WO2018018808A1 - 空调器及其温湿度控制方法 - Google Patents
空调器及其温湿度控制方法 Download PDFInfo
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- WO2018018808A1 WO2018018808A1 PCT/CN2016/107200 CN2016107200W WO2018018808A1 WO 2018018808 A1 WO2018018808 A1 WO 2018018808A1 CN 2016107200 W CN2016107200 W CN 2016107200W WO 2018018808 A1 WO2018018808 A1 WO 2018018808A1
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- Prior art keywords
- air conditioner
- temperature
- current
- indoor
- moisture content
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Classifications
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- 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
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- 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
- F24F2110/20—Humidity
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- 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
- F24F11/0008—Control or safety arrangements for air-humidification
-
- 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
- F24F11/30—Control or safety arrangements for purposes related to the operation of the system, e.g. for safety or monitoring
-
- 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
- F24F11/62—Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
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- 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
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- 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
- F24F11/50—Control or safety arrangements characterised by user interfaces or communication
- F24F11/56—Remote control
Definitions
- the invention relates to the technical field of refrigeration, and in particular to an air conditioner and a temperature and humidity control method thereof.
- the air conditioner In the cooling operation mode, when the indoor temperature reaches the set temperature and the indoor unit load is large, the air conditioner needs a large cooling capacity to cool down and maintain the load. At this time, the air conditioner will maintain a high frequency to meet the demand. If the frequency is kept at a high frequency for a long time, the temperature of the indoor coil is too low and is lower than the dew point temperature of the air, so that the air conditioner is always in a state of cooling and dehumidifying, which may cause the user to use the air conditioner indoors. The air is very dry. Conversely, when the indoor unit load is small, the air conditioner needs less cooling capacity to maintain the load, and the air conditioner will operate at a low frequency.
- the air conditioner is kept at a low frequency for a long time, the temperature of the indoor coil is high, and the air conditioner is always in a state of cooling without dehumidification, which may cause the indoor air to be sultry when the user uses the air conditioner.
- the indoor temperature is constantly rising, but the winter air is relatively dry, resulting in a decrease in user comfort.
- the main object of the present invention is to provide an air conditioner and a temperature and humidity control method thereof, which aim to improve the comfort of a user when using an air conditioner.
- the present invention provides a temperature and humidity control method for an air conditioner, comprising the following steps:
- the air conditioner is controlled to perform humidification processing.
- the method further comprises:
- the humidifier of the air conditioner is controlled to maintain the current operating state.
- the method further comprises:
- the humidifier that controls the air conditioner stops the humidification process.
- the method further comprises:
- the humidifier that controls the air conditioner stops the humidification process.
- the cooling, heating or dehumidifying mode detecting the current indoor ambient temperature, and determining whether the current indoor ambient temperature reaches the indoor target temperature
- the user body surface temperature is used as the current indoor environment temperature to obtain the current moisture content.
- the method further comprises:
- the target moisture content corresponding to the temperature partition is queried according to the temperature.
- the method further comprises:
- a temperature partition corresponding to the geographic location and the indoor set temperature is queried according to the indoor set temperature and geographic location.
- the step of obtaining the current moisture content according to the current indoor ambient temperature and the current indoor air humidity comprises:
- the present invention also provides an air conditioner, the air conditioner comprising:
- a judging module configured to detect a current indoor ambient temperature in a cooling, heating or dehumidifying mode, and determine whether the current indoor ambient temperature reaches an indoor target temperature
- An acquiring module configured to detect a current indoor air humidity when the current indoor ambient temperature reaches the indoor target temperature, and obtain a current moisture content according to the current indoor ambient temperature and the current indoor air humidity;
- a calculation module configured to calculate a difference between a target moisture content of the air conditioner and the current moisture content
- control module configured to control the air conditioner to perform humidification processing if the difference is greater than or equal to a first predetermined value.
- control module is further configured to:
- the humidifier of the air conditioner is controlled to maintain the current operating state.
- control module is further configured to:
- the humidifier that controls the air conditioner stops the humidification process.
- control module is further configured to:
- the humidifier that controls the air conditioner stops the humidification process.
- the obtaining module is further configured to:
- the user body surface temperature is used as the current indoor environment temperature to obtain the current moisture content.
- the air conditioner further comprises:
- the query module is configured to obtain an indoor set temperature of the air conditioner, and query a temperature partition corresponding to the indoor set temperature according to the indoor set temperature;
- the query module is further configured to query a target moisture content corresponding to the temperature partition.
- the air conditioner further includes a query module,
- the obtaining module is configured to acquire an indoor set temperature of the air conditioner and a current geographic location
- the query module is configured to query a temperature partition corresponding to the geographic location and an indoor set temperature according to the indoor set temperature and geographic location.
- the obtaining module is further configured to:
- the temperature and humidity control method and the air conditioner of the air conditioner provided by the present invention detect the current indoor ambient temperature during the cooling, heating or dehumidification mode, and determine whether the current indoor ambient temperature reaches the indoor target temperature, at the current When the indoor ambient temperature reaches the indoor target temperature, detecting the current indoor air humidity, and obtaining the current moisture content according to the current indoor ambient temperature and the current indoor air humidity, and then calculating the target moisture content of the air conditioner and the current content
- the present invention can not only ensure that the indoor ambient temperature reaches a temperature that the user feels comfortable, but also can perform humidification processing when the humidity is too low, thereby improving the comfort of the user when using the air conditioner.
- FIG. 1 is a schematic flow chart of a first embodiment of a method for controlling temperature and humidity of an air conditioner according to the present invention
- FIG. 2 is a schematic flow chart of a second embodiment of a method for controlling temperature and humidity of an air conditioner according to the present invention
- FIG. 3 is a schematic flow chart of a third embodiment of a method for controlling temperature and humidity of an air conditioner according to the present invention.
- FIG. 4 is a schematic flow chart of a fourth embodiment of a method for controlling temperature and humidity of an air conditioner according to the present invention.
- FIG. 5 is a schematic diagram of functional modules of an embodiment of an air conditioner according to the present invention.
- FIG. 6 is a schematic diagram of functional modules of an embodiment of an air conditioner according to the present invention.
- the invention provides an air conditioner and a temperature and humidity control method thereof, which can detect the current indoor environmental temperature when the current indoor ambient temperature reaches the indoor target temperature, and obtain the current moisture content according to the current indoor ambient temperature and the current indoor air humidity, and then The current moisture content is compared with the target moisture content of the air conditioner, and then the humidification, moisturization, or stop humidification is performed according to the comparison result. Therefore, the present invention can not only ensure that the indoor ambient temperature reaches a temperature that the user feels comfortable, but also can perform humidification processing when the humidity is too low, thereby improving the comfort of the user when using the air conditioner.
- the temperature and humidity control method of the air conditioner includes the following steps:
- Step S10 detecting, in a cooling, heating, or dehumidifying mode, a current indoor ambient temperature, and determining whether the current indoor ambient temperature reaches an indoor target temperature;
- Step S20 When the current indoor ambient temperature reaches the indoor target temperature, detecting a current indoor air humidity, and acquiring a current moisture content according to the current indoor ambient temperature and the current indoor air humidity;
- the indoor ambient temperature and the indoor air humidity may be detected by a temperature sensor and a humidity sensor disposed on the indoor unit of the air conditioner, and the current indoor ambient temperature and the current indoor air are detected in real time or periodically after the air conditioner is powered on. Humidity, and obtain the current indoor moisture content based on the detected indoor indoor temperature and the current indoor air humidity.
- the current indoor moisture content can be obtained by calculation formula, or can be obtained according to the mapping relationship between the preset indoor moisture content and the current indoor environmental temperature and the current indoor air humidity, as follows:
- a humidifier is disposed in the air conditioner, and the humidity sensor may be specifically disposed on the humidifier.
- the humidifier can also be an external device that is linked with the air conditioner and is controlled by the air conditioner.
- a smart wearable device such as a smart wristband can be combined to detect the body surface temperature of the user or the air humidity around the user, so as to more accurately control the air conditioner according to the user's body temperature. Running mode. For example, when the user body surface temperature sent by the smart wearable device bound to the air conditioner is received, the current body surface temperature is used as the current indoor environment temperature, and the current moisture content is calculated.
- the smart wearable device can also be replaced with a mobile terminal such as a mobile phone or the like.
- the indoor target temperature may be a comfortable temperature felt by the user of the air conditioning system, which may be set according to the geographical location and the season, and may of course be the temperature set by the user.
- the temperature adjustment since the temperature adjustment is performed before the humidity is adjusted, the user can be assured of a more comfortable temperature and humidity, thereby improving the user experience.
- Step S30 calculating a difference between the target moisture content of the air conditioner and the current moisture content
- Step S40 if the difference is greater than or equal to the first predetermined value, controlling the air conditioner to perform humidification processing.
- the target moisture content is the default of the air conditioning system, that is, the factory setting value. Therefore, the target moisture content can be retrieved, and the difference between the target moisture content ds and the current moisture content d can be calculated, and different control procedures are performed according to different difference values, such as when ds-d ⁇ X1, It indicates that the current moisture content is lower than the target moisture content.
- the humidifier needs to be controlled to perform humidification treatment, and the compressor can be simultaneously controlled to operate according to the set temperature of the air conditioner. In this way, the indoor air humidity can be kept within the comfortable humidity range of the human body, thereby ensuring the user's comfort.
- X1 can be set as needed, for example, X1 can take a value of 1 g/kg, which is not limited.
- the temperature and humidity control method for an air conditioner detects a current indoor ambient temperature when in a cooling, heating or dehumidifying mode, and detects a current indoor air humidity when the current indoor ambient temperature reaches the indoor target temperature. And obtaining a current moisture content according to the current indoor ambient temperature and the current indoor air humidity, and calculating a difference between the target moisture content of the air conditioner and the current moisture content, wherein the difference is greater than or equal to The first predetermined value controls the air conditioner to perform a humidification process.
- the present invention can not only ensure that the indoor ambient temperature reaches a temperature that the user feels comfortable, but also can perform humidification processing when the humidity is too low, thereby improving the comfort of the user when using the air conditioner.
- the method further includes:
- Step S50 if the difference is greater than or equal to the second predetermined value and less than the first predetermined value, controlling the humidifier of the air conditioner to maintain the current running state.
- the second predetermined value is a negative number, and the absolute value may be equal to or different from the first predetermined value. If X2 ⁇ ds-d ⁇ X1, it indicates that the current moisture content is close to the target moisture content. At this time, the air conditioner can be controlled to maintain the current parameter operation to maintain the current indoor moisture content, and the compressor is controlled according to the air conditioner. The set temperature of the device is running.
- the method further includes:
- Step S60 if the difference is less than the second predetermined value, controlling the humidifier of the air conditioner to stop the humidification process.
- the humidifier when ds-d ⁇ X2, it indicates that the current moisture content is greater than the target moisture content, and the humidification process is no longer needed at this time, therefore, the humidifier can be controlled to stop the humidification process, and the compressor is controlled according to the air conditioner.
- the set temperature of the device is running.
- the method further includes:
- Step S70 Acquire an indoor set temperature of the air conditioner, and query a temperature partition corresponding to the indoor set temperature according to the indoor set temperature;
- Step S80 querying a target moisture content corresponding to the temperature partition.
- the indoor setting temperature is the default of the air conditioning system, that is, the factory setting value, and the setting temperatures of different seasons are different, of course, the setting temperatures of different geographical locations are also different, and the following will be set in different seasons.
- the temperature is described as an embodiment:
- the moisture content corresponding to the temperature zone is as follows:
- the temperature zone can be set as follows.
- the corresponding target moisture content It is 7g/kg; 28°C ⁇ 30°C, the corresponding target moisture content is 8g/kg; 26°C ⁇ 28°C, the corresponding target moisture content is 9g/kg; 24°C ⁇ 26°C, the corresponding target is wet.
- the amount is 10g/kg; below 24°C, the corresponding target moisture content is 10g/kg.
- the temperature zone can be set as follows.
- the corresponding target moisture content is 7g / kg; 20 ° C ⁇ 25 ° C or more, the corresponding target moisture content is 8g/kg; above 25°C, the corresponding target moisture content is 9g/kg.
- the set temperature may also be set by the user according to actual needs.
- the user can provide a suitable target moisture content, and thus, the user can provide a more comfortable indoor environment.
- the air conditioner 1 includes:
- the determining module 10 is configured to detect a current indoor ambient temperature in a cooling, heating or dehumidifying mode, and determine whether the current indoor ambient temperature reaches an indoor target temperature;
- the obtaining module 20 is configured to detect a current indoor air humidity when the current indoor ambient temperature reaches the indoor target temperature, and obtain a current moisture content according to the current indoor ambient temperature and the current indoor air humidity;
- the indoor ambient temperature and the indoor air humidity may be detected by a temperature sensor and a humidity sensor disposed on the indoor unit of the air conditioner, and the current indoor ambient temperature and the current indoor air are detected in real time or periodically after the air conditioner is powered on. Humidity, and obtain the current indoor moisture content based on the detected indoor indoor temperature and the current indoor air humidity.
- the current indoor moisture content can be obtained by calculation formula, or can be obtained according to the mapping relationship between the preset indoor moisture content and the current indoor environmental temperature and the current indoor air humidity, as follows:
- a humidifier is disposed in the air conditioner, and the humidity sensor may be specifically disposed on the humidifier.
- the humidifier can also be an external device that is linked with the air conditioner and is controlled by the air conditioner.
- a smart wearable device such as a smart wristband can be combined to detect the body surface temperature of the user or the air humidity around the user, so as to more accurately control the air conditioner according to the user's body temperature. Running mode. For example, when the user body surface temperature sent by the smart wearable device bound to the air conditioner is received, the current body surface temperature is used as the current indoor environment temperature, and the current moisture content is calculated.
- the smart wearable device can also be replaced with a mobile terminal such as a mobile phone or the like.
- the indoor target temperature may be a comfortable temperature felt by the user of the air conditioning system, which may be set according to the geographical location and the season, and may of course be the temperature set by the user.
- the temperature adjustment since the temperature adjustment is performed before the humidity is adjusted, the user can be assured of a more comfortable temperature and humidity, thereby improving the user experience.
- a calculating module 30 configured to calculate a difference between a target moisture content of the air conditioner and the current moisture content
- the control module 40 is configured to control the humidifier of the air conditioner to perform humidification processing if the difference is greater than or equal to a first predetermined value.
- the target moisture content is the default of the air conditioning system, that is, the factory setting value. Therefore, the target moisture content can be retrieved, and the difference between the target moisture content ds and the current moisture content d can be calculated, and different control procedures are performed according to different difference values, such as when ds-d ⁇ X1, It indicates that the current moisture content is lower than the target moisture content.
- the humidifier needs to be controlled to perform humidification treatment, and the compressor can be simultaneously controlled to operate according to the set temperature of the air conditioner. In this way, the indoor air humidity can be kept within the comfortable humidity range of the human body, thereby ensuring the user's comfort.
- X1 can be set as needed, for example, X1 can take a value of 1 g/kg, which is not limited.
- the air conditioner provided by the invention detects the current indoor ambient temperature when in the cooling, heating or dehumidifying mode, and detects the current indoor air humidity when the current indoor ambient temperature reaches the indoor target temperature, and according to the current indoor environment Obtaining a current moisture content from the temperature and the current indoor air humidity, and calculating a difference between the target moisture content of the air conditioner and the current moisture content, wherein, if the difference is greater than or equal to the first predetermined value, Then, the air conditioner is controlled to perform humidification processing.
- the present invention can not only ensure that the indoor ambient temperature reaches a temperature that the user feels comfortable, but also can perform humidification processing when the humidity is too low, thereby improving the comfort of the user when using the air conditioner.
- control module 40 is further configured to:
- the humidifier of the air conditioner is controlled to maintain the current operating state.
- the second predetermined value is a negative number, and the absolute value may be equal to or different from the first predetermined value. If X2 ⁇ ds-d ⁇ X1, it indicates that the current moisture content is close to the target moisture content. At this time, the air conditioner can be controlled to maintain the current parameter operation to maintain the current indoor moisture content, and the compressor is controlled according to the air conditioner. Set the temperature to run.
- control module 40 is further configured to:
- the humidifier that controls the air conditioner stops the humidification process.
- the humidifier when ds-d ⁇ X2, it indicates that the current moisture content is greater than the target moisture content, and the humidification process is no longer needed at this time, therefore, the humidifier can be controlled to stop the humidification process, and the compressor is controlled according to the air conditioner.
- the set temperature of the device is running.
- the air conditioner further includes:
- the query module 50 is configured to acquire an indoor set temperature of the air conditioner, and query a temperature partition corresponding to the indoor set temperature according to the indoor set temperature;
- the query module 50 is further configured to query a target moisture content corresponding to the temperature partition.
- the indoor setting temperature is the default of the air conditioning system, that is, the factory setting value, and the setting temperatures of different seasons are different, of course, the setting temperatures of different geographical locations are also different, and the following will be set in different seasons.
- the temperature is described as an embodiment:
- the moisture content corresponding to the temperature zone is as follows:
- the temperature zone can be set as follows.
- the corresponding target moisture content It is 7g/kg; 28°C ⁇ 30°C, the corresponding target moisture content is 8g/kg; 26°C ⁇ 28°C, the corresponding target moisture content is 9g/kg; 24°C ⁇ 26°C, the corresponding target is wet.
- the amount is 10g/kg; below 24°C, the corresponding target moisture content is 10g/kg.
- the temperature zone can be set as follows.
- the corresponding target moisture content is 7g / kg; 20 ° C ⁇ 25 ° C or more, the corresponding target moisture content is 8g/kg; above 25°C, the corresponding target moisture content is 9g/kg.
- the set temperature may also be set by the user according to actual needs.
- the user can provide a suitable target moisture content, and thus, the user can provide a more comfortable indoor environment.
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Abstract
一种空调器的温湿度控制方法,包括以下步骤:在制冷、制热或除湿模式时,检测当前室内环境温度,并判断当前室内环境温度是否达到室内目标温度(S10);在当前室内环境温度达到室内目标温度时,检测当前室内空气湿度,并根据当前室内环境温度和当前室内空气湿度获取当前含湿量(S20);计算空调器的目标含湿量与当前含湿量与之间的差值(S30);若差值大于或等于第一预定值,则控制空调器进行加湿处理(S40)。还公开了一种空调器。
Description
技术领域
本发明涉及制冷技术领域,尤其涉及一种空调器及其温湿度控制方法。
背景技术
在制冷运行模式,当室内温度达到设定温度之前以及室内机负荷较大时,空调器降温及维持负荷需要较大的制冷量,此时空调器将保持较高的频率才能满足需求。而若长时间保持较高的频率运行,会造成室内盘管的温度过低,并低于空气的露点温度,从而造成空调器一直处于制冷除湿的状态,则会导致用户在使用空调器时室内空气非常干燥。反之,在室内机负荷较小时,空调器维持负荷需要的制冷量较小,此时空调器将低频率运行。而若空调器长时间保持低频率运行,则会造成室内盘管的温度较高,从而空调器一直处于制冷不除湿的状态,则会导致用户在使用空调器时室内空气比较闷热。
在制热运行模式,由于室内温度不断升高,但冬季空气比较干燥,导致用户舒适度下降。
发明内容
本发明的主要目的在于提供一种空调器及其温湿度控制方法,旨在改善用户在使用空调器时的舒适度。
为实现上述目的,本发明提供一种空调器的温湿度控制方法,包括以下步骤:
在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度;
在所述当前室内环境温度达到所述室内目标温度时,检测当前室内空气湿度,并根据所述当前室内环境温度和当前室内空气湿度获取当前含湿量;
计算空调器的目标含湿量与所述当前含湿量与之间的差值;
若所述差值大于或等于第一预定值,则控制所述空调器进行加湿处理。
优选地,所述计算空调器的目标含湿量与所述当前含湿量与之间的差值的步骤之后还包括:
若所述差值大于或等于第二预定值,且小于所述第一预定值,则控制所述空调器的加湿器保持当前运行状态。
优选地,所述计算空调器的目标含湿量与所述当前含湿量与之间的差值的步骤之后还包括:
若所述差值小于第二预定值,则控制所述空调器的加湿器停止加湿处理。
优选地,所述计算空调器的目标含湿量与所述当前含湿量与之间的差值的步骤之后还包括:
若所述差值小于第二预定值,则控制所述空调器的加湿器停止加湿处理。
优选地,所述在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度的步骤中,
当接收到与所述空调器绑定的智能穿戴设备发送的用户体表温度时,将所述用户体表温度作为当前室内环境温度,以获取当前含湿量。
优选地,所述在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度的步骤之后还包括:
获取空调器的室内设定温度,根据所述室内设定温度查询所述室内设定温度对应的温度分区;
根据所述温度分区查询对应的目标含湿量。
优选地,所述在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度的步骤之后还包括:
获取空调器的室内设定温度,以及当前所处的地理位置;
根据所述室内设定温度和地理位置,查询与所述地理位置以及室内设定温度对应的温度分区。
优选地,所述根据所述当前室内环境温度和当前室内空气湿度获取当前含湿量的步骤包括:
查询预设室内含湿量与当前室内环境温度、当前室内空气湿度的映射关系表,获得当前含湿量。
为实现上述目的,本发明还提供一种空调器,所述空调器包括:
判断模块,用于在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度;
获取模块,用于在所述当前室内环境温度达到所述室内目标温度时,检测当前室内空气湿度,并根据所述当前室内环境温度和当前室内空气湿度获取当前含湿量;
计算模块,用于计算空调器的目标含湿量与所述当前含湿量与之间的差值;
控制模块,用于若所述差值大于或等于第一预定值,则控制所述空调器进行加湿处理。
优选地,所述控制模块,还用于:
若所述差值大于或等于第二预定值,且小于所述第一预定值,则控制所述空调器的加湿器保持当前运行状态。
优选地,所述控制模块,还用于:
若所述差值小于第二预定值,则控制所述空调器的加湿器停止加湿处理。
优选地,所述控制模块,还用于:
若所述差值小于第二预定值,则控制所述空调器的加湿器停止加湿处理。
优选地,所述获取模块,还用于:
当接收到与所述空调器绑定的智能穿戴设备发送的用户体表温度时,将所述用户体表温度作为当前室内环境温度,以获取当前含湿量。
优选地,所述空调器还包括:
查询模块,用于获取空调器的室内设定温度,根据所述室内设定温度查询所述室内设定温度对应的温度分区;
所述查询模块,还用于根据所述温度分区查询对应的目标含湿量。
优选地,所述空调器还包括查询模块,
所述获取模块,用于获取空调器的室内设定温度,以及当前所处的地理位置;
所述查询模块,用于根据所述室内设定温度和地理位置,查询与所述地理位置以及室内设定温度对应的温度分区。
优选地,所述获取模块进一步用于:
查询预设室内含湿量与当前室内环境温度、当前室内空气湿度的映射关系表,获得当前含湿量。
本发明提供的空调器的温湿度控制方法及空调器,通过在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度,在所述当前室内环境温度达到所述室内目标温度时,检测当前室内空气湿度,并根据所述当前室内环境温度和当前室内空气湿度获取当前含湿量,再计算空调器的目标含湿量与所述当前含湿量与之间的差值,其中,若所述差值大于或等于第一预定值,则控制所述空调器进行加湿处理。这样,本发明不仅可以保证室内环境温度达到用户感觉舒适的温度,还可以在湿度过低时,对应进行加湿处理,从而可以提高用户在使用空调器时的舒适度。
附图说明
图1为本发明空调器的温湿度控制方法第一实施例的流程示意图;
图2为本发明空调器的温湿度控制方法第二实施例的流程示意图;
图3为本发明空调器的温湿度控制方法第三实施例的流程示意图;
图4为本发明空调器的温湿度控制方法第四实施例的流程示意图;
图5为本发明空调器一实施例的功能模块示意图;
图6为本发明空调器二实施例的功能模块示意图。
本发明目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
具体实施方式
应当理解,此处所描述的具体实施例仅仅用以解释本发明,并不用于限定本发明。
本发明提供一种空调器及其温湿度控制方法,通过在当前室内环境温度达到室内目标温度时,检测当前室内环境温度,并根据当前室内环境温度和当前室内空气湿度获取当前含湿量,再将当前含湿量与空调器的目标含湿量进行比较,然后根据比较结果对应执行加湿、保湿或停止加湿等操作。因此,本发明不仅可以保证室内环境温度达到用户感觉舒适的温度,还可以在湿度过低时,对应进行加湿处理,从而可以提高用户在使用空调器时的舒适度。
参照图1,在一实施例中,所述空调器的温湿度控制方法包括以下步骤:
步骤S10,在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度;
步骤S20,在所述当前室内环境温度达到所述室内目标温度时,检测当前室内空气湿度,并根据所述当前室内环境温度和当前室内空气湿度获取当前含湿量;
本实施例中,室内环境温度和室内空气湿度,可以由设置在空调器室内机上的温度传感器和湿度传感器进行检测,在空调器上电启动后,实时或定时检测当前室内环境温度和当前室内空气湿度,并根据检测的当前室内环境温度和当前室内空气湿度,获取当前室内含湿量。该当前室内含湿量的获取可以通过计算公式计算获得,也可以根据查询预设室内含湿量与当前室内环境温度、当前室内空气湿度的映射关系表获得,具体如下:
1、根据温度传感器检测的室内环境温度t、湿度传感器检测的室内空气湿度(相对湿度)Φ,计算空气含湿量d,其对应关系可为:当室内环境温度一定时,相对湿度越大,则空气含湿量越大;当相对湿度一定时,室内环境温度越高,则空气含湿量越小。具体计算公式为本领域常用的含湿量计算公式,具体不作赘述。
2、室内环境温度t、室内空气湿度Φ及空气含湿量d之间的映射关系如下表一:
| 室内空气含湿量(g/kg) | 室内环境温度(℃) | |||||
| t1 | t2 | t3 | … | tn | ||
| 室内空气湿度(%rh) | Φ1 | d11 | d12 | d13 | … | d1n |
| Φ2 | d21 | d22 | d23 | … | d2n | |
| Φ3 | d31 | d32 | d33 | … | d3n | |
| … | … | … | … | … | … | |
| Φn | dn1 | dn2 | dn3 | … | dnn | |
表一
本优选实施例中,空调器内设置有加湿器,所述湿度传感器具体可以设置于所述加湿器上。可以理解的是,所述加湿器还可为与空调器联动的外接装置,并由空调器控制工作。进一步地,可以理解的是,为提高用户体验,还可以结合智能穿戴设备如智能手环来检测用户的体表温度或用户周边的空气湿度,以更精确地根据用户的体感温度来控制空调器的运行模式。如:当接收到与所述空调器绑定的智能穿戴设备发送的用户体表温度时,将所述用户体表温度作为当前室内环境温度,计算当前含湿量。当然,所述智能穿戴设备还可以替换为移动终端如手机等。
此外,本实施例中,室内目标温度可以为空调系统出厂设置的用户感觉的舒适温度,具体可以根据地理位置和季节合理设置,当然也可以为用户设定的温度。本优选实施例中,由于在调节湿度之前进行温度调节,可以保证用户处于较舒适的温度和湿度,从而可以提高用户体验。
步骤S30,计算空调器的目标含湿量与所述当前含湿量与之间的差值;
步骤S40,若所述差值大于或等于第一预定值,则控制所述空调器进行加湿处理。
本实施例中,目标含湿量为空调系统默认,也即为出厂设置值。因此,可以调取目标含湿量,并计算目标含湿量ds与当前含湿量d之间的差值,根据不同所述差值执行不同的控制程序,如当ds-d≥X1时,则表明当前含湿量低于目标含湿量,此时需要控制加湿器进行加湿处理,并可以同时控制压缩机按照所述空调器的设定温度运行。这样,可以使室内空气湿度一直处于人体舒适湿度范围内,从而保证用户的舒适性。
可以理解的是,其中,X1可以根据需要合理设置,如X1可以取值1g/kg,具体不作限定。
本发明提供的空调器的温湿度控制方法,通过在制冷、制热或除湿模式时,检测当前室内环境温度,在所述当前室内环境温度达到所述室内目标温度时,检测当前室内空气湿度,并根据当前室内环境温度和当前室内空气湿度获取当前含湿量,再计算空调器的目标含湿量与所述当前含湿量与之间的差值,其中,若所述差值大于或等于第一预定值,则控制所述空调器进行加湿处理。这样,本发明不仅可以保证室内环境温度达到用户感觉舒适的温度,还可以在湿度过低时,对应进行加湿处理,从而可以提高用户在使用空调器时的舒适度。
在一实施例中,如图2所示,在上述图1所示的基础上,所述步骤S30之后还包括:
步骤S50,若所述差值大于或等于第二预定值,且小于所述第一预定值,则控制所述空调器的加湿器保持当前运行状态。
本实施例中,第二预定值为负数,其绝对值大小可与第一预定值的大小相等或不等。若X2≤ds-d<X1,则表明当前含湿量与目标含湿量比较接近,此时可以控制空调器维持当前参数运行,以维持当前室内含湿量,同时控制压缩机按照所述空调器的设定温度运行。
在一实施例中,如图3所示,在上述图1或图2所示的基础上,所述步骤S30之后还包括:
步骤S60,若所述差值小于第二预定值,则控制所述空调器的加湿器停止加湿处理。
本实施例中,当ds-d<X2时,表明当前含湿量大于目标含湿量,此时不再需要加湿处理,因此,可以控制加湿器停止加湿处理,同时控制压缩机按照所述空调器的设定温度运行。
在一实施例中,如图4所示,在上述图1、图2或图3所示的基础上,所述步骤S10之后还包括:
步骤S70,获取空调器的室内设定温度,根据所述室内设定温度查询所述室内设定温度对应的温度分区;
步骤S80,根据所述温度分区查询对应的目标含湿量。
本实施例中,所述室内设定温度为空调系统默认,也即为出厂设置值,不同季节的设定温度不同,当然不同地理位置的设定温度也不同,以下将以不同季节的设定温度为一实施例进行说明:
温度分区对应的含湿量如下:
在夏季制冷模式时,温度分区可如下设置,
30℃以上,对应的目标含湿量
为7g/kg;28℃~30℃,对应的目标含湿量为8g/kg;26℃~28℃,对应的目标含湿量为9g/kg;24℃~26℃,对应的目标含湿量为10g/kg;24℃以下,对应的目标含湿量为10g/kg。
在冬季制热模式时,温度分区可如下设置,
18℃~20℃以上,对应的目标含湿量为 7g/kg;20℃~25℃以上,对应的 目标含湿量为
8g/kg;25℃以上,对应的目标含湿量为9g/kg。
可以理解的是,在其他实施例中,所述设定温度还可以是用户根据自身实际需要设置的。
本实施例通过温度分区的设置,可以为用户提供合适的目标含湿量,如此,可为用户提供更加舒适的室内环境。
本发明还提供一种空调器1,参照图5,在一实施例中,所述空调器1包括:
判断模块10,用于在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度;
获取模块20,用于在所述当前室内环境温度达到所述室内目标温度时,检测当前室内空气湿度,并根据所述当前室内环境温度和当前室内空气湿度获取当前含湿量;
本实施例中,室内环境温度和室内空气湿度,可以由设置在空调器室内机上的温度传感器和湿度传感器进行检测,在空调器上电启动后,实时或定时检测当前室内环境温度和当前室内空气湿度,并根据检测的当前室内环境温度和当前室内空气湿度,获取当前室内含湿量。该当前室内含湿量的获取可以通过计算公式计算获得,也可以根据查询预设室内含湿量与当前室内环境温度、当前室内空气湿度的映射关系表获得,具体如下:
1、根据温度传感器检测的室内环境温度t、湿度传感器检测的室内空气湿度(相对湿度)Φ,计算空气含湿量d,其对应关系可为:当室内环境温度一定时,相对湿度越大,则空气含湿量越大;当相对湿度一定时,室内环境温度越高,则空气含湿量越小。具体计算公式为本领域常用的含湿量计算公式,具体不作赘述。
2、室内环境温度t、室内空气湿度Φ及空气含湿量d之间的映射关系如下表一:
| 室内空气含湿量(g/kg) | 室内环境温度(℃) | |||||
| t1 | t2 | t3 | … | tn | ||
| 室内空气湿度(%rh) | Φ1 | d11 | d12 | d13 | … | d1n |
| Φ2 | d21 | d22 | d23 | … | d2n | |
| Φ3 | d31 | d32 | d33 | … | d3n | |
| … | … | … | … | … | … | |
| Φn | dn1 | dn2 | dn3 | … | dnn | |
表一
本优选实施例中,所述空调器内设置有加湿器,所述湿度传感器具体可以设置于所述加湿器上。可以理解的是,所述加湿器还可为与空调器联动的外接装置,并由空调器控制工作。进一步地,可以理解的是,为提高用户体验,还可以结合智能穿戴设备如智能手环来检测用户的体表温度或用户周边的空气湿度,以更精确地根据用户的体感温度来控制空调器的运行模式。如:当接收到与所述空调器绑定的智能穿戴设备发送的用户体表温度时,将所述用户体表温度作为当前室内环境温度,计算当前含湿量。当然,所述智能穿戴设备还可以替换为移动终端如手机等。
此外,本实施例中,室内目标温度可以为空调系统出厂设置的用户感觉的舒适温度,具体可以根据地理位置和季节合理设置,当然也可以为用户设定的温度。本优选实施例中,由于在调节湿度之前进行温度调节,可以保证用户处于较舒适的温度和湿度,从而可以提高用户体验。
计算模块30,用于计算空调器的目标含湿量与所述当前含湿量与之间的差值;
控制模块40,用于若所述差值大于或等于第一预定值,则控制所述空调器的加湿器进行加湿处理。
本实施例中,目标含湿量为空调系统默认,也即为出厂设置值。因此,可以调取目标含湿量,并计算目标含湿量ds与当前含湿量d之间的差值,根据不同所述差值执行不同的控制程序,如当ds-d≥X1时,则表明当前含湿量低于目标含湿量,此时需要控制加湿器进行加湿处理,并可以同时控制压缩机按照所述空调器的设定温度运行。这样,可以使室内空气湿度一直处于人体舒适湿度范围内,从而保证用户的舒适性。
可以理解的是,其中,X1可以根据需要合理设置,如X1可以取值1g/kg,具体不作限定。
本发明提供的空调器,通过在制冷、制热或除湿模式时,检测当前室内环境温度,在所述当前室内环境温度达到所述室内目标温度时,检测当前室内空气湿度,并根据当前室内环境温度和当前室内空气湿度获取当前含湿量,再计算空调器的目标含湿量与所述当前含湿量与之间的差值,其中,若所述差值大于或等于第一预定值,则控制所述空调器进行加湿处理。这样,本发明不仅可以保证室内环境温度达到用户感觉舒适的温度,还可以在湿度过低时,对应进行加湿处理,从而可以提高用户在使用空调器时的舒适度。
在一实施例中,在上述图5所示的基础上,所述控制模块40,还用于:
若所述差值大于或等于第二预定值,且小于所述第一预定值,则控制所述空调器的加湿器保持当前运行状态。
本实施例中,第二预定值为负数,其绝对值大小可与第一预定值的大小相等或不等。若X2≤ds-d<X1,表明当前含湿量与目标含湿量比较接近,此时可以控制空调器维持当前参数运行,以维持当前室内含湿量,同时控制压缩机按照所述空调器的设定温度运行。
在一实施例中,在上述图5所示的基础上,所述控制模块40,还用于:
若所述差值小于第二预定值,则控制所述空调器的加湿器停止加湿处理。
本实施例中,当ds-d<X2时,表明当前含湿量大于目标含湿量,此时不再需要加湿处理,因此,可以控制加湿器停止加湿处理,同时控制压缩机按照所述空调器的设定温度运行。
在一实施例中,参照图6,在上述图5所示的基础上,所述空调器还包括:
查询模块50,用于获取空调器的室内设定温度,根据所述室内设定温度查询所述室内设定温度对应的温度分区;
所述查询模块50,还用于根据所述温度分区查询对应的目标含湿量。
本实施例中,所述室内设定温度为空调系统默认,也即为出厂设置值,不同季节的设定温度不同,当然不同地理位置的设定温度也不同,以下将以不同季节的设定温度为一实施例进行说明:
温度分区对应的含湿量如下:
在夏季制冷模式时,温度分区可如下设置,
30℃以上,对应的目标含湿量
为7g/kg;28℃~30℃,对应的目标含湿量为8g/kg;26℃~28℃,对应的目标含湿量为9g/kg;24℃~26℃,对应的目标含湿量为10g/kg;24℃以下,对应的目标含湿量为10g/kg。
在冬季制热模式时,温度分区可如下设置,
18℃~20℃以上,对应的目标含湿量为 7g/kg;20℃~25℃以上,对应的 目标含湿量为
8g/kg;25℃以上,对应的目标含湿量为9g/kg。
可以理解的是,在其他实施例中,所述设定温度还可以是用户根据自身实际需要设置的。
本实施例通过温度分区的设置,可以为用户提供合适的目标含湿量,如此,可为用户提供更加舒适的室内环境。
以上仅为本发明的优选实施例,并非因此限制本发明的专利范围,凡是利用本发明说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本发明的专利保护范围内。
Claims (16)
- 一种空调器的温湿度控制方法,其特征在于,所述空调器的温湿度控制方法包括以下步骤:在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度;在所述当前室内环境温度达到所述室内目标温度时,检测当前室内空气湿度,并根据所述当前室内环境温度和当前室内空气湿度获取当前含湿量;计算空调器的目标含湿量与所述当前含湿量与之间的差值;若所述差值大于或等于第一预定值,则控制所述空调器进行加湿处理。
- 如权利要求1所述的空调器的温湿度控制方法,其特征在于,所述计算空调器的目标含湿量与所述当前含湿量与之间的差值的步骤之后还包括:若所述差值大于或等于第二预定值,且小于所述第一预定值,则控制所述空调器的加湿器保持当前运行状态。
- 如权利要求2所述的空调器的温湿度控制方法,其特征在于,所述计算空调器的目标含湿量与所述当前含湿量与之间的差值的步骤之后还包括:若所述差值小于第二预定值,则控制所述空调器的加湿器停止加湿处理。
- 如权利要求1所述的空调器的温湿度控制方法,其特征在于,所述计算空调器的目标含湿量与所述当前含湿量与之间的差值的步骤之后还包括:若所述差值小于第二预定值,则控制所述空调器的加湿器停止加湿处理。
- 如权利要求1所述的空调器的温湿度控制方法,其特征在于,所述在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度的步骤中,当接收到与所述空调器绑定的智能穿戴设备发送的用户体表温度时,将所述用户体表温度作为当前室内环境温度,以获取当前含湿量。
- 如权利要求5所述的空调器的温湿度控制方法,其特征在于,所述在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度的步骤之后还包括:获取空调器的室内设定温度,根据所述室内设定温度查询所述室内设定温度对应的温度分区;根据所述温度分区查询对应的目标含湿量。
- 如权利要求5所述的空调器的温湿度控制方法,其特征在于,所述在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度的步骤之后还包括:获取空调器的室内设定温度,以及当前所处的地理位置;根据所述室内设定温度和地理位置,查询与所述地理位置以及室内设定温度对应的温度分区。
- 如权利要求1所述的空调器的温湿度控制方法,其特征在于,所述根据所述当前室内环境温度和当前室内空气湿度获取当前含湿量的步骤包括:查询预设室内含湿量与当前室内环境温度、当前室内空气湿度的映射关系表,获得当前含湿量。
- 一种空调器,其特征在于,所述空调器包括:判断模块,用于在制冷、制热或除湿模式时,检测当前室内环境温度,并判断所述当前室内环境温度是否达到室内目标温度;获取模块,用于在所述当前室内环境温度达到所述室内目标温度时,检测当前室内空气湿度,并根据所述当前室内环境温度和当前室内空气湿度获取当前含湿量;计算模块,用于计算空调器的目标含湿量与所述当前含湿量与之间的差值;控制模块,用于若所述差值大于或等于第一预定值,则控制所述空调器进行加湿处理。
- 如权利要求9所述的空调器,其特征在于,所述控制模块,还用于:若所述差值大于或等于第二预定值,且小于所述第一预定值,则控制所述空调器的加湿器保持当前运行状态。
- 如权利要求10所述的空调器,其特征在于,所述控制模块,还用于:若所述差值小于第二预定值,则控制所述空调器的加湿器停止加湿处理。
- 如权利要求9所述的空调器,其特征在于,所述控制模块,还用于:若所述差值小于第二预定值,则控制所述空调器的加湿器停止加湿处理。
- 如权利要求9所述的空调器,其特征在于,所述获取模块,还用于:当接收到与所述空调器绑定的智能穿戴设备发送的用户体表温度时,将所述用户体表温度作为当前室内环境温度,以获取当前含湿量。
- 如权利要求13所述的空调器,其特征在于,所述空调器还包括:查询模块,用于获取空调器的室内设定温度,根据所述室内设定温度查询所述室内设定温度对应的温度分区;所述查询模块,还用于根据所述温度分区查询对应的目标含湿量。
- 如权利要求13所述的空调器,其特征在于,所述空调器还包括查询模块,所述获取模块,用于获取空调器的室内设定温度,以及当前所处的地理位置;所述查询模块,用于根据所述室内设定温度和地理位置,查询与所述地理位置以及室内设定温度对应的温度分区。
- 如权利要求9所述的空调器,其特征在于,所述获取模块进一步用于:查询预设室内含湿量与当前室内环境温度、当前室内空气湿度的映射关系表,获得当前含湿量。
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