A control method and device of an air conditioner, the air conditioner, a storage medium and a program product
By controlling the rotation angle of the air conditioner's air outlet door panel and the compressor frequency, combined with indoor temperature and the distance between people, the problems of insufficient air intake and short air delivery distance of dual cross-flow fan air conditioners have been solved, achieving rapid cooling and long-distance air delivery, thus improving the user experience.
Patent Information
- Application Number
- CN202411653777.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-19
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2044-11-19
AI Technical Summary
When a dual-flow fan air conditioner is working, the air outlet door closes, reducing the air intake and affecting heat exchange efficiency and air output. This results in the indoor temperature taking too long to reach the target temperature and the air delivery distance being too short, failing to meet the needs of rapid cooling and long-distance air delivery.
By controlling the rotation angle of the first and second air outlet doors and the compressor frequency of the air conditioner, combined with the indoor temperature and the distance between people, the air intake and air delivery direction are optimized to achieve rapid cooling and long-distance air delivery.
It improves the heat exchange efficiency and air delivery distance of the air conditioner, enhances the user's comfort experience, and avoids increased noise and aesthetic damage.
Smart Images

Figure CN119468436B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application belongs to the technical field of air conditioners, and particularly relates to an air conditioner control method and device, an air conditioner, a storage medium and a computer program product. BACKGROUND
[0002] For a double cross-flow fan air conditioner, in order to ensure the appearance of the air conditioner, the door plates at the two air outlets are closed when the air conditioner is not working, and the two door plates are opened when the air conditioner is working, which has a certain shielding effect on the air inlet, reduces the air inlet amount, affects the heat exchange efficiency of the evaporator and the air outlet amount of the air conditioner, causes the time for the indoor temperature to reach the target temperature to be too long, and cannot achieve a long air supply distance.
[0003] The above content is only used to assist in understanding the technical solutions of the present application and does not represent the acknowledgement of the above content as prior art. SUMMARY
[0004] The purpose of the present application is to provide an air conditioner control method and device, an air conditioner, a storage medium and a computer program product, to solve the problem that the double cross-flow fan air conditioner cannot guarantee that the indoor temperature reaches the target temperature quickly and the air supply distance is short in related solutions, to achieve the effect of controlling the rotation angle of the door plate and the frequency of the compressor by combining the indoor temperature and the distance between the indoor personnel and the indoor unit, improving the cooling speed and the air supply distance, blowing the air outlet to the user position, and improving the user comfort.
[0005] The present application provides an air conditioner control method, wherein the indoor unit of the air conditioner has a first air outlet and a second air outlet; a first door plate is arranged at the first air outlet; a second door plate is arranged at the second air outlet; after the first door plate and the second door plate are opened, they can rotate respectively with the connection between themselves and the body of the indoor unit as the rotation shaft; the method comprises the following steps: when the air conditioner is running, the first door plate and the second door plate are in an open state, the indoor environment temperature, the indoor set temperature, and the distance between the indoor personnel and the indoor unit are obtained; whether the room temperature reduction speed needs to be adjusted is determined according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed needs to be adjusted, the rotation angle of the first door plate, the rotation angle of the second door plate, and the operating frequency of the compressor are controlled according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed does not need to be adjusted, the rotation angle of the first door plate and the rotation angle of the second door plate are controlled according to the distance between the indoor personnel and the indoor unit.
[0006] In some embodiments, the determination of whether to adjust the room temperature reduction speed according to the indoor environment temperature and the indoor set temperature comprises: recording the difference between the indoor environment temperature and the indoor set temperature as a temperature difference value, and determining the size relationship between the temperature difference value and a preset temperature difference value; if the temperature difference value is greater than or equal to the preset temperature difference value, it is determined that the room temperature reduction speed needs to be adjusted; and if the temperature difference value is less than the preset temperature difference value, it is determined that the room temperature reduction speed does not need to be adjusted.
[0007] In some embodiments, the control of the rotation angle of the first door plate, the rotation angle of the second door plate, and the operating frequency of the compressor according to the indoor environment temperature and the indoor set temperature comprises: determining the size of the temperature difference value; if the temperature difference value is in a first temperature range, the rotation angle of the first door plate and the rotation angle of the second door plate are controlled to be a preset first angle, and the operating frequency of the compressor is increased by a preset first adjustment amount; and if the temperature difference value is in a second temperature range, the rotation angle of the first door plate and the rotation angle of the second door plate are controlled to be a preset second angle, and the operating frequency of the compressor is increased by a preset second adjustment amount; wherein the first temperature range > the second temperature range, the preset first angle > the preset second angle, and the preset first adjustment amount > the preset second adjustment amount.
[0008] In some embodiments, the control of the rotation angle of the first door plate and the rotation angle of the second door plate according to the distance between the indoor personnel and the indoor unit comprises: determining the size of the distance between the indoor personnel and the indoor unit; if the distance between the indoor personnel and the indoor unit is in a first distance range, the rotation angle of the first door plate and the rotation angle of the second door plate are controlled to be a preset third angle; and if the distance between the indoor personnel and the indoor unit is in a second distance range, the rotation angle of the first door plate and the rotation angle of the second door plate are controlled to be a preset fourth angle; wherein the first distance range > the second distance range, and the preset third angle > the preset fourth angle.
[0009] In some embodiments, the first air outlet is provided with a first air deflector, and the second air outlet is provided with a second air deflector; the method further comprises: after it is determined that the room temperature reduction speed needs to be adjusted, the opening angle of the first air deflector and the second air deflector is controlled to be a preset fifth angle, so that the contact area of the air outlet of the indoor unit with the first air deflector and the second air deflector is minimized.
[0010] In some embodiments, the air conditioner has a first air inlet and a second air inlet; the first air inlet corresponds to the first air outlet, and the second air inlet corresponds to the second air outlet; the method further comprises: after determining that the room temperature reduction speed does not need to be adjusted, obtaining the area where the indoor personnel are located; if the area where the indoor personnel are located is a set first area, increasing the rotation angle of the first door plate to increase the air intake of the first air inlet; and controlling the opening angle of the first air deflector to be a preset sixth angle and the opening angle of the second air deflector to be a preset seventh angle, so that the air outlet of the air conditioner blows towards the first area; if the area where the indoor personnel are located is a set second area, increasing the rotation angle of the second door plate to increase the air intake of the second air inlet; and controlling the opening angle of the first air deflector to be a preset eighth angle and the opening angle of the second air deflector to be a preset ninth angle, so that the air outlet of the air conditioner blows towards the second area.
[0011] To match the above method, another aspect of the present application provides a control device of an air conditioner, the indoor unit of the air conditioner has a first air outlet and a second air outlet; the first air outlet is provided with a first door plate; the second air outlet is provided with a second door plate; after the first door plate and the second door plate are opened, they can rotate respectively with the connection between themselves and the body of the indoor unit as the rotation shaft; the device comprises: an obtaining unit configured to obtain the indoor environment temperature, the indoor set temperature, and the distance between the indoor personnel and the indoor unit when the first door plate and the second door plate are in an open state during operation of the air conditioner; a control unit configured to determine whether the room temperature reduction speed needs to be adjusted according to the indoor environment temperature and the indoor set temperature; the control unit is further configured to control the rotation angle of the first door plate, the rotation angle of the second door plate, and the operating frequency of the compressor according to the indoor environment temperature and the indoor set temperature if it is determined that the room temperature reduction speed needs to be adjusted; the control unit is further configured to control the rotation angle of the first door plate and the rotation angle of the second door plate according to the distance between the indoor personnel and the indoor unit if it is determined that the room temperature reduction speed does not need to be adjusted.
[0012] In some embodiments, the control unit determines whether the room temperature reduction speed needs to be adjusted according to the indoor environment temperature and the indoor set temperature, which comprises: recording the difference between the indoor environment temperature and the indoor set temperature as a temperature difference value, and judging the size relationship between the temperature difference value and a preset temperature difference value; if the temperature difference value is greater than or equal to the preset temperature difference value, it is determined that the room temperature reduction speed needs to be adjusted; if the temperature difference value is less than the preset temperature difference value, it is determined that the room temperature reduction speed does not need to be adjusted.
[0013] In some embodiments, the control unit controls the rotation angle of the first door plate, the rotation angle of the second door plate, and the operating frequency of the compressor according to the indoor environment temperature and the indoor set temperature, including: determining the size of the temperature difference value; if the temperature difference value is in a first temperature range, controlling the rotation angle of the first door plate and the second door plate to be a preset first angle, and increasing the operating frequency of the compressor by a preset first adjustment amount; if the temperature difference value is in a second temperature range, controlling the rotation angle of the first door plate and the second door plate to be a preset second angle, and increasing the operating frequency of the compressor by a preset second adjustment amount; wherein the first temperature range > the second temperature range, the preset first angle > the preset second angle, and the preset first adjustment amount > the preset second adjustment amount.
[0014] In some embodiments, the control unit controls the rotation angle of the first door plate and the rotation angle of the second door plate according to the distance between the indoor personnel and the indoor unit, including: determining the size of the distance between the indoor personnel and the indoor unit; if the distance between the indoor personnel and the indoor unit is in a first distance range, controlling the rotation angle of the first door plate and the second door plate to be a preset third angle; if the distance between the indoor personnel and the indoor unit is in a first distance range, controlling the rotation angle of the first door plate and the rotation angle of the second door plate to be a preset fourth angle; wherein the first distance range > the second distance range, and the preset third angle > the preset fourth angle.
[0015] In some embodiments, the first air outlet is provided with a first air deflector, and the second air outlet is provided with a second air deflector; the control unit is further configured to, after determining that it is necessary to adjust the room temperature reduction speed, control the opening angle of the first air deflector and the second air deflector to be a preset fifth angle, so that the contact area of the air outlet of the indoor unit with the first air deflector and the second air deflector is minimized.
[0016] In some embodiments, the air conditioner has a first air inlet and a second air inlet; the first air inlet corresponds to the first air outlet, and the second air inlet corresponds to the second air outlet; the control unit is further configured to, after determining that the room temperature reduction speed does not need to be adjusted, acquire the area where the indoor personnel are located; if the area where the indoor personnel are located is set as a first area, increase the rotation angle of the first door plate, so that the air inlet amount of the first air inlet is increased; and control the opening angle of the first air deflector to be a preset sixth angle, and the opening angle of the second air deflector to be a preset seventh angle, so that the air outlet of the air conditioner blows towards the first area; if the area where the indoor personnel are located is set as a second area, increase the rotation angle of the second door plate, so that the air inlet amount of the second air inlet is increased; and control the opening angle of the first air deflector to be a preset eighth angle, and the opening angle of the second air deflector to be a preset ninth angle, so that the air outlet of the air conditioner blows towards the second area.
[0017] In order to achieve the above object, the present application provides a control device of an air conditioner.
[0018] In order to achieve the above object, the present application provides a control device of an air conditioner.
[0019] In order to achieve the above object, the present application provides a control device of an air conditioner.
[0020] In order to achieve the above object, the present application provides a control device of an air conditioner.
[0021] Other features and advantages of the present application will be set forth in the following description, and in part will become apparent to those skilled in the art upon examination of the following or can be learned by practice of the present application.
[0022] The technical solutions of the present application will be further described in detail below with the help of the accompanying drawings and embodiments. BRIEF DESCRIPTION OF DRAWINGS
[0023] Figure 1 Flowchart of an embodiment of the control method of the air conditioner of the present application;
[0024] Figure 2 Structure diagram of an embodiment of the control device of the air conditioner of the present application;
[0025] Figure 3 Structure diagram of the indoor unit of the air conditioner of the present application;
[0026] Figure 4 Structure diagram of the indoor unit when the door panel is normally opened;
[0027] Figure 5 Structure diagram of the indoor unit when the door panel is rotated;
[0028] Figure 6 Structure diagram of the indoor unit when the door panel is rotated;
[0029] Figure 7 Structure diagram of the indoor unit when the door panel is rotated;
[0030] Figure 8 Structure diagram of the indoor unit when the door panel is rotated;
[0031] In combination with the accompanying drawings, the reference signs in the embodiments of the present application are as follows:
[0032] 1 - baffle; 2 - evaporator; 3 - first fan; 4 - second fan; 5 - first air outlet; 6 - second air outlet; 7 - first door panel; 8 - second door panel; 9 - first rotating shaft; 10 - second rotating shaft; 11 - left air deflector; 12 - right air deflector; 13 - display area; 102 - acquisition unit; 104 - control unit. DETAILED DESCRIPTION
[0033] In order to make the objectives, technical solutions and advantages of the present application clearer, the technical solutions of the present application will be described clearly and completely below in combination with specific embodiments of the present application and corresponding drawings. Obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative efforts fall within the scope of protection of the present application.
[0034] When users turn on their air conditioners, they want the indoor temperature to reach the set point quickly, or they want the air conditioner to deliver air over long distances. Some solutions achieve this by increasing the motor speed, but this can generate loud noise and reduce the user experience. Other solutions increase the air intake area and air volume by increasing the air conditioner housing size, but this also affects the overall aesthetics of the air conditioner.
[0035] Therefore, the present invention provides a control method for an air conditioner. Without changing the structure of the double-cross-flow fan air conditioner, the air intake volume and heat exchange efficiency of the air conditioner are improved by controlling the rotation angle of the door panel at the air outlet and the frequency of the compressor, thereby achieving rapid cooling and a longer air supply distance without generating loud noise, thereby improving user experience.
[0036] According to an embodiment of the present invention, a control method for an air conditioner is provided, wherein the indoor unit of the air conditioner has a first air outlet and a second air outlet; a first door panel is provided at the first air outlet; a second door panel is provided at the second air outlet; after the first door panel and the second door panel are opened, they can respectively rotate with their respective connections with the body of the indoor unit as rotation axes.
[0037] The indoor unit of the air conditioner has two cross-flow fans, as shown in the following figure: Figures 3 to 5 As shown, the indoor unit includes a baffle 1, an evaporator 2, a first fan 3, a second fan 4, a first door panel 7, and a second door panel 8. The indoor unit also has a first air outlet 5 and a second air outlet 6. When the air conditioner is turned off, the first and second door panels are closed, covering the first and second air outlets, respectively. When the air conditioner is running, the first and second door panels are normally open, fully exposing the first and second air outlets, and the air conditioner is discharging air normally.
[0038] When the first and second door panels are normally open, they will partially block the air inlet, resulting in a reduction in the air intake and, consequently, the air output. This makes it impossible to quickly cool down the room and achieve long-distance air supply. Therefore, this solution controls the first door panel to rotate about the first rotation axis and the second door panel to rotate about the second rotation axis. This reduces the area blocked by the door panels on the air inlet without blocking the air outlet, increases the air intake, and thus improves heat exchange efficiency. This increases the air output, allowing the air conditioner to quickly cool down the room and achieve long-distance air supply. At the same time, the door panel rotation angle and compressor frequency are adjusted based on the ambient temperature and the activities of people indoors, prioritizing cooling in the user area and improving the user experience.
[0039] like Figure 1 FIG. 1 is a flow chart of an embodiment of the method of the present invention. The air conditioner control method may include steps S110 to S140.
[0040] At step S110, when the air conditioner is running, the first door plate and the second door plate are in an open state, an indoor environment temperature, an indoor set temperature, and a distance between an indoor person and the indoor unit are acquired.
[0041] A millimeter wave radar device is arranged in a display area 11 of the air conditioner, and the distance between the indoor person and the indoor unit, the indoor person activity area, and the like can be detected by using electromagnetic waves. For example, the millimeter wave radar device emits electromagnetic waves in each direction within a range of 120° forward from the front of the indoor unit, and when a reflected wave is received back from the S1 area, it indicates that there is a person in the area S1, and the distance between the person and the air conditioner can be calculated according to the time of emission and reception. The indoor set temperature is a target temperature set by the user.
[0042] At step S120, whether the room temperature reduction speed needs to be adjusted is determined according to the indoor environment temperature and the indoor set temperature.
[0043] In the process of adjusting the indoor temperature, firstly, whether the indoor temperature is rapidly reduced is considered, that is, the comfort of the indoor environment is preferentially ensured. After the indoor temperature approaches the set temperature, the control of the wind following the person is performed, the comfort of the person is improved, and the local overcooling in the room is avoided.
[0044] In some embodiments, the specific process of determining whether the room temperature reduction speed needs to be adjusted according to the indoor environment temperature and the indoor set temperature in step S120 includes: taking the difference between the indoor environment temperature and the indoor set temperature as a temperature difference value, judging the size relationship between the temperature difference value and a preset temperature difference value; if the temperature difference value is greater than or equal to the preset temperature difference value, it is determined that the room temperature reduction speed needs to be adjusted; and if the temperature difference value is less than the preset temperature difference value, it is determined that the room temperature reduction speed does not need to be adjusted.
[0045] The greater the difference between the indoor environment temperature and the indoor set temperature, the higher the indoor temperature, and more cooling capacity is needed for temperature reduction. Therefore, whether the indoor temperature is rapidly reduced can be determined according to the size of the difference ΔT between the indoor environment temperature and the indoor set temperature. The preset temperature difference value can be set to 2°C. Specifically, when ΔT≥2°C, it is considered that the room load is relatively large, and more cooling capacity is needed for the room temperature reduction; and when ΔT<2°C, it is considered that the indoor environment temperature approaches the indoor set temperature, and the indoor environment is relatively comfortable, and the control of the wind following the person is performed, so that the air outlet always blows to the position of the user.
[0046] When the air conditioner is running in a heating mode, whether the indoor temperature is rapidly increased can also be determined according to the indoor environment temperature and the indoor set temperature, and the determination manner is the same as that in the cooling mode.
[0047] At step S130, if it is determined that the room temperature reduction speed needs to be adjusted, the rotation angle of the first door panel, the rotation angle of the second door panel, and the operating frequency of the compressor are controlled according to the indoor environment temperature and the indoor set temperature.
[0048] In some embodiments, the specific process of controlling the rotation angle of the first door panel, the rotation angle of the second door panel, and the operating frequency of the compressor according to the indoor environment temperature and the indoor set temperature at step S130 includes: judging the value of the temperature difference; if the temperature difference value is in a first temperature range, controlling the rotation angle of the first door panel and the second door panel to be a preset first angle, and increasing the operating frequency of the compressor by a preset first adjustment amount; if the temperature difference value is in a second temperature range, controlling the rotation angle of the first door panel and the second door panel to be a preset second angle, and increasing the operating frequency of the compressor by a preset second adjustment amount; wherein the first temperature range > the second temperature range, the preset first angle > the preset second angle, and the preset first adjustment amount > the preset second adjustment amount.
[0049] The rotation direction of the door panel is as shown in Figure 5 For example, the door panel 1, the rotation angle of the door panel when normally opened is 0°, and then the door panel can rotate outward (the direction indicated by the arrow of β1) around the rotation shaft 9, and the opening angle is β1, that is, the included angle between the position when the door panel is normally opened and the position after rotation is the rotation angle. As the door panel rotates outward, the rotation angle gradually increases.
[0050] The greater the rotation angle of the door panel, the smaller the influence of the door panel on the air inlet amount, and the greater the air inlet amount. Therefore, the greater the rotation angle of the door panel when ΔT is greater, and the greater the air inlet amount, so as to improve the heat exchange efficiency of the evaporator and rapidly reduce the indoor temperature. As ΔT gradually decreases, the rotation angle of the door panel gradually decreases, so that the air conditioning output cold quantity meets the current working condition.
[0051] In order to make the control more accurate, more temperature ranges and corresponding rotation angles and compressor operating frequency adjustment amounts can be added. Specifically, when Δ≥8℃, the rotation angle of the first door panel and the second door panel is 35°, and the compressor operating frequency adjustment amount is 8Hz; when 8>ΔT≥6℃, the rotation angle of the first door panel and the second door panel is 30°, and the compressor operating frequency adjustment amount is 6Hz; when 6>ΔT≥4℃, the rotation angle of the first door panel and the second door panel is 25°, and the compressor operating frequency adjustment amount is 4Hz; when 4>ΔT≥2℃, the rotation angle of the first door panel and the second door panel is 20°, and the compressor operating frequency adjustment amount is 2Hz.
[0052] If the adjusted compressor frequency exceeds the maximum operating frequency of the compressor, the compressor is controlled to operate at the maximum operating frequency.
[0053] At step S140, if it is determined that the room temperature reduction speed does not need to be adjusted, the rotation angle of the first door plate and the rotation angle of the second door plate are controlled according to the distance between the indoor personnel and the indoor unit.
[0054] By rapidly reducing the temperature in the room and controlling the rotation angle of the door plate to increase the air supply volume and the air supply distance, the air is blown to the position of the user, and the user's thermal comfort is improved.
[0055] In some embodiments, in step S140, the specific process of controlling the rotation angle of the first door plate and the rotation angle of the second door plate according to the distance between the indoor personnel and the indoor unit includes: judging the distance between the indoor personnel and the indoor unit; if the distance between the indoor personnel and the indoor unit is in a first distance range, the rotation angle of the first door plate and the second door plate is controlled to be a preset third angle; if the distance between the indoor personnel and the indoor unit is in a second distance range, the rotation angle of the first door plate and the second door plate is controlled to be a preset fourth angle; wherein the first distance range > the second distance range, and the preset third angle > the preset fourth angle.
[0056] The farther the distance L between the user and the indoor unit, the more air volume is needed to output cold to the position of the user, and the greater the rotation angle of the door plate, the more air volume is output. Therefore, the farther the distance between the user and the indoor unit, the greater the rotation angle of the door plate. In order to make the control more accurate, more distance ranges and corresponding rotation angles can be added. Specifically, when L≥6m, the rotation angle of the first door plate and the second door plate is 35°; when 6>m≥4m, the rotation angle of the first door plate and the second door plate is 25°; and when L<4m, the rotation angle of the first door plate and the second door plate is 0°.
[0057] In some embodiments, the first air outlet is provided with a first air deflector, and the second air outlet is provided with a second air deflector. Figure 6 As shown in FIG. 1, the first air outlet is provided with a left air deflector 11, and the second air outlet is provided with a right air deflector 12. The preset opening angle of the left air deflector is a1-a5, and the preset opening angle of the right air deflector is b1-b5.
[0058] In some embodiments, the control method further includes a process of controlling the opening angle of the air deflector when adjusting the room temperature reduction speed. The process specifically includes: after it is determined that the room temperature reduction speed needs to be adjusted, the opening angle of the first air deflector and the second air deflector is controlled to be a preset fifth angle, so that the contact area of the air outlet of the indoor unit with the first air deflector and the second air deflector is minimized.
[0059] The preset fifth angle is the most downwind angle, as shown in FIG. 1. Figure 6The a3 and b3 angles in the formula are the most downwind angles. At the most downwind angles, the air conditioner has the smallest resistance to the air outlet, so that more cold energy can be output to the indoor, and the indoor cooling speed is improved.
[0060] In some embodiments, the air conditioner has a first air inlet and a second air inlet; the first air inlet corresponds to the first air outlet, and the second air inlet corresponds to the second air outlet.
[0061] In some embodiments, the control method further comprises a process of controlling the door plate and the air deflector according to the area where the indoor personnel are located when the room temperature reduction speed does not need to be adjusted, which specifically comprises: after determining that the room temperature reduction speed does not need to be adjusted, obtaining the area where the indoor personnel are located; if the area where the indoor personnel are located is set to a first area, increasing the rotation angle of the first door plate to increase the air inlet amount of the first air inlet; and controlling the opening angle of the first air deflector to be a preset sixth angle and the opening angle of the second air deflector to be a preset seventh angle, so that the air outlet of the air conditioner blows to the first area; if the area where the indoor personnel are located is set to a second area, increasing the rotation angle of the second door plate to increase the air inlet amount of the second air inlet; and controlling the opening angle of the first air deflector to be a preset eighth angle and the opening angle of the second air deflector to be a preset ninth angle, so that the air outlet of the air conditioner blows to the second area.
[0062] The area where the indoor personnel are located is the active position of the user in the room, Figure 8 To divide the active position of the user, the combination of the active position of the user is determined as different active areas. Specifically, the first active area is S1+S2 position, the second active area is S2+S3 position, the third active area is S3+S4 position, the fourth active area is S4+S5 position, and the fifth active area is that the active position of the user is dispersed and not concentrated in a certain position.
[0063] The opening angle of the air deflector of the air conditioner corresponds to the active area. For the left air deflector, the air outlet of the first air outlet blows to the first active area and the second active area when the opening angle is a3, and the air outlet of the first air outlet blows to the third active area and the fourth active area when the opening angle is a5. For the right air deflector, the air outlet of the second air outlet blows to the third active area and the fourth active area when the opening angle is b1, and the air outlet of the second air outlet blows to the first active area and the second active area when the opening angle is b5.
[0064] On the basis of controlling the rotation angles of the first door plate and the second door plate according to the distance between the indoor personnel and the indoor unit, in combination with the area where the indoor personnel are located, the first door plate, the second door plate, the left air deflector, and the right air deflector can be controlled according to the following table.
[0065]
[0066]
[0067] By combining the distance between the user and the indoor unit and the user activity area to control the angle of the door plate of the door plate, the wind follows the people, and the user's body comfort is improved.
[0068] The technical scheme of the embodiment is adopted, the first door plate at the first air outlet of the air conditioner indoor unit and the second door plate at the second air outlet can rotate respectively with the connection between itself and the body of the indoor unit as the rotating shaft; when the air conditioner is running, whether the room temperature reduction speed needs to be adjusted is determined according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed needs to be adjusted, the rotating angle of the first door plate and the second door plate and the operating frequency of the compressor are controlled according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed does not need to be adjusted, the rotating angle of the first door plate and the second door plate is controlled according to the distance between the indoor personnel and the indoor unit. Thus, by combining the indoor temperature and the distance between the indoor personnel and the indoor unit to control the rotating angle of the door plate and the frequency of the compressor, the cooling speed and the air supply amount are improved, the air is blown to the user position, and the user experience is improved.
[0069] According to the embodiment of the application, a control device of an air conditioner corresponding to the control method of the air conditioner is also provided. The indoor unit of the air conditioner has a first air outlet and a second air outlet; the first air outlet is provided with a first door plate; the second air outlet is provided with a second door plate; after the first door plate and the second door plate are opened, they can rotate respectively with the connection between themselves and the body of the indoor unit as the rotating shaft.
[0070] The indoor unit of the air conditioner has two cross-flow fans, as shown in Figures 3 to 5 The indoor unit includes a baffle 1, an evaporator 2, a first fan 3, a second fan 4, a first door plate 7, and a second door plate 8. The indoor unit also has a first air outlet 5 and a second air outlet 6. When the air conditioner is off, the first door plate and the second door plate are in a closed state, covering the first air outlet and the second air outlet respectively; when the air conditioner is running, the first door plate and the second door plate are normally opened, completely exposing the first air outlet and the second air outlet, and the air conditioner normally blows air.
[0071] In the case that the first door plate and the second door plate are normally opened, part of the air inlet is blocked, the air inlet amount is reduced, the air outlet amount is also reduced accordingly, the indoor temperature cannot be rapidly reduced, and long-distance air supply cannot be realized. Therefore, the first door plate is controlled to rotate around the first rotation axis, and the second door plate is controlled to rotate around the second rotation axis, the blocking area of the door plate to the air inlet is reduced without blocking the air outlet, the air inlet amount is increased, the heat exchange efficiency is improved, the air outlet amount is increased, the air conditioner can rapidly reduce the indoor temperature, and long-distance air supply is realized. Meanwhile, the rotation angle of the door plate and the frequency of the compressor are adjusted according to the ambient temperature and the indoor personnel activity, the area where the user is located is preferentially cooled, and the use experience is improved.
[0072] Referring to Figure 2 An embodiment of the structure of the device of the application is shown in the schematic diagram. The control device of the air conditioner can include an acquisition unit 102 and a control unit 104.
[0073] The acquisition unit 102 is configured to acquire the indoor ambient temperature, the indoor set temperature, and the distance between the indoor personnel and the indoor unit when the air conditioner is running and the first door plate and the second door plate are in the opened state. The specific functions and processes of the acquisition unit 102 are described in step S110.
[0074] The millimeter wave radar device is arranged in the display area 11 of the air conditioner, and the distance between the indoor personnel and the indoor unit, the indoor personnel activity area, etc. can be detected by using electromagnetic waves. For example, the millimeter wave radar device emits electromagnetic waves in each direction within a range of 120° forward from the front of the indoor unit, and when the reflected wave is received from the S1 area, it indicates that there is a person in the S1 area. Meanwhile, the distance between the person and the air conditioner can be calculated according to the emission and reception time. The indoor set temperature is the target temperature set by the user.
[0075] The control unit 104 is configured to determine whether the room temperature reduction speed needs to be adjusted according to the indoor ambient temperature and the indoor set temperature. The specific functions and processes of the control unit 104 are described in step S120.
[0076] In the process of adjusting the indoor temperature, whether the indoor temperature is rapidly reduced is considered first, that is, the comfort of the indoor environment is preferentially ensured. After the indoor temperature approaches the set temperature, the control of the air following the movement of the person is performed, the comfort of the person is improved, and the local overcooling in the room is avoided.
[0077] In some embodiments, the control unit 104 determines whether to adjust the room temperature reduction speed according to the indoor environment temperature and the indoor set temperature, and the specific process includes: recording the difference between the indoor environment temperature and the indoor set temperature as a temperature difference value, determining the size relationship between the temperature difference value and a preset temperature difference value; if the temperature difference value is greater than or equal to the preset temperature difference value, it is determined that the room temperature reduction speed needs to be adjusted; if the temperature difference value is less than the preset temperature difference value, it is determined that the room temperature reduction speed does not need to be adjusted.
[0078] The greater the difference between the indoor environment temperature and the indoor set temperature, the higher the indoor temperature, and the more cooling capacity is needed for cooling. Therefore, whether the indoor temperature needs to be rapidly reduced can be determined according to the size of the difference ΔT between the indoor environment temperature and the indoor set temperature. The preset temperature difference value can be set to 2°C. Specifically, when ΔT≥2°C, it is considered that the room load is relatively large, and more cooling capacity is needed to cool the room; when ΔT<2°C, it is considered that the indoor environment temperature is close to the indoor set temperature, and the indoor environment is comfortable, and the control of the air flow following the user movement is performed to make the air outlet always blow to the position where the user is located.
[0079] When the air conditioner operates in the heating mode, whether the indoor temperature needs to be rapidly increased can also be determined according to the indoor environment temperature and the indoor set temperature, and the determination manner is the same as that in the cooling mode.
[0080] The control unit 104 is further configured to, if it is determined that the room temperature reduction speed needs to be adjusted, control the rotation angle of the first door plate, the rotation angle of the second door plate, and the operating frequency of the compressor according to the indoor environment temperature and the indoor set temperature. The specific functions and processes of the control unit 104 are described in step S130.
[0081] In some embodiments, the control unit 104 controls the rotation angle of the first door plate, the rotation angle of the second door plate, and the operating frequency of the compressor according to the indoor environment temperature and the indoor set temperature, and the specific process includes: determining the size of the temperature difference value; if the temperature difference value is in a first temperature range, controlling the rotation angle of the first door plate and the rotation angle of the second door plate to be a preset first angle, and increasing the operating frequency of the compressor by a preset first adjustment amount; if the temperature difference value is in a second temperature range, controlling the rotation angle of the first door plate and the rotation angle of the second door plate to be a preset second angle, and increasing the operating frequency of the compressor by a preset second adjustment amount; wherein the first temperature range>the second temperature range, the preset first angle>the preset second angle, and the preset first adjustment amount>the preset second adjustment amount.
[0082] The rotation direction of the door plate is as shown in Figure 5As shown, taking the door panel 1 as an example, the rotation angle of the door panel when normally opened is 0°, and then the door panel can rotate outward (the direction indicated by the arrow of β1) around the rotation shaft 9, and the opening angle is β1, that is, the included angle between the position when the door panel is normally opened and the position after rotation is the rotation angle. As the door panel rotates outward, the rotation angle gradually increases.
[0083] The greater the rotation angle of the door panel, the smaller the influence of the door panel on the air inlet amount, and the greater the air inlet amount. Therefore, the greater the rotation angle of the door panel when ΔT is greater, and the greater the air inlet amount, so as to improve the heat exchange efficiency of the evaporator and rapidly cool the indoor. As ΔT gradually decreases, the rotation angle of the door panel gradually decreases, so that the air conditioning output cooling capacity meets the current working condition.
[0084] In order to make the control more accurate, more temperature ranges and corresponding rotation angles and compressor operating frequency adjustment amounts can be added. Specifically, when Δ≥8℃, the rotation angle of the first door panel and the second door panel is 35°, and the compressor operating frequency adjustment amount is 8Hz; when 8>ΔT≥6℃, the rotation angle of the first door panel and the second door panel is 30°, and the compressor operating frequency adjustment amount is 6Hz; when 6>ΔT≥4℃, the rotation angle of the first door panel and the second door panel is 25°, and the compressor operating frequency adjustment amount is 4Hz; when 4>ΔT≥2℃, the rotation angle of the first door panel and the second door panel is 20°, and the compressor operating frequency adjustment amount is 2Hz.
[0085] If the adjusted compressor frequency exceeds the maximum operating frequency of the compressor, the compressor is controlled to operate at the maximum operating frequency.
[0086] The control unit 104 is also configured to, if it is determined that the room temperature reduction speed does not need to be adjusted, control the rotation angle of the first door panel and the rotation angle of the second door panel according to the distance between the indoor personnel and the indoor unit. For specific functions and processing of the control unit 104, see step S140.
[0087] By rapidly cooling the indoor, and controlling the door panel rotation angle to improve the air supply amount and air supply distance, the air is blown to the position where the user is located, and the user's body comfort is improved.
[0088] In some embodiments, the control unit 104 controls the specific process of the rotation angle of the first door plate and the rotation angle of the second door plate according to the distance between the indoor personnel and the indoor unit, including: judging the distance between the indoor personnel and the indoor unit; if the distance between the indoor personnel and the indoor unit is in a first distance range, controlling the rotation angle of the first door plate and the second door plate to be a preset third angle; if the distance between the indoor personnel and the indoor unit is in a second distance range, controlling the rotation angle of the first door plate and the second door plate to be a preset fourth angle; wherein the first distance range > the second distance range, and the preset third angle > the preset fourth angle.
[0089] The farther the distance L between the user and the indoor unit, the more air volume is needed to output cold energy to the user's location, and the greater the rotation angle of the door plate, the more air volume is output, so the farther the distance between the user and the indoor unit, the greater the rotation angle of the door plate. In order to make the control more accurate, more distance ranges and corresponding rotation angles can be added. Specifically, when L≥6m, the rotation angle of the first door plate and the second door plate is 35°; when 6>m, the rotation angle of the first door plate and the second door plate is 25°; when L<4m, the rotation angle of the first door plate and the second door plate is 0°.
[0090] In some embodiments, the first air outlet is provided with a first air deflector, and the second air outlet is provided with a second air deflector. Figure 6 As shown, the first air outlet is provided with a left air deflector 11, and the second air outlet is provided with a right air deflector 12. The preset opening angle of the left air deflector is a1-a5, and the preset opening angle of the right air deflector is b1-b5.
[0091] In some embodiments, the control unit 104 is further configured to, after determining that it is necessary to adjust the indoor temperature reduction speed, control the opening angle of the first air deflector and the second air deflector to be a preset fifth angle, so that the contact area of the air outlet of the indoor unit with the first air deflector and the second air deflector is minimized.
[0092] The preset fifth angle is the most wind-following angle, and the angles a3, b3 in Figure 6 are the most wind-following angles. At the most wind-following angle, the air outlet of the air conditioner has the smallest resistance, so that more cold energy can be output to the indoor to improve the indoor temperature reduction speed.
[0093] In some embodiments, the air conditioner has a first air inlet and a second air inlet; the first air inlet corresponds to the first air outlet, and the second air inlet corresponds to the second air outlet.
[0094] In some embodiments, the control unit 104 is further configured to, after determining that the room temperature reduction speed does not need to be adjusted, acquire the area where the indoor person is located; if the area where the indoor person is located is set as a first area, increase the rotation angle of the first door plate, so that the air inlet amount of the first air inlet is increased; and control the opening angle of the first deflector to be a preset sixth angle, and the opening angle of the second deflector to be a preset seventh angle, so that the air outlet of the air conditioner blows to the first area; if the area where the indoor person is located is set as a second area, increase the rotation angle of the second door plate, so that the air inlet amount of the second air inlet is increased; and control the opening angle of the first deflector to be a preset eighth angle, and the opening angle of the second deflector to be a preset ninth angle, so that the air outlet of the air conditioner blows to the second area.
[0095] Figure 8 For the divided user activity positions, the combinations of the user activity positions are determined as different activity areas. Specifically, activity area one is S1+S2 position, activity area two is S2+S3 position, activity area three is S3+S4 position, activity area four is S4+S5 position, and activity area five is that the user activity positions are dispersed and not concentrated in a certain position.
[0096] The opening angles of the air deflector plates of the air conditioner correspond to the activity areas. For the left air deflector, when the opening angle is a3, the air outlet of the first air outlet blows to activity area one and activity area two, and when the opening angle is a5, the air outlet of the first air outlet blows to activity area three and activity area four. For the right air deflector, when the opening angle is b1, the air outlet of the second air outlet blows to activity area three and activity area four, and when the opening angle is b5, the air outlet of the second air outlet blows to activity area one and activity area two.
[0097] On the basis of controlling the rotation angles of the first door plate and the second door plate according to the distance between the indoor person and the indoor unit, in combination with the area where the indoor person is located, the first door plate, the second door plate, the left air deflector, and the right air deflector can be controlled according to the following table.
[0098]
[0099]
[0100] By combining the distance between the user and the indoor unit and the user activity area to control the deflector angle of the door plate, the air can follow the person, and the user's body comfort is improved.
[0101] Since the processing and functions realized by the device of the present embodiment basically correspond to the embodiments, principles and examples of the foregoing method, details not described in the description of the present embodiment can be referred to the related description in the foregoing embodiments, which will not be repeated here.
[0102] The first door plate at the first air outlet and the second door plate at the second air outlet of the air conditioner indoor unit can rotate respectively with the connection between the door plate and the body of the indoor unit as the rotating shaft; when the air conditioner is running, whether the room temperature reduction speed needs to be adjusted is determined according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed needs to be adjusted, the rotating angle of the first door plate and the second door plate and the operating frequency of the compressor are controlled according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed does not need to be adjusted, the rotating angle of the first door plate and the second door plate is controlled according to the distance between the indoor personnel and the indoor unit. Therefore, the rotating angle of the door plate and the frequency of the compressor are controlled by combining the indoor temperature and the distance between the indoor personnel and the indoor unit, the cooling speed and the air supply amount are improved, the air is blown to the user position, and the user experience is improved.
[0103] According to the embodiment of the present application, an air conditioner corresponding to the control method of the air conditioner is also provided. The air conditioner can include the control device of the air conditioner.
[0104] Since the processing and functions realized by the air conditioner of the embodiment are basically corresponding to the embodiments, principles and examples of the foregoing device, the description of the embodiment does not elaborate on the related descriptions in the foregoing embodiments, which will not be repeated here.
[0105] The first door plate at the first air outlet and the second door plate at the second air outlet of the air conditioner indoor unit can rotate respectively with the connection between the door plate and the body of the indoor unit as the rotating shaft; when the air conditioner is running, whether the room temperature reduction speed needs to be adjusted is determined according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed needs to be adjusted, the rotating angle of the first door plate and the second door plate and the operating frequency of the compressor are controlled according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed does not need to be adjusted, the rotating angle of the first door plate and the second door plate is controlled according to the distance between the indoor personnel and the indoor unit. Therefore, the rotating angle of the door plate and the frequency of the compressor are controlled by combining the indoor temperature and the distance between the indoor personnel and the indoor unit, the cooling speed and the air supply amount are improved, the air is blown to the user position, and the user experience is improved.
[0106] According to the embodiment of the present application, a storage medium corresponding to the control method of the air conditioner is also provided. The storage medium includes a stored program, wherein when the program is running, the device where the storage medium is located executes the control method of the air conditioner.
[0107] Since the processing and functions realized by the storage medium of the embodiment are basically corresponding to the embodiments, principles and examples of the foregoing method, the description of the embodiment does not elaborate on the related descriptions in the foregoing embodiments, which will not be repeated here.
[0108] The first door plate at the first air outlet and the second door plate at the second air outlet of the air conditioner indoor unit can rotate respectively with the connection between the door plate and the body of the indoor unit as the rotating shaft; when the air conditioner is running, whether the room temperature reduction speed needs to be adjusted is determined according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed needs to be adjusted, the rotating angle of the first door plate and the second door plate and the operating frequency of the compressor are controlled according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed does not need to be adjusted, the rotating angle of the first door plate and the second door plate is controlled according to the distance between the indoor personnel and the indoor unit. Therefore, the rotating angle of the door plate and the frequency of the compressor are controlled by combining the indoor temperature and the distance between the indoor personnel and the indoor unit, the cooling speed and the air supply amount are improved, the air is blown to the user position, and the user experience is improved.
[0109] According to the embodiment of the present application, a computer program product corresponding to the control method of the air conditioner is also provided, the computer program product comprises a computer program, and the computer program product is processed to realize the steps of the control method of the air conditioner.
[0110] Since the processing and functions realized by the computer program product of the embodiment are basically corresponding to the embodiments, principles and examples of the foregoing method, the description of the embodiment is not described in detail, and the related description in the foregoing embodiments is referred to, which is not described herein.
[0111] The first door plate at the first air outlet and the second door plate at the second air outlet of the air conditioner indoor unit can rotate respectively with the connection between the door plate and the body of the indoor unit as the rotating shaft; when the air conditioner is running, whether the room temperature reduction speed needs to be adjusted is determined according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed needs to be adjusted, the rotating angle of the first door plate and the second door plate and the operating frequency of the compressor are controlled according to the indoor environment temperature and the indoor set temperature; if it is determined that the room temperature reduction speed does not need to be adjusted, the rotating angle of the first door plate and the second door plate is controlled according to the distance between the indoor personnel and the indoor unit. Therefore, the rotating angle of the door plate and the frequency of the compressor are controlled by combining the indoor temperature and the distance between the indoor personnel and the indoor unit, the cooling speed and the air supply amount are improved, the air is blown to the user position, and the user experience is improved.
[0112] In conclusion, those skilled in the art can easily understand that the above-mentioned advantageous modes can be freely combined and superimposed without conflict.
[0113] The above only describes the embodiments of the present application and is not used to limit the present application. Those skilled in the art can make various modifications and changes to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the scope of the claims of the present application.
Claims
1. A control method of an air conditioner, characterized by, The air conditioner is a cabinet type air conditioner or a vertical air conditioner; the indoor unit of the air conditioner has a first air outlet and a second air outlet; a first door plate is arranged at the first air outlet; a second door plate is arranged at the second air outlet; after the first door plate and the second door plate are opened, the first door plate and the second door plate can rotate respectively around the connection positions of the first door plate and the second door plate and the machine body of the indoor unit as the rotation axes; A first air deflector is arranged at the first air outlet, and a second air deflector is arranged at the second air outlet; The method comprises: When the air conditioner is running, the first door plate and the second door plate are in an open state, the indoor environment temperature, the indoor set temperature, and the distance between the indoor personnel and the indoor unit are acquired; According to the indoor environment temperature and the indoor set temperature, it is determined whether the room temperature reduction speed needs to be adjusted; If it is determined that the room temperature reduction speed needs to be adjusted, the rotation angle of the first door plate, the rotation angle of the second door plate, and the operation frequency of the compressor are controlled according to the indoor environment temperature and the indoor set temperature; If it is determined that the room temperature reduction speed does not need to be adjusted, the rotation angle of the first door plate and the rotation angle of the second door plate are controlled according to the distance between the indoor personnel and the indoor unit; After it is determined that the room temperature reduction speed needs to be adjusted, the opening angles of the first air deflector and the second air deflector are controlled to be a preset fifth angle, so that the contact areas of the air outlets of the indoor unit with the first air deflector and the second air deflector are minimized.
2. The control method of the air conditioner according to claim 1, characterized by, According to the indoor environment temperature and the indoor set temperature, it is determined whether the room temperature reduction speed needs to be adjusted, which comprises: The difference between the indoor environment temperature and the indoor set temperature is recorded as a temperature difference value, and the size relationship between the temperature difference value and a preset temperature difference value is judged; If the temperature difference value is greater than or equal to the preset temperature difference value, it is determined that the room temperature reduction speed needs to be adjusted; If the temperature difference value is less than the preset temperature difference value, it is determined that the room temperature reduction speed does not need to be adjusted.
3. The control method of the air conditioner according to claim 2, characterized by, According to the indoor environment temperature and the indoor set temperature, the rotation angle of the first door plate, the rotation angle of the second door plate, and the operation frequency of the compressor are controlled, which comprises: The size of the temperature difference value is judged; If the temperature difference value is in a first temperature range, the rotation angles of the first door plate and the second door plate are controlled to be a preset first angle, and the operation frequency of the compressor is increased by a preset first adjustment amount; If the temperature difference value is in a second temperature range, the rotation angles of the first door plate and the second door plate are controlled to be a preset second angle, and the operation frequency of the compressor is increased by a preset second adjustment amount; Wherein, the first temperature range > the second temperature range, the preset first angle > the preset second angle, and the preset first adjustment amount > the preset second adjustment amount.
4. The control method of the air conditioner according to claim 1, characterized by, According to the distance between the indoor personnel and the indoor unit, the rotation angle of the first door plate and the rotation angle of the second door plate are controlled, which comprises: The size of the distance between the indoor personnel and the indoor unit is judged; If the distance between the indoor personnel and the indoor unit is in a first distance range, the rotation angles of the first door plate and the second door plate are controlled to be a preset third angle; If the distance between the indoor personnel and the indoor unit is in a first distance range, the rotation angle of the first door plate and the second door plate is controlled to be a preset fourth angle. Wherein, the first distance range > the second distance range, and the preset third angle > the preset fourth angle.
5. The control method of the air conditioner according to claim 1, characterized by, The air conditioner has a first air inlet and a second air inlet. The first air inlet corresponds to the first air outlet, and the second air inlet corresponds to the second air outlet. The method further comprises: After determining that the room temperature reduction speed does not need to be adjusted, the area where the indoor personnel are located is obtained; If the area where the indoor personnel are located is in a set first area, the rotation angle of the first door plate is increased, the air inlet amount of the first air inlet is increased, the opening angle of the first deflector is controlled to be a preset sixth angle, the opening angle of the second deflector is controlled to be a preset seventh angle, and the air outlet of the air conditioner blows to the first area; If the area where the indoor personnel are located is in a set second area, the rotation angle of the second door plate is increased, the air inlet amount of the second air inlet is increased, the opening angle of the first deflector is controlled to be a preset eighth angle, the opening angle of the second deflector is controlled to be a preset ninth angle, and the air outlet of the air conditioner blows to the second area.
6. A control device of an air conditioner, characterized by comprising: The air conditioner is a cabinet type air conditioner or a vertical type air conditioner; the indoor unit of the air conditioner has a first air outlet and a second air outlet; a first door plate is arranged at the first air outlet; a second door plate is arranged at the second air outlet; after the first door plate and the second door plate are opened, they can rotate respectively around the connection between the door plate and the body of the indoor unit as the rotation axis; A first deflector is arranged at the first air outlet, and a second deflector is arranged at the second air outlet. The device comprises: An acquisition unit is configured to, when the air conditioner is running and the first door plate and the second door plate are in an open state, acquire the indoor environment temperature, the indoor set temperature, and the distance between the indoor personnel and the indoor unit; A control unit is configured to determine whether the room temperature reduction speed needs to be adjusted according to the indoor environment temperature and the indoor set temperature; The control unit is further configured to, if it is determined that the room temperature reduction speed needs to be adjusted, control the rotation angle of the first door plate, the rotation angle of the second door plate, and the operation frequency of the compressor according to the indoor environment temperature and the indoor set temperature. The control unit is further configured to, if it is determined that the room temperature reduction speed does not need to be adjusted, control the rotation angle of the first door plate and the rotation angle of the second door plate according to the distance between the indoor personnel and the indoor unit. The control unit is further configured to, after determining that the room temperature reduction speed needs to be adjusted, control the opening angle of the first deflector and the opening angle of the second deflector to be a preset fifth angle, so that the air outlet of the indoor unit has the smallest contact area with the first deflector and the second deflector respectively.
7. An air conditioner characterized by comprising: The control device of the air conditioner of claim 6. The control device of the air conditioner of claim 6.
8. A storage medium, characterized by The storage medium includes a stored program, wherein the program, when executed, controls a device in which the storage medium is located to perform the control method of the air conditioner of any one of claims 1 to 5.
9. A computer program product comprising a computer program, characterized in that, The computer program, when executed by a processor, implements the steps of the method of any one of claims 1 to 5.
Citation Information
Patent Citations
Wall-mounted air conditioner indoor unit and control method thereof
CN107166532A
Air conditioner control method and device, air conditioner, storage medium and program product
CN118960185A