Air conditioning unit

By using a perforated air duct and a turbulence-inducing device with turbulence blades in the air conditioning unit, the problem of concentrated airflow at the air outlet is solved, achieving uniform airflow distribution and temperature uniformity, improving the comfort of air conditioning use and the cooling/heating effect, while reducing energy consumption.

CN223814722UActive Publication Date: 2026-01-20HISENSE (SHANDONG) AIR CONDITIONING CO LTD
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Patent Information

Application Number
CN202423135867.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-18
Publication Date
2026-01-20
Estimated Expiration
2034-12-18

AI Technical Summary

Technical Problem

Concentrated airflow at the air conditioner vents can cause discomfort to users and uneven indoor temperatures, affecting cooling or heating performance.

Method used

The system employs a perforated duct and a turbulence device with turbulence blades. The duct is driven to rotate by a duct drive component, which disturbs and disperses the airflow within the duct, allowing the airflow to flow out of the outlet in a dispersed and uniform manner.

Benefits of technology

Improve the comfort of air conditioning use, ensure even airflow distribution indoors, enhance cooling or heating effects, and reduce energy consumption.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The air conditioning unit comprises an air conditioner indoor unit, the air conditioner indoor unit comprises a machine shell and a turbulent flow device, an air channel is formed in the machine shell, and an air outlet communicating with the air channel is formed in the machine shell; the turbulent flow device is arranged on the machine shell and comprises an air duct, an air duct driving part and turbulent flow blades, the air duct is arranged in the air duct, the extending direction of the axis of the air duct is different from that of the air duct, and the peripheral wall of the air duct is of a hollow structure so as to communicate the air duct with an inner cavity of the air duct; the air duct driving part is arranged on the machine shell and used for driving the air duct to rotate around the axis. The turbulent flow blades are arranged on the peripheral wall and used for scattering airflow in the air duct when rotating along with the air duct. The air flow in the air duct can be disturbed and scattered, so that the air flow can be dispersed and uniformly flows out of the air outlet.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of air conditioners, and particularly relates to an air conditioner unit. BACKGROUND

[0002] As an important device in life and industry, air conditioners are widely used in families, offices, commercial places and industrial environments. In the related art, a deflector is usually arranged at an air outlet of an air conditioner to adjust the airflow direction through the deflector to realize local airflow control.

[0003] However, there is a problem that although the deflector can adjust the airflow direction, the airflow blown out of the air outlet still has the phenomenon of airflow concentration. On the one hand, the airflow is concentrated to blow to a user, which affects the comfort of using the air conditioner. On the other hand, the airflow is concentrated to blow to a certain area in the room, so that the airflow is not evenly circulated in the room, thereby causing the indoor temperature to be uneven, and affecting the cooling or heating effect of the air conditioner. CONTENT OF THE UTILITY MODEL

[0004] In view of the above problems in the related art, the present application provides an air conditioner unit to solve the problem of airflow concentration of the airflow blown out of the air outlet of the air conditioner in the related art.

[0005] To solve the above technical problems, in a first aspect, the present application provides an air conditioner unit, which comprises:

[0006] An air conditioner indoor unit, which is arranged on a wall or a ceiling, and comprises:

[0007] A casing, which is internally provided with an air duct, and is externally provided with an air outlet in communication with the air duct;

[0008] A flow disturbing device, which is arranged in the casing, and comprises:

[0009] An air duct, which is arranged in the air duct, and has an axis extending in a direction different from that of the air duct, and an outer peripheral wall in a hollow structure to communicate the air duct and an inner cavity of the air duct;

[0010] An air duct driving member, which is arranged in the casing, and is configured to drive the air duct to rotate around the axis;

[0011] A flow disturbing vane, which is arranged on the outer peripheral wall, and is configured to disperse the airflow in the air duct when the air duct rotates.

[0012] Thus, firstly, since the extending direction of the axis of the air duct is different from the extending direction of the air duct, and the airflow in the air duct generally flows along the extending direction of the air duct, and since the outer peripheral wall of the air duct is in a hollow structure to communicate the air duct and the inner cavity of the air duct, in the process of driving the air duct to rotate by the air duct driving member, the rotating air duct can disturb the flow of the airflow entering the air duct through the hollow structure, so that the airflow can flow out of the air duct through the hollow structure at different positions of the outer peripheral wall of the air duct in different directions, thereby disturbing and dispersing the airflow, which is beneficial to disperse and uniformly flow the airflow out of the air outlet.

[0013] Secondly, since the outer peripheral wall of the air duct is provided with the spoiler blade, and since the spoiler blade is used to disperse the airflow in the air duct when the air duct rotates, in the process of driving the air duct to rotate by the air duct driving member, the spoiler blade can disturb and disperse the airflow outside the air duct, thereby being beneficial to disperse and uniformly flow the airflow outside the air duct out of the air outlet.

[0014] In summary, by the spoiler blade and the air duct with a hollow structure, the airflow in the air duct can be disturbed and dispersed, which is beneficial to disperse and uniformly flow the airflow out of the air outlet. In this way, on the one hand, it is beneficial to avoid the airflow from being concentrated to blow to the user, thereby being beneficial to improve the comfort of using the air conditioner; on the other hand, it is also beneficial to avoid the airflow from being concentrated to blow to a certain area in the room, which is beneficial to uniformly flow and distribute the airflow in the room, thereby being beneficial to uniformly the temperature in the room, which is beneficial to enhance the cooling or heating effect of the air conditioner, and at the same time, with the enhancement of the cooling or heating effect of the air conditioner, it is also beneficial to reduce the energy consumption of the air conditioner.

[0015] Secondly, the application also provides an air conditioner unit, which comprises:

[0016] an air conditioner indoor unit, which is arranged on a wall or a ceiling, and comprises:

[0017] a shell, which is provided with an air duct, and is provided with an air outlet communicating with the air duct;

[0018] a spoiler device, which is arranged in the shell, and comprises:

[0019] an air duct, which is arranged in the air duct, and the extending direction of the axis of the air duct is different from the extending direction of the air duct, and the outer peripheral wall of the air duct is in a hollow structure to communicate the air duct and the inner cavity of the air duct;

[0020] an air duct driving member, which is arranged in the shell, and is used to drive the air duct to rotate around the axis;

[0021] The deflector is disposed on the outer peripheral wall. During the rotation of the air duct, the surface of the deflector intersects with the extension direction of the air duct.

[0022] With this setup, firstly, since the axial extension direction of the air duct installed in the air duct is different from the extension direction of the air duct, and the airflow in the air duct usually flows along the extension direction of the air duct, and secondly, since the outer peripheral wall of the air duct has a hollow structure to connect the air duct and the inner cavity of the air duct, the rotating air duct can disrupt the flow of airflow entering the air duct through the hollow structure during the rotation of the air duct driven by the air duct drive component. This allows the airflow to flow out of the air duct through the hollow structure at different positions on the outer peripheral wall of the air duct in different directions. This can disturb and disperse the airflow, which is conducive to the airflow being dispersed and evenly flowing out through the air outlet.

[0023] Secondly, since the outer wall of the duct is equipped with turbulence vanes, and since the surface of the turbulence vanes intersects with the extension direction of the duct during the rotation of the duct, when the surface of the turbulence vanes intersects with the extension direction of the duct, the turbulence vanes will interfere with the airflow flowing along the extension direction of the duct outside the duct during the rotation of the duct driven by the duct drive component. In this way, the turbulence vanes rotating with the duct can disturb and disperse the airflow outside the duct, which is conducive to the airflow outside the duct being dispersed and evenly flowing out through the air outlet.

[0024] In summary, this application, through its baffles and perforated air duct, can disrupt and disperse the airflow within the duct, facilitating a more even and dispersed flow of air through the outlet. This helps prevent concentrated airflow directed at the user, thus improving the comfort of air conditioning use. Furthermore, it prevents airflow from concentrating on a specific area of ​​the room, promoting even airflow and distribution, which in turn helps to even out the room temperature. This enhances the cooling or heating performance of the air conditioner, and consequently, reduces energy consumption.

[0025] Optionally, multiple turbulence vanes are provided, and the multiple turbulence vanes are arranged at intervals along the circumference of the wind tunnel on the outer peripheral wall.

[0026] This configuration allows multiple deflector blades to cover a larger area around the duct in the circumference of the duct. As the duct rotates, these blades can take turns breaking up and disturbing the airflow in different areas, which in turn helps to further disturb and break up the airflow within the duct, thus enhancing the turbulence effect.

[0027] Optionally, the outer peripheral wall includes:

[0028] The surrounding wall itself, and,

[0029] A plurality of air flow holes are arranged on the peripheral wall body to connect the air duct and the inner cavity of the air cylinder.

[0030] In this way, the plurality of air flow holes arranged on the peripheral wall body connect the air duct and the inner cavity of the air cylinder, so that the outer peripheral wall of the air cylinder has a hollow structure. The air flow holes not only facilitate the formation of the hollow structure, but also help to maintain the structural strength of the air cylinder, ensuring that the air cylinder can work stably under the long-term rotation and air flow.

[0031] Optionally, the flow disturbing device further comprises:

[0032] A wind blocking blade is arranged on the air cylinder and protrudes from the outer peripheral wall;

[0033] The air duct has oppositely arranged upper and lower inner walls. The wind blocking blade passes through a first station and a second station during rotation of the air cylinder. The wind blocking blade at the first station abuts against the upper inner wall, so that the air flow in the air duct flows out of the air outlet through the space between the wind blocking blade and the lower inner wall. The wind blocking blade at the second station abuts against the lower inner wall, so that the air flow in the air duct flows out of the air outlet through the space between the wind blocking blade and the upper inner wall.

[0034] In this way, when the wind blocking blade rotates to the first station and abuts against the upper inner wall, the air flow in the air duct can only flow out of the air outlet through the space between the wind blocking blade and the lower inner wall under the blocking action of the wind blocking blade, so that downward air supply can be realized. When the wind blocking blade rotates to the second station and abuts against the lower inner wall, the air flow in the air duct can only flow out of the air outlet through the space between the wind blocking blade and the upper inner wall under the blocking action of the wind blocking blade, so that upward air supply can be realized.

[0035] The wind blocking blade realizes upward and downward air supply, which on the one hand, in the case that the flow disturbing device does not scatter and disturb the air flow, helps to avoid direct blowing of the air flow to the user, so as to reduce the discomfort caused by direct blowing and improve the comfort of air conditioning use. On the other hand, since different users have different preferences for the air supply direction of the air conditioner, the function of the wind blocking blade realizing upward and downward air supply can meet the individualized needs of different users and improve the satisfaction of users to the air conditioner.

[0036] In addition, when it is necessary to scatter and disturb the air flow, the wind blocking blade rotating with the air cylinder can also scatter and disturb the air flow to a certain extent, which helps to further disturb and scatter the air flow in the air duct and enhance the flow disturbing effect.

[0037] Optionally, the wind baffle is arranged radially outward of the outer peripheral wall of the air duct, and one end of the radial direction of the wind baffle is arranged at the axis of the air duct.

[0038] In this way, on the one hand, the space between the wind baffle and the upper bottom wall or the lower bottom wall can be reduced, thereby facilitating the reduction of the range of upward or downward air supply and the more accurate control of the upward or downward air supply.

[0039] On the other hand, arranging the above-mentioned one end of the radial direction of the wind baffle at the axis of the air duct makes full use of the space inside the air duct, so that not only the range of the wind baffle blocking the airflow can be increased, but also in the case of a certain size of air duct space, the situation of reducing the radial size of the air duct in order to increase the blocking range of the wind baffle can be avoided, thereby the radial size of the air duct can meet the demand.

[0040] Optionally, the spoiler is arranged on the side of the air duct away from the wind baffle.

[0041] In this way, it is beneficial to balance the force during the rotation of the air duct, so that the air duct does not eccentrically rotate or other abnormal situations due to the force concentrated on one side, which helps to maintain the stable rotation of the air duct, thereby ensuring that the entire spoiler device can continuously and effectively play its role in adjusting the airflow, while also reducing the vibration and noise that may be caused by unreasonable force, improving the comfort of users when using the air conditioner.

[0042] Optionally, the air conditioning unit has a cooling mode and a heating mode, and the wind baffle is arranged at the first station in the heating mode and at the second station in the cooling mode.

[0043] In this way, in the heating mode, the wind baffle located at the first station can realize the downward air supply of hot air, and since the density of hot air is less than that of normal temperature air, the hot air can slowly rise from bottom to top to gradually warm the entire indoor environment. This method conforms to the physical propagation law of hot air and can more efficiently utilize the heat of hot air, which not only improves the heating efficiency of the indoor environment, but also makes the heat distribution in the indoor environment more uniform, so that the user can feel a more comfortable and warm environment in the indoor environment, thereby enhancing the heating effect of the air conditioner.

[0044] In the refrigeration mode, the wind baffle located at the second working position can realize the upward blowing of the cold air, and since the cold air is generally heavy and will sink, after the cold air is blown out from a high position, it will naturally sink downward and uniformly spread in the indoor space. This helps to make the distribution of the cold air in the room more comprehensive and uniform, avoiding the phenomenon of local overcooling and other areas still being hot due to the concentration of cold air in a local area, so that the entire indoor space can quickly and uniformly reach a cool state, enhancing the refrigeration effect of the air conditioner.

[0045] Optionally, the air conditioning unit further comprises:

[0046] a control system, the control system comprising:

[0047] a first detection member for detecting whether the wind baffle is located at the first working position;

[0048] a second detection member for detecting whether the wind baffle is located at the second working position;

[0049] a controller for sending instructions to the air duct driving member according to the detection information of both the first detection member and the second detection member, so that the air duct driving member drives the wind baffle to be located at the first working position or the second working position by driving the air duct to rotate.

[0050] In this way, on the one hand, the first detection member and the second detection member respectively detect whether the wind baffle is located at the first working position and the second working position, and then the controller sends instructions to the air duct driving member according to the detection information to adjust the position of the wind baffle, which not only accurately ensures that the wind baffle is in the first working position or the second working position, thereby accurately controlling the downward or upward blowing, ensuring the reliability of the upward or downward blowing, but also improves the degree of automation, without manually intervening in the specific position of the wind baffle, making the operation more simple and intelligent, reducing the errors or forgetting to adjust that may occur due to manual operation, and ensuring that the air conditioner can always operate in the correct blowing mode.

[0051] On the other hand, when the wind baffle cannot accurately reach the first working position or the second working position for a long time, the first detection member and the second detection member can also provide important monitoring information, so that maintenance personnel can carry out targeted maintenance, reducing the time and difficulty of troubleshooting and improving the maintenance efficiency.

[0052] Optionally, the air conditioning unit further comprises:

[0053] a fan arranged in the cabinet, the fan being configured to input the airflow into the air duct;

[0054] a fan driving member arranged in the casing, the fan driving member being configured to drive the fan to rotate;

[0055] a control system comprising a temperature detecting member configured to detect an indoor temperature and a controller configured to send an instruction to the drum driving member according to the detection information of the temperature detecting member and / or the rotating speed of the fan driving member, so as to adjust the rotating speed and / or rotating angle of the drum.

[0056] In this way, on the one hand, when the indoor temperature detected by the temperature detecting member is far away from the set temperature, the controller sends an instruction to the drum driving member to adjust the rotating speed and / or rotating angle of the drum. Since the rotating speed and rotating angle of the drum affect the disturbance and dispersion effect of the airflow, by adjusting the rotating speed and / or rotating angle of the drum, the disturbance and dispersion effect of the airflow can be adjusted, and thus the uniformity of the distribution of the airflow in the room can be adjusted, which is beneficial to achieve a better cooling or heating effect.

[0057] On the other hand, since the rotating speed of the fan driving member determines the rotating speed of the fan, and the rotating speed of the fan affects the flow rate of the airflow in the air duct, the controller sends an instruction to the drum driving member according to the rotating speed of the fan driving member, so as to realize the cooperative work of the fan and the drum. For example, when the rotating speed of the fan is fast, and the flow rate of the airflow in the air duct is fast, in order to avoid the problem of airflow concentration caused by a large amount of airflow passing through quickly, the controller can instruct the drum driving member to appropriately increase the rotating speed and / or rotating angle of the drum, so as to enhance the disturbance effect, and make a large amount of airflow still be uniformly dispersed, so as to ensure the disturbance and dispersion effect of the airflow.

[0058] Optionally, the control system further comprises:

[0059] a manual input assembly electrically or signal connected with the controller, the manual input assembly being configured to manually input control information to the controller, and the controller being further configured to send an instruction to the drum driving member according to the control information, so as to adjust the rotating speed and / or rotating angle of the drum.

[0060] The manual input assembly is configured to enable the user to actively input control information to the controller according to the user's own needs, so as to adjust the rotating speed and / or rotating angle of the drum, and to customize different airflow diffusion needs, so as to meet the diversified needs of different users for indoor air circulation in different scenarios. BRIEF DESCRIPTION OF DRAWINGS

[0061] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed to be used in the embodiments will be briefly introduced as follows. Obviously, the drawings in the following description only constitute some embodiments of the present application, and for those skilled in the art, other drawings can be obtained based on these drawings without any creative effort.

[0062] Figure 1 A schematic diagram of an air conditioning unit provided by the embodiments of the present application;

[0063] Figure 2 A side view of a turbulence device provided by the embodiments of the present application;

[0064] Figure 3 A top view of a turbulence device provided by the embodiments of the present application;

[0065] Figure 4 A second top view of a turbulence device provided by the embodiments of the present application;

[0066] Figure 5 A second side view of a turbulence device provided by the embodiments of the present application;

[0067] Figure 6 A schematic diagram of a wind deflector blade in a first station provided by the embodiments of the present application;

[0068] Figure 7 A schematic diagram of a wind deflector blade in a second station provided by the embodiments of the present application;

[0069] Figure 8 A third side view of a turbulence device provided by the embodiments of the present application;

[0070] Figure 9 A fourth side view of a turbulence device provided by the embodiments of the present application;

[0071] Figure 10 A fifth side view of a turbulence device provided by the embodiments of the present application.

[0072] Explanation of reference signs:

[0073] 1 - cabinet; 11 - air outlet;

[0074] 2 - air duct; 21 - upper inner wall; 22 - lower inner wall;

[0075] 3 - turbulence device; 31 - air cylinder; 311 - air flow hole; 32 - turbulence blade; 33 - wind deflector blade;

[0076] 4 - first detection member;

[0077] 5 - second detection member;

[0078] 6 - fan;

[0079] 100 - indoor unit of air conditioner. DETAILED DESCRIPTION

[0080] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative work belong to the scope of protection of the present application.

[0081] In the present application, the terms "upper", "lower", "left", "right", "front", "back", "top", "bottom", "inner", "outer", "vertical", "horizontal", "lateral", "longitudinal" and the like indicate the orientation or positional relationship shown in the drawings. These terms are mainly used to better describe the present application and its embodiments, and are not intended to limit the indicated devices, elements or components to have a specific orientation, or to be constructed and operated in a specific orientation.

[0082] In addition, in addition to being used to indicate the orientation or positional relationship, the above-mentioned part of the terms can also be used to indicate other meanings, for example, the term "upper" can also be used to indicate a certain dependent relationship or connection relationship in some cases. For those of ordinary skill in the art, the specific meaning of these terms in the present application can be understood according to the specific situation.

[0083] In addition, the terms "mount", "set", "provided with", "connected", "connected" should be broadly understood. For example, it can be fixedly connected, detachably connected, or integrally constructed; it can be mechanically connected, or electrically connected; it can be directly connected, or indirectly connected through an intermediate medium, or internal communication between two devices, elements or components. For those of ordinary skill in the art, the specific meaning of the above terms in the present application can be understood according to the specific situation.

[0084] In addition, the terms "first", "second" and the like are mainly used to distinguish different devices, elements or components (the specific types and structures may be the same or different), and are not intended to indicate or imply the relative importance and quantity of the indicated devices, elements or components. Unless otherwise stated, the meaning of "multiple" is two or more.

[0085] As described in the background of the present application, air conditioners are important equipment in life and industry, and are widely used in homes, offices, commercial places and industrial environments. In the related art, the air outlet of the air conditioner is usually provided with a guide vane to adjust the airflow direction through the guide vane to achieve local airflow control.

[0086] However, there is a problem that although the air deflector can adjust the air flow direction, the air flow blown out of the air outlet still has the phenomenon of air flow concentration. On the one hand, it will cause the air flow to be concentrated and blown to the user, affecting the comfort of using the air conditioner; on the other hand, it will also cause the air flow to be concentrated and blown to a certain area in the room, so that the air flow circulates unevenly in the room, thereby causing uneven indoor temperature and affecting the cooling or heating effect of the air conditioner.

[0087] In view of the above problems, the present application provides an air conditioning unit to solve the problem of air flow concentration of the air outlet of the air conditioner in the related art.

[0088] The technical solutions of the present application will be further described below in combination with specific embodiments and drawings:

[0089] In some embodiments, as shown in Figure 1 The air conditioning unit includes an air conditioner indoor unit 100, which is arranged on a wall or a ceiling. The air conditioner indoor unit 100 is an important part of the air conditioning unit, mainly responsible for realizing the air conditioning function in the room. Arranging the air conditioner indoor unit 100 on the wall or the ceiling not only saves the floor space, but also realizes more uniform air supply coverage.

[0090] In some embodiments, as shown in Figure 1 The air conditioner indoor unit 100 includes a cabinet 1, a wind channel 2 is arranged in the cabinet 1, and an air outlet 11 is arranged on the cabinet 1 and communicates with the wind channel 2.

[0091] In this way, the key air flow channel of the air conditioner indoor unit 100 can be orderly integrated. The wind channel 2 can guide the air flow to flow in the air conditioner indoor unit 100 according to the predetermined route, avoid the air flow to flow disorderly in the cabinet 1, thereby ensuring the stability and smoothness of the air flow during the operation of the air conditioner, and laying a foundation for realizing good cooling, heating and air conditioning effect subsequently.

[0092] The air outlet 11 is a key part of the air conditioner indoor unit 100 where the air flow interacts with the indoor environment. The air flow treated in the wind channel 2 is conveniently delivered to the indoor space through the air outlet 11 to complete the adjustment task of indoor temperature, humidity and air circulation.

[0093] In some embodiments, as shown in Figure 1As shown, the air conditioner indoor unit 100 further comprises a turbulence device 3, which is arranged in the casing 1. The turbulence device 3 can disperse and disturb the originally relatively regular and concentrated airflow in the air duct 2 through its structure and movement, so that the airflow becomes more dispersed. After the airflow is blown out of the air outlet 11, it can be more evenly distributed in the indoor space. Whether it is cooling or heating, the temperature regulation in each corner of the indoor space can be more synchronized and efficient, and the air conditioning effect of the entire air conditioner indoor unit 100 is improved.

[0094] In some embodiments, as shown in Figure 2 The turbulence device 3 comprises a wind cylinder 31 arranged in the air duct 2. The extension direction of the axis of the wind cylinder 31 (e.g. the direction perpendicular to the paper in Figure 1 The extension direction of the air duct 2 (e.g. the A direction in Figure 1 The outer peripheral wall of the wind cylinder 31 is in a hollow structure to communicate the air duct 2 and the inner cavity of the wind cylinder 31.

[0095] Since the extension direction of the axis of the wind cylinder 31 arranged in the air duct 2 is different from the extension direction of the air duct 2, and the airflow in the air duct 2 generally flows along the extension direction of the air duct 2, during the rotation of the wind cylinder 31, the rotating wind cylinder 31 can disturb the flow of the airflow entering the wind cylinder 31 through the hollow structure. The airflow can flow out of the wind cylinder 31 through the hollow structure at different positions of the outer peripheral wall of the wind cylinder 31 in different directions, so as to disturb and disperse the airflow, which is beneficial to the dispersion and uniformity of the airflow flowing out of the air outlet 11.

[0096] In addition, the rotating wind cylinder 31 can also disturb and disperse part of the airflow outside the wind cylinder 31, which is beneficial to the dispersion and uniformity of the airflow flowing out of the air outlet 11.

[0097] In some embodiments, the turbulence device 3 further comprises a wind cylinder driving member (not shown in the figure), which is arranged in the casing 1 and is used to drive the wind cylinder 31 to rotate around the axis of the wind cylinder 31.

[0098] In this way, under different operating conditions, the speed, direction and other parameters of the wind cylinder driving member driving the wind cylinder 31 to rotate can be flexibly adjusted, so as to meet the diversified needs of air conditioning under different conditions and improve the applicability of the air conditioner indoor unit 100.

[0099] In some embodiments, the wind cylinder driving member can be an electric cylinder, a pneumatic cylinder or a hydraulic cylinder. The type of the wind cylinder driving member can be flexibly set, and the specific setting can be made according to actual needs, which is not limited in the embodiments of the present application.

[0100] In some embodiments, as shown in Figure 2As shown, the flow disturbing device 3 further comprises a flow disturbing vane 32, which is arranged on the outer circumferential wall of the wind drum 31 and is used to disturb the airflow in the air duct 2 when the wind drum 31 rotates. In this way, during the rotation of the wind drum 31, the flow disturbing vane 32 can disturb and disperse the airflow outside the wind drum 31, thereby facilitating the dispersion and uniform flow of the airflow outside the wind drum 31 out of the air outlet 11.

[0101] In some embodiments, during the rotation of the wind drum 31, the flow disturbing vane 32 has a state in which the plane in which the vane surface of the flow disturbing vane 32 lies intersects the extension direction of the air duct 2 (e.g. the A direction in Figure 1 ).

[0102] In this way, during the rotation of the wind drum 31, when the plane in which the vane surface of the flow disturbing vane 32 lies intersects the extension direction of the air duct 2, the flow disturbing vane 32 will interfere with the airflow flowing along the extension direction of the air duct 2 outside the wind drum 31. In this way, the flow disturbing vane 32 rotating with the wind drum 31 can disturb and disperse the airflow outside the wind drum 31, thereby facilitating the dispersion and uniform flow of the airflow outside the wind drum 31 out of the air outlet 11.

[0103] In some embodiments, as shown in Figure 1 , the air conditioning unit comprises an air conditioner indoor unit 100, which is arranged on a wall or a ceiling. The air conditioner indoor unit 100 comprises a casing 1 and a flow disturbing device 3, wherein the casing 1 is provided with an air duct 2, and the casing 1 is provided with an air outlet 11 communicating with the air duct 2.

[0104] The flow disturbing device 3 is arranged in the casing 1, and as shown in Figure 2 and Figure 3 , the flow disturbing device 3 comprises a wind drum 31, a wind drum driving member, and a flow disturbing vane 32. The wind drum 31 is arranged in the air duct 2, the extension direction of the axis of the wind drum 31 (e.g. the direction perpendicular to the paper in Figure 1 ) is different from the extension direction of the air duct 2 (e.g. the A direction in Figure 1 ), and the outer circumferential wall of the wind drum 31 has a hollow structure to communicate the air duct 2 and the inner cavity of the wind drum 31.

[0105] The wind drum driving member is arranged in the casing 1 and is used to drive the wind drum 31 to rotate about the axis of the wind drum 31. The flow disturbing vane 32 is arranged on the outer circumferential wall of the wind drum 31 and is used to disturb the airflow in the air duct 2 when the wind drum 31 rotates.

[0106] Thus, firstly, since the extending direction of the axis of the wind cylinder 31 arranged in the air duct 2 is different from the extending direction of the air duct 2, and the air flow in the air duct 2 generally flows along the extending direction of the air duct 2, and since the outer peripheral wall of the wind cylinder 31 is in a hollow structure to communicate the air duct 2 and the inner cavity of the wind cylinder 31, in the process of driving the wind cylinder 31 to rotate by the wind cylinder driving member, the rotating wind cylinder 31 can disturb the flow of the air flow entering the wind cylinder 31 through the hollow structure, so that the air flow can flow out of the wind cylinder 31 through the hollow structure at different positions of the outer peripheral wall of the wind cylinder 31 in different directions, thereby disturbing and dispersing the air flow, which is beneficial to disperse and uniformly flow the air flow out of the air outlet 11.

[0107] Secondly, since the outer peripheral wall of the wind cylinder 31 is provided with the spoiler blade 32, and since the spoiler blade 32 is used to disperse the air flow in the air duct 2 when the wind cylinder 31 rotates, in the process of driving the wind cylinder 31 to rotate by the wind cylinder driving member, the spoiler blade 32 can disturb and disperse the air flow outside the wind cylinder 31, thereby facilitating the air flow outside the wind cylinder 31 to disperse and uniformly flow out of the air outlet 11.

[0108] In summary, the air flow in the air duct 2 can be disturbed and dispersed by the spoiler blade 32 and the wind cylinder 31 with a hollow structure, which is beneficial to disperse and uniformly flow the air flow out of the air outlet 11. In this way, on the one hand, it is beneficial to avoid the air flow from being concentrated to blow on the user, thereby improving the comfort of using the air conditioner; on the other hand, it is also beneficial to avoid the air flow from being concentrated to blow on a certain area in the room, which is beneficial to uniformly flow and distribute the air flow in the room, thereby uniformly distributing the temperature in the room, which is beneficial to enhance the cooling or heating effect of the air conditioner, and at the same time, with the enhancement of the cooling or heating effect of the air conditioner, it is also beneficial to reduce the energy consumption of the air conditioner.

[0109] In some embodiments, as shown in Figure 1 , the air conditioner unit comprises an air conditioner indoor unit 100, which is arranged on a wall or a ceiling. The air conditioner indoor unit 100 comprises a casing 1 and a flow disturbing device 3, wherein the casing 1 is provided with an air duct 2, and the casing 1 is provided with an air outlet 11 communicating with the air duct 2.

[0110] The flow disturbing device 3 is arranged in the casing 1, and as shown in Figure 2 and Figure 3 , the flow disturbing device 3 comprises a wind cylinder 31, a wind cylinder driving member and a spoiler blade 32. The wind cylinder 31 is arranged in the air duct 2, the extending direction of the axis of the wind cylinder 31 (e.g. the direction perpendicular to the paper in Figure 1 ) is different from the extending direction of the air duct 2 (e.g. the A direction in Figure 1 ), and the outer peripheral wall of the wind cylinder 31 is in a hollow structure to communicate the air duct 2 and the inner cavity of the wind cylinder 31.

[0111] The wind tube driving member is arranged in the casing 1 and is used to drive the wind tube 31 to rotate around the axis of the wind tube 31. The spoiler blades 32 are arranged on the outer peripheral wall of the wind tube 31 and, during the rotation of the wind tube 31, the planes on which the blade surfaces of the spoiler blades 32 lie intersect the extension direction of the air duct 2 (for example, the A direction in FIG. 1). Figure 1

[0112] In this way, first, because the axis of the wind tube 31 arranged in the air duct 2 extends in a direction different from the extension direction of the air duct 2, and the airflow in the air duct 2 generally flows along the extension direction of the air duct 2, and because the outer peripheral wall of the wind tube 31 has a hollow structure to connect the air duct 2 and the inner cavity of the wind tube 31, during the rotation of the wind tube 31 driven by the wind tube driving member, the rotating wind tube 31 can disturb the flow of the airflow entering the wind tube 31 through the hollow structure, so that the airflow can flow out of the wind tube 31 through the hollow structure at different positions of the outer peripheral wall of the wind tube 31 in different directions, thereby disturbing and dispersing the airflow, which is conducive to dispersing and uniformly flowing the airflow out of the air outlet 11.

[0113] Second, because the outer peripheral wall of the wind tube 31 is provided with the spoiler blades 32, and because, during the rotation of the wind tube 31, the planes on which the blade surfaces of the spoiler blades 32 lie intersect the extension direction of the air duct 2, during the rotation of the wind tube 31 driven by the wind tube driving member, when the planes on which the blade surfaces of the spoiler blades 32 lie intersect the extension direction of the air duct 2, the spoiler blades 32 will interfere with the airflow flowing along the extension direction of the air duct 2 outside the wind tube 31, so that the spoiler blades 32 rotating with the wind tube 31 can disturb and disperse the airflow outside the wind tube 31, which is conducive to dispersing and uniformly flowing the airflow outside the wind tube 31 out of the air outlet 11.

[0114] In summary, the spoiler blades 32 and the wind tube 31 having a hollow structure can disturb and disperse the airflow in the air duct 2, which is conducive to dispersing and uniformly flowing the airflow out of the air outlet 11. In this way, on the one hand, it is conducive to avoiding the airflow from being concentrated to blow on the user, thereby improving the comfort of using the air conditioner; on the other hand, it is also conducive to avoiding the airflow from being concentrated to blow on a certain area in the room, which is conducive to uniformly flowing and distributing the airflow in the room, thereby uniformly distributing the temperature in the room, which is conducive to enhancing the cooling or heating effect of the air conditioner, and at the same time, with the enhancement of the cooling or heating effect of the air conditioner, it is also conducive to reducing the energy consumption of the air conditioner.

[0115] In some embodiments, as shown in FIG. 1, the air conditioner comprises a plurality of wind tubes 31, and the wind tubes 31 are arranged in the air duct 2 in a staggered manner. Figure 2

[0116] ​​In this way, the plurality of spoiler blades 32 can cover a larger range in the circumferential direction of the wind cylinder 31, so that the plurality of spoiler blades 32 can in turn disperse and disturb the airflow in different regions during the rotation of the wind cylinder 31, thereby facilitating further disturbance and dispersion of the airflow in the air duct 2 and enhancing the disturbance effect.

[0117] In some embodiments, as shown in Figure 4 , the plurality of spoiler blades 32 are arranged along the extension direction of the axis of the wind cylinder 31 on the outer peripheral wall of the wind cylinder 31.

[0118] In this way, the spoiler blades 32 are distributed within a certain range of the axial length of the wind cylinder 31. In this way, when the wind cylinder 31 rotates, the airflow in the air duct 2 has a high probability of contacting the spoiler blades 32 and being disturbed by them, regardless of the axial position of the airflow in the wind cylinder 31, thereby facilitating the avoidance of the occurrence of uneven air outlet caused by the airflow in some regions not being effectively processed.

[0119] In some embodiments, the spoiler blades 32 can be provided with two, three or more. The number of spoiler blades 32 is flexible and can be set according to actual needs, which is not limited in the embodiments of the present application.

[0120] In some embodiments, as shown in Figure 5 , one spoiler blade 32 is provided. In this way, one spoiler blade 32 can not only achieve the effect of disturbing and dispersing the airflow, but also reduce the number of spoiler blades 32, thereby facilitating the simplification of the structure of the disturbance device 3 and facilitating the processing of the disturbance device 3.

[0121] In some embodiments, as shown in Figure 2 and Figure 3 , the outer peripheral wall of the wind cylinder 31 comprises a peripheral wall body and a plurality of airflow holes 311, and the plurality of airflow holes 311 are arranged in an array on the peripheral wall body to communicate the air duct 2 and the inner cavity of the wind cylinder 31.

[0122] In this way, since the air duct 2 and the inner cavity of the wind cylinder 31 are communicated by the plurality of airflow holes 311, the plurality of airflow holes 311 arranged in an array on the peripheral wall body make the outer peripheral wall of the wind cylinder 31 have a hollow structure. Through the airflow holes 311, not only the formation of the hollow structure is facilitated, but also the wind cylinder 31 can maintain high structural strength to ensure stable operation of the wind cylinder 31 under the long-term rotation and airflow effect.

[0123] In some embodiments, the shape of the airflow hole 311 can be circular, elliptical or polygonal, and the shape of the airflow hole 311 is flexible and can be set according to actual needs, which is not limited in the embodiments of the present application.

[0124] In some embodiments, the outer peripheral wall of the wind cylinder 31 can comprise a hollowed frame or a mesh structure, which can make the outer peripheral wall a hollow structure. The specific structural form of making the outer peripheral wall a hollow structure is flexible, and can be set according to actual needs.

[0125] In some embodiments, as shown in Figure 2 and Figure 3 , the turbulence device 3 further comprises a wind baffle 33, which is arranged on the wind cylinder 31 and protrudes from the outer peripheral wall of the wind cylinder 31.

[0126] As shown in Figure 6 and Figure 7 , the air duct 2 has oppositely arranged upper and lower inner walls 21 and 22; the wind baffle 33 passes through a first station and a second station during rotation of the wind cylinder 31, as shown in Figure 6 , the wind baffle 33 at the first station abuts against the upper inner wall 21, for making the airflow in the air duct 2 flow out of the air outlet 11 through the space between the wind baffle 33 and the lower inner wall 22; as shown in Figure 7 , the wind baffle 33 at the second station abuts against the lower inner wall 22, for making the airflow in the air duct 2 flow out of the air outlet 11 through the space between the wind baffle 33 and the upper inner wall 21.

[0127] In this way, when the wind baffle 33 rotates with the wind cylinder 31 to the first station and abuts against the upper inner wall 21, under the blocking action of the wind baffle 33, as shown in Figure 6 , most of the airflow will flow out of the air outlet 11 through the space between the wind cylinder 31 and the lower inner wall 22, a small part of the airflow will enter the wind cylinder 31 through the hollow structure, and a part of the airflow entering the wind cylinder 31 will flow out of the wind cylinder 31 through the hollow structure and then flow out of the air outlet 11, and another part of the airflow will flow along the turbulence vane 32 after flowing out of the wind cylinder 31 through the hollow structure and then flow out of the air outlet 11. In this way, the airflow in the air duct 2 flows out of the air outlet 11 through the space between the wind baffle 33 and the lower inner wall 22, and downward air supply can be realized.

[0128] When the wind baffle 33 rotates with the wind cylinder 31 to the second station and abuts against the lower inner wall 22, under the blocking action of the wind baffle 33, as shown in Figure 7 , most of the airflow will flow out of the air outlet 11 through the space between the wind cylinder 31 and the upper inner wall 21, a small part of the airflow will enter the wind cylinder 31 through the hollow structure, and a part of the airflow entering the wind cylinder 31 will flow out of the wind cylinder 31 through the hollow structure and then flow out of the air outlet 11, and another part of the airflow will flow along the turbulence vane 32 after flowing out of the wind cylinder 31 through the hollow structure and then flow out of the air outlet 11. In this way, the airflow in the air duct 2 flows out of the air outlet 11 through the space between the wind baffle 33 and the upper inner wall 21, and upward air supply can be realized.

[0129] The air supply upwards and downwards is realized by the wind baffle 33. On the one hand, in the case that the air flow is not dispersed and disturbed by the flow disturbing device 3, it is beneficial to avoid the air flow directly blowing to the user, so as to reduce the discomfort caused by direct blowing, and improve the comfort of air conditioning use. On the other hand, different users have different preferences for the air supply direction of the air conditioner, so the function of air supply upwards and downwards realized by the wind baffle 33 can meet the individual needs of different users and improve the user's satisfaction with the air conditioner.

[0130] In addition, when it is necessary to disperse and disturb the air flow, the wind baffle 33 rotating with the wind cylinder 31 can also disperse and disturb the air flow to a certain extent, which is beneficial to further disturb and disperse the air flow in the air duct 2 and improve the flow disturbing effect.

[0131] In some embodiments, as shown in Figure 2 The wind baffle 33 protrudes from the outer peripheral wall of the wind cylinder 31 in the radial direction of the wind cylinder 31, and the above-mentioned radial end of the wind baffle 33 is arranged at the axis of the wind cylinder 31.

[0132] In this way, on the one hand, the space between the wind baffle 33 and the upper bottom wall 21 or the lower bottom wall 22 can be reduced, which is beneficial to reduce the range of air supply upwards or downwards and to more accurately control the air supply upwards or downwards.

[0133] On the other hand, the above-mentioned radial end of the wind baffle 33 is arranged at the axis of the wind cylinder 31, which makes full use of the space inside the wind cylinder 31. In this way, not only can the range of the wind baffle 33 blocking the air flow be increased, but also in the case that the size of the air duct 2 is constant, the situation that the radial size of the wind cylinder 31 is reduced in order to increase the blocking range of the wind baffle 33 can be avoided, and thus the radial size of the wind cylinder 31 can meet the requirements.

[0134] In some embodiments, as shown in Figure 8 The wind baffle 33 is arranged on the outer peripheral wall of the wind cylinder 31, that is, the end of the wind baffle 33 close to the axis of the wind cylinder 31 is arranged on the outer peripheral wall of the wind cylinder 31. In this way, since the wind baffle 33 does not need to penetrate into the wind cylinder 31, the structure of the flow disturbing device 3 can be simplified to some extent, which is beneficial to facilitate the processing of the flow disturbing device 3.

[0135] In some embodiments, a wind guide plate that can swing up and down is arranged at the air outlet 11, and the air supply upwards or downwards is realized by the up and down swinging of the wind guide plate. In this case, as shown in Figure 9 The wind baffle 33 can not be arranged on the wind cylinder 31. In this way, to some extent, the structure of the flow disturbing device 3 can be simplified, which is beneficial to facilitate the processing of the flow disturbing device 3.

[0136] In some embodiments, as shown inFigure 2 As shown, the deflector 32 is disposed on the side of the air duct 31 away from the deflector 33.

[0137] This design helps to balance the force on the air duct 31 during rotation, preventing eccentric rotation or other abnormalities caused by the force being concentrated on one side. This helps to maintain the stable rotation of the air duct 31, thereby ensuring that the entire turbulence device 3 can continuously and effectively perform its function of regulating airflow. At the same time, it also helps to reduce vibration and noise that may be caused by unreasonable force, improving the comfort of users when using air conditioning.

[0138] In some embodiments, such as Figure 10 As shown, in the direction perpendicular to the direction away from the windshield 33 (such as...) Figure 10 In the Y direction (as shown in the image), the spoiler 32 is positioned on one side of the air duct 31. This arrangement ensures that in the direction away from the deflector 33 (e.g., in the Y direction), the spoiler 32 is positioned on one side of the air duct 31. Figure 10 In the X direction, the space occupied by the turbulence device 3 can be reduced, which in turn makes it easier to install the turbulence device 3 in this direction.

[0139] In some embodiments, the air conditioning unit has a cooling mode and a heating mode, such as Figure 6 As shown, the wind deflector 33 is positioned in the first working position during heating mode, as... Figure 7 As shown, the wind deflector 33 is used to be located in the second position in the cooling mode.

[0140] With this configuration, in heating mode, the deflector 33 at the first position can direct hot air downwards. Because hot air is less dense than room temperature air, it rises slowly, gradually warming the entire room from bottom to top. This method conforms to the physical laws of hot air propagation, utilizing the heat of the air more efficiently. This not only improves the heating efficiency of the indoor environment but also makes the heat distribution more even, allowing users to experience a more comfortable and warm environment, thus enhancing the heating effect of the air conditioner.

[0141] In cooling mode, the deflector 33 located in the second position directs cool air upwards. Since cool air is generally heavier and sinks, the cool air blown from a higher position naturally sinks and diffuses evenly throughout the room. This helps to distribute cool air more comprehensively and evenly, avoiding the phenomenon of localized overcooling and other areas remaining warm due to concentrated cool air in certain areas. This allows the entire room to quickly and evenly reach a cool state, enhancing the cooling effect of the air conditioner.

[0142] In some embodiments, the air conditioning unit further includes a control system, such as... Figure 6As shown, the control system comprises a first detection member 4, which is configured to detect whether the baffle blade 33 is located at the first station.

[0143] In this way, the first detection member 4 detects whether the baffle blade 33 is located at the first station, which not only accurately ensures that the baffle blade 33 is at the first station, but also accurately controls the downward air supply, thereby ensuring the reliability of the downward air supply.

[0144] In some embodiments, the first detection member 4 can be a photoelectric sensor, a Hall sensor, or a micro switch, etc. The type of the first detection member 4 is flexible, and in particular, can be set according to actual needs, which is not limited in the embodiments of the present application.

[0145] In some embodiments, as shown, Figure 7 the control system further comprises a second detection member 5, which is configured to detect whether the baffle blade 33 is located at the second station.

[0146] In this way, the second detection member 5 detects whether the baffle blade 33 is located at the second station, which not only accurately ensures that the baffle blade 33 is at the second station, but also accurately controls the downward air supply, thereby ensuring the reliability of the downward air supply.

[0147] In some embodiments, the second detection member 5 can be a photoelectric sensor, a Hall sensor, or a micro switch, etc. The type of the second detection member 5 is flexible, and in particular, can be set according to actual needs, which is not limited in the embodiments of the present application.

[0148] In some embodiments, the control system further comprises a controller, which is configured to send an instruction to the drum driving member according to the detection information of the first detection member 4 and the second detection member 5, so that the drum driving member drives the drum 31 to rotate to drive the baffle blade 33 to be located at the first station or the second station.

[0149] In this way, the controller sends an instruction to the drum driving member according to the detection information to adjust the position of the baffle blade 33, which not only accurately ensures that the baffle blade 33 is at the first station or the second station, but also accurately controls the upward or downward air supply, thereby ensuring the reliability of the upward or downward air supply, and improving the degree of automation, without manually intervening in the specific position of the baffle blade 33, making the operation more convenient and intelligent, reducing errors or forgetting to adjust due to manual operation, and ensuring that the air conditioner can always operate in the correct air supply mode.

[0150] In some embodiments, the air conditioning unit further comprises a control system, as shown in Figure 6 and Figure 7As shown, the control system comprises the first detection member 4, the second detection member 5, and a controller. The first detection member 4 is configured to detect whether the wind deflector 33 is located at the first working position, the second detection member 5 is configured to detect whether the wind deflector 33 is located at the second working position, and the controller is configured to send an instruction to the drum driving member according to the detection information of the first detection member 4 and the second detection member 5, so as to drive the drum 31 to rotate and drive the wind deflector 33 to be located at the first working position or the second working position.

[0151] In this way, on the one hand, the first detection member 4 and the second detection member 5 respectively detect whether the wind deflector 33 is located at the first working position and the second working position, and then the controller sends an instruction to the drum driving member according to the detection information to adjust the position of the wind deflector 33. This not only accurately ensures that the wind deflector 33 is located at the first working position or the second working position, thereby accurately controlling the downward or upward air supply, ensuring the reliability of the upward or downward air supply, but also improves the degree of automation, without manually intervening in the specific position of the wind deflector 33, making the operation more simple and intelligent, reducing the errors or forgetting to adjust that may occur due to manual operation, and ensuring that the air conditioner can always operate in the correct air outlet mode.

[0152] On the other hand, when the wind deflector 33 cannot accurately reach the first working position or the second working position for a long time, the first detection member 4 and the second detection member 5 can also provide important monitoring information, so that maintenance personnel can carry out targeted maintenance, reducing the time and difficulty of troubleshooting and improving the maintenance efficiency.

[0153] In some embodiments, as shown in Figs. Figure 1 , Figure 6 and Figure 7 , the air conditioning unit further comprises a fan 6, which is arranged in the cabinet 1 and is configured to input airflow into the air duct 2.

[0154] In this way, the fan 6 as a power component can continuously input airflow into the air duct 2, which can ensure that there is always airflow supply in the air duct 2, whether in the cooling mode or the heating mode of the air conditioner, and can provide the necessary airflow basis for subsequent air treatment.

[0155] In some embodiments, the air conditioning unit further comprises a fan driving member, which is arranged in the cabinet 1 and is configured to drive the fan 6 to rotate.

[0156] The fan driving member can provide a stable power source for the fan 6 to ensure that the fan 6 can continuously and stably rotate. Stable fan rotation is crucial for maintaining the smooth flow of airflow in the air conditioning unit, which helps to ensure the normal operation of the entire air conditioning unit and reduces the probability of poor cooling or heating effect or other faults caused by unstable fan operation.

[0157] In some embodiments, the air conditioning unit further comprises a control system, the control system comprising a temperature detecting member (not shown) for detecting the indoor temperature and a controller (not shown) for sending instructions to the fan drum driving member according to the detection information of the temperature detecting member and / or the rotating speed of the fan driving member, so as to adjust the rotating speed and / or rotating angle of the fan drum 31.

[0158] In this way, on the one hand, when the indoor temperature detected by the temperature detecting member is far away from the set temperature, the controller sends instructions to the fan drum driving member to adjust the rotating speed and / or rotating angle of the fan drum 31. Since the rotating speed and rotating angle of the fan drum 31 will affect the disturbance and dispersion effect of the airflow, by adjusting the rotating speed and / or rotating angle of the fan drum 31, the disturbance and dispersion effect of the airflow can be adjusted, and thus the uniformity of the airflow distribution in the room can be adjusted, which is beneficial to achieve better cooling or heating effect.

[0159] In some embodiments, the temperature detecting member can be a thermistor temperature sensor, a thermocouple temperature sensor or a semiconductor temperature sensor, etc. The type of temperature detecting member is flexible, and can be set according to actual needs, which is not limited in the embodiments of the present application.

[0160] On the other hand, since the rotating speed of the fan driving member determines the rotating speed of the fan 6, and the rotating speed of the fan 6 affects the flow rate of the airflow in the air duct, the controller sends instructions to the fan drum driving member according to the rotating speed of the fan driving member, so as to realize the cooperative work of the fan 6 and the fan drum 31. For example, when the rotating speed of the fan 6 is fast and the flow rate of the airflow in the air duct 2 is fast, in order to avoid the problem of airflow concentration caused by a large amount of airflow passing through quickly, the controller can instruct the fan drum driving member to appropriately increase the rotating speed and / or rotating angle of the fan drum 31, so as to enhance the disturbance effect and ensure the disturbance and dispersion effect of the airflow.

[0161] In some embodiments, the air conditioning unit further comprises a fan 6 (as shown in FIG. 6), a fan driving member and a control system. The fan 6 is arranged in the cabinet 1 and is used to input airflow into the air duct 2. The fan driving member is arranged in the cabinet 1 and is used to drive the fan 6 to rotate. Figure 1 、 Figure 6 and Figure 7

[0162] The control system comprises a temperature detecting member (not shown) for detecting the indoor temperature and a controller (not shown) for sending instructions to the fan drum driving member according to the detection information of the temperature detecting member and / or the rotating speed of the fan driving member, so as to adjust the rotating speed and / or rotating angle of the fan drum 31.

[0163] ​In this way, on the one hand, when the indoor temperature detected by the temperature detection member is far away from the set temperature, the controller sends an instruction to the fan drum driving member to adjust the rotating speed and / or rotating angle of the fan drum 31. Since the rotating speed and rotating angle of the fan drum 31 affect the disturbance and dispersion effect of the airflow, by adjusting the rotating speed and / or rotating angle of the fan drum 31, the disturbance and dispersion effect of the airflow can be adjusted, and thus the uniformity of the distribution of the airflow in the room can be adjusted, which is beneficial to achieve a better cooling or heating effect.

[0164] On the other hand, since the rotating speed of the fan driving member determines the rotating speed of the fan 6, and the rotating speed of the fan 6 affects the flow rate of the airflow in the air duct, the controller sends an instruction to the fan drum driving member according to the rotating speed of the fan driving member, so that the fan 6 and the fan drum 31 can work cooperatively. For example, when the rotating speed of the fan 6 is fast, and the flow rate of the airflow in the air duct 2 is fast, in order to avoid the problem of airflow concentration caused by a large amount of airflow passing through quickly, the controller can instruct the fan drum driving member to appropriately increase the rotating speed and / or rotating angle of the fan drum 31 to enhance the disturbance effect, so that a large amount of airflow can still be uniformly dispersed, and the disturbance and dispersion effect of the airflow can be ensured.

[0165] In some embodiments, the control system further comprises a manual input component (not shown) electrically or signal connected with the controller, and the manual input component is used to manually input control information to the controller. The controller is further used to send an instruction to the fan drum driving member according to the control information to adjust the rotating speed and / or rotating angle of the fan drum 31.

[0166] The manual input component enables the user to actively input control information to the controller according to the user's own needs, and then adjust the rotating speed and / or rotating angle of the fan drum 31 to customize different airflow diffusion needs and meet the diversified needs of different users for indoor air circulation in different scenarios.

[0167] In some embodiments, the manual input component comprises at least one of a control panel, a remote controller and a smart application software. The manual input component is flexibly composed, and can be set according to actual needs, which is not limited in the embodiments of the present application.

[0168] Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present application, but not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.

Claims

1. An air conditioning unit, comprising: An air conditioner indoor unit is arranged on a wall or a ceiling, comprising: a casing, a wind channel is arranged in the casing, and an air outlet is arranged on the casing and communicates with the wind channel; a turbulence device is arranged in the casing, comprising: a wind drum is arranged in the wind channel, an axis of the wind drum extends in a direction different from that of the wind channel, and an outer peripheral wall of the wind drum is in a hollow structure to communicate the wind channel and an inner cavity of the wind drum; a wind drum driving member is arranged in the casing and is used to drive the wind drum to rotate around the axis; turbulence leaves are arranged on the outer peripheral wall and are used to disperse air flow in the wind channel when the wind drum rotates. An air conditioner indoor unit is arranged on a wall or a ceiling, comprising:

2. An air conditioning unit characterized by, a casing, a wind channel is arranged in the casing, and an air outlet is arranged on the casing and communicates with the wind channel; a turbulence device is arranged in the casing, comprising: a wind drum is arranged in the wind channel, an axis of the wind drum extends in a direction different from that of the wind channel, and an outer peripheral wall of the wind drum is in a hollow structure to communicate the wind channel and an inner cavity of the wind drum; a wind drum driving member is arranged in the casing and is used to drive the wind drum to rotate around the axis; turbulence leaves are arranged on the outer peripheral wall and are used to disperse air flow in the wind channel when the wind drum rotates. The turbulence leaves are arranged in multiple, and the multiple turbulence leaves are arranged on the outer peripheral wall in a circumferential direction of the wind drum. The outer peripheral wall comprises:

3. The air conditioning unit of claim 1 or 2, wherein a peripheral wall body, and 4. The air conditioning unit of claim 1 or 2, wherein a plurality of air flow holes are arranged on the peripheral wall body in an array to communicate the wind channel and the inner cavity of the wind drum. The turbulence device further comprises: a wind baffle is arranged on the wind drum and protrudes from the outer peripheral wall; 5. The air conditioning unit of claim 1 or 2, wherein the wind channel has oppositely arranged upper and lower inner walls; the wind baffle passes through a first station and a second station when rotating with the wind drum, the wind baffle at the first station abuts against the upper inner wall to make air flow in the wind channel flow out of the air outlet through a space between the wind baffle and the lower inner wall; the wind baffle at the second station abuts against the lower inner wall to make air flow in the wind channel flow out of the air outlet through a space between the wind baffle and the upper inner wall. The wind baffle protrudes from the outer peripheral wall in a radial direction of the wind drum, and one end of the radial direction of the wind baffle is arranged at the axis of the wind drum. The turbulence leaves are arranged on a side of the wind drum away from the wind baffle.

6. The air conditioning unit of claim 5, wherein, The air conditioner unit has a cooling mode and a heating mode, the wind baffle is arranged at the first station in the heating mode, and the wind baffle is arranged at the second station in the cooling mode.

7. The air conditioning unit of claim 5, wherein The air conditioner unit further comprises:

8. The air conditioning unit of claim 5, wherein, a control system, comprising:

9. The air conditioning unit of claim 5, wherein, ​ ​ A first detection member is arranged to detect whether the baffle blade is located at the first station; A second detection member is arranged to detect whether the baffle blade is located at the second station; A controller is arranged to send an instruction to the drum driving member according to the detection information of both the first detection member and the second detection member, so as to drive the baffle blade to be located at the first station or the second station by driving the drum to rotate.

10. The air conditioning unit of claim 1 or 2, wherein The air conditioning unit further comprises: A fan is arranged in the cabinet, and the fan is arranged to input the airflow into the air duct; A fan driving member is arranged in the cabinet, and the fan driving member is arranged to drive the fan to rotate; A control system comprises a temperature detection member arranged to detect the indoor temperature and a controller arranged to send an instruction to the drum driving member according to the detection information of the temperature detection member and / or the rotating speed of the fan driving member, so as to adjust the rotating speed and / or rotating angle of the drum.

11. The air conditioning unit of claim 10, wherein, The control system further comprises: A manual input assembly is electrically or signal connected with the controller, and the manual input assembly is arranged to manually input control information to the controller, and the controller is further arranged to send an instruction to the drum driving member according to the control information, so as to adjust the rotating speed and / or rotating angle of the drum.