CN115046296B - Household dynamic humidification method and device integrating thermal comfort and body-sensing temperature - Google Patents

Household dynamic humidification method and device integrating thermal comfort and body-sensing temperature Download PDF

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CN115046296B
CN115046296B CN202210966262.8A CN202210966262A CN115046296B CN 115046296 B CN115046296 B CN 115046296B CN 202210966262 A CN202210966262 A CN 202210966262A CN 115046296 B CN115046296 B CN 115046296B
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CN115046296A (en
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薛雪
龙照凯
孙雪
李俊
王伟明
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Hunan Weideng Intelligent Technology Co ltd
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • F24F11/65Electronic processing for selecting an operating mode
    • 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
    • F24F2110/20Humidity

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Abstract

The invention discloses a home dynamic humidification method and a home dynamic humidification device integrating thermal comfort and somatosensory temperature, wherein the method comprises the following steps: monitoring indoor temperature and relative humidity in real time, and setting equivalent air flow rate; is calculated to bekThe instantaneous equivalent thermal comfort index and the sensible temperature; setting initial assignment weight coefficient and calculating the secondkOf time of dayPT k int A value; according toPT k int Value sumRH k air Interval of value, set up the second of the intelligent humidifierk+1The control mode of the moment comprises a non-starting humidifying mode, a conventional humidifying mode and a rapid excessive humidifying mode; at the k +1 th moment, recalculating the equivalent thermal comfort index and the sensible temperature, and calculating to obtain a weight coefficient at a new moment; repeating steps 5-7 above until the humidifier is turned off. The invention adopts an equivalent thermal comfort algorithm and a fusion algorithm, and a control method of dynamic humidification, conventional humidification and rapid over-humidification, thereby improving the comfort of human body.

Description

Household dynamic humidification method and device integrating thermal comfort and sensible temperature
Technical Field
The invention belongs to the technical field of air conditioning, and particularly relates to a household dynamic humidification method and device integrating thermal comfort and sensible temperature.
Background
The humidification modes of the traditional humidifier are manual switch humidification, timing humidification and automatic humidification. The traditional humidifier is provided with a humidity sensor, and the starting and stopping of the humidifier are controlled by monitoring indoor real-time humidity in real time and according to set upper and lower limit values of the humidity.
Above-mentioned traditional humidifier operation control mode can not carry out developments and accurate humidification control according to the interior space personnel travelling comfort demand in real time effectually, and the indoor dry bulb temperature of actual humidification effect has not been considered, whether indoor have other air conditioning equipment to operate, and final humidification effect is poor and more people's intention. In addition, the existing evaluation indexes of the thermal comfort of the human body are not accurate enough, and dynamic adjustment can not be carried out according to the actual situation, so that the humidification effect is not ideal.
Disclosure of Invention
In view of this, the invention provides a home dynamic humidification method integrating thermal comfort and body-sensing temperature.
The invention discloses a home furnishing dynamic humidification method integrating thermal comfort and sensible temperature, which comprises the following steps:
the method comprises the following steps: after the intelligent household dynamic humidifier device is started, the first step iskAt any moment, the dry bulb temperature of the indoor air is monitored in real time through the built-in air dry bulb temperature sensor, the built-in relative humidity sensor and the infrared induction sensorT k air Relative Humidity (RH)RH k air And monitoring whether other air conditioning devices are started or not and setting equivalent air flow rate through the infrared induction sensorv k air,eqt
Step two: calculating the parameters measured in real time in the step onekThe instantaneous equivalent thermal comfort index;
step three: calculating the parameters measured in real time in the step onekBody sensing temperature at any moment;
step four: setting an initial assignment weight coefficient if other air conditioning devices in the room are startedW 1 k AndW 2 k
step five: weighting coefficient of k timeW 1 k W 2 k Substitute into formula and calculatekOf time of dayPT k int A value;
step six: when in usePT k int Is of the value [ -1,1 [)]A section andRH k air the values of (A) are [35%,65%]During interval, the first of the intelligent humidifierk+1Control mode of time of dayH k+1 mode Adjusting to be 0, namely not starting humidification; when the temperature is higher than the set temperaturePT k int When the value of (A) is less than-1, orRH k air Is less than 35%, the intelligent humidifierk+1Control mode of time of dayH k+1 mode The humidifier is adjusted to be 1, and a conventional humidification mode is started for a room by the humidifier; when the temperature is higher than the set temperaturePT k int Is less than-1, andRH k air is also less than 35%, the intelligent humidifierk+1Control mode of time of dayH k+1 mode The humidification mode is adjusted to be 2, and the humidifier is started to quickly exceed the humidification mode of the room;
step seven: and (4) at the k +1 th moment, the intelligent humidifier acquires the air temperature and the relative humidity at the new moment again, recalculates the equivalent thermal comfort index and the sensible temperature, and calculates to obtain the weight coefficient of the new momentW 1 k W 2 k
Step eight: and repeating the fifth step, the sixth step and the seventh step until the intelligent humidifier is manually turned off or is turned off regularly.
Further, if no other air conditioner is found to be on, the equivalent air flow rate is setv k air,eqt The equivalent is 0m/s; if other air-conditioning devices are found to be started, setting the equivalent air flow rate according to the monitored air-conditioning air speed modev k air,eqt
If the wind speed mode of the air conditioner is three-gear, the equivalent air flow rate at low speedv k air,eqt 0.1m/s, equivalent air flow rate at medium speed and automatic gearv k air,eqt 0.2m/s, equivalent air flow rate at high speedv k air,eqt The equivalent is 0.3m/s;
if the wind speed mode of the air conditioner is five gears, the equivalent air flow rate is 1 latticev k air,eqt 0.1m/s, equivalent air flow rate at 2 gridsv k air,eqt 0.15m/s,3 grids and the equivalent air flow rate in the automatic gearv k air,eqt Equivalent is 0.2m/s, equivalent air flow rate at 4 latticesv k air,eqt Equivalent is 0.25m/s, equivalent air flow rate at 5 latticesv k air,eqt The equivalent is 0.3m/s.
Further, the firstkThe equivalent thermal comfort index at a moment is calculated as follows:
Figure 79972DEST_PATH_IMAGE001
PMV eqt is an equivalent thermal comfort index, the range of which is equivalent to the average index of seven levels of thermal sensing votes.
Further, the firstkThe sensible temperature at that moment is calculated as follows:
Figure 174967DEST_PATH_IMAGE002
Figure 358824DEST_PATH_IMAGE003
is thatkBody sensing temperature at any moment;
Figure 259784DEST_PATH_IMAGE004
is thatkThe indoor air temperature at that moment;
Figure 884800DEST_PATH_IMAGE005
is thatkIndoor relative humidity at all times;
Figure 213013DEST_PATH_IMAGE006
is thatkThe indoor equivalent air flow rate at that moment.
Further, if it is not monitored in the roomIf other air conditioner is not turned on, the weight coefficient is initially assignedW 1 k =W 2 k =0.5; if the situation that other air conditioners in the room are started and are in a refrigeration mode or a dehumidification mode is monitored, the weight coefficient is initially assignedW 1 k =0.2,W 2 k =0.8; if other air conditioners in the room are monitored to be started and the heating mode is adopted, the weight coefficient is initially assignedW 1 k =0.8,W 2 k =0.2。
Further, the weighting factor of the k time is adjustedW 1 k W 2 k Substituting the following formula to calculatekFusion value of equivalent thermal comfort and sensible temperature at momentPT k int
Figure 867854DEST_PATH_IMAGE007
Further, the weight coefficient of the new timeW 1 k+1 W 2 k+1 The calculation is as follows:
Figure 775767DEST_PATH_IMAGE008
Figure 583186DEST_PATH_IMAGE009
wherein, the first and the second end of the pipe are connected with each other,
Figure 82301DEST_PATH_IMAGE010
and
Figure 912854DEST_PATH_IMAGE011
is thatkThe weight factor of the time of day is,
Figure 155616DEST_PATH_IMAGE012
is thatkThe equivalent thermal comfort index at time +1,
Figure 568274DEST_PATH_IMAGE013
is thatkThe equivalent thermal comfort index at a moment,
Figure 441552DEST_PATH_IMAGE014
is thatkThe sensible temperature at the moment +1,
Figure 556139DEST_PATH_IMAGE015
is thatkSensible temperature at that time.
The invention discloses a household dynamic humidifying device integrating thermal comfort and sensible temperature, which comprises:
a processor;
and a memory for storing executable instructions of the processor;
wherein the processor is configured to execute the above-mentioned home dynamic humidification method integrating thermal comfort and sensible temperature via executable instructions.
The invention has the following beneficial effects:
meanwhile, the thermal comfort and the body-sensing temperature of an indoor human body are considered, an equivalent thermal comfort algorithm is innovatively adopted, and a fusion algorithm gives consideration to the thermal comfort requirement and the proper body-sensing temperature;
the intelligent humidifier is different from a traditional humidifier in manual starting and stopping, timing starting and stopping or height limiting starting and stopping, and an innovative control method of dynamic humidification, conventional humidification and rapid over-volume humidification is adopted according to indoor temperature and humidity conditions monitored in real time;
the invention innovatively adopts the infrared sensor to monitor whether other air-conditioning devices exist in the indoor space, and simultaneously brings the indoor air flow rate into the consideration range of humidification comfort.
Drawings
FIG. 1 is a flow chart of the method of the present invention.
Detailed Description
The invention is further described with reference to the accompanying drawings, but the invention is not limited in any way, and any alterations or substitutions based on the teaching of the invention are within the scope of the invention.
The invention provides a novel fusion control algorithm based on equivalent thermal comfort and sensible temperature, which aims at the problems that the traditional humidifier is simple in operation control mode, the dry bulb temperature of a humidified indoor space is not considered, whether the humidified indoor space is operated by other air conditioning devices (such as a refrigeration air conditioner) is not considered, and more importantly, the traditional air conditioner almost never considers the actual thermal feeling (such as the thermal comfort of a human body and the sensible temperature) of the human body.
The human body thermal comfort is based on a basic equation of human body thermal balance and the grade of psychophysiological subjective thermal sensation, and a comprehensive evaluation index of a plurality of relevant factors of the human body thermal comfort is considered. The human thermal comfort index indicates the average index of the population for seven levels of thermal sensing votes (+ 3 to-3), as shown in table 1 below.
TABLE 1 thermal comfort thermo-sensitive staff gauge for human body
Thermal sensation Cooling by cooling Cool to room Slight cool Is moderate Micro-heating Heating device Heat generation
Index value -3 -2 -1 0 1 2 3
Sensible temperature refers to the degree of temperature sensed by a human body, which is converted into the same temperature, and is influenced by the temperature, wind speed and relative humidity.
The control algorithm and the control device not only mainly consider the real-time thermal comfort and the somatosensory temperature of an indoor human body, but also consider whether other air conditioning devices (such as a household conventional air conditioner) are started to operate in an indoor space or not by means of intelligent home identification, dynamic humidification control (such as humidification time and humidification quantity) is carried out by monitoring air necessary parameters such as air dry bulb temperature, relative humidity, air flow rate and the like of the indoor humidification space in real time, the organic linkage control of temperature and humidity can be realized on the technical level, humidification on the humidification effect level can be realized as required, and the thermal comfort and the somatosensory requirements of the human body are met to the maximum extent.
As shown in fig. 1, the control steps of the present invention are as follows:
the method comprises the following steps: after the intelligent household dynamic humidifier device is started, the first step iskAt any moment, the dry bulb temperature of the indoor air is monitored in real time through the built-in air dry bulb temperature sensor, the built-in relative humidity sensor and the infrared induction sensorT k air Relative Humidity (RH)RH k air And monitoring whether other air conditioning devices are started and in a mode (refrigerating or heating mode) in the room through the infrared induction sensor, and if the other air conditioning devices are not found to be started, setting an equivalent air flow ratev k air,eqt The equivalent is 0m/s; if other air conditioning devices are found to be started, setting the equivalent air flow rate according to the monitored air speed modev k air,eqt (third gear: 0.1m/s is equivalent to low speed, 0.2m/s is equivalent to automatic gear at medium speed, 0.3m/s is equivalent to high speed; fifth gear: 0.1m/s is equivalent to 1 case, 0.15m/s is equivalent to 2 case, 0.2m/s is equivalent to automatic gear at 3 case, 0.25m/s is equivalent to 4 case, 0.3m/s is equivalent to 5 case, the average style of other gears is equivalent, the lower limit of low speed is 0.1m/s, the upper limit of high speed is 0.3m/s, and the rest are analogized in turn);
step two: substituting the real-time measured parameters in the first step into the formula (1) to calculate the second stepkThe instantaneous equivalent thermal comfort index;
Figure 602592DEST_PATH_IMAGE001
(1)
PMV eqt the index is equivalent thermal comfort index, and the range of the index is equivalent to the average index of seven levels of thermal sensing votes (+ 3 to-3) in the table.
Currently ASHRAE Standard 55-2010 defines comfort as the state of consciousness that a human body is satisfied with a thermal environment, applicable to a typical indoor environment, namely: the personnel are in a sitting state (1.1 met), the indoor wind speed is less than or equal to 0.2m/s, and the clothing thermal resistance of the personnel is 1.0 clo (typical clothing in winter) or 0.5 clo (typical clothing in summer). For the case of a garment thermal resistance between 0.5 clo and 1.0 clo, the thermal comfort region can be determined by interpolation. The method can only look up a table, and presumes or assumes some parameters without the operability of landing control, such as considering the dressing coefficient of people, the radiation temperature of a room and the metabolic rate of a human body, but the radiation temperature of the room is difficult to measure, and people of all ages and both sexes have different motion states and different metabolic rates of the human body, and the calculation of thermal comfort has no operability.
The equivalent thermal comfort index provided by the invention integrates various factors, for example, the radiation temperature is equivalent in a static and long-term mixing mode, the behaviors of dressing, washing and the like are calculated according to 1 (the behaviors of covering a quilt according to a sleep mode and the like are equivalent), the metabolic rate value is taken as the sitting and sitting average value, and the thermal comfort can approach the actual human body perception through equivalent control of other factors. In the subsequent control process, a weight coefficient of the equivalent thermal comfort index is also set, and the weight coefficient is dynamically adjusted according to the actual control result, so that the thermal comfort index is closer to the feeling of a user.
Step three: substituting the real-time measured parameters in the step one to calculate the second stepkBody-sensing temperature at that moment;
Figure 322286DEST_PATH_IMAGE016
(2)
Figure 428783DEST_PATH_IMAGE003
is thatkBody sensing temperature at any moment;
Figure 279933DEST_PATH_IMAGE004
is thatkThe indoor air temperature at that moment;
Figure 67760DEST_PATH_IMAGE005
is thatkThe indoor relative humidity at the moment;
Figure 704278DEST_PATH_IMAGE006
is thatkThe indoor equivalent air flow rate at that moment.
Step four: if the condition that other air conditioners in the room are not started is not monitored, the weight coefficient is initially assignedW 1 k =W 2 k =0.5; if the condition that other air conditioners in the room are started and in a cooling mode or a dehumidification mode is monitored, the weight coefficient is initially assignedW 1 k =0.2,W 2 k =0.8; if the other air conditioners in the room are monitored to be started and in the heating mode, the initial value is assignedWeight coefficientW 1 k =0.8,W 2 k =0.2;
Step five: as shown in equation (3), the weighting factor at the k-th time is determinedW 1 k W 2 k Substitute into formula and calculatekOf time of dayPT k int A value;
Figure 716096DEST_PATH_IMAGE007
(3)
wherein the content of the first and second substances,PT int is a fusion value of equivalent thermal comfort and body sensing temperature,T body is the sensible temperature;T air is the indoor air temperature;RH air is the indoor relative humidity;v air,eqt is the indoor equivalent air flow rate; W 1 W 2 a weight coefficient for adjusting the control;kis as followskThe time, preferably, the time interval may be set to at least 30 seconds.
Step six: as shown in formula (4), whenPT k int Is of value [ -1,1]A region andRH k air the values of (A) are [35%,65%]Interval time, the first of the intelligent humidifierk+1Control mode of time of dayH k+1 mode Adjusting to be 0, namely not starting humidification, and enabling the humidification quantity of the humidifier to the room to be 0; when the temperature is higher than the set temperaturePT k int When the value of (b) is less than-1, orRH k air Is less than 35%, the intelligent humidifierk+1Control mode of time of dayH k+1 mode Adjusting to be 1, namely starting humidification, and starting a conventional humidification mode for the room by the humidifier to increase the moisture content and the relative humidity of the air in the room; when in usePT k int Is less than-1, andRH k air when the value of (A) is also less than 35%, the second step of the intelligent humidifierk+1Control mode of time of dayH k+1 mode Then the adjustment is "2", i.e. humidification is initiated and the humidifier is switched on to the room in a rapid over-humidification mode for rapidly and substantially increasing the moisture content and relative humidity of the air in the room.
Figure 742958DEST_PATH_IMAGE017
(4)
H mode The control mode of the intelligent humidifier is.
Step seven: and (3) at the k +1 th moment, the intelligent humidifier collects the air temperature and the relative humidity at the new moment again, calculates the equivalent thermal comfort index and the sensible temperature again, and substitutes the equivalent thermal comfort index and the sensible temperature into the formula (5) and the formula (6) to calculate the weight coefficient at the new momentW 1 k W 2 k
Figure 396793DEST_PATH_IMAGE018
(5)
Figure 372971DEST_PATH_IMAGE019
(6)
Step eight: and repeating the fifth step, the sixth step and the seventh step until the intelligent humidifier is manually turned off or is turned off regularly.
The invention has the following beneficial effects:
meanwhile, the thermal comfort and the body sensing temperature of an indoor human body are considered, an equivalent thermal comfort algorithm is innovatively adopted, and a fusion algorithm gives consideration to the thermal comfort requirement and the appropriate body sensing temperature;
compared with the manual start-stop, the timing start-stop or the height-limited start-stop of the traditional humidifier, the invention adopts an innovative control method of dynamic humidification, conventional humidification and rapid over-humidification according to the indoor temperature and humidity condition monitored in real time;
the invention innovatively adopts the infrared inductor to monitor whether other air conditioning devices exist in the indoor space, and simultaneously brings the indoor air flow rate into the consideration range of humidification comfort.
The word "preferred" is used herein to mean serving as an example, instance, or illustration. Any aspect or design described herein as "preferred" is not necessarily to be construed as advantageous over other aspects or designs. Rather, use of the word "preferred" is intended to present concepts in a concrete fashion. The term "or" as used in this application is intended to mean an inclusive "or" rather than an exclusive "or". That is, unless specified otherwise or clear from context, "X employs A or B" is intended to include either of the permutations as a matter of course. That is, if X employs A; b is used as X; or X employs both A and B, then "X employs A or B" is satisfied in any of the foregoing examples.
Also, although the disclosure has been shown and described with respect to one or an implementation, equivalent alterations and modifications will occur to others skilled in the art based upon a reading and understanding of this specification and the annexed drawings. The present disclosure includes all such modifications and alterations, and is limited only by the scope of the appended claims. In particular regard to the various functions performed by the above described components (e.g., elements, etc.), the terms used to describe such components are intended to correspond, unless otherwise indicated, to any component which performs the specified function of the described component (e.g., that is functionally equivalent), even though not structurally equivalent to the disclosed structure which performs the function in the herein illustrated exemplary implementations of the disclosure. In addition, while a particular feature of the disclosure may have been disclosed with respect to only one of several implementations, such feature may be combined with one or other features of the other implementations as may be desired and advantageous for a given or particular application. Furthermore, to the extent that the terms "includes," has, "" contains, "or variants thereof are used in either the detailed description or the claims, such terms are intended to be inclusive in a manner similar to the term" comprising.
Each functional unit in the embodiments of the present invention may be integrated into one processing module, or each unit may exist alone physically, or a plurality of or more than one unit are integrated into one module. The integrated module can be realized in a hardware mode, and can also be realized in a software functional module mode. The integrated module, if implemented in the form of a software functional module and sold or used as a stand-alone product, may also be stored in a computer readable storage medium. The storage medium mentioned above may be a read-only memory, a magnetic or optical disk, etc. Each apparatus or system described above may execute the storage method in the corresponding method embodiment.
In summary, the above-mentioned embodiment is an implementation manner of the present invention, but the implementation manner of the present invention is not limited by the above-mentioned embodiment, and any other changes, modifications, substitutions, combinations, and simplifications which do not depart from the spirit and principle of the present invention should be regarded as equivalent replacements within the protection scope of the present invention.

Claims (8)

1. The intelligent household dynamic humidification method integrating thermal comfort and somatosensory temperature is characterized by comprising the following steps of:
the method comprises the following steps: after the intelligent household dynamic humidifier device is started, at the kth moment, the dry bulb temperature T of indoor air is monitored in real time through the built-in air dry bulb temperature sensor, the built-in relative humidity sensor and the infrared sensing sensor k air Relative humidity RH k air And monitoring whether other air conditioning devices are started or not and setting the equivalent air flow velocity v through the infrared induction sensor k air,eqt
Step two: calculating the equivalent thermal comfort index at the kth moment according to the parameters measured in real time in the step one;
step three: calculating the somatosensory temperature of the kth moment according to the parameters measured in real time in the step one;
step four: setting an initial assignment weight coefficient W according to the starting conditions of other air conditioners in a room 1 k And W 2 k
Step five: according to the weight coefficient W of the k-th time 1 k 、W 2 k Calculating a fusion value PT of the equivalent thermal comfort and the body sensing temperature at the kth moment k int A value;
step six: when PT is k int Is of the value [ -1,1]Interval and RH k air The values of (A) are [35%,65%]Control mode H of intelligent humidifier at k +1 time during interval k+1 mode Adjusting to be 0, namely not starting humidification; when PT is k int A value of less than-1, or RH k air Is less than 35%, the control mode H of the intelligent humidifier at the k +1 th moment k+1 mode The humidifier is adjusted to be 1, and a conventional humidification mode is started for a room by the humidifier; when PT k int Is less than-1 and RH k air Is also less than 35%, the control mode H of the intelligent humidifier at the k +1 th moment k+1 mode The humidification mode is adjusted to be 2, and the humidifier is opened to the room to quickly exceed the humidification mode;
step seven: and (4) at the k +1 th moment, the intelligent humidifier acquires the air temperature and the relative humidity at the new moment again, recalculates the equivalent thermal comfort index and the sensible temperature, and calculates to obtain the weight coefficient W of the new moment 1 k 、W 2 k
Step eight: and repeating the fifth step, the sixth step and the seventh step until the intelligent humidifier is manually turned off or is turned off regularly.
2. The smart home dynamic humidification method integrating thermal comfort and sensible temperature according to claim 1, wherein if no other air conditioning device is found to be turned on, an equivalent air flow rate v is set k air,eqt The equivalent is 0m/s; if other air conditioning devices are found to be started, setting the equivalent air flow velocity v according to the monitored air speed mode of the air conditioner k air,eqt
If the wind speed mode of the air conditioner is three-gear, the equivalent air flow velocity v at low speed k air,eqt 0.1m/s, and the equivalent air flow velocity v at the middle speed and the automatic gear k air,eqt Is 0.2m/s, and is,equivalent air velocity v at high speed k air,eqt The equivalent is 0.3m/s;
if the wind speed mode of the air conditioner is five gears, the equivalent air flow velocity v is 1 lattice k air,eqt 0.1m/s, equivalent air velocity v at 2 grids k air,eqt 0.15m/s,3 grids and the equivalent air velocity v of the automatic gear k air,eqt Equivalent air velocity v of 0.2m/s at 4 lattices k air,eqt Equivalent is 0.25m/s, and equivalent air flow velocity v at 5 lattices k air,eqt The equivalent is 0.3m/s.
3. The intelligent home dynamic humidification method integrating thermal comfort and somatosensory temperature according to claim 1, wherein the equivalent thermal comfort index at the kth moment is calculated as follows:
Figure FDA0003860098810000021
PMV eqt is an equivalent thermal comfort index, the range of which is equivalent to the average index of seven levels of thermal sensing votes.
4. The smart home dynamic humidification method integrating thermal comfort and sensible temperature according to claim 1, wherein the sensible temperature at the kth time is calculated as follows:
Figure FDA0003860098810000022
Figure FDA0003860098810000023
is the sensible temperature at time k;
Figure FDA0003860098810000024
is the indoor air temperature at time k;
Figure FDA0003860098810000025
is the indoor relative humidity at time k;
Figure FDA0003860098810000026
is the indoor equivalent air flow rate at time k.
5. The smart home dynamic humidification method integrating thermal comfort and sensible temperature according to claim 1, wherein if it is not monitored that other air conditioning devices in a room are not started, an initial assignment weight coefficient W is assigned 1 k =W 2 k =0.5; if the situation that other air conditioners in the room are started and are in a refrigeration mode or a dehumidification mode is monitored, the weight coefficient W is initially assigned 1 k =0.2,W 2 k =0.8; if the situation that other air conditioners in the room are started and the heating mode is detected, the weight coefficient W is initially assigned 1 k =0.8,W 2 k =0.2。
6. The smart home dynamic humidification method integrating thermal comfort and sensible temperature according to claim 4, wherein a weight coefficient W at a k-th moment 1 k 、W 2 k Substituting the formula into the formula to calculate the fusion value PT of the equivalent thermal comfort and the body sensing temperature at the kth moment k int
Figure FDA0003860098810000031
7. The smart home dynamic humidification method integrating thermal comfort and sensible temperature according to claim 1, wherein a weight coefficient W at a new moment 1 k+1 、W 2 k+1 The calculation is as follows:
Figure FDA0003860098810000032
Figure FDA0003860098810000033
wherein the content of the first and second substances,
Figure FDA0003860098810000034
and
Figure FDA0003860098810000035
is the weight coefficient at the time of k,
Figure FDA0003860098810000036
is an equivalent thermal comfort index at the moment k +1,
Figure FDA0003860098810000037
is an equivalent thermal comfort index at the moment k,
Figure FDA0003860098810000038
is the sensible temperature at the time of k +1,
Figure FDA0003860098810000039
is the sensible temperature at time k.
8. The utility model provides a fuse intelligent house developments humidification device of thermal comfort and body temperature, its characterized in that includes:
a processor;
and a memory for storing executable instructions of the processor;
the processor is configured to execute the smart home dynamic humidification method fusing thermal comfort and sensible temperature according to any one of claims 1 to 7 through executable instructions.
CN202210966262.8A 2022-08-12 2022-08-12 Household dynamic humidification method and device integrating thermal comfort and body-sensing temperature Active CN115046296B (en)

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CN202210966262.8A CN115046296B (en) 2022-08-12 2022-08-12 Household dynamic humidification method and device integrating thermal comfort and body-sensing temperature
PCT/CN2022/126551 WO2024031836A1 (en) 2022-08-12 2022-10-21 Dynamic home humidification method and apparatus combining thermal comfort and sensible temperature

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Family Cites Families (14)

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JPH02275236A (en) * 1989-04-14 1990-11-09 Mitsubishi Electric Corp Air conditioning control device
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CN102721151B (en) * 2012-05-29 2014-12-31 美的集团股份有限公司 Humidification control device and control method thereof
CN104456841B (en) * 2014-11-13 2017-01-25 重庆大学 Thermal and humid environment integrated control air-conditioning system and method based on thermal comfort evaluation
CN106765861A (en) * 2015-11-25 2017-05-31 广东美的制冷设备有限公司 Air conditioning control method and device
CN105241035B (en) * 2015-11-26 2018-11-20 湘潭大学 Based on the comfortable air conditioner control system of Dynamic Thermal and its control method
CN105526678A (en) * 2015-12-30 2016-04-27 中建三局智能技术有限公司 Moisture content control method for constant temperature and humidity combined air conditioner
CN106196470A (en) * 2016-07-25 2016-12-07 广东美的制冷设备有限公司 Air-conditioner and temperature/humidity control method thereof
CN106225153A (en) * 2016-07-25 2016-12-14 广东美的制冷设备有限公司 The temperature/humidity control method of air-conditioner and device
KR20200054679A (en) * 2018-11-12 2020-05-20 주식회사 굿템코리아 Ultrasonic humidifier
CN111207505A (en) * 2020-02-26 2020-05-29 佛山科学技术学院 Temperature-sensing-based environment adjusting device
CN113494758B (en) * 2020-03-18 2022-09-02 海信集团有限公司 Terminal equipment and method for calculating PMV value
CN113237201A (en) * 2021-06-09 2021-08-10 海信(山东)空调有限公司 Control method and device of air conditioner, air conditioner and computer readable storage medium
CN115046296B (en) * 2022-08-12 2022-11-04 湖南桅灯智能科技有限公司 Household dynamic humidification method and device integrating thermal comfort and body-sensing temperature

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