Control method of air conditioner, air conditioner, electronic device, and storage medium

CN122590413APending Publication Date: 2026-08-18ANHUI ENBOLI ELECTRIC CO LTD
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Patent Information

Application Number
CN202610663027.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-05-14
Publication Date
2026-08-18

AI Technical Summary

Technical Problem

然而,这种基于压缩机频率控制的温控方式,会使得压缩机频率调节的响应幅度较大,为了快速弥补环境温差,压缩机需要频繁进行升频、降频操作,而频繁的频率切换会导致空调制冷/制热输出量出现骤变,进而引发室内温度波动,容易造成人体夜间被冻醒或热醒,严重影响睡眠舒适度

Benefits of technology

[0005]The air conditioning control method according to the embodiments of this application has at least the following beneficial effects: It calculates the ambient temperature difference by comparing the actual indoor temperature with the theoretical indoor temperature, thereby characterizing the deviation between the real-time indoor temperature and the user's ideal comfort temperature; it calculates the body surface temperature difference by comparing the actual body surface temperature with the theoretical body surface temperature, thereby characterizing the user's nighttime sleep comfort needs. By combining the body surface temperature difference, the ambient temperature difference, and the continuous running time of the air conditioning in sleep mode, current adjustment parameters are obtained. Based on these parameters, the actual operating current of the entire air conditioning unit is slightly adjusted, thereby slightly changing the operating power of the entire air conditioning unit, smoothly adjusting the air conditioning cooling/heating output, achieving gentle and gradual control of the indoor temperature, and effectively improving the user's comfort during sleep mode.

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Abstract

This application discloses an air conditioner control method, air conditioner device, electronic device, and storage medium, relating to the field of air conditioning technology. The air conditioner control method includes, when the air conditioner enters sleep mode, acquiring the user's actual body surface temperature, a preset theoretical body surface temperature, the actual indoor temperature, and a preset theoretical indoor temperature; obtaining the body surface temperature difference based on the actual and theoretical body surface temperatures; obtaining the ambient temperature difference based on the actual and theoretical indoor temperatures; obtaining current adjustment parameters based on the body surface temperature difference, the ambient temperature difference, and the duration of continuous operation of the air conditioner after entering sleep mode; acquiring the actual operating current of the air conditioner; obtaining the target operating current based on the current adjustment parameters and the actual operating current; and adjusting the actual operating current to the target operating current. This application achieves a smoother change in the air conditioner's cooling / heating output by fine-tuning the actual operating current of the entire air conditioning unit, thereby improving the user's sleep comfort.
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Description

Technical Field

[0001] This application relates to the field of air conditioning technology, and in particular to an air conditioning control method, air conditioning device, electronic device and storage medium. Background Technology

[0002] In existing technologies, most air conditioners rely on direct adjustment of the compressor frequency to control indoor temperature in sleep mode. Specifically, by detecting the difference between the ambient indoor temperature and the preset sleep temperature, the compressor's operating frequency is increased or decreased, thereby altering the air conditioner's cooling / heating output to achieve temperature control. However, this compressor frequency-based temperature control method results in a large response range for the compressor frequency adjustment. To quickly compensate for the ambient temperature difference, the compressor needs to frequently increase and decrease its frequency. Frequent frequency switching causes sudden changes in the air conditioner's cooling / heating output, leading to fluctuations in indoor temperature. This can easily cause people to wake up at night due to being too cold or too hot, severely impacting sleep comfort. Summary of the Invention

[0003] This application aims to address at least one of the technical problems existing in the prior art. To this end, this application proposes an air conditioning control method, air conditioning device, electronic equipment, and storage medium, which can achieve a smooth change in the cooling / heating output of the air conditioner by fine-tuning the actual operating current of the entire air conditioning unit, thereby improving the user's sleep comfort.

[0004] The air conditioning control method according to the first aspect of this application includes: When the air conditioner enters sleep mode, it obtains the user's actual body surface temperature, the preset theoretical body surface temperature, the actual indoor temperature, and the preset theoretical indoor temperature. The body surface temperature difference is obtained based on the actual body surface temperature and the theoretical body surface temperature. The ambient temperature difference is obtained based on the actual indoor temperature and the theoretical indoor temperature. The current regulation parameters are obtained based on the body surface temperature difference, the ambient temperature difference, and the duration of continuous operation of the air conditioner after entering sleep mode. Obtain the actual operating current of the air conditioner, and obtain the target operating current based on the current adjustment parameters and the actual operating current; Adjust the actual operating current to the target operating current.

[0005] The air conditioning control method according to the embodiments of this application has at least the following beneficial effects: It calculates the ambient temperature difference by comparing the actual indoor temperature with the theoretical indoor temperature, thereby characterizing the deviation between the real-time indoor temperature and the user's ideal comfort temperature; it calculates the body surface temperature difference by comparing the actual body surface temperature with the theoretical body surface temperature, thereby characterizing the user's nighttime sleep comfort needs. By combining the body surface temperature difference, the ambient temperature difference, and the continuous running time of the air conditioning in sleep mode, current adjustment parameters are obtained. Based on these parameters, the actual operating current of the entire air conditioning unit is slightly adjusted, thereby slightly changing the operating power of the entire air conditioning unit, smoothly adjusting the air conditioning cooling / heating output, achieving gentle and gradual control of the indoor temperature, and effectively improving the user's comfort during sleep mode.

[0006] According to some embodiments of this application, the current regulation parameters include a first corrected current, a second corrected current, and a third corrected current. Obtaining the current regulation parameters based on the body surface temperature difference, the ambient temperature difference, and the duration of continuous operation of the air conditioner after entering sleep mode includes: Determine the operating mode of the air conditioner and obtain the preset first temperature difference threshold and second temperature difference threshold corresponding to the operating mode; The first correction current is obtained based on the first temperature difference threshold corresponding to the operating mode and the body surface temperature difference; The second correction current is obtained based on the second temperature difference threshold corresponding to the operating mode and the ambient temperature difference; The third corrected current is obtained based on the duration of continuous operation of the air conditioner after entering the sleep mode.

[0007] According to some embodiments of this application, the operating mode includes a heating mode and a cooling mode, and the step of obtaining the first correction current based on the first temperature difference threshold corresponding to the operating mode and the body surface temperature difference includes: When the operating mode is cooling mode and the body surface temperature difference is greater than the first temperature difference threshold corresponding to the cooling mode, the first correction current is obtained according to the first temperature difference threshold corresponding to the cooling mode and the body surface temperature difference. When the operating mode is heating mode, and the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the heating mode, the first correction current is obtained based on the first temperature difference threshold corresponding to the heating mode and the body surface temperature difference.

[0008] According to some embodiments of this application, obtaining the second correction current based on the second temperature difference threshold corresponding to the operating mode and the ambient temperature difference includes: When the operating mode is cooling mode and the ambient temperature difference is greater than the second temperature difference threshold corresponding to the cooling mode, the second correction current is obtained according to the second temperature difference threshold corresponding to the cooling mode and the ambient temperature difference. When the operating mode is heating mode, and the body surface temperature difference is less than or equal to the second temperature difference threshold corresponding to the heating mode, the second correction current is obtained based on the second temperature difference threshold corresponding to the heating mode and the ambient temperature difference.

[0009] According to some embodiments of this application, after adjusting the actual operating current to the target operating current, the method further includes: When the operating mode is cooling mode, if the body surface temperature difference is greater than the first temperature difference threshold corresponding to the cooling mode, and the ambient temperature difference is greater than the second temperature difference threshold corresponding to the cooling mode, the indoor unit of the air conditioner is controlled to perform speed gear upgrade adjustment. If the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the cooling mode, or the ambient temperature difference is less than or equal to the second temperature difference threshold corresponding to the cooling mode, the indoor unit of the air conditioner is controlled to perform speed gear downshift adjustment. When the operating mode is heating mode, if the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the heating mode, and the ambient temperature difference is less than or equal to the second temperature difference threshold corresponding to the heating mode, the indoor unit of the air conditioner is controlled to perform speed gear upgrade adjustment. If the body surface temperature difference is greater than the first temperature difference threshold corresponding to the heating mode, or the ambient temperature difference is greater than the second temperature difference threshold corresponding to the heating mode, the indoor unit of the air conditioner is controlled to perform speed reduction adjustment.

[0010] According to some embodiments of this application, obtaining the body surface temperature difference based on the actual body surface temperature and the theoretical body surface temperature includes: When the air conditioner enters sleep mode, the theoretical body surface temperature and the theoretical indoor temperature are obtained; The temperature sensor of the air conditioner is controlled to collect the temperature of the detection area to obtain the actual indoor temperature; The infrared sensor of the air conditioner is controlled to detect the detection area to obtain the body surface temperature of the user in the detection area as the actual body surface temperature. When there are multiple users in the detection area, the average body surface temperature of the multiple users is calculated and used as the actual body surface temperature.

[0011] According to some embodiments of this application, after adjusting the actual operating current to the target operating current, the method further includes: Get the preset duration; When the air conditioner operates continuously in sleep mode for a duration exceeding the set duration, the air conditioner is controlled to exit sleep mode.

[0012] An air conditioning device according to a second aspect embodiment of this application includes: The data acquisition module is configured to acquire the user's actual body surface temperature, preset theoretical body surface temperature, actual indoor temperature, and preset theoretical indoor temperature when the air conditioner enters sleep mode. The data processing module is configured to obtain the body surface temperature difference based on the actual body surface temperature and the theoretical body surface temperature; and to obtain the ambient temperature difference based on the actual indoor temperature and the theoretical indoor temperature. The current regulation module is configured to obtain current regulation parameters based on the body surface temperature difference, the ambient temperature difference, and the duration of continuous operation of the air conditioner after entering sleep mode; obtain the actual operating current of the air conditioner; obtain a target operating current based on the current regulation parameters and the actual operating current; and adjust the actual operating current to the target operating current.

[0013] An electronic device according to a third aspect of this application includes a memory and a processor. The memory stores a computer program, and the processor executes the computer program to implement the air conditioner control method described in the first aspect of this application.

[0014] According to a fourth aspect embodiment of the present application, a computer-readable storage medium stores a computer program that, when executed by a processor, implements the air conditioning control method described in the first aspect embodiment of the present application.

[0015] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description

[0016] The above and / or additional aspects and advantages of this application will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which: Figure 1 This is a flowchart illustrating the steps of an air conditioner control method according to an embodiment of this application. Figure 2 This is a schematic diagram of a specific process for step S101; Figure 3 This is a schematic diagram of a specific process for step S104; Figure 4 This is a schematic diagram of a specific process for step S302; Figure 5 This is a schematic diagram of a specific process for step S303; Figure 6 This is a flowchart of steps S601 to S604 of this application; Figure 7 This is a flowchart of steps S701 to S702 of this application; Figure 8 This is a schematic diagram of the structure of an air conditioning device according to an embodiment of this application; Figure 9 This is a schematic diagram of the structure of an electronic device according to an embodiment of this application; Figure 10 This is a diagram showing the speed adjustment of the indoor unit of the air conditioner in this application. Detailed Implementation

[0017] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.

[0018] In the description of this application, it should be understood that the orientation descriptions, such as up, down, front, back, left, right, etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0019] In the description of this application, "several" means one or more, "more than" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.

[0020] In the description of this application, unless otherwise expressly defined, terms such as "setup," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this application in conjunction with the specific content of the technical solution.

[0021] Currently, most existing air conditioners rely on direct adjustment of the compressor frequency to control indoor temperature in sleep mode. Specifically, by detecting the difference between the ambient indoor temperature and the preset sleep temperature, the compressor's operating frequency is adjusted to increase or decrease, thereby changing the air conditioner's cooling / heating output to achieve temperature control. However, this compressor frequency-based temperature control method results in a large response range for the compressor frequency adjustment. To quickly compensate for the ambient temperature difference, the compressor needs to frequently increase and decrease its frequency. Frequent frequency switching causes sudden changes in the air conditioner's cooling / heating output, leading to fluctuations in indoor temperature and potentially causing people to wake up at night due to being too cold or too hot, severely impacting sleep comfort. Furthermore, frequent compressor frequency adjustments significantly increase the overall power consumption of the unit, resulting in energy waste. In today's consumer trend of pursuing high efficiency and energy saving, the high energy consumption of such equipment reduces product competitiveness and hinders market promotion and market share acquisition.

[0022] Based on this, this application proposes an air conditioning control method, air conditioning device, electronic device and storage medium, which aims to achieve a smooth change in the cooling / heating output of the air conditioning unit by fine-tuning the actual operating current of the entire unit, thereby improving the user's sleep comfort, reducing operating energy consumption, saving costs and improving the product's market competitiveness.

[0023] The first aspect of this application proposes a method for controlling an air conditioner. (Refer to...) Figure 1 , Figure 1 This is a flowchart illustrating the steps of an air conditioner control method according to an embodiment of this application. Figure 1 The illustrated process steps include, but are not limited to, steps S101 to S106.

[0024] Step S101: When the air conditioner enters sleep mode, the user's actual body surface temperature, preset theoretical body surface temperature, actual indoor temperature, and preset theoretical indoor temperature are obtained.

[0025] Step S102: Obtain the body surface temperature difference based on the actual body surface temperature and the theoretical body surface temperature.

[0026] Step S103: Obtain the ambient temperature difference based on the actual indoor temperature and the theoretical indoor temperature.

[0027] Step S104: Obtain the current regulation parameters based on the body surface temperature difference, the ambient temperature difference, and the duration of continuous operation of the air conditioner after entering sleep mode.

[0028] Step S105: Obtain the actual operating current of the air conditioner, and obtain the target operating current based on the current adjustment parameters and the actual operating current.

[0029] Step S106: Adjust the actual operating current to the target operating current.

[0030] The air conditioning control method according to the embodiments of this application has at least the following beneficial effects: It calculates the ambient temperature difference by comparing the actual indoor temperature with the theoretical indoor temperature, thereby characterizing the deviation between the real-time indoor temperature and the user's ideal comfort temperature; it calculates the body surface temperature difference by comparing the actual body surface temperature with the theoretical body surface temperature, thereby characterizing the user's nighttime sleep comfort needs. By combining the body surface temperature difference, the ambient temperature difference, and the continuous running time of the air conditioning in sleep mode, current adjustment parameters are obtained. Based on these parameters, the actual operating current of the entire air conditioning unit is slightly adjusted, thereby slightly changing the operating power of the entire air conditioning unit, smoothly adjusting the air conditioning cooling / heating output, achieving gentle and gradual control of the indoor temperature, and effectively improving the user's comfort during sleep mode.

[0031] In some embodiments, refer to Figure 2 Step S101 may include, but is not limited to, steps S201 to S204.

[0032] Step S201: When the air conditioner enters sleep mode, obtain the theoretical body surface temperature and the theoretical indoor temperature.

[0033] Step S202: Control the air conditioner's temperature sensor to collect the temperature of the detection area to obtain the actual indoor temperature.

[0034] Step S203: Control the infrared sensor of the air conditioner to detect the detection area, so as to obtain the body surface temperature of the user in the detection area as the actual body surface temperature.

[0035] Step S204: When there are multiple users in the detection area, the average value of the body surface temperature of the multiple users is calculated and the average value is used as the actual body surface temperature.

[0036] In step S201 of some embodiments, when the user controls the air conditioner to enter sleep mode, the theoretical body surface temperature and the theoretical indoor temperature are obtained. The theoretical body surface temperature is the normal human body temperature, such as 36.5°C, while the theoretical indoor temperature is the temperature that the user sets the air conditioner to reach. For example, if the user sets it to 24°C, the theoretical indoor temperature is 24°C.

[0037] In step S202 of some embodiments, the air conditioner includes a temperature sensor, which collects the temperature of the indoor detection area and uses the collected temperature value as the actual indoor temperature.

[0038] In step S203 of some embodiments, the air conditioner also includes an infrared sensor, which detects the body surface temperature of the user in the indoor detection area and uses the detected temperature value as the actual body surface temperature.

[0039] In step S204 of some embodiments, there may be multiple users in the detection area of ​​the infrared sensor. In this case, the body surface temperature of each user is detected to obtain the body surface temperature of multiple users, and then the average of the body surface temperatures of multiple users is taken as the actual body surface temperature.

[0040] Steps S201 to S204 in this embodiment of the application involve simultaneously collecting theoretical body surface temperature and theoretical indoor temperature, and combining this with a temperature sensor to obtain the actual indoor temperature in real time and an infrared sensor to accurately detect the user's actual body surface temperature. For multi-person scenarios, the average of the body surface temperatures of multiple people is further calculated as a unified reference benchmark. This method can accommodate both single-person and multi-person usage scenarios, achieving accurate dual sensing of indoor ambient temperature and human body surface temperature. This provides accurate and reliable data support for subsequent refined and differentiated temperature control adjustment of the air conditioner in sleep mode, effectively avoiding physical discomfort caused by single temperature control, and improving temperature control comfort and environmental adaptability during sleep.

[0041] In step S102 of some embodiments, the formula for calculating the body surface temperature difference is as follows: ; In this formula, △T _r The temperature difference at the body surface, ΔT _r(t) For the actual body surface temperature at this time, A is the theoretical body surface temperature, B is the human body temperature correction constant (which can be preset, such as 0.5℃), and t is the detection cycle of the whole machine. That is, the actual operating current of the whole machine is adjusted periodically every cycle length t (which can be preset, such as 15min), thereby avoiding frequent adjustment of the actual operating current of the whole machine.

[0042] In step S103 of some embodiments, the formula for calculating the ambient temperature difference is as follows: ; In this formula, △T represents the ambient temperature difference, T_inner_loop represents the actual indoor temperature difference, and T is set as the theoretical indoor temperature difference.

[0043] In some embodiments, the current regulation parameters include a first correction current, a second correction current, and a third correction current, as referenced. Figure 3 Step S104 may include, but is not limited to, steps S301 to S304.

[0044] Step S301: Determine the operating mode of the air conditioner and obtain the preset first temperature difference threshold and second temperature difference threshold corresponding to the operating mode.

[0045] Step S302: Obtain the first correction current based on the first temperature difference threshold and the body surface temperature difference corresponding to the operating mode.

[0046] Step S303: Obtain the second correction current based on the second temperature difference threshold corresponding to the operating mode and the ambient temperature difference.

[0047] Step S304: The third correction current is obtained based on the duration of continuous operation of the air conditioner after it enters sleep mode.

[0048] In step S301 of some embodiments, the operating mode of the air conditioner is determined. If the air conditioner is in cooling mode, the first temperature difference threshold and the second temperature difference threshold corresponding to the cooling mode are obtained; if the air conditioner is in heating mode, the first temperature difference threshold and the second temperature difference threshold corresponding to the heating mode are obtained.

[0049] In some embodiments, the operating modes include a heating mode and a cooling mode, as shown in the reference. Figure 4 Step S302 may include, but is not limited to, steps S401 to S402.

[0050] Step S401: When the operating mode is cooling mode and the body surface temperature difference is greater than the first temperature difference threshold corresponding to the cooling mode, the first correction current is obtained based on the first temperature difference threshold corresponding to the cooling mode and the body surface temperature difference.

[0051] Step S402: When the operating mode is heating mode and the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the heating mode, the first correction current is obtained based on the first temperature difference threshold corresponding to the heating mode and the body surface temperature difference.

[0052] In step S401 of some embodiments, when the air conditioner is in cooling mode and the body surface temperature difference is greater than the corresponding first temperature difference threshold, it indicates that the user's perceived temperature is too hot and the cooling capacity needs to be appropriately increased. That is, the actual operating current of the air conditioner needs to be adjusted accordingly. Then, based on the first temperature difference threshold corresponding to the cooling mode and the body surface temperature difference, a first correction current is obtained. The calculation formula for the first correction current is as follows: ; In this formula, I_b is the first correction current, and ΔT _r Let θ be the body surface temperature difference, θ be the first temperature difference threshold, and I_y be the human body temperature adjustment rate constant for current (e.g., 0.2A / ℃).

[0053] In step S402 of some embodiments, when the air conditioner is in heating mode and the body surface temperature difference is less than or equal to the corresponding first temperature difference threshold, it indicates that the user's perceived temperature is too cold and the heating capacity needs to be appropriately increased. That is, the actual operating current of the air conditioner needs to be adjusted accordingly. Then, based on the first temperature difference threshold corresponding to the heating mode and the body surface temperature difference, a first correction current is obtained. The calculation formula for the first correction current of the heating mode is the same as that of the cooling mode, and will not be described again here.

[0054] In the embodiments of this application, steps S401 to S402 are performed by comparing the body surface temperature difference with the first threshold and combining the air conditioner's operating mode to determine whether the user's perceived temperature is too high or too low, and then calculating the first correction current to facilitate the subsequent adjustment of the actual operating current of the air conditioner unit.

[0055] In some embodiments, when the body surface temperature is greater than the corresponding first temperature difference threshold in cooling mode or less than or equal to the corresponding first temperature difference threshold in heating mode, the upper limit of the operating current of the air conditioning unit is simultaneously increased while calculating the first correction current. This facilitates subsequent adjustment of the actual operating current. For example, in cooling mode, if the body surface temperature is greater than the first temperature difference threshold, the actual operating current needs to be increased by the value of the first correction current to increase the cooling capacity. However, the original actual operating current has already reached the upper limit and cannot be increased further. Therefore, the upper limit of the operating current is increased while calculating the first correction current, so that even if the actual operating current has reached the upper limit of the operating current, the cooling capacity can still be increased when the user's body surface temperature is detected to be too high, further ensuring the user's sleep comfort.

[0056] In some embodiments, refer to Figure 5 Step S303 may include, but is not limited to, steps S501 to S502.

[0057] Step S501: When the operating mode is cooling mode and the ambient temperature difference is greater than the second temperature difference threshold corresponding to the cooling mode, the second correction current is obtained based on the second temperature difference threshold corresponding to the cooling mode and the ambient temperature difference.

[0058] Step S502: When the operating mode is heating mode and the body surface temperature difference is less than or equal to the second temperature difference threshold corresponding to the heating mode, the second correction current is obtained based on the second temperature difference threshold corresponding to the heating mode and the ambient temperature difference.

[0059] In step S501 of some embodiments, when the air conditioner is in cooling mode and the ambient temperature difference is greater than the corresponding second temperature difference threshold, it indicates that the indoor ambient temperature is too high and the cooling capacity needs to be appropriately increased. Then, based on the second temperature difference threshold corresponding to the cooling mode and the ambient temperature difference, a second correction current is obtained. The calculation formula for the second correction current is as follows: ; In this formula, I_c is the second correction current, ΔT is the ambient temperature difference, δ is the second temperature difference threshold, n is the number of current detections within one whole-machine detection cycle, C is the correction constant for indoor heat as the cycle time increases, and I_z is the ambient temperature difference's unit adjustment rate constant for current (e.g., 0.15A / ℃).

[0060] In step S502 of some embodiments, when the air conditioner is in heating mode and the ambient temperature difference is less than or equal to the corresponding second temperature difference threshold, it indicates that the indoor ambient temperature is too low and the heating capacity needs to be increased appropriately. Then, based on the second temperature difference threshold corresponding to the heating mode and the ambient temperature difference, a second correction current is obtained. The calculation formula for the second correction current of the heating mode is the same as that of the cooling mode, and will not be described again here.

[0061] In the embodiments of this application, steps S501 to S502 are performed by comparing the ambient temperature difference with the second threshold and combining the air conditioner's operating mode to determine whether the indoor ambient temperature is too high or too low, and then calculating the second correction current to facilitate the subsequent adjustment of the actual operating current of the air conditioner unit.

[0062] In some embodiments, when the ambient temperature is greater than the corresponding second temperature difference threshold in cooling mode or less than or equal to the corresponding second temperature difference threshold in heating mode, the upper limit of the operating current is simultaneously increased while calculating the second correction current. This facilitates subsequent adjustment of the actual operating current. For example, in cooling mode, when the ambient temperature is greater than the second temperature difference threshold, the actual operating current needs to increase the value of the second correction current to increase the cooling capacity. However, the original actual operating current has already reached the upper limit and cannot be increased further. Therefore, the upper limit of the operating current is increased while calculating the second correction current. This ensures that even if the actual operating current has reached the upper limit of the operating current, the cooling capacity can still be increased when the actual indoor temperature deviates too much from the theoretical indoor temperature set by the user, further guaranteeing the user's sleep comfort.

[0063] It should be noted that as time goes on, the upper limit of the operating current of the air conditioning unit decreases, which may result in a larger ambient temperature difference ΔT. The adjustment priority in this situation is as follows: prioritize the surface temperature difference ΔT. _r The detection and adjustment are as follows: First, the difference between the inner ring T and the set T, specifically the ambient temperature difference ΔT, needs to be detected and adjusted. If ΔT... _r If the comfort zone is met (i.e., less than the corresponding first temperature difference threshold in cooling mode, or greater than the corresponding first temperature difference threshold in heating mode), then I_b will not be adjusted.

[0064] It should be noted that when a sudden change in the user's body surface temperature data or a signal strength that is too weak is detected, the data is deemed invalid, and the valid value of the previous cycle is used or the actual indoor temperature is used for estimation. If no valid user body surface temperature is detected after a preset number of cycles, the ambient temperature difference will be used for control.

[0065] It should be noted that the upper limit of the operating current can be adjusted as needed. The air conditioner also includes a temperature sensor to detect the outdoor temperature. When the outdoor temperature is greater than the temperature threshold, it indicates that the environment is relatively harsh. In order to ensure the safe operation of the entire air conditioner unit, the upper limit of the operating current will be appropriately reduced, etc.

[0066] In step S304 of some embodiments, after the air conditioner enters sleep mode, as the running time increases, the unit operation becomes increasingly smooth. Specifically, the upper limit of the operating current gradually decreases. This decrease in current value is the third correction current, and the calculation formula for the third correction current is as follows: ; In this formula, I_a is the third correction current, I_x is the constant of the unit decrease rate of the normal current (e.g., 0.3A / h), and k is the duration of continuous operation of the air conditioner after entering sleep mode.

[0067] Steps S301 to S304 shown in this embodiment of the application obtain a first correction current based on the body surface temperature difference and the first temperature difference threshold corresponding to the operating mode, thereby correcting the actual operating current of the air conditioner based on the user's body sensation; a second correction current is obtained based on the ambient temperature difference and the second temperature difference threshold corresponding to the operating mode, thereby correcting the actual operating current of the air conditioner based on the difference between the indoor temperature and the set temperature, realizing the comprehensive regulation of temperature by human body temperature difference and ambient temperature difference; the calculation of the third correction current takes into account the normal current drop phenomenon in the air conditioner sleep mode, resulting in more precise regulation.

[0068] It should be noted that the maximum value of the third correction current is 50% of the actual operating current of the air conditioner in the initial cycle.

[0069] In step S105 of some embodiments, the actual current operating current of the air conditioner is periodically acquired based on a preset current cycle detection duration, and the calculation formula for the target operating current is: ; ; In this formula, I _t The target operating current for cooling mode is I. _t The target operating current for heating mode is I. _avg I_b is the actual operating current, I_c is the second correction current, and I_a is the third correction current.

[0070] It should be noted that in actual testing, since a continuous current function cannot be obtained, the average value of the actual operating current within the same cycle can be selected as the final actual operating current used for calculation. This is achieved using a discrete sampling scheme for approximation. For example, if the overall testing cycle t is 15 minutes and the current cycle testing duration t_i is 30 seconds (meaning the actual operating current of the entire unit is measured every 30 seconds), then the actual operating current of the air conditioner needs to be measured 30 times in one overall testing cycle. The average value of these 30 actual operating currents is then used as an approximation for the final actual operating current used for calculation. The calculation formula is as follows: ; In this formula, I _avg The actual operating current is used to calculate the target operating current. n is the total number of current detections within the same detection cycle of the whole machine. I1, I2...In are the actual operating currents corresponding to each current detection. For example, assuming the detection cycle t of the whole machine is 15 minutes and the current cycle detection time t_i is 30 seconds, the actual operating current of the air conditioner needs to be detected 30 times in one whole machine cycle detection. I1, I2...In are the detection results of these 30 times.

[0071] In step S106 of some embodiments, the actual operating current of the entire air conditioning unit is adjusted to the target operating current.

[0072] In some embodiments, refer to Figure 6 After step S106, steps S601 to S604 may be included, but are not limited to.

[0073] Step S601: When the operating mode is cooling mode, if the body surface temperature difference is greater than the first temperature difference threshold corresponding to the cooling mode, and the ambient temperature difference is greater than the second temperature difference threshold corresponding to the cooling mode, the indoor unit of the air conditioner is controlled to perform speed gear upgrade adjustment.

[0074] Step S602: If the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the cooling mode, or the ambient temperature difference is less than or equal to the second temperature difference threshold corresponding to the cooling mode, control the indoor unit of the air conditioner to perform speed reduction adjustment.

[0075] Step S603: When the operating mode is heating mode, if the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the heating mode, and the ambient temperature difference is less than or equal to the second temperature difference threshold corresponding to the heating mode, the indoor unit of the air conditioner is controlled to perform speed gear upgrade adjustment.

[0076] Step S604: If the body surface temperature difference is greater than the first temperature difference threshold corresponding to the heating mode, or the ambient temperature difference is greater than the second temperature difference threshold corresponding to the heating mode, control the indoor unit of the air conditioner to perform speed reduction adjustment.

[0077] In step S601 of some embodiments, in cooling mode, the speed of the indoor unit of the air conditioner will be increased only when the body surface temperature difference is greater than the first temperature difference threshold corresponding to the cooling mode and the ambient temperature difference is greater than the second temperature difference threshold corresponding to the cooling mode.

[0078] In step S602 of some embodiments, in cooling mode, when the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the cooling mode, or the ambient temperature difference is less than or equal to the second temperature difference threshold corresponding to the cooling mode, that is, when either of the two conditions is met, the speed of the indoor unit of the air conditioner is reduced.

[0079] In step S603 of some embodiments, in heating mode, the speed of the indoor unit of the air conditioner will only be increased when the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the heating mode and the ambient temperature difference is less than or equal to the second temperature difference threshold corresponding to the heating mode.

[0080] In step S604 of some embodiments, in heating mode, when the body surface temperature difference is greater than the first temperature difference threshold corresponding to the heating mode, or the ambient temperature difference is greater than the second temperature difference threshold corresponding to the heating mode, that is, when either of the two conditions is met, the speed of the indoor unit of the air conditioner is reduced.

[0081] Steps S601 to S604 shown in this embodiment are specifically adjusted as described in 10, where △T is the ambient temperature difference. _rBased on body surface temperature difference, it can be seen that in cooling mode, when the body surface temperature difference is greater than the first threshold corresponding to the cooling mode, and the ambient temperature difference is greater than the second threshold corresponding to the cooling mode, the air conditioner indoor unit speed increases by one level; when the body surface temperature difference is less than or equal to the first threshold corresponding to the cooling mode, and the ambient temperature difference is less than or equal to the second threshold corresponding to the cooling mode, the air conditioner indoor unit speed decreases by two levels; when the body surface temperature difference is greater than the first threshold corresponding to the cooling mode, and the ambient temperature difference is less than or equal to the second threshold corresponding to the cooling mode, the air conditioner indoor unit speed decreases by one level; when the body surface temperature difference is less than or equal to the first threshold corresponding to the cooling mode, and the ambient temperature difference is greater than the second threshold corresponding to the cooling mode, the air conditioner indoor unit speed decreases by one level; in heating mode, when the body surface temperature difference is greater than the second threshold corresponding to the cooling mode, the air conditioner indoor unit speed decreases by one level. When the temperature difference between the body surface and the ambient temperature is greater than the second threshold corresponding to the cooling mode, the air conditioner indoor unit speed decreases by two levels. When the body surface temperature difference is less than or equal to the first threshold corresponding to the cooling mode, and the ambient temperature difference is less than or equal to the second threshold corresponding to the cooling mode, the air conditioner indoor unit speed increases by one level. When the body surface temperature difference is greater than the first threshold corresponding to the cooling mode, and the ambient temperature difference is less than or equal to the second threshold corresponding to the cooling mode, the air conditioner indoor unit speed decreases by one level. When the body surface temperature difference is less than or equal to the first threshold corresponding to the cooling mode, and the ambient temperature difference is greater than the second threshold corresponding to the cooling mode, the air conditioner indoor unit speed decreases by one level. This achieves precise control of the air conditioner indoor unit speed based on the body surface temperature difference and the ambient temperature difference, further improving user comfort.

[0082] It should be noted that the indoor unit speed setting of the air conditioner is adjusted once every three cycles (the detection cycle t of the whole machine is one cycle). The data of the second cycle is used as the judgment benchmark, and the adjustment is carried out in the third cycle to avoid frequent speed increases and decreases. That is, the indoor unit speed is adjusted only after three cycles of cumulative operation, and the adjustment is based on the data of the second cycle. After the indoor unit speed is adjusted, the data is cleared to zero, and the detection and adjustment of three cycles are repeated.

[0083] In some embodiments, refer to Figure 7 After step S106, steps S701 to S702 may also be included, but are not limited to.

[0084] Step S701: Obtain the preset duration.

[0085] Step S702: When the air conditioner runs continuously for a longer period of time after entering sleep mode than the set time, control the air conditioner to exit sleep mode.

[0086] In step S701 of some embodiments, a preset duration is obtained. The preset duration is the duration of the sleep mode. After the preset duration is reached, the sleep mode will be exited. The preset duration can be set by the user or a value set at the factory. For example, if the user does not set a preset duration, the preset duration will be automatically set to the factory preset of 9 hours, that is, the sleep mode will be exited automatically after 9 hours. If the user sets a preset duration of 4 hours, the user setting will be used, and the sleep mode will be exited automatically after 4 hours.

[0087] In step S702 of some embodiments, the continuous running time of the air conditioner after entering sleep mode is compared with the set duration; if the continuous running time of sleep mode is greater than the set duration, the air conditioner is controlled to exit sleep mode. Wherein, when the set duration supports user-defined settings, the continuous running time of sleep mode is recalculated based on the time point when the user sets the duration. For example, if the user sets the set duration one hour after the air conditioner enters sleep mode, the current accumulated running time of sleep mode is cleared, and the continuous running time of the air conditioner entering sleep mode is recalculated from the current time as a new starting point for subsequent comparison with the user-set duration.

[0088] Steps S701 to S702 shown in this embodiment of the application, by setting a set duration, cause the air conditioner to automatically exit the sleep mode after the set duration is reached, so as to match the user's temperature control needs after waking up, greatly improving the intelligence and flexibility of the air conditioner's operation, and further improving the user experience.

[0089] The following are specific embodiments of the air conditioning control method of this application: The air conditioner enters sleep mode and detects parameters from the first operating cycle to obtain: actual body surface temperature ΔT. _r(t) =37.8℃, actual indoor temperature difference T_inner ring = 27℃, theoretical indoor temperature difference T_set = 25℃, indoor unit speed = 2nd gear, actual operating current I_of the air conditioning unit _avg =7.0A, human body temperature correction constant =0.5℃, human body temperature adjustment rate constant for current unit I_y =0.2A / ℃, ambient temperature difference adjustment rate constant for current unit I_z =0.15A / ℃, second temperature difference threshold δ =0.5℃, first temperature difference threshold θ =0.5℃, duration of continuous operation of air conditioner after entering sleep mode k =1.5h, normal current unit decrease rate constant I_x =0.2A / h, correction constant for indoor heat as the cycle time increases C =0.2℃, number of times current is detected in one whole machine detection cycle n =1 (set to 1 here for ease of calculation and demonstration).

[0090] Calculate the body surface temperature difference to obtain the body surface temperature difference ΔT. _r =37.8-36.5-0.5=0.8℃.

[0091] Calculate the ambient temperature difference to obtain the ambient temperature difference ΔT = 27 - 25 = 2℃.

[0092] Calculate the third correction current and get I_a = 1.5 * 0.2 = 0.3 A.

[0093] Calculate the first correction current, and we get I_b = (0.8 - 0.5) * 0.2 = 0.06A.

[0094] Calculate the second correction current, and get I_c = (2 - 0.5 - 1 * 0.2) * 0.15 = 0.02A.

[0095] Calculate the target operating current and obtain I. _t Refrigeration = I _avg -I_a+I_b+I_c=7.0-0.3+0.06+0.2= 6.44A.

[0096] At this time, the actual operating current of the air conditioning unit is 6.44A and it enters the next cycle of detection.

[0097] Meanwhile, in the (3n-1)th cycle, n>1, the operating parameters are detected, and the indoor unit speed of the air conditioner is adjusted in the 3nth cycle. Assuming the adjustment is based on the above data, then △T _r If θ > δ and △T > δ, the speed increases by one gear, and the indoor unit speed is adjusted to run at gear 3, continuing the detection for the next cycle.

[0098] This allows for a slight adjustment of the actual operating current of the air conditioning unit by combining the body surface temperature difference, the ambient temperature difference, and the continuous running time of the air conditioner in sleep mode. This, in turn, subtly changes the operating power of the air conditioning unit, smoothly adjusting the cooling / heating output of the air conditioner. This achieves gentle and gradual control of the indoor temperature, effectively improving the user's comfort during sleep mode. At the same time, the linkage control between the indoor unit speed and current enables rapid temperature adjustment when needed and quiet operation when stable, further enhancing the user's overall sleep comfort.

[0099] Reference Figure 8 , Figure 8 This is a schematic diagram of an air conditioning device according to a second aspect of this application. The air conditioning device includes: The data acquisition module 801 is configured to acquire the user's actual body surface temperature, preset theoretical body surface temperature, actual indoor temperature, and preset theoretical indoor temperature when the air conditioner enters sleep mode. The data processing module 802 is configured to obtain the body surface temperature difference based on the actual body surface temperature and the theoretical body surface temperature; and to obtain the ambient temperature difference based on the actual indoor temperature and the theoretical indoor temperature. The current regulation module 803 is configured to obtain current regulation parameters based on the body surface temperature difference, the ambient temperature difference, and the duration of continuous operation of the air conditioner after entering sleep mode; obtain the actual operating current of the air conditioner; obtain the target operating current based on the current regulation parameters and the actual operating current; and adjust the actual operating current to the target operating current.

[0100] In this embodiment, the data acquisition module 801 acquires the actual indoor temperature, theoretical indoor temperature, actual body surface temperature, and theoretical body surface temperature; the data processing module 802 calculates the ambient temperature difference to characterize the deviation between the real-time indoor temperature and the user's ideal comfort temperature; and the body surface temperature difference is calculated to characterize the user's nighttime sleep comfort needs. Combining the body surface temperature difference, ambient temperature difference, and the continuous running time of the air conditioner in sleep mode, current adjustment parameters are calculated. The current adjustment module 803 then makes slight adjustments to the actual operating current of the air conditioning unit based on these parameters, thereby subtly changing the operating power of the air conditioning unit and smoothly adjusting the cooling / heating output of the air conditioner. This achieves gentle and gradual control of the indoor temperature, effectively improving the user's comfort during sleep.

[0101] An embodiment of the third aspect of this application also provides an electronic device, which includes a memory 902 and a processor 901. The memory 902 stores a computer program, and the processor 901 executes the computer program to implement the air conditioner control method of the first aspect embodiment described above. This electronic device can be any smart terminal, including tablet computers, in-vehicle computers, etc.

[0102] Reference Figure 9 , Figure 9 This is a schematic diagram of the structure of an electronic device according to one embodiment. The electronic device includes: The processor 901 can be implemented using a general-purpose CPU (Central Processing Unit), microprocessor, application-specific integrated circuit (ASIC), or one or more integrated circuits, and is used to execute relevant programs to implement the technical solutions provided in the embodiments of this application. The memory 902 can be implemented as a read-only memory, static storage device, dynamic storage device, or random access memory (RAM). The memory 902 can store the operating system and other applications. When the technical solutions provided in the embodiments of this specification are implemented through software or firmware, the relevant program code is stored in the memory 902 and is called and executed by the processor 901 to execute the television bezel laser etching method of the embodiments of this application. The input / output interface 903 is used to implement information input and output; The communication interface 904 is used to enable communication and interaction between this device and other devices. Communication can be achieved via wired or wireless means. Bus 905 transmits information between various components of the device; The processor 901, memory 902, input / output interface 903, and communication interface 904 are connected to each other within the device via bus 905.

[0103] A fourth aspect of this application also provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the air conditioning control method of the first aspect embodiment described above.

[0104] Memory, as a non-transitory computer-readable storage medium, can be used to store non-transitory software programs and non-transitory computer-executable programs. Furthermore, memory may include high-speed random access memory, and may also include non-transitory memory, such as at least one disk storage device, flash memory device, or other non-transitory solid-state storage device. In some embodiments, memory may optionally include memory remotely located relative to the processor, and these remote memories can be connected to the processor via a network. Examples of such networks include, but are not limited to, the Internet, intranets, local area networks, mobile communication networks, and combinations thereof.

[0105] The embodiments described in this application are for the purpose of more clearly illustrating the technical solutions of the embodiments of this application, and do not constitute a limitation on the technical solutions provided by the embodiments of this application. As those skilled in the art will know, with the evolution of technology and the emergence of new application scenarios, the technical solutions provided by the embodiments of this application are also applicable to similar technical problems.

[0106] Those skilled in the art will understand that the technical solutions shown in the figures do not constitute a limitation on the embodiments of this application, and may include more or fewer steps than shown, or combine certain steps, or different steps.

[0107] The device embodiments described above are merely illustrative. The units described as separate components may or may not be physically separate; that is, they may be located in one place or distributed across multiple network units. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs.

[0108] Those skilled in the art will understand that all or some of the steps in the methods disclosed above, as well as the functional modules / units in the systems and devices, can be implemented as software, firmware, hardware, or suitable combinations thereof.

[0109] The terms “first,” “second,” “third,” “fourth,” etc. (if present) in the specification and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms “comprising” and “having,” and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0110] It should be understood that in this application, "at least one (item)" means one or more, and "more than" means two or more. "And / or" is used to describe the relationship between related objects, indicating that three relationships can exist. For example, "A and / or B" can represent three cases: only A exists, only B exists, and both A and B exist simultaneously, where A and B can be singular or plural. The character " / " generally indicates that the preceding and following related objects are in an "or" relationship. "At least one (item) of the following" or similar expressions refer to any combination of these items, including any combination of single or plural items. For example, at least one (item) of a, b, or c can represent: a, b, c, "a and b", "a and c", "b and c", or "a and b and c", where a, b, and c can be single or multiple.

[0111] In the several embodiments provided in this application, it should be understood that the disclosed apparatus and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of the units described above is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between apparatuses or units may be electrical, mechanical, or other forms.

[0112] The units described above as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0113] Furthermore, the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit.

[0114] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes multiple instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods of the various embodiments of this application. The aforementioned storage medium includes various media capable of storing programs, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.

[0115] Furthermore, it should be noted that in all specific embodiments of this application, when processing data related to user identity or characteristics, such as user information, user behavior data, user historical data, and user location information, user permission or consent will be obtained first. Moreover, the collection, use, and processing of this data will comply with relevant laws, regulations, and standards. Additionally, when embodiments of this application require access to sensitive personal information of users, separate permission or consent from the user will be obtained through pop-ups or redirects to confirmation pages. Only after obtaining the user's separate permission or consent will the necessary user-related data for the proper functioning of these embodiments be acquired.

[0116] The preferred embodiments of the present application have been described above with reference to the accompanying drawings, but this does not limit the scope of the claims of the present application. Any modifications, equivalent substitutions, and improvements made by those skilled in the art without departing from the scope and substance of the embodiments of the present application shall be within the scope of the claims of the present application.

Claims

1. A method for controlling an air conditioner, characterized in that, The method includes: When the air conditioner enters sleep mode, it obtains the user's actual body surface temperature, the preset theoretical body surface temperature, the actual indoor temperature, and the preset theoretical indoor temperature. The body surface temperature difference is obtained based on the actual body surface temperature and the theoretical body surface temperature. The ambient temperature difference is obtained based on the actual indoor temperature and the theoretical indoor temperature. The current regulation parameters are obtained based on the body surface temperature difference, the ambient temperature difference, and the duration of continuous operation of the air conditioner after entering sleep mode. Obtain the actual operating current of the air conditioner, and obtain the target operating current based on the current adjustment parameters and the actual operating current; Adjust the actual operating current to the target operating current.

2. The air conditioning control method according to claim 1, characterized in that, The current regulation parameters include a first correction current, a second correction current, and a third correction current. The current regulation parameters are obtained based on the body surface temperature difference, the ambient temperature difference, and the duration of continuous operation of the air conditioner after entering sleep mode. Determine the operating mode of the air conditioner and obtain the preset first temperature difference threshold and second temperature difference threshold corresponding to the operating mode; The first correction current is obtained based on the first temperature difference threshold corresponding to the operating mode and the body surface temperature difference; The second correction current is obtained based on the second temperature difference threshold corresponding to the operating mode and the ambient temperature difference; The third corrected current is obtained based on the duration of continuous operation of the air conditioner after entering the sleep mode.

3. The air conditioning control method according to claim 2, characterized in that, The operating modes include a heating mode and a cooling mode. The step of obtaining the first correction current based on the first temperature difference threshold corresponding to the operating mode and the body surface temperature difference includes: When the operating mode is cooling mode and the body surface temperature difference is greater than the first temperature difference threshold corresponding to the cooling mode, the first correction current is obtained according to the first temperature difference threshold corresponding to the cooling mode and the body surface temperature difference. When the operating mode is heating mode, and the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the heating mode, the first correction current is obtained based on the first temperature difference threshold corresponding to the heating mode and the body surface temperature difference.

4. The air conditioning control method according to claim 3, characterized in that, The step of obtaining the second correction current based on the second temperature difference threshold corresponding to the operating mode and the ambient temperature difference includes: When the operating mode is cooling mode and the ambient temperature difference is greater than the second temperature difference threshold corresponding to the cooling mode, the second correction current is obtained according to the second temperature difference threshold corresponding to the cooling mode and the ambient temperature difference. When the operating mode is heating mode, and the body surface temperature difference is less than or equal to the second temperature difference threshold corresponding to the heating mode, the second correction current is obtained based on the second temperature difference threshold corresponding to the heating mode and the ambient temperature difference.

5. The air conditioning control method according to claim 2, characterized in that, After adjusting the actual operating current to the target operating current, the method further includes: When the operating mode is cooling mode, if the body surface temperature difference is greater than the first temperature difference threshold corresponding to the cooling mode, and the ambient temperature difference is greater than the second temperature difference threshold corresponding to the cooling mode, the indoor unit of the air conditioner is controlled to perform speed gear upgrade adjustment. If the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the cooling mode, or the ambient temperature difference is less than or equal to the second temperature difference threshold corresponding to the cooling mode, the indoor unit of the air conditioner is controlled to perform speed gear downshift adjustment. When the operating mode is heating mode, if the body surface temperature difference is less than or equal to the first temperature difference threshold corresponding to the heating mode, and the ambient temperature difference is less than or equal to the second temperature difference threshold corresponding to the heating mode, the indoor unit of the air conditioner is controlled to perform speed gear upgrade adjustment. If the body surface temperature difference is greater than the first temperature difference threshold corresponding to the heating mode, or the ambient temperature difference is greater than the second temperature difference threshold corresponding to the heating mode, the indoor unit of the air conditioner is controlled to perform speed reduction adjustment.

6. The air conditioning control method according to claim 1, characterized in that, When the air conditioner enters sleep mode, acquiring the user's actual body surface temperature, the preset theoretical body surface temperature, the actual indoor temperature, and the preset theoretical indoor temperature includes: When the air conditioner enters sleep mode, the theoretical body surface temperature and the theoretical indoor temperature are obtained; The temperature sensor of the air conditioner is controlled to collect the temperature of the detection area to obtain the actual indoor temperature; The infrared sensor of the air conditioner is controlled to detect the detection area to obtain the body surface temperature of the user in the detection area as the actual body surface temperature. When there are multiple users in the detection area, the average body surface temperature of the multiple users is calculated and used as the actual body surface temperature.

7. The air conditioning control method according to claim 1, characterized in that, After adjusting the actual operating current to the target operating current, the method further includes: Get the preset duration; When the air conditioner operates continuously in sleep mode for a duration exceeding the set duration, the air conditioner is controlled to exit sleep mode.

8. An air conditioning device, characterized in that, The device includes: The data acquisition module is configured to acquire the user's actual body surface temperature, preset theoretical body surface temperature, actual indoor temperature, and preset theoretical indoor temperature when the air conditioner enters sleep mode. The data processing module is configured to obtain the body surface temperature difference based on the actual body surface temperature and the theoretical body surface temperature; and to obtain the ambient temperature difference based on the actual indoor temperature and the theoretical indoor temperature. The current regulation module is configured to obtain current regulation parameters based on the body surface temperature difference, the ambient temperature difference, and the duration of continuous operation of the air conditioner after entering sleep mode; obtain the actual operating current of the air conditioner; obtain a target operating current based on the current regulation parameters and the actual operating current; and adjust the actual operating current to the target operating current.

9. An electronic device, characterized in that, The electronic device includes a memory and a processor, the memory storing a computer program, and the processor executing the computer program to implement the air conditioner control method according to any one of claims 1 to 7.

10. A computer-readable storage medium storing a computer program, characterized in that, When the computer program is executed by the processor, it implements the air conditioning control method according to any one of claims 1 to 7.