WO2020042736A1 - 空调器的控制方法、空调器及计算机可读存储介质 - Google Patents
空调器的控制方法、空调器及计算机可读存储介质 Download PDFInfo
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- WO2020042736A1 WO2020042736A1 PCT/CN2019/092943 CN2019092943W WO2020042736A1 WO 2020042736 A1 WO2020042736 A1 WO 2020042736A1 CN 2019092943 W CN2019092943 W CN 2019092943W WO 2020042736 A1 WO2020042736 A1 WO 2020042736A1
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- Prior art keywords
- angle
- air conditioner
- air
- preset angle
- preset
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Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F11/00—Control or safety arrangements
- F24F11/89—Arrangement or mounting of control or safety devices
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F11/00—Control or safety arrangements
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F2110/00—Control inputs relating to air properties
- F24F2110/10—Temperature
Definitions
- the present application relates to the technical field of air conditioners, and in particular, to a method for controlling an air conditioner, an air conditioner, and a computer-readable storage medium.
- air conditioners have become one of the indispensable household appliances for many families.
- the cooling airflow is adjusted by the air deflector, and unavoidable cold air will directly blow on the user, affecting the comfort of the air conditioner, even when the wind is too strong, the cold air blows.
- the user When it reaches the user, the user will suffer from air-conditioning disease.
- the main purpose of the present application is to provide a control method of an air conditioner, an air conditioner, and a computer-readable storage medium, which aim to improve the comfort of the airflow of the indoor unit of the air conditioner.
- the present application provides a method for controlling an air conditioner.
- An air outlet of an indoor unit of the air conditioner is provided with a micro-hole plate, a first air guide plate, and a second air guide plate.
- the board is provided with a plurality of air diffuser holes; the control method of the air conditioner includes the following steps:
- the operating mode of the air conditioner is a cooling mode, real-time obtaining the indoor temperature of the indoor environment in which the air conditioner is located;
- the angle of the micro-well plate is adjusted to a second preset angle, so that the air conditioner operates in a new air flow mode, and the flow velocity of the cold air flowing out of the air outlet of the air duct is reduced through the diffuser holes.
- the method for controlling the air conditioner further includes:
- the maximum temperature in the second preset temperature range is less than or equal to the minimum temperature in the first preset temperature range, and the third preset angle is less than the first preset angle.
- the control of the air conditioner includes:
- the fourth preset angle is smaller than the second preset angle.
- the second preset temperature range is 20 ° C. ⁇ 24 ° C
- the range of the third preset angle is 11 ° ⁇ 15 °
- the fourth preset angle is 0 °.
- the first preset temperature range is 25 ° C ⁇ 28 ° C
- the first preset angle range is 16 ° ⁇ 23 °
- the second preset angle is The range is 85 ° ⁇ 95 °.
- the method for controlling the air conditioner further includes:
- the angles of the first air deflector and the angle of the second air deflector are adjusted to a fifth Setting an angle, wherein the fifth preset angle is greater than the first preset angle;
- the angle of the micro-well plate is adjusted to a fourth preset angle, so that the air conditioner operates in a standard cooling mode.
- the fifth preset angle ranges from 25 ° to 45 °.
- the step of obtaining the indoor temperature of the indoor environment in which the air conditioner is located in real time further includes:
- the angle of the first air deflector and the angle of the second air deflector are adjusted to a fifth preset angle, wherein the fifth preset angle is greater than The first preset angle;
- the angle of the microplate is adjusted to a fourth preset angle, and the indoor temperature of the indoor environment in which the air conditioner is located is obtained in real time.
- the present application further provides an air conditioner
- the air conditioner includes: a memory, a processor, and computer-readable instructions stored on the memory and executable on the processor, the The computer-readable instructions, when executed by the processor, implement the steps of the method for controlling an air conditioner according to any one of the above.
- the present application further provides a computer-readable storage medium, wherein the computer-readable storage medium stores computer-readable instructions, and the computer-readable instructions implement the above-mentioned instructions when executed by a processor. Steps of the method for controlling an air conditioner according to any one.
- the indoor temperature of the indoor environment in which the air conditioner is located is obtained in real time, and then when the currently obtained indoor temperature is within the first preset temperature range , Respectively adjusting the angle of the first wind deflector and the angle of the second wind deflector to a first preset angle, and then adjusting the angle of the micro-well plate to a second preset angle so that
- the air conditioner operates in a new airflow mode, reduces the flow velocity of the cold air flowing out of the air outlet through the air diffuser holes, and adjusts the air deflector and the microporous plate by adjusting the indoor air temperature within a first preset temperature range.
- the air conditioner only have a cool feeling during the cooling process, without obvious wind feeling, and the user feels more comfortable and less prone to air conditioning diseases, and improves the comfort of the airflow of the indoor unit of the air conditioner.
- FIG. 1 is a schematic structural diagram of an air conditioner in a hardware operating environment according to an embodiment of the present application
- FIG. 2 is a schematic flowchart of a first embodiment of a control method for an air conditioner of the present application
- FIG. 3 is a schematic structural diagram of an embodiment of an air-conditioning indoor unit of the present application.
- FIG. 4 is a schematic structural diagram of another embodiment of an air-conditioning indoor unit of the present application.
- FIG. 5 is a schematic flowchart of a second embodiment of a control method for an air conditioner of the present application.
- FIG. 6 is a detailed flowchart of a step of obtaining the indoor temperature of the indoor environment in which the air conditioner is located in real time when the operation mode of the air conditioner is the cooling mode in the third embodiment of the air conditioner control method of the present application.
- the angles of the first air deflector, the second air deflector, and the micro-perforated plate are adjusted according to the indoor temperature during the cooling operation of the air conditioner.
- the indoor temperature is low, the cold air passes through the air-diffusion effect of the air-diffusion holes.
- the intensity of the cold airflow is significantly reduced, and passes through the first air deflector and the second air deflector at a first preset angle again to reduce the airflow to the user, so that the air conditioner only has a cool feeling during the cooling process, and no obvious wind
- the user feels more comfortable and less susceptible to air-conditioning disease, which improves the comfort of the airflow of the indoor unit of the air conditioner.
- the indoor temperature is high, try to keep the cold air from dispersing through the diffuser holes as much as possible. The airflow blowing toward the user, thereby improving the comfort of the airflow of the indoor unit of the air conditioner.
- FIG. 1 is a schematic structural diagram of an air conditioner in a hardware operating environment according to a solution of an embodiment of the present application.
- the air conditioner may include a processor 1001, such as a CPU, a network interface 1004, a user interface 1003, a memory 1005, and a communication bus 1002.
- the communication bus 1002 is used to implement connection and communication between these components.
- the user interface 1003 may include a display, an input unit such as a keyboard, and the optional user interface 1003 may further include a standard wired interface and a wireless interface.
- the network interface 1004 may optionally include a standard wired interface and a wireless interface (such as a WI-FI interface).
- the memory 1005 may be a high-speed RAM memory or a non-volatile memory. memory), such as disk storage.
- the memory 1005 may optionally be a storage device independent of the foregoing processor 1001.
- the air conditioner may further include a camera, RF (Radio Frequency) circuits, sensors, audio circuits, WiFi modules, and more.
- sensors such as light sensors, motion sensors, and other sensors.
- the air conditioner may be equipped with other sensors such as a gyroscope, a barometer, a hygrometer, a thermometer, an infrared sensor, and the like, and will not be described again here.
- FIG. 1 does not constitute a limitation on the air conditioner, and may include more or fewer parts than those shown in the figure, or combine certain parts, or arrange different parts.
- the memory 1005 as a computer storage medium may include an operating system, a network communication module, a user interface module, and computer-readable instructions.
- the network interface 1004 is mainly used to connect to the background server and perform data communication with the background server;
- the user interface 1003 is mainly used to connect to the client (user) and perform data communication with the client;
- the device 1001 may be used to call computer-readable instructions stored in the memory 1005.
- the air conditioner includes: a memory 1005, a processor 1001, and computer-readable instructions stored on the memory 1005 and executable on the processor 1001, where the processor 1001 calls the memory 1005 to store Computer-readable instructions and do the following:
- the operating mode of the air conditioner is a cooling mode, real-time obtaining the indoor temperature of the indoor environment in which the air conditioner is located;
- the angle of the micro-well plate is adjusted to a second preset angle, so that the air conditioner operates in a new air flow mode, and the flow velocity of the cold air flowing out of the air outlet of the air duct is reduced through the diffuser holes.
- processor 1001 may call the computer-readable instructions stored in the memory 1005, and further perform the following operations:
- the maximum temperature in the second preset temperature range is less than or equal to the minimum temperature in the first preset temperature range, and the third preset angle is less than the first preset angle.
- processor 1001 may call the computer-readable instructions stored in the memory 1005, and further perform the following operations:
- the fourth preset angle is smaller than the second preset angle.
- processor 1001 may call the computer-readable instructions stored in the memory 1005, and further perform the following operations:
- the angles of the first air deflector and the angle of the second air deflector are adjusted to a fifth Setting an angle, wherein the fifth preset angle is greater than the first preset angle;
- the angle of the micro-well plate is adjusted to a fourth preset angle, so that the air conditioner operates in a standard cooling mode.
- processor 1001 may call the computer-readable instructions stored in the memory 1005, and further perform the following operations:
- the angle of the first air deflector and the angle of the second air deflector are adjusted to a fifth preset angle, wherein the fifth preset angle is greater than The first preset angle;
- the angle of the microplate is adjusted to a fourth preset angle, and the indoor temperature of the indoor environment in which the air conditioner is located is obtained in real time.
- FIG. 2 is a schematic flowchart of a first embodiment of a method for controlling an air conditioner of the present application
- FIG. 3 is a structure of an embodiment of an air conditioner indoor unit of the present application
- FIG. 4 is a schematic structural diagram of another embodiment of an air-conditioning indoor unit of the present application.
- the air outlet of the indoor unit of the air conditioner is provided with a microporous plate 140, a first air deflector 120, and a second air deflector 130. 140 is provided with a plurality of diffuser holes.
- the air conditioner indoor unit includes a casing 100, a first air deflector 120, a second air deflector 130, and a micro-orifice 140.
- An air duct 110 is formed in the casing 100, and an air outlet of the air duct 110 has a front wall surface 111 and a rear wall surface 112 opposite to each other.
- the first wind deflector 120 is rotatably disposed on the casing 100 with a first pivot shaft 121, and the first pivot shaft 121 is disposed adjacent to the rear wall surface 112.
- the second wind deflector 130 is rotatably provided on the casing 100 by a second pivot 131.
- the second pivot 131 is located between the first pivot 121 and the front wall surface 111.
- the micro-well plate 140 is rotatably disposed on the casing 100 with a third pivot axis.
- the third pivot 141 is disposed adjacent to the front wall surface 111.
- the micro-well plate 140 is provided with a plurality of air-dissipating holes along its thickness direction.
- the micro-well plate 140 is placed in the air duct 110 of the housing 100.
- the edge of the first air deflector 120 away from the first pivot 121 and the second air deflector 130 The edges near the second pivot 131 meet.
- the control method of the air conditioner includes the following steps:
- step S110 when the operating mode of the air conditioner is a cooling mode, the indoor temperature of the indoor environment in which the air conditioner is located is obtained in real time;
- an operating mode of the air conditioner is determined. If the operating mode of the air conditioner is a cooling mode, the indoor temperature of the indoor environment in which the air conditioner is located is obtained in real time, that is, where the indoor unit is located. The indoor temperature of the indoor environment.
- the air conditioner starts the cooling mode at the moment, it can control the operation of the air conditioner according to the existing cooling control method, and obtain the indoor temperature of the indoor environment in which the air conditioner is located in real time.
- Step S120 when the currently obtained indoor temperature is within a first preset temperature range, adjust the angle of the first air deflector and the second air deflector to a first preset angle, respectively;
- the angle of the first air deflector and the angle of the second air deflector are adjusted to the first preset angle, respectively.
- the air conditioner is operated in the cooling mode, the acquired indoor temperature gradually decreases.
- the acquired indoor temperature is less than the maximum temperature of the first preset temperature range, the currently acquired indoor temperature is at the first preset temperature.
- the temperature is gradually increased to a minimum temperature greater than the first preset temperature range, or the indoor temperature is gradually decreased to a maximum temperature less than the first preset temperature range, and it is determined that the currently obtained indoor temperature is within the first preset temperature range.
- step S130 the angle of the micro-well plate is adjusted to a second preset angle, so that the air conditioner operates in a new airflow mode, and the flow velocity of the cold air flowing out of the air outlet of the air duct is reduced through the air diffuser hole.
- the angle of the micro-well plate 140 is adjusted to a second preset angle.
- the airflow flowing out of the air outlet of the air outlet channel is blown to the indoor environment where the outdoor unit is located through the air diffuser hole.
- the air conditioner is in a cooling state, after the cold air passes through the diffuser holes, the intensity of the cold air flow is significantly reduced, and passes through the first air guide plate 120 and the second air guide plate 130 at a first preset angle again.
- the airflow blowing to the user is reduced, so that the air conditioner has only a cool feeling and no obvious wind feeling during the cooling process, and the user feels more comfortable and less prone to suffer from air conditioning diseases, which improves the comfort of the airflow of the air conditioner indoor unit.
- the angle of the first air deflector 120 and the angle of the second air deflector 130 are both the first preset angle, and the angle of the micro-perforated plate 140 is the second preset angle.
- the operating mode is defined as the new air mode.
- the first preset temperature range is 25 ° C ⁇ 28 ° C
- the first preset angle range is 16 ° ⁇ 23 °
- the second preset angle range is 85 ° ⁇ 95 °
- the first preset angle is 20 °
- the second preset angle is 90 °.
- the angle of the first air deflector 120 and the second air deflector 130 is the angle between the plane where the first air deflector 120 is located and the horizontal plane
- the angle of the second air deflector 130 is The angle between the plane where the second air deflector 130 is located and the horizontal plane
- the angle of the micro-well plate 140 is the angle between the plane where the micro-well plate 140 is located and the horizontal plane.
- angles of multiple microplates can be adjusted to a second preset angle at the same time, or the angles of each microplate can be adjusted separately to achieve finer cold airflow control.
- the method for controlling an air conditioner obtaineds a real-time indoor temperature of an indoor environment in which the air conditioner is located when the operating mode of the air conditioner is a cooling mode, and then obtains the indoor temperature currently obtained.
- the angle of the first air deflector and the angle of the second air deflector are adjusted to a first preset angle, and then the angle of the micro-well plate 140 is adjusted.
- Adjust to a second preset angle to make the air conditioner operate in a new airflow mode reduce the flow rate of cold air flowing out of the air duct outlet through the air diffuser hole, and adjust the indoor temperature to the first preset temperature range
- Internally adjust the angles of the first air deflector 120, the second air deflector 130, and the micro-orifice 140 so that after the cold air passes through the air diffuser, the intensity of the cold air flow is significantly reduced, and passes through the first preset again.
- the angled first air deflector 120 and second air deflector 130 reduce the airflow to the user, so that the air conditioner only has a cool feeling during the cooling process, no obvious wind feeling, and the user feels more comfortable and less prone to air conditioning. To improve the comfort of air conditioner indoor unit of the air flow.
- the air conditioner control method further includes:
- Step S140 when the indoor temperature of the indoor environment is within a second preset temperature range, adjust the angle of the first air deflector and the angle of the second air deflector to a third preset respectively. angle;
- the maximum temperature in the second preset temperature range is less than or equal to the minimum temperature in the first preset temperature range, and the third preset angle is less than the first preset angle.
- the temperature of the indoor environment in which the indoor unit is located gradually decreases.
- the indoor temperature of the current indoor environment is within a second preset temperature range, that is, indoors of the current indoor environment
- the angles of the first air deflector 120 and the second air deflector 130 are respectively adjusted to a third preset angle, so that when the indoor temperature is low, the first air deflector
- the angles of the air plate 120 and the second air deflector 130 change the wind direction of the airflow, further reducing the airflow to the user, so that the air conditioner only has a cool feeling during the cooling process, no obvious wind feeling, and the user feels more comfortable and not easy. Suffering from air conditioning.
- the method for controlling the air conditioner further includes: adjusting the angle of the micro-well plate to a fourth preset angle, so that the air conditioner operates in a patio airflow mode, The cold air flowing from the air outlet of the air duct is directly blown into the indoor environment where the indoor unit is located, wherein the fourth preset angle is smaller than the second preset angle.
- the micro-well plate 140 can be adjusted.
- the angle of the angle is adjusted to the fourth preset angle so as to prevent the cold wind from dispersing through the air-dissipation hole as much as possible, improving the efficiency of the air conditioner in the cooling mode, and reducing the power consumption of the air conditioner.
- the second preset temperature range is 20 ° C ⁇ 24 ° C
- the range of the third preset angle is 11 ° ⁇ 15 °
- the fourth preset angle is 0 °
- the third preset angle is 13 °.
- the method for controlling an air conditioner is to change the angle of the first air deflector 120 and the second guide when the indoor temperature of the current indoor environment is within a second preset temperature range.
- the angle of the wind plate 130 is adjusted to a third preset angle, so that when the indoor temperature is low, the angle of the first air deflector 120 and the second air deflector 130 can be adjusted to change the wind direction of the airflow, thereby further reducing the blow to the user.
- the airflow further makes the air conditioner only have a cool feeling and no obvious wind feeling during the cooling process, and the user feels more comfortable and less prone to air conditioning diseases, which further improves the comfort of the airflow of the air conditioner indoor unit.
- the air conditioner control method further includes:
- Step S160 when the indoor temperature of the indoor environment is greater than the maximum temperature of the first preset temperature range, adjust the angle of the first air deflector and the angle of the second air deflector to A fifth preset angle, wherein the fifth preset angle is greater than the first preset angle;
- Step S170 adjust the angle of the micro-well plate to a fourth preset angle, so that the air conditioner operates in a standard cooling mode.
- the indoor temperature gradually increases.
- the indoor temperature of the indoor environment gradually increases with time. Therefore, when the indoor temperature of the indoor environment is greater than the maximum temperature of the first preset temperature range, the angles of the first air deflector 120 and the second air deflector 130 are adjusted to the fifth preset respectively. Angle, and adjust the angle of the micro-well plate 140 to the fourth preset angle, so as to prevent the cold wind from passing through the diffuser hole as much as possible, and increase the airflow to the user, thereby improving the airflow of the air conditioner indoor unit. Comfort.
- the fifth preset angle ranges from 25 ° to 45 °, and the fourth preset angle is 0 °.
- the method for controlling an air conditioner proposed in this embodiment is to change the angle of the first air deflector and the angle of the first air baffle respectively when the indoor temperature of the indoor environment is greater than the maximum temperature of the first preset temperature range.
- the angle of the second air deflector is adjusted to a fifth preset angle, and then the angle of the micro-well plate 140 is adjusted to a fourth preset angle.
- the indoor temperature is high, the cold air is not prevented from passing through the diffuser holes as much as possible.
- the wind diffuses, and increases the airflow to the user, thereby improving the comfort of the airflow of the indoor unit of the air conditioner.
- step S110 includes:
- step S111 when the air conditioner starts a cooling mode, the angle of the first air deflector and the angle of the second air deflector are adjusted to a fifth preset angle, wherein the fifth Setting the angle to be greater than the first preset angle;
- Step S112 Adjust the angle of the microplate to a fourth preset angle, and obtain the indoor temperature of the indoor environment in which the air conditioner is located in real time.
- the air conditioner when the air conditioner starts the cooling mode, the indoor temperature of the current indoor environment is high. Therefore, the angles of the first air deflector 120 and the angle of the second air deflector 130 are adjusted respectively. To the fifth preset angle, and adjust the angle of the micro-well plate 140 to the fourth preset angle, so as to prevent the cold wind from passing through the diffuser holes as much as possible, and increase the airflow to the user, thereby improving the air conditioner room. Comfort of the machine's airflow.
- the indoor temperature of the indoor environment in which the air conditioner is located is obtained in real time, so that the angles of the first air deflector 120, the second air deflector 130, and the micro-perforated plate 140 are adjusted again according to the obtained indoor temperature, so that the air conditioner During the cooling process, there is only a sense of coolness and no obvious sense of wind. The user feels more comfortable and less likely to suffer from air conditioning diseases, which further improves the comfort of the airflow of the indoor unit of the air conditioner.
- the fifth preset angle ranges from 25 ° to 45 °, and the fourth preset angle is 0 °.
- the control method of the air conditioner adjusts the angle of the first air deflector and the angle of the second air deflector to a fifth preset when the air conditioner starts a cooling mode, respectively.
- Angle adjust the angle of the micro-aperture plate to a fourth preset angle, and obtain the indoor temperature of the indoor environment in which the air conditioner is located in real time, so that the cold air does not pass The wind diffuses, and increases the airflow to the user, thereby improving the comfort of the airflow of the indoor unit of the air conditioner.
- the indoor temperature of the indoor environment in which the air conditioner is located is obtained in real time, so that the angles of the first air deflector 120, the second air deflector 130, and the micro-orifice 140 are adjusted again according to the obtained indoor temperature, so that the air conditioner
- the air conditioner During the cooling process of the air conditioner, there is only a cool feeling and no obvious wind feeling. The user feels more comfortable and less likely to suffer from air conditioning diseases, which further improves the comfort of the airflow of the indoor unit of the air conditioner.
- an embodiment of the present application further provides a computer-readable storage medium.
- the computer-readable storage medium stores computer-readable instructions. When the computer-readable instructions are executed by a processor, the following operations are implemented:
- the operating mode of the air conditioner is a cooling mode, real-time obtaining the indoor temperature of the indoor environment in which the air conditioner is located;
- the angle of the micro-well plate is adjusted to a second preset angle, so that the air conditioner operates in a new air flow mode, and the flow velocity of the cold air flowing out of the air outlet of the air duct is reduced through the diffuser holes.
- the maximum temperature in the second preset temperature range is less than or equal to the minimum temperature in the first preset temperature range, and the third preset angle is less than the first preset angle.
- the fourth preset angle is smaller than the second preset angle.
- the angles of the first air deflector and the angle of the second air deflector are adjusted to a fifth Setting an angle, wherein the fifth preset angle is greater than the first preset angle;
- the angle of the micro-well plate is adjusted to a fourth preset angle, so that the air conditioner operates in a standard cooling mode.
- the angle of the first air deflector and the angle of the second air deflector are adjusted to a fifth preset angle, wherein the fifth preset angle is greater than The first preset angle;
- the angle of the microplate is adjusted to a fourth preset angle, and the indoor temperature of the indoor environment in which the air conditioner is located is obtained in real time.
- this application may be provided as a method, a system, or a computer program product. Therefore, this application may take the form of an entirely hardware embodiment, an entirely software embodiment, or an embodiment combining software and hardware aspects. Moreover, this application may take the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.
- computer-usable storage media including but not limited to disk storage, CD-ROM, optical storage, etc.
- These computer program instructions may also be stored in a computer-readable memory capable of directing a computer or other programmable data processing device to work in a particular manner such that the instructions stored in the computer-readable memory produce a manufactured article including an instruction device, the instructions
- the device implements the functions specified in one or more flowcharts and / or one or more blocks of the block diagram.
- These computer program instructions can also be loaded on a computer or other programmable data processing device, so that a series of steps can be performed on the computer or other programmable device to produce a computer-implemented process, which can be executed on the computer or other programmable device.
- the instructions provide steps for implementing the functions specified in one or more flowcharts and / or one or more blocks of the block diagrams.
- any reference signs placed between parentheses shall not be construed as limiting the claim.
- the word “comprising” does not exclude the presence of elements or steps not listed in a claim.
- the word “a” or “an” preceding a part does not exclude the presence of a plurality of such parts.
- the application can be implemented by means of hardware comprising several distinct parts, and by means of a suitably programmed computer. In the unit claim listing several devices, several of these devices may be embodied by the same hardware item.
- the use of the words first, second, and third does not imply any order. These words can be interpreted as names.
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Abstract
本申请公开了一种空调器的控制方法,包括:在所述空调器的运行模式为制冷模式时,实时获取所述空调器所处的室内环境的室内温度;在当前获取到的所述室内温度处于第一预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第一预设角度;将所述微孔板的角度调节至第二预设角度。本申请还公开了一种空调器及计算机可读存储介质。
Description
本申请要求广东美的制冷设备有限公司、美的集团股份有限公司于2018年8月31日提交中国专利局、申请号为201811022531.5、发明名称为“空调器的控制方法、空调器及计算机可读存储介质”的中国专利申请的优先权,其全部内容通过引用结合在申请中。
技术领域
本申请涉及空调技术领域,尤其涉及一种空调器的控制方法、空调器及计算机可读存储介质。
背景技术
随着生活水平的提高,空调器已经成为众多家庭不可或缺的家用电器之一。在现有的空调器开启制冷模式时,冷却的气流通过导风板调节,无可避免会出现冷风直接吹到用户身上,影响空调器制冷的舒适性,甚至在风力过于强劲时,冷气流吹至用户身上后,会使用户患上空调病。
上述内容仅用于辅助理解本申请的技术方案,并不代表承认上述内容是现有技术。
发明内容
本申请的主要目的在于提供一空调器的控制方法、空调器及计算机可读存储介质,旨在改善空调器室内机出风气流的舒适性。
为实现上述目的,本申请提供一种空调器的控制方法,所述空调器的室内机的风道出风口设有微孔板、第一导风板以及第二导风板,所述微孔板设有多个散风孔;所述空调器的控制方法包括以下步骤:
在所述空调器的运行模式为制冷模式时,实时获取所述空调器所处的室内环境的室内温度;
在当前获取到的所述室内温度处于第一预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第一预设角度;
将所述微孔板的角度调节至第二预设角度,以使所述空调器按照新气流模式运行,通过所述散风孔降低所述风道出风口流出的冷风的流速。
进一步地,在一实施方式中,所述将所述微孔板的角度调节至第二预设角度的步骤之后,所述空调器的控制方法还包括:
在当前所述室内环境的室内温度处于第二预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第三预设角度;
其中,所述第二预设温度范围的最大温度小于或等于所述第一预设温度范围的最小温度,所述第三预设角度小于所述第一预设角度。
进一步地,在一实施方式中,所述分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第三预设角度的步骤之后,所述空调器的控制方法还包括:
将所述微孔板的角度调节至第四预设角度,使所述空调器按照天井气流模式运行,以使风道出风口流出的冷风直接吹入所述室内机所处的室内环境中,其中,所述第四预设角度小于所述第二预设角度。
进一步地,在一实施方式中,所述第二预设温度范围为20°C
~24°C,所述第三预设角度的范围为11°~15°,第四预设角度为0°。
进一步地,在一实施方式中,所述第一预设温度范围为25°C~28°C,所述第一预设角度的范围为16°~23°,所述第二预设角度的范围为85°~95°。
进一步地,在一实施方式中,所述将所述微孔板的角度调节至第二预设角度的步骤之后,所述空调器的控制方法还包括:
在当前所述室内环境的室内温度大于所述第一预设温度范围的最大温度时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;
将所述微孔板的角度调节至第四预设角度,以使所述空调器按照标准制冷模式运行。
进一步地,在一实施方式中,所述第五预设角度的范围为25°~45°。
进一步地,在一实施方式中,所述在所述空调器的运行模式为制冷模式时,实时获取所述空调器所处的室内环境的室内温度的步骤还包括:
在所述空调器启动制冷模式时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;
将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
此外,为实现上述目的,本申请还提供一种空调器,所述空调器包括:存储器、处理器及存储在所述存储器上并可在所述处理器上运行的计算机可读指令,所述计算机可读指令被所述处理器执行时实现上述中任一项所述的空调器的控制方法的步骤。
此外,为实现上述目的,本申请还提供一种计算机可读存储介质,其中,所述计算机可读存储介质上存储有计算机可读指令,所述计算机可读指令被处理器执行时实现上述中任一项所述的空调器的控制方法的步骤。
本申请通过在所述空调器的运行模式为制冷模式时,实时获取所述空调器所处的室内环境的室内温度,接着在当前获取到的所述室内温度处于第一预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第一预设角度,而后将所述微孔板的角度调节至第二预设角度,以使所述空调器按照新气流模式运行,通过所述散风孔降低所述风道出风口流出的冷风的流速,通过在室内温度处于第一预设温度范围内调节导风板以及微孔板的角度,使得冷风经过散风孔的散风作用后,冷风的气流强度显著降低,并再次经过处于第一预设角度的第一导风板以及第二导风板,减少吹向用户的气流,使得空调器制冷过程中只有凉感,无明显风感,用户感觉更为舒适且不容易患上空调病,提高了空调器室内机出风气流的舒适性。
附图说明
图1是本申请实施例方案涉及的硬件运行环境中空调器的结构示意图;
图2为本申请空调器的控制方法第一实施例的流程示意图;
图3为本申请空调室内机一实施例的结构示意图;
图4为本申请空调室内机另一实施例的结构示意图;
图5为本申请空调器的控制方法第二实施例的流程示意图;
图6为本申请空调器的控制方法第三实施例中在所述空调器的运行模式为制冷模式时,实时获取所述空调器所处的室内环境的室内温度的步骤的细化流程示意图。
附图标号说明:
| 标号 | 名称 | 标号 | 名称 | 标号 | 名称 |
| 100 | 壳体 | 110 | 风道 | 111 | 前壁面 |
| 112 | 后壁面 | 120 | 第一导风板 | 121 | 第一枢轴 |
| 130 | 第二导风板 | 131 | 第二枢轴 | 140 | 微孔板 |
本申请目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
具体实施方式
本申请通过在空调器制冷运行时,根据室内温度调节第一导风板、第二导风板以及微孔板的角度,在室内温度较低时,使得冷风经过散风孔的散风作用后,冷风的气流强度显著降低,并再次经过处于第一预设角度的第一导风板、第二导风板,减少吹向用户的气流,使得空调器制冷过程中只有凉感,无明显风感,用户感觉更为舒适且不容易患上空调病,提高了空调器室内机出风气流的舒适性;在室内温度较高时,尽量使冷风不在经过散风孔的散风作用,并增加吹向用户的气流,进而提高空调器室内机出风气流的舒适性。
为了更好的理解上述技术方案,下面将参照附图更详细地描述本公开的示例性实施例。虽然附图中显示了本公开的示例性实施例,然而应当理解,可以以各种形式实现本公开而不应被这里阐述的实施例所限制。相反,提供这些实施例是为了能够更透彻地理解本公开,并且能够将本公开的范围完整的传达给本领域的技术人员。
为了更好的理解上述技术方案,下面将结合说明书附图以及具体的实施方式对上述技术方案进行详细的说明。
应当理解,此处所描述的具体实施例仅仅用以解释本申请,并不用于限定本申请。
如图1所示,图1是本申请实施例方案涉及的硬件运行环境中空调器的结构示意图。
如图1所示,该空调器可以包括:处理器1001,例如CPU,网络接口1004,用户接口1003,存储器1005,通信总线1002。其中,通信总线1002用于实现这些组件之间的连接通信。用户接口1003可以包括显示屏(Display)、输入单元比如键盘(Keyboard),可选用户接口1003还可以包括标准的有线接口、无线接口。网络接口1004可选的可以包括标准的有线接口、无线接口(如WI-FI接口)。存储器1005可以是高速RAM存储器,也可以是稳定的存储器(non-volatile
memory),例如磁盘存储器。存储器1005可选的还可以是独立于前述处理器1001的存储装置。
可选地,空调器还可以包括摄像头、RF(Radio
Frequency,射频)电路,传感器、音频电路、WiFi模块等等。其中,传感器比如光传感器、运动传感器以及其他传感器。空调器还可配置陀螺仪、气压计、湿度计、温度计、红外线传感器等其他传感器,在此不再赘述。
本领域技术人员可以理解,图1中示出的空调器结构并不构成对空调器的限定,可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件布置。
如图1所示,作为一种计算机存储介质的存储器1005中可以包括操作系统、网络通信模块、用户接口模块以及计算机可读指令。
在图1所示的空调器中,网络接口1004主要用于连接后台服务器,与后台服务器进行数据通信;用户接口1003主要用于连接客户端(用户端),与客户端进行数据通信;而处理器1001可以用于调用存储器1005中存储的计算机可读指令。
在本实施例中,空调器包括:存储器1005、处理器1001及存储在所述存储器1005上并可在所述处理器1001上运行的计算机可读指令,其中,处理器1001调用存储器1005中存储的计算机可读指令时,并执行以下操作:
在所述空调器的运行模式为制冷模式时,实时获取所述空调器所处的室内环境的室内温度;
在当前获取到的所述室内温度处于第一预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第一预设角度;
将所述微孔板的角度调节至第二预设角度,以使所述空调器按照新气流模式运行,通过所述散风孔降低所述风道出风口流出的冷风的流速。
进一步地,处理器1001可以调用存储器1005中存储的计算机可读指令,还执行以下操作:
在当前所述室内环境的室内温度处于第二预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第三预设角度;
其中,所述第二预设温度范围的最大温度小于或等于所述第一预设温度范围的最小温度,所述第三预设角度小于所述第一预设角度。
进一步地,处理器1001可以调用存储器1005中存储的计算机可读指令,还执行以下操作:
将所述微孔板的角度调节至第四预设角度,使所述空调器按照天井气流模式运行,以使风道出风口流出的冷风直接吹入所述室内机所处的室内环境中,其中,所述第四预设角度小于所述第二预设角度。
进一步地,处理器1001可以调用存储器1005中存储的计算机可读指令,还执行以下操作:
在当前所述室内环境的室内温度大于所述第一预设温度范围的最大温度时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;
将所述微孔板的角度调节至第四预设角度,以使所述空调器按照标准制冷模式运行。
进一步地,处理器1001可以调用存储器1005中存储的计算机可读指令,还执行以下操作:
在所述空调器启动制冷模式时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;
将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
本申请还提供一种空调器的控制方法,参照图2至图4,图2为本申请空调器的控制方法第一实施例的流程示意图;图3为本申请空调室内机一实施例的结构示意图;图4为本申请空调室内机另一实施例的结构示意图。
在本实施例中,参照图3及图4,该空调器的室内机的风道出风口设有微孔板140、第一导风板120以及第二导风板130,所述微孔板140设有多个散风孔。
具体地,参照图3及图4,该空调室内机包括壳体100、第一导风板120、第二导风板130及微孔板140。其中,壳体100内形成有风道110,风道110的出风口处具有相对设置的前壁面111和后壁面112。第一导风板120以第一枢轴121可转动地设于壳体100上,第一枢轴121邻近后壁面112设置。第二导风板130以第二枢轴131可转动地设于所述壳体100上,第二枢轴131位于第一枢轴121与前壁面111之间,第二导风板130的靠近第二枢轴131的边缘适于与第一导风板120的远离第一枢轴121的边缘相接。微孔板140,以第三枢轴可转动地设于壳体100上,第三枢轴141邻近所述前壁面111设置,微孔板140沿其厚度方向设有若干散风孔。
在关机状态下,参照图3及图4,微孔板140置于壳体100的风道110内,第一导风板120的远离第一枢轴121的边缘与第二导风板130的靠近第二枢轴131的边缘相接。在第一导风板120与第二导风板130的配合下使出风口闭合,一方面能够防止灰尘从出风口进入,另一方面能够使空调室内机整体更为美观。
该空调器的控制方法包括以下步骤:
步骤S110,在所述空调器的运行模式为制冷模式时,实时获取所述空调器所处的室内环境的室内温度;
在本实施例中,在空调器处于运行状态时,确定该空调器的运行模式,若空调器的运行模式为制冷模式,实时获取该空调器所处的室内环境的室内温度,即室内机所在室内环境的室内温度。
需要说明的是,若该空调器当前时刻启动制冷模式,则可按照现有的制冷控制方式控制空调器运行,并实时获取该空调器所处的室内环境的室内温度。
步骤S120,在当前获取到的所述室内温度处于第一预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板调节至第一预设角度;
在本实施例中,在当前获取到的室内温度处于第一预设温度范围内时,分别将第一导风板的角度、以及第二导风板的角度调节至第一预设角度。具体地,若空调器开启制冷模式运行,则获取到的室内温度逐渐降低,在获取到的室内温度小于第一预设温度范围的最大温度时,当前获取到的室内温度处于第一预设温度范围内,此时将第一导风板的角度、以及第二导风板的角度调节至第一预设角度;或者,在空调器长期运行的过程中,室内温度可能存在变化,若室内温度逐渐增大至大于第一预设温度范围的最小温度、或者室内温度逐渐减小至小于第一预设温度范围的最大温度,确定当前获取到的室内温度处于第一预设温度范围内。
步骤S130,将所述微孔板的角度调节至第二预设角度,以使所述空调器按照新气流模式运行,通过所述散风孔降低所述风道出风口流出的冷风的流速。
在本实施例中,在将第一导风板120的角度、以及第二导风板130的角度调节至第一预设角度时,将微孔板140的角度调节至第二预设角度,以使该出风通道的出风口流出的气流通过散风孔吹向室外机所处的室内环境。当空调器处于制冷状态时,冷风经过散风孔的散风作用后,冷风的气流强度显著降低,并再次经过处于第一预设角度的第一导风板120以及第二导风板130,减少吹向用户的气流,使得空调器制冷过程中只有凉感,无明显风感,用户感觉更为舒适且不容易患上空调病,提高了空调器室内机出风气流的舒适性。
需要说明的是,在第一导风板120的角度、以及第二导风板130的角度均为第一预设角度,微孔板140的角度为第二预设角度,该空调器当前的运行模式定义为新气流模式。
其中,所述第一预设温度范围为25°C~28°C,所述第一预设角度的范围为16°~23°,所述第二预设角度的范围为85°~95°,优选地,该第一预设角度为20°,该第二预设角度为90°。
在室内机正常安装时,第一导风板120、以及第二导风板130的角度为该第一导风板120所在的平面与水平面之间的角度,第二导风板130的角度为该第二导风板130所在的平面与水平面之间的角度,微孔板140的角度为微孔板140所在的平面与水平面之间的角度。
若微孔板设有多个,则可同时将多个微孔板的角度调节至第二预设角度,或者,还可以对各个微孔板的角度进行分别调节,以实现对冷风气流更加精细的控制。
本实施例提出的空调器的控制方法,通过在所述空调器的运行模式为制冷模式时,实时获取所述空调器所处的室内环境的室内温度,接着在当前获取到的所述室内温度处于第一预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第一预设角度,而后将所述微孔板140的角度调节至第二预设角度,以使所述空调器按照新气流模式运行,通过所述散风孔降低所述风道出风口流出的冷风的流速,通过在室内温度处于第一预设温度范围内调节第一导风板120、第二导风板130以及微孔板140的角度,使得冷风经过散风孔的散风作用后,冷风的气流强度显著降低,并再次经过处于第一预设角度的第一导风板120以及第二导风板130,减少吹向用户的气流,使得空调器制冷过程中只有凉感,无明显风感,用户感觉更为舒适且不容易患上空调病,提高了空调器室内机出风气流的舒适性。
基于第一实施例,提出本申请空调器的控制方法的第二实施例,在本实施例中,在步骤S130之后,该空调器的控制方法还包括:
步骤S140,在当前所述室内环境的室内温度处于第二预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第三预设角度;
其中,所述第二预设温度范围的最大温度小于或等于所述第一预设温度范围的最小温度,所述第三预设角度小于所述第一预设角度。
在本实施例中,在空调器制冷时,室内机所处室内环境的温度逐渐下降,在当前所述室内环境的室内温度处于第二预设温度范围内时,即当前所述室内环境的室内温度小于第二预设温度范围的最大温度时,将第一导风板120、第二导风板130的角度分别调节至第三预设角度,以使得室内温度较低时,通过第一导风板120以及第二导风板130的角度改变出风气流的风向,进一步减少吹向用户的气流,使得空调器制冷过程中只有凉感,无明显风感,用户感觉更为舒适且不容易患上空调病。
进一步地,在一实施例中,在步骤S150之后,该空调器的控制方法还包括:将所述微孔板的角度调节至第四预设角度,使所述空调器按照天井气流模式运行,以使风道出风口流出的冷风直接吹入所述室内机所处的室内环境中,其中,所述第四预设角度小于所述第二预设角度。
在本实施例中,在将第一导风板120以及第二导风板130的角度调节至第三预设角度时,由于调节后吹向用户的气流很少,因此可将微孔板140的角度调节至第四预设角度,以尽量使冷风不在经过散风孔的散风作用,提高了空调器制冷模式下的效率,以降低了空调器的耗电量。
其中,第二预设温度范围为20°C
~24°C,第三预设角度的范围为11°~15°,第四预设角度为0°,优选地,该第三预设角度为13°。
本实施例提出的空调器的控制方法,通过在当前所述室内环境的室内温度处于第二预设温度范围内时,分别将所述第一导风板120的角度、以及所述第二导风板130的角度调节至第三预设角度,使得室内温度较低时,通过调节第一导风板120以及第二导风板130的角度改变出风气流的风向,进一步减少吹向用户的气流,进而使得空调器制冷过程中只有凉感,无明显风感,用户感觉更为舒适且不容易患上空调病,进一步提高了空调器室内机出风气流的舒适性。
基于第一实施例,提出本申请空调器的控制方法的第三实施例,参照图4,在本实施例中,在步骤S130之后,该空调器的控制方法还包括:
步骤S160,在当前所述室内环境的室内温度大于所述第一预设温度范围的最大温度时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;
步骤S170,将所述微孔板的角度调节至第四预设角度,以使所述空调器按照标准制冷模式运行。
在本实施例中,在空调器制冷过程中,存在室内温度逐渐升高的情况,例如,室内环境对应的房间处于阳光照射的范围内时,室内环境的室内温度随着时间的变化而逐渐升高,因此,在当前所述室内环境的室内温度大于所述第一预设温度范围的最大温度时,将第一导风板120以及第二导风板130的角度分别调节至第五预设角度,并将微孔板140的角度调节至第四预设角度,以尽量使冷风不在经过散风孔的散风作用,并增加吹向用户的气流,进而提高空调器室内机出风气流的舒适性。
其中,所述第五预设角度的范围为25°~45°,第四预设角度为0°。
本实施例提出的空调器的控制方法,通过在当前所述室内环境的室内温度大于所述第一预设温度范围的最大温度时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,接着将所述微孔板140的角度调节至第四预设角度,在室内温度较高时,以尽量使冷风不在经过散风孔的散风作用,并增加吹向用户的气流,进而提高空调器室内机出风气流的舒适性。
基于上述实施例,提出本申请空调器的控制方法的第四实施例,参照图5,在本实施例中,在步骤S110包括:
步骤S111,在所述空调器启动制冷模式时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;
步骤S112,将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
在本实施例中,在空调器启动制冷模式时,当前室内环境的室内温度较高,因此,分别将所述第一导风板120的角度、以及所述第二导风板130的角度调节至第五预设角度,并将微孔板140的角度调节至第四预设角度,以尽量使冷风不在经过散风孔的散风作用,并增加吹向用户的气流,进而提高空调器室内机出风气流的舒适性。而后实时获取所述空调器所处的室内环境的室内温度,以便于根据获取到的室内温度再次调节第一导风板120、第二导风板130以及微孔板140的角度,使得空调器制冷过程中只有凉感,无明显风感,用户感觉更为舒适且不容易患上空调病,进一步提高了空调器室内机出风气流的舒适性。
其中,所述第五预设角度的范围为25°~45°,第四预设角度为0°。
本实施例提出的空调器的控制方法,通过在所述空调器启动制冷模式时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度,在空调器启动时,以尽量使冷风不在经过散风孔的散风作用,并增加吹向用户的气流,进而提高空调器室内机出风气流的舒适性。而后实时获取所述空调器所处的室内环境的室内温度,以便于根据获取到的室内温度再次调节导第一导风板120、第二导风板130以及微孔板140的角度,使得空调器制冷过程中只有凉感,无明显风感,用户感觉更为舒适且不容易患上空调病,进一步提高了空调器室内机出风气流的舒适性。
此外,本申请实施例还提出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可读指令,所述计算机可读指令被处理器执行时实现如下操作:
在所述空调器的运行模式为制冷模式时,实时获取所述空调器所处的室内环境的室内温度;
在当前获取到的所述室内温度处于第一预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第一预设角度;
将所述微孔板的角度调节至第二预设角度,以使所述空调器按照新气流模式运行,通过所述散风孔降低所述风道出风口流出的冷风的流速。
进一步地,所述计算机可读指令被处理器执行时还实现如下操作:
在当前所述室内环境的室内温度处于第二预设温度范围内时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第三预设角度;
其中,所述第二预设温度范围的最大温度小于或等于所述第一预设温度范围的最小温度,所述第三预设角度小于所述第一预设角度。
进一步地,所述计算机可读指令被处理器执行时还实现如下操作:
将所述微孔板的角度调节至第四预设角度,使所述空调器按照天井气流模式运行,以使风道出风口流出的冷风直接吹入所述室内机所处的室内环境中,其中,所述第四预设角度小于所述第二预设角度。
进一步地,所述计算机可读指令被处理器执行时还实现如下操作:
在当前所述室内环境的室内温度大于所述第一预设温度范围的最大温度时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;
将所述微孔板的角度调节至第四预设角度,以使所述空调器按照标准制冷模式运行。
进一步地,所述计算机可读指令被处理器执行时还实现如下操作:
在所述空调器启动制冷模式时,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;
将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
本领域内的技术人员应明白,本申请的实施例可提供为方法、系统、或计算机程序产品。因此,本申请可采用完全硬件实施例、完全软件实施例、或结合软件和硬件方面的实施例的形式。而且,本申请可采用在一个或多个其中包含有计算机可用程序代码的计算机可用存储介质(包括但不限于磁盘存储器、CD-ROM、光学存储器等)上实施的计算机程序产品的形式。
本申请是参照根据本申请实施例的方法、设备(系统)、和计算机程序产品的流程图和/或方框图来描述的。应理解可由计算机程序指令实现流程图和/或方框图中的每一流程和/或方框、以及流程图和/或方框图中的流程和/或方框的结合。可提供这些计算机程序指令到通用计算机、专用计算机、嵌入式处理机或其他可编程数据处理设备的处理器以产生一个机器,使得通过计算机或其他可编程数据处理设备的处理器执行的指令产生用于实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能的装置。
这些计算机程序指令也可存储在能引导计算机或其他可编程数据处理设备以特定方式工作的计算机可读存储器中,使得存储在该计算机可读存储器中的指令产生包括指令装置的制造品,该指令装置实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能。
这些计算机程序指令也可装载到计算机或其他可编程数据处理设备上,使得在计算机或其他可编程设备上执行一系列操作步骤以产生计算机实现的处理,从而在计算机或其他可编程设备上执行的指令提供用于实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能的步骤。
应当注意的是,在权利要求中,不应将位于括号之间的任何参考符号构造成对权利要求的限制。单词“包含”不排除存在未列在权利要求中的部件或步骤。位于部件之前的单词“一”或“一个”不排除存在多个这样的部件。本申请可以借助于包括有若干不同部件的硬件以及借助于适当编程的计算机来实现。在列举了若干装置的单元权利要求中,这些装置中的若干个可以是通过同一个硬件项来具体体现。单词第一、第二、以及第三等的使用不表示任何顺序。可将这些单词解释为名称。
尽管已描述了本申请的优选实施例,但本领域内的技术人员一旦得知了基本创造性概念,则可对这些实施例作出另外的变更和修改。所以,所附权利要求意欲解释为包括优选实施例以及落入本申请范围的所有变更和修改。
显然,本领域的技术人员可以对本申请进行各种改动和变型而不脱离本申请的精神和范围。这样,倘若本申请的这些修改和变型属于本申请权利要求及其等同技术的范围之内,则本申请也意图包含这些改动和变型在内。
Claims (16)
- 一种空调器的控制方法,其中,所述空调器的室内机的风道出风口设有微孔板、第一导风板以及第二导风板,所述微孔板设有多个散风孔;所述空调器的控制方法包括以下步骤:所述空调器的运行模式为制冷模式,实时获取所述空调器所处的室内环境的室内温度;当前获取到的所述室内温度处于第一预设温度范围内,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第一预设角度;以及,将所述微孔板的角度调节至第二预设角度,以使所述空调器按照新气流模式运行,通过所述散风孔降低所述风道出风口流出的冷风的流速。
- 如权利要求1所述的空调器的控制方法,其中,所述将所述微孔板的角度调节至第二预设角度的步骤之后,所述空调器的控制方法还包括:当前所述室内环境的室内温度处于第二预设温度范围内,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第三预设角度;其中,所述第二预设温度范围的最大温度小于或等于所述第一预设温度范围的最小温度,所述第三预设角度小于所述第一预设角度。
- 如权利要求2所述的空调器的控制方法,其中,所述分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第三预设角度的步骤之后,所述空调器的控制方法还包括:将所述微孔板的角度调节至第四预设角度,使所述空调器按照天井气流模式运行,以使风道出风口流出的冷风直接吹入所述室内机所处的室内环境中,其中,所述第四预设角度小于所述第二预设角度。
- 如权利要求3所述的空调器的控制方法,其中,所述第二预设温度至少是20°C且不超过24°C,所述第三预设角度至少是11°且不超过15°,第四预设角度为0°。
- 如权利要求1所述的空调器的控制方法,其中,所述第一预设温度至少是25°C且不超过28°C,所述第一预设角度至少是16°且不超过23°,所述第二预设角度至少是85°~不超过95°。
- 如权利要求1所述的空调器的控制方法,其中,所述将所述微孔板的角度调节至第二预设角度的步骤之后,所述空调器的控制方法还包括:当前所述室内环境的室内温度大于所述第一预设温度范围的最大温度,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;以及,将所述微孔板的角度调节至第四预设角度,以使所述空调器按照标准制冷模式运行。
- 如权利要求1所述的空调器的控制方法,其中,所述第五预设角度至少是25°且不超过45°。
- 如权利要求1所述的空调器的控制方法,其中,所述空调器的运行模式为制冷模式,实时获取所述空调器所处的室内环境的室内温度的步骤还包括:所述空调器启动制冷模式,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;以及,将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
- 如权利要求2所述的空调器的控制方法,其中,所述空调器的运行模式为制冷模式,实时获取所述空调器所处的室内环境的室内温度的步骤还包括:所述空调器启动制冷模式,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;以及,将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
- 如权利要求3所述的空调器的控制方法,其中,所述空调器的运行模式为制冷模式,实时获取所述空调器所处的室内环境的室内温度的步骤还包括:所述空调器启动制冷模式,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;以及,将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
- 如权利要求4所述的空调器的控制方法,其中,所述空调器的运行模式为制冷模式,实时获取所述空调器所处的室内环境的室内温度的步骤还包括:所述空调器启动制冷模式,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;以及,将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
- 如权利要求5所述的空调器的控制方法,其中,所述空调器的运行模式为制冷模式,实时获取所述空调器所处的室内环境的室内温度的步骤还包括:所述空调器启动制冷模式,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;以及,将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
- 如权利要求6所述的空调器的控制方法,其中,所述空调器的运行模式为制冷模式,实时获取所述空调器所处的室内环境的室内温度的步骤还包括:所述空调器启动制冷模式,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;以及,将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
- 如权利要求7所述的空调器的控制方法,其中,所述空调器的运行模式为制冷模式,实时获取所述空调器所处的室内环境的室内温度的步骤还包括:所述空调器启动制冷模式,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第五预设角度,其中,所述第五预设角度大于所述第一预设角度;以及,将所述微孔板的角度调节至第四预设角度,并实时获取所述空调器所处的室内环境的室内温度。
- 一种空调器,其中,所述空调器包括:存储器、处理器及存储在所述存储器上并可在所述处理器上运行的计算机可读指令,所述计算机可读指令被所述处理器执行时,实现如下步骤:所述空调器的运行模式为制冷模式,实时获取所述空调器所处的室内环境的室内温度;当前获取到的所述室内温度处于第一预设温度范围内,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第一预设角度;以及,将所述微孔板的角度调节至第二预设角度,以使所述空调器按照新气流模式运行,通过所述散风孔降低所述风道出风口流出的冷风的流速。
- 一种计算机可读存储介质,其中,所述计算机可读存储介质上存储有计算机可读指令,所述计算机可读指令被处理器执行时,实现如下步骤:所述空调器的运行模式为制冷模式,实时获取所述空调器所处的室内环境的室内温度;当前获取到的所述室内温度处于第一预设温度范围内,分别将所述第一导风板的角度、以及所述第二导风板的角度调节至第一预设角度;以及,将所述微孔板的角度调节至第二预设角度,以使所述空调器按照新气流模式运行,通过所述散风孔降低所述风道出风口流出的冷风的流速。
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| CN106679104A (zh) * | 2017-01-10 | 2017-05-17 | 美的集团股份有限公司 | 空调器风速控制方法、控制器及空调器 |
| CN108088058A (zh) * | 2017-12-11 | 2018-05-29 | 广东美的制冷设备有限公司 | 空调室内机及其控制方法 |
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| CN107726565B (zh) * | 2017-10-19 | 2020-10-20 | 广东美的制冷设备有限公司 | 空调器及其控制方法、控制装置和计算机可读存储介质 |
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| CN106679104A (zh) * | 2017-01-10 | 2017-05-17 | 美的集团股份有限公司 | 空调器风速控制方法、控制器及空调器 |
| CN108088058A (zh) * | 2017-12-11 | 2018-05-29 | 广东美的制冷设备有限公司 | 空调室内机及其控制方法 |
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