Temperature adjusting method and device, air conditioner and storage medium
By obtaining the temperature regulation factor, calculating the real-time perceived temperature, and adjusting the air conditioner temperature, the problem of existing air conditioners being unable to meet users' perceived temperature needs has been solved, achieving precise temperature regulation and improved comfort of the air conditioner.
Patent Information
- Application Number
- CN202511740739.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-25
- Publication Date
- 2026-01-20
Smart Images

Figure CN121363788A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of air conditioners, and in particular to a temperature adjustment method and device, an air conditioner, and a storage medium. BACKGROUND
[0002] Currently, the temperature adjustment logic of most air conditioners mainly depends on the indoor temperature, that is, a user sets a desired temperature, and the air conditioner maintains the indoor temperature near the desired temperature through heating or cooling. However, this temperature adjustment method adjusts the indoor temperature and ignores the apparent temperature, and the cold and warm feeling of a person in different environments is not only determined by the indoor temperature, so that even if the air conditioner maintains the temperature near the desired temperature, the user's demand cannot be met, and the user may still feel too cold or too hot. SUMMARY
[0003] Embodiments of the present application provide a temperature adjustment method, device, air conditioner, and storage medium, aiming to solve the problem that the current temperature adjustment method of an air conditioner cannot meet the user's demand.
[0004] In a first aspect, embodiments of the present application provide a temperature adjustment method applied to an air conditioner, and the method comprises: obtaining a temperature adjustment factor for adjusting the temperature of the air conditioner under the control of a start instruction for starting the air conditioner; calculating a real-time apparent temperature according to the temperature adjustment factor; adjusting the temperature of the air conditioner based on the real-time apparent temperature and a preset apparent temperature.
[0005] In a second aspect, embodiments of the present application further provide a temperature adjustment device applied to an air conditioner, and the device comprises: a first obtaining unit configured to obtain a temperature adjustment factor for adjusting the temperature of the air conditioner under the control of a start instruction for starting the air conditioner; a first calculating unit configured to calculate a real-time apparent temperature according to the temperature adjustment factor; a first adjusting unit configured to adjust the temperature of the air conditioner based on the real-time apparent temperature and a preset apparent temperature.
[0006] In a third aspect, embodiments of the present application further provide an air conditioner comprising a memory and a processor connected to the memory, wherein the memory stores a computer program, and the processor implements the above method when executing the computer program.
[0007] In a fourth aspect, embodiments of the present application further provide a computer readable storage medium, wherein the storage medium stores a computer program, and the computer program can implement the above method when executed by a processor.
[0008] The embodiment of the present application provides a temperature adjusting method, device, air conditioner and storage medium. The method comprises the following steps: obtaining a temperature adjusting factor for adjusting the temperature of the air conditioner under the control of a starting instruction for starting the air conditioner; calculating a real-time apparent temperature according to the temperature adjusting factor; and adjusting the temperature of the air conditioner based on the real-time apparent temperature and a preset apparent temperature. The embodiment of the present application can obtain the temperature adjusting factor when the air conditioner starts, then calculate the real-time apparent temperature of the user based on the temperature adjusting factor, and adjust the temperature of the air conditioner based on the preset apparent temperature and the real-time apparent temperature, so as to ensure that the air conditioner can maintain the indoor temperature near the preset apparent temperature, guarantee the comfort of the user, and meet the temperature demand of the user. BRIEF DESCRIPTION OF DRAWINGS
[0009] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced. Obviously, the drawings in the following description are some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.
[0010] Figure 1 is a flowchart of the temperature adjusting method provided by the embodiment of the present application; Figure 2 is a first sub-flowchart of the temperature adjusting method provided by the embodiment of the present application; Figure 3 is a second sub-flowchart of the temperature adjusting method provided by the embodiment of the present application; Figure 4 is a third sub-flowchart of the temperature adjusting method provided by the embodiment of the present application; Figure 5 is a fourth sub-flowchart of the temperature adjusting method provided by the embodiment of the present application; Figure 6 is a fifth sub-flowchart of the temperature adjusting method provided by the embodiment of the present application; Figure 7 is a schematic block diagram of the temperature adjusting device provided by an embodiment of the present application; Figure 8 is a schematic block diagram of the air conditioner provided by the embodiment of the present application. DETAILED DESCRIPTION
[0011] The technical solutions in the embodiments of the present application will be described clearly and completely in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are some embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the protection scope of the present application.
[0012] It should be understood that the terms "comprises" and "comprising," when used in this specification and the following claims, indicate the presence of the described features, integers, operations, elements, and / or components, but do not preclude the presence or addition of one or more other features, integers, operations, elements, components, and / or groups thereof.
[0013] It should also be understood that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the present application. As used in this specification and the appended claims, the singular forms "a," "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms "and / or," as used herein, refers to and encompasses any and all possible combinations of one or more of the associated listed items.
[0014] Reference is made to Figure 1 , Figure 1 is a flowchart of a temperature adjustment method provided by an embodiment of the present application. The temperature adjustment method of the embodiment of the present application can be applied to an air conditioner, and is used to adjust the temperature of the air conditioner according to a real-time apparent temperature and a preset apparent temperature to meet the needs of a user. As shown in Figure 1 , the method comprises steps S100-S120.
[0015] S100, controlled by a start instruction for starting the air conditioner, acquiring a temperature adjustment factor for adjusting the temperature of the air conditioner.
[0016] In the embodiment of the present application, when the air conditioner receives a start instruction (including a start instruction, a mode switching instruction or a temperature adjustment instruction) triggered by the user, the air conditioner can immediately start a temperature adjustment factor acquisition process to acquire the temperature adjustment factor.
[0017] The temperature adjustment factor can include multi-dimensional parameters related to the operation of the air conditioner and the environment, which are collected in real time by a preset sensor group. The temperature adjustment factor includes but is not limited to indoor air temperature T (℃), indoor humidity H (%), outdoor air temperature OT (℃), outdoor humidity OH (%), and air supply speed V (m / sec, which is the air speed parameter corresponding to the fan speed of the air conditioner).
[0018] The sensor group can include an indoor temperature sensor, an outdoor temperature sensor, an indoor humidity sensor and an outdoor humidity sensor. Each sensor transmits the collected temperature adjustment factor to the intelligent decision system of the air conditioner in real time. The acquisition period can be 10-30 seconds / time, to ensure the real-time nature of the data.
[0019] S110, calculating a real-time apparent temperature according to the temperature adjustment factor.
[0020] In the embodiment of the present application, the real-time body temperature is the temperature felt by the user, which is different from the indoor temperature. For example, when the indoor temperature is 25℃, the real-time body temperature of the user can be 23℃ or 27℃, that is, the real-time body temperature and the indoor temperature have a certain difference. Of course, in an ideal environment, the real-time body temperature and the indoor temperature can also be the same.
[0021] After obtaining the temperature adjustment factor, the real-time body temperature can be calculated based on the temperature adjustment factor, and then the air conditioner is controlled based on the real-time body temperature, so as to ensure that the real-time body temperature meets the needs of the user, thereby improving the comfort of the user.
[0022] In some embodiments, for example, in the embodiment of the present application, as shown in Figure 2 The step S110 includes steps S111-S112.
[0023] S111, substituting the temperature adjustment factor into a preset formula to calculate the basic body temperature; S112, obtaining a first correction term and a second correction term, and correcting the basic body temperature based on the first correction term and the second correction term to obtain the real-time body temperature.
[0024] In the embodiment of the present application, the temperature adjustment factor is the core input parameter for calculating the basic body temperature, which is collected in real time by the sensor group carried by the air conditioner, to ensure the authenticity and real-time of the data. Specifically, it includes: Indoor air temperature T (℃): collected by an indoor temperature sensor, reflecting the actual temperature of indoor air; Indoor humidity H (%): collected by an indoor humidity sensor, representing the water vapor content of indoor air; Outdoor humidity OH (%): collected by an outdoor humidity sensor, used to correct the environmental bias of indoor humidity data; Wind speed V (m / sec): the wind speed parameter corresponding to the fan speed of the air conditioner is used as the collected data, reflecting the flow speed of indoor air.
[0025] The calculation of the basic body temperature (at, unit: ℃) needs to derive two intermediate parameters through the temperature adjustment factor, and then substitute them into the differentiated preset formula. The specific process is as follows: (1) Calculate the corrected relative humidity RH (%) In order to eliminate the interference of the difference between indoor and outdoor humidity on the body temperature, the original indoor humidity H is optimized by a cross correction formula, which is: RH=H+(OH-H) / log2(|OH-H|+2) Wherein, log2 is the logarithm operation with 2 as the base, OH is the outdoor humidity, H is the indoor humidity, and |OH-H| is the absolute value of the indoor and outdoor humidity difference. The formula can balance the body sensation deviation caused by the indoor and outdoor humidity gradient, so that the humidity parameter is more in line with the actual feeling of the human body.
[0026] (2) Calculate the water vapor pressure e (hPa) The water vapor pressure is a key parameter for representing the physical characteristics of air humidity. Based on the corrected relative humidity RH and the indoor air temperature T, the formula is derived as follows: e= Wherein, is the natural exponential operation, T is the indoor air temperature, 6.105 is the saturated water vapor pressure constant at 0°C, and 17.27 and 237.7 are the fitting coefficients of the water vapor pressure and temperature relationship. The formula can accurately quantify the influence intensity of humidity on the body sensation.
[0027] (3) Preset formula of basic thermal sensation temperature The preset formula of the basic thermal sensation temperature at takes the three factors of temperature, humidity, and wind as the core, and adjusts the coefficients to adapt to different seasons and use scenarios. The core formula framework is as follows: at=a*T+b*e-c*V-2.7 Wherein, a is the indoor air temperature weight coefficient (the standard value can be 1.07), b is the indoor temperature coefficient weight (the standard value can be 0.2), and c is the wind speed weight coefficient (the standard value can be 0.65). T is the indoor air temperature, and V is the wind speed. The formula is as follows: at=1.07*T+0.2*e-0.65*V-2.7 The indoor air temperature weight coefficient, indoor temperature coefficient weight, and wind speed weight coefficient can be adjusted according to the season and scene to dynamically adapt to seasonal changes and scene changes.
[0028] The first correction term can be the convection effect correction value (Tcr, unit: ℃), and the second correction term can be the radiant heat correction value (Tcc, unit: ℃). Together, they make up for the influence of indoor and outdoor air convection and high-temperature radiation that is not considered in the basic thermal sensation temperature, making the real-time thermal sensation temperature more in line with the actual feeling of the human body.
[0029] The basic thermal sensation temperature and the two correction terms are superimposed to obtain the real-time thermal sensation temperature (AT, unit: ℃) that can fully reflect the actual cold and warm feeling of the human body. The formula is as follows: AT=at+Tcr+Tcc Taking the high-temperature and high-humidity scene in summer as an example, the indoor air temperature T=30°C, the indoor humidity H=85%, the outdoor air temperature OT=32°C, the outdoor humidity OH=80%, and the wind speed V=0.3 m / sec.
[0030] Calculate the base body temperature at Step 1: Calculate the corrected relative humidity RH = 83.6% Step 2: Calculate the water vapor pressure e = 29.8 hPa Step 3: Calculate the base body temperature at = 38.1℃ Calculate the correction term and get the real-time body temperature AT Step 1: Set the first correction term Tcr = 0.149℃ Step 2: Set the second correction term Tcc = 0.21℃ Step 3: Calculate the real-time body temperature AT = 38.1 + 0.149 + 0.21 = 38.459℃.
[0031] In some embodiments, for example in embodiments of the present application, as shown in Figure 3 The step S112 includes steps S1121-S1122.
[0032] S1121, acquire indoor temperature and outdoor temperature; S1122, calculate the first correction term and the second correction term according to the indoor temperature and the outdoor temperature respectively.
[0033] In embodiments of the present application, the calculation formula of the first correction term (Tcr) is: Tcr = arctan((OT-T) / 8.0-0.1)*(0.8) where OT is the outdoor temperature (℃, collected by outdoor temperature sensor), arctan is the inverse tangent function (to ensure that the correction value fluctuates within a reasonable range), 8.0 is the temperature difference influence coefficient, and 0.8 is the correction weight coefficient; Value logic: when OT>T, Tcr is positive (intensified convection hot); When OT<T, Tcr is negative (intensified convection cold); When OT≈T, Tcr tends to 0 (the influence of convection can be ignored).
[0034] The calculation formula of the second correction term (Tcc) is: Tcc = arctan((OT-28) / 2.0-0.1)*(1.2)*0.1 Where 28℃ is the critical temperature at which radiant heat significantly affects, 2.0 is the radiation intensity coefficient, 1.2 is the radiation gain coefficient, and 0.1 is the correction scaling coefficient; Value logic: when OT>28℃, Tcc is positive (radiant heat increases the body temperature); When OT≤28℃, the influence of radiant heat can be ignored, and Tcc is 0.
[0035] S120, adjust the temperature of the air conditioner based on the real-time body temperature and the preset body temperature.
[0036] In the embodiment of the present application, after the air conditioner is started, the optimal body temperature set by the user in advance is read preferentially (the user can set it by himself through the remote controller or APP, and the range is 18-28℃); if the user does not manually set it, the system defaults to load the standard preset value adapted to the season (25℃ in summer, 23℃ in winter, and 24℃ in spring and autumn). In addition, the system can also automatically set the preset body temperature according to the optimal body temperature manually adjusted by the user. For example, the system can automatically record the optimal body temperature manually set by the user within a period of time, and after recording a certain number of times, the mean value of the recorded optimal body temperature is calculated and taken as the preset body temperature.
[0037] The intelligent decision system compares the real-time body temperature AT with the preset body temperature AT0, generates a control instruction in combination with the user state (whether there is a person and whether the sleep mode is turned on are detected by the human body induction sensor), and sends the control instruction to the air conditioner control unit for execution. When AT-AT0>1.5℃ (the real-time body temperature is significantly higher than the preset value): the control unit increases the refrigeration power (increases the frequency of the compressor), adjusts the wind speed according to the cooling demand (adjusts to the medium-high gear when quickly cooling, and maintains the medium gear when considering comfort), and if the indoor humidity is higher than 60%, the dehumidification mode is started simultaneously; if it is detected that there is no one, the energy-saving refrigeration mode is switched to (the power is reduced by 20%).
[0038] When AT0-AT>1.5℃ (the real-time body temperature is significantly lower than the preset value): the control unit increases the heating power, reduces the wind speed (to avoid overcooling of the wind), and blows the air upward from the air outlet. The basic humidity in the room is maintained in winter (the dehumidification mode is not started).
[0039] When |AT-AT0|≤1.5℃ (the real-time body temperature is close to the preset value): the control unit maintains the current refrigeration / heating power, and only slightly adjusts the wind speed or humidity (such as wind speed fine adjustment ±1 gear), to realize energy-saving operation.
[0040] After completing the control once, the system returns to the temperature adjustment factor collection step, continuously performs real-time monitoring and dynamic adjustment, and ensures that the indoor body temperature is stable within the preset range.
[0041] In some embodiments, for example, in the embodiment of the present application, as shown in Figure 4 The step S120 includes steps S121-S124.
[0042] S121, acquiring the body temperature and the preset body temperature; S122, if the body temperature is greater than the preset body temperature, controlling the air conditioner to cool; S123, if the body temperature is less than the preset body temperature, controlling the air conditioner to heat; S124, if the body temperature is the same as the preset body temperature, maintaining the temperature of the air conditioner unchanged.
[0043] In the embodiments of the present application, the real-time body temperature refers to the real-time body temperature (AT, unit: ℃) calculated through the foregoing steps S111-S112, which is the final quantitative value of actual human cold and warm perception after comprehensively considering indoor and outdoor temperature and humidity, wind speed, convection effect, radiation heat and other factors, and is stored and called by the air conditioner intelligent decision system in real time. The preset body temperature (AT0, unit: ℃) refers to the user's desired comfortable body temperature reference value, which is the target threshold of air conditioner regulation, and is divided into two types of user self-defined setting and system intelligent adaptive setting.
[0044] The real-time body temperature greater than the preset body temperature refers to AT-AT0>0 ℃, which can be further regulated in gradient according to the temperature difference to ensure the balance between cooling accuracy and comfort, and the specific gradient is divided as follows: Mild overheating: 1 ℃<AT-AT0≤1.5 ℃ (slightly hot, need mild cooling); Moderate overheating: 1.5 ℃<AT-AT0≤5 ℃ (obviously hot, need regular cooling); Severe overheating: AT-AT0>5 ℃ (serious heat, need rapid cooling).
[0045] The body temperature less than the preset body temperature refers to AT0-AT>0 ℃, which is also regulated in gradient according to the temperature difference to avoid dryness or local overheating caused by rapid heating, and the gradient is divided as follows: Mild hypothermia: 1 ℃<AT0-AT≤1.5 ℃ (slightly cold, need mild heating); Moderate hypothermia: 1.5 ℃<AT0-AT≤5 ℃ (obviously cold, need regular heating); Severe hypothermia: AT0-AT>5 ℃ (serious cold, need rapid heating).
[0046] The body temperature and the preset body temperature are the same, which refers to |AT-AT0|≤1 ℃, i.e. the real-time body temperature is in the reasonable fluctuation range of the preset value, and there is no need for large adjustment, and the core goal is to maintain comfortable and energy-saving operation.
[0047] In some embodiments, for example, in the embodiments of the present application, as shown in Figure 5 the method further comprises steps S130-S132.
[0048] S130, confirming the current season; S131, if the current season is summer, increasing the humidity weight coefficient in the preset formula; S132, if the current season is winter, reducing the humidity weight coefficient in the preset formula.
[0049] In the embodiments of the present application, the current season refers to the natural season (summer, winter, spring and autumn) when the air conditioner is running, which is the core basis for adjusting the humidity weight coefficient. The accurate determination can be achieved through automatic recognition or user-assisted setting to ensure that the coefficient adjustment matches the actual environmental characteristics.
[0050] The current season can be confirmed by using an automatic recognition-based and user setting-assisted double verification mechanism, specifically as follows: Automatic recognition mode: Date matching: The intelligent decision system is built-in with the Gregorian calendar season division rule. The current date is obtained through the built-in clock module of the air conditioner, and the corresponding season is automatically matched. Temperature verification: The secondary verification is performed in combination with the average outdoor temperature (OT_avg) collected by the outdoor temperature sensor for 3 consecutive days to avoid date misjudgment during season transition: the summer judgment supplementary condition is OT_avg≥25℃, the winter judgment supplementary condition is OT_avg≤10℃, and the spring and autumn supplementary condition is 10℃<OT_avg<25℃. User setting mode: If the user thinks that the automatic recognition result does not match the actual climate (such as southern autumn tiger and northern warm winter), the current season can be manually selected through the remote controller or associated APP. The system adopts the user setting result preferentially until the user re-modifies or the season naturally changes.
[0051] The first season confirmation is performed immediately after the air conditioner starts, the humidity weight coefficient is initialized, and the verification is performed again every 24 hours (in combination with the date and the average outdoor temperature of the day) to ensure that the season determination is synchronized with the climate change and to avoid coefficient mismatch after long-term operation.
[0052] If the current season is summer, the humidity weight coefficient increasing operation is triggered immediately, and the adjusted summer exclusive formula is: at=1.07*T+0.3*e-0.65*V-2.7 If the current season is winter, the humidity weight coefficient increasing operation is triggered immediately, and the adjusted winter exclusive formula is: at=1.07*T+0.15*e-0.65*V-2.7 In some embodiments, for example, in the embodiments of the present application, as shown in Figure 6 The method further includes steps S140-S142.
[0053] S140, confirming the current scene; S141, if the current scene is a children's room, reducing the wind speed weight coefficient and increasing the indoor temperature coefficient weight; S142, if the current scene is a gym, increasing the humidity weight coefficient and the indoor temperature coefficient weight.
[0054] In the embodiments of the present application, the current scene refers to the specific use scene in which the air conditioner is running, which is the core basis for coefficient weight adjustment. It can be accurately determined through the dual mechanism of user active setting and system intelligent verification to ensure complete matching with the actual use scene.
[0055] Scene confirmation implementation (1) User active setting (highest priority) The user can directly select the current scene (such as a child room mode or a gym mode) through the air conditioner remote control, associated APP or voice instruction. The system responds immediately and saves the scene setting until the user manually switches or turns off the air conditioner.
[0056] (2) System intelligent verification (auxiliary supplement) If the user does not manually set the scene, the system can intelligently judge in combination with multi-sensor data and behavior characteristics to reduce user operation cost: child room scene intelligent verification: detect human height (≤1.4m) and activity frequency (low intensity and intermittent activity) through a human body sensor, combine with indoor environment parameters (such as toy infrared identification and low wind speed preference record), and continuously meet the conditions for 3 minutes to determine the child room scene; gym scene intelligent verification: detect continuous high humidity (RH≥60%) through an indoor humidity sensor and high-intensity continuous activity (such as rapid movement and body surface temperature rise) through a human body sensor, combine with wind speed and temperature change trend, and continuously meet the conditions for 5 minutes to prompt the user whether to switch to the gym mode, which takes effect after the user confirms.
[0057] If the current scene is a child room, the wind speed weight coefficient can be reduced and the indoor temperature coefficient weight can be increased. The indoor temperature coefficient weight (a) determines the influence intensity of indoor temperature on the body temperature; the wind speed weight coefficient (c) determines the offset intensity of wind speed on the body temperature (the greater the coefficient, the more significant the coolness brought by the wind speed). The indoor temperature coefficient weight is increased from the standard value a=1.07 in spring and autumn to a=1.1 to strengthen the influence of temperature on the body temperature; the wind speed weight coefficient is reduced from the standard value c=0.65 to c=0.5 to weaken the coolness influence of wind speed on the body temperature; the humidity weight coefficient: maintain the standard value b=0.2 in spring and autumn; the adjusted child room exclusive formula is: at=1.1*T+0.2*e-0.5*V-2.7 The reason for increasing the indoor temperature coefficient (a = 1.1) is that children have physiological characteristics of low heat dissipation efficiency and weak body temperature regulation ability: the ratio of child body surface area to body weight is higher than that of adults, the metabolic rate is high but the sweat gland development is incomplete, and at the same indoor temperature, the child's thermal sensation temperature will be higher than that of adults (for example, adults feel comfortable at 25°C, but children may feel hot). After increasing the value of a, the calculation of thermal sensation temperature is more sensitive to changes in indoor temperature, which can trigger air conditioning control in advance to avoid the stuffy feeling of children due to poor heat dissipation. The reason for reducing the wind speed weight coefficient (c = 0.5) is that children have low wind speed tolerance and are more sensitive to wind: the moderate wind speed (such as 0.6 m / sec) that adults can accept may cause rapid heat loss on the child's body surface, causing a cold or uncomfortable feeling. After reducing the value of c, the "cooling effect" of wind speed on thermal sensation temperature is weakened, and even if the air conditioner maintains a certain wind speed, the result of thermal sensation temperature calculation will not be too low, avoiding the feeling of overcooling caused by wind speed, while ensuring indoor air circulation.
[0058] If the current scene is a gym, increase the humidity weight coefficient and the indoor temperature coefficient weight, the indoor air temperature weight coefficient is increased from the spring and autumn standard value a = 1.07 to a = 1.1, consistent with the child's room, and the temperature sensitivity is strengthened; the humidity weight coefficient is increased from the spring and autumn standard value b = 0.2 to b = 0.3; the adjusted gym exclusive formula is: at = 1.1 * T + 0.3 * e - 0.65 * V - 2.7 The reason for increasing the indoor temperature coefficient (a = 1.1) is that in the gym scene, the user's body temperature rises significantly: when exercising, the body's metabolism speeds up, heat production increases, and the body surface temperature may be 3-5°C higher than in a resting state. At this time, the sensitivity to indoor environmental temperature is higher - even if the indoor air temperature is not over-standard, the user may feel stuffy due to the inability to quickly dissipate the heat on the body surface. After increasing the value of a, the calculation of thermal sensation temperature is more in line with the body temperature after exercise, ensuring that the air conditioner cools in time to avoid heat accumulation.
[0059] The reason for increasing the humidity weight coefficient (b = 0.3) is that the humidity in the gym is high and the evaporation efficiency of sweat is low: when exercising, the body sweats a lot, and the indoor humidity will quickly rise (especially in a closed gym). High humidity will hinder the evaporation of sweat, causing the body to feel a strong sticky and stuffy feeling. After increasing the value of b, the influence of humidity on thermal sensation temperature is strengthened, and even if the indoor temperature is not high, high humidity will cause the result of thermal sensation temperature calculation to rise, triggering the air conditioner to dehumidify and cool down, relieving the sticky feeling and improving the heat dissipation efficiency.
[0060] The temperature adjusting method can obtain a temperature adjusting factor when the air conditioner is started, calculate a real-time apparent temperature of a user based on the temperature adjusting factor, and adjust the temperature of the air conditioner based on a preset apparent temperature and the real-time apparent temperature, so as to ensure that the air conditioner can maintain the indoor temperature near the preset apparent temperature and ensure the comfort of the user and meet the temperature demand of the user.
[0061] Figure 7 is a schematic block diagram of a temperature adjusting device 200 provided by an embodiment of the present application. As shown, corresponding to the above temperature adjusting method, the present application further provides a temperature adjusting device 200. The temperature adjusting device 200 comprises units for executing the above temperature adjusting method. Specifically, referring to Figure 7 , the temperature adjusting device 200 comprises a first obtaining unit 201, a first calculating unit 202, and a first adjusting unit 203. Figure 7
[0062] The first obtaining unit 201 is configured to obtain a temperature adjusting factor for adjusting the temperature of the air conditioner under the control of a starting instruction for starting the air conditioner. The first calculating unit 202 is configured to calculate a real-time apparent temperature according to the temperature adjusting factor. The first adjusting unit 203 is configured to adjust the temperature of the air conditioner based on the real-time apparent temperature and a preset apparent temperature.
[0063] In some embodiments, for example in the present embodiment, the first calculating unit 202 further comprises a second calculating unit and a second obtaining unit.
[0064] The second calculating unit is configured to substitute the temperature adjusting factor into a preset formula to calculate a basic apparent temperature. The second obtaining unit is configured to obtain a first correction term and a second correction term, and correct the basic apparent temperature based on the first correction term and the second correction term to obtain the real-time apparent temperature.
[0065] In some embodiments, for example in the present embodiment, the second obtaining unit further comprises a third obtaining unit and a third calculating unit.
[0066] The third obtaining unit is configured to obtain an indoor temperature and an outdoor temperature. The third calculating unit is configured to calculate the first correction term and the second correction term according to the indoor temperature and the outdoor temperature, respectively.
[0067] In some embodiments, for example in the present embodiment, the first adjusting unit 203 further comprises a fourth obtaining unit, a second adjusting unit, a third adjusting unit, and a fourth adjusting unit.
[0068] The fourth acquisition unit is configured to acquire the body temperature and the preset body temperature. The second adjustment unit is configured to control the air conditioner to reduce the temperature if the body temperature is greater than the preset body temperature. The third adjustment unit is configured to control the air conditioner to increase the temperature if the body temperature is less than the preset body temperature. The fourth adjustment unit is configured to maintain the temperature of the air conditioner unchanged if the body temperature is the same as the preset body temperature.
[0069] In some embodiments, for example, in the present embodiment, the temperature regulating device 200 further comprises a first confirmation unit, a fifth adjustment unit and a sixth adjustment unit.
[0070] The first confirmation unit is configured to confirm the current season. The fifth adjustment unit is configured to increase the humidity weight coefficient in the preset formula if the current season is summer. The sixth adjustment unit is configured to reduce the humidity weight coefficient in the preset formula if the current season is winter.
[0071] In some embodiments, for example, in the present embodiment, the temperature regulating device 200 further comprises a second confirmation unit, a seventh adjustment unit and an eighth adjustment unit.
[0072] The second confirmation unit is configured to confirm the current scene. The seventh adjustment unit is configured to reduce the wind speed weight coefficient and increase the indoor temperature coefficient weight if the current scene is a children's room. The eighth adjustment unit is configured to increase the humidity weight coefficient and the indoor temperature coefficient weight if the current scene is a gym.
[0073] It should be noted that the specific implementation process of the above-mentioned temperature regulating device and each unit can be clearly understood by those skilled in the art, which can be referred to the corresponding description in the foregoing method embodiments. For the convenience and brevity of description, it will not be repeated here.
[0074] The above-mentioned temperature regulating device can be realized in the form of a computer program, which can run on the air conditioner as shown in Figure 8 .
[0075] Please refer to Figure 8 , Figure 8 is a schematic block diagram of an air conditioner provided by an embodiment of the present application. It can be a terminal or a server. The terminal can be a smart phone, a tablet computer, a notebook computer, a desktop computer, a personal digital assistant, a wearable device and other electronic devices with communication functions. The server can be a stand-alone server or a server cluster composed of multiple servers.
[0076] Referring to Figure 8 The air conditioner 300 comprises a processor 302, a memory and an interface 307 connected through a system bus 301, wherein the memory can comprise a non-volatile storage medium 303 and an internal memory 304.
[0077] The non-volatile storage medium 303 can store an operating system 3031 and a computer program 3032. The computer program 3032, when executed, can cause the processor 302 to perform a temperature adjustment method.
[0078] The processor 302 is configured to provide computing and control capabilities to support the operation of the entire air conditioner 300.
[0079] The internal memory 304 provides an environment for the execution of the computer program 3032 in the non-volatile storage medium 303, which, when executed by the processor 302, can cause the processor 302 to perform a temperature adjustment method.
[0080] The interface 305 is configured to communicate with other devices. Those skilled in the art can understand that Figure 8 The structure shown in FIG. 3 is only a block diagram of part of the structure related to the scheme of the present application, and does not constitute a limitation on the air conditioner 300 to which the scheme of the present application is applied. Specifically, the air conditioner 300 can comprise more or fewer components than those shown in the figure, or combine certain components, or have a different component arrangement.
[0081] It should be understood that, in the embodiments of the present application, the processor 302 can be a central processing unit (CPU), and the processor 302 can also be other general-purpose processors, digital signal processors (DSP), application specific integrated circuits (ASIC), ready programmable gate arrays (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. Among them, the general-purpose processor can be a microprocessor or the processor can also be any conventional processor, etc.
[0082] Those skilled in the art can understand that all or part of the processes in the method of the above-mentioned embodiments can be completed by instructing the relevant hardware by a computer program. The computer program can be stored in a storage medium, which is a computer readable storage medium. The computer program is executed by at least one processor in the computer system to realize the process steps of the above-mentioned embodiment of the method.
[0083] Therefore, the application further provides a storage medium. The storage medium can be a computer readable storage medium. The storage medium stores a computer program. The computer program realizes any one of the above-mentioned temperature control methods when executed by a processor.
[0084] The storage medium can be a U disk, a mobile hard disk, a read-only memory (ROM), a magnetic disk or an optical disk, and various computer readable storage media that can store program codes.
[0085] Those skilled in the art can realize that the units and algorithm steps of the examples described in combination with the embodiments disclosed herein can be realized in electronic hardware, computer software or a combination of both. In order to clearly illustrate the interchangeability of hardware and software, the components and steps of the examples have been described in general terms in the above description. Whether the functions are performed in hardware or software depends on the specific application and design constraints of the technical solution. A person skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of the application.
[0086] In several embodiments provided by the application, it should be understood that the disclosed devices and methods can be implemented in other ways. For example, the device embodiments described above are only schematic. For example, the division of each unit is only a logical function division, and actual implementation can have another division manner. For example, a plurality of units or components can be combined or integrated into another system, or some features can be omitted or not executed.
[0087] The steps in the method of the embodiments of the application can be adjusted, combined and deleted according to actual needs. The units in the device of the embodiments of the application can be combined, divided and deleted according to actual needs. In addition, each functional unit in each embodiment of the application can be integrated in one processing unit, or each unit can exist physically, or two or more units can be integrated in one unit.
[0088] The integrated unit, if realized in the form of a software function unit and sold or used as an independent product, can be stored in a storage medium. Based on such an understanding, the technical solutions of the present application essentially or say the part that contributes to the prior art, or the whole or part of the technical solutions can be embodied in the form of a software product. The computer software product is stored in a storage medium and includes a plurality of instructions for causing an air conditioner to execute all or part of the steps of the method described in each embodiment of the present application.
[0089] In the above embodiments, the description of each embodiment has its own focus, and the parts not described in detail in a certain embodiment can be referred to the relevant description of other embodiments.
[0090] Obviously, those skilled in the art can make various modifications and variations to the present application without departing from the spirit and scope of the present application. Thus, these modifications and variations of the present application also belong to the scope of the claims of the present application and its equivalent technologies, and the present application also intends to include these modifications and variations.
[0091] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited to this. Any person skilled in the art can easily think of various equivalent modifications or replacements within the technical range disclosed by the present application, and these modifications or replacements should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A method of tempering, characterized in that The method is applied to an air conditioner and comprises the following steps: Controlling an air conditioner, the method comprises: Obtaining a temperature adjustment factor for adjusting the temperature of the air conditioner under the control of a start instruction for starting the air conditioner; Calculating a real-time apparent temperature according to the temperature adjustment factor; 2. The method of claim 1, wherein, Adjusting the temperature of the air conditioner based on the real-time apparent temperature and a preset apparent temperature. The step of calculating the real-time apparent temperature according to the temperature adjustment factor comprises: Substituting the temperature adjustment factor into a preset formula to calculate a basic apparent temperature; 3. The method of claim 2, wherein, Obtaining a first correction term and a second correction term, and correcting the basic apparent temperature based on the first correction term and the second correction term to obtain the real-time apparent temperature. The step of obtaining the first correction term and the second correction term comprises: Obtaining an indoor temperature and an outdoor temperature; 4. The method of claim 1, wherein, Calculating the first correction term and the second correction term respectively according to the indoor temperature and the outdoor temperature. The step of adjusting the temperature of the air conditioner based on the real-time apparent temperature and the preset apparent temperature comprises: Obtaining the apparent temperature and the preset apparent temperature; If the apparent temperature is greater than the preset apparent temperature, controlling the air conditioner to cool down; 5. The method of claim 4, wherein, If the apparent temperature is less than the preset apparent temperature, controlling the air conditioner to heat up. After the step of obtaining the apparent temperature and the preset apparent temperature, the method further comprises:
6. The method of claim 2, wherein, If the apparent temperature is the same as the preset apparent temperature, maintaining the temperature of the air conditioner unchanged. The method further comprises: Confirming a current season; If the current season is summer, increasing a humidity weight coefficient in the preset formula; 7. The method of claim 2, wherein, If the current season is winter, decreasing the humidity weight coefficient in the preset formula. The method further comprises: Confirming a current scene; If the current scene is a children's room, decreasing a wind speed weight coefficient and increasing an indoor temperature coefficient weight; 8. A tempering device, characterized in that If the current scene is a gym, increasing a humidity weight coefficient and an indoor temperature coefficient weight. The device is applied to an air conditioner and comprises the following units: A first obtaining unit for obtaining a temperature adjustment factor for adjusting the temperature of the air conditioner under the control of a start instruction for starting the air conditioner; A first calculating unit for calculating a real-time apparent temperature according to the temperature adjustment factor; 9. An air conditioner characterized by comprising: A first adjusting unit for adjusting the temperature of the air conditioner based on the real-time apparent temperature and a preset apparent temperature.
10. A computer-readable storage medium, characterized in that, The air conditioner comprises a memory and a processor connected to the memory; the memory is used for storing a computer program; and the processor is used for running the computer program stored in the memory to execute the steps of the method according to any one of claims 1-7. The storage medium stores a computer program, and the computer program can implement the steps of the method according to any one of claims 1-7 when executed by a processor.
Citation Information
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