WO2020024738A1 - 一种体感风量调节方法、装置及空调器 - Google Patents

一种体感风量调节方法、装置及空调器 Download PDF

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Publication number
WO2020024738A1
WO2020024738A1 PCT/CN2019/093288 CN2019093288W WO2020024738A1 WO 2020024738 A1 WO2020024738 A1 WO 2020024738A1 CN 2019093288 W CN2019093288 W CN 2019093288W WO 2020024738 A1 WO2020024738 A1 WO 2020024738A1
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Prior art keywords
preset
wind speed
ambient temperature
angle
temperature
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PCT/CN2019/093288
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English (en)
French (fr)
Inventor
古汤汤
李阳
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宁波奥克斯电气股份有限公司
奥克斯空调股份有限公司
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Publication of WO2020024738A1 publication Critical patent/WO2020024738A1/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
    • 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
    • F24F11/89Arrangement or mounting of control or safety devices
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2110/00Control inputs relating to air properties
    • F24F2110/10Temperature

Definitions

  • the present disclosure relates to the technical field of air conditioners, and in particular, to a method, device, and air conditioner for somatosensory air volume adjustment.
  • air conditioners can bring comfortable experience to users by adjusting the indoor ambient temperature
  • air conditioners have become one of the most common household appliances.
  • the present disclosure aims to propose a somatosensory air volume adjustment method, device, and air conditioner to solve the above problems.
  • the present disclosure provides a somatosensory wind volume adjustment method, which includes:
  • a target wind speed and a target angle of the air deflector are determined based on the current temperature difference and the current indoor environment temperature to adjust the body-sensing wind volume.
  • the target angle of the air deflector includes the target angle of the external air deflector
  • the step of determining the target wind speed and the target angle of the air deflector based on the current temperature difference and the current indoor environment temperature to adjust the somatosensory air volume includes:
  • determining the target angle of the outer air damper as a preset second angle of the outer air damper and based on Determining the target wind speed by the current indoor ambient temperature, the preset wind speed setting value, the preset first wind speed, the preset first wind speed, and the preset third wind speed;
  • the determining is based on the current indoor ambient temperature, the preset wind speed setting value, a preset first wind speed, a preset second wind speed, and a preset third wind speed.
  • the steps for target wind speed include:
  • the target wind speed is the preset first wind speed when the current indoor ambient temperature is less than a preset first ambient temperature
  • the step of determining the target wind speed based on the current indoor ambient temperature, a preset first wind speed, a preset second wind speed, and a preset third wind speed includes:
  • the target wind speed is the preset first wind speed when the current indoor ambient temperature is less than a preset first ambient temperature
  • the target wind speed is the preset first wind speed when the current indoor ambient temperature is greater than or equal to the preset first ambient temperature and less than a preset second ambient temperature;
  • the step of determining the target angle of the external air damper based on the current indoor ambient temperature, the first external air damper first angle and the predetermined external air damper second angle includes:
  • the target angle of the outer air damper is a preset second angle of the outer air damper.
  • the target angle of the air deflector also includes the target angle of the internal air deflector, and the step of determining the target wind speed and the target angle of the air deflector based on the current temperature difference and the current indoor environment temperature to adjust the body air volume includes:
  • the target angle of the inner air damper is a preset second angle of the inner air damper.
  • the step of determining the target angle of the inner air damper based on the current indoor ambient temperature, a first preset internal air damper angle, and a second preset internal air damper angle includes:
  • the target angle of the inner air damper is a preset second angle of the inner air damper.
  • the first threshold value is 0 ° C
  • the second threshold value is 1 ° C.
  • the value range of the rotation speed of the blades corresponding to the first wind speed is 400-600 rpm
  • the value range of the rotation speed of the blades corresponding to the second wind speed is 700-1000 rpm.
  • the temperature differences satisfy the first preset condition.
  • the target angle of the air deflector also includes the target angle of the inner air deflector and the target angle of the outer air deflector
  • the method for adjusting the somatosensory wind volume further includes:
  • the target wind speed is a preset wind speed setting value
  • determine that the target angle of the inner air damper is a preset value of the inner angle of the air damper
  • determine the target angle of the outer air damper Set a value for the preset outside angle of the air deflector.
  • the temperature difference satisfies a second preset condition.
  • the preset temperature reference value is a sum of a target temperature and a compensation temperature in a current operating mode of the air conditioner.
  • a temperature difference formed between the indoor ambient temperature and a preset temperature reference value is determined every preset time interval.
  • the present disclosure provides a somatosensory air volume adjustment device, which is characterized in that the somatosensory air volume adjustment device includes:
  • a temperature acquisition unit for acquiring an indoor ambient temperature
  • a temperature difference calculation unit configured to determine a temperature difference between the indoor ambient temperature and a preset temperature reference value every preset time interval
  • the somatosensory air volume adjustment unit is configured to determine a target wind speed and a target angle of a wind deflector to adjust the somatosensory air volume when the temperature difference meets a first preset condition.
  • the present disclosure also provides an air conditioner, where the air conditioner includes:
  • Somatosensory air volume adjustment device installed in the memory and including one or more software function modules executed by the controller, the somatosensory air volume adjustment device includes:
  • a temperature acquisition unit for acquiring an indoor ambient temperature
  • a temperature difference calculation unit configured to determine a temperature difference between the indoor ambient temperature and a preset temperature reference value every preset time interval
  • the somatosensory air volume adjustment unit is configured to determine a target wind speed and a target angle of a wind deflector to adjust the somatosensory air volume when the temperature difference meets a first preset condition.
  • the method and device for adjusting somatosensory air volume described in the present disclosure have the following advantages:
  • the air conditioner has the same advantages as the above-mentioned method and device for adjusting the somatosensory air volume with respect to the prior art, and details are not described herein again.
  • FIG. 1 is a functional block diagram of an air conditioner according to an embodiment of the present disclosure.
  • FIG. 2 is a flowchart of a somatosensory air volume adjustment method according to an embodiment of the present disclosure.
  • FIG. 3 is a specific flowchart of a somatosensory air volume adjustment method according to an embodiment of the present disclosure.
  • FIG. 4 is a specific flowchart of sub-step S2042 in FIG. 3.
  • FIG. 5 is a specific flowchart of sub-step S2044 in FIG. 3.
  • FIG. 6 is a specific flowchart of sub-step S304 in FIG. 3.
  • FIG. 7 is a specific flowchart of sub-step S3042 in FIG. 3.
  • FIG. 8 is a functional block diagram of the somatosensory air volume adjustment device according to the embodiment of the present disclosure.
  • Icons 1-air conditioner; 2-processor; 3-memory; 4-temperature detection module; 5-fan; 6-air guide mechanism; 7-somatosensory air volume adjustment device; 8-temperature acquisition unit; 9-temperature difference calculation unit 10-judgment unit; 11-somatosensory air volume adjustment unit.
  • the embodiment of the present disclosure provides an air conditioner 1 which is used to adjust the indoor temperature while ensuring that the user has a comfortable use experience at any time.
  • FIG. 1 is a functional block diagram of an air conditioner 1 according to an embodiment of the present disclosure.
  • the air conditioner 1 includes a memory 3, a processor 2, a temperature detection module 4, a fan 5, a guide fan 5, and a somatosensory air volume adjustment device 7.
  • the processor 2 is electrically connected to the memory 3, the temperature detection module 4, the fan 5, and the induced fan 5.
  • the somatosensory air volume adjusting device 7 includes at least one stored in the memory 3 in the form of software or firmware.
  • the memory 3 may be used to store software programs and units, such as program instructions / units corresponding to the somatosensory air volume adjustment device 7 and method in the embodiment of the present disclosure.
  • the processor 2 runs the somatosensory air volume adjustment device 7 stored in the memory 3 , Software programs and units of the method, thereby executing various functional applications and data processing, such as the somatosensory wind volume adjustment method provided by the embodiments of the present disclosure.
  • the memory 3 may be, but is not limited to, Random Access Memory (RAM), Read Only Memory (ROM), and Programmable Read-Only Memory (PROM). ), Erasable read-only memory (Erasable, Programmable, Read-Only Memory, EPROM), electrically erasable read-only memory (Electric, Erasable, Programmable, Read-Only Memory, EEPROM), etc.
  • the processor 2 may be an integrated circuit chip with signal processing capabilities.
  • the above processor 2 may be a general-purpose processor, including a central processing unit (CPU), a network processor (Network Processor) (NP), etc .; it may also be a digital signal processor (DSP), an application specific integrated circuit (ASIC), field programmable gate array (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components.
  • CPU central processing unit
  • NP Network Processor
  • DSP digital signal processor
  • ASIC application specific integrated circuit
  • FPGA field programmable gate array
  • the temperature detection module 4 is configured to detect the indoor ambient temperature and transmit the indoor ambient temperature to the processor 2.
  • the temperature detection module 4 includes a temperature sensor.
  • the fan 5 is used to adjust the wind speed under the control of the controller.
  • the deflector 5 is configured to adjust the angle of the deflector under the control of the controller.
  • the air deflector angle includes an inner air deflector angle and an outer air deflector angle.
  • the somatosensory wind volume can be adjusted.
  • FIG. 1 is only schematic, and the air conditioner 1 may further include more or fewer components than those shown in FIG. 1, or have a different configuration from that shown in FIG. 1.
  • Each component shown in FIG. 1 may be implemented by hardware, software, or a combination thereof.
  • the embodiment of the present disclosure provides a somatosensory air volume adjustment method, which is applied to the air conditioner 1 and is used to adjust the indoor temperature while ensuring that the user has a comfortable use experience at any time.
  • FIG. 2 is a flowchart of a somatosensory air volume adjustment method according to an embodiment of the present disclosure.
  • the somatosensory wind volume adjustment method includes:
  • Step S201 Obtain an indoor ambient temperature.
  • the indoor ambient temperature can be obtained by detecting the temperature sensor of the air conditioner 1.
  • the temperature sensor can detect the indoor environment temperature in real time and transmit the indoor environment temperature to the controller in real time; the temperature sensor can also detect the indoor environment temperature in real time, but will detect the detected indoor temperature at a preset time interval.
  • the ambient temperature is transmitted to the controller; the temperature sensor may also detect the indoor ambient temperature at a preset time interval, and transmit the indoor ambient temperature to the controller after detecting the indoor ambient temperature.
  • Step S202 Determine a temperature difference between the indoor ambient temperature and a preset temperature reference value every preset time interval.
  • the preset temperature reference value is related to the operation mode of the air conditioner 1 and the target temperature set by the user. Specifically, the preset temperature reference value is a sum of a user-set target temperature and a compensation temperature in the current operation mode.
  • the preset temperature reference value is the sum of the target temperature set by the user and the compensation temperature in the sleep mode.
  • the temperature difference between the indoor ambient temperature and the preset temperature reference value is determined at a preset time interval.
  • the temperature difference between the indoor environment temperature and the preset temperature reference value when the air conditioner 1 is running is relatively large.
  • the possibility that the temperature difference meets the first preset condition is very small.
  • the indoor environment temperature and the The temperature difference formed by the preset temperature reference value usually only brings more operating burden to the controller; however, after the air conditioner 1 is operated for a period of time, the temperature difference between the indoor ambient temperature and the preset temperature reference value is determined. At this time, the indoor ambient temperature is relatively stable, which can avoid the above problems.
  • the temperature difference between the indoor environment temperature and the preset temperature reference value is determined every predetermined time interval.
  • Step S203 Determine whether the temperature difference satisfies the first preset condition, and if yes, perform step S204; if not, perform step S201 again.
  • the temperature difference satisfies the first preset condition by judging whether there are three temperature differences determined in two adjacent time intervals in order of time. When there are three temperature differences determined in two adjacent time intervals, When decreasing in chronological order, the temperature difference satisfies the first preset condition; otherwise, the temperature difference does not satisfy the first preset condition.
  • the preset temperature reference value is the sum of the target temperature set by the user and the compensation temperature in the sleep mode.
  • 2min ⁇ ⁇ t ⁇ 4min where ⁇ t is a time interval.
  • ⁇ t is a time interval.
  • the time interval may be, but is not limited to, 2 min, 2.5 min, 3 min, 3.5 min, or 4 min.
  • ⁇ T 0s , ⁇ T 180s, and ⁇ T 360s are three temperature differences determined within two adjacent time intervals.
  • ⁇ T 0s ⁇ T 180s ⁇ T 360s the temperature difference is considered to meet the first preset condition; otherwise, the temperature difference is considered The first preset condition is not satisfied.
  • the somatosensory wind volume needs to be further adjusted to increase user comfort.
  • Step S204 Determine the target wind speed and the target angle of the air deflector based on the current temperature difference and the current indoor ambient temperature to adjust the amount of somatosensory wind.
  • the current temperature difference is the last one determined among the three temperature differences determined in two consecutive time intervals that are sequentially reduced in time.
  • the current indoor environment temperature is the indoor environment detected when the temperature difference is determined. Temperature; for example, the indoor ambient temperature detected at ⁇ T 360s and 360s as described above.
  • the target angle of the air deflector includes the target angle of the outer air deflector.
  • the step S204 includes:
  • Sub-step S2041 determine whether the current temperature difference is less than a preset first threshold, and if yes, execute sub-step S2042; if not, execute sub-step S2043.
  • a first threshold value and a second threshold value are set for the temperature difference, thereby dividing the temperature difference into three intervals.
  • the first threshold is smaller than the second threshold.
  • the first threshold is 0 ° C and the second threshold is 1 ° C.
  • the first threshold and the second threshold may be other values, and it suffices that the first threshold is smaller than the second threshold.
  • the interval in which the current temperature difference is located it is possible to determine how close the current indoor ambient temperature is to a preset temperature reference value. Specifically, if the current temperature difference is less than the preset first threshold value, it indicates that the indoor ambient temperature is already very close to the preset temperature reference value. At this time, it is necessary to further adjust the wind speed and the angle of the air deflector to adjust the amount of body-sensing wind.
  • the somatosensory air volume refers to the air volume that the user can feel.
  • the higher the wind speed and the larger the angle of the air deflector the greater the amount of somatosensory wind; the lower the wind speed and the smaller the angle of the air deflector, the smaller the amount of somatosensory wind.
  • Sub-step S2042 determining the target wind speed based on the current indoor environment temperature, the preset first wind speed, the preset second wind speed, and the preset third wind speed, and based on the current indoor environment temperature and the preset external guide
  • the first angle of the air damper and the preset second angle of the outer air damper determine the target angle of the outer air damper.
  • the sub-step S2042 includes:
  • Sub-step S20421 Determine whether the current indoor ambient temperature is less than a preset first ambient temperature, and if so, execute sub-step S20422; if not, execute sub-step S20423.
  • the embodiment of the present disclosure presets the first ambient temperature, the second ambient temperature, and the third ambient temperature for the current indoor ambient temperature, thereby dividing the current indoor ambient temperature into four sections.
  • the first ambient temperature, the second ambient temperature, and the third ambient temperature increase in order.
  • the first ambient temperature is 23 ° C
  • the second ambient temperature is 25 ° C
  • the third ambient temperature is 27 ° C.
  • the first environment temperature, the second environment temperature, and the third environment temperature may be other values, and the relationship between the first environment temperature, the second environment temperature, and the third environment temperature may be sequentially increased.
  • the user's current somatosensory temperature can be determined.
  • Sub-step S20422 Determine that the target wind speed is a preset first wind speed, and determine that the target angle of the outer guide damper is a preset first guide wind angle.
  • the first wind speed, the first wind speed, and the third wind speed are preset for the air conditioner 1, and the first angle of the outer air guide door and the outer guide are also preset for the air conditioner 1.
  • the second angle of the damper is preset for the air conditioner 1.
  • the first wind speed, the first wind speed, and the third wind speed increase in sequence, and the second angle of the outer air damper is greater than the first angle of the outer air damper.
  • the value of the speed of the blades corresponding to the first wind speed ranges from 400 to 600 rpm
  • the value of the speed of the blades corresponding to the second wind speed ranges from 700 to 1000 rpm. minute.
  • the first angle ⁇ w1 of the outer air damper is 35 °
  • the second angle ⁇ w2 of the outer air damper is 45 °.
  • the first angle of the outer air damper and the second angle of the outer air damper may also be other values, as long as they meet the range set above.
  • the target wind speed is determined to be the smallest first wind speed
  • the target angle of the outer guide damper is determined to be the smaller first angle of the outer guide damper, so as to minimize the influence of the air volume on the user comfort.
  • Sub-step S20423 determine whether the current indoor ambient temperature is less than a preset second ambient temperature, and if so, execute sub-step S20424; if not, execute sub-step S20425.
  • Sub-step S20424 determining that the target wind speed is a preset first wind speed and determining that the target angle of the outer air guide valve is a preset second air guide door angle.
  • the target wind speed is determined to be the smallest first wind speed to reduce the impact of the wind volume on user comfort.
  • the second angle of the large outer air deflector is to maintain the current indoor ambient temperature.
  • Sub-step S20425 Determine whether the current indoor ambient temperature is less than a preset third ambient temperature, and if so, execute sub-step S20426; if not, execute sub-step S20427.
  • Sub-step S20426 determining that the target wind speed is a smaller value between the preset wind speed setting value and the preset second wind speed and determining the target angle of the outer guide damper as the second preset outer guide damper angle.
  • the preset wind speed setting value is a wind speed value set by the user.
  • the current indoor ambient temperature is greater than or equal to the preset second ambient temperature and less than the preset third ambient temperature, it indicates that the indoor ambient temperature is high. At this time, a large amount of somatosensory wind is needed to improve the user's comfort, but Because the indoor ambient temperature is not the highest, the corresponding somatosensory wind volume is also appropriately reduced, so that the target wind speed is determined to be the smaller of the preset wind speed setting value and the preset second wind speed; similarly, the external The target angle of the air deflector is determined as the larger second angle of the outer air deflector to maintain the current indoor ambient temperature.
  • Sub-step S20427 determining that the target wind speed is a smaller value between a preset wind speed setting value and a preset third wind speed and determining a target angle of the outer guide damper as a second preset outer guide damper angle.
  • the target wind speed is determined as a preset wind speed setting value and The smaller value of the preset third wind speed; similarly, the target angle of the outer air damper is determined as the second angle of the larger outer air damper to maintain the current indoor ambient temperature.
  • Sub-step S2043 Determine whether the current temperature difference is less than a preset second threshold, and if yes, execute sub-step S2044; if not, execute sub-step S2045.
  • Sub-step S2044 determine the target angle of the external air guide valve as the second angle of the external air door that is preset, and based on the current indoor ambient temperature, the preset wind speed setting value, the preset first wind speed, and the preset The second wind speed and the preset third wind speed determine the target wind speed.
  • the current temperature difference is greater than or equal to the preset first threshold value and less than the preset second threshold value, it indicates that the indoor ambient temperature is already close to the preset temperature reference value. At this time, the wind speed and the air deflector angle need to be adjusted further. To adjust the somatosensory wind volume.
  • the indoor ambient temperature is only relatively close to the preset temperature reference value, that is, the indoor ambient temperature has a certain space from the preset temperature reference value, so the target angle of the outer air damper is determined to be large.
  • the second angle of the preset external air damper is to maintain the current indoor ambient temperature, and at the same time, in the case of the compressor cooling, the indoor ambient temperature is closer to the preset temperature reference value.
  • the sub-step S2044 includes:
  • Sub-step S20441 Determine whether the current indoor ambient temperature is less than a preset first ambient temperature, and if so, execute sub-step S20442; if not, execute sub-step S20443.
  • Sub-step S20442 Determine that the target wind speed is the preset first wind speed.
  • the target wind speed is determined as the minimum first wind speed.
  • Sub-step S20443 Determine whether the current indoor ambient temperature is less than a preset second ambient temperature, and if so, execute sub-step S20444; if not, execute sub-step S20445.
  • Sub-step S20444 determining that the target wind speed is a smaller value between the preset wind speed setting value and the preset second wind speed.
  • the current indoor ambient temperature is greater than or equal to the preset first ambient temperature and less than the preset second ambient temperature, it indicates that the indoor ambient temperature is low, so its corresponding somatosensory wind volume is also appropriately reduced. There is still some room for the preset temperature reference value. Under the current conditions, the amount of somatosensory wind should be greater than the amount of somatosensory wind in the case of the same current indoor ambient temperature and the current temperature difference is smaller, so the target wind speed is determined as a preset. The smaller wind speed setting value and the preset second wind speed.
  • Sub-step S20445 determine whether the current indoor ambient temperature is less than a preset third ambient temperature, and if so, execute sub-step S20446; if not, execute sub-step S20447.
  • Sub-step S20446 determining that the target wind speed is a smaller value between the preset wind speed setting value and the preset third wind speed.
  • the current indoor ambient temperature is greater than or equal to the preset second ambient temperature and less than the preset third ambient temperature, it indicates that the indoor ambient temperature is high. At this time, a large amount of somatosensory wind is needed to improve the user's comfort, but Because the indoor ambient temperature has a certain distance from the preset temperature reference value, the corresponding somatosensory air volume under the current situation should be greater than the same so-called indoor ambient temperature, and the current somatosensory air volume corresponding to a smaller current temperature difference.
  • the wind speed is determined to be a smaller value between a preset wind speed setting value and a preset third wind speed.
  • Sub-step S20447 Determine that the target wind speed is a preset wind speed setting value.
  • the current indoor ambient temperature is greater than or equal to the third ambient temperature, it indicates that the indoor ambient temperature is very high. At this time, a large amount of somatosensory wind is needed to improve the user's comfort, and the target wind speed is determined as a preset wind speed setting value.
  • Sub-step S2045 Determine that the target wind speed is a preset wind speed setting value, and determine that the target angle of the outer air damper is the second angle of the outer air damper that is preset.
  • the target wind speed is determined to be the preset wind speed set value, and determined.
  • the target angle of the outer deflector is the second angle of the pre-set outer deflector, so that the user can obtain the maximum amount of physical wind, which is more cool and comfortable.
  • Step S205 Determine whether the temperature difference satisfies the second preset condition, and if yes, execute step S206; if not, execute step S204 again.
  • the temperature difference satisfies a second preset condition by judging whether there are three temperature differences determined in two adjacent time intervals that increase sequentially in time and the current temperature difference is greater than or equal to a preset second threshold.
  • the temperature difference meets the second preset condition; otherwise, the temperature difference does not meet the second preset condition.
  • Step S206 Determine the target wind speed to be a preset wind speed setting value, determine the target angle of the inner air damper to be a preset internal angle setting value, and determine the target angle of the outer air damper to be a preset external angle of the air guide valve Set value.
  • the embodiment of the present disclosure also provides a method for adjusting the somatosensory air volume. It should be noted that the basic principle and technical effect of the somatosensory air volume adjustment method provided by this embodiment are the same as those of the above embodiment. For a brief description, the parts not mentioned in this embodiment can be referred to the above embodiment. Corresponding content.
  • the target angle of the air deflector includes not only the target angle of the outer air deflector, but also the target angle of the inner air deflector. That is, while adjusting the target angle of the outer air damper, the target angle of the inner air damper is also adjusted.
  • step S304 further includes:
  • Sub-step S3041 It is determined whether the current temperature difference is less than a preset first threshold, and if so, sub-step S3042 is performed; if not, sub-step S3043 is performed.
  • Sub-step S3042 Determine the target angle of the inner air damper based on the current indoor ambient temperature, the preset first air damper first angle, and the preset inner air damper second angle.
  • the sub-step S3042 includes:
  • Sub-step S30421 determine whether the current indoor ambient temperature is less than a preset first ambient temperature, and if so, execute sub-step S30422; if not, execute sub-step S30423.
  • Sub-step S30422 determining that the target angle of the inner air damper is a preset first angle of the inner air damper.
  • the first angle ⁇ n1 of the inner air damper is 48 °
  • the second angle ⁇ w2 of the inner air damper is 58 °.
  • the first angle of the inner air damper and the second angle of the inner air damper may also be other values, as long as they meet the range set above.
  • the target angle of the inner air damper is determined as the smaller first angle of the inner air damper, so as to minimize the influence of the air volume on user comfort.
  • Sub-step S30423 Determine that the target angle of the inner air damper is a preset second angle of the inner air damper.
  • the target angle of the inner air damper is determined to be the larger second angle of the inner air damper, so as to reduce the amount of sensed wind. To maintain the current indoor ambient temperature.
  • Sub-step S3043 determining that the target angle of the inner air damper is a preset second angle of the inner air damper.
  • the angle of the air deflector needs to be further adjusted to adjust the amount of air sensed by the body.
  • FIG. 8 is a functional block diagram of a somatosensory air volume adjustment device 7 according to an embodiment of the present disclosure. It should be noted that the basic principle and technical effect of the somatosensory air volume adjustment device 7 provided in this embodiment are the same as those of the above embodiment. For a brief description, the parts not mentioned in this embodiment can be referred to the above implementation. The corresponding content in the example.
  • the somatosensory air volume adjustment device 7 includes a temperature acquisition unit 8, a temperature difference calculation unit 9, a determination unit 10, and a somatosensory air volume adjustment unit 11.
  • the temperature obtaining unit 8 is configured to obtain an indoor ambient temperature.
  • the temperature obtaining unit 8 may be configured to perform step S201.
  • the temperature difference calculation unit 9 is configured to determine a temperature difference between the indoor ambient temperature and a preset temperature reference value every preset time interval.
  • the temperature difference calculation unit 9 may be configured to execute step S202.
  • the determining unit 10 is configured to determine whether the temperature difference satisfies a first preset condition.
  • the determining unit 10 may be configured to execute step S203.
  • the somatosensory air volume adjustment unit 11 is configured to determine the target wind speed and the target angle of the air deflector based on the current temperature difference and the current indoor environment temperature to adjust the somatosensory air volume when the temperature difference meets the first preset condition.
  • the somatosensory wind volume adjustment unit 11 is configured to, when the current temperature difference is less than a preset first threshold, based on the current indoor ambient temperature, the preset first wind speed, the preset second wind speed, and the preset
  • the third wind speed determines the target wind speed, and is based on the current indoor ambient temperature, a preset first angle of the inner air damper, a preset second angle of the inner air damper, a preset first angle of the outer air damper, and a preset
  • the fixed second angle of the outer air damper determines the target angle of the inner air damper and the target angle of the outer air damper.
  • the somatosensory wind volume adjustment unit 11 is configured to determine that the target wind speed is the preset first wind speed when the current temperature difference is less than a preset first threshold value and the current indoor ambient temperature is less than the preset first ambient temperature. It is determined that the target angle of the inner air damper and the target angle of the outer air damper are a preset first angle of the inner air damper and a preset first angle of the outer air damper, respectively.
  • the somatosensory air volume adjustment unit 11 is further configured to: when the current temperature difference is less than a preset first threshold and the current indoor ambient temperature is greater than or equal to the preset first ambient temperature and less than a preset second At ambient temperature, the target wind speed is determined to be a preset first wind speed, and the target angle of the inner guide damper and the target angle of the outer guide damper are respectively a preset second angle of the inner guide door, and a preset second outer guide door. angle.
  • the somatosensory air volume adjustment unit 11 is further configured to: when the current temperature difference is less than a preset first threshold and the current indoor environment temperature is greater than or equal to the preset second ambient temperature and less than a preset third ambient temperature , Determine that the target wind speed is the smaller of the preset wind speed setting value and the preset second wind speed, and determine that the target angle of the inner guide damper and the target angle of the outer guide damper are the second preset inner guide damper, respectively. Angle, the preset second angle of the outer air damper.
  • the somatosensory wind volume adjusting unit 11 is further configured to determine that the target wind speed is a preset wind speed when the current temperature difference is less than a preset first threshold value and the current indoor environment temperature is greater than or equal to the preset third environment temperature.
  • the somatosensory air volume adjustment unit 11 is further configured to determine that the target angle of the internal air guide valve is a predetermined internal air guide valve when the current temperature difference is greater than or equal to the predetermined first threshold value and less than a predetermined second threshold value.
  • the second angle determines the target angle of the outer air guide valve to be the second angle of the preset outer air door, and is based on the current indoor ambient temperature, the preset wind speed setting value, the preset first wind speed, and the preset The first wind speed and the preset third wind speed determine the target wind speed.
  • the somatosensory air volume adjustment unit 11 is further configured to: when the current temperature difference is greater than or equal to the preset first threshold value and less than a preset second threshold value, and the current indoor environment temperature is less than the preset first environment When the temperature is determined, the target wind speed is determined as the preset first wind speed.
  • the somatosensory air volume adjustment unit 11 is further configured to when the current temperature difference is greater than or equal to the preset first threshold and the current indoor ambient temperature is greater than or equal to the preset first ambient temperature and less than the preset first When the ambient temperature is two, it is determined that the target wind speed is a smaller value between the preset wind speed setting value and the preset second wind speed.
  • the somatosensory air volume adjustment unit 11 is further configured to: when the current temperature difference is greater than or equal to the preset first threshold and the current indoor ambient temperature is greater than or equal to the preset second ambient temperature and less than the preset first At three ambient temperatures, it is determined that the target wind speed is a smaller value between the preset wind speed setting value and the preset third wind speed.
  • the somatosensory wind volume adjustment unit 11 is further configured to determine the target wind speed when the current temperature difference is greater than or equal to the preset first threshold and the current indoor ambient temperature is greater than or equal to the preset third ambient temperature. Set value for preset wind speed.
  • the somatosensory air volume adjustment unit 11 may be configured to perform steps S204, substep S2041, substep S2042, substep S2043, substep S2044, substep S20421, substep S20422, and substep S20423.
  • the determination unit 10 is further configured to determine whether the temperature difference satisfies a second preset condition.
  • the determining unit 10 may be configured to execute step S205.
  • the somatosensory air volume adjustment unit 11 is further configured to determine that the target wind speed is a preset wind speed setting value when the temperature difference meets the second preset condition, and determine that the target angle of the inner air guide valve is a preset air angle setting value of the air guide valve. It is determined that the target angle of the outer deflector is the preset value of the outer angle of the deflector.
  • the somatosensory wind volume adjustment unit 11 may be further configured to execute step S206.
  • the somatosensory air volume adjustment method, device, and air conditioner obtained by the embodiments of the present disclosure obtain the indoor ambient temperature and determine the indoor ambient temperature and the preset temperature reference every preset time interval.
  • the temperature difference formed by the values, so that when the temperature difference satisfies the first preset condition, the target wind speed and the target angle of the air deflector are determined based on the current temperature difference and the current indoor environment temperature to adjust the somatosensory air volume;
  • Based on the current temperature difference and the current indoor ambient temperature determine the user's degree of tolerance to the air volume, so as to determine the target wind speed and the target angle of the air deflector.
  • the air volume can be adjusted to make the user comfortable at any time. , Avoiding the discomfort caused to the user due to the excessive indoor air temperature due to the low indoor ambient temperature, and improving the user experience.
  • each block in the flowchart or block diagram may represent a module, a program segment, or a part of code, which contains one or more components for implementing a specified logical function Executable instructions.
  • the functions marked in the blocks may also occur in a different order than those marked in the drawings.
  • each block in the block diagrams and / or flowcharts, and combinations of blocks in the block diagrams and / or flowcharts can be implemented in a dedicated hardware-based system that performs the specified function or action. , Or it can be implemented with a combination of dedicated hardware and computer instructions.
  • the functional modules in the various embodiments of the present disclosure may be integrated together to form an independent part, or each of the modules may exist alone, or two or more modules may be integrated to form an independent part.
  • the functions are implemented in the form of software function modules and sold or used as independent products, they can be stored in a computer-readable storage medium.
  • the technical solution of the present disclosure is essentially a part that contributes to the existing technology or a part of the technical solution may be embodied in the form of a software product.
  • the computer software product is stored in a storage medium, including Several instructions are used to cause a computer device (which may be a personal computer, a server, or a network device, etc.) to perform all or part of the steps of the method described in various embodiments of the present disclosure.
  • the foregoing storage media include: U disk, mobile hard disk, read-only memory (ROM, Read-Only Memory), random access memory (RAM, Random Access Memory), magnetic disks or optical disks and other media that can store program codes .

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Abstract

一种体感风量调节方法、装置及空调器,该方法通过获取室内环境温度,并每隔预设定的时间间隔确定一次室内环境温度与预设定的温度参考值形成的温差,从而当温差满足第一预设条件时,基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量。

Description

一种体感风量调节方法、装置及空调器 技术领域
本公开涉及空调器技术领域,特别涉及一种体感风量调节方法、装置及空调器。
背景技术
随着经济的不断进步,空调器的应用也越来越广泛,由于空调器可通过调节室内环境温度来为用户带来舒适的体验,空调器成为了最为常见的家用电器之一。
但在通常情况下,在室温较高的时候吹到凉风会感觉非常凉爽,而当室温逐渐降低到一定程度时,即使是被很轻微的风吹到,也会有不适感存在,导致用户的体验下降。
公开内容
有鉴于此,本公开旨在提出一种体感风量调节方法、装置及空调器,以解决上述问题。
为达到上述目的,本公开的技术方案是这样实现的:
第一方面,本公开提供了一种体感风量调节方法,所述体感风量调节方法包括:
获取室内环境温度;
每隔预设定的时间间隔确定一次所述室内环境温度与预设定的温度参考值形成的温差;
当所述温差满足第一预设条件时,基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量。
进一步地,所述导风门目标角度包括外导风门目标角度,所述基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量的步骤包括:
当所述当前温差小于预设定的第一阈值时,基于所述当前室内环境温度、预设定的第一风速、预设定的第二风速、预设定的第三风速确定所述目标风速,并基于所述当前室内环境温度、预设定的外导风门第一角度及预设定的外导风门第二角度确定所述外导风门目标角度;
当所述当前温差大于或等于所述预设定的第一阈值且小于预设定的第二阈值时,确定所述外导风门目标角度为预设定的外导风门第二角度,并基于所述当前室内环境温度、所述预设定的风速设定值、预设定的第一风速、预设定的第一风速、预设定的第三风速确定所述目标风速;
当所述当前温差大于或等于所述预设定的第二阈值时,确定所述目标风速为预设定的风速设定值,确定所述外导风门目标角度为预设定的外导风门第二角度。
进一步地,所述基于所述当前室内环境温度、所述预设定的风速设定值、预设定的第一风速、预设定的第二风速、预设定的第三风速确定所述目标风速的步骤包括:
当所述当前室内环境温度小于预设定的第一环境温度时,确定所述目标风速为所述预设定的第一风速;
当所述当前室内环境温度大于或等于所述预设定的第一环境温度且小于预设定的第二环境温度时,确定所述目标风速为所述预设定的风速设定值与所述预设定的第二风速中的较小值;
当所述当前室内环境温度大于或等于所述预设定的第二环境温度且小于预设定的第三环境温度时,确定所述目标风速为所述预设定的风速设定值与所述预设定的第三风速中的较小值;
当所述当前室内环境温度大于或等于所述预设定的第三环境温度时,确定所述目标风速为预设定的风速设定值。
进一步地,所述基于所述当前室内环境温度、预设定的第一风速、预设定的第二风速、预设定的第三风速确定所述目标风速的步骤包括:
当所述当前室内环境温度小于预设定的第一环境温度时,确定所述目标风速为所述预设定的第一风速;
当所述当前室内环境温度大于或等于所述预设定的第一环境温度且小于预设定的第二环境温度时,确定所述目标风速为所述预设定的第一风速;
当所述当前室内环境温度大于或等于所述预设定的第二环境温度且小于预设定的第三环境温度时,确定所述目标风速为所述预设定的风速设定值与所述预设定的第二风速中的较小值;
当所述当前室内环境温度大于或等于预设定的所述第三环境温度时,确定所述目标风速为所述预设定的风速设定值与所述预设定的第三风速中的较小值。
进一步地,所述基于所述当前室内环境温度、预设定的外导风门第一角度及预设定的外导风门第二角度确定所述外导风门目标角度的步骤包括:
当所述室内环境温度小于预设定的第一环境温度时,确定所述外导风门目标角度为预设定的外导风门第一角度;
当所述室内环境温度大于或等于预设定的第一环境温度时,确定所述外导风门目标角度为预设定的外导风门第二角度。
进一步地,所述导风门目标角度还包括内导风门目标角度,所述基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量的步骤包括:
当所述当前温差小于预设定的第一阈值时,基于所述当前室内环境温度、预设定的内导风门第一角度、预设定的内导风门第二角度确定所述内导风门目标角度;
当所述当前温差大于或等于所述预设定的第一阈值时,确定所述内导风门目标角度为预设定的内导风门第二角度。
进一步地,所述基于所述当前室内环境温度、预设定的内导风门第一角度、预设定的内导风门第二角度确定所述内导风门目标角度的步骤包括:
当所述室内环境温度小于预设定的第一环境温度时,确定所述内导风门目标角度为预设定的内导风门第一角度;
当所述室内环境温度大于或等于预设定的第一环境温度时,确定所述内导风门目标角度为预设定的内导风门第二角度。
进一步地,43°≤θ n1≤53°,54°≤θ n2≤63°,其中,θ n1为内导风门第一角度,θ n2为内导风门第二角度。
进一步地,所述第一阈值为0℃,所述第二阈值为1℃。
进一步地,所述第一风速对应的风叶转速的取值范围为400~600转/分钟,所述第二风速对应的风叶转速的取值范围为700~1000转/分钟。
进一步地,30°≤θ w1≤40°,41°≤θ w2≤50°,其中,θ w1为外导风门第一角 度,θ w2为外导风门第二角度。
进一步地,当相邻两个所述时间间隔内确定的三个所述温差按时间顺序依次减小时,所述温差满足所述第一预设条件。
进一步地,所述导风门目标角度还包括内导风门目标角度以及外导风门目标角度,所述体感风量调节方法还包括:
判断所述温差是否满足第二预设条件;
若温差不满足第二预设条件,则基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量;
若所述温差满足第二预设条件,则确定目标风速为预设定的风速设定值,确定内导风门目标角度为预设定的导风门内角度设定值,确定外导风门目标角度为预设定的导风门外角度设定值。
进一步地,当相邻两个时间间隔内确定的三个温差按时间顺序依次增大且当前温差大于或等于预设定的第二阈值时,所述温差满足第二预设条件。
进一步地,所述预设定的温度参考值为目标温度与空调器当前运行模式下的补偿温度的和。
进一步地,当所述空调器的运行时间达到第一时间时,每隔预设定的时间间隔确定一次所述室内环境温度与预设定的温度参考值形成的温差。
第二方面,本公开提供了一种体感风量调节装置,其特征在于,所述体感风量调节装置包括:
温度获取单元,用于获取室内环境温度;
温差计算单元,用于每隔预设定的时间间隔确定一次所述室内环境温度与预设定的温度参考值形成的温差;
体感风量调节单元,用于当所述温差满足第一预设条件时,基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量。
第三方面,本公开还提供了一种空调器,所述空调器包括:
存储器;
控制器;及
体感风量调节装置,所述体感风量调节装置安装于所述存储器并包括 一个或多个由所述控制器执行的软件功能模块,所述体感风量调节装置包括:
温度获取单元,用于获取室内环境温度;
温差计算单元,用于每隔预设定的时间间隔确定一次所述室内环境温度与预设定的温度参考值形成的温差;
体感风量调节单元,用于当所述温差满足第一预设条件时,基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量。
相对于现有技术,本公开所述的一种体感风量调节方法及装置具有以下优势:
通过获取室内环境温度,并每隔预设定的时间间隔确定一次所述室内环境温度与预设定的温度参考值形成的温差,从而当所述温差满足第一预设条件时,基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量;当所述温差满足第一预设条件时,通过当前温差及当前室内环境温度判定用户对于风量的可承受程度,从而确定目标风速以及导风门目标角度,基于此方法确定的目标风速以及导风门目标角度调节风量,可使用户随时处于舒适状态,避免了由于室内环境温度较低而风量过大对用户造成的不适感,提升了用户体验。
所述空调器与上述体感风量调节方法及装置相对于现有技术所具有的优势相同,在此不再赘述。
附图说明
构成本公开的一部分的附图用来提供对本公开的进一步理解,本公开的示意性实施例及其说明用于解释本公开,并不构成对本公开的不当限定。在附图中:
图1为本公开实施例所述的空调器的功能框图。
图2为本公开实施例所述的体感风量调节方法的流程图。
图3为本公开实施例所述的体感风量调节方法的具体流程图。
图4为图3中子步骤S2042的具体流程图。
图5为图3中子步骤S2044的具体流程图。
图6为图3中子步骤S304的具体流程图。
图7为图3中子步骤S3042的具体流程图。
图8为本公开实施例所述的体感风量调节装置的功能模块图。
图标:1-空调器;2-处理器;3-存储器;4-温度检测模块;5-风机;6-导风机构;7-体感风量调节装置;8-温度获取单元;9-温差计算单元;10-判断单元;11-体感风量调节单元。
具体实施方式
为使本公开的目的、技术方案和优点更加清楚明白,以下结合具体实施例,并参照附图,对本公开进一步详细说明。其中一些但并非全部的实施例将被示出。实际上,本公开的各种实施例可以许多不同形式实现,而不应被解释为限于此数所阐述的实施例。在不冲突的情况下,本公开中的实施例及实施例中的特征可以相互组合。
下面将结合本公开实施例中附图,对本公开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公开一部分实施例,而不是全部的实施例。通常在此处附图中描述和示出的本公开实施例的组件可以以各种不同的配置来布置和设计。因此,以下对在附图中提供的本公开的实施例的详细描述并非旨在限制要求保护的本公开的范围,而是仅仅表示本公开的选定实施例。基于本公开的实施例,本领域技术人员在没有做出创造性劳动的前提下所获得的所有其他实施例,都属于本公开保护的范围。
需要说明的是,术语“第一”和“第二”等之类的关系术语仅仅用来将一个实体或者操作与另一个实体或操作区分开来,而不一定要求或者暗示这些实体或操作之间存在任何这种实际的关系或者顺序。而且,术语“包括”、“包含”或者其任何其他变体意在涵盖非排他性的包含,从而使得包括一系列要素的过程、方法、物品或者设备不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种过程、方法、物品或者设备所固有的要素。在没有更多限制的情况下,由语句“包括一个……”限定的要素,并不排除在包括所述要素的过程、方法、物品或者设备中还存在另外的相同要素。
第一实施例
本公开实施例提供了一种空调器1,用于调节室内温度的同时,还能 保证用户随时都具备舒适的使用体验。请参阅图1,为本公开实施例提供的空调器1的功能框图。该空调器1包括:存储器3、处理器2、温度检测模块4、风机5、导风机5构以及体感风量调节装置7。其中,处理器2与存储器3、温度检测模块4、风机5以及导风机5构均电连接。所述体感风量调节装置7包括至少一个可以软件或固件(firmware)的形式存储于所述存储器3中。
其中,存储器3可用于存储软件程序以及单元,如本公开实施例中的体感风量调节装置7及方法所对应的程序指令/单元,处理器2通过运行存储在存储器3内的体感风量调节装置7、方法的软件程序以及单元,从而执行各种功能应用以及数据处理,如本公开实施例提供的体感风量调节方法。其中,所述存储器3可以是,但不限于,随机存取存储器(Random Access Memory,RAM),只读存储器3(Read Only Memory,ROM),可编程只读存储器(Programmable Read-Only Memory,PROM),可擦除只读存储器(Erasable Programmable Read-Only Memory,EPROM),电可擦除只读存储器(Electric Erasable Programmable Read-Only Memory,EEPROM)等。
处理器2可能是一种集成电路芯片,具有信号的处理能力。上述的处理器2可以是通用处理器,包括中央处理器(Central Processing Unit,简称CPU)、网络处理器(Network Processor,简称NP)等;还可以是数字信号处理器(DSP)、专用集成电路(ASIC)、现场可编程门阵列(FPGA)或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件。可以实现或者执行本公开实施例中的公开的各方法、步骤及逻辑框图。
温度检测模块4用于检测室内环境温度,并将室内环境温度传输至处理器2。
在一些实施例中,该温度检测模块4包括温度传感器。
风机5用于在控制器的控制下,调节风速。
导风机5构用于在控制器的控制下,调节导风门角度。
具体地,导风门角度包括导风门内角度以及导风门外角度。
可以理解地,通过综合调节风速以及导风门角度,可实现对体感风量的调节。
可以理解地,图1所示的结构仅为示意,空调器1还可包括比图1中所示更多或者更少的组件,或者具有与图1所示不同的配置。图1中所示的各组件可以采用硬件、软件或其组合实现。
第二实施例
本公开实施例提供了一种体感风量调节方法,应用于空调器1,用于调节室内温度的同时,还能保证用户随时都具备舒适的使用体验。请参阅图2,为本公开实施例提供的体感风量调节方法的流程图。该体感风量调节方法包括:
步骤S201:获取室内环境温度。
可以理解地,该室内环境温度可通过空调器1的温度传感器检测获得。需要说明的是,该温度传感器可实时检测室内环境温度,并实时将室内环境温度传输至控制器;该温度传感器也可以实时检测室内环境温度,但按照预设定的时间间隔将检测到的室内环境温度传输至控制器;该温度传感器也可以是按照预设定的时间间隔检测室内环境温度,并在检测到室内环境温度后便将该室内环境温度传输至控制器。
步骤S202:每隔预设定的时间间隔确定一次室内环境温度与预设定的温度参考值形成的温差。
需要说明的是,该预设定的温度参考值与空调器1的运行模式以及用户设定的目标温度有关。具体地,该预设定的温度参考值为用户设定的目标温度与当前运行模式下的补偿温度的和。
例如,当空调器1运行于睡眠模式时,该预设定的温度参考值即为用户设定的目标温度与睡眠模式下的补偿温度的和。
具体地,每隔预设定的时间间隔便计算室内环境温度与预设定的温度参考值的差值。设第i秒检测到的室内环境温度为t i,预设定的温度参考值为Ts,则每隔预设定的时间间隔便计算一次ΔT=T i-Ts。
在一些实施例中,该预设定的时间间隔为180秒。则依次计算ΔT 0s=T 0s-Ts、ΔT 180s=T 180s-Ts、ΔT 360s=T 360s-Ts等等。需要说明的是,该预设定的时间间隔也可以为其他数值。
还需要说明的是,在一些实施例中,在空调器1运行一段时间后,才会每隔预设定的时间间隔确定一次室内环境温度与预设定的温度参考值 形成的温差。一般地,空调器1刚运行时的室内环境温度与预设定的温度参考值形成的温差较大,一般说来温差满足第一预设条件的可能性非常小,此时确定室内环境温度与预设定的温度参考值形成的温差通常只会给控制器带来更多的运行负担;然而在空调器1运行一段时间后再确定室内环境温度与预设定的温度参考值形成的温差,此时室内环境温度已经较为稳定,能避免上述问题。
在一些实施例中,在空调器1运行10分钟以后,才会每隔预设定的时间间隔确定一次室内环境温度与预设定的温度参考值形成的温差。
步骤S203:判断温差是否满足第一预设条件,如果是,则执行步骤S204;如果否,则重新执行步骤S201。
具体地,通过判断是否存在相邻两个时间间隔内确定的三个温差按时间顺序依次减小来判断温差是否满足第一预设条件,当存在相邻两个时间间隔内确定的三个温差按时间顺序依次减小时,温差满足第一预设条件;反之,温差不满足第一预设条件。
例如,当空调器1运行于睡眠模式时,该预设定的温度参考值即为用户设定的目标温度与睡眠模式下的补偿温度的和。
具体地,每隔预设定的时间间隔便计算室内环境温度与预设定的温度参考值的差值。设第i秒检测到的室内环境温度为T i,预设定的温度参考值为Ts,则每隔预设定的时间间隔便计算一次温差ΔT=T i-Ts。
在本实施例中,2min≤Δt≤4min,其中,Δt为时间间隔。通过将时间间隔的范围限定在2min~4min内,能够确保取值的均匀性,从而避免由于时间间隔过长或过短造成的结果偏差。该时间间隔可以但不仅限于2min、2.5min、3min、3.5min或4min等。
例如,ΔT 0s、ΔT 180s以及ΔT 360s是由相邻两个时间间隔内确定的三个温差,则当ΔT 0s<ΔT 180s<ΔT 360s时,认为温差满足第一预设条件;否则,认为温差不满足第一预设条件。
可以理解地,当相邻两个时间间隔内确定的三个温差按时间顺序依次减小时,表明室内环境温度与预设定的温度参考值越来越接近,从而在室内环境温度接近用户需求的情况下,需要进一步调节体感风量以增加用户的舒适度。
步骤S204:基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量。
需要说明的是,当前温差为按时间顺序依次减小的相邻两个时间间隔内确定的三个温差中最后确定的一个温差,当前室内环境温度即为确定该温差时所检测到的室内环境温度;例如为上文所述的ΔT 360s及第360s时所检测到的室内环境温度。
还需要说明的是,导风门目标角度包括外导风门目标角度。
具体地,请参阅图3,为本公开实施例提供的体感风量调节方法的具体流程图。该步骤S204包括:
子步骤S2041:判断当前温差是否小于预设定的第一阈值,如果是,则执行子步骤S2042;如果否,则执行子步骤S2043。
需要说明的是,本公开实施例为温差设定了第一阈值及第二阈值,从而将温差划分为3个区间。其中,第一阈值小于第二阈值,在一种一些实施例中,第一阈值为0℃,第二阈值为1℃。还需要说明的是,该第一阈值及第二阈值可以为其他值,满足第一阈值小于第二阈值即可。
通过判断当前温差所在区间,可确定当前室内环境温度与预设定的温度参考值的接近程度。具体地,若当前温差小于预设定的第一阈值,表明室内环境温度与预设定的温度参考值已经非常接近,此时需要进一步调节风速及导风门角度,以调节体感风量。
可以理解地,该体感风量是指用户能感受到的风量。一般地,风速越高、导风门角度越大,体感风量则越大;而风速越低、导风门角度越小,体感风量则越小。
子步骤S2042:基于当前室内环境温度、预设定的第一风速、预设定的第二风速、预设定的第三风速确定目标风速,并基于当前室内环境温度、预设定的外导风门第一角度及预设定的外导风门第二角度确定外导风门目标角度。
具体地,请参阅图4,为子步骤S2042的具体流程图。该子步骤S2042包括:
子步骤S20421:判断当前室内环境温度是否小于预设定的第一环境温度,如果是,则执行子步骤S20422;如果否,则执行子步骤S20423。
需要说明的是,本公开实施例为当前室内环境温度预设定了第一环境温度、第二环境温度以及第三环境温度,从而将当前室内环境温度划分为4个区间。其中,第一环境温度、第二环境温度以及第三环境温度依次增大,在一些实施例中,第一环境温度为23℃,第二环境温度为25℃,第三环境温度为27℃。还需要说明的是,该第一环境温度、第二环境温度以及第三环境温度可以为其他值,满足第一环境温度、第二环境温度以及第三环境温度依次增大的关系即可。
通过判断当前室内环境温度所在的区间,可确定用户当前的体感温度。
子步骤S20422:确定目标风速为预设定的第一风速,确定外导风门目标角度为预设定的外导风门第一角度。
需要说明的是,在本实施例中,为空调器1预设定了第一风速、第一风速以及第三风速,同时还为空调器1预设定了外导风门第一角度以及外导风门第二角度。
其中,第一风速、第一风速以及第三风速依次增大,外导风门第二角度大于外导风门第一角度。
还需要说明的是,在本实施例中,第一风速对应的风叶转速的取值范围为400~600转/分钟,第二风速对应的风叶转速的取值范围为700~1000转/分钟。
还需要说明的是,30°≤θ w1≤40°,41°≤θ w2≤50°,其中,θ w1为外导风门第一角度,θ w2为外导风门第二角度。
在一些实施例中,外导风门第一角度θ w1为35°,外导风门第二角度θ w2为45°。但需要说明的是,在其他实施例中,外导风门第一角度、外导风门第二角度也可以为其他值,满足上述设定的范围即可。
具体地,若当前室内环境温度小于预设定的第一环境温度,表明室内环境温度很低,若体感风量过高,会给用户造成不舒适的体验。因此,将目标风速确定为最小的第一风速,将外导风门目标角度确定为较小的外导风门第一角度,从而尽可能减小风量对用户舒适度的影响。
子步骤S20423:判断当前室内环境温度是否小于预设定的第二环境温度,如果是,则执行子步骤S20424;如果否,则执行子步骤S20425。
子步骤S20424:确定目标风速为预设定的第一风速并确定外导风门目 标角度为预设定的外导风门第二角度。
若当前室内环境温度大于或等于预设定的第一环境温度且小于预设定的第二环境温度,表明室内环境温度较低,若体感风量过高,会给用户造成不舒适的体验,但若直接将体感风量降至最低,容易造成室内环境温度的回升,因此将目标风速确定为最小的第一风速,以减小风量对用户舒适度的影响;同时将外导风门目标角度确定为较大的外导风门第二角度,以维持当前室内环境温度。
子步骤S20425:判断当前室内环境温度是否小于预设定的第三环境温度,如果是,则执行子步骤S20426;如果否,则执行子步骤S20427。
子步骤S20426:确定目标风速为预设定的风速设定值与预设定的第二风速中的较小值并确定外导风门目标角度为预设定的外导风门第二角度。
需要说明的是,该预设定的风速设定值为用户设定的风速值。
若当前室内环境温度大于或等于预设定的第二环境温度且小于预设定的第三环境温度,表明室内环境温度较高,此时需要较大的体感风量以提高用户的舒适度,但由于室内环境温度并非最高,因此其对应的体感风量也适当降低,从而将目标风速确定为预设定的风速设定值与预设定的第二风速中的较小值;同样地,将外导风门目标角度确定为较大的外导风门第二角度,以维持当前室内环境温度。
子步骤S20427:确定目标风速为预设定的风速设定值与预设定的第三风速中的较小值并确定外导风门目标角度为预设定的外导风门第二角度。
若当前室内环境温度大于或等于第三环境温度,表明室内环境温度很高,此时需要很大的体感风量以提高用户的舒适度,从而将目标风速确定为预设定的风速设定值与预设定的第三风速中的较小值;同样地,将外导风门目标角度确定为较大的外导风门第二角度,以维持当前室内环境温度。
可以理解地,通常地,在同一当前温差范围内,当前室内环境温度越高,目标风速越高且导风门目标角度越大,对应的体感风量也越大。
可以理解地,由子步骤S20421~子步骤S20427可知,当前温差小于预设定的第一阈值且当前室内环境温度大于或等于预设定的第一环境温度时,确定外导风门目标角度为预设定的外导风门第二角度。
子步骤S2043:判断当前温差是否小于预设定的第二阈值,如果是, 则执行子步骤S2044;如果否,则执行子步骤S2045。
子步骤S2044:确定外导风门目标角度为预设定的外导风门第二角度,并基于当前室内环境温度、预设定的风速设定值、预设定的第一风速、预设定的第二风速、预设定的第三风速确定目标风速。
若当前温差大于或等于预设定的第一阈值且小于预设定的第二阈值,表明室内环境温度与预设定的温度参考值已经较为接近,此时需要进一步调节风速及导风门角度,以调节体感风量。
需要说明的是,由于室内环境温度与预设定的温度参考值仅仅是较为接近,即室内环境温度距预设定的温度参考值还有一定的空间,因此确定外导风门目标角度为较大的预设定的外导风门第二角度,以维持当前室内环境温度,同时在压缩机制冷的情况下,使室内环境温度更加接近预设定的温度参考值。
具体地,请参阅图5,为子步骤S2044的具体流程图。该子步骤S2044包括:
子步骤S20441:判断当前室内环境温度是否小于预设定的第一环境温度,如果是,则执行子步骤S20442;如果否,则执行子步骤S20443。
子步骤S20442:确定所述目标风速为所述预设定的第一风速。
若当前室内环境温度小于预设定的第一环境温度,表明室内环境温度很低,若体感风量过高,会给用户造成不舒适的体验。因此,将目标风速确定为最小的第一风速。
子步骤S20443:判断当前室内环境温度是否小于预设定的第二环境温度,如果是,则执行子步骤S20444;如果否,则执行子步骤S20445。
子步骤S20444:确定所述目标风速为所述预设定的风速设定值与所述预设定的第二风速中的较小值。
若当前室内环境温度大于或等于预设定的第一环境温度且小于预设定的第二环境温度,表明室内环境温度较低,因此其对应的体感风量也适当降低,但由于室内环境温度距预设定的温度参考值还有一定的空间,当前状况下对应的体感风量应当大于同样当前室内环境温度情况下,当前温差更小的情况所对应的体感风量,从而将目标风速确定为预设定的风速设定值与预设定的第二风速中的较小值。
子步骤S20445:判断当前室内环境温度是否小于预设定的第三环境温度,如果是,则执行子步骤S20446;如果否,则执行子步骤S20447。
子步骤S20446:确定所述目标风速为所述预设定的风速设定值与所述预设定的第三风速中的较小值。
若当前室内环境温度大于或等于预设定的第二环境温度且小于预设定的第三环境温度,表明室内环境温度较高,此时需要较大的体感风量以提高用户的舒适度,但由于室内环境温度距预设定的温度参考值还有一定的空间,当前状况下对应的体感风量应当大于同样当前室内环境温度情况下,当前温差更小的情况所对应的体感风量,从而将目标风速确定为预设定的风速设定值与预设定的第三风速中的较小值。
子步骤S20447:确定目标风速为预设定的风速设定值。
若当前室内环境温度大于或等于第三环境温度,表明室内环境温度很高,此时需要很大的体感风量以提高用户的舒适度,从而将目标风速确定为预设定的风速设定值。
子步骤S2045:确定目标风速为预设定的风速设定值,确定外导风门目标角度为预设定的外导风门第二角度。
若当前温差大于或等于预设定的第二阈值,表明室内环境温度距预设定的温度参考值还有较大的差距,因此此时确定目标风速为预设定的风速设定值,确定外导风门目标角度为预设定的外导风门第二角度,以使用户获得最大的体感风量,更加凉爽、舒适。
可以理解地,通过子步骤S2041~子步骤S2045可知,若当前温差大于或等于预设定的第一阈值,确定外导风门目标角度为预设定的外导风门第二角度。
步骤S205:判断温差是否满足第二预设条件,如果是,则执行步骤S206;如果否,则重新执行步骤S204。
具体地,通过判断是否存在相邻两个时间间隔内确定的三个温差按时间顺序依次增大且当前温差大于或等于预设定的第二阈值来判断温差是否满足第二预设条件,当存在相邻两个时间间隔内确定的三个温差按时间顺序依次增大且当前温差大于或等于预设定的第二阈值时,温差满足第二预设条件;反之,温差不满足第二预设条件。
步骤S206:确定目标风速为预设定的风速设定值,确定内导风门目标角度为预设定的导风门内角度设定值,确定外导风门目标角度为预设定的导风门外角度设定值。
即当相邻两个所述时间间隔内确定的三个所述温差按时间顺序依次增大且当前温差大于或等于预设定的第二阈值时,则按照用户设定的风速及导风门角度运行,无需对体感风量进行限制。
第三实施例
本公开实施例同样提供了一种体感风量调节方法。需要说明的是,本实施例所提供的体感风量调节方法,其基本原理及产生的技术效果和上述实施例相同,为简要描述,本实施例部分未提及之处,可参考上述的实施例中相应内容。
在本实施例中,导风门目标角度不仅包括外导风门目标角度,还包括内导风门目标角度。即:在对外导风门目标角度进行调节的同时,还对内导风门目标角度进行调节。
请参阅图6,在本实施例中,步骤S304还包括:
子步骤S3041:判断当前温差是否小于预设定的第一阈值,如果是,则执行子步骤S3042;如果否,则执行子步骤S3043。
子步骤S3042:基于所述当前室内环境温度、预设定的内导风门第一角度及预设定的内导风门第二角度确定所述内导风门目标角度。
具体地,请参阅图7,为子步骤S3042的具体流程图。该子步骤S3042包括:
子步骤S30421:判断当前室内环境温度是否小于预设定的第一环境温度,如果是,则执行子步骤S30422;如果否,则执行子步骤S30423。
子步骤S30422:确定内导风门目标角度为预设定的预设定的内导风门第一角度。
需要说明的是,43°≤θ n1≤53°,54°≤θ n2≤63°,其中,θ n1为内导风门第一角度,θ n2为内导风门第二角度。
在一些实施例中,内导风门第一角度θ n1为48°,内导风门第二角度θ w2为58°。但需要说明的是,在其他实施例中,内导风门第一角度、内导风门第二角度也可以为其他值,满足上述设定的范围即可。
具体地,若当前室内环境温度小于预设定的第一环境温度,表明室内环境温度很低,若体感风量过高,会给用户造成不舒适的体验。因此,将内导风门目标角度确定为较小的内导风门第一角度,从而尽可能减小风量对用户舒适度的影响。
子步骤S30423:确定内导风门目标角度为预设定的内导风门第二角度。
若当前室内环境温度大于或等于预设定的第一环境温度,表明室内环境温度较高,因而将将内导风门目标角度确定为较大的内导风门第二角度,以降低体感风量的同时,维持当前室内环境温度。
子步骤S3043:确定所述内导风门目标角度为预设定的内导风门第二角度。
若当前温差大于或等于预设定的第一阈值,表明室内环境温度与预设定的温度参考值已经较为接近,此时需要进一步调节导风门角度,以调节体感风量。
第四实施例
请参阅图8,图8为本公开实施例提供的一种体感风量调节装置7的功能模块图。需要说明的是,本实施例所提供的体感风量调节装置7,其基本原理及产生的技术效果和上述实施例相同,为简要描述,本实施例部分未提及之处,可参考上述的实施例中相应内容。该体感风量调节装置7包括温度获取单元8、温差计算单元9、判断单元10以及体感风量调节单元11。
其中,温度获取单元8用于获取室内环境温度。
可以理解地,在一些实施例中,该温度获取单元8可用于执行步骤S201。
温差计算单元9用于每隔预设定的时间间隔确定一次室内环境温度与预设定的温度参考值形成的温差。
可以理解地,在一些实施例中,该温差计算单元9可用于执行步骤S202。
判断单元10用于判断温差是否满足第一预设条件。
可以理解地,在一些实施例中,该判断单元10可用于执行步骤S203。
体感风量调节单元11用于当温差满足第一预设条件时,基于当前温 差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量。
具体地,体感风量调节单元11用于当所述当前温差小于预设定的第一阈值时,基于当前室内环境温度、预设定的第一风速、预设定的第二风速、预设定的第三风速确定目标风速,并基于当前室内环境温度、预设定的内导风门第一角度、预设定的内导风门第二角度、预设定的外导风门第一角度及预设定的外导风门第二角度确定内导风门目标角度、外导风门目标角度。
其中,体感风量调节单元11用于当所述当前温差小于预设定的第一阈值且当前室内环境温度小于预设定的第一环境温度时,确定目标风速为预设定的第一风速,确定内导风门目标角度及外导风门目标角度分别为预设定的内导风门第一角度、预设定的外导风门第一角度。
具体地,体感风量调节单元11还用于当所述当前温差小于预设定的第一阈值且当前室内环境温度大于或等于所述预设定的第一环境温度且小于预设定的第二环境温度时,确定目标风速为预设定的第一风速并确定内导风门目标角度及外导风门目标角度分别为预设定的内导风门第二角度、预设定的外导风门第二角度。
体感风量调节单元11还用于当所述当前温差小于预设定的第一阈值且当前室内环境温度大于或等于所述预设定的第二环境温度且小于预设定的第三环境温度时,确定目标风速为预设定的风速设定值与预设定的第二风速中的较小值并确定内导风门目标角度及外导风门目标角度分别为预设定的内导风门第二角度、预设定的外导风门第二角度。
体感风量调节单元11还用于当所述当前温差小于预设定的第一阈值且当前室内环境温度大于或等于所述预设定的第三环境温度时,确定目标风速为预设定的风速设定值与预设定的第三风速中的较小值并确定内导风门目标角度及外导风门目标角度分别为预设定的内导风门第二角度、预设定的外导风门第二角度。
体感风量调节单元11还用于当所述当前温差大于或等于所述预设定的第一阈值且小于预设定的第二阈值时,确定内导风门目标角度为预设定的内导风门第二角度,确定外导风门目标角度为预设定的外导风门第二角 度,并基于当前室内环境温度、预设定的风速设定值、预设定的第一风速、预设定的第一风速、预设定的第三风速确定目标风速。
具体地,体感风量调节单元11还用于当所述当前温差大于或等于所述预设定的第一阈值且小于预设定的第二阈值且当前室内环境温度小于预设定的第一环境温度时,确定所述目标风速为所述预设定的第一风速。
体感风量调节单元11还用于当所述当前温差大于或等于所述预设定的第一阈值且当前室内环境温度大于或等于所述预设定的第一环境温度且小于预设定的第二环境温度时,确定所述目标风速为所述预设定的风速设定值与所述预设定的第二风速中的较小值。
体感风量调节单元11还用于当所述当前温差大于或等于所述预设定的第一阈值且当前室内环境温度大于或等于所述预设定的第二环境温度且小于预设定的第三环境温度时,确定所述目标风速为所述预设定的风速设定值与所述预设定的第三风速中的较小值。
体感风量调节单元11还用于当所述当前温差大于或等于所述预设定的第一阈值且当前室内环境温度大于或等于所述预设定的第三环境温度时,确定所述目标风速为预设定的风速设定值。
可以理解地,在一些的实施例中,该体感风量调节单元11可用于执行步骤S204、子步骤S2041、子步骤S2042、子步骤S2043、子步骤S2044、子步骤S20421、子步骤S20422、子步骤S20423、子步骤S20424、子步骤S20425、子步骤S20426、子步骤S20427、子步骤S20441、子步骤S20442、子步骤S20443、子步骤S20444、子步骤S20445、子步骤S20446、子步骤S20447、子步骤S2045、子步骤S3041、子步骤S3042、子步骤S30421、子步骤S3042、子步骤S3043及子步骤S3043。
判断单元10还用于判断温差是否满足第二预设条件。
可以理解地,在一些实施例中,该判断单元10可用于执行步骤S205。
体感风量调节单元11还用于当温差满足第二预设条件时,确定目标风速为预设定的风速设定值,确定内导风门目标角度为预设定的导风门内角度设定值,确定外导风门目标角度为预设定的导风门外角度设定值。
可以理解地,在一些实施例中,该体感风量调节单元11还可用于执行步骤S206。
综上所述,本公开实施例提供的体感风量调节方法、装置及空调器,通过获取室内环境温度,并每隔预设定的时间间隔确定一次所述室内环境温度与预设定的温度参考值形成的温差,从而当所述温差满足第一预设条件时,基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量;当所述温差满足第一预设条件时,通过当前温差及当前室内环境温度判定用户对于风量的可承受程度,从而确定目标风速以及导风门目标角度,基于此方法确定的目标风速以及导风门目标角度调节风量,可使用户随时处于舒适状态,避免了由于室内环境温度较低而风量过大对用户造成的不适感,提升了用户体验。
在本申请所提供的几个实施例中,应该理解到,所揭露的装置和方法,也可以通过其它的方式实现。以上所描述的装置实施例仅仅是示意性的,例如,附图中的流程图和框图显示了根据本公开的多个实施例的装置、方法和计算机程序产品的可能实现的体系架构、功能和操作。在这点上,流程图或框图中的每个方框可以代表一个模块、程序段或代码的一部分,所述模块、程序段或代码的一部分包含一个或多个用于实现规定的逻辑功能的可执行指令。也应当注意,在有些作为替换的实现方式中,方框中所标注的功能也可以以不同于附图中所标注的顺序发生。例如,两个连续的方框实际上可以基本并行地执行,它们有时也可以按相反的顺序执行,这依所涉及的功能而定。也要注意的是,框图和/或流程图中的每个方框、以及框图和/或流程图中的方框的组合,可以用执行规定的功能或动作的专用的基于硬件的系统来实现,或者可以用专用硬件与计算机指令的组合来实现。
另外,在本公开各个实施例中的各功能模块可以集成在一起形成一个独立的部分,也可以是各个模块单独存在,也可以两个或两个以上模块集成形成一个独立的部分。
所述功能如果以软件功能模块的形式实现并作为独立的产品销售或使用时,可以存储在一个计算机可读取存储介质中。基于这样的理解,本公开的技术方案本质上或者说对现有技术做出贡献的部分或者该技术方案的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)执行本公开各个实施例所述方法的全部或部分 步骤。而前述的存储介质包括:U盘、移动硬盘、只读存储器(ROM,Read-Only Memory)、随机存取存储器(RAM,Random Access Memory)、磁碟或者光盘等各种可以存储程序代码的介质。
需要说明的是,在不冲突的情况下,本公开中的实施例中的特征可以相互结合。
除非存在技术障碍或矛盾,本公开的上述各种实施方式可以自由组合以形成另外的实施例,这些另外的实施例均在本公开的保护范围中。
虽然结合附图对本公开进行了说明,但是附图中公开的实施例旨在对本公开优选实施方式进行示例性说明,而不能理解为对本公开的一种限制。附图中的尺寸比例仅仅是示意性的,并不能理解为对本公开的限制。
虽然本公开总体构思的一些实施例已被显示和说明,本领域普通技术人员将理解,在不背离本总体公开构思的原则和精神的情况下,可对这些实施例做出改变,本公开的范围以权利要求和它们的等同物限定。
以上所述仅为本公开的优选实施例而已,并不用于限制本公开,对于本领域的技术人员来说,本公开可以有各种更改和变化。凡在本公开的精神和原则之内,所作的任何修改、等同替换、改进等,均应包含在本公开的保护范围之内。

Claims (18)

  1. 一种体感风量调节方法,其特征在于,所述体感风量调节方法包括:
    获取室内环境温度;
    每隔预设定的时间间隔确定一次所述室内环境温度与预设定的温度参考值形成的温差;
    当所述温差满足第一预设条件时,基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量。
  2. 根据权利要求1所述的体感风量调节方法,其特征在于,所述导风门目标角度包括外导风门目标角度,所述基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量的步骤包括:
    当所述当前温差小于预设定的第一阈值时,基于所述当前室内环境温度、预设定的第一风速、预设定的第二风速、预设定的第三风速确定所述目标风速,并基于所述当前室内环境温度、预设定的外导风门第一角度及预设定的外导风门第二角度确定所述外导风门目标角度;
    当所述当前温差大于或等于所述预设定的第一阈值且小于预设定的第二阈值时,确定所述外导风门目标角度为预设定的外导风门第二角度,并基于所述当前室内环境温度、所述预设定的风速设定值、预设定的第一风速、预设定的第一风速、预设定的第三风速确定所述目标风速;
    当所述当前温差大于或等于所述预设定的第二阈值时,确定所述目标风速为预设定的风速设定值,确定所述外导风门目标角度为预设定的外导风门第二角度。
  3. 根据权利要求2所述的体感风量调节方法,其特征在于,所述基于所述当前室内环境温度、所述预设定的风速设定值、预设定的第一风速、预设定的第二风速、预设定的第三风速确定所述目标风速的步骤包括:
    当所述当前室内环境温度小于预设定的第一环境温度时,确定所述目标风速为所述预设定的第一风速;
    当所述当前室内环境温度大于或等于所述预设定的第一环境温度且小于预设定的第二环境温度时,确定所述目标风速为所述预设定的风速设定值与所述预设定的第二风速中的较小值;
    当所述当前室内环境温度大于或等于所述预设定的第二环境温度且 小于预设定的第三环境温度时,确定所述目标风速为所述预设定的风速设定值与所述预设定的第三风速中的较小值;
    当所述当前室内环境温度大于或等于所述预设定的第三环境温度时,确定所述目标风速为预设定的风速设定值。
  4. 根据权利要求2所述的体感风量调节方法,其特征在于,所述基于所述当前室内环境温度、预设定的第一风速、预设定的第二风速、预设定的第三风速确定所述目标风速的步骤包括:
    当所述当前室内环境温度小于预设定的第一环境温度时,确定所述目标风速为所述预设定的第一风速;
    当所述当前室内环境温度大于或等于所述预设定的第一环境温度且小于预设定的第二环境温度时,确定所述目标风速为所述预设定的第一风速;
    当所述当前室内环境温度大于或等于所述预设定的第二环境温度且小于预设定的第三环境温度时,确定所述目标风速为所述预设定的风速设定值与所述预设定的第二风速中的较小值;
    当所述当前室内环境温度大于或等于所述预设定的第三环境温度时,确定所述目标风速为所述预设定的风速设定值与所述预设定的第三风速中的较小值。
  5. 根据权利要求2所述的体感风量调节方法,其特征在于,所述基于所述当前室内环境温度、预设定的外导风门第一角度及预设定的外导风门第二角度确定所述外导风门目标角度的步骤包括:
    当所述室内环境温度小于预设定的第一环境温度时,确定所述外导风门目标角度为预设定的外导风门第一角度;
    当所述室内环境温度大于或等于预设定的第一环境温度时,确定所述外导风门目标角度为预设定的外导风门第二角度。
  6. 根据权利要求2所述的体感风量调节方法,其特征在于,所述导风门目标角度还包括内导风门目标角度,所述基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量的步骤包括:
    当所述当前温差小于预设定的第一阈值时,基于所述当前室内环境温度、预设定的内导风门第一角度、预设定的内导风门第二角度确定所述内 导风门目标角度;
    当所述当前温差大于或等于所述预设定的第一阈值时,确定所述内导风门目标角度为预设定的内导风门第二角度。
  7. 根据权利要求6所述的体感风量调节方法,其特征在于,所述基于所述当前室内环境温度、预设定的内导风门第一角度、预设定的内导风门第二角度确定所述内导风门目标角度的步骤包括:
    当所述室内环境温度小于预设定的第一环境温度时,确定所述内导风门目标角度为预设定的内导风门第一角度;
    当所述室内环境温度大于或等于预设定的第一环境温度时,确定所述内导风门目标角度为预设定的内导风门第二角度。
  8. 根据权利要求6或7中所述的体感风量调节方法,其特征在于,43°≤θ n1≤53°,54°≤θ n2≤63°,其中,θ n1为内导风门第一角度,θ n2为内导风门第二角度。
  9. 根据权利要求2-7中任意一项所述的体感风量调节方法,其特征在于,所述第一阈值为0℃,所述第二阈值为1℃。
  10. 根据权利要求2-5中任意一项所述的体感风量调节方法,其特征在于,所述第一风速对应的风叶转速的取值范围为400~600转/分钟,所述第二风速对应的风叶转速的取值范围为700~1000转/分钟。
  11. 根据权利要求2-5中任意一项所述的体感风量调节方法,其特征在于,30°≤θ w1≤40°,41°≤θ w2≤50°,其中,θ w1为外导风门第一角度,θ w2为外导风门第二角度。
  12. 根据权利要求1-7中任意一项所述的体感风量调节方法,其特征在于,当相邻两个所述时间间隔内确定的三个所述温差按时间顺序依次减小时,所述温差满足所述第一预设条件。
  13. 根据权利要求12所述的体感风量调节方法,其特征在于,所述导风门目标角度还包括内导风门目标角度以及外导风门目标角度,所述体感风量体感风量调节方法还包括:
    判断所述温差是否满足第二预设条件;
    若温差不满足第二预设条件,则基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量;
    若所述温差满足第二预设条件,则确定目标风速为预设定的风速设定值,确定内导风门目标角度为预设定的导风门内角度设定值,确定外导风门目标角度为预设定的导风门外角度设定值。
  14. 根据权利要求13所述的体感风量调节方法,其特征在于,当相邻两个时间间隔内确定的三个温差按时间顺序依次增大且当前温差大于或等于预设定的第二阈值时,所述温差满足第二预设条件。
  15. 根据权利要求1所述的体感风量调节方法,其特征在于,所述预设定的温度参考值为目标温度与空调器当前运行模式下的补偿温度的和。
  16. 根据权利要求15所述的体感风量调节方法,其特征在于,当所述空调器的运行时间达到第一时间时,每隔预设定的时间间隔确定一次所述室内环境温度与预设定的温度参考值形成的温差。
  17. 一种体感风量调节装置,其特征在于,体感风量调节装置包括:
    温度获取单元,用于获取室内环境温度;
    温差计算单元,用于每隔预设定的时间间隔确定一次所述室内环境温度与预设定的温度参考值形成的温差;
    体感风量调节单元,用于当所述温差满足第一预设条件时,基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量。
  18. 一种空调器,其特征在于,所述空调器包括:
    存储器;
    控制器;及
    体感风量调节装置,所述体感风量调节装置安装于所述存储器并包括一个或多个由所述控制器执行的软件功能模块,所述体感风量调节装置包括:
    温度获取单元,用于获取室内环境温度;
    温差计算单元,用于每隔预设定的时间间隔确定一次所述室内环境温度与预设定的温度参考值形成的温差;
    体感风量调节单元,用于当所述温差满足第一预设条件时,基于当前温差及当前室内环境温度确定目标风速以及导风门目标角度以调节体感风量。
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