Air conditioner air supply control method, air conditioner and computer readable storage medium

By setting up a style grid and air guide plate in the air conditioner and controlling the opening angle of the air guide plate, the problem of insufficient air feeling in the middle of the air conditioner cabinet with large panel width and small body size is solved, and all-round air supply control and improvement of use effect is achieved.

CN120043229APending Publication Date: 2025-05-27GD MIDEA AIR CONDITIONING EQUIP CO LTD +1
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Patent Information

Application Number
CN202311605160.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-11-27
Publication Date
2025-05-27

AI Technical Summary

Technical Problem

When air conditioning cabinets with large panel width and small body size are supplied, the air feeling in the middle area is small, which affects the heat exchange effect and performance.

Method used

By setting up a style grid and air guide plate in the air conditioner housing, the opening angle of the air guide plate is controlled to achieve all-round air supply direction control, so that the intermediate wind sense meets the needs.

Benefits of technology

It realizes the effect of converging in the middle of the panel to form a gust of wind, which enhances the use effect and high-end appearance of the air conditioner.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an air conditioner air supply control method, an air conditioner and a computer readable storage medium, a shell of the air conditioner comprises a panel and at least two air outlets, the air outlets are located in the two sides of the panel, an air outlet grating is arranged in the shell, and the air outlet grating is located in an air duct and close to the air outlets; the air outlet grating comprises an arc surface of which the concave surface faces the panel; the control method comprises the steps that the air supply direction of the air conditioner is determined, and the air supply direction comprises middle air supply and two-side air supply; and the opening angle of the air guide plate is controlled according to the air supply direction, and the opening angle of the air guide plate during middle air supply is smaller than the opening angle of the air guide plate during two-side air supply. According to the air conditioner with the wide panel and the small size, the advanced appearance feeling is achieved, and meanwhile the air supply requirements in all directions are met.
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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 air supply control method, an air conditioner, and a computer-readable storage medium. Background Art

[0002] Air conditioner cabinets have a large cooling capacity and are generally used in living rooms. Therefore, in consideration of the design of high-class appearance and integration with the home style, user preference is increased.

[0003] For air conditioner cabinets with air outlets on both sides, the body size is small and the panel width is large, which can enhance the high-class appearance and integrate with the home style. However, when the panel width of an air conditioner cabinet with a small body size is too large, there will be a situation where there is no wind or the wind feeling in the middle between the two air outlets is small. It can be seen that a small body size and a large panel width will have certain impacts, such as affecting the heat exchange effect of the air conditioner and affecting the use performance.

[0004] The above content is only used to assist in understanding the technical solution of the present invention, and does not represent an admission that the above content is prior art. Summary of the Invention

[0005] The main object of the present invention is to provide an air conditioner air supply control method, an air conditioner, and a computer-readable storage medium, aiming to enable an air conditioner with a small panel width and large size to achieve full-range air supply direction control, so that the wind feeling in the middle meets the requirements and the use effect of the air conditioner is improved.

[0006] To achieve the above object, the present invention provides an air conditioner air supply control method. The housing of the air conditioner includes a panel and at least two air outlets. The air outlets are located on both sides of the panel. An air outlet grille is provided inside the housing. The air outlet grille is located in the air duct and close to the air outlet. The air outlet grille includes an arc surface with a concave surface facing the panel. A wind deflector is provided at each air outlet. The air conditioner air supply control method includes:

[0007] Determine the air supply direction of the air conditioner, where the air supply direction includes middle air supply and side air supply;

[0008] Control the opening angle of the wind deflector according to the air supply direction. When performing middle air supply, the opening angle of the wind deflector is smaller than that when performing side air supply.

[0009] Optionally, the step of controlling the opening angle of the wind deflector according to the air supply direction includes:

[0010] When performing middle air supply, control the wind deflectors corresponding to the air outlets on both sides to open to a first target angle, and the first target angle is smaller than a first preset angle.

[0011] Optionally, the middle air supply includes left - biased middle air supply, right - biased middle air supply, or direct middle air supply; the step of controlling the air deflector corresponding to the air outlets on both sides to open to the first target angle includes:

[0012] When the left - biased middle air supply is adopted, control the air deflector corresponding to the left air outlet to open by a first angle value, and control the air deflector corresponding to the right air outlet to open by a second angle value, where the first angle value is greater than the second angle value;

[0013] When the right - biased middle air supply is adopted, control the air deflector corresponding to the left air outlet to open by a first angle value, and control the air deflector corresponding to the right air outlet to open by a second angle value, where the second angle value is greater than the first angle value;

[0014] When the direct middle air supply is adopted, control the air deflector corresponding to the left air outlet to open by a first angle value, and control the air deflector corresponding to the right air outlet to open by a second angle value, where the first angle value is equal to the second angle value;

[0015] Wherein, the angle value corresponding to the first target angle includes the first angle value and / or the second angle value.

[0016] Optionally, the step of controlling the opening angle of the air deflector according to the air supply direction includes:

[0017] When the air supply is from both sides, control the air deflectors corresponding to the air outlets on both sides to open to the second target angle, where the second target angle is greater than or equal to the first preset angle.

[0018] Optionally, the air supply direction further includes full air supply, and the step of controlling the opening angle of the air deflector according to the air supply direction further includes:

[0019] When the full air supply is adopted, control the air deflectors corresponding to the air outlets on both sides to swing cyclically between the first target angle and the second target angle.

[0020] Optionally, the air conditioner air supply control method further includes:

[0021] Control the air deflector to open to a preset angle and then close to reset the air deflector;

[0022] After the air deflector is reset to the initial position, perform the steps of determining the air supply direction of the air conditioner, controlling the opening angle of the air deflector according to the air supply direction, and the opening angle of the air deflector during the middle air supply is smaller than that during the air supply from both sides.

[0023] Optionally, the step of controlling the opening angle of the air deflector according to the air supply direction includes:

[0024] Control the opening angle of the air deflector according to the air supply direction and air supply intensity. The greater the air supply intensity, the greater the opening angle of the air deflector.

[0025] The present invention further provides an air conditioner, which includes the gas detection device as described above. The air conditioner further includes: a memory, a processor, and an air supply control program stored on the memory and executable on the processor. The processor is connected to the gas detection device. When the air supply control program is executed by the processor, each step of the air conditioner air supply control method as described above is implemented.

[0026] Optionally, the housing of the air conditioner includes a front housing and a rear housing. The air outlet and the panel are arranged on the front housing. The maximum width of the two side air outlets is Y, and the width of the panel is Z. Wherein, the ratio of Z to Y is greater than or equal to a preset ratio.

[0027] In addition, the present invention further provides a computer-readable storage medium, on which an air supply control program is stored. When the air supply control program is executed by a processor, each step of the air conditioner air supply control method as described above is implemented.

[0028] An air conditioner air supply control method, an air conditioner, and a computer-readable storage medium proposed by an embodiment of the present invention. The air conditioner includes at least two air outlets, and the air outlets are located on both sides of the panel of the air conditioner. The width dimension of the air conditioner is small, while the width of the panel is large, enhancing the high-class sense of the appearance of the air conditioner; by setting the air outlet grille to be arc-shaped and the concave arc surface facing the panel, combined with the control of the opening angle of the air deflector, the air in the air duct is guided to one side of the panel. The two air flows from the two air outlets are both guided to one side of the panel, and the two air flows are mutually diverted and converge in the middle of the panel to form an air flow sent forward to the panel, realizing the air supply of this type of air conditioner to the middle. In this way, the air conditioner in this embodiment simultaneously meets the requirements of high-class appearance design and air supply in all directions, improving the use effect of the air conditioner. Description of the Drawings

[0029] Figure 1 It is a front view of the air conditioner proposed by the present invention;

[0030] Figure 2 is Figure 1 a cross-sectional view along A-A in

[0031] Figure 3 is Figure 2 an enlarged schematic view of part A in

[0032] Figure 4 It is a side view of the air conditioner proposed by the present invention;

[0033] Figure 5 isFigure 4 An enlarged schematic view of a perspective inside part B;

[0034] Figure 6 For Figure 4 An enlarged schematic view of another perspective inside part B;

[0035] Figure 7 A schematic flowchart of the first embodiment of the air conditioner air supply control method provided by the present invention;

[0036] Figure 8 A schematic view of the middle air supply of the air conditioner proposed by the present invention;

[0037] Figure 9 A schematic view of the two - side air supply of the air conditioner proposed by the present invention;

[0038] Figure 10 A schematic flowchart of the second embodiment of the air conditioner air supply control method proposed by the present invention;

[0039] Figure 11 A schematic view of the middle - left air supply of the air conditioner proposed by the present invention;

[0040] Figure 12 A schematic view of the middle - right air supply of the air conditioner proposed by the present invention;

[0041] Figure 13 A schematic flowchart of the third embodiment of the air conditioner air supply control method proposed by the present invention;

[0042] Figure 14 A schematic view of the terminal structure of the hardware operating environment related to the embodiment solution of the present invention.

[0043] The realization, functional characteristics and advantages of the object of the present invention will be further described with reference to the embodiments and the accompanying drawings. Specific embodiments

[0044] It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.

[0045] To better understand the technical solutions provided by the embodiments of the present invention, the exemplary embodiments of the present disclosure will be described in more detail below with reference to the accompanying drawings. Although the exemplary embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure can be implemented in various forms and should not be limited by the embodiments set forth herein. On the contrary, these embodiments are provided so that the present disclosure can be more thoroughly understood and the scope of the present disclosure can be fully conveyed to those skilled in the art.

[0046] Please refer to Figures 1 to 3, the air conditioner provided by the embodiment of the present invention includes a housing 1 and components disposed within the housing 1. The components include, but are not limited to, a blower 2, an air duct 3, a horizontal swing blade 4, and an air outlet grille 5. The housing 1 includes a rear housing 11 and a front housing 12. The front housing 12 is provided with at least two air outlets and a panel 6. The panel 6 is located in front of the front housing 12, and the air outlets are located on both sides of the panel 6.

[0047] The air duct 3 is connected between the blower 2 and the air outlets (in this embodiment, the air duct 3 includes a volute air duct section and an air outlet passage section). The horizontal swing blade 4 and the air outlet grille 5 are both disposed within the air duct 3. The air outlet grille 5 is located between the horizontal swing blade 4 (or the blower) and the air outlets, close to the air outlets. Optionally, the air outlet grille 5 includes a straight section 51 and an arc section 52. The straight section 51 is located on the side close to the horizontal swing blade 4, and the arc section 52 is located on the side close to the air outlets. The straight section 51 is parallel to the air duct 3, reducing the air resistance of the air outlet; the concave surface of the arc section 52 faces the panel 6, and the concave arc surface of the arc section 52 functions to blow air towards the panel 6.

[0048] It should be noted that in this embodiment, if there are two air outlets, there are correspondingly two air ducts 3. The horizontal swing blade 4 and the air outlet grille 5 are provided on each air duct 3. The air outlets are symmetrically arranged, and the corresponding horizontal swing blade 4 and air outlet grille 5 are also symmetrically arranged. Optionally, the air outlet grille 5 penetrates through the entire air outlet vertically, and the air in the air duct 3 blows out after passing through the air outlet grille 5.

[0049] In this embodiment, the air outlet grille 5 is provided with an arc surface, which can achieve an auxiliary air supply effect of the air duct 3 blowing air towards the panel 6.

[0050] Optionally, a wind deflector 13 is provided at the air outlet. The wind deflector 13 is located at the outermost side of the end of the air duct 3 and is used to block or open the air outlet. The wind deflector 13 is provided in an arc structure, and the concave arc surface of the wind deflector 13 faces the air duct 3. The side of the wind deflector 13 away from the panel 6 is the connection end, and the connection end is rotatably connected to the housing 1. The side of the wind deflector 13 close to the panel 6 is the free end. When the wind deflector 13 is opened, the free end rotates as the connection end rotates. During the opening process of the wind deflector 13, the concave arc surface gradually faces the panel 6 and finally faces the outside of the air outlet. In this way, during the rotation process of the wind deflector 13, combined with the air outlet grille 5, the air is guided in front of the panel and then gradually guided to both sides of the panel 6.

[0051] Please refer to Figures 4 to 6, in this embodiment, a rotating arm 14 is provided on the air deflector 13. The rotating arm 14 is rotatably connected to a bracket 15 on the housing 1. The rotating arm 14 drives the air deflector 13 to rotate to open or close the air outlet.

[0052] Optionally, the air deflector 13 is connected to a driving assembly 16. The driving assembly 16 includes a motor, a motor shaft, and a motor shaft sleeve. The motor shaft sleeve is connected to the air deflector 13. The motor drives the motor shaft to rotate, the motor shaft drives the motor shaft sleeve to rotate, and the motor shaft sleeve drives the air deflector 13 to rotate. When the air deflector 13 rotates, the rotating arm 14 rotates with the air deflector 13, and the rotating arm 14 rotates relative to the bracket 15. The air deflector 13 is driven by the motor and rotates 360 degrees with the connection point to the bracket 15 as the center point to change the air guiding direction.

[0053] Optionally, the air conditioner in this embodiment is a cabinet air conditioner with a small size and a large panel, such as Figure 2 shown. The widest dimension of the front shell 12 of the air conditioner is X, the maximum width of the two side air outlets is Y, and the width of the panel 6 is Z. Among them, the ratio of Z to Y is greater than or equal to a preset ratio. Optionally, the preset ratio can be 70%, that is, the ratio of the width of the panel 6 to the maximum width between the two side air outlets is greater than or equal to 70%. It can be seen that the width of the panel 6 is close to the maximum width between the two side air outlets. Therefore, the air outlets can hardly be seen from the front view, improving the high-class sense of the appearance. In this embodiment, the structural design of the air outlet grille 5 and the air deflector 13, combined with the rotation control of the air deflector 13, realizes that the two side air outlets blow air towards the front of the panel 6, ensuring that there is air in the middle of the two air outlets and improving the use effect of the air conditioner.

[0054] Based on the above air conditioner structure, the embodiments of the present invention combine the control of the air deflector to realize air supply towards the middle (front of the panel) in the application of a large panel configured on a small-sized air conditioner. Specifically refer to the following embodiments.

[0055] The first embodiment

[0056] Referring to Figure 7 , the air conditioner air supply control method provided by the present invention includes the following steps:

[0057] Step S110, determine the air supply direction of the air conditioner;

[0058] The air supply direction of the air conditioner refers to the blowing direction of the air outlet. The air supply direction of the air conditioner can be based on program settings. Taking an air conditioner cabinet as an example, after the air conditioner is turned on, the air supply direction is from left to right, or from right to left. Or the air supply direction is based on user settings, such as the user setting to blow to the left, or to the right, or to the middle, etc. Or, the air supply direction is determined based on the position where the air conditioner detects a person. For example, in the direct blowing mode, the direction where the person is located is the air supply direction; in the anti-direct blowing mode, the direction other than the direction where the person is located is the air supply direction.

[0059] In some embodiments, the air supply direction includes middle air supply and side air supply.

[0060] In this embodiment, an air conditioner cabinet is taken as an example, and the air conditioner includes at least two air outlets, and the air outlets are distributed on both sides of the panel, that is, the air conditioner blows air through the air outlets on both sides of the panel. On a small air conditioner with a relatively large panel size, the air blown out from the air outlets blows to both left and right sides. Therefore, this embodiment includes side air supply. And the air outlet grille of this embodiment cooperates with the rotation of the air deflector to achieve air supply in front of the panel. Therefore, the air conditioner also includes middle air supply. When the user uses the air conditioner, middle air supply and side air supply can be realized according to needs, increasing the functional selectivity of the air conditioner.

[0061] Step S120, control the opening angle of the air deflector according to the air supply direction.

[0062] Among them, the opening angle of the air deflector during middle air supply is smaller than that during side air supply.

[0063] Since the air outlet grille of the air conditioner includes an arc surface with the concave surface facing the panel, and the air deflector is also arranged in an arc shape, and during the rotation of the air deflector, the concave arc surface faces the panel. Therefore, when the air in the air duct passes through the air outlet grille, the arc surface of the air outlet grille guides the air towards the panel. When the air deflector is opened at a relatively small opening degree, under the guidance of the air deflector, the air also blows towards the panel direction. When the two air flows on both sides of the panel approach each other, there will be mutual drainage and converge into one air flow, and rationally blow forward, so that it can be blown out in front of the panel to achieve the middle air supply of the air conditioner. When the air deflector is opened to a certain angle, the air outlet area increases, and the air guiding angle of the air deflector increases, making the distance between the two air flows on both sides of the panel increase. When the two air flows are staggered by a certain distance, the mutual drainage force between the two air flows decreases, and it is difficult to converge into one air flow. Therefore, it gradually tends to blow out from both sides of the air outlet, and based on this, the side air supply of the air conditioner is realized.

[0064] Based on the above principle, in this embodiment, different air supply directions are controlled by controlling the opening angle of the air deflector. The specific implementation is described through the following various implementation methods:

[0065] (1) Such as Figure 8As shown, the step of controlling the opening angle of the air deflector according to the air supply direction includes:

[0066] Step S121, when supplying air in the middle, control the air deflectors corresponding to the air outlets on both sides to open to a first target angle, and the first target angle is less than a first preset angle.

[0067] Through experiments and tests, during the rotation of the air deflector, there is an angle at which the air from the air outlets on both sides is separated into two independent air streams. This angle is configured as the first preset angle. That is, the first preset angle is the maximum angle for realizing middle air supply. When the rotation angle of the air deflector is within the range of the first preset angle, the two air streams on both sides can be converged into one and sent out from the front of the panel to realize middle air supply.

[0068] To realize middle air supply, control the air deflectors of the air outlets on both sides to open to a first target angle, and the first target angle is any angle less than the first preset angle. When the air deflectors of the air outlets on both sides are opened to the first target angle, the air in the air duct can be diverted to the middle to form an air stream blown out from the front of the panel, realizing middle air supply.

[0069] (2) As Figure 9 As shown, the step of controlling the opening angle of the air deflector according to the air supply direction includes:

[0070] Step S122, when supplying air on both sides, control the air deflectors corresponding to the air outlets on both sides to open to a second target angle, and the second target angle is greater than or equal to the first preset angle.

[0071] When the opening angle of the air deflector is greater than the first preset angle, it is difficult for the two air streams on both sides to converge. The two air streams on both sides are separated and blown out from the corresponding air outlets to form air supply on both sides.

[0072] To realize air supply on both sides, control the air deflectors of the air outlets on both sides to open to a second target angle greater than or equal to the preset angle, so that the air blows out independently from the air outlets on both sides.

[0073] (3) The step of controlling the opening angle of the air deflector according to the air supply direction further includes:

[0074] Step S123, when supplying air fully, control the air deflectors corresponding to the air outlets on both sides to swing cyclically between the first target angle and the second target angle.

[0075] Optionally, in some embodiments, the air conditioner further includes a full-air supply direction. For example, when the user walks back and forth indoors and wants to feel the direct blowing of the wind during the walking process, the air conditioner operates in the full-air supply mode to meet the user's needs, which is more favored by the user and improves the intelligent effect of the air conditioner.

[0076] In this embodiment, in combination with the control of the middle air supply and the two-side air supply, the air deflector corresponding to the air outlet on both sides is controlled to swing cyclically between the first target angle and the second target angle to achieve full-air supply control. For example, when the air deflector corresponding to the air outlet on both sides is controlled to swing to the first target angle, the air conditioner supplies air forward of the panel (in the middle of the air conditioner), and when the air deflector swings to the second target angle, the air conditioner supplies air in the direction corresponding to the air outlets on both sides, and by continuously cycling, full-air supply is achieved.

[0077] Optionally, for example, the first preset angle can be less than or equal to 20 mm. The opening angle of the air deflector refers to the width of the free end of the air deflector from the edge of the air outlet close to the panel. As Figure 8 shown, t1 is the opening angle of the right air outlet, and t2 is the opening angle of the left air outlet.

[0078] Optionally, in this embodiment, the air conditioner air supply control method further includes:

[0079] Controlling the air deflector to open to a preset angle and then close to reset the air deflector;

[0080] After the air deflector is reset to the initial position, step S110 and step S120 are executed.

[0081] In this embodiment, after the air conditioner is started, before controlling the rotation of the air deflector, the air deflector is first controlled to open to a preset angle and then close to control the reset of the air deflector. After the air deflector is reset to the initial position, the rotation angle of the air deflector is controlled according to the air supply direction. Each time it is started, the air deflector is controlled to be reset, so that in the subsequent control process of the air deflector angle, the air deflector can be accurately controlled to open to the corresponding angle, avoiding the situation that the initial position of the air deflector is inaccurate, resulting in inaccurate control of the opening angle.

[0082] In this embodiment, the air conditioner includes at least two air outlets, which are located on both sides of the panel of the air conditioner. The width dimension of the air conditioner is small, while the width of the panel is large, enhancing the high-class sense of the appearance of the air conditioner; by setting the air outlet grille to be arc-shaped and the concave arc surface facing the panel, combined with the control of the opening angle of the air deflector, the air in the air duct is guided to one side of the panel. The two airflows from the two air outlets are both guided to one side of the panel, and the two airflows drain each other, realizing the confluence in the middle of the panel, forming an airflow that is sent forward to the front of the panel, and realizing the air supply of this type of air conditioner to the middle. In this way, the air conditioner in this embodiment meets the requirements of both high-class appearance design and air supply in all directions at the same time, improving the use effect of the air conditioner.

[0083] Second Embodiment

[0084] Referring to Figure 10 , this embodiment is based on the above embodiment. In this embodiment, based on the different control of the opening angle values of the air deflectors of the two side air outlets, finer control of the air supply direction is realized. Specifically, the steps of controlling the air deflectors corresponding to the two side air outlets to open to the first target angle include:

[0085] Step S121, when supplying air to the middle left, control the air deflector corresponding to the left air outlet to open to the first angle value, and control the air deflector corresponding to the right air outlet to open to the second angle value, where the first angle value is greater than the second angle value;

[0086] Step S1212, when supplying air to the middle right, control the air deflector corresponding to the left air outlet to open to the first angle value, and control the air deflector corresponding to the right air outlet to open to the second angle value, where the second angle value is greater than the first angle value;

[0087] Step S1213, when supplying air directly in the middle, control the air deflector corresponding to the left air outlet to open to the first angle value, and control the air deflector corresponding to the right air outlet to open to the second angle value, where the first angle value is equal to the second angle value;

[0088] Among them, the angle value corresponding to the first target angle includes the first angle value and / or the second angle value.

[0089] Optionally, please refer to Figure 8 、 Figure 11 and Figure 12 , supplying air in the middle includes supplying air to the middle left ( Figure 11 ), supplying air to the middle right ( Figure 12 ) or supplying air directly in the middle ( Figure 8 ). Supplying air directly in the middle is, for example, supplying air directly in front of the panel, supplying air to the middle left is, for example, supplying air to the front left of the panel, and supplying air to the middle right is, for example, supplying air to the front right of the panel.

[0090] Control the air deflectors corresponding to the air outlets on both sides to open at a first preset angle, which can guide the air to blow towards the middle. At this time, if the air volumes on both sides are the same, the air can be kept blowing exactly in the middle based on the mutual drainage force on both sides. If the air volumes on both sides are different, such as there is an angle difference in the opening angles of the air deflectors on both sides, the side with a larger air volume will guide the air to its own side, causing the air to blow towards one side. Based on this, in this embodiment, according to the user's needs, the air deflector corresponding to the left air outlet can be controlled to open at a first angle value, and the air deflector corresponding to the right air outlet can be controlled to open at a second angle value. If the first angle value is greater than the second angle value, it realizes blowing towards the middle and to the left, as Figure 11 in, 0≤t1≤20mm, 0≤t2≤20mm, but t1<t2. If the first angle value is less than the second angle value, it realizes blowing towards the middle and to the right, as Figure 12 in, 0≤t1≤20mm, 0≤t2≤20mm, but t1>t2; and when the first angle value is equal to the second angle value, that is, the opening angles of the air deflectors on the left and right sides are the same, it realizes blowing exactly in the middle, as Figure 8 in, 0≤t1≤20mm, 0≤t2≤20mm, but t1=t2.

[0091] This embodiment realizes more delicate air supply control, and based on the control of blowing towards the middle and to the left and towards the middle and to the right, it expands the middle air supply range and is not limited to blowing exactly in the middle.

[0092] The Third Embodiment

[0093] Please refer to Figure 13 , in this embodiment, based on all the above embodiments, in this embodiment, the opening angle of the air deflector is controlled in combination with the air supply parameters to realize adjustable air feeling strength. Specifically, the steps of controlling the opening angle of the air deflector according to the air supply direction include:

[0094] Step S131, control the opening angle of the air deflector according to the air supply direction and air supply intensity. The greater the air supply intensity, the greater the opening angle of the air deflector.

[0095] The air supply intensity is set by the user, or determined by the operation mode, or determined based on the distance between the user and the air conditioner. Among them, the stronger the air supply intensity, the larger the corresponding opening angle, and vice versa, the smaller the opening angle.

[0096] Optionally, if the air supply direction is blowing exactly in the middle, the stronger the air supply intensity, the greater the corresponding first target angle of the air deflectors on the left and right sides.

[0097] Optionally, if the air supply direction is blowing towards the middle and to the left, the stronger the air supply intensity, the greater the difference between the first angle value of the left air deflector and the second angle value of the right air deflector.

[0098] Optionally, if the air supply direction is to supply air to the middle and right, the stronger the air supply intensity, the greater the difference in the second angle of the right air deflector and the first angle of the left air deflector to be controlled.

[0099] Optionally, if the air supply direction is to supply air to both sides, the stronger the air supply intensity, the greater the second target angles of the air deflectors on the left and right to be controlled correspondingly.

[0100] Optionally, if the air supply intensity is weaker, the control is opposite.

[0101] As an implementation manner, the hardware environment architecture involved in the air conditioner air supply control method may be as Figure 14 shown.

[0102] Optionally, the hardware architecture involved in the air conditioner air supply control method includes an air conditioner.

[0103] As an implementation manner, the air conditioner includes: a processor 101, such as a CPU, a memory 102, and a communication bus 103. Among them, the communication bus 103 is used to realize the connection and communication between these components. The processor 101 is used to call an application program to perform control operations.

[0104] The memory 102 may be a high-speed RAM memory or a stable memory (non-volatile memory), such as a disk memory.

[0105] It can be understood that in an embodiment, the air supply control program for realizing the air supply process is stored in the memory 102 or in a computer-readable storage medium. When the processor 101 calls the air supply control program from the memory 102 or the computer-readable storage medium, the following operations are performed:

[0106] Determine the air supply direction of the air conditioner, where the air supply direction includes supplying air to the middle and supplying air to both sides;

[0107] Control the opening angle of the air deflector according to the air supply direction. When supplying air to the middle, the opening angle of the air deflector is smaller than that when supplying air to both sides.

[0108] The present invention also provides an air conditioner, which includes the gas detection device as described above. The air conditioner further includes: a memory, a processor, and an air supply control program stored on the memory and executable on the processor. The processor is connected to the gas detection device. When the air supply control program is executed by the processor, each step of the air conditioner air supply control method as described above is realized.

[0109] In addition, the present invention also provides a computer-readable storage medium, on which a air supply control program is stored. When the air supply control program is executed by a processor, each step of the air conditioner air supply control method described above is implemented.

[0110] Through the description of the above embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be implemented by means of software plus a necessary general hardware platform. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation. Based on such an understanding, the technical solution of the present invention, in essence, or the part that contributes to the prior art, can be embodied in the form of a software product. The computer software product is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disk) as described above, and includes several instructions for causing a terminal device (which can be a mobile phone, a computer, a server, an air conditioner, or a network device, etc.) to execute the methods described in various embodiments of the present invention.

[0111] The above are only the preferred embodiments of the present invention, and do not limit the patent scope of the present invention. Any equivalent structure or equivalent process transformation made by using the specification and drawings of the present invention, or directly or indirectly applied in other related technical fields, shall be equally included in the patent protection scope of the present invention.

Claims

1. An air conditioner air supply control method, characterized in that, the housing of the air conditioner includes a panel and at least two air outlets, the air outlets are located on both sides of the panel, an air outlet grille is provided in the housing, the air outlet grille is located in the air duct and close to the air outlet, and the air outlet grille includes an arc surface with a concave surface facing the panel; a wind deflector is provided at each air outlet, and the air conditioner air supply control method includes: determining the air supply direction of the air conditioner, the air supply direction including middle air supply and two-side air supply; controlling the opening angle of the wind deflector according to the air supply direction, and the opening angle of the wind deflector during middle air supply is smaller than that during two-side air supply.

2. The air conditioner air supply control method according to claim 1, characterized in that, the step of controlling the opening angle of the wind deflector according to the air supply direction includes: when middle air supply is performed, controlling the wind deflectors corresponding to the air outlets on both sides to open to a first target angle, and the first target angle is smaller than a first preset angle.

3. The air conditioner air supply control method according to claim 2, characterized in that, the middle air supply includes middle-left air supply, middle-right air supply or straight-middle air supply; the step of controlling the wind deflectors corresponding to the air outlets on both sides to open to a first target angle includes: when middle-left air supply is performed, controlling the wind deflector corresponding to the left air outlet to open a first angle value, and controlling the wind deflector corresponding to the right air outlet to open a second angle value, and the first angle value is greater than the second angle value; when middle-right air supply is performed, controlling the wind deflector corresponding to the left air outlet to open a first angle value, and controlling the wind deflector corresponding to the right air outlet to open a second angle value, and the second angle value is greater than the first angle value; when straight-middle air supply is performed, controlling the wind deflector corresponding to the left air outlet to open a first angle value, and controlling the wind deflector corresponding to the right air outlet to open a second angle value, and the first angle value is equal to the second angle value; wherein, the angle value corresponding to the first target angle includes the first angle value and / or the second angle value.

4. The air conditioner air supply control method according to claim 2, characterized in that, the step of controlling the opening angle of the wind deflector according to the air supply direction includes: when two-side air supply is performed, controlling the wind deflectors corresponding to the air outlets on both sides to open to a second target angle, and the second target angle is greater than or equal to the first preset angle.

5. The air conditioner air supply control method according to claim 4, characterized in that, the air supply direction further includes full air supply, and the step of controlling the opening angle of the wind deflector according to the air supply direction further includes: when full air supply is performed, controlling the wind deflectors corresponding to the air outlets on both sides to swing cyclically between the first target angle and the second target angle.

6. The air conditioner air supply control method according to any one of claims 1 to 4, characterized in that, the air conditioner air supply control method further includes: controlling the wind deflector to open a preset angle and then close to reset the wind deflector. After the air deflector returns to its initial position, perform the step of determining the air supply direction of the air conditioner, and controlling the opening angle of the air deflector according to the air supply direction, where the opening angle of the air deflector during middle air supply is smaller than that during side air supply.

7. The air conditioner air supply control method according to claim 1, characterized in that, the step of controlling the opening angle of the air deflector according to the air supply direction includes: controlling the opening angle of the air deflector according to the air supply direction and the air supply intensity, and the greater the air supply intensity, the greater the opening angle of the air deflector.

8. An air conditioner, characterized in that, the air conditioner includes: a memory, a processor, and an air supply control program stored on the memory and executable on the processor, and when the air supply control program is executed by the processor, it implements the steps of the air conditioner air supply control method according to any one of claims 1 to 7.

9. The air conditioner according to claim 8, characterized in that, the housing of the air conditioner includes a front housing and a rear housing, the air outlet and the panel of the air conditioner are arranged on the front housing, the maximum width of the air outlets on both sides is Y, and the width of the panel is Z, where the ratio of Z to Y is greater than or equal to a preset ratio.

10. A computer-readable storage medium, characterized in that, an air supply control program is stored on the computer-readable storage medium, and when the air supply control program is executed by a processor, it implements the steps of the air conditioner air supply control method according to any one of claims 1 to 7.