An adaptive adjustment method and system for air conditioning, and an air conditioner

By monitoring user status through built-in sensors and infrared sensors, and combining window controls, the system intelligently adjusts the air conditioner's air outlet temperature and window status, solving the problem that the air conditioner cannot adaptively adjust indoor air quality after the user falls asleep, thus improving the sleep experience and energy-saving effect.

CN116989448BActive Publication Date: 2026-05-26GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
GREE ELECTRIC APPLIANCE INC OF ZHUHAI
Filing Date
2023-07-27
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing air conditioners cannot adaptively adjust indoor air quality after users fall asleep, resulting in a poor sleep experience.

Method used

By acquiring environmental parameters through the air conditioner's built-in sensors and monitoring user status using infrared and PCR radar sensors, the control module intelligently adjusts the air conditioner's air outlet temperature and window status based on indoor and outdoor temperature and weather data, thus achieving joint control of the air conditioner and windows.

Benefits of technology

It improves air quality, provides a better sleep experience, and achieves adaptive adjustment and energy-saving effects for air conditioning.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention provides an adaptive air conditioning adjustment method and system, and an air conditioner. The method includes: S100, acquiring environmental parameters of the environment where the air conditioner is located; S200, controlling the operating state of the air conditioner according to the environmental parameters, and / or controlling the opening and closing of the window in the space where the air conditioner is located. This invention connects the air conditioner and the window via a wireless communication module, installs a WIFI module on the air conditioner and temperature sensors inside and outside the window, and then sends the information to a control module. The control module determines whether it is suitable to open the window or adjust the air conditioner's air outlet temperature based on indoor and outdoor environmental temperature data and outdoor weather data, and sends out the result to achieve intelligent control of the air conditioner and window opening and closing, allowing air circulation, improving air quality, and providing people with the best sleep experience.
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Description

Technical Field

[0001] This invention relates to the field of design technology for joint control schemes of air conditioners and windows, specifically to an adaptive adjustment method and system for air conditioners, and an air conditioner. Background Technology

[0002] With the development of technology, air conditioning control technology is also advancing rapidly. As a household or commercial air humidity and temperature regulating device, air conditioners are increasingly used in various households. However, many air conditioners cannot automatically regulate indoor air quality when people are sleeping, resulting in poor sleep experience for users (for example, feeling cold or hot in the second half of the night).

[0003] Therefore, existing technologies still need further development. Summary of the Invention

[0004] The purpose of this invention is to overcome the above-mentioned technical deficiencies and provide an air conditioner adaptive adjustment method and system, and an air conditioner, to solve the problem that existing air conditioners cannot adaptively adjust indoor air quality after the user falls asleep, resulting in a poor sleep experience for the user.

[0005] To achieve the above-mentioned technical objectives, according to a first aspect of the present invention, an adaptive air conditioning adjustment method is provided, comprising:

[0006] S100: Obtain environmental parameters of the environment where the air conditioner is located;

[0007] S200. Based on the environmental parameters, control the operating status of the air conditioner, and / or control the opening and closing of the windows in the space where the air conditioner is located.

[0008] Specifically, in step S100, obtaining environmental parameters of the environment where the air conditioner is located includes:

[0009] The current indoor ambient temperature is obtained through the indoor ambient temperature sensor built into the air conditioner;

[0010] The current outdoor ambient temperature is obtained through the outdoor ambient temperature sensor built into the air conditioner;

[0011] In cooling mode, when the indoor ambient temperature is higher than the outdoor ambient temperature, outdoor weather parameters are obtained via network connection.

[0012] Specifically, the method further includes:

[0013] If the outdoor air quality is excellent and there is no rain, the control module determines that it is suitable to open the window, outputs a control signal for opening the window, and controls the window to open.

[0014] Specifically, S200 further includes:

[0015] Obtain the user-defined indoor target temperature;

[0016] Calculate the difference between the current indoor ambient temperature and the target indoor temperature;

[0017] If the absolute value of the difference is greater than the first preset threshold, it is determined that the air conditioner's outlet temperature needs to be adjusted, and the air conditioner's outlet temperature is adjusted according to the indoor ambient temperature and the indoor target temperature.

[0018] If the absolute value of the difference is less than or equal to the first preset threshold, the current operating state of the air conditioner is maintained.

[0019] Specifically, adjusting the air outlet temperature of the air conditioner based on the indoor ambient temperature and the target indoor temperature includes:

[0020] If the indoor ambient temperature is higher than the target indoor temperature setting, reduce the air conditioner's outlet temperature.

[0021] If the indoor temperature is less than or equal to the target indoor temperature, increase the air conditioner's outlet temperature.

[0022] Specifically, the process preceding S100 includes:

[0023] S10. Obtain the user-set air conditioner operating mode, determine whether the user-set air conditioner operating mode is a timed shutdown mode, if so, obtain the current time data and determine whether the current time data is the timed shutdown time of the air conditioner, if so, output a control signal related to controlling the air conditioner to shut down, control the air conditioner to shut down, and obtain the user-set window operating mode, determine whether the window is in automatic opening mode, if so, execute step S100; if not, the current window is in timed opening mode, obtain the current time data and determine whether the current time data is the timed opening time of the window, if so, execute step S100.

[0024] Specifically, before S10, the following is included:

[0025] S1. Acquire human body thermal radiation data and respiratory rate data;

[0026] S2. Determine whether the user has entered sleep based on the body's thermal radiation data and respiratory rate data;

[0027] S3. Based on the judgment result, output a control signal regarding whether to control the air conditioner to enter sleep mode, and output a control signal regarding whether to execute S10.

[0028] Specifically, the method further includes:

[0029] The system uses an infrared sensor and a PCR radar sensor placed near the human body to detect the user's thermal radiation and respiratory rate. It acquires the output voltage data of the infrared sensor and the respiratory rate data of the user detected by the PCR radar sensor according to a preset detection cycle. It determines whether the output voltage data of the infrared sensor is greater than a second preset threshold. If not, it uses a timer in the control module to record the duration for which the output voltage data of the infrared sensor is less than or equal to the second preset threshold and determines whether the duration is greater than a third preset threshold. If the duration is greater than the third preset threshold and the respiratory rate data is less than a fourth preset threshold, it outputs a control signal for controlling the air conditioner to enter sleep mode and a control signal for executing S10.

[0030] According to a second aspect of the present invention, an adaptive air conditioning system is provided, comprising:

[0031] The acquisition module is used to acquire indoor and outdoor ambient temperature data and outdoor weather data;

[0032] The control module is used to determine whether it is appropriate to open windows or adjust the air conditioner's air outlet temperature based on indoor and outdoor ambient temperature data and outdoor weather data; or to output control signals regarding whether to control the opening of windows or whether to adjust the air conditioner's air outlet temperature based on the judgment result.

[0033] The execution module is used to control the opening of windows or the adjustment of air conditioning outlet temperature based on control signals regarding whether to control window opening or whether to adjust air conditioning outlet temperature.

[0034] According to a third aspect of the present invention, an air conditioner is provided, comprising: a memory; and a processor, wherein the memory stores computer-readable instructions that, when executed by the processor, implement the above-described adaptive adjustment method for the air conditioner.

[0035] Beneficial effects:

[0036] This invention combines an air conditioner and a window via a wireless communication module. A Wi-Fi module is installed on the air conditioner, and temperature sensors are installed inside and outside the window. The information is then sent to a control module. The control module determines whether it is suitable to open the window or adjust the air conditioner's airflow temperature based on indoor and outdoor ambient temperature data and outdoor weather data. The result is then sent out to achieve intelligent control of the opening and closing of the air conditioner and window, allowing air circulation, improving air quality, and providing people with the best sleep experience. Attached Figure Description

[0037] Figure 1 This is a flowchart of the adaptive air conditioning adjustment method provided in a specific embodiment of the present invention;

[0038] Figure 2This is a structural diagram of the air conditioning adaptive adjustment system provided in a specific embodiment of the present invention. Detailed Implementation

[0039] To enable those skilled in the art to better understand the technical solutions of the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. Based on the embodiments in this application, other similar embodiments obtained by those skilled in the art without creative effort should all fall within the scope of protection of this application. Furthermore, directional terms mentioned in the following embodiments, such as "up," "down," "left," and "right," are only for reference to the directions in the accompanying drawings; therefore, the directional terms used are for illustrative purposes and not for limiting the invention.

[0040] The present invention will be further described below with reference to the accompanying drawings and preferred embodiments.

[0041] Example 1

[0042] Please see Figure 1 This invention provides an adaptive adjustment method for air conditioning, comprising:

[0043] S100: Obtain environmental parameters of the environment where the air conditioner is located.

[0044] It should be noted that the present invention installs a temperature sensor inside and outside the window, and sends the collected temperature information to the control module through a wireless communication module.

[0045] Specifically, in step S100, obtaining environmental parameters of the environment where the air conditioner is located includes:

[0046] The current indoor ambient temperature is obtained through the indoor ambient temperature sensor built into the air conditioner;

[0047] The current outdoor ambient temperature is obtained through the outdoor ambient temperature sensor built into the air conditioner;

[0048] In cooling mode, when the indoor ambient temperature is higher than the outdoor ambient temperature, outdoor weather parameters are obtained via network connection.

[0049] Specifically, the process preceding S100 includes:

[0050] S10. Obtain the user-set air conditioner operating mode, determine whether the user-set air conditioner operating mode is a timed shutdown mode, if so, obtain the current time data and determine whether the current time data is the timed shutdown time of the air conditioner, if so, output a control signal related to controlling the air conditioner to shut down, control the air conditioner to shut down, and obtain the user-set window operating mode, determine whether the window is in automatic opening mode, if so, execute step S100; if not, the current window is in timed opening mode, obtain the current time data and determine whether the current time data is the timed opening time of the window, if so, execute step S100.

[0051] It should be noted that when the air conditioner is in sleep mode, this invention obtains the user-set air conditioner operating mode and determines whether the user-set air conditioner operating mode is a timed shutdown mode. If so, it obtains the current time data and determines whether the current time data is the timed shutdown time of the air conditioner. If so, it outputs a control signal to control the air conditioner to shut down, controls the air conditioner to shut down, and obtains the user-set window operating mode and determines whether the window is in automatic opening mode. If so, it executes step S100 to obtain indoor and outdoor ambient temperature data and outdoor weather data, and then determines whether it is suitable to open the window or adjust the air conditioner's air outlet temperature based on the indoor and outdoor ambient temperature data and outdoor weather data. Based on the determination result, it outputs a control signal to control whether to control the window to open or a control signal to control whether to adjust the air conditioner's air outlet temperature.

[0052] If the user-set air conditioner operating mode is not the timed shutdown mode, the control module obtains the user-set air conditioner temperature and calculates the difference between the indoor temperature and the user-set air conditioner temperature. It then determines whether the absolute value of the difference is greater than a first preset threshold. If the absolute value of the difference is greater than the first preset threshold, it determines that the air conditioner outlet temperature needs to be adjusted. The control module then determines whether the indoor temperature is greater than the user-set air conditioner temperature and outputs a control signal to increase or decrease the air conditioner outlet temperature based on the determination result. If the absolute value of the difference is less than or equal to the first preset threshold, it determines that the air conditioner outlet temperature does not need to be adjusted.

[0053] Understandably, in sleep mode, the control module determines whether the air conditioner is in timed shutdown mode. If it is in timed shutdown mode and the timer has been reached, the control module issues a shutdown command to turn off the air conditioner. If the timer has not been reached or the air conditioner is not in timed shutdown mode, the control module determines whether the absolute value of the difference between the indoor temperature and the set temperature is greater than 0.5 degrees Celsius. If this condition is not met, if the indoor temperature is higher than the set temperature, the air conditioner's air outlet temperature will decrease; if the indoor temperature is lower than the set temperature, the air conditioner's air outlet temperature will increase.

[0054] Understandably, if the window is in automatic opening mode, the control module determines whether the indoor temperature is higher than the outdoor temperature. If it is, the control module determines whether the weather outside is good and not raining. If so, the control module sends an opening command to the window drive module via the wireless communication module. The window drive module outputs a drive signal to drive the window drive motor to open the window. If none of the conditions are met, the window will not open and the control module will repeat the determination until the conditions are met and the window is opened.

[0055] If the window is in timed opening mode and the timer expires, the control module determines whether the weather outside is favorable and not raining. If so, the processing center sends an opening command to the window drive module via the wireless communication module. The window drive module outputs a drive signal to drive the window drive motor to open the window. If the outdoor environmental conditions do not meet the requirements or the timer expires, the processing center repeats the judgment until the conditions are met and the window is opened.

[0056] Specifically, before S10, the following is included:

[0057] S1. Acquire human body thermal radiation data and respiratory rate data;

[0058] S2. Determine whether the user has entered sleep based on the body's thermal radiation data and respiratory rate data;

[0059] S3. Based on the judgment result, output a control signal regarding whether to control the air conditioner to enter sleep mode, and output a control signal regarding whether to execute S10.

[0060] It should be noted here that step S10 includes the following:

[0061] The system presets a first preset threshold, a second preset threshold, a third preset threshold, a fourth preset threshold, and a preset detection period. The second preset threshold is specifically set based on the specific model and parameters of the infrared sensor and the incremental change in infrared radiation generated when the human body moves. The incremental change in infrared radiation generated when the human body moves is obtained by using the actual infrared sensor to record the incremental change in infrared radiation generated when the human body moves multiple times and the output voltage data of the infrared sensor through multiple experiments, and the minimum value among them is used as the second preset threshold.

[0062] It should be noted that, in this invention, the first preset threshold is preferably 0.5 degrees Celsius, the third preset threshold is preferably 30 minutes, the fourth preset threshold is preferably 20 times per minute, and the preset detection cycle is preferably 1 second.

[0063] It is understood that the first preset threshold of 0.5 degrees Celsius, the third preset threshold of 30 minutes, the fourth preset threshold of 20 times per minute, and the preset detection cycle of 1 second are parameters that were determined by the technical personnel of the present invention through a large number of experiments on the sleep characteristics of the human body. The parameters used can better determine whether the user has fallen asleep, and can better detect the user's thermal radiation and respiratory rate, further improving the detection reliability of the present invention.

[0064] Specifically, the method further includes:

[0065] The system uses an infrared sensor and a PCR radar sensor placed near the human body to detect the user's thermal radiation and respiratory rate. It acquires the output voltage data of the infrared sensor and the respiratory rate data of the user detected by the PCR radar sensor according to a preset detection cycle. It determines whether the output voltage data of the infrared sensor is greater than a second preset threshold. If not, it uses a timer in the control module to record the duration for which the output voltage data of the infrared sensor is less than or equal to the second preset threshold and determines whether the duration is greater than a third preset threshold. If the duration is greater than the third preset threshold and the respiratory rate data is less than a fourth preset threshold, it outputs a control signal for controlling the air conditioner to enter sleep mode and a control signal for executing S10.

[0066] It should be noted that since the human body generates infrared radiation during movement, the infrared sensor can detect changes in this radiation to determine the movement of the human body. When the output voltage data of the infrared sensor is greater than the second preset threshold, it proves that the user has moved and has not fallen asleep. When the output voltage data of the infrared sensor is less than the second preset threshold, it proves that the user has not moved. If the duration is greater than the third preset threshold, it proves that the user has not moved within 30 minutes. At this point, it is preliminarily determined that the user has entered a sleep state. Then, the next step is to determine whether the user's breathing rate is less than the fourth preset threshold, that is, whether the user's breathing rate is less than 20 breaths per minute. If so, it is determined that the user has entered a sleep state, and the control module outputs control signals for controlling the air conditioner to enter sleep mode and outputs control signals for executing S10.

[0067] S200: Determine whether it is suitable to open windows or adjust the air conditioner's air outlet temperature based on indoor and outdoor ambient temperature data and outdoor weather data.

[0068] Specifically, S200 includes:

[0069] The system determines whether the indoor temperature is higher than the outdoor temperature. If so, it connects the air conditioner to the internet using the WIFI module in the air conditioner's control module. The control module then obtains outdoor weather data via the internet, including outdoor rainfall data and outdoor air quality data. Based on the outdoor rainfall data and outdoor air quality data, the control module determines whether it is suitable to open the windows.

[0070] Specifically, the method further includes:

[0071] If the outdoor air quality is excellent and there is no rain, the control module determines that it is suitable to open the window, outputs a control signal for opening the window, and controls the window to open.

[0072] Specifically, S200 further includes:

[0073] Obtain the user-defined indoor target temperature;

[0074] Calculate the difference between the current indoor ambient temperature and the target indoor temperature;

[0075] If the absolute value of the difference is greater than the first preset threshold, it is determined that the air conditioner's outlet temperature needs to be adjusted, and the air conditioner's outlet temperature is adjusted according to the indoor ambient temperature and the indoor target temperature.

[0076] If the absolute value of the difference is less than or equal to the first preset threshold, the current operating state of the air conditioner is maintained.

[0077] Specifically, adjusting the air outlet temperature of the air conditioner based on the indoor ambient temperature and the target indoor temperature includes:

[0078] If the indoor ambient temperature is higher than the target indoor temperature setting, reduce the air conditioner's outlet temperature.

[0079] If the indoor temperature is less than or equal to the target indoor temperature, increase the air conditioner's outlet temperature.

[0080] Specifically, the method further includes:

[0081] If the indoor temperature is higher than the air conditioning temperature set by the user, the control module outputs a control signal to reduce the air conditioning outlet temperature, and the control module controls the air conditioning outlet temperature to decrease.

[0082] If the indoor temperature is lower than the user-set air conditioning temperature, the control module outputs a control signal to increase the air outlet temperature, thereby increasing the air outlet temperature of the air conditioner.

[0083] It is understood that the present invention monitors people's status by installing an infrared sensor module and a PCR radar sensor module on the air conditioner so that the air conditioner can automatically enter sleep mode. The sleep mode can be set according to the user's preferences. After entering sleep mode, the air conditioner can automatically adjust the temperature and turn off at a set time to achieve energy saving.

[0084] It should be noted that this invention combines an air conditioner and a window through a wireless communication module. A WIFI module is installed on the air conditioner and temperature sensors are installed inside and outside the window. The information is then sent to a control module. The control module determines whether it is suitable to open the window or adjust the air conditioner's air outlet temperature based on indoor and outdoor ambient temperature data and outdoor weather data. The result of the determination is sent out to realize intelligent control of the opening and closing of the air conditioner and window, allowing air circulation, improving air quality, and providing people with the best sleep experience.

[0085] Example 2

[0086] Please continue reading. Figure 1 Embodiment 1 of the present invention adopts the air conditioning adaptive adjustment method described in Embodiment 1. The difference between Embodiment 2 and Embodiment 1 is that the WIFI module of the present invention can connect to the user's mobile phone, and the user can set sleep mode preferences on the mobile phone, such as setting the temperature during sleep, whether to turn off the air conditioner at a time, the timer, and selecting whether the window will open automatically or at a time after the air conditioner is turned off, and the window timer.

[0087] Users can set the window opening mode to be automatic or timed. When set to automatic, after the air conditioner is turned off, the control module continuously judges the indoor and outdoor temperature difference and the weather conditions outside the window. When both are suitable, the control module sends an opening command to open the window. When set to timed opening mode, after the air conditioner is turned off, the control module continuously judges the weather conditions outside the window after the timer expires. When the weather conditions are deemed suitable, the control module sends an opening command to open the window.

[0088] It is understood that this invention monitors people's status by installing infrared sensor modules and PCR radar sensor modules on the air conditioner to enable the air conditioner to automatically enter sleep mode. The sleep mode can be set according to user preferences. Once in sleep mode, the air conditioner automatically adjusts the temperature and shuts off at a set time to achieve energy savings. This invention further improves its usability and intelligence through the above technical solution, significantly enhancing the user's sleep experience.

[0089] Example 3

[0090] Please see Figure 2 The present invention provides another embodiment, which provides an air conditioning adaptive adjustment system, the air conditioning adaptive adjustment system comprising:

[0091] The acquisition module 100 is used to acquire environmental parameters of the environment where the air conditioner is located.

[0092] The control module 200 controls the operating status of the air conditioner 300 and / or controls the opening and closing of the window 400 in the space where the air conditioner 300 is located, based on the environmental parameters.

[0093] It should be noted that the system also includes a wireless communication module. The control module 200 includes a window drive module, which includes a window drive motor. The control module 200 is communicatively connected to the window drive module via the wireless communication module. The window drive module and the window drive motor are controllably connected. The window drive module controls the window drive motor to open or close the window 400 according to a control signal regarding whether to control the window 400 to open.

[0094] It should be noted that this invention combines the air conditioner 300 and the window 400 through a wireless communication module. A WIFI module is installed on the air conditioner 300 and temperature sensors are installed inside and outside the window 400. The information is then sent to the control module 200. The control module 200 determines whether it is suitable to open the window 400 or adjust the air outlet temperature of the air conditioner 300 based on indoor and outdoor ambient temperature data and outdoor weather data. The result of the determination is sent out to realize intelligent control of the opening and closing of the air conditioner 300 and the window 400, so as to allow air circulation, improve air quality, and provide people with the best sleep experience.

[0095] Example 4

[0096] In a preferred embodiment, this application also provides an air conditioner, the air conditioner comprising:

[0097] The computer device includes a memory and a processor, wherein the memory stores computer-readable instructions that, when executed by the processor, implement the air conditioning adaptive adjustment method. The computer device can be broadly categorized as a server, terminal, or any other electronic device with the necessary computing and / or processing capabilities. In one embodiment, the computer device may include a processor, memory, network interface, communication interface, etc., connected via a system bus. The processor of the computer device can be used to provide the necessary computing, processing, and / or control capabilities. The memory of the computer device may include a non-volatile storage medium and internal memory. The non-volatile storage medium may store an operating system, computer programs, etc. The internal memory can provide an environment for the operation of the operating system and computer programs in the non-volatile storage medium. The network interface and communication interface of the computer device can be used to connect and communicate with external devices via a network. When the computer program is executed by the processor, it performs the steps of the method of the present invention.

[0098] This invention can be implemented as a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, causes the steps of the methods of embodiments of the invention to be performed. In one embodiment, the computer program is distributed across multiple network-coupled computer devices or processors, such that the computer program is stored, accessed, and executed in a distributed manner by one or more computer devices or processors. A single method step / operation, or two or more method steps / operations, may be executed by a single computer device or processor or by two or more computer devices or processors. One or more method steps / operations may be executed by one or more computer devices or processors, and one or more other method steps / operations may be executed by one or more other computer devices or processors. One or more computer devices or processors may execute a single method step / operation, or execute two or more method steps / operations.

[0099] Those skilled in the art will understand that the method steps of this invention can be performed by a computer program instructing related hardware, such as a computer device or processor, to perform the steps of this invention when executed. Depending on the context, any references herein to memory, storage, databases, or other media may include non-volatile and / or volatile memory. Examples of non-volatile memory include read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM), flash memory, magnetic tape, floppy disk, magneto-optical data storage device, optical data storage device, hard disk, solid-state drive, etc. Examples of volatile memory include random access memory (RAM), external cache memory, etc.

[0100] It should be noted that this invention combines an air conditioner and a window through a wireless communication module. A WIFI module is installed on the air conditioner and temperature sensors are installed inside and outside the window. The information is then sent to a control module. The control module determines whether it is suitable to open the window or adjust the air conditioner's air outlet temperature based on indoor and outdoor ambient temperature data and outdoor weather data. The result of the determination is sent out to realize intelligent control of the opening and closing of the air conditioner and window, allowing air circulation, improving air quality, and providing people with the best sleep experience.

[0101] The technical features described above can be combined arbitrarily. Although not all possible combinations of these technical features are described, any combination of these technical features should be considered to be covered by this specification, provided that such combination does not contain contradictions.

[0102] The specific embodiments of the present invention described above do not constitute a limitation on the scope of protection of the present invention. Any other corresponding changes and modifications made in accordance with the technical concept of the present invention should be included within the scope of protection of the claims of the present invention.

Claims

1. An air conditioner adaptive regulation method, characterized by, include: S100: Obtain environmental parameters of the environment where the air conditioner is located; S200. Based on the environmental parameters, control the operating status of the air conditioner, and / or control the opening and closing of the windows in the space where the air conditioner is located. The preceding step of S100 includes: S10. When the air conditioner is in sleep mode, obtain the user-set air conditioner operating mode, determine whether the user-set air conditioner operating mode is a timed shutdown mode, if so, obtain the current time data and determine whether the current time data is the timed shutdown time of the air conditioner, if so, output a control signal related to controlling the air conditioner to shut down, control the air conditioner to shut down, obtain the user-set window operating mode, and determine whether the window is in automatic opening mode, if so, execute step S100; if not, the current window is in timed opening mode, obtain the current time data and determine whether the current time data is the timed opening time of the window, if so, execute step S100.

2. The method of claim 1, wherein, The environmental parameters of the environment where the air conditioner is located are obtained in step S100, including: The current indoor ambient temperature is obtained through the indoor ambient temperature sensor built into the air conditioner; The current outdoor ambient temperature is obtained through the outdoor ambient temperature sensor built into the air conditioner; In cooling mode, when the current indoor ambient temperature is higher than the current outdoor ambient temperature, outdoor weather parameters are obtained via network connection.

3. The method according to claim 2, characterized in that, The method further includes: If the outdoor air quality is excellent and there is no rain, the control module determines that it is suitable to open the window, outputs a control signal for opening the window, and controls the window to open.

4. The method according to claim 1, characterized in that, The S200 further includes: Obtain the user-defined indoor target temperature; Calculate the difference between the current indoor ambient temperature and the target indoor temperature; If the absolute value of the difference is greater than the first preset threshold, it is determined that the air conditioner's air outlet temperature needs to be adjusted, and the air conditioner's air outlet temperature is adjusted according to the current indoor ambient temperature and the indoor target temperature. If the absolute value of the difference is less than or equal to the first preset threshold, the current operating state of the air conditioner is maintained.

5. The method according to claim 4, characterized in that, The step of adjusting the air conditioner's outlet temperature based on the current indoor ambient temperature and the target indoor temperature includes: If the current indoor ambient temperature is higher than the target indoor temperature, lower the air conditioner's outlet temperature. If the current indoor ambient temperature is less than or equal to the target indoor temperature, increase the air conditioner's outlet temperature.

6. The method according to claim 1, characterized in that, Before S10, the following is included: S1. Acquire human body thermal radiation data and respiratory rate data; S2. Determine whether the user has entered sleep based on the body's thermal radiation data and respiratory rate data; S3. Based on the judgment result, output a control signal regarding whether to control the air conditioner to enter sleep mode, and output a control signal regarding whether to execute S10.

7. The method according to claim 6, characterized in that, The method further includes: The system uses an infrared sensor and a PCR radar sensor placed near the human body to detect the user's thermal radiation and respiratory rate. It acquires the output voltage data of the infrared sensor and the respiratory rate data of the user detected by the PCR radar sensor according to a preset detection cycle. It determines whether the output voltage data of the infrared sensor is greater than a second preset threshold. If not, it uses a timer in the control module to record the duration for which the output voltage data of the infrared sensor is less than or equal to the second preset threshold and determines whether the duration is greater than a third preset threshold. If the duration is greater than the third preset threshold and the respiratory rate data is less than a fourth preset threshold, it outputs a control signal for controlling the air conditioner to enter sleep mode and a control signal for executing S10.

8. An adaptive air conditioning system, characterized in that, The air conditioning adaptive adjustment method according to any one of claims 1-7 includes: The acquisition module is used to acquire environmental parameters of the environment where the air conditioner is located. The control module controls the operating status of the air conditioner and / or controls the opening and closing of the windows in the space where the air conditioner is located, based on the environmental parameters.

9. An air conditioner, characterized in that, include: Memory; The processor, wherein the memory stores computer-readable instructions that, when executed by the processor, implement the air conditioning adaptive adjustment method according to any one of claims 1 to 7.