipating component to open the air outlet to realize the normal cooling and air supply of the air conditioner.
  • an embodiment of the present application provides a method for controlling an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 1702 Receive a third instruction, and control the movement of the dispersing component to open the air outlet according to the third instruction;
  • Step 1704 Control the second air deflector of the air conditioner to rotate to a fifth angle, and control the first air deflector to rotate to a sixth angle.
  • an embodiment of the present application provides a method for controlling an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 1802 Receive a third instruction, and control the movement of the dispersing component to open the air outlet according to the third instruction;
  • Step 1804 Control the second air deflector of the air conditioner to rotate to a fifth angle, and control the first air deflector to slide to open the air outlet.
  • a step after receiving a third instruction and controlling the movement of the air dissipating assembly to open the air outlet according to the third instruction is further provided.
  • the normal cooling and air supply of the air conditioner can be realized, specifically, the air outlet Located at the front of the shell, the air dispersing assembly is used to close or open the air supply opening.
  • the air outlet is also located at the front of the shell.
  • An air outlet is formed between the first air deflector and the shell. The first air deflector is located at the bottom of the shell.
  • the second air deflector rotates to the fifth angle to guide the air supply of the air conditioner to the air outlet
  • the first air deflector rotates to the sixth angle or the first air deflector slides to open the air outlet so that the direction of the air outlet faces the housing
  • the upper part is convenient for the air supply of the air conditioner to be biased to the upper side, so that the cold air is uniformly settled and not blown directly. It is especially suitable for the cooling mode and can improve the user experience.
  • an embodiment of the present application provides a control method of an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 1902 Receive a fourth instruction, and control the movement of the dispersing component to open the air outlet according to the fourth instruction.
  • the fourth instruction is received, and the movement of the dispersing component is controlled according to the fourth instruction to open the air outlet.
  • the fourth command may be a heating command, which is used to control the air dissipating component to open the air outlet to realize heating of the air conditioner.
  • an embodiment of the present application provides a method for controlling an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 2002 Receive a fourth instruction, and control the movement of the dispersing component to open the air outlet according to the fourth instruction;
  • Step 2004 Control the second air deflector of the air conditioner to rotate to a seventh angle, and control the first air deflector to rotate to an eighth angle.
  • an embodiment of the present application provides a control method of an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 2102 Receive a fourth instruction, and control the movement of the dispersing component to open the air outlet according to the fourth instruction;
  • Step 2104 Control the second air deflector of the air conditioner to rotate to a seventh angle, and control the first air deflector to slide to open the air outlet.
  • the steps after receiving the fourth instruction and controlling the movement of the air dispersing assembly to open the air outlet according to the fourth instruction are further provided, and the heating of the air conditioner can be realized through this embodiment.
  • the air outlet is located at the front of the housing, and the air diffuser assembly for closing or opening the air supply outlet is also located at the front of the housing.
  • the air outlet is formed between the first air deflector and the housing, and the first air deflector is located at the front of the housing.
  • the air supply of the air conditioner is distributed to the direction of the first wind deflector by rotating the second air deflector to the seventh angle, the first air deflector rotates to the eighth angle or the first air deflector slides to open the outlet
  • the air outlet is directed toward the lower side of the air conditioner, so that the air supply of the air conditioner can be biased to the downward side, and the hot air can be pressed down. It is especially suitable for heating mode and can improve the user experience.
  • an embodiment of the present application provides a method for controlling an air conditioner, which is used in the air conditioner of any of the above embodiments, including:
  • Step 2202 Receive a shutdown instruction, and control the movement of the dispersing component to close the air outlet according to the shutdown instruction.
  • control instruction further includes a shutdown instruction.
  • the air dissipating assembly is controlled to move to close the air outlet according to the shutdown instruction.
  • the air dissipating assembly, the first air deflector and the housing are integrated
  • the appearance enhances the product grade.
  • the embodiment of the present application proposes a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, the control method of the air conditioner of any one of the above embodiments is realized.
  • the computer-readable storage medium provided by the present application realizes the control method of the air conditioner in any of the above embodiments when the computer program is executed by the processor, and thus has all the technical effects of the control method of the air conditioner in any of the above embodiments. This will not be repeated here.
  • the air conditioner has a housing 100, a chassis 500, a diffuser assembly 300, an air inlet grill 600, an air inlet is provided on the back of the air conditioner housing 100, and an air inlet grill 600 is provided at the outlet of the air inlet.
  • the wind part is to leave enough air inlet area.
  • external air enters the housing 100 and exchanges heat with the heat exchanger 700 and is discharged through the air inlet.
  • the front part of the face frame 114 of the housing 100 is formed with an air outlet 104 and the air outlet 104 penetrates the bottom of the air outlet frame.
  • the end covers on the left and right sides of the face frame 114 are formed with side openings 106, and the face frame
  • the front side of 114 is provided with a wind dissipating assembly 300 that can move up and down to open and close the air outlet 104. In the windless mode, the wind dissipating assembly 300 closes the air outlet 104 and has a function of dispersing wind.
  • the housing 100 further includes a panel 116, which is located at the front of the face frame 114 and above the air outlet 104.
  • a receiving portion 110 suitable for accommodating at least a part of the air dispersing assembly 300 is defined between the face frame 114 and the panel 116.
  • the air conditioner includes a rotatable first air guide plate 200, and the air dissipating assembly 300 forms a part of the appearance of the product in the shutdown state. More specifically, a second air guide plate 400 is provided inside the air outlet 104, and the bottom of the air outlet 104 A rotatable first wind deflector 200 is added to the side, and the first wind deflector 200 may have a flat shape or an arc shape. In the windless mode, the first wind deflector 200 can be overlapped with the dispersing component 300 to form a windless mode, and the second wind deflector 400 may be provided with through holes, outlet grilles, and in the dispersing whirlpool. One or more of.
  • a slidable first wind deflector 200 is included.
  • the wind dissipating assembly 300 forms a part of the product appearance in the shutdown state.
  • a second wind deflector 400 is provided inside the air outlet 104, and the bottom side of the air outlet 104 is increased.
  • the first wind deflector 200 that can extend or contract along the direction of the wind, the first wind deflector 200 can be overlapped with the wind dissipating assembly 300 to form a windless mode, and the second wind deflector 400 can It is set to have one or more of through holes, outlet grilles, and wind-scattering swirling vanes.
  • the air inlet of the air conditioner is arranged on the back and the top, the air outlet 104 is arranged on the bottom, and the windless component is integrated with the appearance of the air conditioner.
  • a cavity is formed between the air dispersing component 300, the housing 100 and the first first air deflector 200 at the air outlet 104.
  • the side, front, and bottom of the cavity are equipped with air outlets to discharge air.
  • the wind can be weakened, and the air can be discharged from different angles to avoid cold wind blowing. It solves the problem of the air conditioner in the weak wind and no wind. The problem of insufficient cooling capacity.
  • the air dispersing component 300 is not working, it does not affect the operation of the conventional air conditioner in cooling and heating modes.
  • the second wind deflector 400 rotates to the heating position, and the first wind deflector 200 also rotates or slides toward the bottom side of the casing 100 to facilitate heating; in the air conditioner cooling In the mode: the second air deflector 400 rotates to the cooling position, and the first air deflector 200 rotates toward the front side to be flush with the extension line of the air duct, which is beneficial for cooling.
  • an air conditioner controller is further provided.
  • the steps of controlling the air conditioner to work in the first mode according to the air conditioner control method specifically include:
  • Step 2302 The controller drives the motor to rotate to drive the second air deflector to rotate around the axis to a first angle, and realizes the bottom side air supply by guiding the air downward;
  • Step 2304 The controller drives the motor to rotate to drive the first air deflector to rotate around the axis to a second angle, and also achieves the bottom side air supply through the downward air guide;
  • Step 2306 The controller drives the motor to rotate and drives the air dissipating component to slide down to close the air outlet, and the controller drives the motor to rotate to drive the second fan blade to rotate 65° around the axis, so that the second blade on the second fan blade and the first blade The blades are staggered, and the front-side air supply is scattered around through the gap between the second blade and the first blade to disperse the front-side wind, so as to achieve the front-side windless effect.
  • the step of controlling the air conditioner to work in the second mode according to the air conditioner control method specifically includes:
  • Step 2402 The controller drives the motor to rotate to drive the second air deflector to rotate around the axis to a third angle, and the air is deflected to the front side by guiding the upward air;
  • Step 2404 The controller drives the motor to rotate to drive the first air deflector to rotate around the axis to a fourth angle.
  • the upward air deflector realizes the forward air supply; the second air deflector and the first air deflector
  • the through holes will disperse the wind from the bottom side;
  • Step 2406 The controller drives the motor to rotate and drives the air dissipating component to slide down to close the air outlet, and the controller drives the motor to rotate to drive the second fan blade to rotate 65° around the axis, so that the second blade on the second fan blade and the first The blades overlap and guide the wind through the blade gap to send air to the front side.
  • the steps of controlling the air conditioner to work in the third mode according to the air conditioner control method specifically include:
  • Step 2502 The controller drives the motor to rotate to drive the second air deflector to rotate around the axis to a fifth angle, and the air is deflected toward the upper side by guiding the downward air;
  • Step 2504 The controller drives the motor to rotate to drive the first air deflector to rotate around the axis to a sixth angle, and similarly realize the upward air supply by guiding the downward air;
  • Step 2506 The controller drives the motor to rotate and drives the air dissipating component to slide down to open the air outlet.
  • the air can be supplied to the upper side in the cooling/air supply mode of the air conditioner, and the cold air can be uniformly settled and not blown directly.
  • the steps of controlling the air conditioner to work in the fourth mode according to the air conditioner control method specifically include:
  • Step 2602 The controller drives the motor to rotate to drive the second air deflector to rotate around the axis to the seventh preset angle, and realizes the downward air supply by guiding the downward air;
  • Step 2604 The controller drives the motor to rotate to drive the first air deflector to rotate around the axis to the eighth preset angle, and similarly realize the downward air supply by guiding the downward air;
  • Step 2606 The controller drives the motor to rotate and drives the air dissipating component to slide down to open the air outlet.
  • the air supply to the lower side in the heating mode of the air conditioner is realized, and the hot air is pressed downward.
  • the air conditioner is controlled in normal mode according to the air conditioner control method:
  • Step 2702 The controller drives the motor to rotate to drive the second air deflector to rotate around the axis to the first preset angle position;
  • Step 2704 The controller drives the motor to rotate to drive the first air deflector with a slidable bottom to maintain the closed position;
  • Step 2706 The controller drives the motor to rotate and drives the air dissipating component to slide down to open the air outlet.
  • the maximum cooling capacity of the air conditioner is realized under normal conditions.
  • the air conditioner is controlled in the windless mode:
  • Step 2802 The controller drives the motor to rotate to drive the second air deflector to rotate around the axis to the third preset angle position, and realizes the forward air supply by guiding the upward air;
  • Step 2804 The controller drives the motor to rotate and drives the first slidable air deflector at the bottom to slide to the fourth preset angle position, because the bottom slidable air deflector has micro holes to disperse the wind from the bottom side;
  • Step 2806 The controller drives the motor to rotate and drives the air dissipating component to slide down to close the air outlet, and the controller drives the motor to rotate to drive the second fan blade to switch between the first position and the second position.
  • the specific steps for the second fan blade to switch between the first position and the second position include:
  • the controller drives the motor to rotate the second fan blade to drive the second blade of the second fan blade to rotate 65° around the axis and then to be offset from the first blade;
  • the drive motor drives the second fan blade to stay at the current position for 15s;
  • the controller drives the motor to rotate and drives the second fan blade to continue to rotate 65° around the axis in the same direction, and then coincide with the first blade;
  • the drive motor drives the current position of the second fan blade to stay for 15s.
  • the above is achieved by controlling the interaction of the first air deflector, the second air deflector, and the air dissipating component to achieve a windless feeling of the air conditioner.
  • Double-sided no wind feeling there is no wind feeling under the front; inside the shell, the second air guide plate adjusts the distribution ratio of the cold forward or downward; adjusts the cooling by adjusting the opening and closing of the air dissipating component in front of the shell
  • the forward or downward distribution ratio realizes two-way cooling capacity adjustment, and free control without a feeling of wind and cooling.
  • the front and bottom cooling capacity can be adjusted.
  • the corresponding air volume is not less than 50% of the total air volume.
  • the term “plurality” refers to two or more than two, unless specifically defined otherwise.
  • the terms “installed”, “connected”, “connected”, “fixed”, etc. should be understood in a broad sense.
  • “connected” can be a fixed connection, a detachable connection, or an integral connection;
  • “connected” can be Directly connected, or indirectly connected through an intermediary.
  • the specific meanings of the above-mentioned terms in this application can be understood according to specific circumstances.

Abstract

一种空调器、空调器的控制方法和计算机可读存储介质,其中,空调器包括:壳体(100),设有开口部(102);第一导风板(200),与壳体(100)相连,且第一导风板(200)与开口部(102)限定出出风口(104);散风组件(300),其上形成有散风部件(302),散风部件(302)适于供气流穿过且适于使穿过的气流扩散流动,其中,散风组件(300)适于相对于壳体(100)运动,且通过运动打开或关闭出风口(104)。空调器关闭时散风组件(300)能够与壳体(100)形成空调器的外观,同时,也可通过散风组件(300)形成多种形态的无风感出风,使用自由度更高,提高了用户体验。

Description

空调器、空调器的控制方法和计算机可读存储介质
本申请要求于2020年01月19日提交到中国国家知识产权局、申请号为“202010061302.5”、申请名称为“空调器、空调器的控制方法和计算机可读存储介质”的中国专利申请的优先权、于2020年01月19日提交到中国国家知识产权局、申请号为“202020121594.2”、申请名称为“空调器”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及空调技术领域,具体而言,涉及一种空调器、一种空调器的控制方法和一种计算机可读存储介质。
背景技术
目前,相关技术中的空调器送风通过导风板导向至特定方向,空调器的送风容易直接吹向人体,导致用户体验差。
发明内容
本申请旨在至少解决现有技术或相关技术中存在的技术问题之一。
为此,本申请的第一方面提供了一种空调器。
本申请的第二方面提供了一种空调器的控制方法。
本申请的第三方面提供了一种计算机可读存储介质。
有鉴于此,本申请的第一方面提出了一种空调器,包括:壳体,壳体设有开口部;第一导风板,第一导风板与壳体相连,且第一导风板与开口部限定出出风口;散风组件,散风组件上形成有散风部件,散风部件适于供气流穿过且适于使穿过的气流扩散流动,其中,散风组件适于相对于壳体运动,且散风组件通过运动打开或关闭出风口。
本申请提供的空调器,第一导风板与壳体限定出出风口,散风组件能够关闭或开启出风口,在空调器关闭时,散风组件能够与壳体形成空调器的外观,避免出风口裸露,在工作过程中,外部空气进入空调器进行换热 后能够经由第一导风板与壳体之间限定出的出风口直接排出进行制冷或制热,也可以通过出风口经由散风部件对送风进行扩散口排出,提供了不同的工作模式,使用自由度更高,提高了用户体验。
本申请提供的空调器,通过第一导风板及散风组件的设置,在空调器未工作时,可以通过散风组件关闭出风口,散风组件、第一导风板及壳体具有一体化外观,能够提升产品档次。
本申请提供的空调器,通过散风组件相对于壳体运动,且散风组件通过运动打开或关闭出风口的设置能够提供不同的工作模式,在散风组件关闭出风口的情况下,空调器的送风通过位于出风口处的散风组件排出,散风组件的散风部件能够对流经的气流进行扩散,从而实现无风感出风,可以理解的是,风经由散风结构后改变原来的流动方向可以朝不同的方向流动,从而实现无风感出风,即使人直接朝向空调器的出风口也不会感觉到过大的气流,提高了用户体验;在散风组件打开出风口的情况下,空调器的送风经由第一导风板与壳体的开口部限定出的出风口排出,空调器正常送风,空调器送风直接排出能够提高空调器的制冷或制热效果。
另外,本申请提供的上述空调器还可以具有如下附加技术特征:
在上述技术方案中,进一步地,开口部形成有凹口,第一导风板适于遮挡凹口的一部分并与凹口限定出出风口。
在该技术方案中,进一步提供了壳体的开口部的形状以及出风口的形成方式。开口部形成有凹口,第一导风板适于遮挡凹口的一部分并与凹口限定出出风口,空调器可以通过凹口进行大量送风,提高空调器的制冷或制热效果。
在上述任一技术方案中,进一步地,第一导风板转动设置,且第一导风板适于转动以改变出风口的出风方向。
在该技术方案中,第一导风板转动设置,第一导风板转动设置可以改变出风口的出风方向。一方面便于用户控制空调器的送风方向,可以避免送风朝向人体以提高舒适度,或使送风朝向人体以尽快感受到空调器的制冷或制热效果;另一方面第一导风板转动设置可以与散风组件开启或关闭组合使用以提供不同的工作模式,能够进一步提高用户体验。
例如,散风组件关闭出风口同时第一导风板转动改变出风口的方向,使出风口方向朝向壳体的底部以避开人体,空调器的送风既可以通过散风组件的散风部件送出同时也可以通过出风口送出,能够在空调器无风感送风的情况下降低空调器送风的风阻,提高空调器的制冷或制热效果。
再例如,散风组件开启出风口同时第一导风板转动改变出风口的方向,可以改变出风口的形状与大小,进一步在同样风量的情况下改变送风的流速。可以理解的是出风口越小送风流速越大,出风口越大送风流量越小。
在上述任一技术方案中,进一步地,第一导风板滑动设置,且第一导风板适于在滑出壳体和滑入壳体之间运动。
在该技术方案中,第一导风板滑动设置可以滑出或滑入壳体内,能够相对调整出风口的形状。一方面便于用户控制空调器的送风方向;另一方面第一导风板滑动设置可以与散风组件开启或关闭组合使用以提供不同的工作模式,能够进一步提高用户体验。
例如,散风组件关闭出风口同时第一导风板滑动改变出风口的形状,在出风口避开人体的情况下,空调器的送风既可以通过散风组件的散风部件送出同时也可以通过出风口送出,能够在空调器无风感送风的情况下降低空调器送风的风阻,提高空调器的制冷或制热效果。
在上述任一技术方案中,进一步地,第一导风板适于与散风组件搭靠配合以拼合限定出腔体,腔体与出风口相连通。
在该技术方案中,通过腔体的形成可以通过腔体实现大量出风,同时在散风组件关闭出风口时,腔体可以对空调器的送风起到缓冲作用,能够提高散风组件的散风效果,进一步提高空调器送风的无风感效果。
在上述任一技术方案中,进一步地,壳体沿第一导风板与散风组件的拼合线的长度方向的两端分别形成有侧开口,侧开口与腔体连通。
在该技术方案中,腔体形成有用于排风的侧开口,气流由侧面吹出避免正面出风直接吹人,实现了无风感出风,并且还降低了整体出风阻力,进一步地提升了房间温度的均匀性,提升产品的使用体验。
在上述任一技术方案中,进一步地,第一导风板上设有出风部。
在该技术方案中,在第一导风板上设置有出风部,空调器的送风可以 经由出风部送出,避免正面出风直接吹人,实现了无风感出风,并且还降低了整体出风阻力,进一步地提升了房间温度的均匀性,提升产品的使用体验。
具体地,第一导风板可以设置在壳体的下部,散风组件位于壳体前侧。在散风组件关闭出风口时,空调器送风可以经由第一导风板向空调器下部排出不会直接吹向人体,也可以通过散风组件对送风进行扩散后排出,能够实现无风感送风;在散风组件开启出风口时,空调器送风可以经由第一导风板向空调器下部排放,也可以通过出风口直接排风,能够提高制冷与制热效果,可以理解的是在散风组件开启出风口时,出风口处于无遮挡状态,空调器送风优先经由出风口排出,第一导向板上的出风部起到降低风阻的作用。
在上述任一技术方案中,进一步地,出风部包括通孔;或出风部包括出风格栅;或出风部包括散风旋叶,散风旋叶适于供气流穿过且适于使穿过的气流扩散流动。
在该技术方案中,进一步提供了出风部的具体样式,出风部可以包括通孔、出风格栅及散风旋叶中的至少一种。通过通孔的设置空调器的送风可以直接经由通孔排出,降低送风风阻,能够提高空调器制冷或制热效果;通过出风格栅的设置,在空调器送风经由出风部排出时便于调节送风的方向;通过散风旋叶的设置,在空调器送风经由出风部排出时能够使气流扩散流动,进而可以改变空调器送风的方向,实现无风感送风。
在上述任一技术方案中,进一步地,第一导风板具有导风面;其中,导风面至少部分限定为弧面,或导风面至少部分限定为平面。
在该技术方案中,进一步提供了第一导风板的具体结构,导风面的至少部分为限定为凹弧面,使得空调器的送风能够通过凹弧面进行导向。一方面能够避免空调器送风直接冲击第一导风板,导致送风流速衰减,能够保障空调器的送风量,能够提高空调器制冷或制热的效率;另一方面通过凹弧面的设置能够改变空调器送风的朝向,便于使空调器的送风朝向预期方向送风。例如当空调器为挂式空调时,通过凹弧面的设置能够使空调器的送风与挂设空调器的墙体之间形成一定的角度,提高送风效率的同时使用户更为舒适,提高了用户体验。
在上述任一技术方案中,进一步地,散风部件包括:第一扇叶,第一扇 叶具有第一叶片;第二扇叶,第二扇叶具有第二叶片,第二扇叶与第一扇叶沿轴向设置,第二扇叶适于转动,且第二扇叶适于转动至第一位置和第二位置,其中,当第二扇叶处于第一位置,第二叶片与第一叶片沿散风部件的轴向错开,当第二扇叶处于第二位置,第二叶片与第一叶片沿散风部件的轴向至少部分重合。
在该技术方案中,进一步提供了散风部件的结构,散风部件包括了第一扇叶与第二扇叶,第二扇叶能够转动与第一扇叶轴向错开或轴向部分重合,如此设置散风部件可以形成不同的出风方式,提供不同程度的散风效果。
具体地,当第二扇叶与第一扇叶轴向错开时,第二扇叶上的第二叶片与第一扇叶上的第一叶片之间缝隙较小,空调器送风通过散风组件排出的难度较大,从而大部分气流经由第一导风板排出,也可以通过第一导风板与壳体之间的缝隙排出;当第二扇叶与第一扇叶轴向部分重合时,第二扇叶上的第二叶片与第一扇叶上的第一叶片之间缝隙较大,气流流出的阻力较小,空调器送风可以通过散风部件排出,通过第一叶片与第二叶片进行气流扩散流动,实现无风感送风。进一步通过第一扇叶与第二扇叶不同的重合面积即可提供不同的散风效果。
在上述任一技术方案中,进一步地,空调器还包括:第二导风板,设于出风口处,第二导风板适于转动以调节由出风口流向第一导风板和散风组件的风量。
在该技术方案中,通过第二导风板转动调节第一导风板和散风组件的风量,使得用户可以基于自身需求合理分配送风方向及风量,用户自由度更高,提高了用户体验。
在该技术方案中,通过第一导风板、第二导风板及散风组件的设置可以提供不同的工作模式。例如,当用户对制冷或制热要求较高时,可以控制空调器以正常送风模式进行工作,控制散风组件开启出风口,控制第二导风板转动,将空调器的送风风量朝向送风口进行分配,使送风经由出风口送出;当用户对送风舒适度要求较高,可以控制空调器以无风感模式进行工作,控制散风组件关闭出风口,控制第二导风板转动,向散风组件方向分配风量,使送风经由散风组件送风;也可以控制散风组件关闭出风口, 控制第二导风板转动,向第一导风板及散风组件分配风量,送风经由第一导风板和散风组件同时排出,对送风风量起到分流作用,能够在总送风量未减少的前提下,减少或避免送风直接朝向用户,在无风感状态下能够确保空调器的制冷或制热效果。
在上述任一技术方案中,进一步地,空调器还包括:空调器具有第一形态,空调器处于第一形态下,散风组件关闭出风口,第二导风板转动至第一角度,第二扇叶处于第一位置,第一导风板转动至第二角度或第一导风板滑动以与散风组件搭靠配合;和/或空调器具有第二形态,空调器处于第二形态下,散风组件运动以关闭出风口,第二导风板转动至第三角度,第二扇叶处于第二位置,第一导风板转动至第四角度或第一导风板滑动以与散风组件搭靠配合;和/或空调器具有第三形态,空调器处于第三形态下,散风组件运动以打开出风口,第二导风板转动至第五角度,第一导风板转动至第六角度或第一导风板滑动以打开出风口;和/或空调器具有第四形态,空调器处于第四形态下,散风组件运动以打开出风口,第二导风板转动至第七角度,第一导风板转动至第八角度或第一导风板滑动以打开出风口;和/或空调器具有第五形态,空调器处于第五形态下,散风组件运动以关闭出风口。
在该技术方案中,空调器具备多种形态,用户自由度更高,便于提高用户体验。
在该技术方案中,第一形态下,散风组件关闭出风口,第一导风板与散风组件搭靠配合,第二扇叶处于第一位置,此时空调器的运行模式为散风组件侧无风感送风,也即气流由第一导风板侧流出并扩散流动。具体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第一角度将空调器的送风分配至第一导风板,且第二扇叶处于第一位置,使第二扇叶上的第二叶片与第一扇叶上的第一叶片之间缝隙较小,送风通过散风组件排出的难度较大,同时第一导风板转动至第二角度或第一导风板滑动以与散风组件搭靠配合,第一导风板与散风组件之间缝隙同样较小,从而大部分气流经由第一导风板排出,即可实现空调器前侧无风,第一形态特别适用于用户处于空调器前端时进行制冷送风,能够提高用户体验。
在该技术方案中,在第二形态下,散风组件关闭出风口,第一导风板与散风组件搭靠配合,第二扇叶处于第二位置,此时空调器的运行模式为第一导风板侧无风感送风,也即气流由散风组件侧流出并扩散流动。具体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第三角度将空调器的送风分配至散风组件,且第二扇叶处于第二位置,使第二扇叶上的第二叶片与第一扇叶上的第一叶片之间缝隙较大,气流经由散风组件流出的阻力较小,使得大部分气流将由散风组件排出,即可实现空调器的下侧无风,第二形态特别适用于用户处于空调器底部时进行制冷送风,能够提高用户体验。
在该技术方案中,在第三形态下,散风组件开启出风口,第二导风板转动至第五角度,此时空调器的运行模式为正常制冷模式送风。具体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,散风组件开启出风口,通过第二导风板转动至第五角度将空调器的送风导向出风口,第一导风板转动至第六角度或第一导风板滑动以打开出风口,使出风口方向朝向壳体上部,便于空调器的送风实现偏向上侧送风,实现冷风均匀沉降不直吹,第三形态特别适用于制冷模式,能够提高用户体验。
在第四形态下,散风组件开启出风口,第二导风板转动至第七角度,第一导风板转动至第八角度或第一导风板滑动以打开出风口,此时空调器的运行模式为制热模式送风。具体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第七角度将空调器送风分配制第一导风板方向,第一导风板转动至第八角度或第一导风板滑动以打开出风口,使出风口朝向空调器的下侧,便于空调器的送风实现偏向下侧送风,实现热风下压,第四形态特别适用于制热模式,能够提高用户体验。
在第五形态下,散风组件运动以关闭出风口,在空调器工作时送风经由散风组件排出,能够实现无风感送风,在空调器关闭时,散风组件遮蔽出风口,散风组件、第一导风板及壳体具有一体化外观,提升产品档次。
在上述任一技术方案中,进一步地,壳体具有收容部,散风组件的至少一部分收容于收容部内。
在该技术方案中,壳体进一步包括了收容部,散风组件的至少一部分收容于收容部内,收容部能够对散风组件起到固定与收容的作用,能够防止空调器的送风流经散风组件时,由于送风的推动作用导致散风组件与空调器发生脱离,提高了空调器的使用寿命,降低了维修与维护频率,进一步提升产品的使用体验。
在上述任一技术方案中,进一步地,收容部包括容纳槽,散风组件与容纳槽滑动连接,其中,散风组件相对于容纳槽滑动以伸出容纳槽或收容于容纳槽。
在该技术方案中,收容部进一步包括了容纳槽,散风组件与容纳槽滑动连接,散风组件能够相对于容纳槽滑动以伸出容纳槽或收容于容纳槽。容纳槽结构简单,且容易生产制造,有利于降低生产成本,散风组件与容纳槽滑动连接,在散风组件收纳于容纳槽时,降低了散风组件对送风的分散作用,使得空调器正常送风,在散风组件伸出于容纳槽时,使得散风组件能够滑入容纳槽以实现散风组件的收纳,并且还能够由容纳槽滑出与导风部拼合成腔体以实现无风感出风,使空调器使用更为方便。
在上述任一技术方案中,进一步地,壳体还包括面框和面板,开口部形成在面框上,面板和面框限定出收容部;其中,收容部位于壳体的前部。
在该技术方案中,壳体进一步包括了面板,同时进一步提供的收容部的设置位置。通过面板的设置便于收容部的形成,同时使空调器更为美观;收容部位于壳体的前部,从而散风组件能够收容在壳体的前侧,在空调器开启无风感出风模式时,散风组件直接由壳体前侧的收容部伸出,以与第一载体拼合成腔体,且将收容部设置在壳体的前侧,避免了对空调器高度的增加。
本申请的第二方面提出了一种空调器的控制方法,用于上述任一技术方案的空调器,包括:接收控制指令,根据控制指令控制散风组件运动以打开或关闭出风口。
本申请提供的空调器的控制方法,通过接收控制指令,进一步根据控 制指令控制散风组件运动以打开或关闭出风口,空调器关闭时,能够控制空调器的散风组件关闭出风口,使得散风组件与空调器形成一体式外观,同时,空调器开启时,在散风组件关闭出风口的状态下,也可通过散风组件实现无风感模式送风或控制空调器的散风组件开启出风口,空调器送风直接经由出风口送出,能够提高空调器制冷或制热效果;同时在空调器不工作时也可以通过控制指令控制散风组件关闭出风口,使散风组件、第一导风板及壳体具有一体化外观,能够提升产品档次。
具体地,控制指令可以包括多种指令,例如关机指令与开机指令,开机指令中可以进一步包括制热指令、制冷指令,制冷指令进一步包括正常送风指令和无风感送风指令,无风感送风指令进一步包括了前侧无风感送风指令及下侧无风感送风指令。其中,关机指令和无风感送风指令用以控制散风组件运动关闭出风口;正常送风指令及制热指令用以控制散风组件运动开启出风口。
另外,本申请提供的上述空调器的控制方法还可以具有如下附加技术特征:
在上述技术方案中,进一步地,控制指令包括第一指令,接收控制指令,根据控制指令控制散风组件运动以打开或关闭出风口的步骤,具体包括:接收第一指令,根据第一指令控制散风组件关闭出风口。
在该技术方案中,接收第一指令,根据第一指令控制散风组件关闭出风口。具体地,第一指令可以为前侧无风感送风指令,用以控制散风组件关闭出风口实现空调器的散风组件侧无风感。
在上述任一技术方案中,进一步地,接收第一指令,根据第一指令控制散风组件关闭出风口的步骤之后,还包括:控制空调器的第二导风板转动至第一角度,控制第一导风板转动至第二角度,并控制空调器的第二扇叶处于第一位置;或控制空调器的第二导风板转动至第一角度,控制第一导风板滑动以与散风组件搭靠配合,并控制第二扇叶处于第一位置。
在该技术方案中,进一步提供了接收第一指令,根据第一指令控制散风组件关闭出风口的步骤之后的步骤,通过该技术方案可以实现空调器送风优先向下导风,实现前侧无风感送风,具体地,出风口位于壳体的前部,散风 组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第一角度将空调器的送风分配至第一导风板,且第二扇叶处于第一位置,使第二扇叶上的第二叶片与第一扇叶上的第一叶片之间缝隙较小,送风通过散风组件排出的难度较大,同时第一导风板转动至第二角度或第一导风板滑动以与散风组件搭靠配合,第一导风板与散风组件之间缝隙同样较小,从而大部分气流经由第一导风板排出,即可实现空调器前侧无风,能够提高用户体验。
在上述任一技术方案中,进一步地,控制指令包括第二指令,接收控制指令,根据控制指令控制散风组件运动以打开或关闭出风口的步骤,具体包括:接收第二指令,根据第二指令控制散风组件运动以关闭出风口。
在该技术方案中,接收第二指令,根据第二指令控制散风组件关闭出风口。具体地,第二指令可以为下侧无风感送风指令,用以控制散风组件关闭出风口实现空调器的第一导风板侧无风感。
在上述任一技术方案中,进一步地,接收第二指令,根据第二指令控制散风组件运动以关闭出风口的步骤之后,还包括:控制空调器的第二导风板转动至第三角度,控制第一导风板转动至第四角度,并控制空调器的第二扇叶处于第二位置;或控制空调器的第二导风板转动至第三角度,控制第一导风板滑动以与散风组件搭靠配合,并控制第二扇叶处于第二位置。
在该技术方案中,进一步提供了接收第二指令,根据第二指令控制散风组件运动以关闭出风口之后的步骤,通过该技术方案可以实现空调器送风优先向前导风,实现下侧无风感送风,具体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第三角度将空调器的送风分配至散风组件,且第二扇叶处于第二位置,使第二扇叶上的第二叶片与第一扇叶上的第一叶片之间缝隙较大,气流流出的阻力较小,使得大部分气流将由散风组件排出,即可实现空调器下侧无风,第二指令特别适用于用户处于空调器底部时进行制冷送风,能够提高用户体验。
在上述任一技术方案中,进一步地,空调器的控制方法还包括:控制第二扇叶在第一位置和第二位置之间切换;其中,第二扇叶处于第一位置下 保持第一时长,第二扇叶处于第二位置下保持第二时长。
在该技术方案中,第二扇叶在第一位置和第二位置之间切换,进一步第二扇叶处于第一位置下保持第一时长,第二扇叶处于第二位置下保持第二时长,使得第二扇叶上的第二叶片与第一扇叶上的第二叶片之间缝隙的大小交替性变化,能够切割流经散风部件的送风,进而对空调器送风起到扩散的作用,实现无风感送风,进一步提高用户体验。
在上述任一技术方案中,进一步地,控制指令包括第三指令,接收控制指令,根据控制指令控制散风组件运动以打开或关闭出风口的步骤,具体包括:接收第三指令,根据第三指令控制散风组件运动以打开出风口。
在该技术方案中,接收第三指令,根据第三指令控制散风组件运动以打开出风口。具体地,第三指令可以为制冷指令中的正常送风指令,用以控制散风组件开启出风口实现空调器的正常制冷送风。
在上述任一技术方案中,进一步地,接收第三指令,根据第三指令控制散风组件运动以打开出风口的步骤之后,还包括:控制空调器的第二导风板转动至第五角度,控制第一导风板转动至第六角度;或控制空调器的第二导风板转动至第五角度,控制第一导风板滑动以打开出风口。
在该技术方案中,进一步提供了接收第三指令,根据第三指令控制散风组件运动以打开出风口之后的步骤,通过该技术方案可以实现空调器的正常制冷送风,具体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第五角度将空调器的送风导向出风口,第一导风板转动至第六角度或第一导风板滑动以打开出风口,使出风口方向朝向壳体上部,便于空调器的送风实现偏向上侧送风,实现冷风均匀沉降不直吹,特别适用于制冷模式,能够提高用户体验。
在上述任一技术方案中,进一步地,控制指令包括第四指令,接收控制指令,根据控制指令控制散风组件运动以打开或关闭出风口的步骤,具体包括:接收第四指令,根据第四指令控制散风组件运动以打开出风口。
在该技术方案中,接收第四指令,根据第四指令控制散风组件运动以打开出风口。具体地,第四指令可以为制热指令,用以控制散风组件开启出风 口实现空调器的制热。
在上述任一技术方案中,进一步地,接收第四指令,根据第四指令控制散风组件运动以打开出风口的步骤之后,还包括:控制空调器的第二导风板转动至第七角度,控制第一导风板转动至第八角度;或控制空调器的第二导风板转动至第七角度,控制第一导风板滑动以打开出风口。
在该技术方案中,进一步提供了接收第四指令,根据第四指令控制散风组件运动以打开出风口之后的步骤,通过该技术方案可以实现空调器的制热。具体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第七角度将空调器送风分配制第一导风板方向,第一导风板转动至第八角度或第一导风板滑动以打开出风口,使出风口朝向空调器的下侧,便于空调器的送风实现偏向下侧送风,实现热风下压,特别适用于制热模式,能够提高用户体验。
在上述任一技术方案中,进一步地,控制指令包括关机指令,根据接收控制指令,根据控制指令控制散风组件运动以打开或关闭出风口的步骤,具体包括:接收关机指令,根据关机指令控制散风组件运动以关闭出风口。
在该技术方案中,控制指令进一步包括了关机指令,在接收关机指令时,根据关机指令控制散风组件运动以关闭出风口,此时散风组件、第一导风板及壳体具有一体化外观,提升产品档次。
本申请的第三方面提出了一种计算机可读存储介质,计算机可读存储介质上存储有计算机程序,计算机程序被处理器执行时实现上述任一技术方案的空调器的控制方法。
本申请第三方面提供的计算机可读存储介质因计算机程序被处理器执行时实现上述第二方面任一技术方案的空调器的控制方法,因而具备上述第二方面任一技术方案中的空调器的控制方法的全部技术效果,在此不再赘述。
本申请的附加方面和优点将在下面的描述部分中变得明显,或通过本申请的实践了解到。
附图说明
本申请的上述和/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示出了本申请一个实施例的空调器的立体结构示意图;
图2示出了本申请另一个实施例的空调器的散风组件开启出风口时的主视图;
图3示出了本申请另一个实施例的空调器的散风组件关闭出风口时的主视图;
图4示出了本申请一个实施例的空调器的工作状态的立体结构示意图;
图5示出了发明一个实施例的空调器的部分爆炸结构示意图;
图6示出了本申请一个实施例的空调器的结构示意图;
图7示出了本申请一个实施例的空调器处于第一形态时的结构示意图;
图8示出了本申请一个实施例的空调器处于第二形态时的结构示意图;
图9示出了本申请一个实施例的空调器处于第三形态时的结构示意图;
图10示出了本申请一个实施例的空调器处于第四形态时的结构示意图;
图11示出了本申请另一个实施例的空调器的结构示意图;
图12示出了本申请另一个实施例的空调器的正常送风模式工作时的结构示意图;
图13示出了本申请另一个实施例的空调器的无风感送风模式工作时的结构示意图;
图14示出了本申请一个实施例的散风组件的结构示意图;
图15示出了本申请一个实施例的散风组件的部分爆炸结构示意图;
图16示出了本申请实施例十二的空调器的控制方法的示意流程图;
图17示出了本申请实施例十三的空调器的控制方法的示意流程图;
图18示出了本申请实施例十四的空调器的控制方法的示意流程图;
图19示出了本申请实施例十五的空调器的控制方法的示意流程图;
图20示出了本申请实施例十六的空调器的控制方法的示意流程图;
图21示出了本申请实施例十七的空调器的控制方法的示意流程图;
图22示出了本申请实施例十八的空调器的控制方法的示意流程图;
图23示出了本申请实施例十九的空调器的控制方法的示意流程图;
图24示出了本申请实施例二十的空调器的控制方法的示意流程图;
图25示出了本申请实施例二十一的空调器的控制方法的示意流程图;
图26示出了本申请实施例二十二的空调器的控制方法的示意流程图;
图27示出了本申请实施例二十三的空调器的控制方法的示意流程图;
图28示出了本申请实施例二十四的空调器的控制方法的示意流程图;
图29示出了本申请实施例二十五的空调器的控制方法的示意流程图;
图30示出了本申请实施例二十六的空调器的控制方法的示意流程图;
图31示出了本申请具体实施例的空调器的控制方法的控制空调器以第一形态工作示意流程图;
图32示出了本申请具体实施例的空调器的控制方法的控制空调器以第二形态工作示意流程图;
图33示出了本申请具体实施例的空调器的控制方法的控制空调器以第三形态工作示意流程图;
图34示出了本申请具体实施例的空调器的控制方法的控制空调器以第四形态工作示意流程图;
图35示出了本申请具体实施例的空调器的控制方法的控制空调器以第正常模式工作示意流程图;
图36示出了本申请具体实施例的空调器的控制方法的控制空调器以无风感模式工作示意流程图。
其中,图1至图15中附图标记与部件名称之间的对应关系为:
100壳体,200第一导风板,300散风组件,400第二导风板,500底盘,600进风格栅,700换热器,102开口部,104出风口,106侧开口,110收容部,112容纳槽,114面框,116面板,202导风面,302散风部件, 304第一基体部,306第二基体部,308连接部,310支撑杆,3022第一扇叶,3024第二扇叶,3082第一连接件,3084第二连接件,3086第三连接件。
具体实施方式
为了能够更清楚地理解本申请的上述目的、特征和优点,下面结合附图和具体实施方式对本申请进行进一步的详细描述。需要说明的是,在不冲突的情况下,本申请的实施例及实施例中的特征可以相互组合。
在下面的描述中阐述了很多具体细节以便于充分理解本申请,但是,本申请还可以采用其他不同于在此描述的其他方式来实施,因此,本申请的保护范围并不受下面公开的具体实施例的限制。
下面参照图1至图36描述根据本申请一些实施例的空调器及空调器的控制方法。
实施例一
如图1至图5所示,本申请的一个实施例提供了一种空调器,包括:壳体100、第一导风板200及散风组件300。
其中,壳体100设有开口部102;第一导风板200与壳体100相连,且第一导风板200与开口部102限定出出风口104;散风组件300上形成有散风部件302,散风部件302适于供气流穿过且适于使穿过的气流扩散流动,散风组件300适于相对于壳体100运动,且散风组件300通过运动打开或关闭出风口104。
本申请提供的空调器,第一导风板200与壳体100限定出出风口104,散风组件300能够关闭或开启出风口104,在空调器关闭时,散风组件300能够与壳体100形成空调器的外观,避免出风口104裸露,在工作过程中,外部空气进入空调器进行换热后能够经由第一导风板200与壳体100之间限定出的出风口104直接排出进行制冷或制热,也可以通过出风口104经由散风部件302对送风进行扩散口排出,提供了不同的工作模式,使用自由度更高,提高了用户体验。
本申请提供的空调器,如图4所示,其中朝向空调器的箭头表示进风 方向,远离于空调器的箭头表示出风方向,通过第一导风板200及散风组件300的设置,在空调器未工作时,可以通过散风组件300关闭出风口104,散风组件300、第一导风板200及壳体100具有一体化外观,能够提升产品档次。
本申请提供的空调器,通过散风组件300相对于壳体100运动,且散风组件300通过运动打开或关闭出风口104的设置能够提供不同的工作模式,如图3所示,在散风组件300关闭出风口104的情况下,空调器的送风通过位于出风口104处的散风组件300排出,散风组件300的散风部件302能够对流经的气流进行扩散,从而实现无风感出风,可以理解的是,风经由散风结构后改变原来的流动方向可以朝不同的方向流动,从而实现无风感出风,即使人直接朝向空调器的出风口104也不会感觉到过大的气流,提高了用户体验;如图2所示,在散风组件300打开出风口104的情况下,空调器的送风经由第一导风板200与壳体100的开口部102限定出的出风口104排出,空调器正常送风,空调器送风直接排出能够提高空调器的制冷或制热效果。
实施例二
如图1至图5所示,本申请的一个实施例提供了一种空调器,包括:壳体100、第一导风板200及散风组件300。
其中,壳体100设有开口部102;第一导风板200与壳体100相连,且第一导风板200与开口部102限定出出风口104;散风组件300上形成有散风部件302,散风部件302适于供气流穿过且适于使穿过的气流扩散流动,散风组件300适于相对于壳体100运动,且散风组件300通过运动打开或关闭出风口104,开口部102形成有凹口,第一导风板200适于遮挡凹口的一部分并与凹口限定出出风口104。
在该实施例中,进一步提供了壳体100的开口部102的形状以及出风口104的形成方式。开口部102形成有凹口,第一导风板200适于遮挡凹口的一部分并与凹口限定出出风口104,空调器可以通过凹口进行大量送风,提高空调器的制冷或制热效果。
实施例三
如图1至图5所示,本申请的一个实施例提供了一种空调器,包括:壳体100、第一导风板200及散风组件300。
其中,壳体100设有开口部102;第一导风板200与壳体100相连,且第一导风板200与开口部102限定出出风口104;散风组件300上形成有散风部件302,散风部件302适于供气流穿过且适于使穿过的气流扩散流动,散风组件300适于相对于壳体100运动,且散风组件300通过运动打开或关闭出风口104。
如图6至图11所示,进一步地,第一导风板200转动设置,且第一导风板200适于转动以改变出风口104的出风方向。
在该实施例中,第一导风板200转动设置,第一导风板200转动设置可以改变出风口104的出风方向。一方面便于用户控制空调器的送风方向,可以避免送风朝向人体以提高舒适度,或使送风朝向人体以尽快感受到空调器的制冷或制热效果;另一方面第一导风板200转动设置可以与散风组件300开启或关闭组合使用以提供不同的工作模式,能够进一步提高用户体验。
例如,散风组件300关闭出风口104同时第一导风板200转动改变出风口104的方向,使出风口104方向朝向壳体100的底部以避开人体,空调器的送风既可以通过散风组件300的散风部件302送出同时也可以通过出风口104送出,能够在空调器无风感送风的情况下降低空调器送风的风阻,提高空调器的制冷或制热效果。
再例如,散风组件300开启出风口104同时第一导风板200转动改变出风口104的方向,可以改变出风口104的形状与大小,进一步在同样风量的情况下改变送风的流速。可以理解的是出风口104越小送风流速越大,出风口104越大送风流量越小。
实施例四
如图1至图5所示,本申请的一个实施例提供了一种空调器,包括:壳体100、第一导风板200及散风组件300。
其中,壳体100设有开口部102;第一导风板200与壳体100相连,且第一导风板200与开口部102限定出出风口104;散风组件300上形成 有散风部件302,散风部件302适于供气流穿过且适于使穿过的气流扩散流动,散风组件300适于相对于壳体100运动,且散风组件300通过运动打开或关闭出风口104。
如图11至图13所示,进一步地,第一导风板200滑动设置,且第一导风板200适于在滑出壳体100和滑入壳体100之间运动。
在该实施例中,第一导风板200滑动设置可以滑出或滑入壳体100内,能够相对调整出风口104的形状。一方面便于用户控制空调器的送风方向;另一方面第一导风板200滑动设置可以与散风组件300开启或关闭组合使用以提供不同的工作模式,能够进一步提高用户体验。
例如,散风组件300关闭出风口104同时第一导风板200滑动改变出风口104的形状,在出风口104避开人体的情况下,如图13所示,其中朝向空调器的箭头表示进风方向,远离于空调器的箭头表示出风方向,空调器的送风既可以通过散风组件300的散风部件302送出同时也可以通过出风口104送出,能够在空调器无风感送风的情况下降低空调器送风的风阻,提高空调器的制冷或制热效果。
实施例五
如图1和图4所示,在上述任一实施例的基础上,本申请的一个实施例提供了一种空调器,壳体100沿第一导风板200与散风组件300的拼合线的长度方向的两端分别形成有侧开口106,侧开口106与腔体连通。
在该实施例中,腔体形成有用于排风的侧开口106,气流由侧面吹出避免正面出风直接吹人,实现了无风感出风,并且还降低了整体出风阻力,进一步地提升了房间温度的均匀性,提升产品的使用体验。
具体地,气流能够由第一导风板200上的出风部、散风部件302、壳体100两侧的侧开口106流出,从而形成至少四个出风的位置,在保证出风量的同时,削弱了气流的冲击性,也即形成4D无风感出风。
实施例六
如图1和图4所示,在上述实施例的基础上,本申请的一个实施例提供了一种空调器,壳体100沿第一导风板200与散风组件300的拼合线的长度方向的两端分别形成有侧开口106,侧开口106与腔体连通。
在该实施例中,腔体形成有用于排风的侧开口106,气流由侧面吹出避免正面出风直接吹人,实现了无风感出风,并且还降低了整体出风阻力,进一步地提升了房间温度的均匀性,提升产品的使用体验。
实施例七
如图4所示,在上述任一实施例的基础上,本申请的一个实施例提供了一种空调器,第一导风板200上设有出风部。
在该实施例中,在第一导风板200上设置有出风部,空调器的送风可以经由出风部送出,避免正面出风直接吹人,实现了无风感出风,并且还降低了整体出风阻力,进一步地提升了房间温度的均匀性,提升产品的使用体验。
具体地,第一导风板200可以设置在壳体100的下部,散风组件300位于壳体100前侧。在散风组件300关闭出风口104时,空调器送风可以经由第一导风板200向空调器下部排出不会直接吹向人体,也可以通过散风组件300对送风进行扩散后排出,能够实现无风感送风;在散风组件300开启出风口104时,空调器送风可以经由第一导风板200向空调器下部排放,也可以通过出风口104直接排风,能够提高制冷与制热效果,可以理解的是在散风组件300开启出风口104时,出风口104处于无遮挡状态,空调器送风优先经由出风口104排出,第一导向板上的出风部起到降低风阻的作用。
进一步地,出风部包括通孔;或出风部包括出风格栅;或出风部包括散风旋叶,散风旋叶适于供气流穿过且适于使穿过的气流扩散流动。
在该实施例中,进一步提供了出风部的具体样式,出风部可以包括通孔、出风格栅及散风旋叶中的至少一种。通过通孔的设置空调器的送风可以直接经由通孔排出,降低送风风阻,能够提高空调器制冷或制热效果;通过出风格栅的设置,在空调器送风经由出风部排出时便于调节送风的方向;通过散风旋叶的设置,在空调器送风经由出风部排出时能够使气流扩散流动,进而可以改变空调器送风的方向,实现无风感送风。
实施例八
如图6至图13所示,在上述任一实施例的基础上,本申请的一个实施例提供了一种空调器,第一导风板200具有导风面202;其中,导风面202至少部分限定为弧面,或导风面202至少部分限定为平面。
在该实施例中,进一步提供了第一导风板200的具体结构,导风面202的至少部分为限定为凹弧面,使得空调器的送风能够通过凹弧面进行导向。一方面能够避免空调器送风直接冲击第一导风板200,导致送风流速衰减,能够保障空调器的送风量,能够提高空调器制冷或制热的效率;另一方面通过凹弧面的设置能够改变空调器送风的朝向,便于使空调器的送风朝向预期方向送风。例如当空调器为挂式空调时,通过凹弧面的设置能够使空调器的送风与挂设空调器的墙体之间形成一定的角度,提高送风效率的同时使用户更为舒适,提高了用户体验。
具体地,第一导风板200的导风面202为凹弧面,也即第一导风板200向空调器的底部凹陷,从而能够将风向空调器的上方引导,进而避免出风口流出的风正面吹人。
实施例九
如图14和图15所示,在上述任一实施例的基础上,本申请的一个实施例提供了一种空调器,散风部件302包括:第一扇叶3022,第一扇叶3022具有第一叶片;第二扇叶3024,第二扇叶3024具有第二叶片,第二扇叶3024与第一扇叶3022沿轴向设置,第二扇叶3024适于转动,且第二扇叶3024适于转动至第一位置和第二位置,其中,当第二扇叶3024处于第一位置,第二叶片与第一叶片沿散风部件302的轴向错开,当第二扇叶3024处于第二位置,第二叶片与第一叶片沿散风部件302的轴向至少部分重合。
在该实施例中,进一步提供了散风部件302的结构,散风部件302包括了第一扇叶3022与第二扇叶3024,第二扇叶3024能够转动与第一扇叶3022轴向错开或轴向部分重合,如此设置散风部件302可以形成不同的出风方式,提供不同程度的散风效果。
具体地,当第二扇叶3024与第一扇叶3022轴向错开时,第二扇叶3024上的第二叶片与第一扇叶3022上的第一叶片之间缝隙较小,空调器送风通过散风组件300排出的难度较大,从而大部分气流经由第一导风板200排出,也可以通过第一导风板200与壳体100之间的缝隙排出;当第二扇叶3024与第一扇叶3022轴向部分重合时,第二扇叶3024上的第二叶片与第一扇叶3022上的第一叶片之间缝隙较大,气流流出的阻力较小,空调器送风可以 通过散风部件302排出,通过第一叶片与第二叶片进行气流扩散流动,实现无风感送风。进一步通过第一扇叶3022与第二扇叶3024不同的重合面积即可提供不同的散风效果。
如图14和图15所示,散风部件可以通过第一基体部304和第二基体部306进行夹持固定,通过支撑杆310支撑散风部件,通过连接部308连接第一基体部304和第二基体部306,能够散风组件300的结构更为稳固,提高使用寿命。
进一步地,连接部308包括了第一连接件3082、第二连接件3084及第三连接件3086,第二连接件3084用以连接第一连接及第二连接,第一连接件3082与第二连接中的一者设置在第一基体部304上,另一者设置在第二基体部306上。
实施例十
如图6至图13所示,在上述实施例的基础上,本申请的一个实施例提供了一种空调器,还包括:第二导风板400,设于出风口104处,第二导风板400适于转动以调节由出风口104流向第一导风板200和散风组件300的风量。
在该实施例中,通过第二导风板400转动调节第一导风板200和散风组件300的风量,使得用户可以基于自身需求合理分配送风方向及风量,用户自由度更高,提高了用户体验。
在该实施例中,通过第一导风板200、第二导风板400及散风组件300的设置可以提供不同的工作模式。例如,当用户对制冷或制热要求较高时,可以控制空调器以正常送风模式进行工作,控制散风组件300开启出风口104,控制第二导风板400转动,将空调器的送风风量朝向送风口进行分配,使送风经由出风口104送出;当用户对送风舒适度要求较高,可以控制空调器以无风感模式进行工作,控制散风组件300关闭出风口104,控制第二导风板400转动,向散风组件300方向分配风量,使送风经由散风组件300送风;也可以控制散风组件300关闭出风口104,控制第二导风板400转动,向第一导风板200及散风组件300分配风量,送风经由第一导风板200和散风组件300同时排出,对送风风量起到分流作用,能够在总送风 量未减少的前提下,减少或避免送风直接朝向用户,在无风感状态下能够确保空调器的制冷或制热效果。
如图6至图13所示,进一步地,空调器还包括:空调器具有第一形态,空调器处于第一形态下,散风组件300关闭出风口104,第二导风板400转动至第一角度,第二扇叶3024处于第一位置,第一导风板200转动至第二角度或第一导风板200滑动以与散风组件300搭靠配合;和/或空调器具有第二形态,空调器处于第二形态下,散风组件300运动以关闭出风口104,第二导风板400转动至第三角度,第二扇叶3024处于第二位置,第一导风板200转动至第四角度或第一导风板200滑动以与散风组件300搭靠配合;和/或空调器具有第三形态,空调器处于第三形态下,散风组件300运动以打开出风口104,第二导风板400转动至第五角度,第一导风板200转动至第六角度或第一导风板200滑动以打开出风口104;和/或空调器具有第四形态,空调器处于第四形态下,散风组件300运动以打开出风口104,第二导风板400转动至第七角度,第一导风板200转动至第八角度或第一导风板200滑动以打开出风口104;和/或空调器具有第五形态,空调器处于第五形态下,散风组件300运动以关闭出风口104。
在该实施例中,空调器具备多种形态,用户自由度更高,便于提高用户体验。
如图7所示,在该实施例中,第一形态下,散风组件300关闭出风口104,第一导风板200与散风组件300搭靠配合,第二扇叶3024处于第一位置,此时空调器的运行模式为散风组件300侧无风感送风,也即气流由第一导风板200侧流出并扩散流动。具体地,出风口104位于壳体100的前部,散风组件300用以关闭或开启送风口同样位于壳体100的前部,第一导风板200与壳体100之间形成出风口104,第一导风板200位于壳体100的底部,通过第二导风板400转动至第一角度将空调器的送风分配至第一导风板200,且第二扇叶3024处于第一位置,使第二扇叶3024上的第二叶片与第一扇叶3022上的第一叶片之间缝隙较小,送风通过散风组件300排出的难度较大,同时第一导风板200转动至第二角度或第一导风板200滑动以与散风组件300搭靠配合,第一导风板200与散风组件300之间缝隙同样较小,从而大部分气流经由 第一导风板200排出,即可实现空调器前侧无风,第一形态特别适用于用户处于空调器前端时进行制冷送风,能够提高用户体验。
如图7所示,其中朝向空调器的箭头表示进风方向,远离于空调器的箭头表示出风方向,第二导风板400转动至第一角度,第二导风板400与散风组件300朝向壳体100上收容部方向延长线的夹角为锐角,第二导风板400的导风面朝向第一导风板200侧;第一导风板200转动至第二角度或第一导风板200滑动以与散风组件300搭靠配合,第一导风板200一端与散风组件300抵接,使第一导风板200与导风组件之间缝隙较小,同时第一导风板200的另一端与壳体100之间形成缝隙,便于送风经由空调器下侧排出。
在该实施例中,在第二形态下,散风组件300关闭出风口104,第一导风板200与散风组件300搭靠配合,第二扇叶3024处于第二位置,此时空调器的运行模式为第一导风板200侧无风感送风,也即气流由散风组件300侧流出并扩散流动。具体地,出风口104位于壳体100的前部,散风组件300用以关闭或开启送风口同样位于壳体100的前部,第一导风板200与壳体100之间形成出风口104,第一导风板200位于壳体100的底部,通过第二导风板400转动至第三角度将空调器的送风分配至散风组件300,且第二扇叶3024处于第二位置,使第二扇叶3024上的第二叶片与第一扇叶3022上的第一叶片之间缝隙较大,气流经由散风组件300流出的阻力较小,使得大部分气流将由散风组件300排出,即可实现空调器的下侧无风,第二形态特别适用于用户处于空调器底部时进行制冷送风,能够提高用户体验。
如图8所示,其中朝向空调器的箭头表示进风方向,远离于空调器的箭头表示出风方向,第二导风板400转动至第三角度,第二导风板400与散风组件300朝向壳体100上收容部方向延长线的夹角为钝角或直角,第二导风板400的导风面朝向散风组件300侧;第一导风板200转动至第四角度或第一导风板200滑动以与散风组件300搭靠配合,第一导风板200一端与散风组件300抵接,便于送风经由空调器前侧排出。
在该实施例中,在第三形态下,散风组件300开启出风口104,第二导风板400转动至第五角度,此时空调器的运行模式为正常制冷模式送风。具体地,出风口104位于壳体100的前部,散风组件300用以关闭或开启送风口同样位 于壳体100的前部,第一导风板200与壳体100之间形成出风口104,第一导风板200位于壳体100的底部,散风组件300开启出风口104,通过第二导风板400转动至第五角度将空调器的送风导向出风口104,第一导风板200转动至第六角度或第一导风板200滑动以打开出风口104,使出风口104方向朝向壳体100上部,便于空调器的送风实现偏向上侧送风,实现冷风均匀沉降不直吹,第三形态特别适用于制冷模式,能够提高用户体验。
如图9所示,其中朝向空调器的箭头表示进风方向,远离于空调器的箭头表示出风方向,第二导风板400转动至第五角度,第二导风板400与散风组件300朝向壳体100上收容部方向延长线的夹角为钝角或直角,第二导风板400的导风面朝向散风组件300侧;第一导风板200转动至第六角度或第一导风板200滑动以打开出风口104,便于送风经由空调器前侧出风口104导风。
在第四形态下,散风组件300开启出风口104,第二导风板400转动至第七角度,第一导风板200转动至第八角度或第一导风板200滑动以打开出风口104,此时空调器的运行模式为制热模式送风。具体地,出风口104位于壳体100的前部,散风组件300用以关闭或开启送风口同样位于壳体100的前部,第一导风板200与壳体100之间形成出风口104,第一导风板200位于壳体100的底部,通过第二导风板400转动至第七角度将空调器送风分配制第一导风板200方向,第一导风板200转动至第八角度或第一导风板200滑动以打开出风口104,使出风口104朝向空调器的下侧,便于空调器的送风实现偏向下侧送风,实现热风下压,第四形态特别适用于制热模式,能够提高用户体验。
如图10和图13所示,其中朝向空调器的箭头表示进风方向,远离于空调器的箭头表示出风方向,第二导风板400转动至第七角度,第二导风板400与散风组件300朝向壳体100上收容部方向延长线的夹角为锐角,第二导风板400的导风面朝向第一导风板200侧;第一导风板200转动至第八角度或第一导风板200滑动以打开出风口104,便于送风经由空调器出风口104,向空调器下侧导风。
如图6和图11所示,在第五形态下,散风组件300运动以关闭出风口104,在空调器工作时送风经由散风组件300排出,能够实现无风感送风,在空调器关闭时,散风组件300遮蔽出风口104,散风组件300、第一导风板200及 壳体100具有一体化外观,提升产品档次。
实施例十一
如图6至图13所示,在上述任一实施例的基础上,本申请的一个实施例提供了一种空调器,壳体100具有收容部110,散风组件300的至少一部分收容于收容部内。
在该实施例中,壳体100进一步包括了收容部110,散风组件300的至少一部分收容于收容部110内,收容部110能够对散风组件300起到固定与收容的作用,能够防止空调器的送风流经散风组件300时,由于送风的推动作用导致散风组件300与空调器发生脱离,提高了空调器的使用寿命,降低了维修与维护频率,进一步提升产品的使用体验。
如图6至图13所示,进一步地,收容部110包括容纳槽112,散风组件300与容纳槽112滑动连接,其中,散风组件300相对于容纳槽112滑动以伸出容纳槽112或收容于容纳槽112。
在该实施例中,收容部110进一步包括了容纳槽112,散风组件300与容纳槽112滑动连接,散风组件300能够相对于容纳槽112滑动以伸出容纳槽112或收容于容纳槽112。容纳槽112结构简单,且容易生产制造,有利于降低生产成本,散风组件300与容纳槽112滑动连接,在散风组件300收纳于容纳槽112时,降低了散风组件300对送风的分散作用,使得空调器正常送风,在散风组件300伸出于容纳槽112时,使得散风组件300能够滑入容纳槽112以实现散风组件300的收纳,并且还能够由容纳槽112滑出与导风部拼合成腔体以实现无风感出风,使空调器使用更为方便。
如图6至图13所示,进一步地,壳体100还包括面框114和面板116,开口部102形成在面框114上,面板116和面框114限定出收容部110;其中,收容部110位于壳体100的前部。
在该实施例中,壳体100进一步包括了面板116,同时进一步提供的收容部110的设置位置。通过面板116的设置便于收容部110的形成,同时使空调器更为美观;收容部110位于壳体100的前部,从而散风组件300能够收容在壳体100的前侧,在空调器开启无风感出风模式时,散风组件300直接由壳体100前侧的收容部110伸出,以与第一载体拼合成腔体,且 将收容部110设置在壳体100的前侧,避免了对空调器高度的增加。
实施例十二
如图16所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤802:接收控制指令,根据控制指令控制散风组件运动以打开或关闭出风口。
本申请提供的空调器的控制方法,通过接收控制指令,进一步根据控制指令控制散风组件运动以打开或关闭出风口,空调器关闭时,能够控制空调器的散风组件关闭出风口,使得散风组件与空调器形成一体式外观,同时,空调器开启时,在散风组件关闭出风口的状态下,也可通过散风组件实现无风感模式送风或控制空调器的散风组件开启出风口,空调器送风直接经由出风口送出,能够提高空调器制冷或制热效果;同时在空调器不工作时也可以通过控制指令控制散风组件关闭出风口,使散风组件、第一导风板及壳体具有一体化外观,能够提升产品档次。
具体地,控制指令可以包括多种指令,例如关机指令与开机指令,开机指令中可以进一步包括制热指令、制冷指令,制冷指令进一步包括正常送风指令和无风感送风指令,无风感送风指令进一步包括了前侧无风感送风指令及下侧无风感送风指令。其中,关机指令和无风感送风指令用以控制散风组件运动关闭出风口;正常送风指令及制热指令用以控制散风组件运动开启出风口。
实施例十三
如图17所示,本申请的一个实施例提供了一种空调器的控制方法,包括:
步骤902:接收第一指令,根据第一指令控制散风组件关闭出风口。
在该实施例中,接收第一指令,根据第一指令控制散风组件关闭出风口。具体地,第一指令可以为前侧无风感送风指令,用以控制散风组件关闭出风口实现空调器的散风组件侧无风感。
实施例十四
如图18所示,本申请的一个实施例提供了一种空调器的控制方法,包括:
步骤1002:接收第一指令,根据第一指令控制散风组件关闭出风口;
步骤1004:控制空调器的第二导风板转动至第一角度,控制第一导风板转动至第二角度,并控制空调器的第二扇叶处于第一位置。
实施例十五
如图19所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤1102:接收第一指令,根据第一指令控制散风组件关闭出风口;
步骤1104:控制空调器的第二导风板转动至第一角度,控制第一导风板滑动以与散风组件搭靠配合,并控制第二扇叶处于第一位置。
在该实施例中,进一步提供了接收第一指令,根据第一指令控制散风组件关闭出风口的步骤之后的步骤,通过该实施例可以实现空调器送风优先向下导风,实现前侧无风感送风,具体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第一角度将空调器的送风分配至第一导风板,且第二扇叶处于第一位置,使第二扇叶上的第二叶片与第一扇叶上的第一叶片之间缝隙较小,送风通过散风组件排出的难度较大,同时第一导风板转动至第二角度或第一导风板滑动以与散风组件搭靠配合,第一导风板与散风组件之间缝隙同样较小,从而大部分气流经由第一导风板排出,即可实现空调器前侧无风,能够提高用户体验。
实施例十六
如图20所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤1202:接收第二指令,根据第二指令控制散风组件运动以关闭出风口。
在该实施例中,接收第二指令,根据第二指令控制散风组件关闭出风口。具体地,第二指令可以为下侧无风感送风指令,用以控制散风组件关闭出风口实现空调器的第一导风板侧无风感。
实施例十七
如图21所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤1302:接收第二指令,根据第二指令控制散风组件运动以关闭出风口;
步骤1304:控制空调器的第二导风板转动至第三角度,控制第一导风板转动至第四角度,并控制空调器的第二扇叶处于第二位置。
实施例十八
如图22所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤1402:接收第二指令,根据第二指令控制散风组件运动以关闭出风口;
步骤1404:控制空调器的第二导风板转动至第三角度,控制第一导风板滑动以与散风组件搭靠配合,并控制第二扇叶处于第二位置。
在该实施例中,进一步提供了接收第二指令,根据第二指令控制散风组件运动以关闭出风口之后的步骤,通过该实施例可以实现空调器送风优先向前导风,实现下侧无风感送风,具体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第三角度将空调器的送风分配至散风组件,且第二扇叶处于第二位置,使第二扇叶上的第二叶片与第一扇叶上的第一叶片之间缝隙较大,气流流出的阻力较小,使得大部分气流将由散风组件排出,即可实现空调器下侧无风,第二指令特别适用于用户处于空调器底部时进行制冷送风,能够提高用户体验。
实施例十九
如图23所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤1502:接收控制指令,根据控制指令控制散风组件运动以打开或关闭出风口;
步骤1504:控制第二扇叶在第一位置和第二位置之间切换。
其中,第二扇叶处于第一位置下保持第一时长,第二扇叶处于第二位置下保持第二时长。
在该实施例中,第二扇叶在第一位置和第二位置之间切换,进一步第二扇 叶处于第一位置下保持第一时长,第二扇叶处于第二位置下保持第二时长,使得第二扇叶上的第二叶片与第一扇叶上的第二叶片之间缝隙的大小交替性变化,能够切割流经散风部件的送风,进而对空调器送风起到扩散的作用,实现无风感送风,进一步提高用户体验。
实施例二十
如图24所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤1602:接收第三指令,根据第三指令控制散风组件运动以打开出风口。
在该实施例中,接收第三指令,根据第三指令控制散风组件运动以打开出风口。具体地,第三指令可以为制冷指令中的正常送风指令,用以控制散风组件开启出风口实现空调器的正常制冷送风。
实施例二十一
如图25所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤1702:接收第三指令,根据第三指令控制散风组件运动以打开出风口;
步骤1704:控制空调器的第二导风板转动至第五角度,控制第一导风板转动至第六角度。
实施例二十二
如图26所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤1802:接收第三指令,根据第三指令控制散风组件运动以打开出风口;
步骤1804:控制空调器的第二导风板转动至第五角度,控制第一导风板滑动以打开出风口。
在该实施例中,进一步提供了接收第三指令,根据第三指令控制散风组件运动以打开出风口之后的步骤,通过该实施例可以实现空调器的正常制冷送风,具体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同 样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第五角度将空调器的送风导向出风口,第一导风板转动至第六角度或第一导风板滑动以打开出风口,使出风口方向朝向壳体上部,便于空调器的送风实现偏向上侧送风,实现冷风均匀沉降不直吹,特别适用于制冷模式,能够提高用户体验。
实施例二十三
如图27所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤1902:接收第四指令,根据第四指令控制散风组件运动以打开出风口。
在该实施例中,接收第四指令,根据第四指令控制散风组件运动以打开出风口。具体地,第四指令可以为制热指令,用以控制散风组件开启出风口实现空调器的制热。
实施例二十四
如图28所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤2002:接收第四指令,根据第四指令控制散风组件运动以打开出风口;
步骤2004:控制空调器的第二导风板转动至第七角度,控制第一导风板转动至第八角度。
实施例二十五
如图29所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤2102:接收第四指令,根据第四指令控制散风组件运动以打开出风口;
步骤2104:控制空调器的第二导风板转动至第七角度,控制第一导风板滑动以打开出风口。
在该实施例中,进一步提供了接收第四指令,根据第四指令控制散风组件运动以打开出风口之后的步骤,通过该实施例可以实现空调器的制热。具 体地,出风口位于壳体的前部,散风组件用以关闭或开启送风口同样位于壳体的前部,第一导风板与壳体之间形成出风口,第一导风板位于壳体的底部,通过第二导风板转动至第七角度将空调器送风分配制第一导风板方向,第一导风板转动至第八角度或第一导风板滑动以打开出风口,使出风口朝向空调器的下侧,便于空调器的送风实现偏向下侧送风,实现热风下压,特别适用于制热模式,能够提高用户体验。
实施例二十六
如图30所示,本申请的一个实施例提供了一种空调器的控制方法,用于上述任一实施例的空调器,包括:
步骤2202:接收关机指令,根据关机指令控制散风组件运动以关闭出风口。
在该实施例中,控制指令进一步包括了关机指令,在接收关机指令时,根据关机指令控制散风组件运动以关闭出风口,此时散风组件、第一导风板及壳体具有一体化外观,提升产品档次。
实施例二十七
本申请的实施例提出了一种计算机可读存储介质,计算机可读存储介质上存储有计算机程序,计算机程序被处理器执行时实现上述任一实施例的空调器的控制方法。
本申请提供的计算机可读存储介质因计算机程序被处理器执行时实现上述任一实施例的空调器的控制方法,因而具备上述任一实施例中的空调器的控制方法的全部技术效果,在此不再赘述。
具体实施例
在该实施例中,空调器具有壳体100,底盘500,散风组件300,进风格栅600,空调壳体100的背部设置有进风口,进风口出设置有进风格栅600,进风部分为了留有足够的进风面积。
该实施例的空调器,外部空气进入壳体100与换热器700换热后通过进风口排出。
进一步地,壳体100的面框114的前部形成有出风口104且出风口104贯穿出风框的底部,面框114的左右两侧部的端盖上均形成有侧开口106, 面框114的前侧设有可上下移动的散风组件300以打开和关闭出风口104,在无风感模式时,散风组件300关闭出风口104且具有散风作用。
进一步地,壳体100还包括面板116,面板116位于面框114的前部,位于出风口104的上方。面框114与面板116之间限定出适于容纳散风组件300的至少一部分的收容部110。
进一步地,空调器包括了可以转动的第一导风板200,关机状态下散风组件300形成产品外观的一部分,更具体地,出风口104内部设置第二导风板400,出风口104底侧增加可旋转的第一导风板200,第一导风板200可以是平面形状,也可以是弧形。无风感出风模式下第一导风板200可与散风组件300搭接成无风感模式,第二导风板400可以设置成有通孔、出风格栅、散风旋叶中的一种或多种。
进一步地,包括了可以滑动的第一导风板200,关机状态下散风组件300形成产品外观的一部分,更具体地,出风口104内部设置第二导风板400,出风口104底侧增加可以沿着出风方向延伸或者收缩的第一导风板200,无风感出风模式第一导风板200可与散风组件300搭接成无风感模式,第二导风板400可以设置成有通孔、出风格栅、散风旋叶中的一种或多种。
进一步地,空调器的进风口设置在背部和顶部,出风口104设置在底部,无风感部件与空调整机外观一体。
进一步地,散风组件300处工作状态,在出风口104散风组件300、壳体100及第一第一导风板200之间形成腔体。该腔体侧面,正面,底部均有风口出风,实现无风感模式下,即实现将风弱化,有实现不同角度出风,避免冷风吹人,解决空调在弱风感、无风感下冷量不足的问题。散风组件300不工作时,不影响常规空调器制冷及制热模式工作。
进一步地,在空调器制热模式下:第二导风板400旋转至制热位置,第一导风板200也旋转或滑动到朝向壳体100底侧有利于制热位置;在空调器制冷模式下:第二导风板400旋转至制冷位置,第一导风板200旋转到朝向前侧与风道延长线平齐,有利于制冷。
在该实施例中,进一步提供了一种空调器控制方。
如图31所示,根据空调器控制方法控制空调器以第一形态工作的步 骤,具体包括:
步骤2302:控制器驱动电机转动带动第二导风板绕轴旋转到第一角度,通过往下导风实现偏向底侧送风;
步骤2304:控制器驱动电机转动带动第一导风板绕轴旋转到第二角度,同样的通过往下导风实现偏向底侧送风;
步骤2306:控制器驱动电机转动带动散风组件往下滑动至关闭出风口,并且控制器驱动电机转动带动第二扇叶绕轴旋转65°,使第二扇叶上的第二叶片与第一叶片错开,通过第二叶片与第一叶片的间隙导风将前侧送风往四周打散,实现前侧无风效果。
以上通过控制第一导风板、第二导风板及散风组件的相互配合动作,实现空调器前侧的无风感。
如图32所示,根据空调器控制方法控制空调器以第二形态工作的步骤,具体包括:
步骤2402:控制器驱动电机转动带动第二导风板绕轴旋转到第三角度,通过往上导风实现偏向前侧送风;
步骤2404:控制器驱动电机转动带动第一导风板绕轴旋转到第四角度,同样的通过往上导风实现偏向前侧送风;由第二导风板和第一导风板上的通孔将底侧出风打散;
步骤2406:控制器驱动电机转动带动散风组件往下滑动至关闭出风口,并且控制器驱动电机转动带动第二扇叶绕轴旋转65°,使第二扇叶上的第二叶片与第一叶片重合,通过叶片间隙导风往前侧送风。
以上通过控制第一导风板、第二导风板及散风组件的相互配合动作,实现空调器底侧的无风感。
如图33所示,根据空调器控制方法控制空调器以第三形态工作的步骤,具体包括:
步骤2502:控制器驱动电机转动带动第二导风板绕轴旋转到第五角度,通过往下导风实现偏向上侧送风;
步骤2504:控制器驱动电机转动带动第一导风板绕轴旋转到第六角度,同样的通过往下导风实现偏向上侧送风;
步骤2506:控制器驱动电机转动带动散风组件往下滑动至打开出风口。
以上通过控制第一导风板、第二导风板及散风组件的相互配合动作,能够实现空调器制冷/送风模式下往上侧送风,实现冷风均匀沉降不直吹。
如图34所示,根据空调器控制方法控制空调器以第四形态工作的步骤,具体包括:
步骤2602:控制器驱动电机转动带动第二导风板绕轴旋转到第七预设角度,通过往下导风实现偏向下侧送风;
步骤2604:控制器驱动电机转动带动第一导风板绕轴旋转到第八预设角度,同样的通过往下导风实现偏向下侧送风;
步骤2606:控制器驱动电机转动带动散风组件往下滑动至打开出风口。
以上通过控制第一导风板、第二导风板及散风组件的相互配合动作,实现空调器制热模式下往下侧送风,实现热风往下压。
如图35所示,根据空调器控制方法控制空调器以正常模式下:
步骤2702:控制器驱动电机转动带动第二导风板绕轴旋转到第一预设角度位置;
步骤2704:控制器驱动电机转动带动底部可滑动的第一导风板保持关闭位置;
步骤2706:控制器驱动电机转动带动散风组件往下滑动至打开出风口。
如图12所示,以上通过控制第一导风板、第二导风板及散风组件的相互配合动作,实现空调器正常情况下最大冷量送风。
如图36所示,根据空调器控制方法控制空调器以无风感模式下:
步骤2802:控制器驱动电机转动带动第二导风板绕轴旋转到第三预设角度位置,通过往上导风实现偏向前侧送风;
步骤2804:控制器驱动电机转动带动底部可滑动的第一导风板滑动至第四预设角度位置,由于底部可滑动导风板上都有微孔将底侧出风打散;
步骤2806:控制器驱动电机转动带动散风组件往下滑动至关闭出风口,并且控制器驱动电机转动带动第二扇叶在第一位置和第二位置之间切换。
第二扇叶在第一位置和第二位置之间切换的具体步骤包括:
a控制器驱动电机转动第二扇叶带动第二扇叶的第二叶片绕轴旋转 65°后与第一叶片错开;
b驱动电机带动第二扇叶在当前位置停留15s;
c控制器驱动电机转动带动第二扇叶绕轴同向继续旋转65°后与第一叶片重合;
d驱动电机带动第二扇叶当前位置停留15s。
如图13所示,以上通过控制第一导风板、第二导风板及散风组件的相互配合动作,实现空调器的无风感。
该实施例的空调器控制方法具有如下有益效果:
双面无风感:正面下面都是无风感;壳体内部通过第二导风板调节冷量朝前或朝下的分配比例;通过调节壳体正前方散风组件的开闭合,调节冷量朝前或朝下的分配比例实现双向冷量调节,无风凉感自由控。
无风感模式下,正面和下面冷量可调节,当侧重于正面或底面输送冷量时,对应的风量不小于总风量的50%。
在本申请中,术语“多个”则指两个或两个以上,除非另有明确的限定。术语“安装”、“相连”、“连接”、“固定”等均应做广义理解,例如,“连接”可以是固定连接,也可以是可拆卸连接,或一体地连接;“相连”可以是直接相连,也可以通过中间媒介间接相连。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申请中的具体含义。
在本说明书的描述中,术语“一个实施例”、“一些实施例”、“具体实施例”等的描述意指结合该实施例或示例描述的具体特征、结构、材料或特点包含于本申请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一定指的是相同的实施例或实例。而且,描述的具体特征、结构、材料或特点可以在任何的一个或多个实施例或示例中以合适的方式结合。
以上所述仅为本申请的优选实施例而已,并不用于限制本申请,对于本领域的技术人员来说,本申请可以有各种更改和变化。凡在本申请的精神和原则之内,所作的任何修改、等同替换、改进等,均应包含在本申请的保护范围之内。

Claims (27)

  1. 一种空调器,其中包括:
    壳体,所述壳体设有开口部;
    第一导风板,所述第一导风板与所述壳体相连,且所述第一导风板与所述开口部限定出出风口;
    散风组件,所述散风组件上形成有散风部件,所述散风部件适于供气流穿过且适于使穿过的气流扩散流动,其中,所述散风组件适于相对于所述壳体运动,且所述散风组件通过运动打开或关闭所述出风口。
  2. 根据权利要求1所述的空调器,其中
    所述开口部形成有凹口,所述第一导风板适于遮挡所述凹口的一部分并与所述凹口限定出所述出风口。
  3. 根据权利要求1所述的空调器,其中
    所述第一导风板转动设置,且所述第一导风板适于转动以改变所述出风口的出风方向。
  4. 根据权利要求1所述的空调器,其中
    所述第一导风板滑动设置,且所述第一导风板适于在滑出所述壳体和滑入所述壳体之间运动。
  5. 根据权利要求1至4中任一项所述的空调器,其中
    所述第一导风板适于与所述散风组件搭靠配合以拼合限定出腔体,所述腔体与所述出风口相连通。
  6. 根据权利要求5所述的空调器,其中
    所述壳体沿所述第一导风板与所述散风组件的拼合线的长度方向的两端分别形成有侧开口,所述侧开口与所述腔体连通。
  7. 根据权利要求1至4中任一项所述的空调器,其中
    所述第一导风板上设有出风部。
  8. 根据权利要求7所述的空调器,其中
    所述出风部包括通孔;或
    所述出风部包括出风格栅;或
    所述出风部包括散风旋叶,所述散风旋叶适于供气流穿过且适于使穿过的气流扩散流动。
  9. 根据权利要求1至4中任一项所述的空调器,其中
    所述第一导风板具有导风面;
    其中,所述导风面至少部分限定为弧面,或所述导风面至少部分限定为平面。
  10. 根据权利要求1至4中任一项所述的空调器,其中所述散风部件包括:
    第一扇叶,所述第一扇叶具有第一叶片;
    第二扇叶,所述第二扇叶具有第二叶片,所述第二扇叶与所述第一扇叶沿轴向设置,所述第二扇叶适于转动,且所述第二扇叶适于转动至第一位置和第二位置,其中,当所述第二扇叶处于第一位置,所述第二叶片与所述第一叶片沿所述散风部件的轴向错开,当所述第二扇叶处于第二位置,所述第二叶片与所述第一叶片沿所述散风部件的轴向至少部分重合。
  11. 根据权利要求10所述的空调器,其中还包括:
    第二导风板,设于所述出风口处,所述第二导风板适于转动以调节由所述出风口流向所述第一导风板和所述散风组件的风量。
  12. 根据权利要求11所述的空调器,其中还包括:
    所述空调器具有第一形态,所述空调器处于第一形态下,所述散风组件关闭所述出风口,所述第二导风板转动至第一角度,所述第二扇叶处于第一位置,所述第一导风板转动至第二角度或所述第一导风板滑动以与所述散风组件搭靠配合;和/或
    所述空调器具有第二形态,所述空调器处于第二形态下,所述散风组件运动以关闭所述出风口,所述第二导风板转动至第三角度,所述第二扇叶处于第二位置,所述第一导风板转动至第四角度或所述第一导风板滑动以与所述散风组件搭靠配合;和/或
    所述空调器具有第三形态,所述空调器处于第三形态下,所述散风组件运动以打开所述出风口,所述第二导风板转动至第五角度,所述第一导风板转动至第六角度或所述第一导风板滑动以打开所述出风口;和/或
    所述空调器具有第四形态,所述空调器处于第四形态下,所述散风组件 运动以打开所述出风口,所述第二导风板转动至第七角度,所述第一导风板转动至第八角度或所述第一导风板滑动以打开所述出风口;和/或
    所述空调器具有第五形态,所述空调器处于第五形态下,所述散风组件运动以关闭所述出风口。
  13. 根据权利要求1至4中任一项所述的空调器,其中
    所述壳体具有收容部,所述散风组件的至少一部分收容于所述收容部内。
  14. 根据权利要求13所述的空调器,其中
    所述收容部包括容纳槽,所述散风组件与所述容纳槽滑动连接,其中,所述散风组件相对于所述容纳槽滑动以伸出所述容纳槽或收容于所述容纳槽。
  15. 根据权利要求14所述的空调器,其中
    所述壳体还包括面框和面板,所述开口部形成在所述面框上,所述面板和所述面框限定出所述收容部;
    其中,所述收容部位于所述壳体的前部。
  16. 一种空调器的控制方法,用于如权利要求1至15中任一项所述的空调器,其中包括:
    接收控制指令,根据所述控制指令控制所述散风组件运动以打开或关闭所述出风口。
  17. 根据权利要求16所述的空调器的控制方法,其中所述控制指令包括第一指令,所述接收控制指令,根据所述控制指令控制所述散风组件运动以打开或关闭所述出风口的步骤,具体包括:
    接收所述第一指令,根据所述第一指令控制所述散风组件关闭所述出风口。
  18. 根据权利要求17所述的空调器的控制方法,其中所述接收所述第一指令,根据所述第一指令控制所述散风组件关闭所述出风口的步骤之后,还包括:
    控制所述空调器的第二导风板转动至第一角度,控制所述第一导风板转动至第二角度,并控制所述空调器的第二扇叶处于第一位置;或
    控制所述空调器的第二导风板转动至第一角度,控制所述第一导风板滑动 以与所述散风组件搭靠配合,并控制所述第二扇叶处于第一位置。
  19. 根据权利要求16所述的空调器的控制方法,其中所述控制指令包括第二指令,所述接收控制指令,根据所述控制指令控制所述散风组件运动以打开或关闭所述出风口的步骤,具体包括:
    接收所述第二指令,根据所述第二指令控制所述散风组件运动以关闭所述出风口。
  20. 根据权利要求19所述的空调器的控制方法,其中所述接收所述第二指令,根据所述第二指令控制所述散风组件运动以关闭所述出风口的步骤之后,还包括:
    控制所述空调器的第二导风板转动至第三角度,控制所述第一导风板转动至第四角度,并控制所述空调器的第二扇叶处于第二位置;或
    控制所述空调器的第二导风板转动至第三角度,控制所述第一导风板滑动以与所述散风组件搭靠配合,并控制所述第二扇叶处于第二位置。
  21. 根据权利要求20所述的空调器的控制方法,其中还包括:
    控制所述第二扇叶在第一位置和第二位置之间切换;
    其中,所述控制器的第二扇叶处于第一位置下保持第一时长,所述第二扇叶处于第二位置下保持第二时长。
  22. 根据权利要求16所述的空调器的控制方法,其中所述控制指令包括第三指令,所述接收控制指令,根据所述控制指令控制所述散风组件运动以打开或关闭所述出风口的步骤,具体包括:
    接收所述第三指令,根据所述第三指令控制所述散风组件运动以打开所述出风口。
  23. 根据权利要求22所述的空调器的控制方法,其中所述接收所述第三指令,根据所述第三指令控制所述散风组件运动以打开所述出风口的步骤之后,还包括:
    控制所述空调器的第二导风板转动至第五角度,控制所述第一导风板转动至第六角度;或
    控制所述空调器的第二导风板转动至第五角度,控制所述第一导风板滑动以打开所述出风口。
  24. 根据权利要求16所述的空调器的控制方法,其中所述控制指令包括第四指令,所述接收控制指令,根据所述控制指令控制所述散风组件运动以打开或关闭所述出风口的步骤,具体包括:
    接收第四指令,根据所述第四指令控制所述散风组件运动以打开所述出风口。
  25. 根据权利要求24所述的空调器的控制方法,其中所述接收第四指令,根据所述第四指令控制所述散风组件运动以打开所述出风口的步骤之后,还包括:
    控制所述空调器的第二导风板转动至第七角度,控制所述第一导风板转动至第八角度;或
    控制所述空调器的第二导风板转动至第七角度,控制所述第一导风板滑动以打开所述出风口。
  26. 根据权利要求16至25中任一项所述的空调器的控制方法,其中所述控制指令包括关机指令,所述根据接收控制指令,根据所述控制指令控制所述散风组件运动以打开或关闭所述出风口的步骤,具体包括:
    接收所述关机指令,根据所述关机指令控制所述散风组件运动以关闭所述出风口。
  27. 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计算机程序,其中所述计算机程序被处理器执行时实现如权利要求16至26中任一项所述的空调器的控制方法。
PCT/CN2020/128956 2020-01-19 2020-11-16 空调器、空调器的控制方法和计算机可读存储介质 WO2021143333A1 (zh)

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