Air conditioner control method, device, air conditioner and storage medium

By adopting automatic air mode and intelligently adjusting the wind speed and swing blade angle in the air conditioner, the noise and comfort problems in the rapid cooling mode of the air conditioner are solved, and more flexible control is achieved, improving user experience and energy-saving effects.

CN115077006BActive Publication Date: 2025-07-18CHONGQING HAIER AIR CONDITIONER CO LTD +3
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Patent Information

Application Number
CN202210538156.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-05-17
Publication Date
2025-07-18
Estimated Expiration
2042-05-17

AI Technical Summary

Technical Problem

Existing air conditioners are prone to noise in the fast cooling mode, affecting the user experience, and users need to frequently manually adjust the scene mode to avoid the indoor temperature being too low or too high, resulting in poor comfort and high energy consumption.

Method used

By adopting the automatic wind mode during the air conditioner and intelligently adjusting the wind speed according to the temperature difference between the indoor temperature and the set temperature, the offset angles of the yaw and vertical swing leaves are adjusted in stages to achieve flexible control and reduce noise and energy consumption.

Benefits of technology

While rapidly reducing indoor temperature, it reduces noise and energy consumption, improves user comfort, reduces manual operation, and improves user experience and the energy-saving and emission reduction efficiency of air conditioners.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an air conditioner control method, device, air conditioner and storage medium, including: after the air conditioner starts to execute the first scenario mode, controlling the air conditioner to blow air in the automatic wind mode in the first refrigeration mode and operate with the first operating parameters; when the first preset condition is satisfied, controlling the air conditioner to blow air in the automatic wind mode in the second refrigeration mode and operate with the second operating parameters until the air conditioner stops executing the first scenario mode; wherein, the operating parameters include: set temperature, offset angle of the horizontal louver and offset angle of the vertical louver. The present invention can, on the basis of quickly reducing the indoor environmental temperature, reduce the noise generated during the refrigeration process, further reduce the noise generated during the refrigeration process through a phased adjustment method, and at the same time can avoid the situation that the indoor temperature is too low, resulting in poor user body feeling comfort, reduce the manual operation of the user, improve the user experience, and improve the energy conservation and emission reduction efficiency of the air conditioner.
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Description

Technical Field

[0001] The present invention relates to the technical field of air conditioners, and particularly to an air conditioner control method, device, air conditioner and storage medium. Background Art

[0002] With the development of smart home, to meet the diverse needs of users, the functions of air conditioners have developed towards the direction of intelligence and humanization, providing users with a more comfortable and healthy living and working environment.

[0003] In the prior art, users can set the scene mode of the air conditioner according to actual usage needs. For example, users can set the scene mode of rapid cooling to achieve the purpose of quickly cooling the indoor environment. However, in the existing rapid cooling scene mode, the air conditioner has been in a strong operation state, which is likely to generate noise. If the user takes a nap or reads a book in the living room, they will surely be affected by the noise. Moreover, as time goes by, the user's perceived temperature will change, easily resulting in a poor sense of comfort. In addition, it is necessary to manually switch the scene mode of the air conditioner again, and the user operation is cumbersome and the experience is poor.

[0004] Therefore, how to control the air conditioner more flexibly has become an urgent problem to be solved in the industry. Summary of the Invention

[0005] The present invention provides an air conditioner control method, device, air conditioner and storage medium for more flexible control of the air conditioner and improving the user experience.

[0006] The present invention provides an air conditioner control method, including:

[0007] After the air conditioner starts to execute the first scene mode, control the air conditioner to supply air in the automatic wind mode and operate at a first operating parameter in the first cooling mode;

[0008] When a first preset condition is satisfied, control the air conditioner to supply air in the automatic wind mode and operate at a second operating parameter in the second cooling mode until the air conditioner stops executing the first scene mode;

[0009] Wherein, the operating parameters include: set temperature, offset angle of the horizontal louver and offset angle of the vertical louver.

[0010] According to the air conditioner control method provided by the present invention, the step of, when a first preset condition is satisfied, controlling the air conditioner to supply air in the automatic wind mode and operate at a second operating parameter in the second cooling mode includes:

[0011] When the first execution duration is greater than the first time threshold and the first indoor temperature is not greater than the first temperature threshold, control the air conditioner to supply air in the automatic wind mode in the cooling mode and operate at the second operating parameter;

[0012] The first execution duration is the cumulative duration for which the air conditioner executes the first scenario mode.

[0013] According to a control method of an air conditioner provided by the present invention, the first operating parameter includes a first set temperature, the offset angle of the horizontal swing blade is a first preset angle, and the offset angle of the vertical swing blade is 0°;

[0014] The value range of the first preset angle is 60° to 70°; when the horizontal swing blade swings upward, the offset angle of the horizontal swing blade is positive;

[0015] The value range of the first set temperature is 22 to 25 °C.

[0016] According to a control method of an air conditioner provided by the present invention, the second operating parameter includes a second set temperature, the offset angle of the horizontal swing blade is the first preset angle, and a second parameter of the vertical swing blade;

[0017] The second parameter of the vertical swing blade is used to control the vertical swing blade to swing reciprocally;

[0018] The value range of the second set temperature is 26 to 28 °C.

[0019] According to a control method of an air conditioner provided by the present invention, the method further includes:

[0020] After the air conditioner starts to execute the second scenario mode, control the air conditioner to turn on the auxiliary heating function and operate at the maximum wind speed and the third operating parameter in the first heating mode;

[0021] When the second preset condition is satisfied, control the air conditioner to turn off the auxiliary heating function and supply air in the automatic wind mode in the second heating mode and operate at the fourth operating parameter until the air conditioner stops executing the second scenario mode.

[0022] According to a control method of an air conditioner provided by the present invention, when the second preset condition is satisfied, controlling the air conditioner to turn off the auxiliary heating function includes:

[0023] When the second execution duration is greater than the second time threshold and the second indoor temperature is not less than the second temperature threshold, control the air conditioner to turn off the auxiliary heating function;

[0024] The second execution duration is the cumulative duration for which the air conditioner executes the second scenario mode.

[0025] A control method for an air conditioner according to the present invention, the third operating parameter includes: a third set temperature, an offset angle of the horizontal louver being a second preset angle, and an offset angle of the vertical louver being 0°;

[0026] The value range of the second preset angle is from -60° to -70°. When the horizontal louver swings downward, the offset angle of the horizontal louver is negative;

[0027] The value range of the third set temperature is from 26 to 28 °C.

[0028] A control method for an air conditioner according to the present invention, the fourth operating parameter includes: a fourth set temperature, an offset angle of the horizontal louver being the second preset angle, and an offset angle of the vertical louver being 0°;

[0029] The value range of the fourth set temperature is from 22 to 25 °C.

[0030] The present invention also provides an air conditioner control device, including:

[0031] A first control module, configured to control the air conditioner to blow air in an automatic wind mode in a first refrigeration mode and operate with a first operating parameter after the air conditioner starts to execute a first scenario mode;

[0032] A second control module, configured to control the air conditioner to blow air in the automatic wind mode in a second refrigeration mode and operate with a second operating parameter until the air conditioner stops executing the first scenario mode when a first preset condition is met;

[0033] Wherein, the operating parameter includes: a set temperature, an offset angle of the horizontal louver, and an offset angle of the vertical louver.

[0034] The present invention also provides an air conditioner, including a controller, the controller includes a memory, a processor, and a computer program stored on the memory and executable on the processor. When the processor executes the program, it implements the air conditioner control method as described in any one of the above.

[0035] The present invention also provides a non-transitory computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, it implements the air conditioner control method as described in any one of the above.

[0036] The present invention also provides a computer program product, including a computer program. When the computer program is executed by a processor, it implements the air conditioner control method as described in any one of the above.

[0037] The air conditioner control method, device, air conditioner and storage medium provided by the present invention control the air conditioner to supply air in the automatic wind mode and operate at a first operating parameter in the first refrigeration mode after the air conditioner starts to execute the first scenario mode; when a first preset condition is satisfied, control the air conditioner to supply air in the automatic wind mode and operate at a second operating parameter in the second refrigeration mode until the air conditioner stops executing the first scenario mode; wherein the operating parameters include: set temperature, offset angle of the horizontal louver and offset angle of the vertical louver, which can control the air conditioner more flexibly during the execution of the first scenario mode by the air conditioner, so that on the basis of quickly reducing the indoor environmental temperature, the noise generated during the refrigeration process can be reduced. At the same time, through the phased adjustment method, the noise generated during the refrigeration process can be further reduced, and at the same time, the situation that the indoor temperature is too low and the user's body feeling comfort is poor can be avoided, the user's manual operation can be reduced, the user experience can be improved, and the energy saving and emission reduction efficiency of the air conditioner can be improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0038] In order to more clearly illustrate the technical solutions in the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained according to these drawings without creative efforts.

[0039] Figure 1 It is a flowchart of the air conditioner control method provided by the present invention;

[0040] Figure 2 It is a schematic structural diagram of the air conditioner control device provided by the present invention;

[0041] Figure 3 It is a schematic structural diagram of the controller in the air conditioner provided by the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0042] To make the objectives, technical solutions and advantages of the present invention clearer, the following will clearly and completely describe the technical solutions in the present invention with reference to the accompanying drawings in the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. 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.

[0043] Under normal circumstances, users have different requirements for the indoor environmental temperature in different scenarios. For this reason, existing air conditioners can preset multiple scenario modes for users to choose according to the actual situation of different scenarios. For example, when an existing air conditioner executes the "sleep scenario mode", it can control the indoor temperature at a suitable temperature when the user is resting; or, when a traditional air conditioner executes the "extremely cool and refreshing scenario mode (cooling)", it can quickly reduce the indoor environmental temperature.

[0044] The control mode of existing air conditioners in scenario modes is single, and the operating parameters such as the set temperature, wind speed, and wind direction of the air conditioner are fixed. For example, when an existing air conditioner executes the "extremely cool and refreshing scenario mode (cooling)", a traditional air conditioner operates at a set temperature of 18°C, strong wind, automatic left-right swing, and automatic up-down swing in the cooling mode to ensure a rapid reduction in the indoor environmental temperature.

[0045] However, after an existing air conditioner executes the "extremely cool and refreshing scenario mode (cooling)", there are the following defects: on the one hand, the air conditioner will always be in a strong operation state, which is likely to generate noise. If the user takes a nap or reads a book in the living room, they will surely be affected by the noise; on the other hand, as the indoor environmental temperature decreases, the user's perceived temperature also decreases, and the existing air conditioner will still continue to cool strongly with fixed operating parameters such as the set temperature, wind speed, and wind direction, resulting in a further reduction in the indoor environmental temperature. As time goes by, the user is likely to feel uncomfortable and too cold, and the user still needs to manually switch the scenario mode of the air conditioner again, which is cumbersome for the user to operate and the experience is poor.

[0046] At the same time, the energy consumption of existing air conditioners is relatively high when executing the "extremely cool and refreshing scenario mode (cooling / heating)", making it difficult to meet the energy conservation and emission reduction requirements of air conditioners.

[0047] The following will be combined with Figures 1 - 3 describe the air conditioner control method, device, air conditioner, and storage medium of the present invention.

[0048] Figure 1 is a schematic flowchart of the air conditioner control method provided by the present invention. As Figure 1 shown, it includes:

[0049] Step 110, after the air conditioner starts to execute the first scenario mode, control the air conditioner to blow air in the automatic wind mode in the cooling mode and operate with the first operating parameters;

[0050] Among them, the operating parameters include: the set temperature, the offset angle of the horizontal swing blade, and the offset angle of the vertical swing blade.

[0051] Specifically, the first scenario mode described in the embodiments of the present invention can be the "extremely cool and refreshing scenario mode (cooling)" described above.

[0052] It should be noted that the automatic wind mode is an intelligent wind speed adjustment mode of existing air conditioners. The air conditioner determines the wind speed according to the set temperature and the indoor temperature. When the temperature difference between the set temperature and the indoor temperature is large, the air conditioner operates at a high wind speed. When this temperature difference becomes smaller and gradually approaches zero, the wind speed will automatically change and gradually shift to a low-speed state. This not only saves energy but also greatly reduces the generation of noise.

[0053] The offset angle of the horizontal swing blade described in the embodiments of the present invention refers to the angle between the position of the horizontal swing blade after swinging in the air conditioner and its initial position. The initial position of the horizontal swing blade is the position when the horizontal swing blade is in a horizontal state. Among them, when the horizontal swing blade swings upward based on the initial position, the offset angle of the horizontal swing blade is positive, and when the horizontal swing blade swings downward, the offset angle of the horizontal swing blade is negative.

[0054] It should be noted that the air conditioner described in the present invention can be a floor-standing air conditioner or a wall-mounted air conditioner.

[0055] The offset angle of the vertical swing blade described in the embodiments of the present invention refers to the angle between the position of the vertical swing blade after swinging in the air conditioner and its initial position. The initial position of the vertical swing blade is the position when the air conditioner is turned on and in an unswinging state. Among them, when the vertical swing blade swings to the left based on the initial position, the offset angle of the vertical swing blade is positive, and when the vertical swing blade swings to the right, the offset angle of the vertical swing blade is negative.

[0056] In the embodiments of the present invention, to prevent the air conditioner from always operating in a high-power state and generating noise, the air conditioner is controlled to blow air in the automatic wind mode in the cooling mode. By combining the temperature difference between the set temperature and the actual indoor temperature for intelligent adjustment of the wind speed, the noise generated during the rapid cooling process can be effectively reduced.

[0057] To prevent the indoor environmental temperature from further decreasing and affecting the user's body feeling comfort during the rapid cooling process of the air conditioner, and at the same time further reduce noise, in the embodiments of the present invention, it is set to perform staged cooling in the first scenario mode, including first-stage cooling and second-stage cooling. It can be understood that the first-stage cooling is to perform cooling in the first cooling mode.

[0058] In the embodiments of the present invention, the operating parameters include: set temperature, offset angle of the horizontal swing blade, and offset angle of the vertical swing blade. It can be understood that the first operating parameter refers to the operating parameter in the first cooling mode, which is specifically the parameter obtained after setting the set temperature, offset angle of the horizontal swing blade, and offset angle of the vertical swing blade, and is used to accelerate the cooling process on the basis of reducing noise.

[0059] After the air conditioner starts to execute the first scenario mode, the control of the first-stage refrigeration is started, that is, in the first refrigeration mode, the air conditioner is controlled to supply air in the automatic wind mode and operate with the first operating parameters, and the first-stage refrigeration is performed by intelligently adjusting the wind speed and adjusting the set temperature, the deflection angle of the horizontal swing blade, and the deflection angle of the vertical swing blade.

[0060] In an embodiment of the present invention, before the air conditioner starts to execute the first scenario mode, user input can be received, and in response to the user input, the first scenario mode is entered;

[0061] Among them, the user input can be manifested in at least one of the following ways:

[0062] First, it can be manifested as touch input, including but not limited to editing operations such as click input, swipe input, and press input. In this embodiment, receiving the user input can be manifested as receiving the user input on the display screen of the electronic device for controlling the air conditioner.

[0063] Second, it can be manifested as physical button input.

[0064] In this embodiment, there is a physical button for quickly entering the first scenario mode on the body of the air conditioner control terminal, and receiving the user input can be manifested as the terminal receiving the input of the user pressing the corresponding physical button.

[0065] Third, the user input can be manifested as voice input.

[0066] In this embodiment, the air conditioner is built with a voice module, and when receiving the user's voice, such as "enter the 'extremely cool and refreshing refrigeration scenario mode'", it triggers the air conditioner to start executing the first scenario mode.

[0067] Of course, in other embodiments, the user input can also be manifested in other forms, which can be specifically determined according to actual needs, and the embodiments of the present invention do not limit this.

[0068] Step 120, when the first preset condition is met, control the air conditioner to supply air in the automatic wind mode in the second refrigeration mode and operate with the second operating parameters until the air conditioner stops executing the first scenario mode;

[0069] Specifically, the first preset condition described in the embodiments of the present invention refers to a preset judgment condition, which is used to determine whether the air conditioner enters the second-stage refrigeration in the first scenario mode. It can be a system default setting condition or a condition set according to the actual needs of the user.

[0070] It can be understood that the second refrigeration mode is the refrigeration mode adopted in the second-stage refrigeration.

[0071] The second operating parameter described in the embodiments of the present invention refers to the operating parameter in the second refrigeration mode, which is specifically obtained by setting the set temperature, the offset angle of the horizontal swing blade, and the offset angle of the vertical swing blade, and is used to reduce the refrigeration intensity when the indoor temperature reaches a relatively suitable temperature.

[0072] In the embodiments of the present invention, to prevent the indoor temperature from continuing to drop and maintain the indoor temperature in a relatively suitable state, when the first preset condition is met, it can be indicated that the indoor ambient temperature has dropped to a relatively suitable temperature, and the first-stage refrigeration of the air conditioner in the first scenario mode ends, and the second-stage refrigeration in the first scenario mode can start, that is, control the air conditioner to blow air in the automatic wind mode in the second refrigeration mode and operate with the second operating parameter until the air conditioner stops executing the first scenario mode.

[0073] The air conditioner control method according to the embodiments of the present invention controls the air conditioner to blow air in the automatic wind mode in the first refrigeration mode and operate with the first operating parameter after the air conditioner starts to execute the first scenario mode; when the first preset condition is met, controls the air conditioner to blow air in the automatic wind mode in the second refrigeration mode and operate with the second operating parameter until the air conditioner stops executing the first scenario mode; wherein, the operating parameter includes: the set temperature, the offset angle of the horizontal swing blade, and the offset angle of the vertical swing blade, which can control the air conditioner more flexibly during the execution of the first scenario mode by the air conditioner, so that on the basis of quickly reducing the indoor ambient temperature, the noise generated during the refrigeration process can be reduced. At the same time, through the phased adjustment method, the noise generated during the refrigeration process can be further reduced, and the situation that the indoor temperature is too low and the user's body feeling comfort is poor can be avoided, the user's manual operation can be reduced, the user experience can be improved, and the energy conservation and emission reduction efficiency of the air conditioner can be enhanced.

[0074] Based on the content of the above embodiments, as an optional embodiment, when the first preset condition is met, controlling the air conditioner to blow air in the automatic wind mode in the second refrigeration mode and operate with the second operating parameter includes:

[0075] When the first execution duration is greater than the first time threshold and the first indoor temperature is not greater than the first temperature threshold, control the air conditioner to blow air in the automatic wind mode in the refrigeration mode and operate with the second operating parameter;

[0076] The first execution duration is the cumulative duration of the air conditioner executing the first scenario mode.

[0077] Specifically, the first time threshold described in the embodiments of the present invention refers to the time threshold corresponding to the first execution duration, which can be the default duration threshold of the system or the duration threshold set by the user according to actual needs. The specific value range can be from 2 minutes to 5 minutes. For example, the first time threshold is 3 minutes.

[0078] The first indoor temperature described in the embodiments of the present invention refers to the indoor environmental temperature detected by the temperature sensor set inside the air conditioner in the cooling mode.

[0079] The first temperature threshold described in the embodiments of the present invention refers to the temperature threshold corresponding to the first indoor temperature, which can be the default temperature threshold of the system or the temperature threshold set by the user according to actual needs. The specific value range can be from 27°C to 30°C. For example, the first temperature threshold is 29°C.

[0080] Further, when the first execution duration is greater than the first time threshold, such as 3 minutes, and the first indoor temperature is not greater than the first temperature threshold, such as 29°C, the second-stage cooling is entered, that is, the air conditioner is controlled to blow air in the automatic wind mode and operate with the second operating parameters in the second cooling mode.

[0081] The method of the embodiments of the present invention, by considering the operation duration of the air conditioner and the change of the actual indoor temperature, enters the second-stage cooling when it is determined that the first execution duration is greater than the first time threshold and the first indoor temperature is not greater than the first temperature threshold, which can effectively prevent the indoor temperature from continuing to decrease, improve the comfort of users. At the same time, it can effectively reduce the operation frequency of users and improve the user experience.

[0082] Based on the content of the above embodiments, as an optional embodiment, the first operating parameters include the first set temperature, the deflection angle of the horizontal swing blade is the first preset angle, and the deflection angle of the vertical swing blade is 0°;

[0083] The value range of the first preset angle is from 60° to 70°; when the horizontal swing blade swings upward, the deflection angle of the horizontal swing blade is positive;

[0084] The value range of the first set temperature is from 22 to 25°C.

[0085] Specifically, the first operating parameters are the operating parameters preset in the first cooling mode, which are used to achieve the purpose of rapid cooling while reducing noise.

[0086] To achieve the purpose of reducing noise and rapid refrigeration, in the embodiments of the present invention, by using the automatic wind mode to supply air, according to the temperature difference between the indoor temperature and the set temperature, the wind speed is intelligently adjusted to reduce the duration of strong blowing and the generation of noise. At the same time, through the setting of the first operating parameter, rapid refrigeration in the automatic wind mode is realized.

[0087] More specifically, in the embodiments of the present invention, the first operating parameter includes the first set temperature, the deflection angle of the horizontal swing blade is the first preset angle, and the deflection angle of the vertical swing blade is 0°; the value range of the first preset angle is 60° to 70°; the value range of the first set temperature is 22°C to 25°C.

[0088] It should be noted that the density of cold air is greater. Therefore, cold air usually flows downward and sinks.

[0089] In the embodiments of the present invention, by setting the first set temperature, the air conditioner cools down. By setting the deflection angle of the horizontal swing blade to the first preset angle, the refrigeration air volume is maintained for upward blowing during refrigeration. At the same time, by setting the deflection angle of the vertical swing blade to 0°, it is ensured that the air volume in the left and right directions of the air conditioner can reach the maximum. Thus, through refrigeration, the maximum amount of dense cold air can be blown upward to the greatest extent, so that the cold air with a greater density can flow downward naturally, improving the refrigeration effect of the air conditioner, accelerating the cooling speed of the indoor environment temperature, and at the same time, it can achieve anti-direct blowing, avoiding the cold air from directly blowing on the user, and achieving a comfortable refrigeration effect.

[0090] Optionally, the first preset angle is 60°, and the first set temperature is 24°C. Thus, after the air conditioner starts to execute the first scenario mode, the air conditioner can be controlled to supply air in the automatic wind mode in the first refrigeration mode, with the first set temperature of 24°C, the deflection angle of the horizontal swing blade of 60° for upward blowing during refrigeration, and the deflection angle of the vertical swing blade of 0° for maximum air volume operation.

[0091] The method of the embodiments of the present invention can accurately and efficiently control the air conditioner to refrigerate by controlling the air conditioner to operate at the first set temperature, the deflection angle of the horizontal swing blade being the first preset angle, and the deflection angle of the vertical swing blade being 0° in the first refrigeration mode, effectively achieving the effects of reducing noise and rapid refrigeration during the first-stage refrigeration process of the air conditioner, and providing a good user experience.

[0092] Based on the content of the above embodiments, as an optional embodiment, the second operating parameter includes the second set temperature, the deflection angle of the horizontal swing blade is the first preset angle, and the second parameter of the vertical swing blade;

[0093] The second parameter of the vertical swing blade is used to control the vertical swing blade to swing reciprocally;

[0094] The value range of the second set temperature is 26°C to 28°C.

[0095] Specifically, in the embodiments of the present invention, the second operating parameter refers to the operating parameter preset in the second refrigeration mode when the air conditioner enters the second-stage refrigeration. It is used to slow down the refrigeration speed while reducing noise, so as to avoid further reduction of the indoor environmental temperature and affect the user's physical comfort.

[0096] To achieve the purpose of reducing noise and slowing down the refrigeration speed, in the embodiments of the present invention, the automatic wind mode is used for air supply, and at the same time, by setting the second operating parameter, the refrigeration intensity of the air conditioner is reduced.

[0097] More specifically, in the embodiments of the present invention, the second operating parameter includes the second set temperature, the offset angle of the horizontal swing blade is the first preset angle, and the second parameter of the vertical swing blade; the second parameter of the vertical swing blade is used to control the vertical swing blade to swing reciprocally; the value range of the second set temperature is 26°C to 28°C.

[0098] It can be understood that by setting the second parameter of the vertical swing blade to make the vertical swing blade swing reciprocally at a constant speed, the flow rate of the cold air blown into the room can be effectively reduced, which helps to reduce the refrigeration intensity of the air conditioner.

[0099] Optionally, the second parameter of the vertical swing blade can also be set to be the maximum offset angle of the vertical swing blade, which can be the maximum angle in the left direction or the maximum angle in the right direction, so that the vertical swing blade swings to the minimum opening state, and the flow rate of the cold air blown into the room is reduced to the greatest extent.

[0100] Optionally, in the embodiments of the present invention, the first preset angle is 60°, and the second set temperature is 27°C. Thus, after the air conditioner starts to execute the first scenario mode, the air conditioner can be controlled to supply air in the automatic wind mode in the first refrigeration mode, with the second set temperature of 27°C, the offset angle of the horizontal swing blade of 60° for upward refrigeration blowing, and the vertical swing blade swinging reciprocally at a constant speed for operation.

[0101] The method of the embodiments of the present invention, by setting the second set temperature, prevents the refrigeration temperature from being set too low. By setting the offset angle of the horizontal swing blade to the first preset angle, the refrigeration air volume is maintained for upward refrigeration blowing. At the same time, by setting the constant reciprocating swing of the vertical swing blade, it is ensured that the air volume is reduced. The air conditioner can be accurately and efficiently controlled for second-stage refrigeration, effectively achieving the effects of reducing noise and slowing down the refrigeration speed, avoiding the situation that the indoor temperature continues to drop and affecting the user's physical comfort, and improving the user experience.

[0102] It should be noted that, similar to the aforementioned existing air conditioner when executing the "Extreme Cool Scenario Mode (cooling)", the existing air conditioner can quickly raise the indoor environmental temperature to a suitable temperature within a short period of time after starting to execute the "Extreme Cool Scenario Mode (heating)". As the indoor environmental temperature rises, the user's perceived temperature also rises. However, the existing air conditioner still operates with fixed operating parameters such as set temperature, wind speed, and wind direction for continuous heating. Coupled with the heat generated by the activities of indoor personnel, it will further cause the indoor environmental temperature to rise, resulting in an overly high user's perceived temperature and a poor user comfort experience. At this time, the user needs to manually switch the scenario mode of the air conditioner again, making the user's operation cumbersome and the experience poor.

[0103] Based on the content of the above embodiments, as an optional embodiment, the air conditioner control method of the embodiments of the present invention further includes:

[0104] After the air conditioner starts to execute the second scenario mode, control the air conditioner to turn on the auxiliary heating function and operate at the maximum wind speed and the third operating parameters in the first heating mode;

[0105] When the second preset condition is satisfied, control the air conditioner to turn off the auxiliary heating function and send air in the automatic wind mode in the second heating mode, and operate with the fourth operating parameters until the air conditioner stops executing the second scenario mode.

[0106] Specifically, the second scenario mode described in the embodiments of the present invention can be the "Extreme Cool Scenario Mode (heating)" described above.

[0107] In the embodiments of the present invention, to avoid the air conditioner being in a strong heating operation state all the time, generating noise and having too high energy consumption, and at the same time to avoid the indoor environmental temperature further rising during the rapid heating process, affecting the user's comfort experience. Similarly, in the embodiments of the present invention, it is set to perform phased heating in the second scenario mode, including the first-stage heating and the second-stage heating. It can be understood that the first-stage heating is to perform heating in the first heating mode.

[0108] In the embodiments of the present invention, the operating parameters include: set temperature, the offset angle of the horizontal swing blade, and the offset angle of the vertical swing blade. It can be understood that the third operating parameters refer to the operating parameters in the first heating mode, which are specifically the parameters obtained after setting the set temperature, the offset angle of the horizontal swing blade, and the offset angle of the vertical swing blade, and are used to accelerate the heating process.

[0109] The second preset condition described in the embodiments of the present invention refers to a pre-set judgment condition, which is used to determine whether the air conditioner enters the second-stage heating in the second scenario mode. It can be the set condition default in the system or the condition set according to the actual needs of the user.

[0110] It is understandable that the second heating mode is the heating mode adopted during the second-stage heating.

[0111] The second operating parameter described in the embodiments of the present invention refers to the operating parameter under the second heating mode, which is specifically obtained by setting the set temperature, the deflection angle of the horizontal louver, and the deflection angle of the vertical louver, and is used to reduce the heating intensity when the indoor temperature reaches a relatively appropriate temperature.

[0112] It should be noted that a positive temperature coefficient (PTC) thermistor generally refers to a semiconductor material or component with a very large positive temperature coefficient. When the external temperature decreases, the resistance value of the PTC thermistor decreases, and the heat generation increases.

[0113] The auxiliary heating function of the air conditioner can achieve the purpose of rapid and strong heating by adopting PTC electric auxiliary heating technology. Generally speaking, cold weather will seriously affect the heating effect of the air conditioner, while the auxiliary heating function of the air conditioner can adjust and assist the heat generation of the air conditioner, and can well overcome the influence of cold weather on the heating effect of the air conditioner.

[0114] After the air conditioner starts to execute the second scenario mode, control the air conditioner to turn on the auxiliary heating function and start to execute the control of the first-stage heating. That is, in the first heating mode, control the air conditioner to operate at the maximum wind speed and the third operating parameter, blow air at the maximum wind speed, adjust the set temperature, the deflection angle of the horizontal louver, and the deflection angle of the vertical louver, and perform the first-stage heating.

[0115] In the embodiments of the present invention, similarly, before the air conditioner starts to execute the second scenario mode, it can receive the user's input, and in response to the user's input, enter the second scenario mode; at this time, the user's input can be the same as the input in the foregoing embodiments, and can be at least one of the three embodiments, and the present invention will not elaborate on this.

[0116] Furthermore, in the embodiments of the present invention, to reduce noise and prevent the indoor temperature from continuing to rise and maintain the indoor temperature at a relatively appropriate state, when the second preset condition is met, it can be stated that the indoor ambient temperature has risen to a relatively appropriate temperature, and the first-stage heating of the air conditioner executing the second scenario mode ends, and the second-stage heating under the second scenario mode can start, that is, control the air conditioner to blow air in the automatic wind mode under the second heating mode, intelligently adjust the wind speed according to the temperature difference between the indoor temperature and the set temperature, reduce the duration of strong blowing, reduce the generation of noise, and operate at the fourth operating parameter until the air conditioner stops executing the second scenario mode.

[0117] The air conditioner control method according to the embodiment of the present invention controls the air conditioner to blow air at the maximum wind speed and operate at a third operating parameter in the first heating mode after the air conditioner starts to execute the second scenario mode for rapid heating; when the second preset condition is met, the air conditioner is controlled to turn off the floor heating function, and the air conditioner is controlled to blow air in the automatic wind mode and operate at a fourth operating parameter in the second heating mode until the air conditioner stops executing the second scenario mode. During the execution of the second scenario mode of the air conditioner, more flexible control of the air conditioner can be achieved. Through a phased adjustment method, the noise generated during the heating process can be reduced, and at the same time, the situation where the indoor temperature is too high and the user's body feeling comfort is poor can be avoided, reducing the user's manual operation, improving the user experience, and enhancing the energy-saving and emission-reduction efficiency of the air conditioner.

[0118] Based on the content of the above embodiments, as an optional embodiment, when the second preset condition is met, controlling the air conditioner to turn off the floor heating function includes:

[0119] When the second execution duration is greater than the second time threshold and the second indoor temperature is not less than the second temperature threshold, controlling the air conditioner to turn off the floor heating function;

[0120] The second execution duration is the cumulative duration of the air conditioner executing the second scenario mode.

[0121] Specifically, the second time threshold described in the embodiment of the present invention refers to the time threshold corresponding to the second execution duration, which can be the default duration threshold of the system or the duration threshold set by the user according to actual needs. Its specific value range can be from 3 minutes to 6 minutes. For example, the second time threshold is 3 minutes.

[0122] The second indoor temperature described in the embodiment of the present invention refers to the indoor environmental temperature detected by the temperature sensor set inside the air conditioner in the heating mode.

[0123] The second temperature threshold described in the embodiment of the present invention refers to the temperature threshold corresponding to the second indoor temperature, which can be the default temperature threshold of the system or the temperature threshold set by the user according to actual needs. Its specific value range can be from 19°C to 21°C. For example, the second temperature threshold is 20°C.

[0124] Further, when the second execution duration is greater than the second time threshold, such as 3 minutes, and the second indoor temperature is not less than the second temperature threshold, such as 20°C, the second-stage heating is entered, that is, the air conditioner is controlled to turn off the floor heating function, and at the same time, the air conditioner can be controlled to blow air in the automatic wind mode and operate at a fourth operating parameter in the second heating mode.

[0125] The method according to the embodiment of the present invention, by considering the operation duration of the air conditioner and the change of the actual indoor temperature, when it is determined that the second execution duration is greater than the second time threshold and the second indoor temperature is not less than the second temperature threshold, enters the second-stage heating, which can effectively prevent the indoor temperature from continuing to rise, improve the user's comfort, and at the same time, can effectively reduce the user's operation frequency and enhance the user's usage experience.

[0126] Based on the content of the above embodiments, as an optional embodiment, the third operating parameter includes: the third set temperature, the offset angle of the horizontal louver is the second preset angle, and the offset angle of the vertical louver is 0°;

[0127] The value range of the second preset angle is -60° to -70°. When the horizontal louver swings downward, the offset angle of the horizontal louver is negative;

[0128] The value range of the third set temperature is 26 to 28 °C.

[0129] Specifically, the third operating parameter is the operating parameter preset in the first heating mode, which is used to achieve the purpose of rapid heating.

[0130] To achieve the purpose of rapid heating, in the embodiment of the present invention, the third operating parameter includes the third set temperature, the offset angle of the horizontal louver is the second preset angle, and the offset angle of the vertical louver is 0°; wherein, the value range of the second preset angle is -60° to -70°; the value range of the third set temperature is 26 °C to 28 °C.

[0131] It should be noted that since the density of hot air is smaller, hot air usually flows upward. In the embodiment of the present invention, after the air conditioner starts to execute the second scenario mode, by controlling the offset angle of the horizontal louver in the air conditioner, the air conditioner blows hot air downward to the horizontal plane, so that the hot air with a smaller density can naturally flow upward, improving the heating effect of the air conditioner and further increasing the heating speed of the indoor environment temperature.

[0132] In the embodiment of the present invention, by setting the third set temperature, the air conditioner performs heating and temperature rise. By setting the offset angle of the horizontal louver to the second preset angle, the heating air volume is maintained for downward blowing. At the same time, the offset angle of the vertical louver is set to 0° to ensure that the air volume in the left and right directions of the air conditioner can reach the maximum. Thus, through heating, the maximum amount of dense hot air can be blown downward to the greatest extent, so that the hot air with a smaller density can naturally flow upward, improving the heating effect of the air conditioner and accelerating the heating speed of the indoor environment temperature.

[0133] Optionally, the second preset angle is -70°, and the third set temperature is 27°C. Thus, after the air conditioner starts to execute the second scenario mode, the floor heating function is turned on, and the air conditioner is controlled to blow air at the maximum wind speed in the first heating mode, the third set temperature is 27°C, the offset angle of the horizontal swing blade is -70° for heating and blowing downward, and the offset angle of the vertical swing blade is 0° for maximum air output operation.

[0134] The method according to the embodiment of the present invention can accurately and efficiently control the air conditioner to perform rapid heating by controlling the air conditioner to turn on the floor heating and operate at the third set temperature, the offset angle of the horizontal swing blade being the second preset angle, and the offset angle of the vertical swing blade being 0° in the first heating mode, greatly improving the heating effect of the air conditioner and providing a good user experience.

[0135] Based on the content of the above embodiments, as an optional embodiment, the fourth operating parameter includes: the fourth set temperature, the offset angle of the horizontal swing blade being the second preset angle, and the offset angle of the vertical swing blade being 0°.

[0136] The value range of the fourth set temperature is 22 to 25°C.

[0137] Specifically, in the embodiment of the present invention, the fourth operating parameter refers to the operating parameter preset in the second heating mode when the air conditioner enters the second-stage heating, which is used to reduce noise while slowing down the heating speed, so as to avoid further increase in the indoor ambient temperature and affect the user's body feeling comfort.

[0138] To achieve the purpose of reducing noise and slowing down the heating speed, in the embodiment of the present invention, the air is blown in the automatic wind mode, and at the same time, the heating intensity of the air conditioner is reduced by setting the fourth operating parameter.

[0139] More specifically, in the embodiment of the present invention, the fourth operating parameter includes the fourth set temperature, the offset angle of the horizontal swing blade being the second preset angle, and the offset angle of the vertical swing blade being 0°; the value range of the fourth set temperature is 22 to 25°C.

[0140] Optionally, in the embodiment of the present invention, the second preset angle is -70°, and the second set temperature is 27°C. Thus, when the air conditioner starts to execute the second-stage heating of the second scenario mode, the air conditioner can be controlled to blow air in the automatic wind mode in the second heating mode, the fourth set temperature is 24°C, the offset angle of the horizontal swing blade is -70° for heating and blowing downward, and the offset angle of the vertical swing blade is 0° for maximum air output operation.

[0141] The method according to an embodiment of the present invention prevents the heating temperature from being set too high by setting a fourth set temperature. By setting the offset angle of the horizontal swing blade to a second preset angle, the heating air volume is maintained for downward blowing during heating. At the same time, by setting the offset angle of the vertical swing blade to 0°, it is ensured that the air is supplied at the maximum air volume, so as to accurately and efficiently control the air conditioner to perform the second-stage heating, effectively realizing the effect of quickly slowing down the heating speed on the basis of reducing noise, avoiding the situation that the indoor temperature continues to rise and causing poor user body feeling comfort, and improving the user experience.

[0142] The air conditioner control device provided by the present invention will be described below. The air conditioner control device described below can be mutually referred to the air conditioner control method described above.

[0143] Figure 2 is a schematic structural diagram of the air conditioner control device provided by the present invention, as Figure 2 shown, including:

[0144] A first control module 210, configured to control the air conditioner to supply air in an automatic wind mode and operate at a first operating parameter in a first refrigeration mode after the air conditioner starts to execute a first scenario mode;

[0145] A second control module 220, configured to control the air conditioner to supply air in an automatic wind mode and operate at a second operating parameter in a second refrigeration mode until the air conditioner stops executing the first scenario mode when a first preset condition is satisfied;

[0146] Wherein, the operating parameters include: set temperature, offset angle of the horizontal swing blade, and offset angle of the vertical swing blade.

[0147] The air conditioner control device described in this embodiment can be used to execute the above-mentioned air conditioner control method embodiment, and its principle and technical effect are similar, which will not be elaborated here.

[0148] The air conditioner control device according to an embodiment of the present invention controls the air conditioner to supply air in an automatic wind mode and operate at a first operating parameter in a first refrigeration mode after the air conditioner starts to execute a first scenario mode; when a first preset condition is satisfied, it controls the air conditioner to supply air in an automatic wind mode and operate at a second operating parameter in a second refrigeration mode until the air conditioner stops executing the first scenario mode; wherein, the operating parameters include: set temperature, offset angle of the horizontal swing blade, and offset angle of the vertical swing blade, which can control the air conditioner more flexibly during the execution of the first scenario mode by the air conditioner, so as to reduce the noise generated during refrigeration on the basis of quickly reducing the indoor environmental temperature. At the same time, through the phased adjustment method, the noise generated during refrigeration can be further reduced, and at the same time, the situation that the indoor temperature is too low and causes poor user body feeling comfort can be avoided, reducing the user's manual operation, improving the user experience, and improving the energy conservation and emission reduction efficiency of the air conditioner.

[0149] Figure 3 is a schematic structural diagram of a controller in an air conditioner provided by the present invention. As Figure 3 shown, the electronic device may include: a processor 310, a communications interface 320, a memory 330, and a communication bus 340. Among them, the processor 310, the communications interface 320, and the memory 330 complete mutual communication through the communication bus 340. The processor 310 may call logic instructions in the memory 330 to execute the air conditioner control method provided by each of the above methods. The method includes: after the air conditioner starts to execute the first scenario mode, controlling the air conditioner to blow air in the automatic wind mode in the first cooling mode and operate with a first operating parameter; when a first preset condition is satisfied, controlling the air conditioner to blow air in the automatic wind mode in the second cooling mode and operate with a second operating parameter until the air conditioner stops executing the first scenario mode; where the operating parameters include: set temperature, offset angle of the horizontal louver, and offset angle of the vertical louver.

[0150] In addition, when the logic instructions in the above-mentioned memory 330 can be implemented in the form of a software functional unit and sold or used as an independent product, they can be stored in a computer-readable storage medium. Based on such an understanding, the technical solution of the present invention, in essence, or the part that contributes to the prior art, or a part of this technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions for causing a computer device (which may be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods described in various embodiments of the present invention. The foregoing storage medium includes: various media such as a USB flash drive, a mobile hard disk, a read-only memory (ROM, Read-Only Memory), a random access memory (RAM, Random Access Memory), a magnetic disk, or an optical disc that can store program codes.

[0151] On the other hand, the present invention also provides a computer program product, which includes a computer program that can be stored on a non-transitory computer-readable storage medium. When the computer program is executed by a processor, the computer can execute the air conditioner control method provided by each of the above methods. The method includes: after the air conditioner starts to execute the first scenario mode, controlling the air conditioner to blow air in the automatic wind mode in the first cooling mode and operate with a first operating parameter; when a first preset condition is met, controlling the air conditioner to blow air in the automatic wind mode in the second cooling mode and operate with a second operating parameter until the air conditioner stops executing the first scenario mode; wherein the operating parameters include: set temperature, offset angle of the horizontal swing blade, and offset angle of the vertical swing blade.

[0152] In another aspect, the present invention also provides a non-transitory computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, it is implemented to execute the air conditioner control method provided by each of the above methods. The method includes: after the air conditioner starts to execute the first scenario mode, controlling the air conditioner to blow air in the automatic wind mode in the first cooling mode and operate with a first operating parameter; when a first preset condition is met, controlling the air conditioner to blow air in the automatic wind mode in the second cooling mode and operate with a second operating parameter until the air conditioner stops executing the first scenario mode; wherein the operating parameters include: set temperature, offset angle of the horizontal swing blade, and offset angle of the vertical swing blade.

[0153] The device embodiments described above are merely illustrative. The units described as separate components may or may not be physically separated. 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. A person of ordinary skill in the art can understand and implement it without creative labor.

[0154] Through the description of the above embodiments, those skilled in the art can clearly understand that each embodiment can be implemented by means of software plus a necessary general hardware platform, and of course, it can also be implemented by hardware. Based on such an understanding, the essence of the above technical solution, or the part that contributes to the prior art, can be embodied in the form of a software product. The computer software product can be stored in a computer-readable storage medium, such as ROM / RAM, magnetic disk, optical disc, etc., and includes several instructions for causing a computer device (which can be a personal computer, a server, or a network device, etc.) to execute the methods described in each embodiment or some parts of the embodiments.

[0155] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the various embodiments of the present invention.

Claims

1. An air conditioner control method, characterized in that, Including: After the air conditioner starts to execute the first scenario mode, staged refrigeration is set in the first scenario mode, including first-stage refrigeration and second-stage refrigeration; The first-stage refrigeration includes: controlling the air conditioner to blow air in the automatic wind mode in the first refrigeration mode and operate with first operating parameters, and intelligently adjusting the wind speed by combining the temperature difference between the set temperature and the actual indoor temperature to reduce the noise generated during the rapid refrigeration process; the first operating parameters include a first set temperature, the offset angle of the horizontal swing blade is 60° to 70°, and the offset angle of the vertical swing blade is 0°, and the first operating parameters are used to reduce noise and accelerate refrigeration; The second-stage refrigeration includes: when the first execution duration is greater than the first time threshold and the first indoor temperature is not greater than the first temperature threshold, controlling the air conditioner to blow air in the automatic wind mode in the second refrigeration mode and operate with second operating parameters until the air conditioner stops executing the first scenario mode; the second operating parameters include a second set temperature, the offset angle of the set horizontal swing blade is 60° to 70°, and controlling the vertical swing blade to swing back and forth at a constant speed to reduce the flow rate of cold air blowing into the room, and the second operating parameters are used to reduce the refrigeration intensity and reduce noise; Wherein, the operating parameters include: set temperature, offset angle of the horizontal swing blade, and offset angle of the vertical swing blade; The first execution duration is the cumulative duration of the air conditioner executing the first scenario mode; the first set temperature is less than the second set temperature.

2. The air conditioner control method according to claim 1, wherein The first operating parameters include: When the horizontal swing blade swings upward, the offset angle of the horizontal swing blade is positive; The value range of the first set temperature is 22 to 25 °C.

3. The air conditioner control method according to claim 2, wherein, The second operating parameters include: The value range of the second set temperature is 26 to 28 °C.

4. The air conditioner control method according to claim 1, wherein, Also including: After the air conditioner starts to execute the second scenario mode, controlling the air conditioner to turn on the auxiliary heating function and operate at the maximum wind speed and third operating parameters in the first heating mode; When the second preset condition is met, controlling the air conditioner to turn off the auxiliary heating function and blow air in the automatic wind mode in the second heating mode and operate with fourth operating parameters until the air conditioner stops executing the second scenario mode.

5. The air conditioner control method according to claim 4, characterized in that, The controlling the air conditioner to turn off the auxiliary heating function when the second preset condition is met includes: When the second execution duration is greater than the second time threshold and the second indoor temperature is not less than the second temperature threshold, controlling the air conditioner to turn off the auxiliary heating function; The second execution duration is the cumulative duration of the air conditioner executing the second scenario mode.

6. The control method of the air conditioner according to claim 4, characterized in that, The third operating parameters include: a third set temperature, the offset angle of the horizontal swing blade is the second preset angle, and the offset angle of the vertical swing blade is 0°; The value range of the second preset angle is -60° to -70°, and when the horizontal swing blade swings downward, the offset angle of the horizontal swing blade is negative; The value range of the third set temperature is 26 to 28 °C.

7. The control method of the air conditioner according to claim 6, wherein The fourth operating parameter includes: a fourth set temperature, an offset angle of the horizontal swing blade being the second preset angle, and an offset angle of the vertical swing blade being 0°; The value range of the fourth set temperature is 22 to 25 °C.

8. An air conditioner control device, characterized in that, It includes: A first control module, configured to, after the air conditioner starts to execute the first scenario mode, set staged refrigeration in the first scenario mode, including first-stage refrigeration and second-stage refrigeration; The first-stage refrigeration includes: controlling the air conditioner to blow air in the automatic wind mode in the first refrigeration mode and operate with a first operating parameter; intelligently adjusting the wind speed by combining the temperature difference between the set temperature and the actual indoor temperature to reduce the noise generated during the rapid refrigeration process; the first operating parameter includes a first set temperature, an offset angle of the horizontal swing blade being 60° to 70°, and an offset angle of the vertical swing blade being 0°, and the first operating parameter is used to reduce noise and accelerate refrigeration; A second control module, configured to the second-stage refrigeration includes: when it is satisfied that the first execution duration is greater than the first time threshold and the first indoor temperature is not greater than the first temperature threshold, controlling the air conditioner to blow air in the automatic wind mode in the second refrigeration mode and operate with a second operating parameter until the air conditioner stops executing the first scenario mode; the second operating parameter includes a second set temperature, a set offset angle of the horizontal swing blade being 60° to 70°, and controlling the vertical swing blade to swing back and forth at a constant speed to reduce the flow rate of the cold air blown into the room, and the second operating parameter is used to reduce the refrigeration intensity and reduce noise; Wherein, the operating parameter includes: a set temperature, an offset angle of the horizontal swing blade, and an offset angle of the vertical swing blade; the first execution duration is the cumulative duration of the air conditioner executing the first scenario mode; the first set temperature is less than the second set temperature.

9. An air conditioner, comprising a controller, the controller comprising a memory, a processor, and a computer program stored on the memory and executable on the processor, characterized in that, When the processor executes the program, it implements the air conditioner control method according to any one of claims 1 to 7.

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

11. A computer program product, comprising a computer program, characterized in that, When the computer program is executed by the processor, it implements the air conditioner control method according to any one of claims 1 to 7.

Citation Information

Patent Citations

  • Air conditioner and control method and equipment thereof as well as storage medium

    CN111256308A

  • Control method of air conditioner and electronic equipment

    CN113757969A