WO2019127860A1 - 无风感控制方法、装置及计算机可读存储介质 - Google Patents
无风感控制方法、装置及计算机可读存储介质 Download PDFInfo
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- WO2019127860A1 WO2019127860A1 PCT/CN2018/076022 CN2018076022W WO2019127860A1 WO 2019127860 A1 WO2019127860 A1 WO 2019127860A1 CN 2018076022 W CN2018076022 W CN 2018076022W WO 2019127860 A1 WO2019127860 A1 WO 2019127860A1
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- Prior art keywords
- fan
- compressor frequency
- temperature
- target temperature
- windlessness
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F11/00—Control or safety arrangements
- F24F11/70—Control systems characterised by their outputs; Constructional details thereof
- F24F11/80—Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air
- F24F11/86—Control 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
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F2110/00—Control inputs relating to air properties
- F24F2110/30—Velocity
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F2120/00—Control inputs relating to users or occupants
- F24F2120/20—Feedback from users
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F2221/00—Details or features not otherwise provided for
- F24F2221/10—Details or features not otherwise provided for combined with, or integrated in, furniture
Definitions
- the invention relates to the field of windlessness of a fan, in particular to a method and device for controlling windlessness and a computer readable storage medium.
- air conditioners are more and more widely used in people's daily life, and people will have a feeling of blowing when using air conditioners.
- the feeling of blowing is an unacceptable expression of the human body's air movement; especially when When the indoor environment temperature is too high or too cold, the proportion of the occurrence of the blowing sensation increases.
- the user due to the inability to control the windlessness of the fan, the user has a problem of blowing sensation during the use of the fan.
- the main object of the present invention is to provide a windlessness control method, apparatus and computer readable storage medium, which aim to solve the technical problem that a user feels a blowing sensation in the process of using a fan.
- the present invention provides a windlessness control method, and the windlessness control method includes the following steps:
- the step of acquiring the indoor temperature, the turbulence intensity, and the blowing sensation index of the fan when the fan is turned on without the wind is:
- the indoor temperature, the turbulence intensity, and the blowing sensation index of the fan are determined.
- the determining the indoor temperature of the fan according to the windless form includes:
- the indoor temperature of the fan is calculated according to the outlet temperature.
- the determining the current target temperature of the fan according to the first wind speed, the turbulence intensity, and the blowing sensation index comprises:
- the step of adjusting a compressor frequency and a fan speed of the fan according to a difference between the indoor temperature and the target temperature includes:
- the step of adjusting a compressor frequency and a fan speed of the fan according to the preset value range and a difference between the indoor temperature and the target temperature includes:
- the step of adjusting the compressor frequency and the fan speed of the fan according to the preset value range and the difference between the indoor temperature and the target temperature further includes:
- the windlessness control method further includes:
- the present invention also provides a windlessness control device, including: a memory, a processor, and a memory stored on the memory and operable on the processor a wind control program that implements the steps of the windlessness control method described in any one of the above when executed by the processor.
- the present invention further provides a computer readable storage medium having a windlessness control program stored thereon, and the windlessness control program is implemented by a processor to implement the foregoing A step of the windless control method described.
- the invention provides a windless feeling control method, which obtains the indoor temperature, the turbulent flow intensity and the blowing sensation index of the fan when the wind blower is turned on, and then obtains the first wind speed corresponding to the current fan, according to the Determining a first wind speed, the turbulence intensity, and the blowing sensation index, determining a target temperature of the current fan, and then adjusting a compressor frequency of the fan according to a difference between the indoor temperature and the target temperature, wherein, the fan operates according to the adjusted compressor frequency, and realizes control of a compressor frequency of the fan according to a difference between the indoor temperature and the target temperature, and adjusts a compressor frequency by the difference, so that the fan corresponds to the fan
- the indoor temperature also changes, so that the difference also changes dynamically, thereby realizing the process of adaptive control of the windlessness of the fan.
- FIG. 1 is a schematic structural diagram of a windless sense control device in a hardware operating environment according to an embodiment of the present invention
- FIG. 2 is a schematic flow chart of a first embodiment of a windlessness control method according to the present invention.
- FIG. 3 is a schematic flow chart of a second embodiment of a windless feeling control method according to the present invention.
- FIG. 4 is a schematic flow chart showing the steps of determining the indoor temperature of the fan according to the windless feeling form in the third embodiment of the windless feeling control method of the present invention
- FIG. 5 is a schematic diagram showing the refinement process of the step of determining the target temperature of the current fan according to the first wind speed, the turbulence intensity, and the blowing sensation index in the fourth embodiment of the windlessness control method of the present invention
- FIG. 6 is a schematic flow chart showing the steps of adjusting the compressor frequency of the fan according to the difference between the indoor temperature and the target temperature in the fifth embodiment of the windlessness control method of the present invention
- FIG. 9 is a schematic flow chart of the eighth embodiment of the windlessness control method of the present invention.
- FIG. 1 is a schematic structural diagram of a windless sense control device in a hardware operating environment according to an embodiment of the present invention.
- the terminal in the embodiment of the present invention may be a terminal device such as a PC.
- the terminal may include a processor 1001, such as a CPU, a network interface 1004, a user interface 1003, a memory 1005, and a communication bus 1002.
- the communication bus 1002 is used to implement connection communication between these components.
- the user interface 1003 can include a display, an input unit such as a keyboard, and the optional user interface 1003 can also include a standard wired interface, a wireless interface.
- the network interface 1004 can optionally include a standard wired interface, a wireless interface (such as a WI-FI interface).
- the memory 1005 may be a high speed RAM memory or a non-volatile memory such as a disk memory.
- the memory 1005 can also optionally be a storage device independent of the aforementioned processor 1001.
- the terminal may further include a camera, an RF (Radio Frequency) circuit, a sensor, an audio circuit, a WiFi module, and the like.
- RF Radio Frequency
- the terminal structure shown in FIG. 1 does not constitute a limitation to the terminal, and may include more or less components than those illustrated, or a combination of certain components, or different component arrangements.
- an operating system, a network communication module, a user interface module, and a windless control program may be included in the memory 1005 as a computer storage medium.
- the network interface 1004 is mainly used to connect to the background server and perform data communication with the background server;
- the user interface 1003 is mainly used to connect the client (user end), and perform data communication with the client; and the processor 1001 can be used to call the windless control program stored in the memory 1005.
- FIG. 2 is a schematic flow chart of a first embodiment of a windlessness control method according to the present invention.
- the windlessness control method includes:
- Step S100 obtaining an indoor temperature, a turbulence intensity, and a blowing sensation index of the fan when the fan is turned on without wind feeling;
- the windless feeling indicates that the user has the minimum blowing feeling during the process of using the fan, that is, the user is in a comfortable state in the state;
- the target temperature of the fan is calculated according to the determined blowing feeling index, thereby
- the compressor frequency and the rotational speed of the fan are dynamically adjusted according to the target temperature, thereby automatically adjusting the windless feeling of the fan, so that the user is always in a state of no wind feeling during the process of using the fan; specifically, the fan is turned on without
- the indoor temperature is the temperature value corresponding to the current height of the current fan
- the turbulent intensity is the degree of change of the wind speed with time and space.
- the hair sensation index is the degree of dissatisfaction caused by the hair sensation.
- the windless sensation of the fan includes three types: windless, windless and full. No wind feeling, when the upper vertical air guiding strip of the fan is closed and the lower vertical air guiding strip is opened, there is no wind feeling; when the upper vertical air guiding strip of the fan is opened, When the vertical air guiding strip is closed, there is no wind feeling; when the upper vertical air guiding strip and the lower vertical air guiding strip of the fan are closed, the windless feeling is completely; when the wind blower is turned on, the wind is obtained.
- the windless sense form of the fan correspond to different air outlet temperature, turbulence intensity and hair feel index; according to the windless form of the fan, the corresponding windless form can be determined separately
- the tuyere temperature, the turbulence intensity, and the blowing sensation index wherein the windshield of the wind turbine can be determined by the windless sensation of the fan, and the relationship between the windshield and the turbulent intensity can be determined, and the windless sensation
- a and B are parameter constants
- T c is the current outlet temperature of the fan.
- Step S200 Acquire a first wind speed corresponding to the current fan, and determine a target temperature of the current fan according to the first wind speed, the turbulence intensity, and the blowing sensation index;
- the wind speed is the local average air flow rate
- the first wind speed is the wind speed corresponding to the wind turbine in the current time period
- the first wind speed may be represented by V a
- the initial value of the first wind speed is Setting an initial value, if the preset initial value is 0.3 m/s, the initial value V a0 of the first wind speed is equal to 0.3 m/s; according to the obtained first wind speed V a , the current turbulence intensity of the fan T u
- the hair styling index DR is calculated by the hair styling index calculation formula, and the current pre-selected target temperature of the fan can be obtained, and the pre-selected target temperature can be represented by t a ; specifically, the calculation formula of the blasting sensation index is as follows:
- DR is the blowing sensation index
- v a is the wind speed V a
- T u is the turbulent intensity
- t a is the preselected target temperature
- the set temperature is a preset temperature, which can be represented by T s , for example, when the set temperature is less than 24 ° C (ie, T s ⁇ 24 ° C), the preselected target temperature is less than 23 ° C (ie, t a ⁇ At 23 ° C), it is determined that the current target temperature of the fan is 23 ° C; when the set temperature is less than 24 ° C (ie T s ⁇ 24 ° C), when the preselected target temperature is greater than 28 ° C (ie t a > 28 ° C), Then determine that the current target temperature of the fan is 28 ° C; when the set temperature is greater than 24 ° C and less than 28 ° C (ie 24 ° C ⁇ T s ⁇ 28 °
- a t ⁇ 24 °C when it is determined that the current target temperature of 24 deg.] C the fan; the set temperature of greater than 28 deg.] C (i.e., T s> 28 °C), a preselected
- the target temperature is greater than 29 ° C (ie, t a is greater than 29 ° C)
- it is determined that the current target temperature of the fan is 29 ° C.
- Step S300 adjusting a compressor frequency of the fan according to a difference between the indoor temperature and the target temperature, wherein the fan operates according to the adjusted compressor frequency.
- the compressor frequency and the fan speed can be controlled by the difference between the indoor temperature and the target temperature; specifically, when the target temperature is determined, the target temperature and the indoor temperature of the fan are calculated.
- the difference value is obtained at the same time, and the preset value range is a preset value range; when the difference between the target temperature and the indoor temperature of the fan is within the preset value range , can be expressed as: (T as -T a ) ⁇ [-D,D], where [-D,D] is the preset value range, D is a positive number, T a is the indoor temperature, and T as is Target temperature; when the difference between the target temperature and the indoor temperature of the fan is not within the preset value range, it can be expressed as: Where [-D, D] is the preset value range, D is a positive number, T a is the indoor temperature, and T as is the target temperature; the difference between the target temperature and the indoor temperature of the fan is not at the preset value Within the scope, it may be specifically divided into two cases, wherein the
- the difference between the target temperature and the indoor temperature of the fan is within the preset value range, it can be expressed as: (T as -T a ) ⁇ [-0.5,0.5 ]; when the right limit of the temperature difference between the indoor target temperature and the wind turbine is greater than the predetermined value range, it can be expressed as T as -T a> 0.5; When the temperature difference between the indoor target temperature and the wind turbine is less than the left limit of the predetermined range may be represented as T as -T a ⁇ -0.5;
- the wind speed corresponding to the fan is the initial value of the wind speed, that is, while the fan is turned on without wind, the fan runs according to the initial compressor frequency; at the target temperature and When the difference between the indoor temperatures of the fan is within the preset value range, the first compressor frequency of the fan is obtained, wherein the first compressor frequency indicates that the difference is within the preset value range The frequency of the current compressor; when the difference between the target temperature and the indoor temperature of the fan is within the preset value range, the fan is operated according to the first compressor frequency until the fan exits the windless feeling; When the difference between the target temperature and the indoor temperature of the fan is not within the preset value range, calculating a second compressor frequency of the fan, wherein the second compressor frequency indicates that the difference is not in the pre- The current compressor frequency when the value range is set;
- the compressor decreases the preset frequency value each time; the frequency of the compressor is changed, so that the fan is The temperature of the air outlet will also change accordingly, and the indoor temperature corresponding to the fan will also change; if the preset frequency value is 1 Hz, the compressor will decrease by 1 Hz each time, and the value of the compressor frequency is reduced.
- the second compressor frequency wherein the minimum value of the second compressor frequency is 20 Hz; the difference between the target temperature and the indoor temperature of the fan is greater than a right limit of the preset value range, and the second compression
- the preset time is obtained, and the fan is operated according to the second compressor frequency within a preset time;
- the difference between the target temperature and the indoor temperature of the fan is greater than a right limit of the preset value range, and the second compressor frequency has decreased to a minimum value, acquiring a second wind speed corresponding to the fan;
- the wind speed is related to the structure of the air duct and the speed of the fan. For a particular air conditioner, it can be approximated that the wind speed is only related to the speed of the fan. Therefore, according to the wind speed corresponding to the fan, the fan speed of the fan can be calculated.
- the fan speed is controlled by changing the wind speed of the fan to adjust the fan speed;
- the target temperature calculated by the wind speed will also change accordingly; wherein the first wind speed is the wind speed corresponding to the wind turbine in the current time period,
- the compressor increases the preset frequency value each time, and the air outlet of the fan is changed due to the change of the frequency of the compressor.
- the temperature will also change accordingly, and the indoor temperature corresponding to the fan will also change; if the preset frequency value is 1 Hz, the compressor will increase by 1 Hz each time, and the value of the compressor frequency is increased.
- a second compressor frequency specifically, when a difference between the target temperature and the indoor temperature of the fan is less than a left limit of the preset value range, a preset time is acquired, according to the second compressor within a preset time Run the fan at the frequency.
- the windlessness control method proposed by the embodiment obtains the indoor temperature, the turbulent intensity and the blowing sensation index of the fan when the fan is turned on, and then obtains the first wind speed corresponding to the current fan. Determining a first wind speed, the turbulence intensity, and the blowing sensation index, determining a target temperature of the current fan, and then adjusting a compressor frequency of the fan according to a difference between the indoor temperature and the target temperature, Wherein, the fan operates according to the adjusted compressor frequency, and realizes control of a compressor frequency of the fan according to a difference between the indoor temperature and the target temperature, and adjusts a compressor frequency by the difference, so that the fan corresponds to the fan
- the indoor temperature also changes, so that the difference also changes dynamically, thereby realizing the process of adaptive control of the windlessness of the fan.
- step S100 includes:
- Step S110 acquiring a windless sense form of the current fan when the wind blower is turned on;
- the windless sensation form corresponding to the fan includes three types, namely: no wind feeling, no wind feeling, and no wind feeling.
- the upper vertical air guiding strip of the fan When the upper vertical air guiding strip of the fan is closed, the vertical vertical air guiding strip is closed. When it is opened, it has no wind feeling; when the upper vertical air guiding strip of the fan is opened and the lower vertical air guiding strip is closed, it is no wind feeling; when the upper vertical air guiding strip and the lower vertical air guiding strip of the fan are both When it is turned off, it is completely windless; when the fan is turned on without wind, according to the windless opening command issued by the user based on the fanless wind control device, the current windless form of the fan is obtained, according to the fan In the form of no wind feeling, the air outlet temperature, turbulence intensity and hair blasting index corresponding to the windless form can be determined separately.
- Step S120 determining an indoor temperature, a turbulence intensity, and a blowing sensation index of the fan according to the windless feeling form.
- the indoor temperature of the fan can be calculated according to the outlet temperature; if the outlet temperature is represented by T c , the indoor temperature is represented by T a , the turbulence intensity is represented by T u , and the blowing sensation index is represented by DR
- the turbulence intensity T u 1 corresponding to the windless feeling is 35, and the wind sensation index corresponding to the windless feeling is set to 8 by DR1;
- the tuyere temperature is T c 2
- the turbulence intensity T corresponding to the windless feeling is obtained.
- u 2 is 38, and the wind sensation index corresponding to the windlessness is set to 9 by DR2;
- the turbulence intensity T u 3 corresponding to the total windlessness is 37, and the windlessness is corresponding.
- the hair styling index is 5 with DR3.
- the wind sense control method proposed by the embodiment obtains the windless sense form of the current fan when the wind blower is turned on, and then determines the indoor temperature and the turbulence intensity of the fan according to the windless sense form. And the hair sensation index realizes the determination of the indoor temperature, the turbulence intensity and the blowing sensation index of the fan, thereby further obtaining the target temperature of the fan according to the turbulence intensity and the blasting index.
- step S120 includes:
- Step S121 collecting the air outlet temperature of the current fan according to the windless sense form
- the temperature of the air outlet corresponding to different windless forms is different, and according to the obtained windless form of the fan, the temperature of the air outlet of the fan can be collected;
- the temperature of the air outlet corresponding to the fan is T C 1;
- the temperature of the air outlet corresponding to the fan is T c 2;
- the temperature of the air outlet corresponding to the fan is T c 3 .
- Step S122 calculating an indoor temperature of the fan according to the outlet temperature.
- the windlessness control method proposed by the embodiment obtains the air outlet temperature of the current fan according to the windless sense form, and then calculates the indoor temperature of the fan according to the outlet temperature, thereby realizing the fan The temperature of the air outlet is obtained, so that the temperature of the indoor temperature of the fan is determined according to the temperature of the air outlet.
- step S200 includes:
- Step S210 calculating a preselected target temperature of the fan according to the first wind speed, the turbulence intensity, and the blowing sensation index;
- the wind speed is a local average air flow rate
- the first wind speed is a wind speed corresponding to the wind turbine of the current time period, and the wind speed may be represented by V a
- the turbulent flow intensity is a degree of wind speed change with time and space.
- the turbulence intensity can be expressed by T u ;
- the hair sensation index is the degree of dissatisfaction of the human body caused by the feeling of blowing, and the hair sensation index is represented by DR; when the first wind speed, the turbulence intensity, and the hair blasting index are obtained
- the pre-selected target temperature of the current fan can be obtained, and the pre-selected target temperature can be represented by t a ;
- the calculation formula of the blowing sensation index is as follows:
- V a is the first wind speed
- T u is the turbulent intensity
- t a is the preselected target temperature
- Step S220 Acquire a set temperature of the fan, and determine a target temperature of the current fan based on the preselected target temperature and the set temperature.
- the preselected target temperature is not the final target temperature
- the target temperature of the fan can be determined according to the set temperature of the fan and the preselected target temperature
- the set temperature is a preset temperature
- the setting The fixed temperature can be represented by T s
- the target temperature is the current target temperature of the fan
- the target temperature can be represented by T as
- the target temperature of the current fan can be determined, for example, When the set temperature is less than 24 °C (ie T s ⁇ 24 ° C), when the preselected target temperature is less than 23 ° C (ie t a ⁇ 23 ° C), it is determined that the current target temperature of the fan is 23 ° C; at the set temperature is less than 24 °C (ie T s ⁇ 24 ° C), when the pre-selected target temperature is greater than 28 ° C (ie t a >28 ° C), it is determined that the current target temperature of the fan is 28
- the windlessness control method of the present embodiment calculates the preselected target temperature of the fan according to the first wind speed, the turbulence intensity, and the blow sensation index, and then acquires the set temperature of the fan. Determining a target temperature of the current fan based on the preselected target temperature and the set temperature, and realizing obtaining the set temperature, thereby determining the set temperature and the pre-target temperature, thereby realizing The final target temperature of the fan is determined.
- step S300 includes:
- Step S310 acquiring a preset value range corresponding to the fan
- the preset value range is a preset value range; the compressor frequency of the fan may be obtained by the difference between the obtained indoor temperature and the target temperature and the preset value range. And adjusting the fan speed; when determining the target temperature of the fan, calculating the preset value range corresponding to the fan while calculating the difference between the target temperature and the indoor temperature; at the target temperature and the indoor temperature of the fan
- the difference when the difference is within the preset value range, it can be expressed as: (T as -T a ) ⁇ [-D,D]; the difference between the target temperature and the indoor temperature of the fan is not at the preset
- [-D, D] is the preset value range
- D is a positive number
- T a is the indoor temperature
- T as is the target temperature.
- Step S320 adjusting a compressor frequency of the fan according to the preset value range and a difference between the indoor temperature and the target temperature.
- the compressor frequency of the fan is adjusted; specifically, when the difference between the target temperature and the indoor temperature of the fan is within the preset range, the first compressor frequency of the fan is obtained, wherein The first compressor frequency indicates a frequency of the current compressor when the difference is within the preset value range; when the difference between the target temperature and the indoor temperature of the fan is within the preset value range And operating the fan according to the first compressor frequency until the fan exits the windless feeling; when the difference between the target temperature and the indoor temperature of the fan is not within the preset value range, calculating the second of the fan a compressor frequency, wherein the second compressor frequency represents a frequency of the current compressor when the difference is not within the preset range of values.
- the windlessness control method of the present embodiment is configured to obtain a preset range of values corresponding to the fan, and then adjust the range according to the preset value range and the difference between the indoor temperature and the target temperature.
- the compressor frequency of the fan realizes that the difference between the indoor temperature and the target temperature is within a preset value range, and the compressor frequency of the fan is differently controlled, thereby further realizing the windless feeling of the fan. Adapt to the process of control.
- step S320 includes:
- Step S321 when the difference between the indoor temperature and the target temperature is within the preset value range, acquiring a first compressor frequency of the fan;
- the first compressor frequency indicates the frequency of the current compressor and the current fan speed when the difference is within the preset value range; when the difference is within the preset value range Obtaining a first compressor frequency of the fan, and controlling the fan operation according to the first compressor frequency until the fan exits the windless feeling; specifically, if the fan is turned on without wind feeling, according to the initial value of the wind speed The difference between the calculated target temperature and the indoor temperature is within a preset value range, then the first compressor frequency of the fan is the initial compressor frequency, that is, the windless sense form of the current fan is turned on.
- the size of the compressor frequency if the fan is turned on without wind, if the difference between the target temperature calculated from the initial value of the wind speed and the indoor temperature is not within the preset value range, then the first compressor frequency Then, the second compressor frequency after the frequency is increased or decreased; when the difference between the indoor temperature corresponding to the second compressor frequency and the target temperature is within the preset value range, at this time, the first The magnitude of the compressor frequency is then equal to the magnitude of the second compressor frequency.
- Step S322 adjusting a compressor frequency of the fan according to the first compressor frequency, wherein the fan operates according to the first compressor frequency.
- the compressor frequency of the current fan and the fan speed are adjusted to be the first compressor frequency, and the fan is controlled to operate according to the first compressor frequency until the The fan receives the exit windless command, and the fan exits the windless sense.
- the windlessness control method of the present embodiment obtains the first compressor frequency of the fan when the difference between the indoor temperature and the target temperature is within the preset value range, and then according to the Determining a compressor frequency of the fan, wherein the fan operates according to the first compressor frequency, and the difference between the indoor temperature and the target temperature is achieved in the preset value range
- the process of adaptively controlling the windless feeling of the fan when the difference between the indoor temperature and the target temperature is within a preset value range is further realized.
- step S320 includes:
- Step S323 when the difference between the indoor temperature and the target temperature is not within the preset value range, acquiring a second compressor frequency of the fan and a preset time;
- the second compressor frequency indicates the frequency of the current compressor when the difference is not within the preset value range; the difference between the target temperature and the indoor temperature of the fan is not at the preset When the value is within the range, the second compressor frequency of the fan is obtained; wherein the difference between the target temperature and the indoor temperature of the fan is not within the preset value range, and specifically may be divided into two cases, respectively
- the difference between the target temperature and the indoor temperature of the fan is greater than a right limit of the preset value range, and a difference between the target temperature and the indoor temperature of the fan is less than a left limit of the preset value range;
- the compressor increases the preset frequency value each time, and if the preset frequency value is 1 Hz, the compressor is improved each time. 1 Hz, the value of the compressor frequency is the second compressor frequency, and the fan is operated according to the second compressor frequency within a preset time;
- the compressor When the difference between the target temperature and the indoor temperature of the fan is greater than the right limit of the preset value range, the compressor lowers the preset frequency value each time, and if the preset frequency value is 1 Hz, the compressor each Subsequently reducing 1 Hz, the value of the compressor frequency is the second compressor frequency; if the difference between the target temperature and the indoor temperature of the fan is greater than the right limit of the preset range, and the When the frequency of the second compressor has not been reduced to the minimum value, the fan is operated according to the second compressor frequency within a preset time; if the difference between the target temperature and the indoor temperature of the fan is greater than the preset value When the second compressor frequency is the lowest compressor frequency, the second wind speed corresponding to the wind turbine is obtained, wherein the first wind speed is the current wind speed corresponding to the wind turbine, and the second wind speed is When the second compressor frequency is the lowest compressor frequency, the wind speed corresponding to the wind turbine in the next period; the relationship between the first wind speed and the second wind speed may be expressed as:
- V a p * F + q to calculate the fan speed of the fan; the fan ends in the preset time according to the minimum compressor frequency or the fan speed corresponding to the first wind speed The fan is operated according to the fan speed corresponding to the second wind speed within the preset time, and the second compressor frequency is the lowest compressor frequency.
- Step S324 adjusting a compressor frequency of the fan according to the second compressor frequency, wherein the fan runs according to the second compressor frequency within the preset time.
- the wind turbine is operated according to the fan speed corresponding to the second wind speed in a preset time; for example, the current wind speed corresponding to the wind turbine (ie, the first wind speed) is 0.3.
- the preset wind speed value is 0.1 m/s
- the second compressor frequency is obtained as the lowest compressor frequency
- the second wind speed calculated according to the first wind speed is 0.2 m/s, in advance
- the fan speed is operated according to the corresponding fan speed of 0.2 m/s; if the difference between the target temperature and the indoor temperature of the fan is greater than the preset When the right limit of the range is obtained, and the acquired second compressor frequency has not reached the minimum compressor frequency, the second compressor frequency is decreased according to the preset time in the preset time. Run the fan; if in the When the difference between the target temperature and the room temperature that is less than the preset fan of left limit range, according to the preset time acquired for a preset time to run the fan according to the second compressor frequency is increased.
- the windlessness control method of the present embodiment obtains the second compressor frequency and the preset time of the fan when the difference between the indoor temperature and the target temperature is not within the preset value range. And adjusting a compressor frequency of the fan according to the second compressor frequency, wherein the fan operates according to the second compressor frequency within the preset time, and achieves indoor temperature and target temperature When the difference is not within the preset value range, according to the control of the fan by the second compressor frequency, it is further realized that when the difference between the indoor temperature and the target temperature is not within the preset value range, the fan is The process of adaptive control without wind.
- the windlessness control method further includes:
- Step S325 acquiring a second wind speed corresponding to the current fan when the second compressor frequency is the lowest compressor frequency, and determining the current according to the second wind speed, the turbulence intensity, and the blowing sensation index.
- the target temperature of the fan
- the second compressor frequency of the fan is acquired; when the second compressor frequency is obtained as the lowest compressor frequency,
- the index DR is calculated by the calculation formula of the hair sensation index, and the pre-selected target temperature t a of
- Step S326 adjusting a fan speed of the fan according to a difference between the indoor temperature and the target temperature, wherein the fan runs according to the adjusted fan speed when the preset time operation is completed.
- the compressor increases the preset frequency value each time, and if the preset frequency value is 1 Hz, the compressor each The second time is increased by 1 Hz, and the value of the compressor frequency is increased by the second compressor frequency; specifically, when the difference between the target temperature and the indoor temperature of the fan is less than the left limit of the preset value range, Obtaining a preset time, and operating the fan according to the second compressor frequency within a preset time; since the compressor frequency is changed, the indoor temperature corresponding to the current fan is also changed; therefore, in the pre- While the fan is being operated according to the second compressor frequency, the difference between the target temperature and the indoor temperature of the fan and the preset value range are judged again until the target temperature and the fan are The difference in indoor temperature is within the preset value range.
- the windlessness control method of the present embodiment is configured to acquire a second wind speed corresponding to the current fan when the second compressor frequency is the lowest compressor frequency, according to the second wind speed, the turbulence intensity And the blowing sensation index, determining a target temperature of the current fan, and then adjusting a fan speed of the fan according to a difference between the indoor temperature and the target temperature, wherein the fan is at the preset time
- the process of controlling the windlessness of the fan is further realized by controlling the fan speed by the second wind speed.
- the present invention further provides a computer readable storage medium, wherein the computer readable storage medium stores a windlessness control program, and the windlessness control program is executed by a processor to implement the above The windlessness control method described in one embodiment.
- portions of the technical solution of the present invention that contribute substantially or to the prior art may be embodied in the form of a software product stored in a storage medium (such as a ROM/RAM as described above). , a disk, an optical disk, including a number of instructions for causing a terminal device (which may be a mobile phone, a computer, a server, an air conditioner, or a network device, etc.) to perform the methods described in various embodiments of the present invention.
- a terminal device which may be a mobile phone, a computer, a server, an air conditioner, or a network device, etc.
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Abstract
一种无风感控制方法,包括:在风机开启无风感时,获取风机的室内温度、紊流强度及吹风感指数(S100);获取当前风机对应的第一风速,根据第一风速、紊流强度及吹风感指数,确定当前风机的目标温度(S200);根据室内温度与目标温度的差值,调整风机的压缩机频率,其中,风机根据调整后的压缩机频率运行(S300)。另外还公开了一种无风感控制装置及计算机可读存储介质。
Description
本申请要求于2017年12月28提交中国专利局、申请号为201711499083.3、发明名称为“无风感控制方法、装置及计算机可读存储介质”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
本发明涉及风机无风感领域,尤其涉及一种无风感控制方法、装置及计算机可读存储介质。
目前,空调在人们的日常生活中被越来越广泛的使用,而人们在使用空调的过程中,会出现吹风感的现象,吹风感为人体对气流运动不可接受的一种体现;特别是当室内环境温度过高或者过冷的时候,吹风感的发生的比例就会增加。目前,由于无法通过对风机进行无风感的控制,从而导致用户在使用风机的过程中存在吹风感现象的问题。
上述内容仅用于辅助理解本发明的技术方案,并不代表承认上述内容是现有技术。
发明内容
本发明的主要目的在于提供一种无风感控制方法、装置及计算机可读存储介质,旨在解决用户在使用风机的过程中存在吹风感现象的技术问题。
为实现上述目的,本发明提供一种无风感控制方法,所述无风感控制方法包括以下步骤:
在风机开启无风感时,获取所述风机的室内温度、紊流强度及吹风感指数;
获取当前所述风机对应的第一风速,根据所述第一风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度;
根据所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率,其中,所述风机根据调整后的所述压缩机频率运行。
在一实施方式中,所述在风机开启无风感时,获取所述风机的室内温度、紊流强度及吹风感指数的步骤包括:
在风机开启无风感时,获取当前所述风机的无风感形式;
根据所述无风感形式,确定所述风机的室内温度、紊流强度及吹风感指数。
在一实施方式中,所述根据所述无风感形式,确定所述风机的室内温度的步骤包括:
根据所述无风感形式,采集当前所述风机的出风口温度;
根据所述出风口温度,计算所述风机的室内温度。
在一实施方式中,所述根据所述第一风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度的步骤包括:
根据所述第一风速、所述紊流强度及所述吹风感指数,计算所述风机的预选目标温度;
获取所述风机的设定温度,基于所述预选目标温度及所述设定温度,确定当前所述风机的目标温度。
在一实施方式中,所述根据所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率和风机转速的步骤包括:
获取所述风机对应的预设取值范围;
根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率。
在一实施方式中,所述根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率和风机转速的步骤包括:
当所述室内温度与所述目标温度的差值在所述预设取值范围内时,获取所述风机的第一压缩机频率;
根据所述第一压缩机频率,调整所述风机的压缩机频率,其中, 所述风机根据所述第一压缩机频率运行。
在一实施方式中,所述根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率和风机转速的步骤还包括:
当所述室内温度与所述目标温度的差值不在所述预设取值范围内时,获取所述风机的第二压缩机频率及预设时间;
根据所述第二压缩机频率,调整所述风机的压缩机频率,其中,所述风机在所述预设时间内根据所述第二压缩机频率运行。
在一实施方式中,所述获取所述风机的室内温度、紊流强度及吹风感指数的步骤之后,所述无风感控制方法还包括:
在所述第二压缩机频率为最低压缩机频率时,获取当前所述风机对应的第二风速,根据所述第二风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度;
根据所述室内温度与所述目标温度的差值,调整所述风机的风机转速,其中,所述风机在所述预设时间运行完成时,根据调整后的风机转速运行。
此外,为实现上述目的,本发明还提供一种无风感控制装置,所述无风感控制装置包括:存储器、处理器及存储在所述存储器上并可在所述处理器上运行的无风感控制程序,所述无风感控制程序被所述处理器执行时实现上述任一项所述的无风感控制方法的步骤。
此外,为实现上述目的,本发明还提供一种计算机可读存储介质,所述计算机可读存储介质上存储有无风感控制程序,所述无风感控制程序被处理器执行时实现上述任一项所述的无风感控制方法的步骤。
本发明提出一种无风感控制方法,通过在风机开启无风感时,获取所述风机的室内温度、紊流强度及吹风感指数,接着获取当前所述风机对应的第一风速,根据所述第一风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度,而后根据所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率,其中,所述风机根据调整后的所述压缩机频率运行,实现了根据室内温度与目标温度的差值对风机的压缩机频率的控制,并且通过该差值调整压缩机频率, 使得该风机对应的室内温度也随之变化,从而使得该差值也动态变化,以此实现了对风机无风感自适应控制的过程。
图1为本发明实施例方案涉及的硬件运行环境中的无风感控制装置结构示意图;
图2为本发明无风感控制方法第一实施例的流程示意图。
图3为本发明无风感控制方法第二实施例的流程示意图;
图4为本发明无风感控制方法第三实施例中根据所述无风感形式,确定所述风机的室内温度的步骤的细化流程示意图;
图5为本发明无风感控制方法第四实施例中根据所述第一风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度的步骤的细化流程示意图;
图6为本发明无风感控制方法第五实施例中根据所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率的步骤的细化流程示意图;
图7为本发明无风感控制方法第六实施例中根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率的步骤的细化流程示意图;
图8为本发明无风感控制方法第七实施例中根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率的步骤的细化流程示意图;
图9为本发明无风感控制方法第八实施例的流程示意图。
本发明目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
应当理解,此处所描述的具体实施例仅仅用以解释本发明,并不用于限定本发明。
如图1所示,图1为本发明实施例方案涉及的硬件运行环境中的 无风感控制装置结构示意图。
本发明实施例终端可以是PC等终端设备。
如图1所示,该终端可以包括:处理器1001,例如CPU,网络接口1004,用户接口1003,存储器1005,通信总线1002。其中,通信总线1002用于实现这些组件之间的连接通信。用户接口1003可以包括显示屏(Display)、输入单元比如键盘(Keyboard),可选用户接口1003还可以包括标准的有线接口、无线接口。网络接口1004可选的可以包括标准的有线接口、无线接口(如WI-FI接口)。存储器1005可以是高速RAM存储器,也可以是稳定的存储器(non-volatile memory),例如磁盘存储器。存储器1005可选的还可以是独立于前述处理器1001的存储装置。
可选地,终端还可以包括摄像头、RF(Radio Frequency,射频)电路,传感器、音频电路、WiFi模块等等。
本领域技术人员可以理解,图1中示出的终端结构并不构成对终端的限定,可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件布置。如图1所示,作为一种计算机存储介质的存储器1005中可以包括操作系统、网络通信模块、用户接口模块以及无风感控制程序。在图1所示的终端中,网络接口1004主要用于连接后台服务器,与后台服务器进行数据通信;用户接口1003主要用于连接客户端(用户端),与客户端进行数据通信;而处理器1001可以用于调用存储器1005中存储的无风感控制程序。
处理器1001调用存储器1005中存储的无风感控制程序时,执行如下任一实施例所述的无风感控制方法。
本发明进一步提供一种无风感控制方法,参照图2,图2为本发明无风感控制方法第一实施例的流程示意图。
在本实施例中,该无风感控制方法包括:
步骤S100,在风机开启无风感时,获取所述风机的室内温度、紊流强度及吹风感指数;
在本实施例中,无风感表示用户在使用风机的过程中的吹风感最小,即在该状态下,用户处于一种舒适的状态;根据确定的吹风感指 数,计算风机的目标温度,从而根据该目标温度动态地调整该风机的压缩机频率及转速,进而实现对风机无风感的自动调整,使得用户在使用风机的过程中一直处于无风感的状态;具体地,在风机开启无风感时,则获取风机的室内温度、紊流强度及吹风感指数,其中,室内温度为当前风机的在预设高度对应的温度值,紊流强度为风速随时间和空间变化的程度,是描述大气紊流运动特性的重要特征,吹风感指数为由吹风感引起的人体的不满意程度;风机对应的无风感形式包括三种,分别为:上无风感、下无风感及全无风感,当风机的上垂直导风条关闭、下垂直导风条打开时,则为上无风感;当风机的上垂直导风条打开、下垂直导风条关闭时,则为下无风感;当风机的上垂直导风条、下垂直导风条均关闭时,则为全无风感;在风机开启无风感时,则获取该风机的无风感形式,不同的无风感形式分别对应不同的出风口温度、紊流强度及吹风感指数;根据该风机的无风感形式,则可以分别确定该无风感形式对应的出风口温度、紊流强度及吹风感指数,其中,通过风机开启的无风感的形式可以确定当前该风机的风挡,根据该风挡与紊流强度的关系式可以确定,该无风感形式下该风机对应的紊流强度;该风挡与紊流强度的关系式为:T
u=a*F
2+b*F+c,其中,Tu为紊流强度,F为该风机的当前风挡,a、b、c分别为根据当前风机开启的无风感形式确定的参数;根据该出风口温度可以通过关系式计算得到该风机的室内温度;具体地,该出风口温度与该室内温度的关系式如下所示:
T
a=AT
c+B
其中,A、B为参数常量,T
c为当前该风机的出风口温度。
步骤S200,获取当前所述风机对应的第一风速,根据所述第一风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度;
在本实施例中,风速即局部平均空气流速,该第一风速即为该风机为当前时段该风机对应的风速,该第一风速可用V
a表示,其中,该第一风速的初值为预设初值,若该预设初值为0.3m/s,则该第一风速的初值V
a0等于0.3m/s;根据得到的第一风速V
a、当前该风机的紊 流强度T
u及吹风感指数DR,通过吹风感指数计算公式计算,则可以得到当前该风机的预选目标温度,该预选目标温度可用t
a表示;具体地,该吹风感指数的计算公式如下所示:
DR=(34-t
a)(v
a-0.05)
0.62(0.37×v
a×T
u+3.14)
其中,DR为吹风感指数,v
a为风速V
a,T
u为紊流强度,t
a为预选目标温度;
在计算得到该预选目标温度时,则获取该风机对应的设定温度,根据该预选目标温度及该设定温度,则可以确定当前该风机的目标温度,该目标温度可用T
as表示;其中,该设定温度为预先设定的温度,该设定温度可用T
s表示,例如,在该设定温度小于24℃(即T
s<24℃),预选目标温度小于23℃(即t
a<23℃)时,则确定当前该风机的目标温度为23℃;在该设定温度小于24℃(即T
s<24℃),预选目标温度大于28℃(即t
a>28℃)时,则确定当前该风机的目标温度为28℃;在该设定温度大于24℃同时小于28℃(即24℃<T
s<28℃),预选目标温度小于24℃(即t
a<24℃)时,则确定当前该风机的目标温度为24℃;在该设定温度大于24℃同时小于28℃(即24℃<T
s<28℃),预选目标温度大于28℃(即t
a>28℃)时,则确定当前该风机的目标温度为28℃;在该设定温度大于28℃(即T
s>28℃),预选目标温度小于24℃(即t
a<24℃)时,则确定当前该风机的目标温度为24℃;在该设定温度大于28℃(即T
s>28℃),预选目标温度大于29℃(即t
a大于29℃)时,则确定当前该风机的目标温度为29℃。
步骤S300,根据所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率,其中,所述风机根据调整后的所述压缩机频率运行。
在本实施例中,通过室内温度与目标温度的差值可以对该风机的压缩机频率和风机转速进行控制;具体地,在确定目标温度时,则计算该目标温度与该风机的室内温度的差值,同时获取预设取值范围,该预设取值范围为预先设定的差值取值范围;在该目标温度与该风机的室内温度的差值在该预设取值范围内时,则可表示为:(T
as-T
a)∈[-D,D],其中,[-D,D]为预设取值范围,D为正数,T
a为室 内温度,T
as为目标温度;在该目标温度与该风机的室内温度的差值不在该预设取值范围内时,则可表示为:
其中,[-D,D]为预设取值范围,D为正数,T
a为室内温度,T
as为目标温度;该目标温度与该风机的室内温度的差值不在该预设取值范围内,具体可分为两种情况,分别为该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限,以及该目标温度与该风机的室内温度的差值小于该预设取值范围的左极限;在该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限时,则可表示为T
as-T
a>D;在该目标温度与该风机的室内温度的差值小于该预设取值范围的左极限时,则可表示为T
as-T
a<-D;若该D的取值为0.5,则该预设取值范围为[-0.5,0.5],在该目标温度与该风机的室内温度的差值在该预设取值范围内时,则可表示为:(T
as-T
a)∈[-0.5,0.5];在该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限时,则可表示为T
as-T
a>0.5;在该目标温度与该风机的室内温度的差值小于该预设取值范围的左极限时,则可表示为T
as-T
a<-0.5;
在风机开启无风感时,此时,该风机对应的风速大小为该风速的初值大小,即在该风机开启无风感的同时,该风机按照初始的压缩机频率运行;在目标温度与该风机的室内温度的差值在该预设取值范围内时,则获取该风机的第一压缩机频率,其中,该第一压缩机频率表示在该差值在该预设取值范围内时,当前压缩机的频率;在该目标温度与该风机的室内温度的差值在该预设取值范围内时,则根据该第一压缩机频率运行该风机,直至风机退出无风感;在该目标温度与该风机的室内温度的差值不在该预设取值范围内时,则计算该风机的第二压缩机频率,其中,该第二压缩机频率表示在该差值不在该预设取值范围内时,当前压缩机的频率;
其中,在该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限时,压缩机每次则降低预设频率值;由于改变了压缩机的频率,使得该风机的出风口温度也会随之发生变化,该风机对应的室内温度也会发生变化;如该预设频率值为1Hz,则该压缩机每次则降低1Hz,该压缩机频率降低后的值即为该第二压缩机频率,其中, 该第二压缩机频率的最小值为20Hz;在该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限,且该第二压缩机频率大于该最小值时,则获取预设时间,在预设时间内根据该第二压缩机频率运行该风机;
若该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限,而该第二压缩机频率已经降低至最小值时,则获取该风机对应的第二风速;其中,风速与风道结构、风机转速等因素有关,对于特定的空调器,则可以近似看作风速仅与风机转速有关,因此,根据该风机对应的风速则可以计算得到该风机的风机转速,从而在第二压缩机频率为最小压缩机频率时,则通过改变风速调整风机的风机转速,实现对风机的控制;在本实施例中该风机转速用风挡表示;风速与风机的风挡的关系表达式为:V
a=p*F+q;其中,F为该风机的当前风挡,p、q分别为根据当前风机开启的无风感形式确定的参数,v
a为风速;并且,在风速由第一风速改变为第二风速时,通过风速计算得到的目标温度则也会随之变化;其中,第一风速则为当前时段该风机对应的风速,第二风速为在该差值大于该预设取值范围的右极限时,下一时段该风机对应的风速;该第一风速与该第二风速的关系可表示为:V
a(n+1)=V
a(n)-C,其中,V
a(n+1)表示该第二风速,V
a(n)表示该第一风速,C表示预设风速值;在获取第二风速时,当前该风机一直处于根据该最低压缩机频率或根据该第一风速对应的风机转速运行的状态;在计算得到该第二风速时,则获取预设时间,并根据该第二风速计算该风机对应的风机转速;在该风机在预设时间内根据该最低压缩机频率或根据该第一风速对应的风机转速运行结束时,该风机则在该预设时间内根据该第二风速对应的风机转速运行,此时该第二压缩机频率为最低压缩机频率;
在该目标温度与该风机的室内温度的差值小于该预设取值范围的左极限时,压缩机每次则提高预设频率值,由于改变了压缩机的频率,使得该风机的出风口温度也会随之发生变化,该风机对应的室内温度也会发生变化;若该预设频率值为1Hz,则该压缩机每次则提高1Hz,该压缩机频率提高后的值即为该第二压缩机频率;具体地,在 该目标温度与该风机的室内温度的差值小于该预设取值范围的左极限时,则获取预设时间,在预设时间内根据该第二压缩机频率运行该风机。
本实施例提出的无风感控制方法,通过在风机开启无风感时,获取所述风机的室内温度、紊流强度及吹风感指数,接着获取当前所述风机对应的第一风速,根据所述第一风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度,而后根据所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率,其中,所述风机根据调整后的所述压缩机频率运行,实现了根据室内温度与目标温度的差值对风机的压缩机频率的控制,并且通过该差值调整压缩机频率,使得该风机对应的室内温度也随之变化,从而使得该差值也动态变化,以此实现了对风机无风感自适应控制的过程。
基于第一实施例,提出本发明无风感控制方法的第二实施例,参照图3,在本实施例中,步骤S100包括:
步骤S110,在风机开启无风感时,获取当前所述风机的无风感形式;
在本实施例中,风机对应的无风感形式包括三种,分别为:上无风感、下无风感及全无风感,当风机的上垂直导风条关闭、下垂直导风条打开时,则为上无风感;当风机的上垂直导风条打开、下垂直导风条关闭时,则为下无风感;当风机的上垂直导风条、下垂直导风条均关闭时,则为全无风感;在风机开启无风感时,则根据用户基于风机无风感控制装置发出的无风感开启指令,获取当前该风机的无风感形式,根据该风机的无风感形式,则可以分别确定该无风感形式对应的出风口温度、紊流强度及吹风感指数。
步骤S120,根据所述无风感形式,确定所述风机的室内温度、紊流强度及吹风感指数。
在本实施例中,根据该出风口温度可以计算得到该风机的室内温度;若出风口温度用T
c表示,室内温度用T
a表示,紊流强度用T
u表示,吹风感指数用DR表示;不同的无风感形式则分别对应的不同 的出风口温度、室内温度及紊流强度;例如,在该风机的无风感形式为上无风感时,采集出风口温度为T
c1,根据T
a=AT
c+B计算得到T
a1,此时,上无风感对应的紊流强度T
u1为35,上无风感对应的吹风感指数用DR1为8;在该风机的无风感形式为下无风感时,采集出风口温度为T
c2,根据T
a=AT
c+B可以计算得到室内温度T
a2,此时,下无风感对应的紊流强度T
u2为38,下无风感对应的吹风感指数用DR2为9;在该风机的无风感形式为全无风感时,采集出风口温度为T
c3,根据T
a=AT
c+B可以计算得到室内温度T
a3,此时,全无风感对应的紊流强度T
u3为37,全无风感对应的吹风感指数用DR3为5。
本实施例提出的风感控制方法,通过在风机开启无风感时,获取当前所述风机的无风感形式,接着根据所述无风感形式,确定所述风机的室内温度、紊流强度及吹风感指数,实现了对风机的室内温度、紊流强度及吹风感指数的确定,从而进一步地实现了根据该紊流强度、吹风感指数对该风机的目标温度的获取。
基于第二实施例,提出本发明无风感控制方法的第三实施例,参照图4,在本实施例中,步骤S120包括:
步骤S121,根据所述无风感形式,采集当前所述风机的出风口温度;
在本实施例中,不同的无风感形式对应的出风口温度是不同的,根据获取到的该风机的无风感形式,可以采集到该风机的出风口温度;在该风机的无风感形式为上无风感时,该风机对应的出风口温度则为T
C1;在该风机的无风感形式为下无风感时,该风机对应的出风口温度则为T
c2;在该风机的无风感形式为全无风感时,该风机对应的出风口温度则为T
c3。
步骤S122,根据所述出风口温度,计算所述风机的室内温度。
在本实施例中,根据该出风口温度可以计算得到该风机的室内温度;若出风口温度用T
c表示,室内温度用T
a表示;在该风机的无风感形式为上无风感时,采集出风口温度为T
c1,根据T
a=AT
c+B可以计算得到室内温度T
a1;在该风机的无风感形式为下无风感时,采集出风口温度为T
c2,根据T
a=AT
c+B可以计算得到室内温度T
a2;在 该风机的无风感形式为全无风感时,采集出风口温度为T
c3,根据T
a=AT
c+B可以计算得到室内温度T
a3。
本实施例提出的无风感控制方法,通过根据所述无风感形式,采集当前所述风机的出风口温度,接着根据所述出风口温度,计算所述风机的室内温度,实现了对风机的出风口温度的获取,从而根据该出风口温度实现了对该风机室内温度的确定。
基于第一实施例,提出本发明无风感控制方法的第四实施例,参照图5,在本实施例中,步骤S200包括:
步骤S210,根据所述第一风速、所述紊流强度及所述吹风感指数,计算所述风机的预选目标温度;
在本实施例中,风速即局部平均空气流速,该第一风速即为该风机为当前时段该风机对应的风速,该风速可用V
a表示;紊流强度为风速随时间和空间变化的程度,该紊流强度可用T
u表示;吹风感指数为由吹风感引起的人体的不满意程度,该吹风感指数用DR表示;在获取到该第一风速、该紊流强度及该吹风感指数时,根据吹风感指数计算公式计算,则可以得到当前该风机的预选目标温度,该预选目标温度可用t
a表示;该吹风感指数的计算公式如下所示:
DR=(34-t
a)(V
a-0.05)
0.62(0.37×V
a×T
u+3.14)
其中,DR为吹风感指数,V
a为第一风速,T
u为紊流强度,t
a为预选目标温度。
步骤S220,获取所述风机的设定温度,基于所述预选目标温度及所述设定温度,确定当前所述风机的目标温度。
在本实施例中,该预选目标温度非最终的目标温度,根据风机的设定温度及该预选目标温度,才能确定该风机的目标温度;其中,设定温度为预先设定的温度,该设定温度可用T
s表示,目标温度为当前该风机的目标温度,该目标温度可用T
as表示;根据该预选目标温度及该设定温度,则可以确定当前该风机的目标温度,例如,在该设定温度小于24℃(即T
s<24℃),预选目标温度小于23℃(即t
a<23℃)时,则确定当前该风机的目标温度为23℃;在该设定温度小于24℃(即T
s<24℃),预选目标温度大于28℃(即t
a>28℃)时,则确定 当前该风机的目标温度为28℃;在该设定温度大于24℃同时小于28℃(即24℃<T
s<28℃),预选目标温度小于24℃(即t
a<24℃)时,则确定当前该风机的目标温度为24℃;在该设定温度大于24℃同时小于28℃(即24℃<T
s<28℃),预选目标温度大于28℃(即t
a>28℃)时,则确定当前该风机的目标温度为28℃;在该设定温度大于28℃(即T
s>28℃),预选目标温度小于24℃(即t
a<24℃)时,则确定当前该风机的目标温度为24℃;在该设定温度大于28℃(即T
s>28℃),预选目标温度大于29℃(即t
a大于29℃)时,则确定当前该风机的目标温度为29℃。
本实施例提出的无风感控制方法,通过根据所述第一风速、所述紊流强度及所述吹风感指数,计算所述风机的预选目标温度,接着获取所述风机的设定温度,基于所述预选目标温度及所述设定温度,确定当前所述风机的目标温度,实现了对设定温度的获取,从而通过对该设定温度与该预先目标温度进行判断,实现了对该风机最终的目标温度的确定。
基于第一实施例,提出本发明无风感控制方法的第五实施例,参照图6,在本实施例中,步骤S300包括:
步骤S310,获取所述风机对应的预设取值范围;
在本实施例中,预设取值范围为预先设定的差值取值范围;通过获取到的室内温度与目标温度的差值及该预设取值范围,可以对该风机的压缩机频率和风机转速进行调整;在确定风机的目标温度时,则在计算该目标温度与室内温度的差值的同时,获取该风机对应的预设取值范围;在该目标温度与该风机的室内温度的差值在该预设取值范围内时,则可表示为:(T
as-T
a)∈[-D,D];在该目标温度与该风机的室内温度的差值不在该预设取值范围内时,则可表示为:
其中,[-D,D]为预设取值范围,D为正数,T
a为室内温度,T
as为目标温度。
步骤S320,根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率。
在本实施例中,在获取到该目标温度与该风机的室内温度的差值 及该预设取值范围时,通过判断该目标温度与该风机的室内温度的差值是否在该预设取值范围内,来调整风机的压缩机频率;具体地,在该目标温度与该风机的室内温度的差值在该预设取值范围内时,则获取该风机的第一压缩机频率,其中,该第一压缩机频率表示在该差值在该预设取值范围内时,当前压缩机的频率;在该目标温度与该风机的室内温度的差值在该预设取值范围内时,则根据该第一压缩机频率运行该风机,直至风机退出无风感;在该目标温度与该风机的室内温度的差值不在该预设取值范围内时,则计算该风机的第二压缩机频率,其中,该第二压缩机频率表示在该差值不在该预设取值范围内时,当前压缩机的频率。
本实施例提出的无风感控制方法,通过获取所述风机对应的预设取值范围,接着根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率,实现了通过判断该室内温度与该目标温度的差值是否在预设取值范围,对该风机的压缩机频率不同的控制,进一步地实现了对风机的无风感自适应控制的过程。
基于第五实施例,提出本发明无风感控制方法的第六实施例,参照图7,在本实施例中,步骤S320包括:
步骤S321,当所述室内温度与所述目标温度的差值在所述预设取值范围内时,获取所述风机的第一压缩机频率;
在本实施例中,第一压缩机频率表示在该差值在该预设取值范围内时,当前压缩机的频率与当前风机的转速;在该差值在该预设取值范围内时,则获取该风机的第一压缩机频率,根据该第一压缩机频率控制该风机运行,直至风机退出无风感;具体地,若在该风机开启无风感时,根据该风速的初值计算得到的目标温度与室内温度的差值在预设取值范围之内,则此时该风机的第一压缩机频率为初始压缩机频率的大小,即当前风机开启的无风感形式对应的压缩机频率的大小;若在该风机开启无风感时,根据该风速的初值计算得到的目标温度与室内温度的差值不在该预设取值范围之内,则该第一压缩机频率则为频率升高或降低后的第二压缩机频率;在根据第二压缩机频率对应的室内温度与该目标温度计算得到的差值在该预设取值范围之内时,此 时,该第一压缩机频率的大小则等于该第二压缩机频率的大小。
步骤S322,根据所述第一压缩机频率,调整所述风机的压缩机频率,其中,所述风机根据所述第一压缩机频率运行。
在本实施例中,在获取到该第一压缩机频率时,调整当前该风机的压缩机频率及风机转速为该第一压缩机频率,根据该第一压缩机频率控制该风机运行,直至该风机接收到退出无风感指令,该风机退出无风感。
本实施例提出的无风感控制方法,通过当所述室内温度与所述目标温度的差值在所述预设取值范围内时,获取所述风机的第一压缩机频率,接着根据所述第一压缩机频率,调整所述风机的压缩机频率,其中,所述风机根据所述第一压缩机频率运行,实现了在室内温度与目标温度的差值在所述预设取值范围内时,根据第一压缩机频率对风机的控制,进一步地实现了在室内温度与目标温度的差值在预设取值范围内时,对风机的无风感自适应控制的过程。
基于第五实施例,提出本发明无风感控制方法的第七实施例,参照图8,在本实施例中,步骤S320包括:
步骤S323,当所述室内温度与所述目标温度的差值不在所述预设取值范围内时,获取所述风机的第二压缩机频率及预设时间;
在本实施例中,该第二压缩机频率表示在该差值不在该预设取值范围内时,当前压缩机的频率;在该目标温度与该风机的室内温度的差值不在该预设取值范围内时,则获取该风机的第二压缩机频率;其中,该目标温度与该风机的室内温度的差值不在该预设取值范围内,具体可分为两种情况,分别为该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限,以及该目标温度与该风机的室内温度的差值小于该预设取值范围的左极限;在该目标温度与该风机的室内温度的差值小于该预设取值范围的左极限时,压缩机每次则提高预设频率值,若该预设频率值为1Hz,则该压缩机每次则提高1Hz,该压缩机频率提高后的值即为该第二压缩机频率,此时该风机则在预设时间内根据该第二压缩机频率运行;
在该目标温度与该风机的室内温度的差值大于该预设取值范围 的右极限时,压缩机每次则降低预设频率值,若该预设频率值为1Hz,则该压缩机每次则降低1Hz,该压缩机频率降低后的值即为该第二压缩机频率;若在该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限,而该第二压缩机频率还未降低至最小值时,此时该风机则在预设时间内根据该第二压缩机频率运行;若该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限,而该第二压缩机频率为最低压缩机频率时,则获取该风机对应的第二风速,其中,该第一风速为当前时段该风机对应的风速,第二风速为在第二压缩机频率为最低压缩机频率时,下一时段该风机对应的风速;该第一风速与该第二风速的关系可表示为:V
a(n+1)=V
a(n)-C,其中,V
a(n+1)表示该第二风速,V
a(n)表示该第一风速,C表示预设风速值;在该第二压缩机频率为最小值时,则根据获取当前该风机的风速(即第一风速)计算得到第二风速;其中,当前该风机一直处于根据该最低压缩机频率或根据该第一风速对应的风机转速运行的状态;在计算得到该第二风速时,则获取预设时间,并根据该第二风速,通过该风速与风挡的关系表达式为:V
a=p*F+q计算得到该风机的风机转速;在该风机在预设时间内根据该最低压缩机频率或根据该第一风速对应的风机转速运行结束时,该风机则在该预设时间内根据该第二风速对应的风机转速运行,并且,此时该第二压缩机频率为最低压缩机频率。
步骤S324,根据所述第二压缩机频率,调整所述风机的压缩机频率,其中,所述风机在所述预设时间内根据所述第二压缩机频率运行。
在本实施例中,若在该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限时,且获取到的该第二压缩机频率已经降低至最低压缩机频率时,则根据获取该风机对应的第二风速与预设时间,在预设时间内根据该第二风速对应的风机转速运行该风机;例如,当前该风机对应的风速(即第一风速)为0.3m/s,预设风速值为0.1m/s,在获取到该第二压缩机频率为最低压缩机频率时,根据该第一风速计算得到的第二风速则为0.2m/s,在预设时间内该风机根据该0.3m/s对应的风机转速运行完成时,则根据该0.2m/s对应的风机转速运行; 若在该目标温度与该风机的室内温度的差值大于该预设取值范围的右极限时,而获取到的该第二压缩机频率还未到达最低压缩机频率时,则根据获取的预设时间,在预设时间内根据降低后的该第二压缩机频率运行该风机;若在该目标温度与该风机的室内温度的差值小于该预设取值范围的左极限时,则根据获取的预设时间,在预设时间内根据提高后的第二压缩机频率运行该风机。
本实施例提出的无风感控制方法,通过当所述室内温度与所述目标温度的差值不在所述预设取值范围内时,获取所述风机的第二压缩机频率及预设时间,接着根据所述第二压缩机频率,调整所述风机的压缩机频率,其中,所述风机在所述预设时间内根据所述第二压缩机频率运行,实现了在室内温度与目标温度的差值不在所述预设取值范围内时,根据第二压缩机频率对风机的控制,进一步地实现了在室内温度与目标温度的差值不在预设取值范围内时,对风机的无风感自适应控制的过程。
基于第7实施例,提出本发明无风感控制方法的第八实施例,参照图9,在本实施例中,在步骤S323之后,该无风感控制方法还包括:
步骤S325,在所述第二压缩机频率为最低压缩机频率时,获取当前所述风机对应的第二风速,根据所述第二风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度;
在本实施例中,在目标温度与室内温度的差值不在预设取值范围内时,获取该风机的第二压缩机频率;在获取到该第二压缩机频率为最低压缩机频率时,则根据获取当前该风机的风速(即第一风速)计算得到第二风速;具体地,该第一风速与该第二风速的关系可表示为:V
a(n+1)=V
a(n)-C,其中,V
a(n+1)表示该第二风速,V
a(n)表示该第一风速,C表示预设风速值;若该预设风速值等于0.1m/s,该第一风速与该第二风速的关系可表示为:V
a(n)=V
a(n-1)-0.1;根据得到的第二风速V
a、该风机的紊流强度T
u及吹风感指数DR,通过吹风感指数计算公式计算,则可以得到当前该风机的预选目标温度t
a;在计算得到该预选目标温度时,则获取该风机对应的设定温度,根据该预选 目标温度及该设定温度,则可以确定当前该风机的目标温度T
as。
步骤S326,根据所述室内温度与所述目标温度的差值,调整所述风机的风机转速,其中,所述风机在所述预设时间运行完成时,根据调整后的风机转速运行。
在本实施例中,在确定目标温度时,则计算该目标温度与该风机的室内温度的差值,同时获取预设取值范围,该预设取值范围为预先设定的差值取值范围;在该目标温度与该风机的室内温度的差值在该预设取值范围内时,则获取该风机的第一压缩机频率,并根据该第一压缩机频率运行该风机,直至风机退出无风感;在该目标温度与该风机的室内温度的差值不在该预设取值范围内时,则根据V
a(n+1)=V
a(n)-C获取该风机对应的第二风速;在计算得到该第二风速时,则获取预设时间,并根据该第二风速计算该风机对应的风机转速;在该风机在预设时间内根据该最低压缩机频率或根据该第一风速对应的风机转速运行结束时,该风机则在该预设时间内根据该第二风速对应的风机转速运行,此时,该第二压缩机频率为最低压缩机频率;
在该目标温度与该风机的室内温度的差值小于该预设取值范围的左极限时,压缩机每次则提高预设频率值,若该预设频率值为1Hz,则该压缩机每次则提高1Hz,该压缩机频率提高后的值即为该第二压缩机频率;具体地,在该目标温度与该风机的室内温度的差值小于该预设取值范围的左极限时,则获取预设时间,在预设时间内根据该第二压缩机频率运行该风机;由于改变了压缩机频率,从而使得当前该风机对应的室内温度也会随之发生变化;因此,在该预设时间内根据该第二压缩机频率运行该风机的同时,到该目标温度与该风机的室内温度的差值与该预设取值范围进行再一次的判断,直至该目标温度与该风机的室内温度的差值在该预设取值范围内。
本实施例提出的无风感控制方法,通过在所述第二压缩机频率为最低压缩机频率时,获取当前所述风机对应的第二风速,根据所述第二风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度,接着根据所述室内温度与所述目标温度的差值,调整所述风机的风机转速,其中,所述风机在所述预设时间运行完成时,根据调整 后的风机转速运行,实现了在压缩机频率达到最小压缩频率时,通过第二风速控制风机转速进一步实现了对风机无风感自适应控制的过程。
此外,为实现上述目的,本发明还提出一种计算机可读存储介质,所述计算机可读存储介质上存储有无风感控制程序,所述无风感控制程序被处理器执行时实现如上任一项实施例所述的无风感控制方法。
需要说明的是,在本文中,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、物品或者系统不仅包括那些要素,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、物品或者系统所固有的要素。在没有更多限制的情况下,由语句“包括一个……”限定的要素,并不排除在包括该要素的过程、方法、物品或者系统中还存在另外的相同要素。
上述本发明实施例序号仅仅为了描述,不代表实施例的优劣。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到上述实施例方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件,但很多情况下前者是更佳的实施方式。基于这样的理解,本发明的技术方案本质上或者说对现有技术做出贡献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如上所述的一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是手机,计算机,服务器,空调器,或者网络设备等)执行本发明各个实施例所述的方法。
以上仅为本发明的优选实施例,并非因此限制本发明的专利范围,凡是利用本发明说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本发明的专利保护范围内。
Claims (24)
- 一种无风感控制方法,其中,所述无风感控制方法包括:在风机开启无风感时,获取所述风机的室内温度、紊流强度及吹风感指数;获取当前所述风机对应的第一风速,根据所述第一风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度;根据所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率,其中,所述风机根据调整后的所述压缩机频率运行。
- 如权利要求1所述的无风感控制方法,其中,所述在风机开启无风感时,获取所述风机的室内温度、紊流强度及吹风感指数的步骤包括:在风机开启无风感时,获取当前所述风机的无风感形式;根据所述无风感形式,确定所述风机的室内温度、紊流强度及吹风感指数。
- 如权利要求2所述的无风感控制方法,其中,所述根据所述无风感形式,确定所述风机的室内温度的步骤包括:根据所述无风感形式,采集当前所述风机的出风口温度;根据所述出风口温度,计算所述风机的室内温度。
- 如权利要求1所述的无风感控制方法,其中,所述根据所述第一风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度的步骤包括:根据所述第一风速、所述紊流强度及所述吹风感指数,计算所述风机的预选目标温度;获取所述风机的设定温度,基于所述预选目标温度及所述设定温度,确定当前所述风机的目标温度。
- 如权利要求1所述的无风感控制方法,其中,所述根据所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率的步骤包括:获取所述风机对应的预设取值范围;根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率。
- 如权利要求5所述的无风感控制方法,其中,所述根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率的步骤包括:当所述室内温度与所述目标温度的差值在所述预设取值范围内时,获取所述风机的第一压缩机频率;根据所述第一压缩机频率,调整所述风机的压缩机频率,其中,所述风机根据所述第一压缩机频率运行。
- 如权利要求5所述的无风感控制方法,其中,所述根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率的步骤还包括:当所述室内温度与所述目标温度的差值不在所述预设取值范围内时,获取所述风机的第二压缩机频率及预设时间;根据所述第二压缩机频率,调整所述风机的压缩机频率,其中,所述风机在所述预设时间内根据所述第二压缩机频率运行。
- 如权利要求7所述的无风感控制方法,其中,所述获取所述风机的第二压缩机频率及预设时间的步骤之后,所述无风感控制方法还包括:在所述第二压缩机频率为最低压缩机频率时,获取当前所述风机对应的第二风速,根据所述第二风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度;根据所述室内温度与所述目标温度的差值,调整所述风机的风机转速,其中,所述风机在所述预设时间运行完成时,根据调整后的风机转速运行。
- 一种无风感控制装置,其中,所述无风感控制装置包括:存储器、处理器及存储在所述存储器上并可在所述处理器上运行的无风感控制程序,所述无风感控制程序被所述处理器执行时实现以下步骤:在风机开启无风感时,获取所述风机的室内温度、紊流强度及吹 风感指数;获取当前所述风机对应的第一风速,根据所述第一风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度;根据所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率,其中,所述风机根据调整后的所述压缩机频率运行。
- 如权利要求9所述的无风感控制装置,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:在风机开启无风感时,获取当前所述风机的无风感形式;根据所述无风感形式,确定所述风机的室内温度、紊流强度及吹风感指数。
- 如权利要求10所述的无风感控制装置,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:根据所述无风感形式,采集当前所述风机的出风口温度;根据所述出风口温度,计算所述风机的室内温度。
- 如权利要求9所述的无风感控制装置,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:根据所述第一风速、所述紊流强度及所述吹风感指数,计算所述风机的预选目标温度;获取所述风机的设定温度,基于所述预选目标温度及所述设定温度,确定当前所述风机的目标温度。
- 如权利要求9所述的无风感控制装置,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:获取所述风机对应的预设取值范围;根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率。
- 如权利要求13所述的无风感控制装置,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:当所述室内温度与所述目标温度的差值在所述预设取值范围内时,获取所述风机的第一压缩机频率;根据所述第一压缩机频率,调整所述风机的压缩机频率,其中, 所述风机根据所述第一压缩机频率运行。
- 如权利要求13所述的无风感控制装置,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:当所述室内温度与所述目标温度的差值不在所述预设取值范围内时,获取所述风机的第二压缩机频率及预设时间;根据所述第二压缩机频率,调整所述风机的压缩机频率,其中,所述风机在所述预设时间内根据所述第二压缩机频率运行。
- 如权利要求15所述的无风感控制装置,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:在所述第二压缩机频率为最低压缩机频率时,获取当前所述风机对应的第二风速,根据所述第二风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度;根据所述室内温度与所述目标温度的差值,调整所述风机的风机转速,其中,所述风机在所述预设时间运行完成时,根据调整后的风机转速运行。
- 一种计算机可读存储介质,其中,所述计算机可读存储介质上存储有无风感控制程序,所述无风感控制程序被处理器执行时实现以下步骤:在风机开启无风感时,获取所述风机的室内温度、紊流强度及吹风感指数;获取当前所述风机对应的第一风速,根据所述第一风速、所述紊流强度及所述吹风感指数,确定当前所述风机的目标温度;根据所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率,其中,所述风机根据调整后的所述压缩机频率运行。
- 如权利要求17所述的计算机可读存储介质,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:在风机开启无风感时,获取当前所述风机的无风感形式;根据所述无风感形式,确定所述风机的室内温度、紊流强度及吹风感指数
- 如权利要求18所述的计算机可读存储介质,其中,所述无 风感控制程序被处理器执行时,还实现以下步骤:根据所述无风感形式,采集当前所述风机的出风口温度;根据所述出风口温度,计算所述风机的室内温度。
- 如权利要求17所述的计算机可读存储介质,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:根据所述第一风速、所述紊流强度及所述吹风感指数,计算所述风机的预选目标温度;获取所述风机的设定温度,基于所述预选目标温度及所述设定温度,确定当前所述风机的目标温度。
- 如权利要求17所述的计算机可读存储介质,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:获取所述风机对应的预设取值范围;根据所述预设取值范围及所述室内温度与所述目标温度的差值,调整所述风机的压缩机频率。
- 如权利要求21所述的计算机可读存储介质,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:当所述室内温度与所述目标温度的差值在所述预设取值范围内时,获取所述风机的第一压缩机频率;根据所述第一压缩机频率,调整所述风机的压缩机频率,其中,所述风机根据所述第一压缩机频率运行。
- 如权利要求21所述的计算机可读存储介质,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:当所述室内温度与所述目标温度的差值不在所述预设取值范围内时,获取所述风机的第二压缩机频率及预设时间;根据所述第二压缩机频率,调整所述风机的压缩机频率,其中,所述风机在所述预设时间内根据所述第二压缩机频率运行。
- 如权利要求23所述的计算机可读存储介质,其中,所述无风感控制程序被处理器执行时,还实现以下步骤:在所述第二压缩机频率为最低压缩机频率时,获取当前所述风机对应的第二风速,根据所述第二风速、所述紊流强度及所述吹风感指 数,确定当前所述风机的目标温度;根据所述室内温度与所述目标温度的差值,调整所述风机的风机转速,其中,所述风机在所述预设时间运行完成时,根据调整后的风机转速运行。
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| CN114320865A (zh) * | 2021-12-31 | 2022-04-12 | 浙江吉利控股集团有限公司 | 一种压缩机的控制方法及控制系统 |
| CN115682366A (zh) * | 2021-07-30 | 2023-02-03 | 广东美的制冷设备有限公司 | 空调器及其控制方法、计算机可读存储介质 |
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| CN109945446B (zh) * | 2019-03-11 | 2021-10-26 | 广东美的制冷设备有限公司 | 空调器的控制方法 |
| KR20230009731A (ko) * | 2021-07-09 | 2023-01-17 | 삼성전자주식회사 | 공기조화기 및 그 제어 방법 |
| EP4328513A4 (en) | 2021-07-09 | 2024-10-23 | Samsung Electronics Co., Ltd. | AIR CONDITIONING SYSTEM AND CONTROL METHODS THEREFOR |
| CN114061088B (zh) * | 2021-11-03 | 2023-05-16 | 青岛海尔空调器有限总公司 | 空调控制方法、控制设备、存储介质及空调 |
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| EP3604961A4 (en) | 2020-06-10 |
| HUE054016T2 (hu) | 2021-08-30 |
| JP2020517856A (ja) | 2020-06-18 |
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