Air conditioner autonomous adjusting system control method and related device

By obtaining and judging the target parameters of the air conditioner and obtaining the matching CVP parameters, the accurate and automatic adjustment of the air conditioner under different environmental conditions is solved, and the problem of inaccurate automatic adjustment of the air conditioner in the existing technology is solved, and the control accuracy and efficiency of the air conditioner are improved.

CN120368523APending Publication Date: 2025-07-25QINGDAO HAIER AIR CONDITIONING ELECTRONICS CO LTD +2
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Patent Information

Application Number
CN202411629648.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-11-14
Publication Date
2025-07-25

AI Technical Summary

Technical Problem

The existing air-conditioning frequency conversion technology is not automatically adjusted accurately when the outdoor annular temperature changes, resulting in insufficient control volume.

Method used

By obtaining target parameters such as indoor and outdoor ambient temperature, current operating frequency and exhaust temperature, we can determine whether the preset conditions are met, and obtain matching CVP parameters to control the air conditioner to enter the autonomous adjustment operation mode, including the adjustment of parameters such as the external unit operating frequency, fan speed, valve opening and static pressure.

Benefits of technology

It realizes accurate and automatic adjustment of air conditioners under different environmental conditions, improving control accuracy and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides an air conditioner autonomous adjusting system control method and a related device, and relates to the technical field of air conditioning equipment, after an autonomous adjusting instruction is obtained, target parameters (indoor environment temperature, outdoor environment temperature, current operation frequency and exhaust temperature) are obtained, and when the target parameters meet preset conditions, the air conditioner is controlled to be in an autonomous adjusting state. CVP parameters matched with the met preset conditions are obtained, the air conditioner is controlled to enter an autonomous adjusting operation mode based on the CVP parameters, and the CVP parameters comprise the outdoor unit operation frequency, the outdoor unit fan rotating speed, the outdoor unit valve opening degree, the static pressure and the indoor unit fan rotating speed. Whether the air conditioner needs to be controlled to enter the autonomous adjustment operation mode or not is judged in a multi-dimensional judgment mode, and by means of the mode, accurate automatic adjustment of the air conditioner can be achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of air conditioning equipment, and particularly relates to a control method and related device for an air conditioner independent regulation system. Background Art

[0002] The frequency conversion technology of air conditioners generally refers to the application of frequency conversion technology in air conditioners, that is, the air conditioner frequency conversion technology. This technology controls the output power of the air conditioner by changing the speed of the motor (mainly the compressor), so as to achieve a more efficient and energy-saving cooling or heating effect. The disadvantage of the current frequency conversion technology on the market is that the automatic adjustment of the air conditioner is not accurate enough. For example, when the outdoor ambient temperature changes, the control amount of the air conditioner is small, making the automatic adjustment of the air conditioner inaccurate. Summary of the Invention

[0003] In view of this, embodiments of the present invention provide a control method and related device for an air conditioner independent regulation system to achieve accurate automatic adjustment of the air conditioner.

[0004] To achieve the above object, embodiments of the present invention provide the following technical solutions:

[0005] A control method for an air conditioner independent regulation system includes:

[0006] Obtain an independent regulation instruction;

[0007] Obtain target parameters, where the target parameters include: indoor environmental temperature, outdoor environmental temperature, current operating frequency, and exhaust temperature;

[0008] Judge whether the target parameters meet preset conditions;

[0009] When the preset conditions are met, obtain CVP parameters matching the met preset conditions, and control the air conditioner to enter the independent regulation operation mode based on the CVP parameters. The CVP parameters include: outdoor unit operating frequency, outdoor unit fan speed, outdoor unit valve opening, static pressure, and indoor unit fan speed.

[0010] Optionally, in the above control method for an air conditioner independent regulation system, judging whether the target parameters meet preset conditions includes:

[0011] Determine the working mode of the air conditioner, where the working mode includes a cooling mode and a heating mode;

[0012] When the working mode is the cooling mode, judge whether the target parameters meet the first preset conditions;

[0013] When the working mode is the heating mode, judge whether the target parameters meet the second preset conditions.

[0014] Optionally, in the above control method of the air conditioner autonomous regulation system, the first preset condition includes: N groups of sub-preset conditions composed of indoor environmental temperature, outdoor environmental temperature, current operating frequency, and exhaust temperature, and the second preset condition includes: M groups of sub-preset conditions composed of indoor environmental temperature, outdoor environmental temperature, current operating frequency, and exhaust temperature, where both M and N are positive integers greater than 1;

[0015] Determining whether the target parameter satisfies the first preset condition includes: Determining whether the target parameter satisfies the first preset condition includes:

[0016] Determining whether the target parameter satisfies any one of the sub-preset conditions in the first preset condition, and when any one of the sub-preset conditions is satisfied, determining whether the target parameter satisfies the first preset condition;

[0017] Determining whether the target parameter satisfies the second preset condition includes: Determining whether the target parameter satisfies the first preset condition includes:

[0018] Determining whether the target parameter satisfies any one of the sub-preset conditions in the second preset condition, and when any one of the sub-preset conditions is satisfied, determining whether the target parameter satisfies the second preset condition.

[0019] Optionally, in the above control method of the air conditioner autonomous regulation system, the sub-preset conditions in the first preset condition include:

[0020] The first sub-preset condition: The outdoor environmental temperature is within the first preset range, the indoor environmental temperature is within the first indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature;

[0021] The second sub-preset condition: The outdoor environmental temperature is within the second preset range, the indoor environmental temperature is within the first indoor temperature threshold range, the current operating frequency is greater than the second preset frequency, and the exhaust temperature is greater than the second preset temperature;

[0022] The third sub-preset condition: The outdoor environmental temperature is within the third preset range, the indoor environmental temperature is within the first indoor temperature threshold range, the current operating frequency is greater than the third preset frequency, and the exhaust temperature is greater than the first preset temperature;

[0023] Among them, the minimum value in the first preset range is greater than the maximum value in the second preset range, and the minimum value in the second preset range is greater than the maximum value in the third preset range;

[0024] The first preset frequency is greater than the second preset frequency, and the second preset frequency is greater than the third preset frequency;

[0025] The first preset temperature is greater than the second preset temperature;

[0026] The sub - preset conditions in the second preset condition include:

[0027] The fourth sub - preset condition: The outdoor ambient temperature is within the fourth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature;

[0028] The fifth sub - preset condition: The outdoor ambient temperature is within the fifth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the second preset frequency, and the exhaust temperature is greater than the second preset temperature;

[0029] The sixth sub - preset condition: The outdoor ambient temperature is within the sixth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature;

[0030] The seventh sub - preset condition: The outdoor ambient temperature is within the sixth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature;

[0031] Among them, the minimum value within the fourth preset range is greater than the maximum value within the fifth preset range, the minimum value within the fifth preset range is greater than the maximum value within the sixth preset range, and the minimum value within the sixth preset range is greater than the maximum value within the seventh preset range.

[0032] Optionally, in the above - mentioned air - conditioner autonomous regulation system control method, obtaining the CVP parameters matching the satisfied preset conditions includes:

[0033] When the target parameter satisfies the first sub - preset condition, the CVP parameters matching the first sub - preset condition include: The outdoor unit operating frequency is the first preset frequency, the outdoor unit fan speed is high speed, the outdoor unit valve opening is the first preset opening, the static pressure is high static pressure, and the indoor unit fan speed is high speed;

[0034] When the target parameter satisfies the second sub - preset condition, the CVP parameters matching the second sub - preset condition include: The outdoor unit operating frequency is the second preset frequency, the outdoor unit fan speed is medium speed, the outdoor unit valve opening is the second preset opening, the static pressure is medium static pressure, and the indoor unit fan speed is medium speed;

[0035] When the target parameter satisfies the third sub - preset condition, the CVP parameters matching the third sub - preset condition include: The outdoor unit operating frequency is the third preset frequency, the outdoor unit fan speed is low speed, the outdoor unit valve opening is the third preset opening, the static pressure is low static pressure, and the indoor unit fan speed is low speed;

[0036] When the target parameter meets the fourth sub - preset condition, the CVP parameters matching the fourth sub - preset condition include: the outdoor unit operating frequency is the fourth preset frequency, the outdoor unit fan speed is high speed, the outdoor unit valve opening is the fourth preset opening, the static pressure is high static pressure, and the indoor unit fan speed is high speed;

[0037] When the target parameter meets the fifth sub - preset condition, the CVP parameters matching the fifth sub - preset condition include: the outdoor unit operating frequency is the fifth preset frequency, the outdoor unit fan speed is medium speed, the outdoor unit valve opening is the fifth preset opening, the static pressure is medium static pressure, and the indoor unit fan speed is medium speed;

[0038] When the target parameter meets the sixth sub - preset condition, the CVP parameters matching the sixth sub - preset condition include: the outdoor unit operating frequency is the sixth preset frequency, the outdoor unit fan speed is high speed, the outdoor unit valve opening is the sixth preset opening, the static pressure is high static pressure, and the indoor unit fan speed is high speed;

[0039] When the target parameter meets the seventh sub - preset condition, the CVP parameters matching the seventh sub - preset condition include: the outdoor unit operating frequency is the seventh preset frequency, the outdoor unit fan speed is high speed, the outdoor unit valve opening is the seventh preset opening, the static pressure is high static pressure, and the indoor unit fan speed is high speed.

[0040] Optionally, in the above - mentioned air - conditioner self - regulation system control method, when a preset condition is met, obtain the CVP parameters matching the met preset condition, and control the air - conditioner to enter the self - regulation operation mode based on the CVP parameters, including:

[0041] When a preset condition is met, start timing;

[0042] When the timing duration reaches the preset duration, obtain the CVP parameters matching the met preset condition, and control the air - conditioner to enter the self - regulation operation mode based on the CVP parameters.

[0043] An air - conditioner self - regulation system control device includes:

[0044] An instruction acquisition unit for obtaining a self - regulation instruction;

[0045] A data acquisition unit for obtaining target parameters, where the target parameters include: indoor environmental temperature, outdoor environmental temperature, current operating frequency, and exhaust temperature;

[0046] A judgment unit for judging whether the target parameter meets the preset condition;

[0047] An autonomous regulation control unit, configured to obtain CVP parameters matching the satisfied preset condition when the preset condition is satisfied, and control the air conditioner to enter the autonomous regulation operation mode based on the CVP parameters, where the CVP parameters include: the outdoor unit operation frequency, the outdoor unit fan rotation speed, the outdoor unit valve opening degree, the static pressure, and the indoor unit fan rotation speed.

[0048] A computer program product includes computer-readable instructions that, when running on an electronic device, enable the electronic device to implement the air conditioner autonomous regulation system control method described in any one of the above.

[0049] An electronic device includes at least one processor and a memory connected to the processor, where:

[0050] The memory is used to store a computer program;

[0051] The processor is used to execute the computer program so that the electronic device can implement the air conditioner autonomous regulation system control method described in any one of the above.

[0052] An air conditioner applies the electronic device

[0053] Based on the above technical solution, in the above solution provided by the embodiments of the present invention, after obtaining the autonomous regulation instruction, target parameters (indoor environmental temperature, outdoor environmental temperature, current operation frequency, and exhaust temperature) are obtained. When the target parameters satisfy the preset condition, CVP parameters matching the satisfied preset condition are obtained, and the air conditioner is controlled to enter the autonomous regulation operation mode based on the CVP parameters. The CVP parameters include: the outdoor unit operation frequency, the outdoor unit fan rotation speed, the outdoor unit valve opening degree, the static pressure, and the indoor unit fan rotation speed. This application uses a multi-dimensional judgment method to determine whether to control the air conditioner to enter the autonomous regulation operation mode, and this method can achieve precise automatic adjustment of the air conditioner. Description of the Drawings

[0054] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only the embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on the provided drawings without creative efforts.

[0055] Figure 1 It is a framework diagram of a system for implementing the air conditioner autonomous regulation system control method;

[0056] Figure 2 It is a structural schematic diagram of a device for implementing the air conditioner autonomous regulation system control method;

[0057] Figure 3 Schematic structural diagram of a server for implementing a control method of an air conditioner autonomous regulation system;

[0058] Figure 4 Schematic flowchart of a control method of an air conditioner autonomous regulation system provided by an embodiment of the present application;

[0059] Figure 5 Schematic structural diagram of a control device of an air conditioner autonomous regulation system provided by an embodiment of the present application;

[0060] Figure 6 Schematic structural diagram of an electronic device disclosed by an embodiment of the present application. Detailed implementation manners

[0061] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0062] The present application proposes a control method and related device for an air conditioner autonomous regulation system. By coupling three control variables, namely external / internal loop temperature, compressor frequency, and exhaust gas temperature, after the air conditioner remote control issues a CVP command, the air conditioner indoor unit program transmits the command to the air conditioner outdoor unit. When the air conditioner outdoor unit receives the command sent by the air conditioner indoor unit, it starts to logically judge whether the three conditions for entering CVP are satisfied and synchronously feedbacks to the indoor unit (i.e., the three control variables of external / internal loop temperature, compressor frequency, and exhaust gas temperature). If satisfied, the CVP control logic can be switched to achieve the requirement of faster and more accurate automatic regulation of the air conditioner system frequency modulation mode.

[0063] The present application can be applied in the field of device detection. Specifically, this solution can be but is not limited to being applied in a terminal device or a server with data processing capabilities.

[0064] See Figure 1 , Figure 1 shows a schematic diagram of a system architecture for implementing the control method of the air conditioner autonomous regulation system. The system may include a terminal 100 and a server 200. Among them, the terminal 100 is an intelligent terminal capable of data processing, and the server 200 may include one or more servers ( Figure 1Taking a server as an example for illustration, both the terminal 100 and the server 200 can individually or in cooperation implement the air conditioner autonomous regulation system control method. When they cooperate with each other, the terminal 100 is responsible for collecting relevant instructions, target parameters, and uploading the target parameters; the server then processes the target parameters through internal program code to implement each step of the air conditioner autonomous regulation system control method.

[0065] When the terminal 100 individually implements the air conditioner autonomous regulation system control method, directly flash the program for the air conditioner autonomous regulation system control method into the controller of the terminal 100, and after obtaining the instructions and target parameters, execute these programs.

[0066] When the terminal 100 and the server 200 cooperate with each other to implement the air conditioner autonomous regulation system control method, an application program for collecting instructions and target parameters can be installed on the terminal 100. The above application program and web page can provide an interface. The user can input relevant instructions on the interface or through a remote control. The terminal 100 can collect the target parameters by the processor or relevant sensors, and display them to the user through this interface, and then send the above target parameters to the server 200. The server 200 can execute each step of the simulation test method based on the received real physical scenario data, obtain the simulation result, and return the simulation result to the terminal 100.

[0067] It should be understood that in some alternative implementations, the terminal 100 can also complete the action of obtaining the processing result based on the received target parameters by itself without the cooperation of the server, which is not limited in the embodiments of the present application.

[0068] Next, describe Figure 1 the product form of the terminal 100 in

[0069] The terminal 100 in the embodiments of the present application can be a smart module with data processing function built into the air conditioner. Figure 2 Fig. shows an optional schematic diagram of the hardware structure of the terminal 100.

[0070] Refer to Figure 2 As shown, the terminal 100 can include a radio frequency unit 110, a memory 120, an input unit 130, a display unit 140, a camera 150 (optional), an audio circuit 160 (optional), a speaker 161 (optional), a microphone 162 (optional), a headphone jack 163 (optional), a processor 170, an external interface 180, a power supply 190, and other components. Those skilled in the art can understand, Figure 2These are merely examples of a terminal or a multifunctional device, and do not constitute a limitation thereto. It may include more or fewer components than those shown, or combine certain components, or have different components.

[0071] The input unit 130 can be used to receive input digital or character information, and generate key signal inputs related to user settings and function controls of the portable multifunctional device. Specifically, the input unit 130 may include a touch screen 131 (optional) and / or other input devices 132. The touch screen 131 can collect touch operations of the user thereon or nearby (such as operations of the user using any suitable object such as a finger, a joint, a stylus, etc. on or near the touch screen), and drive corresponding connection devices according to a pre-set program. The touch screen can detect the touch action of the user on the touch screen, convert the touch action into a touch signal and send it to the processor 170, and can receive and execute commands sent by the processor 170; the touch signal at least includes contact coordinate information. The touch screen 131 can provide an input interface and an output interface between the terminal 100 and the user. In addition, various types such as resistive, capacitive, infrared, and surface acoustic wave can be used to implement the touch screen. In addition to the touch screen 131, the input unit 130 may further include other input devices. Specifically, the other input devices 132 may include, but are not limited to, one or more of a physical keyboard, function keys (such as volume control keys, switch keys, etc.), a trackball, a mouse, a joystick, etc. The user can input relevant control instructions through the input unit 130, and the relevant control instructions include, but are not limited to, autonomous adjustment instructions.

[0072] Among them, the input device 132 can perform data interaction with the vehicle-mounted controller through a wireless network to obtain real physical scene data uploaded by the vehicle-mounted controller end.

[0073] The display unit 140 can be used to display information input by the user, information collected by the vehicle-mounted controller or feedback from the server, various menus of the terminal 100, an interactive interface, file display, and / or the playback of any multimedia file. In the embodiment of the present application, the display unit 140 can be used to display a human-computer interaction interface, the execution result of the vehicle-mounted controller or the terminal 100 executing the air-conditioning autonomous adjustment system control method, etc.

[0074] The memory 120 can be used to store instructions and data. The memory 120 mainly includes an instruction storage area and a data storage area. The data storage area can store various data, such as multimedia files, texts, etc.; the instruction storage area can store software units such as operating systems, applications, instructions required for at least one function, or subsets or extended sets thereof. It can also include non-volatile random access memory; it provides the processor 170 with functions including managing the hardware, software, and data resources in the computing processing device, supporting control software and applications. It is also used for storing multimedia files and storing and running programs and applications.

[0075] The processor 170 is the control center of the terminal 100. It connects various parts of the entire terminal 100 through various interfaces and lines. By running or executing the instructions stored in the memory 120 and calling the data stored in the memory 120, it executes various functions of the terminal 100 (including the function of implementing the simulation test method and collecting data from the vehicle-mounted controller and uploading the data of the real physical scenario) and processes data, thereby controlling the terminal as a whole. Optionally, the processor 170 may include one or more processing units; preferably, the processor 170 may integrate an application processor and a modem processor. Among them, the application processor mainly processes the operating system, user interface, application programs, etc., and the modem processor mainly processes wireless communication. It can be understood that the above-mentioned modem processor may not be integrated into the processor 170. In some embodiments, the processor and the memory can be implemented on a single chip. In some embodiments, they can also be implemented separately on independent chips. The processor 170 can also be used to generate corresponding operation control signals, send them to corresponding components of the computing processing device, read and process the data in the software, especially read and process the data and programs in the memory 120, so that each function module therein executes corresponding functions, thereby controlling the corresponding components to act according to the requirements of the instructions.

[0076] Among them, the memory 120 can be used to store software codes related to implementing the device detection method. The processor 170 can execute the steps of the simulation test method or schedule other units (such as the above-mentioned input unit 130 and display unit 140) to implement corresponding functions.

[0077] The radio frequency unit 110 (optional) can be used for receiving and sending information or signals during a call. For example, after receiving the downlink information from the base station, it is sent to the processor 170 for processing; in addition, the uplink data designed is sent to the base station. Generally, the RF circuit includes but is not limited to an antenna, at least one amplifier, a transceiver, a coupler, a low noise amplifier (LNA), a duplexer, etc. In addition, the radio frequency unit 110 can also communicate with network devices and other devices through wireless communication. This wireless communication can use any communication standard or protocol, including but not limited to Global System of Mobile communication (GSM), General Packet Radio Service (GPRS), Code Division Multiple Access (CDMA), Wideband Code Division Multiple Access (WCDMA), Long Term Evolution (LTE), email, Short Messaging Service (SMS), etc.

[0078] Wherein, in the embodiment of the present application, the radio frequency unit 110 can send the collected target parameters to the server 200 and receive the processing result sent by the server 200. The processing result may include CVP parameters matching the preset conditions satisfied. At this time, the air conditioning system will control the air conditioner to enter the autonomous regulation operation mode based on the CVP parameters.

[0079] It should be understood that the radio frequency unit 110 is optional and can be replaced by other communication interfaces, such as a network port.

[0080] The terminal 100 further includes a power supply 190 (such as a battery) for supplying power to each component. Preferably, the power supply can be logically connected to the processor 170 through a power management system, so as to realize functions such as management of charging, discharging, and power consumption management through the power management system.

[0081] The terminal 100 further includes an external interface 180. The external interface can be a standard Micro USB interface or a multi-pin connector, which can be used to connect the terminal 100 to other devices for communication and can also be used to connect a charger to charge the terminal 100.

[0082] Although not shown, the terminal 100 may further include a flash, a wireless fidelity (WiFi) module, a Bluetooth module, sensors with different functions, etc., which will not be elaborated here. Some or all of the methods described below can be applied to the Figure 2 terminal 100 as shown.

[0083] Next, the product form of the server 200 will be described. Figure 1 in the figure;

[0084] Figure 3 A schematic structural diagram of a server 200 is provided. As shown in Figure 3 the figure, the server 200 includes a bus 201, a processor 202, a communication interface 203, and a memory 204. The processor 202, the memory 204, and the communication interface 203 communicate with each other through the bus 201.

[0085] The bus 201 may be a peripheral component interconnect (PCI) bus or an extended industry standard architecture (EISA) bus, etc. The bus can be divided into an address bus, a data bus, a control bus, etc. For the sake of simplicity of representation, Figure 3 only a thick line is shown in the figure, but it does not mean that there is only one bus or one type of bus.

[0086] The processor 202 may be any one or more of a central processing unit (CPU), a graphics processing unit (GPU), a microprocessor (MP), or a digital signal processor (DSP), etc.

[0087] The memory 204 may include a volatile memory, such as a random access memory (RAM). The memory 204 may also include a non-volatile memory, such as a read-only memory (ROM), a flash memory, a hard disk drive (HDD), or a solid state drive (SSD).

[0088] Among them, the memory 204 can be used to store software codes related to the simulation test method, and the processor 202 can execute the steps of the air conditioner autonomous regulation system control method or schedule other units to implement corresponding functions.

[0089] It should be understood that the above terminal 100 and server 200 can be centralized or distributed devices, and the processors in the above terminal 100 and server 200 (such as the processor 170 and the processor 202) can be hardware circuits (such as application specific integrated circuit (ASIC), field-programmable gate array (FPGA), general processor, digital signal processor (DSP), microprocessor or microcontroller, etc.), or a combination of these hardware circuits. For example, the processor can be a hardware system with the function of executing instructions, such as CPU, DSP, etc., or a hardware system without the function of executing instructions, such as ASIC, FPGA, etc., or a combination of the above hardware system without the function of executing instructions and the hardware system with the function of executing instructions.

[0090] To solve the above problems, an embodiment of the present application provides a control method for an air conditioner autonomous regulation system. The control method for the air conditioner autonomous regulation system in the embodiment of the present application will be introduced in detail below with reference to the accompanying drawings.

[0091] Figure 4 It is a schematic flow chart of a control method for an air conditioner autonomous regulation system provided by an embodiment of the present application. Figure 5 It is a schematic scenario diagram of the control method for the air conditioner autonomous regulation system disclosed in the embodiment of the present application. The control method for the air conditioner autonomous regulation system disclosed in this embodiment is applied to Figure 5 the test terminal shown. As Figure 4 shown, a control method for an air conditioner autonomous regulation system provided by an embodiment of the present application may include steps S401 to S404, and these steps will be described in detail below.

[0092] See Figure 4 , the control method for the air conditioner autonomous regulation system disclosed in the embodiment of the present application may include:

[0093] Step S401: Obtain an autonomous regulation instruction.

[0094] After the air conditioner is turned on, it operates normally. The user can send control commands to the air conditioner through the air conditioner remote control or the air conditioner control panel. The control commands can include autonomous adjustment commands. When the indoor unit program of the air conditioner obtains the autonomous adjustment command (which can be abbreviated as the CVP command), the indoor unit program sends the command to the outdoor unit program. When the outdoor unit program receives the indoor unit command, it will execute the subsequent step process.

[0095] Step S402: Obtain target parameters, where the target parameters include: indoor environmental temperature, outdoor environmental temperature, current operating frequency, and exhaust temperature.

[0096] In the technical solution disclosed in this embodiment, four preset conditions can be used to determine whether to allow the air conditioner to enter the autonomous adjustment mode. These four conditions are: the inner ring temperature condition, the outer ring temperature condition, the operating frequency condition, and the exhaust temperature condition. In order to determine whether the current working condition of the air conditioner meets the above four conditions, it is necessary to first obtain the parameters corresponding to each condition. These parameters are the target parameters, that is, when the autonomous adjustment command is obtained, obtain the indoor environmental temperature, outdoor environmental temperature, current operating frequency of the compressor, and exhaust temperature under the current state of the air conditioner.

[0097] Step S403: Determine whether the target parameters meet the preset conditions.

[0098] After the target parameters are obtained, compare the target parameters with the preset conditions to determine whether the target parameters meet the preset conditions. When the preset conditions are met, enter the subsequent process. When the preset conditions are not met, continue to collect and detect the target parameters until the user cancels the autonomous adjustment command or the target parameters meet the preset conditions. Among them, the preset conditions are preset conditions configured based on the indoor environmental temperature, outdoor environmental temperature, current operating frequency, and exhaust temperature.

[0099] Step S404: When the preset conditions are met, obtain the CVP parameters that match the met preset conditions, and control the air conditioner to enter the autonomous adjustment operation mode based on the CVP parameters.

[0100] When the target parameters meet the preset conditions, it indicates that the air conditioner system meets the conditions for entering the autonomous adjustment mode. At this time, obtain the CVP parameters that match the preset conditions, and control the air conditioner to enter the autonomous adjustment operation mode based on the CVP parameters. The CVP parameters at least include: outdoor unit operating frequency, outdoor unit fan speed, outdoor unit valve opening, static pressure, and indoor unit fan speed. Control the operating state of the air conditioner based on the outdoor unit operating frequency, outdoor unit fan speed, outdoor unit valve opening, static pressure, and indoor unit fan speed. Of course, in addition to the above several parameters, the CVP parameters can also add or delete some parameters according to user needs.

[0101] In the technical solution disclosed in this embodiment, when the autonomous adjustment instruction is obtained, the operating modes of the air conditioner (cooling mode and heating mode) are different, and different preset conditions are used. Therefore, in the above solution, determining whether the target parameter meets the preset condition may specifically include: determining the working mode of the air conditioner, where the working mode includes a cooling mode and a heating mode; when the working mode is the cooling mode, determining whether the target parameter meets the first preset condition; when the working mode is the heating mode, determining whether the target parameter meets the second preset condition. The data types compared by the first preset condition and the second preset condition are the same, but the range values of each target parameter specified in the first preset condition and the second preset condition are different. Moreover, both the first preset condition and the second preset condition correspond to different CVP parameters.

[0102] In this embodiment, the first preset condition may include N groups of sub-preset conditions composed of indoor ambient temperature, outdoor ambient temperature, current operating frequency, and exhaust temperature, and it is necessary to obtain the CVP parameter matching the satisfied sub-preset condition. The second preset condition may include M groups of sub-preset conditions composed of indoor ambient temperature, outdoor ambient temperature, current operating frequency, and exhaust temperature, where both M and N are positive integers greater than 1; determining whether the target parameter meets the first preset condition includes: determining whether the target parameter meets any one of the sub-preset conditions in the first preset condition, and when any one of the sub-preset conditions is met, determining whether the target parameter meets the first preset condition; determining whether the target parameter meets the second preset condition includes: determining whether the target parameter meets the first preset condition, including: determining whether the target parameter meets any one of the sub-preset conditions in the second preset condition, and when any one of the sub-preset conditions is met, determining whether the target parameter meets the second preset condition. That is, as long as the target parameter meets any one of the sub-preset conditions, it is considered that the target parameter meets the preset condition.

[0103] The sub-preset conditions in the first preset condition include:

[0104] First sub-preset condition: The outdoor ambient temperature is within the first preset range, the indoor ambient temperature is within the first indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature;

[0105] Second sub-preset condition: The outdoor ambient temperature is within the second preset range, the indoor ambient temperature is within the first indoor temperature threshold range, the current operating frequency is greater than the second preset frequency, and the exhaust temperature is greater than the second preset temperature;

[0106] The third sub - preset condition: The outdoor ambient temperature is within the third preset range, the indoor ambient temperature is within the first indoor temperature threshold range, the current operating frequency is greater than the third preset frequency, and the exhaust temperature is greater than the first preset temperature;

[0107] Among them, the minimum value within the first preset range is greater than the maximum value within the second preset range, and the minimum value within the second preset range is greater than the maximum value within the third preset range;

[0108] The first preset frequency is greater than the second preset frequency, and the second preset frequency is greater than the third preset frequency;

[0109] The first preset temperature is greater than the second preset temperature;

[0110] The sub - preset conditions in the second preset condition include:

[0111] The fourth sub - preset condition: The outdoor ambient temperature is within the fourth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature;

[0112] The fifth sub - preset condition: The outdoor ambient temperature is within the fifth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the second preset frequency, and the exhaust temperature is greater than the second preset temperature;

[0113] The sixth sub - preset condition: The outdoor ambient temperature is within the sixth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature;

[0114] The seventh sub - preset condition: The outdoor ambient temperature is within the sixth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature;

[0115] Among them, the minimum value within the fourth preset range is greater than the maximum value within the fifth preset range, the minimum value within the fifth preset range is greater than the maximum value within the sixth preset range, and the minimum value within the sixth preset range is greater than the maximum value within the seventh preset range.

[0116] In this embodiment, the preset ranges corresponding to the parameters in different sub-preset conditions are different, and the specific values of each preset range can be configured according to the air conditioner design parameters. For example, the first preset range in the first sub-preset condition can be 35±2°C, the first indoor temperature threshold range can be 27±2°C, the second preset range in the second sub-preset condition can be 28±2°C, the second indoor temperature threshold range can be 27±2°C, the second preset range in the third sub-preset condition can be 20±2°C, the second indoor temperature threshold range can be 27±2°C, the fourth preset range in the fourth sub-preset condition can be 8±2°C, the fourth indoor temperature threshold range can be 21±2°C, the fifth preset range in the fifth sub-preset condition can be 2±3°C, the fifth indoor temperature threshold range can be 21±2°C, the sixth preset range in the sixth sub-preset condition can be -8±2°C, the sixth indoor temperature threshold range can be 21±2°C, the seventh preset range in the seventh sub-preset condition can be -15±2°C, and the seventh indoor temperature threshold range can be 21±2°C. The first preset frequency can be 40% of the highest operating frequency. For example, when the highest operating frequency is 100HZ, the first preset frequency can be 40HZ, the second preset frequency can be 20% of the highest operating frequency, the third preset frequency can be 10% of the highest operating frequency, the fourth preset frequency can be 40% of the highest operating frequency, the fifth preset frequency can be 20% of the highest operating frequency, the sixth preset frequency can be 40% of the highest operating frequency, the seventh preset frequency can be 40% of the highest operating frequency, the first preset temperature can be 50% of the highest exhaust temperature. For example, when the highest exhaust temperature is 100°C, the first preset temperature can be 50°C, the second preset temperature can be 30% of the highest exhaust temperature, the third preset temperature can be 20% of the highest exhaust temperature, the fourth preset temperature can be 50% of the highest exhaust temperature, the sixth preset temperature can be 50% of the highest exhaust temperature, and the seventh preset temperature can be 50% of the highest exhaust temperature.

[0117] In the technical solution disclosed in this embodiment, after obtaining the self-adjustment instruction, it is determined whether the indoor environmental temperature and the outdoor environmental temperature meet the corresponding temperature ranges. If the indoor environmental temperature and the outdoor environmental temperature meet the corresponding temperature ranges and the duration reaches the preset duration (which can be 30 minutes or other set durations), it is further determined whether the current operating frequency meets the frequency range in the preset conditions. If the corresponding frequency range is met, it is further determined whether the exhaust temperature meets the corresponding temperature range. When the exhaust temperature meets the corresponding temperature range, the outdoor unit program determines that the target parameter meets the preset conditions, and the outdoor unit program generates a feedback signal to the indoor unit system. When the indoor unit system receives the feedback signal from the outdoor unit program, it obtains the CVP parameter matching the satisfied preset condition, and controls the air conditioner to enter the self-adjustment operation mode based on the CVP parameter. In this embodiment, different CVP parameters correspond to different sub-conditions satisfied by the target parameter. In the self-adjustment operation mode, it is continuously detected whether the target parameter meets the preset conditions. When the preset conditions are met, the self-adjustment operation mode is continuously maintained. When the preset conditions are not met and the duration reaches the calibrated duration (such as 5 minutes or other values), the self-adjustment operation mode is exited. When it is detected that the target parameter meets the preset conditions again, the self-adjustment operation mode is executed again.

[0118] The above introduces a control method for an air conditioner self-adjustment system provided by an embodiment of the present application. The following will introduce an apparatus for executing the above control method for the air conditioner self-adjustment system.

[0119] Please refer to Figure 5 , Figure 5 which is a schematic structural diagram of an air conditioner self-adjustment system control apparatus provided by an embodiment of the present application. As Figure 5 shown, the air conditioner self-adjustment system control apparatus includes:

[0120] An instruction acquisition unit 10, configured to obtain a self-adjustment instruction;

[0121] A data acquisition unit 20, configured to obtain target parameters, where the target parameters include: indoor environmental temperature, outdoor environmental temperature, current operating frequency, and exhaust temperature;

[0122] A judgment unit 30, configured to judge whether the target parameter meets the preset conditions;

[0123] A self-adjustment control unit 40, configured to, when the preset conditions are met, obtain a CVP parameter matching the satisfied preset condition, and control the air conditioner to enter the self-adjustment operation mode based on the CVP parameter, where the CVP parameter includes: outdoor unit operating frequency, outdoor unit fan speed, outdoor unit valve opening, static pressure, and indoor unit fan speed.

[0124] An embodiment of the present application also provides an electronic device. Refer to Figure 6 As shown, it shows a schematic structural diagram of an electronic device suitable for implementing the electronic device in the embodiment of the present application. The electronic device in the embodiment of the present application may include, but is not limited to, fixed terminals such as mobile phones, laptop computers, PDAs (Personal Digital Assistants), PADs (Tablet Computers), desktop computers, and the like. Figure 6 The electronic device shown is merely an example and should not impose any limitations on the functions and usage scope of the embodiment of the present application.

[0125] As Figure 6 shown, the electronic device may include a processing device (such as a central processing unit, a graphics processing unit, etc.) 601, which may perform actions and processes for controlling the air conditioner autonomous regulation system according to a program stored in a read-only memory (ROM) 602 or a program loaded from a storage device 608 into a random access memory (RAM) 603. When the electronic device is powered on, various programs and data required for the operation of the electronic device are also stored in the RAM 603. The processing device 601, the ROM 602, and the RAM 603 are connected to each other through a bus 604. An input / output (I / O) interface 605 is also connected to the bus 604.

[0126] Generally, the following devices may be connected to the I / O interface 605: an input device 606 including, for example, a touch screen, a touchpad, a keyboard, a mouse, a camera, a microphone, an accelerometer, a gyroscope, etc.; an output device 607 including, for example, a liquid crystal display (LCD), a speaker, a vibrator, etc.; a storage device 608 including, for example, a memory card, a hard disk, etc.; and a communication device 609. The communication device 609 may allow the electronic device to communicate with other devices wirelessly or wiredly to exchange data. Although Figure 6 the electronic device with various devices is shown, it should be understood that it is not required to implement or have all the shown devices. More or fewer devices may be alternatively implemented or had.

[0127] An embodiment of the present application also provides a computer program product, including computer-readable instructions, which, when running on an electronic device, enable the electronic device to implement any one of the air conditioner autonomous regulation system control methods provided by the embodiment of the present application.

[0128] An embodiment of the present application also provides a computer-readable storage medium, which bears one or more computer programs, and when the one or more computer programs are executed by an electronic device, can enable the electronic device to implement any one of the air conditioner autonomous regulation system control methods provided by the embodiment of the present application.

[0129] An air conditioner applies the above-mentioned electronic device.

[0130] The user information involved in this application (including but not limited to user device information, user personal information, etc.) and data (including but not limited to data for analysis, stored data, displayed data, etc.) are all information and data that have been authorized by the user or fully authorized by all parties, and the collection, use, and processing of relevant data need to comply with the relevant laws, regulations, and standards of relevant countries and regions.

[0131] For the convenience of description, when describing the above system, it is divided into various modules according to functions for separate description. Of course, when implementing the present invention, the functions of each module can be implemented in the same or multiple software and / or hardware.

[0132] Each embodiment in this specification is described in a progressive manner. For the same or similar parts between each embodiment, reference can be made to each other, and the key point of each embodiment is to illustrate the differences from other embodiments. In particular, for the system or system embodiment, since it is basically similar to the method embodiment, the description is relatively simple, and for the relevant parts, reference can be made to the partial description of the method embodiment. The system and system embodiments described above are only illustrative. The units described as separate components may or may not be physically separated, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed to multiple network units. Some or all of the modules can be selected according to actual needs to achieve the purpose of the solution of this embodiment. Those of ordinary skill in the art can understand and implement it without creative efforts.

[0133] Professionals can further realize that the units and algorithm steps of each example described in combination with the embodiments disclosed in this article can be implemented by electronic hardware, computer software, or a combination of the two. To clearly illustrate the interchangeability of hardware and software, the composition and steps of each example have been generally described according to functions in the above description. Whether these functions are executed in a hardware or software manner depends on the specific application and design constraints of the technical solution. Professionals can use different methods to implement the described functions for each specific application, but such implementation should not be considered to exceed the scope of the present invention.

[0134] The steps of the method or algorithm described in combination with the embodiments disclosed in this article can be directly implemented by hardware, software modules executed by a processor, or a combination of the two. The software module can be placed in a random access memory (RAM), memory, read-only memory (ROM), electrically programmable ROM, electrically erasable programmable ROM, register, hard disk, removable disk, CD-ROM, or any other form of storage medium well-known in the technical field.

[0135] It should also be noted that, in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or device comprising the element.

[0136] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to the embodiments shown herein, but rather to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A control method for an air conditioner independent regulation system, characterized in that Including: Obtaining an autonomous adjustment instruction; Obtaining target parameters, where the target parameters include: indoor environmental temperature, outdoor environmental temperature, current operating frequency, and exhaust temperature; Judging whether the target parameters meet preset conditions; When the preset conditions are met, obtaining CVP parameters matching the met preset conditions, and controlling the air conditioner to enter the autonomous adjustment operation mode based on the CVP parameters. The CVP parameters include: outdoor unit operating frequency, outdoor unit fan speed, outdoor unit valve opening, static pressure, and indoor unit fan speed.

2. The control method of the air conditioner independent regulation system according to claim 1, characterized in that Judging whether the target parameters meet the preset conditions includes: Determining the working mode of the air conditioner, where the working mode includes a cooling mode and a heating mode; When the working mode is the cooling mode, judging whether the target parameters meet the first preset condition; When the working mode is the heating mode, judging whether the target parameters meet the second preset condition.

3. The control method of the air conditioner autonomous regulation system according to claim 2, wherein The first preset condition includes: N groups of sub-preset conditions composed of indoor environmental temperature, outdoor environmental temperature, current operating frequency, and exhaust temperature. The second preset condition includes: M groups of sub-preset conditions composed of indoor environmental temperature, outdoor environmental temperature, current operating frequency, and exhaust temperature. Both M and N are positive integers greater than 1; Judging whether the target parameters meet the first preset condition includes: Judging whether the target parameters meet the first preset condition includes: Judging whether the target parameters meet any one of the sub-preset conditions in the first preset condition. When any one of the sub-preset conditions is met, determining whether the target parameters meet the first preset condition; Judging whether the target parameters meet the second preset condition includes: Judging whether the target parameters meet the first preset condition includes: Judging whether the target parameters meet any one of the sub-preset conditions in the second preset condition. When any one of the sub-preset conditions is met, determining whether the target parameters meet the second preset condition.

4. The control method of the air conditioner autonomous regulation system according to claim 3, characterized in that, The sub-preset conditions in the first preset condition include: First sub-preset condition: The outdoor environmental temperature is within the first preset range, the indoor environmental temperature is within the first indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature; Second sub-preset condition: The outdoor environmental temperature is within the second preset range, the indoor environmental temperature is within the first indoor temperature threshold range, the current operating frequency is greater than the second preset frequency, and the exhaust temperature is greater than the second preset temperature; Third sub-preset condition: The outdoor environmental temperature is within the third preset range, the indoor environmental temperature is within the first indoor temperature threshold range, the current operating frequency is greater than the third preset frequency, and the exhaust temperature is greater than the first preset temperature; Among them, the minimum value in the first preset range is greater than the maximum value in the second preset range, and the minimum value in the second preset range is greater than the maximum value in the third preset range; The first preset frequency is greater than the second preset frequency, and the second preset frequency is greater than the third preset frequency; The first preset temperature is greater than the second preset temperature; The sub-preset conditions in the second preset condition include: Fourth sub preset condition: the outdoor ambient temperature is within the fourth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature; Fifth sub preset condition: the outdoor ambient temperature is within the fifth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the second preset frequency, and the exhaust temperature is greater than the second preset temperature; Sixth sub preset condition: the outdoor ambient temperature is within the sixth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature; Seventh sub preset condition: the outdoor ambient temperature is within the sixth preset range, the indoor ambient temperature is within the second indoor temperature threshold range, the current operating frequency is greater than the first preset frequency, and the exhaust temperature is greater than the first preset temperature; Wherein, the minimum value within the fourth preset range is greater than the maximum value within the fifth preset range, the minimum value within the fifth preset range is greater than the maximum value within the sixth preset range, and the minimum value within the sixth preset range is greater than the maximum value within the seventh preset range.

5. The control method of the air conditioner autonomous adjustment system according to claim 4, characterized in that, Obtain the CVP parameters matching the satisfied preset conditions, including: When the target parameter satisfies the first sub preset condition, the CVP parameters matching the first sub preset condition include: the outdoor unit operating frequency is the first preset frequency, the outdoor unit fan speed is the high speed, the outdoor unit valve opening is the first preset opening, the static pressure is the high static pressure, and the indoor unit fan speed is the high speed; When the target parameter satisfies the second sub preset condition, the CVP parameters matching the second sub preset condition include: the outdoor unit operating frequency is the second preset frequency, the outdoor unit fan speed is the medium speed, the outdoor unit valve opening is the second preset opening, the static pressure is the medium static pressure, and the indoor unit fan speed is the medium speed; When the target parameter satisfies the third sub preset condition, the CVP parameters matching the third sub preset condition include: the outdoor unit operating frequency is the third preset frequency, the outdoor unit fan speed is the low speed, the outdoor unit valve opening is the third preset opening, the static pressure is the low static pressure, and the indoor unit fan speed is the low speed; When the target parameter satisfies the fourth sub preset condition, the CVP parameters matching the fourth sub preset condition include: the outdoor unit operating frequency is the fourth preset frequency, the outdoor unit fan speed is the high speed, the outdoor unit valve opening is the fourth preset opening, the static pressure is the high static pressure, and the indoor unit fan speed is the high speed; When the target parameter satisfies the fifth sub preset condition, the CVP parameters matching the fifth sub preset condition include: the outdoor unit operating frequency is the fifth preset frequency, the outdoor unit fan speed is the medium speed, the outdoor unit valve opening is the fifth preset opening, the static pressure is the medium static pressure, and the indoor unit fan speed is the medium speed; When the target parameter satisfies the sixth sub preset condition, the CVP parameters matching the sixth sub preset condition include: the outdoor unit operating frequency is the sixth preset frequency, the outdoor unit fan speed is the high speed, the outdoor unit valve opening is the sixth preset opening, the static pressure is the high static pressure, and the indoor unit fan speed is the high speed; When the target parameter meets the seventh sub - preset condition, the CVP parameters matching the seventh sub - preset condition include: the outdoor unit operating frequency is the seventh preset frequency, the outdoor unit fan speed is high speed, the outdoor unit valve opening is the seventh preset opening, the static pressure is high static pressure, and the indoor unit fan speed is high speed.

6. The control method of the air conditioner independent adjustment system according to claim 4, characterized in that, When the preset condition is met, obtain the CVP parameters matching the met preset condition, and based on the CVP parameters, control the air conditioner to enter the self - regulating operation mode, including: When the preset condition is met, start timing; When the timing duration reaches the preset duration, obtain the CVP parameters matching the met preset condition, and based on the CVP parameters, control the air conditioner to enter the self - regulating operation mode.

7. An air conditioner independent adjustment system control device, characterized in that, Including: An instruction acquisition unit for obtaining a self - regulating instruction; A data acquisition unit for obtaining target parameters, where the target parameters include: indoor ambient temperature, outdoor ambient temperature, current operating frequency, and exhaust temperature; A judgment unit for judging whether the target parameters meet the preset condition; A self - regulating control unit for, when the preset condition is met, obtaining the CVP parameters matching the met preset condition, and based on the CVP parameters, controlling the air conditioner to enter the self - regulating operation mode, where the CVP parameters include: outdoor unit operating frequency, outdoor unit fan speed, outdoor unit valve opening, static pressure, and indoor unit fan speed.

8. A computer program product, characterized in that, Including computer - readable instructions, when the computer - readable instructions run on an electronic device, enabling the electronic device to implement the air - conditioner self - regulating system control method according to any one of claims 1 to 6.

9. An electronic device, characterized in that, Including at least one processor and a memory connected to the processor, where: The memory is used to store a computer program; The processor is used to execute the computer program so that the electronic device can implement the air - conditioner self - regulating system control method according to any one of claims 1 to 6.

10. An air conditioner, characterized in that, An electronic device applying the electronic device according to claim 9.