WO2021233467A1 - 空调室内机的摆风角度范围的确定方法和装置 - Google Patents

空调室内机的摆风角度范围的确定方法和装置 Download PDF

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Publication number
WO2021233467A1
WO2021233467A1 PCT/CN2021/099547 CN2021099547W WO2021233467A1 WO 2021233467 A1 WO2021233467 A1 WO 2021233467A1 CN 2021099547 W CN2021099547 W CN 2021099547W WO 2021233467 A1 WO2021233467 A1 WO 2021233467A1
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Prior art keywords
indoor unit
air conditioner
distance
side wall
conditioner indoor
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PCT/CN2021/099547
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English (en)
French (fr)
Inventor
邵迎光
丁万超
徐艳丽
赵永俊
时斌
毛守博
Original Assignee
青岛海尔空调电子有限公司
青岛海尔空调器有限总公司
海尔智家股份有限公司
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Publication of WO2021233467A1 publication Critical patent/WO2021233467A1/zh

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F1/00Room units for air-conditioning, e.g. separate or self-contained units or units receiving primary air from a central station
    • F24F1/0007Indoor units, e.g. fan coil units
    • F24F1/0011Indoor units, e.g. fan coil units characterised by air outlets
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • F24F11/64Electronic processing using pre-stored data
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/70Control systems characterised by their outputs; Constructional details thereof
    • F24F11/72Control systems characterised by their outputs; Constructional details thereof for controlling the supply of treated air, e.g. its pressure
    • F24F11/79Control systems characterised by their outputs; Constructional details thereof for controlling the supply of treated air, e.g. its pressure for controlling the direction of the supplied air
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/08Air-flow control members, e.g. louvres, grilles, flaps or guide plates
    • F24F13/10Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers
    • F24F13/14Air-flow control members, e.g. louvres, grilles, flaps or guide plates movable, e.g. dampers built up of tilting members, e.g. louvre
    • 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

Definitions

  • the invention belongs to the technical field of air conditioners, and specifically relates to a method and a device for determining the swing angle range of an air conditioner indoor unit.
  • the air conditioner includes two parts: the outdoor unit of the air conditioner and the indoor unit of the air conditioner. Generally, after the outdoor unit of the air conditioner is installed outside the window, the indoor unit of the air conditioner is installed on the wall near the outdoor unit of the air conditioner.
  • the art needs a new method and device for determining the swing angle range of the air conditioner indoor unit to solve the above-mentioned problems.
  • the present invention provides a method and device for determining the swing angle range of an air conditioner indoor unit.
  • the determining method includes: obtaining a first distance between the air conditioner indoor unit and a first side wall in the room, and obtaining The second distance between the air conditioner indoor unit and the second side wall in the room, where the first side wall and the second side wall are two opposite walls located on both sides of the air conditioner indoor unit; The first distance and the second distance determine the first maximum swing angle of the air conditioner indoor unit toward the first side wall, and/or determine the air conditioner according to the first distance and the second distance The second maximum swing angle of the indoor unit toward the second side wall.
  • the first maximum swing angle of the air-conditioning indoor unit toward the first side wall is determined according to the first distance and the second distance
  • the determining method further includes: calculating a first ratio of the first distance to the total distance between the first side wall and the second side wall; according to the first maximum wind angle A mapping relationship that is positively correlated with the first ratio determines the first maximum wind angle.
  • the mapping relationship between the first maximum swing angle and the first ratio is expressed as a step function or a linear function.
  • the determination method further includes: determining a positive correlation between the first maximum wind angle and the first ratio according to different total distances.
  • the mapping relationship wherein, under the condition that the first ratio is equal, the greater the total distance, the greater the first maximum wind angle.
  • determining the first maximum wind angle according to the mapping relationship between the first maximum wind angle and the first ratio that is positively correlated includes :
  • “determine the first maximum swing angle of the air-conditioning indoor unit toward the first side wall according to the first distance and the second distance, And/or determining the second maximum swing angle of the air-conditioning indoor unit toward the second side wall according to the first distance and the second distance” includes: if the first distance is equal to the second distance , The first maximum sway angle is equal to the second maximum sway angle; and/or, if the first distance is greater than the second distance, the first maximum sway angle is greater than the first Two maximum wind angles; and/or, if the first distance is less than the second distance, the first maximum wind angles are smaller than the second maximum wind angles.
  • the determination method further includes: obtaining a first vector of the minimum length between the air conditioner indoor unit and the opposite wall; taking the first vector as a reference Determine the first maximum sway angle and/or the second maximum sway angle.
  • the step of "obtaining the first distance between the air-conditioning indoor unit and the first side wall in the room” includes: when the first side wall is located When the wall on the left side of the air-conditioning indoor unit is obtained, the second vector of the maximum length between the air-conditioning indoor unit in the horizontal direction and the wall on the left side is obtained, and the calculated value is calculated based on the angle and length of the second vector The first horizontal distance between the indoor unit of the air conditioner and the wall on its left side.
  • the first side wall is an indoor ceiling
  • the second side wall is an indoor wall.
  • the first side wall is the wall located on the left side of the air conditioner indoor unit
  • the second side wall is located on the right side of the air conditioner indoor unit
  • the first side wall is the wall located on the left side of the air conditioner indoor unit
  • the second side wall is located on the air conditioner The wall on the right side of the indoor unit; or, when the air-conditioning indoor unit is installed on the indoor ceiling, the first side wall is the wall on the front side of the air-conditioning indoor unit, and the second side wall is The wall on the rear side of the indoor unit of the air conditioner.
  • the determining device includes a position detection module and a data processing module; the position detection module can obtain the air conditioner indoor unit and the indoor The first distance between the first side wall, and the second distance between the air conditioner indoor unit and the second side wall in the room, the first side wall and the second side wall are two opposite The wall; the data processing module can determine the first maximum swing angle of the air-conditioning indoor unit toward the first side wall according to the first distance and the second distance, and/or the data processing module can Determine the second maximum swing angle of the air conditioner indoor unit toward the second side wall according to the first distance and the second distance, so that the swing wind drive module of the air conditioner indoor unit can determine the The first maximum swing angle and/or the second maximum swing angle adjusts the air guiding mechanism or the swinging mechanism of the air conditioner indoor unit.
  • the air conditioner indoor unit determines the swing angle range of the air conditioner indoor unit of the present invention. It is determined by the first distance between the air conditioner indoor unit and the first side wall in the room and the second distance between the air conditioner indoor unit and the second side wall in the room. Determine the first maximum swing angle of the air conditioner indoor unit toward the first side wall and the second maximum swing angle toward the second side wall. In this way, the air conditioner indoor unit can adjust the size of the first maximum swing angle and the second maximum swing angle according to the first distance and the second distance, so that the swing angle range of the air conditioner indoor unit is adapted to the position where the air conditioner is installed.
  • the difference between the air outlet time and air volume of the air conditioner indoor unit toward different indoor areas is reduced to ensure that the temperature change speed of different indoor areas can be basically the same and the heat distribution is relatively uniform, thereby helping to ensure the cooling or heating of the air conditioner indoor unit user experience.
  • the first maximum swing angle and the first ratio can be determined according to the total distance between different first side walls and second side walls. There is a positive correlation between the mapping relationships. Wherein, under the condition that the first ratio is equal, the first maximum swing angle increases with the increase of the total distance. It is understandable that under the condition that the first ratio is equal, the greater the total distance between the first side wall and the second side wall, the air conditioner indoor unit needs a larger swing angle toward the first side wall to ensure the indoor space as much as possible.
  • the temperature change speed in different areas can be basically the same and the heat distribution is relatively uniform, which is beneficial to ensure the user experience when the air conditioner indoor unit is cooling or heating.
  • FIG. 1 is a schematic diagram of the first distance and the second distance when determining the swing angle range of the air conditioner indoor unit in this embodiment
  • FIG. 2 is a schematic diagram of the swing angle range of the air conditioner indoor unit of this embodiment when the first distance is equal to the second distance;
  • FIG. 3 is a schematic diagram of the swing angle range of the air conditioner indoor unit of this embodiment when the first distance is greater than the second distance;
  • FIG. 4 is a schematic diagram of the swing angle range of the air-conditioning indoor unit of this embodiment when the first distance is smaller than the second distance;
  • FIG. 5 is a schematic flowchart of a method for determining the swing angle range of the air-conditioning indoor unit of the embodiment.
  • the maximum swing angle on its left side can also be determined according to the method for determining the swing angle range of the indoor unit of this embodiment And the maximum swing angle on the right side.
  • This embodiment provides a method and device for determining the swing angle range of an air conditioner indoor unit.
  • the determining method includes:
  • the second side wall W2 is two walls located on both sides of the air conditioner indoor unit 1 and opposite to each other.
  • first side wall W1 and “second side wall W2”
  • first side wall W1 and “second side wall W2”
  • the air-conditioning indoor unit 1 When the air-conditioning indoor unit 1 is installed on the indoor wall (that is, one of the surrounding walls), the first side wall W1 is the indoor ceiling, and the second side wall W2 is the indoor floor; at this time, the air-conditioning indoor unit
  • the swing range is along the up and down direction.
  • the first side wall W1 is the wall located on the left side of the air conditioner indoor unit 1
  • the second side wall W2 is located on the air conditioner indoor unit 1.
  • the wall on the right; at this time, the swing range of the indoor unit of the air conditioner is along the left and right directions.
  • the first side wall W1 is the wall on the left side of the air conditioner indoor unit 1
  • the second side wall W2 is the wall on the right side of the air conditioner indoor unit 1;
  • the swing range of the air conditioner indoor unit is along the left and right directions.
  • the first side wall W1 is the wall on the front side of the air conditioner indoor unit 1
  • the second side wall W2 is the wall on the rear side of the air conditioner indoor unit 1;
  • the swing range of the air conditioner indoor unit is along the front and back direction.
  • the corresponding first distance L1 and second distance L2 can be determined, and the corresponding direction can be determined according to the first distance L1 and the second distance L2
  • the swing angle range of the indoor unit 1 of the air conditioner can be determined.
  • the above-mentioned first distance L1 and second distance L2 may be obtained by a position detection module provided on the air conditioner, and the position detection module may be a radar detector installed on the indoor unit of the air conditioner.
  • the step of "obtaining the first distance L1 between the air conditioner indoor unit 1 and the first side wall W1 in the room” includes: when the first side wall W1 is the wall located on the left side of the air conditioner indoor unit 1 , Obtain the second vector X2 of the maximum length between the air conditioner indoor unit 1 in the horizontal direction and the wall on its left side, and calculate the air conditioner indoor unit 1 and the wall on its left side based on the angle ⁇ and length of the second vector X2 The first horizontal distance between.
  • L1
  • the second distance L2 can be determined using the same principle.
  • the first vector X1 is a vector of the minimum length between the air conditioner indoor unit 1 and the opposite wall, and may be a vector along the midline of the air conditioner to the opposite wall;
  • S2. Determine the first maximum swing angle of the air conditioner indoor unit 1 toward the first side wall W1 according to the first distance L1 and the second distance L2, and/or determine that the air conditioner indoor unit 1 faces toward the first side wall W1 according to the first distance L1 and the second distance L2.
  • the determination method further includes: obtaining a first vector X1 of the minimum length between the air conditioner indoor unit 1 and its opposite wall ; Determine the first maximum wind angle and/or the second maximum wind angle based on the first vector X1. For example, using the first vector X1 as a reference to determine the first maximum swing angle of the air-conditioning indoor unit 1 toward the first side wall W1 and the second maximum swing angle of the air-conditioning indoor unit 1 toward the second side wall W2.
  • the second maximum swing angle of the air conditioner indoor unit 1 toward the second side wall W2 is determined.
  • the maximum wind angle (the sum of the wind angle areas L1, L2, and L3) is equal to the second maximum wind angle (the sum of the wind angle areas R1, R2, and R3); please refer to Figure 3, if the first distance L1 is greater than the first distance L1 Two distances L2, the first maximum sway angle (the sum of the outlet angle areas L1, L2, and L3) is greater than the second maximum sway angle (the sum of the outlet angle areas R1 and R2); please refer to Figure 4, if the first If the distance L1 is less than the second distance L2, the first maximum wind angle (the sum of the wind angle areas L1 and L2) is smaller than the second maximum wind angle (the sum of the wind angle areas R1, R2, and R3).
  • the determining method further includes: calculating a first ratio of the first distance L1 to the total distance between the first side wall W1 and the second side wall W2; according to the positive correlation between the first maximum wind angle and the first ratio The mapping relationship determines the first maximum wind angle.
  • the first ratio in the situation shown in FIG. 3 is greater than the first ratio in the situation shown in FIG.
  • the first maximum wind angle in the situation shown in FIG. 3 is greater than the first maximum wind angle in the situation shown in FIG. 4.
  • the mapping relationship between the first maximum swing angle and the first ratio is expressed as a step function or a linear function.
  • the first distance L1 between the air conditioner indoor unit 1 and the first side wall W1 in the room and the distance between the air conditioner indoor unit 1 and the second side wall W2 in the room The second distance L2 determines the first maximum swing angle of the air conditioner indoor unit 1 toward the first side wall W1 and the second maximum swing angle toward the second side wall W2.
  • the air conditioner indoor unit 1 can adjust the size of the first maximum swing angle and the second maximum swing angle according to the first distance L1 and the second distance L2, so that the swing angle range of the air conditioner indoor unit 1 and the air conditioner installation position Therefore, the difference in the air outlet time and air volume of the air conditioner indoor unit 1 toward different areas in the room is reduced, so as to ensure that the temperature change speed of different areas in the room can be basically the same and the heat distribution is relatively uniform, thereby helping to ensure that the air conditioner indoor unit 1 User experience when cooling or heating.
  • the determination method further includes: respectively determining a positive correlation between the first maximum wind angle and the first ratio according to different total distances; wherein, Under the condition that the first ratio is equal, the greater the total distance, the greater the first maximum wind angle.
  • the air-conditioning indoor unit 1 needs a greater swing angle toward the first side wall W1. It is ensured as much as possible that the temperature change speeds of different indoor areas can be basically the same and the heat distribution is relatively uniform, so as to help ensure the user experience when the air conditioner indoor unit 1 is cooling or heating.
  • determining the first maximum swing angle according to the mapping relationship between the first maximum swing angle and the first ratio that is positively correlated includes: air conditioner indoor unit 1
  • the wind outlet angle area toward the first side wall W1 and the wind outlet angle area toward the second side wall W2 have the same preset number respectively, and the size of each wind outlet angle area is the same.
  • the air outlet angle area of the air conditioner indoor unit 1 toward the first side wall W1 includes L1, L2, and L3
  • the air outlet angle area of the air conditioner indoor unit 1 toward the second side wall W2 includes R1, R2, and R3.
  • the size of each air outlet angle area L1, L2, L3, R1, R2, and R3 is equal.
  • the method for determining the swing angle range of the air conditioner indoor unit 1 may be:
  • the air outlet angle area of the air-conditioning indoor unit 1 toward the first side wall W1 is reduced by the first set number; for example, the situation in FIG. 3 is compared with that in FIG.
  • the situation in Figure 4 reduces R3, and the situation in Figure 4 reduces L3 compared to the situation in Figure 2.
  • the air-conditioning indoor unit 1 increases by a second set number toward the air outlet angle area of the first side wall W1.
  • the second maximum sway angle can also be determined according to the same method and principle.
  • the method for determining the swing angle range of the air conditioner indoor unit can be stored as a program in a computer readable storage medium.
  • the storage medium includes a number of instructions for causing a computer device (which may be a personal computer, a server, or a network device, etc.) or a processor to execute some steps of the methods in the various embodiments of the present invention.
  • the aforementioned storage media include: U disk, mobile hard disk, read-only memory (Read-Only Memory, ROM), random access memory (Random Access Memory, RAM), magnetic disk or optical disk and other media that can store program code .
  • the determining device includes a position detection module and a data processing module; the position detection module can obtain the first side of the air conditioner indoor unit 1 and the room.
  • the first distance L1 between the walls W1, and the second distance L2 between the air conditioner indoor unit 1 and the second side wall W2 in the room is acquired, and the first side wall W1 and the second side wall W2 are two opposite walls;
  • the data processing module can determine the first maximum swing angle of the air conditioner indoor unit 1 toward the first side wall W1 according to the first distance L1 and the second distance L2, and/or the data processing module can determine the first distance L1 and the second distance L2 according to the first distance L1 and the second distance L2.
  • the first distance L1 between the air conditioner indoor unit 1 and the first side wall W1 in the room and the distance between the air conditioner indoor unit 1 and the second side wall W2 in the room The second distance L2 determines the first maximum swing angle of the air conditioner indoor unit 1 toward the first side wall W1 and the second maximum swing angle toward the second side wall W2.
  • the air conditioner indoor unit 1 can adjust the size of the first maximum swing angle and the second maximum swing angle according to the first distance L1 and the second distance L2, so that the swing angle range of the air conditioner indoor unit 1 and the air conditioner installation position Therefore, the difference in the air outlet time and air volume of the air conditioner indoor unit 1 toward different areas in the room is reduced, so as to ensure that the temperature change speed of different areas in the room can be basically the same and the heat distribution is relatively uniform, thereby helping to ensure that the air conditioner indoor unit 1 User experience when cooling or heating.
  • this data processing module can physically be a control chip set in the indoor unit, can be a controller specifically used to execute the method of the present invention, or can be a functional module or functional unit of a general controller .
  • the device for determining the swing angle range of the air-conditioning indoor unit 1 also includes some other well-known structures, such as processors, controllers, and memories.
  • the memories include, but are not limited to, random access memory, flash memory, and Read memory, programmable read-only memory, volatile memory, non-volatile memory, serial memory, parallel memory or registers, etc.
  • Processors include but are not limited to CPLD/FPGA, DSP, ARM processor, MIPS processor, etc. . In order to unnecessarily obscure the embodiments of the present disclosure, these well-known structures are not shown in the drawings.

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Abstract

本发明属于空调技术领域,具体涉及一种空调室内机的摆风角度范围的确定方法和装置。本发明旨在解决现有的空调室内机受安装位置的限制所导致的空调室内机的摆风范围不均匀,而造成在制冷或制热时室内不同区域温度变化速度和热量分布存在较大差异的问题。为此目的,本发明通过空调室内机与室内的第一侧墙壁之间的第一距离以及与室内的第二侧墙壁之间的第二距离来确定空调室内机朝第一侧墙壁的第一最大摆风角度以及朝第二侧墙壁的第二最大摆风角度。如此,以使得空调室内机的摆风角度范围与空调安装的位置相适应,以保证室内不同区域的温度变化速度能够基本相同以及热量分布相对均匀,从而有利于保证空调室内机制冷或制热时的用户体验。

Description

空调室内机的摆风角度范围的确定方法和装置 技术领域
本发明属于空调技术领域,具体涉及一种空调室内机的摆风角度范围的确定方法和装置。
背景技术
空调器包括空调室外机和空调室内机两部分,一般将空调室外机安装在室外靠窗的位置后,则将空调室内机安装在室内靠近空调室外机的墙壁上。
由于空调室内机安装位置的限制,往往不能将空调室内机安装在房间一侧的中部位置,所以空调室内机左右两侧的室内空间以及上下两侧的室内空间的差异较大。而当空调室内机的摆风范围与空调室内机所在位置不匹配时,会导致有的室内区域无法被风吹到同时有的室内区域的风量则比较集中,造成在制冷或制热时室内不同区域温度变化速度和热量分布存在较大差异的问题。
相应地,本领域需要一种新的空调室内机的摆风角度范围的确定方法和装置来解决上述问题。
发明内容
为了解决现有技术中的上述问题,即为了解决现有的空调室内机受安装位置的限制所导致的空调室内机的摆风范围不均匀,而造成在制冷或制热时室内不同区域温度变化速度和热量分布存在较大差异的问题,本发明提供了一种空调室内机的摆风角度范围的确定方法和装置。
首先,在本发明提供的一种空调室内机的摆风角度范围的确定方法中,所述确定方法包括:获取所述空调室内机与室内的第一侧墙壁之间的第一距离,并获取所述空调室内机与室内的第二侧墙壁之间的第二距离,所述第一侧墙壁与所述第二侧墙壁为位于所述空调室内机两侧且相对的两个墙壁;根据所述第一距离和所述第二距离确定所述空调室内机朝所述第一侧墙壁的第一最大摆风角度,并且/或者根据所述第一距离和所述第二距离确定所述空调室内机朝所述第二侧墙壁的第二最大摆风角度。
作为本发明提供的上述确定方法的一种优选的技术方案,在“根据所述第一距离和所述第二距离确定所述空调室内机朝所述第一侧墙壁的第一最大摆风角度”的步骤中,所述确定方法还包括:计算所述第一距离与所述第一侧墙壁和所述第二侧墙壁之间总距离的第一比值;按照所述第一最大摆风角度与所述第一比值之间呈正相关的映射关系确定所述第一最大摆风角度。
作为本发明提供的上述确定方法的一种优选的技术方案,所述第一最大摆风角度与所述第一比值之间的映射关系表示为阶梯函数或者线性函数。
作为本发明提供的上述确定方法的一种优选的技术方案,所述确定方法还包括:根据不同的所述总距离分别确定所述第一最大摆风角度与所述第一比值之间呈正相关的映射关系;其中,在所述第一比值相等的条件下,所述总距离越大,则所述第一最大摆风角度也越大。
作为本发明提供的上述确定方法的一种优选的技术方案,“按照所述第一最大摆风角度与所述第一比值之间呈正相关的映射关系确定所述第一最大摆风角度”包括:所述空调室内机朝所述第一侧墙壁的出风角度区域与朝所述第二侧墙 壁的出风角度区域分别具有相等的预设数量,且每个所述出风角度区域的大小相等,若所述第一比值小于预设的第一阈值,则所述空调室内机朝所述第一侧墙壁的出风角度区域减少第一设定个数;并且/或者,若所述第一比值大于预设的第二阈值,则所述空调室内机朝所述第一侧墙壁的出风角度区域增加第二设定个数。
作为本发明提供的上述确定方法的一种优选的技术方案,“根据所述第一距离和所述第二距离确定所述空调室内机朝所述第一侧墙壁的第一最大摆风角度,并且/或者根据所述第一距离和所述第二距离确定所述空调室内机朝所述第二侧墙壁的第二最大摆风角度”包括:若所述第一距离等于所述第二距离,则所述第一最大摆风角度等于所述第二最大摆风角度;并且/或者,若所述第一距离大于所述第二距离,则所述第一最大摆风角度大于所述第二最大摆风角度;并且/或者,若所述第一距离小于所述第二距离,则所述第一最大摆风角度小于所述第二最大摆风角度。
作为本发明提供的上述确定方法的一种优选的技术方案,所述确定方法还包括:获取所述空调室内机与其对面墙壁之间的最小长度的第一向量;以所述第一向量为基准确定所述第一最大摆风角度和/或所述第二最大摆风角度。
作为本发明提供的上述确定方法的一种优选的技术方案,“获取所述空调室内机与室内的第一侧墙壁之间的第一距离”的步骤包括:当所述第一侧墙壁为位于所述空调室内机左侧的墙壁时,获取所述空调室内机在水平方向上与位于其左侧的墙壁之间的最大长度的第二向量,基于所述第二向量的角度和长度计算所述空调室内机与位于其左侧的墙壁之间的第一水平距离。
作为本发明提供的上述确定方法的一种优选的技术方案,当所述空调室内机安装在室内墙壁上时,所述第一侧墙壁为室内的天花板,而所述第二侧墙壁为室内的地面;或者,当所述空调室内机安装在室内墙壁上时,所述第一侧墙壁为位于所述空调室内机左侧的墙壁,而所述第二侧墙壁为位于所述空调室内机右侧的墙壁;或者,当所述空调室内机安装在室内的天花板上时,所述第一侧墙壁为位于所述空调室内机左侧的墙壁,而所述第二侧墙壁为位于所述空调室内机右侧的墙壁;或者,当所述空调室内机安装在室内的天花板上时,所述第一侧墙壁为位于所述空调室内机前侧的墙壁,而所述第二侧墙壁为位于所述空调室内机后侧的墙壁。
然后,在本发明提供的一种空调室内机的摆风角度范围的确定装置中,所述确定装置包括位置检测模块和数据处理模块;所述位置检测模块能够获取所述空调室内机与室内的第一侧墙壁之间的第一距离,并获取所述空调室内机与室内的第二侧墙壁之间的第二距离,所述第一侧墙壁与所述第二侧墙壁为相对的两个墙壁;所述数据处理模块能够根据所述第一距离和所述第二距离确定所述空调室内机朝所述第一侧墙壁的第一最大摆风角度,并且/或者所述数据处理模块能够根据所述第一距离和所述第二距离确定所述空调室内机朝所述第二侧墙壁的第二最大摆风角度,以使所述空调室内机的摆风驱动模块能够根据确定出的所述第一最大摆风角度和/或所述第二最大摆风角度调节所述空调室内机的导风机构或摆风机构。
根据本发明的空调室内机的摆风角度范围的确定方法和装置,通过空调室内机与室内的第一侧墙壁之间的第一距离以及与室内的第二侧墙壁之间的第二距离来确定空调室内机朝第一侧墙壁的第一最大摆风角度以及朝第二侧墙壁的第二最大摆风角度。如此,空调室内机能够根据第一距离和第二距离调节第一最大摆风角度与第二最大摆风角度的大小,以使得空调室内机的摆风角度范围与空调安装的位置相适应,进而降低了空调室内机朝室内不同区域的出风时间和出风量的差异,以保证室内不同区域的温度变化速度能够基本相同以及热量分布相对均匀,从而有利于保证空调室内机制冷或制热时的用户体验。
此外,根据本发明的空调室内机的摆风角度范围的确定方法和装置,还能够根据不同的第一侧墙壁和第二侧墙壁之间总距离分别确定第一最大摆风角度与第一比值之间呈正相关的映射关系。其中,在第一比值相等的条件下,第一最大摆风角度随该总距离的增大而增大。可以理解的是,在第一比值相等的条件下,第一侧墙壁与第二侧墙壁之间总距离越大,空调室内机朝第一侧墙壁需要更大的摆风角度才能尽可能保证室内不同区域的温度变化速度能够基本相同以及热量分布相对均匀,从而有利于保证空调室内机制冷或制热时的用户体验。
附图说明
下面参照附图并结合来描述本发明的空调室内机的摆风角度范围的确定方法和装置。附图中:
图1为本实施例在确定空调室内机的摆风角度范围时的第一距离和第二距离的示意图;
图2为本实施例的空调室内机的第一距离等于第二距离时其摆风角度范围的示意图;
图3为本实施例的空调室内机的第一距离大于第二距离时其摆风角度范围的示意图;
图4为本实施例的空调室内机的第一距离小于第二距离时其摆风角度范围的示意图;
图5为本实施例的空调室内机的摆风角度范围的确定方法的流程示意图。
附图标记列表
1-空调室内机;W1-第一侧墙壁;W2-第二侧墙壁;L1-第一距离;L2-第二距离;X1-第一向量;X2-第二向量。
具体实施方式
下面参照附图来描述本发明的优选实施方式。本领域技术人员应当理解的是,这些实施方式仅仅用于解释本发明的技术原理,并非旨在限制本发明的保护范围。例如,虽然附图中是以空调室内机朝第一侧墙壁的出风角度区域与朝第二侧墙壁的出风角度区域分别具有相等的预设数量,且每个出风角度区域的大小相等为例进行说明的,但是空调室内机的这种摆风角度范围的类型非一成不变的,在不偏离本发明原理的条件下,本领域技术人员可以根据需要对其作出调整,以便适应具体的应用场合。例如,针对另一类空调室内机其摆风范围是从最左侧到最右侧,也可以根据本实施例的调室内机的摆风角度范围的确定方法确定其左侧的最大摆风角度以及其右侧的最大摆风角度。
需要说明的是,在本发明的描述中,术语“第一”、“第二”、“第三”仅用于描述目的,而不能理解为指示或暗示相对重要性。
为了解决现有技术中的上述问题,即为了解决现有的空调室内机受安装位置的限制所导致的空调室内机的摆风范围不均匀,而造成在制冷或制热时室内不同区域温度变化速度和热量分布存在较大差异的问题,本实施例提供了一种空调室内机的摆风角度范围的确定方法和装置。
首先,在本实施例提供的一种空调室内机的摆风角度范围的确定方法中,如图1至图5所示,该确定方法包括:
S1、获取空调室内机1与室内的第一侧墙壁W1之间的第一距离L1,并获取空调室内机1与室内的第二侧墙壁W2之间的第二距离L2,第一侧墙壁W1与第二侧墙壁W2为位于空调室内机1两侧且相对的两个墙壁。
示例性地,对于“第一侧墙壁W1”和“第二侧墙壁W2”,可以包括以下几种情形:
1)当空调室内机1安装在室内墙壁上时(即四周墙壁中的一个),第一侧墙壁W1为室内的天花板,而第二侧墙壁W2为室内的地面;此时,空调室内机的摆风范围沿着上下方向。
2)当空调室内机1安装在室内墙壁上时(即四周墙壁中的一个),第一侧墙壁W1为位于空调室内机1左侧的墙壁,而第二侧墙壁W2为位于空调室内机1右侧的墙壁;此时,空调室内机的摆风范围沿着左右方向。
3)当空调室内机1安装在室内的天花板上时,第一侧墙壁W1为位于空调室内机1左侧的墙壁,而第二侧墙壁W2为位于空调室内机1右侧的墙壁;此时,空调室内机的摆风范围沿着左右方向。
4)当空调室内机1安装在室内的天花板上时,第一侧墙壁W1为位于空调室内机1前侧的墙壁,而第二侧墙壁W2为位于空调室内机1后侧的墙壁;此时,空调室内机的摆风范围沿着前后方向。
而对于以上任一组“第一侧墙壁W1”和“第二侧墙壁W2”均可以确定相应的第一距离L1和第二距离L2,并按照第一距离L1和第二距离L2确定相应方向上的空调室内机1的摆风角度范围。
其中,可以通过设置在空调上的位置检测模块来获取上述的第一距离L1和第二距离L2,该位置检测模块可以为安装在空调室内机上的雷达检测器。
例如,请参照图1,“获取空调室内机1与室内的第一侧墙壁W1之间的第一距离L1”的步骤包括:当第一侧墙壁W1为位于空调室内机1左侧的墙壁时,获取空调室内机1在水平方向上与位于其左侧的墙壁之间的最大长度的第二向量X2,基于第二向量X2的角度α和长度计算空调室内机1与位于其左侧的墙壁之间的第一水平距离。具体为,L1=|X2|*sinα,其中,L1表示第一距离L1(此处即为第一水平距离),|X2|表示第二向量X2的长度,α为第二向量X2与第一向量X1之间的夹角。可以理解的是,利用同样的原理可以确定第二距离L2。其中,第一向量X1为空调室内机1与其对面墙壁之间的最小长度的一个向量,可以为空调沿其中线到对面墙壁之前的一个向量;
S2、根据第一距离L1和第二距离L2确定空调室内机1朝第一侧墙壁W1的第一最大摆风角度,并且/或者根据第一距离L1和第二距离L2确定空调室内机1朝第二侧墙壁W2的第二最大摆风角度。
示例性地,请参照图1,作为本实施例提供的上述确定方法的一种优选的实施方式,该确定方法还包括:获取空调室内机1与其对面墙壁之间的最小长度的第一向量X1;以第一向量X1为基准确定第一最大摆风角度和/或第二最大摆风角度。例如,以该第一向量X1为基准来确定空调室内机1朝第一侧墙壁W1的第一最大摆风角度,以及空调室内机1朝第二侧墙壁W2的第二最大摆风角度。
作为本实施例提供的上述确定方法的一种优选的实施方式,“根据第一距离L1和第二距离L2确定空调室内机1朝第一侧墙壁W1的第一最大摆风角度,并且/或者根据第一距离L1和第二距离L2确定空调室内机1朝第二侧墙壁W2的第二最大摆风角度”包括:请参照图2,若第一距离L1等于第二距离L2,则第一最大摆风角度(出风角度区域L1、L2与L3之和)等于第二最大摆风角度(出风角度区域R1、R2与R3之和);请参照图3,若第一距离L1大于第二距离L2,则第一最大摆风角度(出风 角度区域L1、L2与L3之和)大于第二最大摆风角度(出风角度区域R1与R2之和);请参照图4,若第一距离L1小于第二距离L2,则第一最大摆风角度(出风角度区域L1与L2之和)小于第二最大摆风角度(出风角度区域R1、R2与R3之和)。
作为本实施例提供的上述确定方法的一种优选的实施方式,在“根据第一距离L1和第二距离L2确定空调室内机1朝第一侧墙壁W1的第一最大摆风角度”的步骤中,该确定方法还包括:计算第一距离L1与第一侧墙壁W1和第二侧墙壁W2之间总距离的第一比值;按照第一最大摆风角度与第一比值之间呈正相关的映射关系确定第一最大摆风角度。
例如,在图3所示情形中的第一比值大于图4所示情形中的第一比值,在按照第一最大摆风角度与第一比值之间呈正相关的映射关系确定第一最大摆风角度时,图3所示情形中的第一最大摆风角度即大于图4所示情形中的第一最大摆风角度。
作为本实施例提供的上述确定方法的一种优选的实施方式,第一最大摆风角度与第一比值之间的映射关系表示为阶梯函数或者线性函数。
根据本实施例的空调室内机1的摆风角度范围的确定方法,通过空调室内机1与室内的第一侧墙壁W1之间的第一距离L1以及与室内的第二侧墙壁W2之间的第二距离L2来确定空调室内机1朝第一侧墙壁W1的第一最大摆风角度以及朝第二侧墙壁W2的第二最大摆风角度。如此,空调室内机1能够根据第一距离L1和第二距离L2调节第一最大摆风角度与第二最大摆风角度的大小,以使得空调室内机1的摆风角度范围与空调安装的位置相适应,进而降低了空调室内机1朝室内不同区域的出风时间和出风量的差异,以保证室内不同区域的温度变化速度能够基本相同以及热量分布相对均匀,从而有利于保证空调室内机1制冷或制热时的用户体验。
作为本实施例提供的上述确定方法的一种优选的实施方式,确定方法还包括:根据不同的总距离分别确定第一最大摆风角度与第一比值之间呈正相关的映射关系;其中,在第一比值相等的条件下,总距离越大,则第一最大摆风角度也越大。
可以理解的是,在第一比值相等的条件下,第一侧墙壁W1和第二侧墙壁W2之间总距离越大,空调室内机1朝第一侧墙壁W1需要更大的摆风角度才能尽可能保证室内不同区域的温度变化速度能够基本相同以及热量分布相对均匀,从而有利于保证空调室内机1制冷或制热时的用户体验。
作为本实施例提供的上述确定方法的一种优选的实施方式,“按照第一最大摆风角度与第一比值之间呈正相关的映射关系确定第一最大摆风角度”包括:空调室内机1朝第一侧墙壁W1的出风角度区域与朝第二侧墙壁W2的出风角度区域分别具有相等的预设数量,且每个出风角度区域的大小相等。如图2所示,空调室内机1朝第一侧墙壁W1的出风角度区域包括L1、L2和L3,空调室内机1朝第二侧墙壁W2的出风角度区域包括R1、R2和R3,且每个出风角度区域L1、L2、L3、R1、R2和R3的大小相等。在此情况下,空调室内机1的摆风角度范围的确定方法可以为:
1)若第一比值小于预设的第一阈值,则空调室内机1朝第一侧墙壁W1的出风角度区域减少第一设定个数;例如,图3中的情形相对于图2中的情形减少了R3,以及图4中的情形相对于图2中的情形减少了L3。
2)若第一比值大于预设的第二阈值,则空调室内机1朝第一侧墙壁W1的出风角度区域增加第二设定个数。
虽然,本实施例上述是以第一最大摆风角度为例进行说明的,但是也可以按照同样的方法和原理来确定第二最大摆风角度。
需要说明的是,尽管上文详细描述了本发明方法的详细步骤,但是,在不偏离本发明的基本原理的前提下,本领域技术人员可以对上述步骤进行组合、拆分及调换顺序,如此修改后的技术方案并没有改变本发明的基本构思,因此也落入本发明的保护范围之内。
本领域的技术人员应当理解的是,可以将本实施例提供的空调室内机的摆风角度范围的确定方法作为程序存储在一个计算机可读取存储介质中。该存储介质中包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)或处理器(processor)执行本发明各个实施例方法的部分步骤。而前述的存储介质包括:U盘、移动硬盘、只读存储器(Read-Only Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、磁碟或者光盘等各种可以存储程序代码的介质。
然后,在本实施例提供的一种空调室内机1的摆风角度范围的确定装置中,确定装置包括位置检测模块和数据处理模块;位置检测模块能够获取空调室内机1与室内的第一侧墙壁W1之间的第一距离L1,并获取空调室内机1与室内的第二侧墙壁W2之间的第二距离L2,第一侧墙壁W1与第二侧墙壁W2为相对的两个墙壁;数据处理模块能够根据第一距离L1和第二距离L2确定空调室内机1朝第一侧墙壁W1的第一最大摆风角度,并且/或者数据处理模块能够根据第一距离L1和第二距离L2确定空调室内机1朝第二侧墙壁W2的第二最大摆风角度,以使空调室内机1的摆风驱动模块能够根据确定出的第一最大摆风角度和/或第二最大摆风角度调节空调室内机1的导风机构或摆风机构。
根据本实施例的空调室内机1的摆风角度范围的确定装置,通过空调室内机1与室内的第一侧墙壁W1之间的第一距离L1以及与室内的第二侧墙壁W2之间的第二距离L2来确定空调室内机1朝第一侧墙壁W1的第一最大摆风角度以及朝第二侧墙壁W2的第二最大摆风角度。如此,空调室内机1能够根据第一距离L1和第二距离L2调节第一最大摆风角度与第二最大摆风角度的大小,以使得空调室内机1的摆风角度范围与空调安装的位置相适应,进而降低了空调室内机1朝室内不同区域的出风时间和出风量的差异,以保证室内不同区域的温度变化速度能够基本相同以及热量分布相对均匀,从而有利于保证空调室内机1制冷或制热时的用户体验。
需要说明的是,这种数据处理模块物理上可以是设置于室内机的一个控制芯片,可以是专门用于执行本发明的方法的控制器,也可以是通用控制器的一个功能模块或功能单元。
本领域技术人员可以理解,上述空调室内机1的摆风角度范围的确定装置还包括一些其他公知结构,例如处理器、控制器、存储器等,其中,存储器包括但不限于随机存储器、闪存、只读存储器、可编程只读存储器、易失性存储器、非易失性存储器、串行存储器、并行存储器或寄存器等,处理器包括但不限于CPLD/FPGA、DSP、ARM处理器、MIPS处理器等。为了不必要地模糊本公开的实施例,这些公知的结构未在附图中示出。
当然,上述可以替换的实施方式之间、以及可以替换的实施方式和优选的实施方式之间还可以交叉配合使用,从而组合出新的实施方式以适用于更加具体的应用场景。
此外,本领域的技术人员能够理解,尽管在此所述的一些实施例包括其它实施例中所包括的某些特征而不是其它特征,但是不同实施例的特征的组合意味着处于本发明的保护范围之内并且形成不同的实施例。例如,在本发明的权利要求书中,所要求保护的实施例的任意之一都可以以任意的组合方式来使用。
至此,已经结合附图所示的优选实施方式描述了本发明的技术方案,但是,本领域技术人员容易理解的是,本发明的保护范围显然不局限于这些具体实施方式。在不偏离本发明的原理的前提下,本领域技术人员可以对相关技术特征作出等同的更改或替换,这些更改或替换之后的技术方案都将落入本发明的保护范围之内。

Claims (10)

  1. 一种空调室内机的摆风角度范围的确定方法,其特征在于,所述确定方法包括:
    获取所述空调室内机与室内的第一侧墙壁之间的第一距离,并获取所述空调室内机与室内的第二侧墙壁之间的第二距离,所述第一侧墙壁与所述第二侧墙壁为位于所述空调室内机两侧且相对的两个墙壁;
    根据所述第一距离和所述第二距离确定所述空调室内机朝所述第一侧墙壁的第一最大摆风角度,并且/或者根据所述第一距离和所述第二距离确定所述空调室内机朝所述第二侧墙壁的第二最大摆风角度。
  2. 根据权利要求1所述的确定方法,其特征在于,在“根据所述第一距离和所述第二距离确定所述空调室内机朝所述第一侧墙壁的第一最大摆风角度”的步骤中,所述确定方法还包括:
    计算所述第一距离与所述第一侧墙壁和所述第二侧墙壁之间总距离的第一比值;
    按照所述第一最大摆风角度与所述第一比值之间呈正相关的映射关系确定所述第一最大摆风角度。
  3. 根据权利要求2所述的确定方法,其特征在于,所述第一最大摆风角度与所述第一比值之间的映射关系表示为阶梯函数或者线性函数。
  4. 根据权利要求2所述的确定方法,其特征在于,所述确定方法还包括:根据不同的所述总距离分别确定所述第一最大摆风角度与所述第一比值之间呈正相关的映射关系;其中,在所述第一比值相等的条件下,所述第一最大摆风角度随所述总距离的增大而增大。
  5. 根据权利要求2所述的确定方法,其特征在于,“按照所述第一最大摆风角度与所述第一比值之间呈正相关的映射关系确定所述第一最大摆风角度”包括:所述空调室内机朝所述第一侧墙壁的出风角度区域与朝所述第二侧墙壁的出风角度区域分别具有相等的预设数量,且每个所述出风角度区域的大小相等,
    若所述第一比值小于预设的第一阈值,则所述空调室内机朝所述第一侧墙壁的出风角度区域减少第一设定个数;并且/或者,
    若所述第一比值大于预设的第二阈值,则所述空调室内机朝所述第一侧墙壁的出风角度区域增加第二设定个数。
  6. 根据权利要求1所述的确定方法,其特征在于,“根据所述第一距离和所述第二距离确定所述空调室内机朝所述第一侧墙壁的第一最大摆风角度,并且/或者根据所述第一距离和所述第二距离确定所述空调室内机朝所述第二侧墙壁的第二最大摆风角度”包括:
    若所述第一距离等于所述第二距离,则所述第一最大摆风角度等于所述第二最大摆风角度;并且/或者,
    若所述第一距离大于所述第二距离,则所述第一最大摆风角度大于所述第二最大摆风角度;并且/或者,
    若所述第一距离小于所述第二距离,则所述第一最大摆风角度小于所述第二最大摆风角度。
  7. 根据权利要求1所述的确定方法,其特征在于,所述确定方法还包括:
    获取所述空调室内机与其对面墙壁之间的最小长度的第一向量;
    以所述第一向量为基准确定所述第一最大摆风角度和/或所述第二最大摆风角度。
  8. 根据权利要求1所述的确定方法,其特征在于,“获取所述空调室内机与室内的第一侧墙壁之间的第一距离”的步骤包括:当所述第一侧墙壁为位于所述空调室内机左侧的墙壁时,
    获取所述空调室内机在水平方向上与位于其左侧的墙壁之间的最大长度的第二向量,基于所述第二向量的角度和长度计算所述空调室内机与位于其左侧的墙壁之间的第一水平距离。
  9. 根据权利要求1所述的确定方法,其特征在于,当所述空调室内机安装在室内墙壁上时,所述第一侧墙壁为室内的天花板,而所述第二侧墙壁为室内的地面;或者,
    当所述空调室内机安装在室内墙壁上时,所述第一侧墙壁为位于所述空调室内机左侧的墙壁,而所述第二侧墙壁为位于所述空调室内机右侧的墙壁;或者,
    当所述空调室内机安装在室内的天花板上时,所述第一侧墙壁为位于所述空调室内机左侧的墙壁,而所述第二侧墙壁为位于所述空调室内机右侧的墙壁;或者,
    当所述空调室内机安装在室内的天花板上时,所述第一侧墙壁为位于所述空调室内机前侧的墙壁,而所述第二侧墙壁为位于所述空调室内机后侧的墙壁。
  10. 一种空调室内机的摆风角度范围的确定装置,其特征在于,所述确定装置包括位置检测模块和数据处理模块;
    所述位置检测模块能够获取所述空调室内机与室内的第一侧墙壁之间的第一距离,并获取所述空调室内机与室内的第二侧墙壁之间的第二距离,所述第一侧墙壁与所述第二侧墙壁为相对的两个墙壁;
    所述数据处理模块能够根据所述第一距离和所述第二距离确定所述空调室内机朝所述第一侧墙壁的第一最大摆风角度,并且/或者所述数据处理模块能够根据所述第一距离和所述第二距离确定所述空调室内机朝所述第二侧墙壁的第二最大摆风角度,以使所述空调室内机的摆风驱动模块能够根据确定出的所述第一最大摆风角度和/或所述第二最大摆风角度调节所述空调室内机的导风机构或摆风机构。
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