Air conditioner control method, storage medium, electronic equipment and air conditioner

By combining the air guide plate movement strategy and parameter operation strategy in the air conditioner, and using planar grid layout and spacing to adjust the compressor frequency and fan speed, the problem of poor airflow comfort of the air conditioner is solved, achieving a more uniform temperature distribution and a more comfortable air supply effect.

CN120488457APending Publication Date: 2025-08-15QINGDAO HAIER AIR CONDITIONER GENERAL CORP LTD +1
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Patent Information

Application Number
CN202510468739.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-15
Publication Date
2025-08-15

AI Technical Summary

Technical Problem

The airflow comfort of existing air conditioners is poor, resulting in a reduced user comfort and may cause health problems such as colds and muscle tension.

Method used

In the air conditioner control method, combining the movement strategy and parameter operation strategy of the air guide plate, the air supply direction is determined using the planar grid layout, and the compressor frequency and indoor fan speed are adjusted according to the distance between the cell and the body, so as to achieve screw rotation and precise control of the air supply direction.

Benefits of technology

It improves the temperature uniformity and the softness of the airflow in the air conditioner space, improves the user's comfort, avoids direct blows from users, and enhances the environmental control capabilities of the air conditioner.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of air conditioners, particularly provides an air conditioner control method, a storage medium, electronic equipment and an air conditioner, and aims to solve the problem of poor stability after a frequency reduction mode is started in an existing air conditioner. In order to achieve the purpose, the control method of the air conditioner comprises the steps that based on control request information, a parameter operation strategy of the air conditioner is determined; according to a preset air deflector moving strategy and a parameter operation strategy of the air conditioner, the air conditioner is controlled to operate; wherein the parameter operation strategy comprises at least one of a frequency adjusting scheme of a compressor and a rotating speed adjusting scheme of an indoor fan. According to the scheme, under the condition that the parameter operation strategy of the air conditioner is determined, the air deflector moving strategy is combined, the more reasonable operation scheme of the compressor of the air conditioner and the operation scheme of the indoor fan are determined, the indoor environment where the air conditioner is located is intelligently adjusted, and the comfort requirement of a user for the environment where the air conditioner is located is met.
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Description

Technical Field

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

[0002] Air conditioners, which regulate indoor comfort, have become essential appliances in today's homes. To meet people's increasingly demanding comfort standards, inverter air conditioners, with their energy-saving, high-efficiency, and precise temperature control advantages, have gradually become the mainstream technology in the air conditioning industry. Compared with traditional fixed-frequency air conditioners, inverter air conditioners adjust the operating frequency of the compressor to adjust cooling or heating capacity in real time according to changes in indoor and outdoor environments, significantly reducing energy consumption and improving user comfort. Driven by intelligent control technology and the demand for energy conservation and environmental protection, inverter air conditioners have achieved significant progress in energy efficiency, response speed, and intelligence.

[0003] Air conditioners in the related art typically use manual or preset modes to adjust the airflow angle of the air deflector to improve airflow comfort. However, due to the limitations of the air deflector's adjustment range and airflow patterns, this control method still results in direct airflow directly hitting the user and uneven indoor ambient temperature. This not only reduces user comfort but can also cause health problems such as colds, muscle tension, and air conditioning sickness. Summary of the Invention

[0004] The present invention aims to solve the above technical problem, that is, to solve the problem of poor air flow comfort of air conditioners.

[0005] The present invention provides a control method for an air conditioner, wherein the air conditioner includes a body and an air guide plate arranged on the body, the air guide plate includes a first guide plate and a second guide plate, the first guide plate swings in a horizontal direction, and the second guide plate swings in a vertical direction, the control method includes: obtaining control request information; determining a parameter operation strategy of the air conditioner based on the control request information; controlling the operation of the air conditioner according to a preset air guide plate movement strategy and the parameter operation strategy of the air conditioner; wherein the parameter operation strategy includes at least one of a frequency adjustment scheme of a compressor and a speed adjustment scheme of an indoor fan; the air guide plate movement strategy and the parameter operation strategy are determined based on the plane grid layout of the space where the air conditioner is located, the plane grid layout includes a plurality of cells numbered in sequence, and the plane grid layout is pre-set.

[0006] When using the above technical solution, the air conditioner's parameter operation strategy is determined based on control request information and combined with the air deflector movement strategy to control the air conditioner's operation. The parameter operation strategy includes a frequency adjustment scheme for the compressor and a speed adjustment scheme for the indoor extension units. This scheme can determine more optimal operation plans for the air conditioner's compressor and indoor fan, effectively ensuring environmental control within the air conditioner's space and intelligently adjusting the indoor environment to meet the user's comfort needs.

[0007] In an optional implementation scheme of the above-mentioned air-conditioning control method, the air guide plate movement strategy is determined based on the following method: obtaining the numbering order of multiple cells in a plane grid layout; determining the rotation angle of the first guide plate and the rotation angle of the second guide plate according to the numbering order of the cells, so that the air supply direction of the air conditioner corresponds to the numbering order in sequence; wherein, the numbering order is to take any corner cell in the outermost circle of the plane grid layout as the starting cell, and start from the starting cell and spirally sort from the outer circle to the inner circle.

[0008] When the above technical solution is adopted, the rotation angles of the corresponding first guide plate and the second guide plate can be accurately determined by sorting the cell numbers, and the air supply direction of the air conditioner can be further controlled. That is, the air supply direction of the air guide plate is spirally rotated from the outermost circle to the inner circle in sequence according to the cell number sorting, so that the air guide plate can rotate around the space where the air conditioner is located to supply air, thereby improving the temperature uniformity in the space where the air conditioner is located, and improving the softness and comfort of the air flow.

[0009] In an optional implementation scheme of the above-mentioned air conditioner control method, the parameter operation strategy of the air conditioner is determined based on the control request information, including: if the control request information is a global matrix air supply mode, obtaining the distance between each cell and the body; based on the distance between each cell and the body, determining the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme.

[0010] When the above technical solution is adopted, the frequency of the compressor and the speed of the indoor fan can be determined and adjusted according to the distance between each cell and the body. With this solution, when the air supply direction extension number of the air guide plate changes in sequence, the frequency of the compressor and the speed of the indoor fan can be controlled to be adjusted accordingly, thereby improving the comfort of the air outlet of the air conditioner.

[0011] In an optional implementation scheme of the above-mentioned air-conditioning control method, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme are determined based on the distance between each cell and the body, including: based on the distance between each cell and the body, determining the speed gear of the indoor fan and the corresponding first frequency reduction coefficient of the compressor when the air supply direction of the air conditioner corresponds to any cell; wherein, the larger the distance between the cell and the body, the higher the speed gear of the indoor fan and the greater the operating frequency of the compressor; the first frequency reduction coefficient is less than or equal to 1.

[0012] When using the above technical solution, the greater the distance between the cell and the housing, the higher the speed of the indoor fan and the operating frequency of the compressor. That is, the farther the cell is from the housing, the higher the speed of the indoor fan. This improves the fluidity of airflow at locations farther from the housing, thereby improving the uniformity of airflow distribution within the air-conditioning space. Simultaneously, the compressor is controlled to operate at a lower frequency according to a first frequency reduction factor corresponding to the distance between the cell and the housing, thus preventing localized overcooling or overheating. This solution, in conjunction with the air guide, indoor fan, and compressor, can improve temperature uniformity within the air-conditioning space, enhancing user comfort.

[0013] In an optional implementation scheme of the above-mentioned air-conditioning control method, the parameter operation strategy of the air-conditioning is determined based on the control request information, including: if the control request information is an anti-direct blowing air supply mode, obtaining the spatial information of the cell where the user is located, the indoor ambient temperature, and the current indoor fan speed; based on the spatial information, the indoor ambient temperature and the current indoor fan speed, determining the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme; wherein, the spatial information includes the serial number of the cell where the user is located and the distance between it and the machine body.

[0014] When adopting the above technical solution, when the control request information is the anti-direct blowing air supply mode, by combining the spatial information of the user's cell, the indoor ambient temperature, and the current indoor fan speed, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme of the air conditioner in this mode are accurately controlled to improve user comfort.

[0015] In an optional implementation scheme of the above-mentioned air-conditioning control method, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme are determined based on the spatial information, the indoor ambient temperature and the current indoor fan speed, including: determining the corresponding target temperature threshold in the temperature-distance-speed table based on the indoor ambient temperature; determining the corresponding target distance threshold in the temperature-distance-speed table based on the distance between the user's cell and the body; determining the current speed gear corresponding to the indoor fan in the temperature-distance-speed table based on the current indoor fan speed; determining the second frequency reduction coefficient of the compressor and determining the target speed gear of the indoor fan according to the target temperature threshold, the target distance threshold and the current speed gear; wherein, the second frequency reduction coefficient is less than 1.

[0016] When using the above technical solution, the target temperature threshold, target distance threshold, and current speed gear can be determined based on the user's location, indoor ambient temperature, and current indoor fan speed to control the compressor's frequency reduction operation, thereby determining the second frequency reduction coefficient of the compressor and the target speed direction of the indoor fan. This solution can accurately adjust the operating frequency of the compressor and the speed of the indoor fan according to the indoor environment and user location, thereby improving user comfort and avoiding direct blowing on the user.

[0017] In an optional implementation scheme of the above-mentioned air-conditioning control method, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme are determined based on the spatial information, the indoor ambient temperature and the current indoor fan speed, and also includes: taking the cell where the user is located as the target air supply position, and based on the serial number of the cell where the user is located, determining a first trigger position that is preset a first number of cells ahead of the target air supply position; when the air supply direction of the air conditioner corresponds to the first trigger position, determining the current second frequency of the compressor, and controlling the compressor to operate based on the product of the second frequency and the second frequency reduction coefficient; wherein, the product of the second frequency and the second frequency reduction coefficient is greater than or equal to the lowest frequency.

[0018] When adopting the above technical solution, the frequency of the compressor can be adjusted in advance when the cell corresponding to the air supply direction of the air conditioner, i.e., the air supply direction of the air guide plate, is the first number of cells away from the target air supply position, so as to improve the comfort of the outlet air flow when it reaches the cell where the user is located, avoid direct blowing on the user, and improve the user experience.

[0019] In an optional implementation scheme of the above-mentioned air-conditioning control method, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme are determined based on the space information, the indoor ambient temperature and the current indoor fan speed, and also includes: based on the serial number of the cell where the user is located, determining a second trigger position that is preset a second number of cells ahead of the target air supply position; when the air supply direction of the air conditioner corresponds to the second trigger position, determining the current first speed gear of the indoor fan, and controlling the indoor fan to operate according to the target speed gear.

[0020] When adopting the above technical solution, the air guide plate can be controlled to adjust the speed of the indoor fan in advance when it is the second cell number away from the target air supply position, thereby further improving the comfort of the outlet air flow when it reaches the cell where the user is located, avoiding direct blowing on the user, and improving the user experience.

[0021] In an optional implementation scheme of the above-mentioned air-conditioning control method, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme are determined based on the space information, the indoor ambient temperature and the current indoor fan speed, and also includes: when the air supply direction of the air-conditioning corresponds to the target air supply position, controlling the compressor to operate at the second frequency, and controlling the indoor fan to operate at the first speed gear.

[0022] When the above technical solution is adopted, the first speed gear and the second frequency can be restored when the air guide plate rotates to the target air supply position, that is, the hysteresis of the change in cooling capacity after the compressor adjusts the frequency is utilized to ensure that the air supply direction of the air conditioner corresponds to the temperature around the cell where the user is located, thereby improving comfort.

[0023] The present invention also provides a computer-readable storage medium storing a plurality of program codes, wherein the program codes are suitable for being loaded and run by a processor to execute any of the aforementioned air conditioner control methods.

[0024] The present application also provides an electronic device, comprising a processor and a storage device, wherein the storage device is suitable for storing multiple program codes, and the program codes are suitable for being loaded and run by the processor to execute any of the aforementioned air conditioner control methods.

[0025] The present application also provides an air conditioner, which includes the electronic device as described above. Solution 1. A method for controlling an air conditioner, the air conditioner comprising a body and an air guide plate disposed on the body, the air guide plate comprising a first guide plate and a second guide plate, the first guide plate swinging horizontally and the second guide plate swinging vertically, the method comprising: Get control request information; Determining a parameter operation strategy for the air conditioner based on the control request information; Controlling the operation of the air conditioner according to a preset air guide plate movement strategy and a parameter operation strategy of the air conditioner; Among them, the parameter operation strategy includes at least one of a frequency adjustment scheme of the compressor and a speed adjustment scheme of the indoor fan; the air guide plate movement strategy and the parameter operation strategy are determined based on the plane grid layout of the space where the air conditioner is located, and the plane grid layout includes multiple cells numbered in sequence, and the plane grid layout is pre-set. Solution 2. The control method according to claim 1, wherein the air deflector movement strategy is determined based on the following method: Get the number order of multiple cells in a flat grid layout; Determining a rotation angle of the first guide plate and a rotation angle of the second guide plate according to the numbering sequence of the cells, so that an air supply direction of the air conditioner corresponds to the numbering sequence in sequence; The numbering sequence is to use any corner cell in the outermost circle of the plane grid layout as the starting cell, and then start from the starting cell and sort in a spiral from the outer circle to the inner circle. Solution 3. The control method according to claim 2, wherein determining the parameter operation strategy of the air conditioner based on the control request information comprises: If the control request information is a global matrix air supply mode, obtaining the distance between each cell and the machine body; Based on the distance between each cell and the machine body, a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme are determined. Solution 4. The control method according to claim 3, wherein determining a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on the distance between each cell and the machine body comprises: Determining, based on the distance between each cell and the body, a speed gear of the indoor fan and a corresponding first frequency reduction coefficient of the compressor when the air supply direction of the air conditioner corresponds to any cell; Among them, the larger the distance between the unit cell and the body, the higher the speed gear of the indoor fan and the greater the operating frequency of the compressor; the first frequency reduction coefficient is less than or equal to 1. Solution 5. The control method according to claim 2, wherein determining the parameter operation strategy of the air conditioner based on the control request information comprises: If the control request information is for an anti-direct blowing air supply mode, obtaining the space information of the cell where the user is located, the indoor ambient temperature, and the current speed of the indoor fan; Determining a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed; The spatial information includes the serial number of the cell where the user is located and the distance between the user and the body. Solution 6. The control method according to claim 5, wherein determining the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed comprises: Based on the indoor ambient temperature, determine the corresponding target temperature threshold in the temperature distance speed table; Determine a corresponding target distance threshold in the temperature distance speed table based on the distance between the user's cell and the body; Based on the current speed of the indoor fan, determine the corresponding current speed gear in the temperature distance speed table; Determining a second frequency reduction coefficient of the compressor and a target speed level of the indoor fan according to the target temperature threshold, the target distance threshold, and the current speed level; The second frequency reduction coefficient is less than 1. Solution 7. The control method according to claim 6, wherein determining the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed further comprises: The cell where the user is located is used as the target air supply position, and based on the sequence number of the cell where the user is located, a first trigger position is determined that is a preset first number of cells ahead of the target air supply position; When the air supply direction of the air conditioner corresponds to the first trigger position, determining the current second frequency of the compressor, and controlling the compressor to operate based on the product of the second frequency and the second frequency reduction coefficient; The product of the second frequency and the second frequency reduction coefficient is greater than or equal to the lowest frequency. Solution 8. The control method according to claim 7, wherein determining the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed further comprises: Determining, based on the sequence number of the cell where the user is located, a second trigger position that is a preset second number of cells ahead of the target air supply position; When the air supply direction of the air conditioner corresponds to the second trigger position, the current first speed gear of the indoor fan is determined, and the indoor fan is controlled to operate according to the target speed gear. Solution 9. The control method according to claim 8, wherein determining the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed further comprises: When the air supply direction of the air conditioner corresponds to the target air supply position, the compressor is controlled to operate at the second frequency, and the indoor fan is controlled to operate at the first speed gear. Solution 10. A computer-readable storage medium storing a plurality of program codes, wherein the program codes are suitable for being loaded and run by a processor to execute the air conditioner control method according to any one of claims 1 to 9. Solution 11. An electronic device comprising a processor and a storage device, wherein the storage device is suitable for storing multiple program codes, and wherein the program codes are suitable for being loaded and run by the processor to execute the air conditioner control method according to any one of claims 1 to 9. Solution 12. An air conditioner, characterized in that the air conditioner includes the electronic device according to claim 11. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] The preferred embodiments of the present invention are described below with reference to the accompanying drawings, in which:

[0027] Figure 1 This is a planar grid layout diagram of a room where an air conditioner is located, provided by an embodiment of the present disclosure;

[0028] Figure 2 This is a flow chart of a method for controlling an air conditioner provided by an embodiment of the present disclosure;

[0029] Figure 3 This is a schematic diagram of a flow chart for determining a wind deflector movement strategy provided by an embodiment of the present disclosure;

[0030] Figure 4 This is a flow chart of determining a parameter operation strategy of an air conditioner based on control request information provided by an embodiment of the present disclosure;

[0031] Figure 5 is another flowchart of determining a parameter operation strategy of an air conditioner based on control request information provided by an embodiment of the present disclosure;

[0032] Figure 6 This is a flowchart of determining a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on space information, indoor ambient temperature, and the current indoor fan speed, provided by an embodiment of the present disclosure;

[0033] Figure 7This is another flowchart of determining a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on space information, indoor ambient temperature, and the current indoor fan speed, provided by an embodiment of the present disclosure;

[0034] Figure 8 This is another flowchart of determining a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on space information, indoor ambient temperature, and the current indoor fan speed, provided by an embodiment of the present disclosure;

[0035] Figure 9 It is a structural diagram of an electronic device provided by an embodiment of the present disclosure. DETAILED DESCRIPTION

[0036] The preferred embodiments of the present application are described below with reference to the accompanying drawings. Those skilled in the art should understand that these embodiments are only used to explain the technical principles of the present application and are not intended to limit the scope of protection of the present application.

[0037] In the description of this application, a "processor" may include hardware, software, or a combination of the two. A processor may be a central processing unit, a microprocessor, a digital signal processor, or any other suitable processor. A processor has data and / or signal processing capabilities. A processor may be implemented in software, hardware, or a combination of the two. Computer-readable storage media include any suitable medium capable of storing program code, such as a magnetic disk, a hard disk, an optical disk, flash memory, read-only memory, random access memory, and the like.

[0038] Currently, air conditioners typically adjust the airflow angle of the air deflector manually or in preset modes to improve airflow comfort. However, due to the limitations of the air deflector's adjustment range and airflow patterns, this control method still results in direct airflow directly hitting the user and uneven indoor ambient temperature. This not only reduces user comfort but can also cause health issues such as colds, muscle tension, and air conditioning sickness.

[0039] Therefore, in order to solve the problem of poor air flow comfort of the air conditioner, the present invention provides a control method for the air conditioner. Figures 1 to 8 , the control method of the air conditioner of the present invention is introduced.

[0040] Figure 2 This is a flow chart of an air conditioner control method provided by an embodiment of the present disclosure. Figure 2 As shown, the air conditioner control method includes:

[0041] S21, obtaining control request information.

[0042] S22: Determine a parameter operation strategy for the air conditioner based on the control request information.

[0043] S23, controlling the operation of the air conditioner according to the preset air guide plate movement strategy and the parameter operation strategy of the air conditioner.

[0044] The parameter operation strategy includes at least one of a frequency adjustment scheme of the compressor and a speed adjustment scheme of the indoor fan.

[0045] The air guide plate movement strategy and the parameter operation strategy are determined based on the plane grid layout of the space where the air conditioner is located. The plane grid layout includes a plurality of sequentially numbered cells, and the plane grid layout is pre-set.

[0046] Optionally, the indoor unit of the air conditioner includes a housing and an air guide plate disposed at an air outlet of the housing, the air guide plate including a first guide plate that swings horizontally and a second guide plate that swings vertically. The air supply direction of the air conditioner is the air supply direction of the air guide plate, and the air supply direction is determined by the rotation angle of the first guide plate and the rotation angle of the second guide plate.

[0047] The wind deflector movement strategy is determined according to the plane grid layout of the space where the air conditioner (ie, the housing) is located. Figure 1 As shown, the vertical plane of the space where the air conditioner is located (which can be understood as the floor of the space where the air conditioner is located) can be divided into multiple adjacent cells. Among them, when dividing, it can be divided evenly or unevenly. Specifically, a modeling sensor device can be provided on the indoor unit of the air conditioner, and the modeling sensor device can appropriately divide different numbers of cells according to the size of the space where the air conditioner is located. Alternatively, if the air conditioner itself is not provided with a modeling sensor device, the space where the air conditioner is located is divided into N cells by default. Optionally, N can be 36, 49, 64 or the like.

[0048] In this solution, the control request information refers to the corresponding air conditioner operating mode. This allows for the determination of different air conditioner parameter operation strategies based on different control information requests. Based on the air conditioner parameter operation strategy and the air deflector movement strategy, the compressor frequency and indoor fan speed level are adjusted, achieving more precise control of the air conditioner.

[0049] Specifically, this solution uses control request information to determine the air conditioner's parameter operation strategy, which is then combined with the air deflector movement strategy to control the air conditioner's operation. The parameter operation strategy includes a frequency adjustment strategy for the compressor and a speed adjustment strategy for the indoor units. This allows the air conditioner to determine an operation strategy that produces a more comfortable airflow.

[0050] When using the above technical solution, the air conditioner's parameter operation strategy is determined based on control request information and combined with the air deflector movement strategy to control the air conditioner's operation. The parameter operation strategy includes a frequency adjustment scheme for the compressor and a speed adjustment scheme for the indoor extension units. This scheme can determine more optimal operation plans for the air conditioner's compressor and indoor fan, effectively ensuring environmental control within the air conditioner's space and intelligently adjusting the indoor environment to meet the user's comfort needs.

[0051] Figure 3 This is a flow chart of determining the movement strategy of the wind deflector provided by the embodiment of the present disclosure. Figure 3 As shown, the wind deflector movement strategy is determined based on the following method:

[0052] S31, obtaining the numbering order of multiple cells in the planar grid layout.

[0053] S32: Determine the rotation angle of the first guide plate and the rotation angle of the second guide plate according to the cell numbering sequence, so that the air supply direction of the air conditioner corresponds to the cell numbering sequence.

[0054] The numbering sequence is to use any corner cell in the outermost circle of the plane grid layout as the starting cell, and then start from the starting cell and sort in a spiral from the outer circle to the inner circle.

[0055] Specifically, combined Figure 1 As shown in Tables 1-1 to 1-4, the plane of the space where the air conditioner is located is divided into a grid consisting of multiple cells. The shape of the grid matches the plane shape of the space where the air conditioner is located. Any corner cell in the outermost grid is determined as the starting cell, and the starting cell is used as the starting point of the spiral sorting. Starting from the starting cell, the numbers are sorted in a spiral from the outer circle to the inner circle until each cell is numbered. Among them, the numbers are increased in sequence from a certain starting value to ensure that the numbers on each cell are not repeated.

[0056] Optionally, the air guide plate includes a first guide plate and a second guide plate. The maximum angle of the first guide plate from the rightmost to the leftmost side is recorded as K1, and the maximum angle of the second guide plate from bottom to top is recorded as K2. As an example, the plane grid layout is evenly divided into 64 (8*8) cells. Table 1-1 is a plane grid layout diagram, and Table 1-2 is a moving point diagram of the air guide plate. The cells in the plane grid layout of Table 1-1 correspond one-to-one to the points in Table 1-2. Table 1-1 22 21 20 19 18 17 16 15 23 44 43 42 41 40 39 14 24 45 58 57 56 55 38 13 25 46 59 61 63 54 37 12 26 47 60 61 62 53 36 11 27 48 49 50 51 52 35 10 28 29 30 31 32 33 34 9 1 2 3 4 5 6 7 8 Table 1-2

[0057] Table 1-3 is a comparison table for the first angle of the air deflector. Refer to Table 1-3 to determine the rotation angle of the first guide plate when it rotates to each cell. Table 1-4 is a comparison table for the second angle of the air deflector. Refer to Table 1-4 to determine the rotation angle of the second guide plate when it corresponds to each cell. The direction from A to H is from the rightmost to the leftmost, and the direction from 1 to 8 is the direction in which the cell is increasingly farther from the housing. When the air supply direction of the air deflector moves sequentially in the order of the numbers, Tables 1-1 to 1-4 are called to determine the point parameters of the cell, and the rotation angles of the first and second guide plates are further determined based on the point parameters. Table 1-3 A B C D E F G H 0.2K1 0.35K1 0.45K1 0.50K1 0.55K1 0.65K1 0.80K1 1.00K1 Table 1-4 1 2 3 4 5 6 7 8 0.07K2 0.15K2 0.24K2 0.34K2 0.46K2 0.62K2 0.80K2 1.00K2

[0058] Optionally, the air deflector stays in each cell for 2 seconds. Alternatively, the air deflector stays in each cell for longer than 2 seconds.

[0059] When the above technical solution is adopted, the rotation angles of the corresponding first guide plate and the second guide plate can be accurately determined by sorting the cell numbers, and the air supply direction of the air conditioner can be further controlled. That is, the air supply direction of the air guide plate is spirally rotated from the outermost circle to the inner circle in sequence according to the cell number sorting, so that the air guide plate can rotate around the space where the air conditioner is located to supply air, thereby improving the temperature uniformity in the space where the air conditioner is located, and improving the softness and comfort of the air flow.

[0060] Alternatively, the numbering sequence and the points may be of other types, and the cells and the points may correspond one to one.

[0061] Figure 4 This is a flow chart of determining a parameter operation strategy of an air conditioner based on control request information provided by an embodiment of the present disclosure.

[0062] Combine Figure 4 As shown, based on the control request information, the parameter operation strategy of the air conditioner is determined, including:

[0063] S41: If the control request information is for the global matrix air supply mode, the distance between each cell and the machine body is obtained.

[0064] S42: Determine a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on the distance between each cell and the machine body.

[0065] In this solution, the full matrix air supply mode represents that the air supply direction of the air conditioner is distributed along the cells and the air is supplied in sequence. By determining the distance between each cell and the casing, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme are determined. As an example, the distance between the center point of each cell and the casing can be used as the distance between the cell and the casing. As another example, the distance between the side of each cell close to the casing and the casing can be used as the distance between the cell and the casing. In this way, according to the distance between the cell and the casing, when the air supply direction extension number of the air conditioner (air guide plate) changes in sequence, the frequency of the compressor and the speed of the indoor fan can be controlled to adjust accordingly, thereby improving the comfort of the air outlet of the air conditioner.

[0066] When the above technical solution is adopted, the frequency of the compressor and the speed of the indoor fan can be determined and adjusted according to the distance between each cell and the body. With this solution, when the air supply direction extension number of the air guide plate changes in sequence, the frequency of the compressor and the speed of the indoor fan can be controlled to be adjusted accordingly, thereby improving the comfort of the air outlet of the air conditioner.

[0067] In an optional implementation scheme of the above-mentioned air-conditioning control method, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme are determined based on the distance between each cell and the body, including: based on the distance between each cell and the body, determining the speed gear of the indoor fan and the corresponding first frequency reduction coefficient of the compressor when the air supply direction of the air conditioner corresponds to any cell.

[0068] Among them, the larger the distance between the cell and the body, the higher the speed gear of the indoor fan and the greater the operating frequency of the compressor; the first frequency reduction coefficient is less than or equal to 1.

[0069] Optionally, the speed gear of the indoor fan and the first frequency reduction coefficient of the compressor can be determined according to a speed frequency table, which records the correspondence between different distance ranges and speed gears, as well as the correspondence with the first frequency reduction coefficient.

[0070] When the control request information is the global matrix air supply mode, the first frequency of the compressor is obtained, and the operating frequency of the compressor is adjusted according to the first frequency and the first frequency reduction coefficient based on the distance between each cell and the body.

[0071] Optionally, the first frequency is determined as follows: if this is the initial operation stage of the air conditioner, the operating frequency of the compressor is obtained after the air conditioner has been running for a first period of time, and the operating frequency is determined as the first frequency; if this is the stable operation stage of the air conditioner, the current frequency of the compressor is determined to be the first frequency. Specifically, if this is the initial operation stage of the air conditioner, the frequency of the compressor is in a constantly changing stage. After the first period of time, the frequency of the compressor tends to stabilize, and the frequency at this time can be used as the first frequency. Optionally, the first period of time is set to 5 minutes. Alternatively, the first period of time is 10 minutes, 15 minutes, or other values.

[0072] Table 1-5 is a speed-frequency table, which stores the indoor fan speed levels and the compressor's first frequency reduction coefficient corresponding to a set distance range. This allows the distance range to be determined based on the distance between the cell and the housing, and thus the corresponding indoor fan speed level and compressor's first frequency reduction coefficient. Based on Table 1-5, for example, when the distance between the cell and the housing is 3.3m, the indoor fan speed can be adjusted to the medium speed level, and the compressor's operating frequency can be adjusted to 0.8*the first frequency. Table 1-5 Distance range (m) Fan speed gear The first frequency reduction coefficient L≥4 High wind gear 1.0*first frequency 3≤L<4 Stroke gear 0.8*first frequency 2≤L<3 Low wind gear 0.6*first frequency L<2 Silent position 0.5*first frequency

[0073] Alternatively, the high wind gear can also be replaced by a strong gear.

[0074] By determining the distance between the cell and the casing, determining the speed gear of the indoor fan and the operating frequency of the compressor, the temperature uniformity of the indoor environment can be improved. Specifically, the numbering of the cells is spirally sorted from the outer circle to the inner circle, and the air guide plates operate according to the numbering. During operation, the distance between the air guide plate and the casing varies when it runs to each cell. The greater the distance, the greater the speed gear of the fan is controlled. And the greater the operating frequency of the compressor is controlled, so that the temperature and air volume in various places can be made as uniform as possible during the rotation of the air guide plate, thereby improving the temperature uniformity of the space where the air conditioner is located and improving comfort.

[0075] Specifically, the farther the distance from the casing, the higher the speed of the indoor fan and the operating frequency of the compressor. The high-speed airflow can also quickly mix the cold and hot air. The air outlet airflow of the air conditioner can quickly move to the cells matched by the air guide plate, breaking the temperature stratification and promoting the mixing of the upper and lower air, reducing the temperature difference; at the same time, in the case of long distance, the combination of high wind speed and high frequency improves the heat exchange capacity; in the case of close distance, low wind speed and low frequency can maintain temperature stability, thereby further improving the uniformity and comfort of the air outlet airflow.

[0076] When using the above technical solution, the greater the distance between the cell and the housing, the higher the speed of the indoor fan and the operating frequency of the compressor. That is, the farther the cell is from the housing, the higher the speed of the indoor fan. This improves the fluidity of airflow at locations farther from the housing, thereby improving the uniformity of airflow distribution within the air-conditioning space. Simultaneously, the compressor is controlled to operate at a lower frequency according to a first frequency reduction factor corresponding to the distance between the cell and the housing, thus preventing localized overcooling or overheating. This solution, in conjunction with the air guide, indoor fan, and compressor, can improve temperature uniformity within the air-conditioning space, enhancing user comfort.

[0077] Figure 5 This is another flowchart of determining the parameter operation strategy of the air conditioner based on the control request information provided by an embodiment of the present disclosure.

[0078] Combine Figure 5 As shown, based on the control request information, the parameter operation strategy of the air conditioner is determined, including:

[0079] S51: If the control request information is for an anti-direct blowing air supply mode, obtain the space information of the cell where the user is located, the indoor ambient temperature, and the current speed of the indoor fan.

[0080] S52 : Determine a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed.

[0081] The spatial information includes the sequence number of the cell where the user is located and the distance between the user and the body.

[0082] In this solution, in anti-direct airflow mode, the air conditioning system avoids direct airflow onto the user, improving user comfort. By combining spatial information about the user's cell, the indoor ambient temperature, and the current indoor fan speed, the air conditioning system's operating plan can be more accurately determined to avoid direct airflow onto the user and improve airflow comfort.

[0083] Optionally, if the user's location occupies at least two cells, the cell with the smaller cell number is used as the base cell to determine the distance between the user's cell and the housing. Alternatively, the distance between each cell occupied by the user and the housing is determined, and the average of the distances between multiple cells and the housing is used as the distance between the user's cell and the housing.

[0084] When adopting the above technical solution, when the control request information is the anti-direct blowing air supply mode, by combining the spatial information of the user's cell, the indoor ambient temperature, and the current indoor fan speed, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme of the air conditioner in this mode are accurately controlled to improve user comfort.

[0085] Figure 6 This is a flow chart of determining a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on space information, indoor ambient temperature, and the current indoor fan speed, provided by an embodiment of the present disclosure.

[0086] Combine Figure 6 As shown, based on the space information, indoor ambient temperature, and the current indoor fan speed, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme are determined, including:

[0087] S61 , based on the indoor ambient temperature, determining a corresponding target temperature threshold in a temperature-distance-speed table.

[0088] S62 : Based on the distance between the cell where the user is located and the body of the machine, determine a corresponding target distance threshold in the temperature-distance-speed table.

[0089] S63: Based on the current speed of the indoor fan, determine the current speed gear corresponding to the indoor fan in the temperature-distance speed table.

[0090] S64: Determine a second frequency reduction coefficient of the compressor and a target speed level of the indoor fan according to the target temperature threshold, the target distance threshold, and the current speed level.

[0091] The second frequency reduction coefficient is less than or equal to 1.

[0092] In this solution, the indoor ambient temperature is obtained using a temperature sensor installed indoors. If a room has multiple temperature sensors, the average indoor temperature can be determined based on the multiple temperature values and used as the indoor ambient temperature. The temperature sensor can be installed on the air conditioner remote control, the air conditioner indoor unit, or other household appliances that can be connected to the air conditioner.

[0093] Table 1-6 shows a distance-temperature-speed table. The table stores the target speed level and second throttling factor for the indoor fan, corresponding to the set target temperature threshold, target distance threshold, and current indoor fan speed level. This table can be used to determine the target temperature threshold determined by the determined indoor ambient temperature, the target distance threshold corresponding to the user's cell and the housing, and the speed level corresponding to the current indoor fan speed. The corresponding indoor fan speed level and the second throttling factor can then be determined. For example, if the indoor ambient temperature is 30°C, the target temperature threshold can be determined as 28°C ≤ T < 35°C, and if the distance between the user's cell and the housing is 3.3m, the target distance threshold can be determined as 3m ≤ L < 4m. Based on the specific indoor fan speed, the corresponding speed level can be determined. In Table 1-6, non-high-speed settings include medium, low, and silent. Tr represents the indoor ambient temperature. N1 represents the number of the first cell. N2 represents the number of the second cell. N1 can be set to 10, N2 can be set to 5, and N1 is greater than N2. Table 1-6

[0094] When using the above technical solution, the target temperature threshold, target distance threshold, and current speed gear can be determined based on the user's location, indoor ambient temperature, and current indoor fan speed to control the compressor's frequency reduction operation, thereby determining the second frequency reduction coefficient of the compressor and the target speed direction of the indoor fan. This solution can accurately adjust the operating frequency of the compressor and the speed of the indoor fan according to the indoor environment and user location, thereby improving user comfort and avoiding direct blowing on the user.

[0095] Figure 7 This is another flowchart of determining a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on space information, indoor ambient temperature, and the current indoor fan speed provided by an embodiment of the present disclosure.

[0096] Combine Figure 7 As shown, based on the space information, the indoor ambient temperature and the current speed of the indoor fan, determining the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme also includes:

[0097] S71 , taking the cell where the user is located as the target air supply position, and based on the sequence number of the cell where the user is located, determining a first trigger position that is a preset first number of cells ahead of the target air supply position.

[0098] S72: When the air supply direction of the air conditioner corresponds to the first trigger position, determine the current second frequency of the compressor, and control the compressor to operate based on the product of the second frequency and the second frequency reduction coefficient.

[0099] Wherein, the product of the second frequency and the second down-conversion coefficient is greater than or equal to the lowest frequency.

[0100] As shown in Table 1-6, the indoor ambient temperature is 30°C, the distance between the user cell and the housing is 3.3 m, and the current indoor fan speed is not in the high wind speed range. Therefore, the compressor frequency can be adjusted N1 cells in advance, and the second adjustment frequency is determined to be 0.6.

[0101] In this solution, the product of the second frequency and the second frequency reduction coefficient is greater than or equal to the minimum frequency, thereby avoiding unstable operation or shutdown of the compressor due to too low a frequency, ensuring reliable operation of the air-conditioning system and extending its service life.

[0102] Optionally, if the user's location occupies at least two cells, the cell with the smaller cell number is used as the target air supply position to determine the first trigger position; or, the cell with the larger cell number is used as the target air supply position to determine the first trigger position.

[0103] When adopting the above technical solution, the frequency of the compressor can be adjusted in advance when the cell corresponding to the air supply direction of the air conditioner, i.e., the air supply direction of the air guide plate, is the first number of cells away from the target air supply position, so as to improve the comfort of the outlet air flow when it reaches the cell where the user is located, avoid direct blowing on the user, and improve the user experience.

[0104] Figure 8 This is another flowchart of determining a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on space information, indoor ambient temperature, and the current indoor fan speed provided by an embodiment of the present disclosure.

[0105] Combine Figure 8 As shown, according to the target parameters and the movement strategy of the air guide plate, the operation plan of the air conditioner is determined and the air conditioner is controlled, which also includes:

[0106] S81, based on the sequence number of the cell where the user is located, determining a second trigger position that is a preset second number of cells ahead of the target air supply position.

[0107] S82: When the air supply direction of the air conditioner corresponds to the second trigger position, the current first speed gear of the indoor fan is determined, and the indoor fan is controlled to operate according to the target speed gear.

[0108] As shown in Table 1-6, the indoor ambient temperature is 30°C, the distance between the user cell and the housing is 3.3 m, and the current indoor fan speed is not in the high speed range. Therefore, the indoor fan should start adjusting N2 cells in advance and the target adjustment speed should be the high speed range.

[0109] Optionally, if the user's location occupies at least two cells, the cell with the smaller cell number is used as the target air supply position, and the second trigger position is determined; or, the cell with the larger cell number is used as the target air supply position, and the second trigger position is determined.

[0110] When adopting the above technical solution, the air guide plate can be controlled to adjust the speed of the indoor fan in advance when it is the second cell number away from the target air supply position, thereby further improving the comfort of the outlet air flow when it reaches the cell where the user is located, avoiding direct blowing on the user, and improving the user experience.

[0111] In an optional implementation scheme of the above-mentioned air-conditioning control method, the compressor frequency adjustment scheme and the indoor fan speed adjustment scheme are determined based on the spatial information, the indoor ambient temperature and the current indoor fan speed, and also include: when the air supply direction of the air-conditioning corresponds to the target air supply position, the compressor is controlled to operate at the second frequency, and the indoor fan is controlled to operate at the first speed gear.

[0112] In this solution, if the air guide plate rotates to the target air supply position, the compressor is controlled to operate at the second frequency, and the indoor fan is controlled to operate at the first speed gear to ensure uniform temperature distribution at other locations in the air-conditioned space.

[0113] Specifically, when the air guide plate rotates to the target air supply position, the compressor is controlled to operate at the second frequency and the product of the second frequency reduction coefficient. After the air guide plate has been in the preset time of the cell, when the air guide plate moves to the next cell, the compressor is controlled to restore the second frequency to operate at the second frequency, and the indoor fan is controlled to restore the first speed gear and operate at the first speed gear to avoid direct blowing on the user, thereby improving the comfort of the air flow.

[0114] In this solution, after the compressor frequency is adjusted, the corresponding change in cooling capacity has a certain lag. After the compressor frequency changes, the actual cooling / heating capacity does not increase or decrease in real time, but rather there is a delay. Therefore, by adjusting the compressor frequency when the air supply position moves to the first trigger position in front of the user's cell, and adjusting the indoor fan speed level at the second trigger position, the air supply direction of the air conditioner can ensure that the air supply reaches the required volume when the air supply direction corresponds to the user's cell, while also avoiding direct airflow to the user.

[0115] Furthermore, when the air supply direction of the air conditioner corresponds to the target air supply position, the air guide plate stays for 2 seconds, and then begins to recover to the first speed gear and the first frequency when it moves to the next cell.

[0116] When the above technical solution is adopted, the first speed gear and the second frequency can be restored when the air guide plate rotates to the target air supply position, that is, the hysteresis of the change in cooling capacity after the compressor adjusts the frequency is utilized to ensure that the air supply direction of the air conditioner corresponds to the temperature around the cell where the user is located, thereby improving comfort.

[0117] The present invention also provides an electronic device. In some possible implementations of the present application, the electronic device may include multiple processors 901 and multiple storage devices 902. The program for executing the program-initiated control method of the above-mentioned method embodiment can be divided into multiple subroutines, and each subroutine can be loaded and run by the processor 901 to execute different steps of the program-initiated control method of the above-mentioned method embodiment. Specifically, each subroutine can be stored in different storage devices 902 respectively, and each processor 901 can be configured to execute the program in one or more storage devices 902 to jointly implement the air conditioning control method of the above-mentioned method embodiment, that is, each processor 901 executes different steps of the program-initiated control method of the above-mentioned method embodiment respectively to jointly implement the air conditioning control method of the above-mentioned method embodiment.

[0118] The multiple processors 901 may be processors deployed on the same device. For example, the electronic device may be a high-performance device composed of multiple processors, and the multiple processors 901 may be processors configured on the high-performance device. Furthermore, the multiple processors 901 may be processors deployed on different devices. For example, the electronic device may be a server cluster, and the multiple processors 901 may be processors on different servers in the server cluster.

[0119] The present invention also provides a computer-readable storage medium. In one embodiment of a computer-readable storage medium according to the present invention, the computer-readable storage medium can be configured to store a program for executing the air conditioner control method of the above-mentioned method embodiment, and the program can be loaded and run by a processor to implement the above-mentioned air conditioner control method. For ease of explanation, only the parts related to the embodiment of the present invention are shown. For specific technical details not disclosed, please refer to the method part of the embodiment of this application. The computer-readable storage medium can be a storage device formed by various electronic devices. Optionally, the computer-readable storage medium in the embodiment of the present application is a non-transitory computer-readable storage medium.

[0120] The present invention further provides an air conditioner. In an embodiment of the air conditioner according to the present invention, the air conditioner may include the electronic device in the above electronic device embodiment.

[0121] It will be understood by those skilled in the art that all or part of the processes in the method for implementing the above embodiment of the present invention may also be completed by instructing the relevant hardware through a computer program. The above computer program may be stored in a computer-readable storage medium. When the computer program is executed by a processor, it may implement the steps of each of the above method embodiments. The above computer program includes computer program code, which may be in source code form, object code form, executable file or some intermediate form. The above computer-readable storage medium may include: any entity or device, medium, USB flash drive, mobile hard disk, magnetic disk, optical disk, computer memory, read-only memory, random access memory, electric carrier signal, telecommunication signal and software distribution medium, etc., which can carry the above computer program code.

[0122] Thus far, the technical solutions of the present invention have been described in conjunction with the preferred embodiments shown in the accompanying drawings. However, it will be readily understood by those skilled in the art that the scope of protection of the present invention is obviously not limited to these specific embodiments. Without departing from the principles of the present invention, those skilled in the art may make equivalent changes or substitutions to the relevant technical features, and the technical solutions after such changes or substitutions will fall within the scope of protection of the present invention.

Claims

1. A method for controlling an air conditioner, wherein the air conditioner comprises a body and an air guide plate provided on the body, wherein the air guide plate comprises a first guide plate and a second guide plate, wherein the first guide plate swings horizontally and the second guide plate swings vertically, wherein: The control method includes: Get control request information; Determining a parameter operation strategy for the air conditioner based on the control request information; Controlling the operation of the air conditioner according to a preset air guide plate movement strategy and a parameter operation strategy of the air conditioner; Among them, the parameter operation strategy includes at least one of a frequency adjustment scheme of the compressor and a speed adjustment scheme of the indoor fan; the air guide plate movement strategy and the parameter operation strategy are determined based on the plane grid layout of the space where the air conditioner is located, and the plane grid layout includes multiple cells numbered in sequence, and the plane grid layout is pre-set.

2. The control method according to claim 1, characterized in that: The wind deflector movement strategy is determined based on the following method: Get the number order of multiple cells in a flat grid layout; Determining a rotation angle of the first guide plate and a rotation angle of the second guide plate according to the numbering sequence of the cells, so that an air supply direction of the air conditioner corresponds to the numbering sequence in sequence; The numbering sequence is to use any corner cell in the outermost circle of the plane grid layout as the starting cell, and then start from the starting cell and sort in a spiral from the outer circle to the inner circle.

3. The control method according to claim 2, characterized in that: The determining of a parameter operation strategy of the air conditioner based on the control request information includes: If the control request information is a global matrix air supply mode, obtaining the distance between each cell and the machine body; Based on the distance between each cell and the machine body, a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme are determined.

4. The control method according to claim 3, characterized in that: Based on the distance between each cell and the machine body, a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme are determined, including: Determining, based on the distance between each cell and the body, a speed gear of the indoor fan and a corresponding first frequency reduction coefficient of the compressor when the air supply direction of the air conditioner corresponds to any cell; Among them, the larger the distance between the unit cell and the body, the higher the speed gear of the indoor fan and the greater the operating frequency of the compressor; the first frequency reduction coefficient is less than or equal to 1.

5. The control method according to claim 2, characterized in that: The determining of a parameter operation strategy of the air conditioner based on the control request information includes: If the control request information is for an anti-direct blowing air supply mode, obtaining the space information of the cell where the user is located, the indoor ambient temperature, and the current speed of the indoor fan; Determining a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed; The spatial information includes the serial number of the cell where the user is located and the distance between the user and the body.

6. The control method according to claim 5, characterized in that: The determining of a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed includes: Based on the indoor ambient temperature, determine the corresponding target temperature threshold in the temperature distance speed table; Determine a corresponding target distance threshold in the temperature distance speed table based on the distance between the user's cell and the body; Based on the current speed of the indoor fan, determine the corresponding current speed gear in the temperature distance speed table; Determining a second frequency reduction coefficient of the compressor and a target speed level of the indoor fan according to the target temperature threshold, the target distance threshold, and the current speed level; The second frequency reduction coefficient is less than 1.

7. The control method according to claim 6, characterized in that: The determining of a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed further includes: The cell where the user is located is used as the target air supply position, and based on the sequence number of the cell where the user is located, a first trigger position is determined that is a preset first number of cells ahead of the target air supply position; When the air supply direction of the air conditioner corresponds to the first trigger position, determining the current second frequency of the compressor, and controlling the compressor to operate based on the product of the second frequency and the second frequency reduction coefficient; The product of the second frequency and the second frequency reduction coefficient is greater than or equal to the lowest frequency.

8. The control method according to claim 7, characterized in that: The determining of a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed further includes: Determining, based on the sequence number of the cell where the user is located, a second trigger position that is a preset second number of cells ahead of the target air supply position; When the air supply direction of the air conditioner corresponds to the second trigger position, the current first speed gear of the indoor fan is determined, and the indoor fan is controlled to operate according to the target speed gear.

9. The control method according to claim 8, characterized in that: The determining of a compressor frequency adjustment scheme and an indoor fan speed adjustment scheme based on the space information, the indoor ambient temperature, and the current indoor fan speed further includes: When the air supply direction of the air conditioner corresponds to the target air supply position, the compressor is controlled to operate at the second frequency, and the indoor fan is controlled to operate at the first speed gear.

10. A computer-readable storage medium storing a plurality of program codes, characterized in that: The program code is suitable for being loaded and run by a processor to execute the air conditioner control method according to any one of claims 1 to 9.