WO2021212821A1 - 一种空调控制方法及系统 - Google Patents

一种空调控制方法及系统 Download PDF

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Publication number
WO2021212821A1
WO2021212821A1 PCT/CN2020/130563 CN2020130563W WO2021212821A1 WO 2021212821 A1 WO2021212821 A1 WO 2021212821A1 CN 2020130563 W CN2020130563 W CN 2020130563W WO 2021212821 A1 WO2021212821 A1 WO 2021212821A1
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Prior art keywords
sleep
user
pressure value
air conditioner
moment
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PCT/CN2020/130563
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English (en)
French (fr)
Inventor
李文博
陈会敏
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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 WO2021212821A1 publication Critical patent/WO2021212821A1/zh

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • F24F11/65Electronic processing for selecting an operating mode
    • F24F11/66Sleep mode
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/50Control or safety arrangements characterised by user interfaces or communication
    • F24F11/61Control or safety arrangements characterised by user interfaces or communication using timers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control 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
    • F24F11/74Control systems characterised by their outputs; Constructional details thereof for controlling the supply of treated air, e.g. its pressure for controlling air flow rate or air velocity
    • F24F11/77Control systems characterised by their outputs; Constructional details thereof for controlling the supply of treated air, e.g. its pressure for controlling air flow rate or air velocity by controlling the speed of ventilators
    • 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
    • F24F11/80Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air
    • F24F11/86Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air by controlling compressors within refrigeration or heat pump circuits
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2120/00Control inputs relating to users or occupants
    • F24F2120/10Occupancy
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B30/00Energy efficient heating, ventilation or air conditioning [HVAC]
    • Y02B30/70Efficient control or regulation technologies, e.g. for control of refrigerant flow, motor or heating

Definitions

  • the present invention relates to the technical field of air conditioners, in particular to an air conditioner control method and system.
  • the present invention provides an air conditioner control method, which can flexibly adjust the air conditioner control logic and dynamically control the working temperature of the air conditioner by detecting that the user's sleep interruption is detected, thereby further improving the user's comfort.
  • the present invention provides an air-conditioning control method, the method includes:
  • the sleep interruption control logic is used to dynamically control the working temperature of the air conditioner.
  • the obtaining the pressure value detected by the pressure sensor located on the bed body includes:
  • the pressure value detected by the pressure sensor located on the bed is obtained wirelessly.
  • the judging whether the user is interrupted in sleep based on the acquired pressure value detected by the pressure sensor includes:
  • the air conditioner When the air conditioner is in sleep mode, it is determined whether the second difference between the second instantaneous pressure value detected by the pressure sensor at the second moment and the initial pressure value detected by the pressure sensor at the first moment is greater than or equal to the preset value. Set a pressure value, and whether the time difference between the second moment and the first moment is less than or equal to a second preset duration, if so, it is determined that the user's sleep is interrupted.
  • adopting sleep interruption control logic to dynamically control the working temperature of the air conditioner includes:
  • the compressor power of the air conditioner is controlled to increase and the fan speed increases, so that the temperature will be increased to the first of the sleep mode at the third moment after the user's sleep interruption. set temperature;
  • the power of the air conditioner compressor is controlled to decrease and the fan speed is reduced, so that the temperature is reduced to the second set temperature of the sleep mode at the fourth moment after the sleep interruption of the user; Wherein, the second set temperature is lower than the second set temperature.
  • adopting sleep interruption control logic to dynamically control the working temperature of the air conditioner includes:
  • the power of the air conditioner compressor is controlled to increase and the fan speed increases, so that the temperature is reduced to the third setting of the sleep mode at the fifth moment after the user's sleep interruption temperature;
  • the power of the air conditioner compressor is controlled to decrease and the fan speed is reduced, so that the temperature is raised to the fourth set temperature of the sleep mode at the sixth moment after the sleep interruption of the user ;
  • the fourth set temperature is higher than the third set temperature.
  • An air conditioning control system including:
  • the acquisition module is used to acquire the pressure value detected by the pressure sensor on the bed
  • the judgment module is used for judging whether the user has interrupted sleep based on the pressure value detected by the acquired pressure sensor;
  • the control module is used to dynamically control the working temperature of the air conditioner by adopting the sleep interruption control logic when the user's sleep is interrupted.
  • the acquisition module is specifically used for:
  • the pressure value detected by the pressure sensor located on the bed is obtained wirelessly.
  • the judgment module is specifically used for:
  • the air conditioner When the air conditioner is in sleep mode, it is determined whether the second difference between the second instantaneous pressure value detected by the pressure sensor at the second moment and the initial pressure value detected by the pressure sensor at the first moment is greater than or equal to the preset value. Set a pressure value, and whether the time difference between the second moment and the first moment is less than or equal to a second preset duration, if so, it is determined that the user's sleep is interrupted.
  • control module is specifically used for:
  • the compressor power of the air conditioner is controlled to increase and the fan speed increases, so that the temperature will be increased to the first of the sleep mode at the third moment after the user's sleep interruption. set temperature;
  • the power of the air conditioner compressor is controlled to decrease and the fan speed is reduced, so that the temperature is reduced to the second set temperature of the sleep mode at the fourth moment after the sleep interruption of the user; Wherein, the second set temperature is lower than the second set temperature.
  • control module is specifically used for:
  • the power of the air conditioner compressor is controlled to increase and the fan speed increases, so that the temperature is reduced to the third setting of the sleep mode at the fifth moment after the user's sleep interruption temperature;
  • the power of the air conditioner compressor is controlled to decrease and the fan speed is reduced, so that the temperature is raised to the fourth set temperature of the sleep mode at the sixth moment after the sleep interruption of the user ;
  • the fourth set temperature is higher than the third set temperature.
  • the present invention discloses an air conditioner control method. Firstly, the pressure value detected by the pressure sensor located on the bed is acquired, and then based on the pressure value detected by the acquired pressure sensor, it is determined whether the user sleeps interrupted. When sleep is interrupted, sleep interruption control logic is used to dynamically control the working temperature of the air conditioner. The present invention can detect whether the user's sleep is interrupted. When the user's sleep is interrupted, the sleep interruption control logic can be used to flexibly control the temperature of the air conditioner. Compared with the existing fixed sleep control mode, the comfort of the user is further improved.
  • Fig. 1 is a method flowchart of Embodiment 1 of an air-conditioning control method disclosed in the present invention
  • Embodiment 2 is a method flowchart of Embodiment 2 of an air-conditioning control method disclosed in the present invention
  • Embodiment 3 is a method flowchart of Embodiment 3 of an air conditioning control method disclosed in the present invention
  • Embodiment 1 of an air-conditioning control system disclosed in the present invention
  • Embodiment 2 is a schematic structural diagram of Embodiment 2 of an air-conditioning control system disclosed in the present invention.
  • Embodiment 3 is a schematic structural diagram of Embodiment 3 of an air-conditioning control system disclosed in the present invention.
  • Fig. 7 is a schematic diagram of a user when sleeping according to the present invention.
  • Fig. 8 is a schematic diagram of a user when he wakes up at night according to the present invention.
  • Embodiment 1 of an air conditioning control method disclosed in the present invention is a method flowchart of Embodiment 1 of an air conditioning control method disclosed in the present invention.
  • the method may include the following steps:
  • the pressure value generated by the bed is detected by the pressure sensor set on the bed.
  • the pressure sensor when the user sleeps, the pressure sensor is used to detect the pressure value generated by the user’s bed when the user sleeps; as shown in Figure 8, when the user wakes up from sleep, the pressure sensor detects the user’s bed when the user wakes up. The resulting pressure value.
  • the air conditioner obtains the pressure value detected by the sensor.
  • the air conditioner when it obtains the pressure value detected by the sensor, it may obtain the pressure value detected by the sensor in a wireless manner (such as a wireless network, Bluetooth, etc.) or a wired manner.
  • a wireless manner such as a wireless network, Bluetooth, etc.
  • a wired manner such as a wireless network, Bluetooth, etc.
  • the user's sleep interruption refers to the user lying on the bed to sleep, getting up and leaving the bed for a period of time, then lying on the bed again to sleep.
  • the set sleep interruption control logic is used to control the air conditioner, so that during the user’s sleep interruption, the operating temperature of the air conditioner can be dynamically adjusted to make the user feel more comfortable Temperature, improve user experience.
  • the pressure value detected by the pressure sensor on the bed is first acquired, and then it is determined whether the user's sleep is interrupted based on the acquired pressure value detected by the pressure sensor.
  • the sleep interruption control logic is used to dynamically control the working temperature of the air conditioner. This embodiment can detect whether the user's sleep is interrupted.
  • the sleep interruption control logic can be used to flexibly control the temperature of the air conditioner. Compared with the existing fixed sleep control mode, the user's comfort is further improved.
  • Embodiment 2 As shown in FIG. 2, it is a method flowchart of Embodiment 2 of an air-conditioning control method disclosed in the present invention.
  • the method may include the following steps:
  • the pressure value generated by the bed is detected by the pressure sensor set on the bed.
  • the pressure sensor when the user sleeps, the pressure sensor is used to detect the pressure value generated by the user’s bed when the user sleeps; as shown in Figure 8, when the user wakes up from sleep, the pressure sensor detects the user’s bed when the user wakes up. The resulting pressure value.
  • the air conditioner obtains the pressure value detected by the sensor.
  • the air conditioner when it obtains the pressure value detected by the sensor, it may obtain the pressure value detected by the sensor in a wireless manner (such as a wireless network, Bluetooth, etc.) or a wired manner.
  • a wireless manner such as a wireless network, Bluetooth, etc.
  • a wired manner such as a wireless network, Bluetooth, etc.
  • S202 Determine whether the first difference between the first instantaneous pressure value detected by the pressure sensor and the initial pressure value is greater than or equal to a preset pressure value, and whether the time period during which the first difference is greater than or equal to the preset pressure value is greater than the first preset Duration, if yes, confirm that the air conditioner enters sleep mode;
  • a first pressure sensor After obtaining the pressure sensor to a pressure value is detected on the bed, and further calculates a first pressure sensor detects the instantaneous pressure value P i (user lying in bed when the sensor detects the instantaneous pressure value) and the initial pressure The first difference of the value P 0 (the pressure value detected by the sensor when the user is not lying in bed and sleeping), to determine whether the first difference is greater than or equal to the preset pressure value ⁇ P, that is, to determine whether P i -P 0 ⁇ P , When the first difference is greater than or equal to the preset pressure value, it is further determined whether the time period during which the first difference is greater than or equal to the preset pressure value is greater than the first preset time period, wherein the first preset time can be based on the actual needs of the user Make flexible settings, for example, set the first preset time to 10 minutes.
  • the air conditioner When the first difference between the first instantaneous pressure value detected by the pressure sensor and the initial pressure value is greater than or equal to the preset pressure value, and the time period during which the first difference is greater than or equal to the preset pressure value is greater than the first preset time period, it represents The user is in a sleep state, and the air conditioner enters a sleep mode at this time.
  • a second time t 1 to a second pressure sensor detects the instantaneous pressure value P 1 (the user in bed and get up when the sensor detects the pressure value) at a first time t 0
  • the second difference value of the initial pressure value P 0 detected by the pressure sensor to determine whether the second difference value is greater than or equal to the preset pressure value ⁇ P, that is, to determine whether P 1 -P 0 ⁇ ⁇ P, when the second difference value is greater than or equal to ⁇ P
  • the pressure is greater than or equal to the preset pressure value
  • it is further judged whether the time difference between the second time t 1 and the first time t 0 is less than or equal to the second preset time period ⁇ t, that is, it is judged whether t 1 -t 0 ⁇ t.
  • time t 1 to a second pressure sensor detects the instantaneous pressure value P and the initial pressure value. 1 at the first time T 0 P of the pressure sensor detects the second difference is greater than 0 is equal to a preset pressure value, and second time t 1 When the time difference from the first time t 0 is less than or equal to the second preset duration, it is determined that the user's sleep is interrupted at this time.
  • a user interruption time t off sleep disruption controlled air-conditioning compressor power increases, the fan speed increases, so that a user at the third time after sleep disruption (e.g., At toff +1h) the temperature is raised to the first set temperature of the sleep mode; by raising the temperature to the first set temperature of the sleep mode at the third moment, the comfort of the user during sleep interruption can be improved.
  • a user at the third time after sleep disruption e.g., At toff +1h
  • the air conditioner compressor is controlled to reduce the power and the fan speed, so that at the fourth time after the user’s sleep interruption (e.g., t When off +2h) the temperature is reduced to the second set temperature of the sleep mode; wherein, the second set temperature is lower than the second set temperature, for example, the second set temperature is 2°C lower than the first set temperature temperature.
  • FIG. 3 it is a method flowchart of Embodiment 3 of an air-conditioning control method disclosed in the present invention.
  • the method may include the following steps:
  • the pressure value generated by the bed is detected by the pressure sensor set on the bed.
  • the pressure sensor when the user sleeps, the pressure sensor is used to detect the pressure value generated by the user’s bed when the user sleeps; as shown in Figure 8, when the user wakes up from sleep, the pressure sensor detects the user’s bed when the user wakes up. The resulting pressure value.
  • the air conditioner obtains the pressure value detected by the sensor.
  • the air conditioner when it obtains the pressure value detected by the sensor, it may obtain the pressure value detected by the sensor in a wireless manner (such as a wireless network, Bluetooth, etc.) or a wired manner.
  • a wireless manner such as a wireless network, Bluetooth, etc.
  • a wired manner such as a wireless network, Bluetooth, etc.
  • S302. Determine whether the first difference between the first instantaneous pressure value detected by the pressure sensor and the initial pressure value is greater than or equal to a preset pressure value, and whether the duration of the first difference greater than or equal to the preset pressure value is greater than the first preset value Duration, if yes, confirm that the air conditioner enters sleep mode;
  • a first pressure sensor After obtaining the pressure sensor to a pressure value is detected on the bed, and further calculates a first pressure sensor detects the instantaneous pressure value P i (user lying in bed when the sensor detects the instantaneous pressure value) and the initial pressure The first difference of the value P 0 (the pressure value detected by the sensor when the user is not lying in bed and sleeping), to determine whether the first difference is greater than or equal to the preset pressure value ⁇ P, that is, to determine whether P i -P 0 ⁇ ⁇ P , When the first difference is greater than or equal to the preset pressure value, it is further determined whether the time period during which the first difference is greater than or equal to the preset pressure value is greater than the first preset time period, wherein the first preset time can be based on the actual needs of the user Make flexible settings, for example, set the first preset time to 10 minutes.
  • the air conditioner When the first difference between the first instantaneous pressure value detected by the pressure sensor and the initial pressure value is greater than or equal to the preset pressure value, and the time period during which the first difference is greater than or equal to the preset pressure value is greater than the first preset time period, it represents The user is in a sleep state, and the air conditioner enters a sleep mode at this time.
  • a second time t 1 to a second pressure sensor detects the instantaneous pressure value P 1 (the user in bed and get up when the sensor detects the pressure value) at a first time t 0
  • the second difference value of the initial pressure value P 0 detected by the pressure sensor to determine whether the second difference value is greater than or equal to the preset pressure value ⁇ P, that is, to determine whether P 1 -P 0 ⁇ ⁇ P, when the second difference value is greater than or equal to ⁇ P
  • the pressure is greater than or equal to the preset pressure value
  • it is further judged whether the time difference between the second time t 1 and the first time t 0 is less than or equal to the second preset time period ⁇ t, that is, it is judged whether t 1 -t 0 ⁇ t.
  • time t 1 to a second pressure sensor detects the instantaneous pressure value P and the initial pressure value. 1 at the first time T 0 P of the pressure sensor detects the second difference is greater than 0 is equal to a preset pressure value, and second time t 1 When the time difference from the first time t 0 is less than or equal to the second preset duration, it is determined that the user's sleep is interrupted at this time.
  • a fifth time after sleep disruption e.g., t When the time is off +1h
  • FIG. 4 it is a schematic structural diagram of Embodiment 1 of an air-conditioning control system disclosed in the present invention.
  • the system may include:
  • the acquiring module 401 is used to acquire the pressure value detected by the pressure sensor located on the bed;
  • the acquisition module in the air conditioner acquires the pressure value detected by the sensor, it can acquire the pressure value detected by the sensor in a wireless manner (such as a wireless network, Bluetooth, etc.) or a wired manner.
  • a wireless manner such as a wireless network, Bluetooth, etc.
  • the judging module 402 is used for judging whether the user is interrupted in sleep based on the pressure value detected by the acquired pressure sensor;
  • the control module 403 is used to dynamically control the working temperature of the air conditioner by adopting the sleep interruption control logic when the user's sleep is interrupted.
  • the working principle of the air-conditioning control system disclosed in this embodiment is the same as that of Embodiment 1 of the above-mentioned air-conditioning control method, and will not be repeated here.
  • FIG. 5 it is a schematic structural diagram of Embodiment 2 of an air-conditioning control system disclosed in the present invention.
  • the system may include:
  • the acquiring module 501 is used to acquire the pressure value detected by the pressure sensor located on the bed;
  • the judging module 502 is used to judge whether the first difference between the first instantaneous pressure value detected by the pressure sensor and the initial pressure value is greater than or equal to a preset pressure value, and whether the duration of the first difference greater than or equal to the preset pressure value is greater than The first preset duration, if yes, it is determined that the air conditioner enters the sleep mode;
  • the judging module 502 is also used for judging whether the second difference between the second instantaneous pressure value detected by the pressure sensor at the second moment and the initial pressure value detected by the pressure sensor at the first moment is greater than or equal to when the air conditioner is in sleep mode Preset pressure value, and whether the time difference between the second moment and the first moment is less than or equal to the second preset duration, if so, it is determined that the user's sleep is interrupted;
  • the control module 503 is used to control the compressor power of the air conditioner to increase and the fan speed to increase when the user’s sleep is interrupted and the air conditioner is in the heating mode at the interruption time when the user’s sleep is interrupted, so that the third time after the user’s sleep is interrupted Raise the temperature to the first set temperature of the sleep mode at all times;
  • the control module 503 is also used to control the power of the compressor of the air conditioner and the speed of the fan to decrease from the third moment after the sleep interruption of the user, so that the temperature is reduced to the first moment of the sleep mode at the fourth moment after the sleep interruption of the user.
  • Two set temperature wherein, the second set temperature is lower than the second set temperature.
  • the working principle of the air-conditioning control system disclosed in this embodiment is the same as that of Embodiment 2 of the above-mentioned air-conditioning control method, and will not be repeated here.
  • FIG. 6 it is a schematic structural diagram of Embodiment 3 of an air-conditioning control system disclosed in the present invention.
  • the system may include:
  • the obtaining module 601 is used to obtain the pressure value detected by the pressure sensor on the bed;
  • the judging module 602 is used to judge whether the first difference between the first instantaneous pressure value detected by the pressure sensor and the initial pressure value is greater than or equal to a preset pressure value, and whether the duration of the first difference greater than or equal to the preset pressure value is greater than The first preset duration, if yes, it is determined that the air conditioner enters the sleep mode;
  • the judging module 602 is also used for judging whether the second difference between the second instantaneous pressure value detected by the pressure sensor at the second moment and the initial pressure value detected by the pressure sensor at the first moment is greater than or equal to when the air conditioner is in sleep mode Preset pressure value, and whether the time difference between the second moment and the first moment is less than or equal to the second preset duration, if so, it is determined that the user's sleep is interrupted;
  • the control module 603 is used to control the compressor power of the air conditioner to increase and the fan speed to increase when the user’s sleep is interrupted and the air conditioner is in the cooling working mode at the interruption moment when the user’s sleep is interrupted, so that the fifth moment after the user’s sleep is interrupted Decrease the temperature to the third set temperature of the sleep mode;
  • the control module 603 is also used to control the power of the compressor of the air conditioner and the speed of the fan to decrease from the fifth moment after the sleep interruption of the user, so that the temperature is increased to the sleep mode at the sixth moment after the sleep interruption of the user.
  • the fourth set temperature wherein the fourth set temperature is higher than the third set temperature.
  • the steps of the method or algorithm described in the embodiments disclosed in this document can be directly implemented by hardware, a software module executed by a processor, or a combination of the two.
  • the software module can be placed in random access memory (RAM), internal memory, read-only memory (ROM), electrically programmable ROM, electrically erasable programmable ROM, registers, hard disks, removable disks, CD-ROMs, or all areas in the technical field. Any other known storage media.

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Abstract

一种空调控制方法及系统,该控制方法包括步骤:获取位于床体上的压力传感器检测到的压力值(S101),基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断(S102);当用户睡眠中断时,采用睡眠中断控制逻辑动态控制空调的工作温度(S103)。

Description

一种空调控制方法及系统
本申请基于申请号为202010315408.3、申请日为2020年04月21日的中国专利申请提出,并要求该中国专利申请的优先权,该中国专利申请的全部内容在此引入本申请作为参考。
技术领域
本发明涉及空调技术领域,尤其涉及一种空调控制方法及系统。
背景技术
目前,随着电子技术的不断发展,大多的空调都具有睡眠模式功能,现有的空调的睡眠模式虽然可以在一定程度上提高人体的舒适度,但是当用户中间睡眠中断,如起夜,现有的空调还是按照原有的睡眠模式控制逻辑运行,没有考虑到用户睡眠中断后继续入睡时该如何调节温度,使得用户体验较差。
发明内容
有鉴于此,本发明提供了一种空调控制方法,能够通过检测到用户睡眠中断时,灵活调整空调控制逻辑,动态控制空调的工作温度,进一步提升了用户舒适性。
本发明提供了一种空调控制方法,所述方法包括:
获取位于床体上的压力传感器检测到的压力值;
基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断;
当用户睡眠中断时,采用睡眠中断控制逻辑动态控制所述空调的工作温度。
优选地,所述获取位于床体上的压力传感器检测到的压力值,包括:
通过无线方式获取位于床体上的压力传感器检测到的压力值。
优选地,所述基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断,包括:
判断所述压力传感器检测到的第一瞬时压力值与初始压力值的第一差值是否大于等于预设压力值,且所述第一差值大于等于所述预设压力值的时长是否大于第一预设时长,若是,则确定空调进入睡眠模式;
在空调处于睡眠模式时,判断在第二时刻所述压力传感器检测到的第二瞬时压力值与在第一时刻所述压力传感器检测到的初始压力值的第二差值是否大于等于所述预设压力值,且所述第二时刻与所述第一时刻的时间差是否小于等于第二预设时长,若是,则确定用户睡眠中断。
优选地,所述当用户睡眠中断时,采用睡眠中断控制逻辑动态控制所述空调的工作温度,包括:
当空调处于制热工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增 加、风扇转速增高,以使在用户睡眠中断后的第三时刻将温度升高到睡眠模式的第一设定温度;
从所述在用户睡眠中断后的第三时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第四时刻将温度降低到睡眠模式的第二设定温度;其中,所述第二设定温度低于所述第二设定温度。
优选地,所述当用户睡眠中断时,采用睡眠中断控制逻辑动态控制所述空调的工作温度,包括:
当空调处于制冷工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第五时刻将温度降低到睡眠模式的第三设定温度;
从所述在用户睡眠中断后的第五时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第六时刻将温度升高到睡眠模式的第四设定温度;其中,所述第四设定温度高于所述第三设定温度。
一种空调控制系统,包括:
获取模块,用于获取位于床体上的压力传感器检测到的压力值;
判断模块,用于基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断;
控制模块,用于当用户睡眠中断时,采用睡眠中断控制逻辑动态控制所述空调的工作温度。
优选地,所述获取模块具体用于:
通过无线方式获取位于床体上的压力传感器检测到的压力值。
优选地,所述判断模块具体用于:
判断所述压力传感器检测到的第一瞬时压力值与初始压力值的第一差值是否大于等于预设压力值,且所述第一差值大于等于所述预设压力值的时长是否大于第一预设时长,若是,则确定空调进入睡眠模式;
在空调处于睡眠模式时,判断在第二时刻所述压力传感器检测到的第二瞬时压力值与在第一时刻所述压力传感器检测到的初始压力值的第二差值是否大于等于所述预设压力值,且所述第二时刻与所述第一时刻的时间差是否小于等于第二预设时长,若是,则确定用户睡眠中断。
优选地,所述控制模块具体用于:
当空调处于制热工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第三时刻将温度升高到睡眠模式的第一设定温度;
从所述在用户睡眠中断后的第三时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第四时刻将温度降低到睡眠模式的第二设定温度;其中,所述第二设定温度低于所述第二设定温度。
优选地,所述控制模块具体用于:
当空调处于制冷工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第五时刻将温度降低到睡眠模式的第三设定温度;
从所述在用户睡眠中断后的第五时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第六时刻将温度升高到睡眠模式的第四设定温度;其中,所述第四设定温度高于所述第三设定温度。
综上所述,本发明公开了一种空调控制方法,首先获取位于床体上的压力传感器检测到的压力值,然后基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断,当用户睡眠中断时,采用睡眠中断控制逻辑动态控制空调的工作温度。本发明能够检测用户睡眠是否中断,在用户睡眠中断时,能够采用睡眠中断控制逻辑对空调温度进行灵活的控制,相对于现有固定的睡眠控制模式,进一步提升了用户舒适性。
附图说明
为了更清楚地说明本发明实施例或现有技术中的技术方案,下面将对实施例或现有技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本发明的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1为本发明公开的一种空调控制方法实施例1的方法流程图;
图2为本发明公开的一种空调控制方法实施例2的方法流程图;
图3为本发明公开的一种空调控制方法实施例3的方法流程图;
图4为本发明公开的一种空调控制系统实施例1的结构示意图;
图5为本发明公开的一种空调控制系统实施例2的结构示意图;
图6为本发明公开的一种空调控制系统实施例3的结构示意图;
图7为本发明公开的一种用户睡觉时的示意图;
图8为本发明公开的一种用户起夜时的示意图。
具体实施方式
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本发明一部分实施例,而不是全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本发明保护的范围。
如图1所示,为本发明公开的一种空调控制方法实施例1的方法流程图,所述方法可以包括以下步骤:
S101、获取位于床体上的压力传感器检测到的压力值;
在空调运行的过程中,通过设置在床体上的压力传感器对床体产生的压力值进行检测。例如,如图7所示,在用户睡觉时,通过压力传感器检测用户睡觉时床体产生的压力值;如图8所示,在用户睡觉起夜时,通过压力传感器检测用户起夜时床体产生的压力值。在压力传感器检测到床体的压力值后,空调获取传感器检测到的压力值。
具体的,空调在获取传感器检测到的压力值时,可以通过无线的方式(如:无线网络、蓝牙等)或有线的方式获取传感器检测到的压力值。
S102、基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断;
在获取到位于床体上的压力传感器检测到的压力值后,进一步根据在不同时刻获取到的压力值判断用户是否睡眠中断。其中,用户睡眠中断是指,用户躺在床上睡觉,又起身离开床体一段时间后,再次躺在床上睡觉。
S103、当用户睡眠中断时,采用睡眠中断控制逻辑动态控制空调的工作温度。
当确定用户在睡眠的过程中睡眠中断时,采用设定的睡眠中断控制逻辑对空调进行控制,以使在用户睡眠中断的过程中,动态调整空调的工作温度,能够使用户感知到较为舒适的温度,提升用户体验。
综上所述,在上述实施例中,首先获取位于床体上的压力传感器检测到的压力值,然后基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断,当用户睡眠中断时,采用睡眠中断控制逻辑动态控制空调的工作温度。本实施例能够检测用户睡眠是否中断,在用户睡眠中断时,能够采用睡眠中断控制逻辑对空调温度进行灵活的控制,相对于现有固定的睡眠控制模式,进一步提升了用户舒适性。
如图2所示,为本发明公开的一种空调控制方法实施例2的方法流程图,所述方法可以包括以下步骤:
S201、获取位于床体上的压力传感器检测到的压力值;
在空调运行的过程中,通过设置在床体上的压力传感器对床体产生的压力值进行检测。例如,如图7所示,在用户睡觉时,通过压力传感器检测用户睡觉时床体产生的压力值;如图8所示,在用户睡觉起夜时,通过压力传感器检测用户起夜时床体产生的压力值。在压力传感器检测到床体的压力值后,空调获取传感器检测到的压力值。
具体的,空调在获取传感器检测到的压力值时,可以通过无线的方式(如:无线网络、蓝牙等)或有线的方式获取传感器检测到的压力值。
S202、判断压力传感器检测到的第一瞬时压力值与初始压力值的第一差值是否大于等于预设压力值,且第一差值大于等于预设压力值的时长是否大于第一预设时长,若是,则确定空调进入睡眠模式;
在获取到位于床体上的压力传感器检测到的压力值后,进一步计算压力传感器检测到的第一瞬时压力值P i(用户躺在床上睡觉时传感器检测到的瞬时压力值)与初始压力值P 0(用户未躺在床上睡觉时传感器检测到的压力值)的第一差值,判断第一差值是否大于 等于预设压力值△P,即判断是否P i-P 0≥△P,当第一差值于大于等于预设压力值时,进一步判断第一差值大于等于预设压力值的时长是否大于第一预设时长,其中,第一预设时间可以根据用户的实际需求进行灵活设定,如,将第一预设时间设定为10分钟。在压力传感器检测到的第一瞬时压力值与初始压力值的第一差值大于等于预设压力值,且第一差值大于等于预设压力值的时长大于第一预设时长时,表征用户处于睡眠状态,此时空调进入睡眠模式。
S203、在空调处于睡眠模式时,判断在第二时刻压力传感器检测到的第二瞬时压力值与在第一时刻压力传感器检测到的初始压力值的第二差值是否大于等于预设压力值,且第二时刻与第一时刻的时间差是否小于等于第二预设时长,若是,则确定用户睡眠中断;
在空调处于睡眠模式的过程中,进一步计算在第二时刻t 1压力传感器检测到的第二瞬时压力值P 1(用户躺在床上又起身时传感器检测到的压力值)与在第一时刻t 0压力传感器检测到的初始压力值P 0的第二差值,判断第二差值是否大于等于预设压力值△P,即判断是否P 1-P 0≥△P,当第二差值于大于等于预设压力值时,进一步判断第二时刻t 1与第一时刻t 0的时间差是否小于等于第二预设时长△t,即判断是否t 1-t 0≤△t,当在第二时刻t 1压力传感器检测到的第二瞬时压力值P 1与在第一时刻t 0压力传感器检测到的初始压力值P 0的第二差值大于等于预设压力值,且第二时刻t 1与第一时刻t 0的时间差小于等于第二预设时长时,确定此时用户睡眠中断。
S204、当用户睡眠中断,且空调处于制热工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第三时刻将温度升高到睡眠模式的第一设定温度;
当用户睡眠中断,且空调处于制热工作模式时,在用户睡眠中断时的中断时刻t ,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第三时刻(如,t +1h时)将温度升高到睡眠模式的第一设定温度;通过在第三时刻将温度升高到睡眠模式的第一设定温度,能够提升用户在睡眠中断时的舒适性。
S205、从在用户睡眠中断后的第三时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第四时刻将温度降低到睡眠模式的第二设定温度;其中,所述第二设定温度低于第二设定温度。
然后,从在用户睡眠中断后的第三时刻(如,t +1h时)起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第四时刻(如,t +2h时)将温度降低到睡眠模式的第二设定温度;其中,第二设定温度低于第二设定温度,如,第二设定温度为比第一设定温度低2℃的温度。
如图3所示,为本发明公开的一种空调控制方法实施例3的方法流程图,所述方法可以包括以下步骤:
S301、获取位于床体上的压力传感器检测到的压力值;
在空调运行的过程中,通过设置在床体上的压力传感器对床体产生的压力值进行检测。例如,如图7所示,在用户睡觉时,通过压力传感器检测用户睡觉时床体产生的压力值;如图8所示,在用户睡觉起夜时,通过压力传感器检测用户起夜时床体产生的压力值。在压力传感器检测到床体的压力值后,空调获取传感器检测到的压力值。
具体的,空调在获取传感器检测到的压力值时,可以通过无线的方式(如:无线网络、蓝牙等)或有线的方式获取传感器检测到的压力值。
S302、判断压力传感器检测到的第一瞬时压力值与初始压力值的第一差值是否大于等于预设压力值,且第一差值大于等于预设压力值的时长是否大于第一预设时长,若是,则确定空调进入睡眠模式;
在获取到位于床体上的压力传感器检测到的压力值后,进一步计算压力传感器检测到的第一瞬时压力值P i(用户躺在床上睡觉时传感器检测到的瞬时压力值)与初始压力值P 0(用户未躺在床上睡觉时传感器检测到的压力值)的第一差值,判断第一差值是否大于等于预设压力值△P,即判断是否P i-P 0≥△P,当第一差值于大于等于预设压力值时,进一步判断第一差值大于等于预设压力值的时长是否大于第一预设时长,其中,第一预设时间可以根据用户的实际需求进行灵活设定,如,将第一预设时间设定为10分钟。在压力传感器检测到的第一瞬时压力值与初始压力值的第一差值大于等于预设压力值,且第一差值大于等于预设压力值的时长大于第一预设时长时,表征用户处于睡眠状态,此时空调进入睡眠模式。
S303、在空调处于睡眠模式时,判断在第二时刻压力传感器检测到的第二瞬时压力值与在第一时刻压力传感器检测到的初始压力值的第二差值是否大于等于预设压力值,且第二时刻与第一时刻的时间差是否小于等于第二预设时长,若是,则确定用户睡眠中断;
在空调处于睡眠模式的过程中,进一步计算在第二时刻t 1压力传感器检测到的第二瞬时压力值P 1(用户躺在床上又起身时传感器检测到的压力值)与在第一时刻t 0压力传感器检测到的初始压力值P 0的第二差值,判断第二差值是否大于等于预设压力值△P,即判断是否P 1-P 0≥△P,当第二差值于大于等于预设压力值时,进一步判断第二时刻t 1与第一时刻t 0的时间差是否小于等于第二预设时长△t,即判断是否t 1-t 0≤△t,当在第二时刻t 1压力传感器检测到的第二瞬时压力值P 1与在第一时刻t 0压力传感器检测到的初始压力值P 0的第二差值大于等于预设压力值,且第二时刻t 1与第一时刻t 0的时间差小于等于第二预设时长时,确定此时用户睡眠中断。
S304、当用户睡眠中断,且空调处于制冷工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第五时刻将温度降低到睡眠模式的第三设定温度;
当用户睡眠中断,且空调处于制冷工作模式时,在用户睡眠中断时的中断时刻t ,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第五时刻(如,t +1h时)将温度下降到睡眠模式的第三设定温度;通过在第五时刻将温度下降到睡眠模式的第 三设定温度,能够提升用户在睡眠中断时的舒适性。
S305、从在用户睡眠中断后的第五时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第六时刻将温度升高到睡眠模式的第四设定温度;其中,所述第四设定温度高于第三设定温度。
然后,从在用户睡眠中断后的第五时刻(如,t +1h时)起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第六时刻(如,t +2h时)将温度升高到睡眠模式的第四设定温度;其中,第四设定温度低于第三设定温度,如,第四设定温度为比第三设定温度高2℃的温度。
如图4所示,为本发明公开的一种空调控制系统实施例1的结构示意图,所述系统可以包括:
获取模块401,用于获取位于床体上的压力传感器检测到的压力值;
具体的,空调中的获取模块在获取传感器检测到的压力值时,可以通过无线的方式(如:无线网络、蓝牙等)或有线的方式获取传感器检测到的压力值。
判断模块402,用于基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断;
控制模块403,用于当用户睡眠中断时,采用睡眠中断控制逻辑动态控制空调的工作温度。
综上所述,本实施例公开的空调控制系统的工作原理与上述空调控制方法实施例1的工作原理相同,在此不再赘述。
如图5所示,为本发明公开的一种空调控制系统实施例2的结构示意图,所述系统可以包括:
获取模块501,用于获取位于床体上的压力传感器检测到的压力值;
判断模块502,用于判断压力传感器检测到的第一瞬时压力值与初始压力值的第一差值是否大于等于预设压力值,且第一差值大于等于预设压力值的时长是否大于第一预设时长,若是,则确定空调进入睡眠模式;
判断模块502,还用于在空调处于睡眠模式时,判断在第二时刻压力传感器检测到的第二瞬时压力值与在第一时刻压力传感器检测到的初始压力值的第二差值是否大于等于预设压力值,且第二时刻与第一时刻的时间差是否小于等于第二预设时长,若是,则确定用户睡眠中断;
控制模块503,用于当用户睡眠中断,且空调处于制热工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第三时刻将温度升高到睡眠模式的第一设定温度;
控制模块503,还用于从在用户睡眠中断后的第三时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第四时刻将温度降低到睡眠模式的第二设定温 度;其中,所述第二设定温度低于所述第二设定温度。
综上所述,本实施例公开的空调控制系统的工作原理与上述空调控制方法实施例2的工作原理相同,在此不再赘述。
如图6所示,为本发明公开的一种空调控制系统实施例3的结构示意图,所述系统可以包括:
获取模块601,用于获取位于床体上的压力传感器检测到的压力值;
判断模块602,用于判断压力传感器检测到的第一瞬时压力值与初始压力值的第一差值是否大于等于预设压力值,且第一差值大于等于预设压力值的时长是否大于第一预设时长,若是,则确定空调进入睡眠模式;
判断模块602,还用于在空调处于睡眠模式时,判断在第二时刻压力传感器检测到的第二瞬时压力值与在第一时刻压力传感器检测到的初始压力值的第二差值是否大于等于预设压力值,且第二时刻与第一时刻的时间差是否小于等于第二预设时长,若是,则确定用户睡眠中断;
控制模块603,用于当用户睡眠中断,且空调处于制冷工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第五时刻将温度降低到睡眠模式的第三设定温度;
控制模块603,还用于从在用户睡眠中断后的第五时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第六时刻将温度升高到睡眠模式的第四设定温度;其中,所述第四设定温度高于第三设定温度。
本说明书中各个实施例采用递进的方式描述,每个实施例重点说明的都是与其他实施例的不同之处,各个实施例之间相同相似部分互相参见即可。对于实施例公开的装置而言,由于其与实施例公开的方法相对应,所以描述的比较简单,相关之处参见方法部分说明即可。
专业人员还可以进一步意识到,结合本文中所公开的实施例描述的各示例的单元及算法步骤,能够以电子硬件、计算机软件或者二者的结合来实现,为了清楚地说明硬件和软件的可互换性,在上述说明中已经按照功能一般性地描述了各示例的组成及步骤。这些功能究竟以硬件还是软件方式来执行,取决于技术方案的特定应用和设计约束条件。专业技术人员可以对每个特定的应用来使用不同方法来实现所描述的功能,但是这种实现不应认为超出本发明的范围。
结合本文中所公开的实施例描述的方法或算法的步骤可以直接用硬件、处理器执行的软件模块,或者二者的结合来实施。软件模块可以置于随机存储器(RAM)、内存、只读存储器(ROM)、电可编程ROM、电可擦除可编程ROM、寄存器、硬盘、可移动磁盘、CD-ROM、或技术领域内所公知的任意其它形式的存储介质中。
对所公开的实施例的上述说明,使本领域专业技术人员能够实现或使用本发明。对这些实施例的多种修改对本领域的专业技术人员来说将是显而易见的,本文中所定义的一般原理可以在不脱离本发明的精神或范围的情况下,在其它实施例中实现。因此,本发明将不会被限制于本文所示的这些实施例,而是要符合与本文所公开的原理和新颖特点相一致的最宽的范围。

Claims (10)

  1. 一种空调控制方法,其特征在于,所述方法包括:
    获取位于床体上的压力传感器检测到的压力值;
    基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断;
    当用户睡眠中断时,采用睡眠中断控制逻辑动态控制所述空调的工作温度。
  2. 根据权利要求1所述的方法,其特征在于,所述获取位于床体上的压力传感器检测到的压力值,包括:
    通过无线方式获取位于床体上的压力传感器检测到的压力值。
  3. 根据权利要求1所述的方法,其特征在于,所述基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断,包括:
    判断所述压力传感器检测到的第一瞬时压力值与初始压力值的第一差值是否大于等于预设压力值,且所述第一差值大于等于所述预设压力值的时长是否大于第一预设时长,若是,则确定空调进入睡眠模式;
    在空调处于睡眠模式时,判断在第二时刻所述压力传感器检测到的第二瞬时压力值与在第一时刻所述压力传感器检测到的初始压力值的第二差值是否大于等于所述预设压力值,且所述第二时刻与所述第一时刻的时间差是否小于等于第二预设时长,若是,则确定用户睡眠中断。
  4. 根据权利要求3所述的方法,其特征在于,所述当用户睡眠中断时,采用睡眠中断控制逻辑动态控制所述空调的工作温度,包括:
    当用户睡眠中断,且空调处于制热工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第三时刻将温度升高到睡眠模式的第一设定温度;
    从所述在用户睡眠中断后的第三时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第四时刻将温度降低到睡眠模式的第二设定温度;其中,所述第二设定温度低于所述第二设定温度。
  5. 根据权利要求3所述的方法,其特征在于,所述当用户睡眠中断时,采用睡眠中断控制逻辑动态控制所述空调的工作温度,包括:
    当空调处于制冷工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第五时刻将温度降低到睡眠模式的第三设定温度;
    从所述在用户睡眠中断后的第五时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第六时刻将温度升高到睡眠模式的第四设定温度;其中,所述第四设定温度高于所述第三设定温度。
  6. 一种空调控制系统,其特征在于,包括:
    获取模块,用于获取位于床体上的压力传感器检测到的压力值;
    判断模块,用于基于获取到的压力传感器检测到的压力值判断用户是否睡眠中断;
    控制模块,用于当用户睡眠中断时,采用睡眠中断控制逻辑动态控制所述空调的工作温度。
  7. 根据权利要求6所述的系统,其特征在于,所述获取模块具体用于:
    通过无线方式获取位于床体上的压力传感器检测到的压力值。
  8. 根据权利要求6所述的系统,其特征在于,所述判断模块具体用于:
    判断所述压力传感器检测到的第一瞬时压力值与初始压力值的第一差值是否大于等于预设压力值,且所述第一差值大于等于所述预设压力值的时长是否大于第一预设时长,若是,则确定空调进入睡眠模式;
    在空调处于睡眠模式时,判断在第二时刻所述压力传感器检测到的第二瞬时压力值与在第一时刻所述压力传感器检测到的初始压力值的第二差值是否大于等于所述预设压力值,且所述第二时刻与所述第一时刻的时间差是否小于等于第二预设时长,若是,则确定用户睡眠中断。
  9. 根据权利要求8所述的系统,其特征在于,所述控制模块具体用于:
    当空调处于制热工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第三时刻将温度升高到睡眠模式的第一设定温度;
    从所述在用户睡眠中断后的第三时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第四时刻将温度降低到睡眠模式的第二设定温度;其中,所述第二设定温度低于所述第二设定温度。
  10. 根据权利要求8所述的系统,其特征在于,所述控制模块具体用于:
    当空调处于制冷工作模式时,在用户睡眠中断时的中断时刻,控制空调压缩机功率增加、风扇转速增高,以使在用户睡眠中断后的第五时刻将温度降低到睡眠模式的第三设定温度;
    从所述在用户睡眠中断后的第五时刻起,控制空调压缩机功率降低、风扇转速减小,以使在用户睡眠中断后的第六时刻将温度升高到睡眠模式的第四设定温度;其中,所述第四设定温度高于所述第三设定温度。
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