Air dispersion components, air conditioner indoor units and air conditioners

By designing a wind dispersion component with automatic switching between a swirl part and a driving part in the indoor unit of the air conditioner, the problems of wind loss and direct blowing on users in the existing technology are solved, and a windless air outlet and beautiful effect are achieved.

CN114963488BActive Publication Date: 2025-10-03GD MIDEA AIR CONDITIONING EQUIP CO LTD +1
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Patent Information

Application Number
CN202110212258.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-02-25
Publication Date
2025-10-03
Estimated Expiration
2041-02-25

AI Technical Summary

Technical Problem

The air dissipation component of the existing air conditioner indoor unit needs to be provided with a grille when discharging air, resulting in a large loss of wind sensation and the air flow blowing directly on the user, affecting the user experience.

Method used

A wind dispersion component is designed, including a base plate and a swirl part. The side wall of the swirl part is provided with multiple first air outlet parts. When the airflow passes through the swirl part, it is dispersed and discharged laterally to avoid being blown directly on people. At the same time, the swirl part is automatically switched by a driving part to hide or open the air outlet part, thereby improving the windless feeling effect.

Benefits of technology

It achieves wind-free air outlet, improves exhaust volume and efficiency, provides multi-angle air outlet, enhances user experience and appearance, and reduces production costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an air dispersion assembly, an air conditioner indoor unit, and an air conditioner. The air dispersion assembly includes: a base plate, the base plate including a mounting cavity; at least one swirl portion disposed in the mounting cavity, at least a portion of the swirl portion being capable of protruding from the mounting cavity; a sidewall of the swirl portion being provided with a plurality of first air outlets, the plurality of first air outlets being distributed circumferentially along the swirl portion, and the first air outlets being in communication with the mounting cavity. The air dispersion assembly provided by the present invention has a plurality of first air outlets disposed on the sidewall of the swirl portion, so that airflow is discharged into the environment through the first air outlets, achieving lateral air discharge from the air dispersion assembly, preventing the airflow from blowing directly onto people, and achieving windless air discharge. Furthermore, because the first air outlets are disposed on the sidewall of the swirl portion, compared to frontal air discharge, no grilles are required, thereby reducing overall air discharge resistance, increasing exhaust volume and efficiency, and enhancing the windless effect.
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Description

Technical Field

[0001] The present invention relates to the technical field of household appliances, and in particular to an air dispersion component, an air conditioner indoor unit and an air conditioner. Background Art

[0002] In the related art, in order to prevent the air flow blown out by the indoor unit of the air conditioner from directly blowing on the user, some technical solutions propose to set an air dispersion component at the air outlet of the indoor unit of the air conditioner to disperse the air. However, in this method, the air flow flows out from the outlet on the front of the air dispersion component, and a grille needs to be set at the outlet so that the air is discharged from the through holes on the grille to reduce the wind feeling. Such a structure leads to a large loss of air supply volume. Summary of the Invention

[0003] The present invention aims to solve at least one of the technical problems existing in the prior art or related art.

[0004] To this end, a first aspect of the present invention provides a wind dispersion component.

[0005] A second aspect of the present invention further provides an air conditioner indoor unit.

[0006] The third aspect of the present invention further provides an air conditioner.

[0007] In view of this, the first aspect of the present invention proposes a wind dispersion assembly, comprising: a substrate, the substrate including an installation cavity; at least one swirl portion, arranged in the installation cavity, at least a portion of the swirl portion can protrude from the installation cavity, and the side wall of the swirl portion is provided with multiple first air outlet portions, the multiple first air outlet portions are distributed along the circumference of the swirl portion, and the first air outlet portions are connected to the installation cavity.

[0008] The wind dispersing assembly of the present invention includes a base plate and a swirl portion. The base plate includes a mounting cavity, and the swirl portion is arranged in the mounting cavity. When the airflow passes through the swirl portion, it is dispersed by the swirl portion, thereby achieving windless air outlet. Among them, the side wall of the swirl portion is provided with a plurality of first air outlet portions, and at least a part of the swirl portion can protrude from the mounting cavity, that is, the first air outlet portion can protrude from the mounting cavity, so that the airflow is discharged into the environment through the first air outlet portion, thereby achieving lateral air outlet of the wind dispersing assembly, avoiding the airflow from blowing people in the front, and achieving windless air outlet. At the same time, since the first air outlet portion is arranged on the side wall of the swirl portion, compared with the front air outlet, there is no need to set a grille, thereby reducing the overall air outlet resistance, increasing the exhaust volume and exhaust efficiency, and improving the windless effect.

[0009] More importantly, the arrangement of multiple first air outlet portions distributed along the circumferential direction of the swirl portion, on the one hand, ensures the windless air outlet effect while providing more air outlet angles, making the air outlet of the wind dispersion component more three-dimensional; on the other hand, when there are multiple swirl portions, the airflows discharged from two adjacent swirl portions can collide with each other at the intersection, so that the intensity of the airflow is weakened, avoiding the airflow from blowing directly to farther places, thereby making the airflow softer and further improving the windless effect.

[0010] The above-mentioned wind dispersion component provided by the present invention may also have the following additional technical features:

[0011] In the above technical solution, further, the swirl part is movably connected to the mounting cavity so that the swirl part can switch between a first state and a second state, wherein in the first state, at least a portion of the swirl part protrudes from the mounting cavity, and in the second state, the swirl part retracts into the mounting cavity.

[0012] In this technical solution, the swirl part is movably connected to the mounting cavity so that the swirl part can switch between a first state and a second state. Specifically, when the swirl part is in the first state, at least a portion of the swirl part protrudes from the mounting cavity. At this time, the first air outlet is in an open state, so that the airflow can be discharged into the environment through the first air outlet, realizing the lateral air outlet of the wind dispersion component, avoiding the airflow directly blowing the user, and improving the user experience. Furthermore, when the swirl part is in the second state, the swirl part retracts into the mounting cavity. At this time, the first air outlet is in a closed state, realizing the hidden arrangement of the first air outlet, which is conducive to achieving the overall integration of the product appearance and improving the aesthetics of the product appearance. By automatically switching the state of the swirl part relative to the mounting cavity, the wind dispersion component can automatically open and close the first air outlet. Such a design makes full use of the space within the substrate, realizes the compact layout of the wind dispersion component, is conducive to the overall integration of the product, and improves the aesthetics of the appearance.

[0013] In any of the above technical solutions, further, the wind dispersion assembly further includes: a driving member connected to the swirl part, and the driving member is used to drive the swirl part to switch between the first state and the second state.

[0014] In this technical solution, a drive member is provided on the air dispersion assembly, and the power output end of the drive member is connected to the swirl portion. During operation, the drive member drives the swirl portion to move, causing the swirl portion to switch between a first state and a second state. Specifically, when the drive member drives at least a portion of the swirl portion to protrude from the mounting cavity, the swirl portion is in the first state, i.e., the first air outlet portion is in the open state. Airflow is discharged into the environment through the first air outlet portion, achieving lateral airflow from the air dispersion assembly, preventing airflow from directly hitting the user, and improving the user experience. When the drive member drives the swirl portion to retract into the mounting cavity, the swirl portion is in the second state, i.e., the first air outlet portion is in the closed state. This achieves a concealed arrangement of the first air outlet portion, facilitating an overall integrated product appearance and enhancing the product's aesthetics. By connecting the drive member to the swirl portion, the swirl portion can automatically switch states relative to the mounting cavity under the drive of the drive member, thereby opening or closing the first air outlet portion. This allows the air dispersion assembly to automatically switch between lateral airflow modes, thereby optimizing the structure of the air dispersion assembly, improving the degree of automation of the air dispersion assembly, and enhancing the user experience.

[0015] In any of the above technical solutions, further, the driving member includes: a first driving member, connected to the substrate; a second driving member, rotatably connected to the first driving member; a spiral member, arranged on the second driving member, the spiral member is arranged along the axial direction of the second driving member, the spiral member is threadedly connected to the swirl part, the first driving member drives the second driving member to rotate, driving the spiral member to rotate, and the spiral member drives the swirl part to switch between the first state and the second state.

[0016] In this technical solution, the driving member includes a first driving member, a second driving member and a screw member, wherein the first driving member is connected to the base plate, the second driving member is rotationally connected to the first driving member, the screw member is arranged on the second driving member, the screw member is threadedly connected to the swirl part, and the axis of the screw member is in the same direction as the rotation axis of the second driving member. During operation, the first driving member drives the second driving member to rotate, thereby driving the screw member to rotate, and the screw member drives the swirl part to move up and down along the axis direction of the second driving member to achieve switching of the swirl part between the first state and the second state. With such a design, when the first driving member drives the second driving member to rotate, the screw member rotates, and then the swirl part threadedly connected to the screw member moves up and down along the screw member under the drive of the thread, thereby achieving switching of the state of the swirl part, making the wind dispersion component simple in structure, easy to assemble, and reducing production costs.

[0017] In any of the above technical solutions, further, the first driving member includes a rack, the second driving member includes a gear, or both the first driving member and the second driving member include a gear.

[0018] In this technical solution, the first drive member comprises a rack, and the second drive member comprises a gear. During operation, the rack transmits the rotational force to the meshing gear through meshing, thereby driving the spiral member to rotate, allowing the swirl portion to move up and down along the axis of the second drive member to achieve the swirl state switching. Both the rack and gear are standard components, with low design difficulty and cost. Using a rack and gear helps reduce the cost of the air dispersion assembly.

[0019] Furthermore, the first driving member and the second driving member may both include gears. In this case, when the gear of the first driving member rotates, the gear of the second driving member rotates simultaneously through meshing, thereby driving the spiral member to rotate, so that the swirl part moves up and down along the axial direction of the second driving member to achieve switching of the swirl part state, thereby improving the flexibility of the wind dispersion component.

[0020] In any of the above technical solutions, further, a first limiting member is provided on the base plate, and a second limiting member is provided on the swirl portion, and the first limiting member is slidably connected to the second limiting member to limit the rotation of the swirl portion.

[0021] In this technical solution, a first limit member is provided on the base plate, and a second limit member is provided on the swirl part, wherein the first limit member and the second limit member are slidably connected to realize the stop limit between the second driving member and the swirl part. On the one hand, the phenomenon of the swirl part rotating with the rotation of the second driving member is avoided, and it is ensured that the swirl part can move up and down along the axis direction of the second driving member with the rotation of the spiral member, thereby improving the working stability and reliability of the swirl part; on the other hand, when the swirl part is in the second state, that is, the swirl part retracts into the installation cavity, the second limit member abuts against the first limit member, so that the swirl part cannot continue to move into the installation cavity under the action of the first limit member and the second limit member, thereby realizing the positioning effect of the swirl part, avoiding the swirl part from penetrating into the interior of the installation cavity, colliding and damaging the components inside the installation cavity, and interfering with the normal operation of the components inside the installation cavity, thereby reducing the product failure rate.

[0022] In any of the above technical solutions, further, the swirl part includes: a shell, the shell is arranged in the installation cavity, and the first air outlet is arranged on the side wall of the shell; a plurality of guide plates are arranged in the shell, and the guide plates are inclined relative to the first air outlet.

[0023] In this technical solution, the swirl unit includes a shell and a plurality of guide plates. The shell is arranged in the installation cavity. The shell is the external frame structure of the swirl unit, which is used for positioning and installation and includes the internal structure of the swirl unit. Among them, the first air outlet is arranged on the side wall of the shell. When at least a portion of the swirl unit protrudes from the installation cavity, the first air outlet is in an open state, and the airflow is discharged through the first air outlet to realize the lateral air outlet function of the air dispersion component. Furthermore, a plurality of guide plates are arranged in the shell. The guide plates are arranged at an angle relative to the first air outlet. Under the guidance of the guide plates, the airflow can be diffused along the circumference of the shell, thereby providing more air outlet angles. Therefore, under the guidance of the guide plates, the airflow can be dispersed to the four sides of the air dispersion component, thereby improving the diffusion effect of the airflow.

[0024] In any of the above technical solutions, further, along the circumference of the shell, any first air outlet includes a first end and a second end that are relatively arranged, and the guide plate includes a third end and a fourth end, the third end is connected to the first end, and the fourth end is inclined toward the second end relative to the first air outlet.

[0025] In this technical solution, along the circumference of the housing, each first air outlet is provided with a first end and a second end that are positioned opposite each other, and the deflector is provided with a third end and a fourth end. The third end is connected to the first end, thereby increasing the connection strength between the first air outlet and the deflector, improving the structural stability of both, and thereby enhancing the operational stability and reliability of the air dispersion assembly. Furthermore, the fourth end is inclined toward the second end relative to the first air outlet. Guided by the deflector, the airflow can swirl around the circumference of the housing. This allows the airflow from two adjacent swirls to collide with each other, preventing the airflow from being blown too far and resulting in a softer airflow.

[0026] In any of the above technical solutions, further, the swirl part also includes: a plurality of blades, which are arranged in the shell, the plurality of blades are distributed along the circumference of the shell, and the guide plates are arranged on the blades.

[0027] In this technical solution, the swirl unit also includes multiple blades disposed within the housing. The blades are distributed circumferentially along the housing, cutting and breaking up the airflow passing through it, thereby achieving a windless airflow. The guide plates are disposed on the blades. This design ensures that the blades can break up the airflow before outputting it, and the guide plates further guide the airflow blown out by the blades, making the airflow softer and achieving a more windless effect. Furthermore, the air dispersion component simultaneously performs the functions of dispersing and guiding air, achieving an integrated function of dispersing and guiding airflow. This further simplifies the product structure, improves assembly efficiency, and helps reduce production costs.

[0028] In any of the above technical solutions, further, the swirl portion further includes: a second air outlet portion is provided on the top of the swirl portion, and the second air outlet portion is communicated with the installation cavity.

[0029] In this technical solution, a second air outlet is provided on the top of the swirl part, and the second air outlet is connected to the installation cavity, so that the airflow can be discharged into the environment through the second air outlet. Specifically, when the swirl part is in the first state, at least a part of the swirl part protrudes from the installation cavity, that is, the first air outlet is in an open state. At this time, the airflow can be discharged into the environment through the first air outlet and the second air outlet at the same time, realizing a 4D (four-dimensional) air outlet mode, thereby increasing the air volume and air outlet efficiency while realizing windless air outlet. When the swirl part is in the first state, the swirl part is located in the installation cavity, that is, the first air outlet is in a closed state. At this time, the airflow can be discharged into the environment through the second air outlet, realizing a 2D (two-dimensional) air outlet mode, which improves the flexibility and practicality of the wind dispersion component.

[0030] In any of the above technical solutions, further, the air dispersing assembly further includes: an air outlet grille, and the air outlet grille cover is arranged on the second air outlet portion.

[0031] In this technical solution, the air dispersion assembly is equipped with an outlet grille, which covers the second air outlet section. The outlet grille serves to rectify and further disperse the air. After entering the air dispersion assembly, the airflow is diffused by the swirl section. The diffused airflow is then rectified and further dispersed by the outlet grille before being delivered out of the air dispersion assembly through the second air outlet section. This softens the airflow and enhances the windless effect. Furthermore, the outlet grille improves the product's aesthetics, prevents dust and impurities from entering the air dispersion assembly, and increases the assembly's service life.

[0032] In any of the above technical solutions, further, the air outlet grille includes a plurality of first air outlets and a plurality of second air outlets, and the air outlet directions of the first air outlets are different from the air outlet directions of the second air outlets.

[0033] In this technical solution, the air outlet grille is provided with multiple first and second air outlets, wherein the air outlet directions of the multiple first and second air outlets are different, so that the airflow discharged from the air outlet grille can be diffused in multiple different directions, diversifying the airflow flow direction and allowing the airflows from different air outlets to fully collide, thereby more fully breaking up the airflow, reducing the impact of the airflow and making the airflow softer. This not only reduces the flow rate of the exhaust airflow, but also prevents the airflow from converging in the same direction, reducing the wind sensation at the front outlet, thereby improving the windless effect of the airflow.

[0034] In any of the above technical solutions, further, the plurality of first air dispersion outlets and the plurality of second air dispersion outlets are staggered.

[0035] In this technical solution, multiple first and second air dispersion vents are staggered. This allows the airflow exiting through the first air dispersion vents to intersect with the airflow exiting through the second air dispersion vents, causing the adjacent airflows to collide at the intersection. This reduces the velocity of the airflow before it is discharged into the environment and prevents the airflows from converging in the same direction, weakening the frontal airflow and reducing the user's airflow sensation, thus achieving the product's wind-free function.

[0036] In any of the above technical solutions, further, based on the number of swirl parts being multiple, the multiple swirl parts are arranged at intervals.

[0037] In this technical solution, when there are multiple swirl sections, they are spaced apart. As the airflow passes through the multiple swirl sections, the airflow from the wind dispersing assembly is dispersed by the multiple swirl sections. When at least a portion of the swirl section protrudes from the mounting cavity, the first air outlet section is open, and the airflow is discharged into the environment through the first air outlet section. Airflows from adjacent swirl sections collide with each other, further dispersing the airflow, reducing its impact and making it softer. This improves the wind dispersing effect of the wind dispersing assembly and further enhances the windless airflow.

[0038] According to a second aspect of the present invention, an air conditioner indoor unit is further provided, comprising: an air dispersion component as provided in the first aspect above.

[0039] The air conditioner indoor unit provided in the second aspect of the present invention includes the air dispersion component proposed in the first aspect above, and thus has all the beneficial effects of the air dispersion component, which will not be described in detail here.

[0040] According to a third aspect of the present invention, an air conditioner is further provided, comprising: the air dispersion component as provided in the first aspect; or the air conditioner indoor unit as provided in the second aspect.

[0041] The air conditioner provided in the third aspect of the present invention includes the air dispersion component proposed in the first aspect above; or the air conditioner indoor unit proposed in the second aspect above, and therefore has all the beneficial effects of the air dispersion component and the air conditioner indoor unit, which will not be repeated here.

[0042] Additional aspects and advantages of the invention will become apparent from the description which follows, or may be learned by practice of the invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0043] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the following description of the embodiments with reference to the accompanying drawings, in which:

[0044] Figure 1 FIG1 shows one of the structural diagrams of an air-conditioning indoor unit according to an embodiment of the present invention;

[0045] Figure 2 A second structural diagram of an air-conditioning indoor unit according to an embodiment of the present invention is shown;

[0046] Figure 3 A third structural diagram of an air-conditioning indoor unit according to an embodiment of the present invention is shown;

[0047] Figure 4 A schematic structural diagram of a swirl portion according to an embodiment of the present invention is shown;

[0048] Figure 5 Shown Figure 4 A side view of the swirl portion of the illustrated embodiment;

[0049] Figure 6 One of the structural schematic diagrams showing a four-dimensional air outlet mode of a swirl portion according to an embodiment of the present invention is shown;

[0050] Figure 7 A second structural diagram showing a four-dimensional air outlet mode of a swirl portion according to an embodiment of the present invention is shown;

[0051] Figure 8 A schematic diagram showing the structure of a two-dimensional air outlet mode of a swirl portion according to an embodiment of the present invention is shown;

[0052] Figure 9 One of the structural schematic diagrams of the wind dispersion assembly according to one embodiment of the present invention is shown;

[0053] Figure 10 A second structural diagram of an air dispersion assembly according to an embodiment of the present invention is shown;

[0054] Figure 11 Shown Figure 10 A top view of the wind dispersion assembly of the illustrated embodiment;

[0055] Figure 12 Shown Figure 10 A cross-sectional view taken along line AA of the embodiment shown;

[0056] Figure 13 A third structural diagram of an air dispersion assembly according to an embodiment of the present invention is shown;

[0057] Figure 14 Shown Figure 13 A BB sectional view of the embodiment shown;

[0058] Figure 15 Shown Figure 13 A cross-sectional view taken along the line CC of the embodiment shown;

[0059] Figure 16 A fourth structural diagram of an air dispersion assembly according to an embodiment of the present invention is shown;

[0060] Figure 17 Shown Figure 16 A side view of the wind dispersion assembly of the illustrated embodiment;

[0061] Figure 18 Shown Figure 16 A top view of the wind dispersion assembly of the illustrated embodiment;

[0062] Figure 19 Shown Figure 16 A DD-direction cross-sectional view of the embodiment shown;

[0063] Figure 20 A fifth structural diagram of an air dispersion assembly according to an embodiment of the present invention is shown;

[0064] Figure 21 Shown Figure 20 A cross-sectional view of the swirl portion of the illustrated embodiment in the first state along the EE direction;

[0065] Figure 22 A sixth structural diagram of an air dispersion assembly according to an embodiment of the present invention is shown;

[0066] Figure 23 Shown Figure 20 A sectional view taken along the FF direction of the swirl portion of the illustrated embodiment in a first state;

[0067] Figure 24 FIG7 shows a seventh structural diagram of an air dispersion assembly according to an embodiment of the present invention;

[0068] Figure 25 An eighth structural diagram of an air dispersion assembly according to an embodiment of the present invention is shown;

[0069] Figure 26 A ninth structural diagram of an air dispersion assembly according to an embodiment of the present invention is shown;

[0070] Figure 27 FIG10 shows a structural schematic diagram of an air dispersion assembly according to an embodiment of the present invention;

[0071] Figure 28 FIG11 shows an eleventh structural diagram of an air dispersion assembly according to an embodiment of the present invention.

[0072] in, Figures 1 to 28 The corresponding relationship between the reference numerals and component names is as follows:

[0073] 1 air conditioner indoor unit, 2 air outlet, 3 air guide plate, 10 air dispersion assembly, 100 base plate, 102 swirl portion, 1020 first air outlet, 1022 housing, 1024 air guide plate, 1026 blade, 1028 second air outlet, 104 driving member, 1040 first driving member, 1042 second driving member, 1044 spiral member, 106 air outlet grille, 1060 first air dispersion outlet, 1062 second air dispersion outlet, 108 installation cavity, 110 upper cover, 112 lower cover. DETAILED DESCRIPTION

[0074] In order to more clearly understand the above-mentioned objects, features and advantages of the present invention, the present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that, in the absence of conflict, the embodiments of the present application and the features therein can be combined with each other.

[0075] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present invention is not limited to the specific embodiments disclosed below.

[0076] Refer to the following Figures 1 to 28 The wind dissipation assembly 10, the air conditioner indoor unit 1 and the air conditioner according to some embodiments of the present invention are described.

[0077] Example 1:

[0078] like Figures 13 to 28 As shown, according to an embodiment of the first aspect of the present invention, the present invention proposes a wind dissipation component 10, including: a substrate 100, the substrate 100 includes a mounting cavity 108; at least one swirl portion 102, provided in the mounting cavity 108, at least a portion of the swirl portion 102 can protrude from the mounting cavity 108, and the side wall of the swirl portion 102 is provided with a plurality of first air outlet portions 1020, the plurality of first air outlet portions 1020 are distributed along the circumference of the swirl portion 102, and the first air outlet portions 1020 are connected to the mounting cavity 108.

[0079] The wind dispersing assembly 10 of the present invention includes a base plate 100 and a swirl portion 102. The base plate 100 includes a mounting cavity 108, and the swirl portion 102 is disposed within the mounting cavity 108. When the airflow passes through the swirl portion 102, it is dispersed by the swirl portion 102, thereby achieving windless air discharge. The sidewall of the swirl portion 102 is provided with a plurality of first air outlets 1020. At least a portion of the swirl portion 102 can protrude from the mounting cavity 108, that is, the first air outlets 1020 can protrude from the mounting cavity 108, so that the airflow is discharged into the environment through the first air outlets 1020, thereby achieving sideways air discharge from the wind dispersing assembly 10, preventing the airflow from blowing directly onto people, and achieving windless air discharge. Furthermore, since the first air outlets 1020 are disposed on the sidewalls of the swirl portion 102, compared to frontal air discharge, no grille is required, thereby reducing overall air discharge resistance, increasing exhaust volume and efficiency, and improving the windless effect.

[0080] More importantly, if Figure 5 As shown, the arrangement of multiple first air outlet portions 1020 distributed along the circumferential direction of the swirl portion 102, on the one hand, ensures the windless air outlet effect while providing more air outlet angles, making the air outlet of the wind dispersion component 10 more three-dimensional; on the other hand, when there are multiple swirl portions 102, the airflows discharged from two adjacent swirl portions 102 can collide with each other at the intersection, so that the intensity of the airflow is weakened, avoiding the airflow from blowing directly to farther places, thereby making the airflow softer and further improving the windless effect.

[0081] Specifically, if Figure 25 、 Figure 26 and Figure 27 As shown, the base plate 100 includes an upper cover 110 and a lower cover 112 , and the upper cover 110 and the lower cover 112 cover each other, thereby improving the stability of the structure of the wind dispersing assembly 10 .

[0082] It should be noted that, when there are multiple swirl parts 102 , there are also multiple mounting cavities 108 , and the mounting cavities 108 are arranged in a one-to-one correspondence with the swirl parts 102 .

[0083] Example 2:

[0084] like Figure 20 、 Figure 21 、 Figure 22 、 Figure 24 、 Figure 25 and Figure 26 As shown, according to one embodiment of the present invention, on the basis of the above embodiment, further: the swirl portion 102 is movably connected to the mounting cavity 108 so that the swirl portion 102 can switch between a first state and a second state, wherein, in the first state, at least a portion of the swirl portion 102 protrudes from the mounting cavity 108, and in the second state, the swirl portion 102 retracts into the mounting cavity 108.

[0085] In this embodiment, the swirl portion 102 is movably connected to the mounting cavity 108, allowing the swirl portion 102 to switch between a first state and a second state. Specifically, when the swirl portion 102 is in the first state, at least a portion of the swirl portion 102 protrudes from the mounting cavity 108. At this time, the first air outlet portion 1020 is in an open state, allowing airflow to be discharged into the environment through the first air outlet portion 1020. This achieves sideways airflow from the air dispersion assembly 10, preventing airflow from directly blowing directly at the user, and improving the user experience. Furthermore, when the swirl portion 102 is in the second state, the swirl portion 102 retracts into the mounting cavity 108. At this time, the first air outlet portion 1020 is in a closed state, achieving a hidden arrangement of the first air outlet portion 1020, which facilitates the overall integration of the product appearance and enhances the product's aesthetics. By automatically switching the state of the swirl portion 102 relative to the mounting cavity 108, the air dispersion assembly 10 can automatically open and close the first air outlet portion 1020. Such a design fully utilizes the space inside the base plate 100 and realizes a compact layout of the air dispersion assembly 10 , which is beneficial to the overall integration of the product and improves the aesthetic appearance.

[0086] Example 3:

[0087] like Figure 11 、 Figure 12 、 Figure 13 、 Figure 14 and Figure 20 As shown, according to an embodiment of the present invention, on the basis of the above embodiment, further: the wind dispersion component 10 also includes: a driving member 104, the driving member 104 is connected to the swirl part 102, and the driving member 104 is used to drive the swirl part 102 to switch between the first state and the second state.

[0088] In this embodiment, the wind dispersion assembly 10 is provided with a drive member 104, the power output end of which is connected to the swirl portion 102. During operation, the drive member 104 drives the swirl portion 102 to move, thereby switching the swirl portion 102 between a first state and a second state. Specifically, when the drive member 104 drives at least a portion of the swirl portion 102 to protrude from the mounting cavity 108, the swirl portion 102 is in the first state, i.e., the first air outlet portion 1020 is in the open state. Airflow is discharged into the environment through the first air outlet portion 1020, achieving lateral airflow from the wind dispersion assembly 10, preventing airflow from directly blowing directly onto the user, and improving the user experience. When the drive member 104 drives the swirl portion 102 to retract into the mounting cavity 108, the swirl portion 102 is in the second state, i.e., the first air outlet portion 1020 is in the closed state, achieving a concealed arrangement of the first air outlet portion 1020, which facilitates the overall integration of the product appearance and enhances the aesthetics of the product appearance. By connecting the driving member 104 to the swirl portion 102, the swirl portion 102 can automatically switch its state relative to the mounting cavity 108 under the driving action of the driving member 104, thereby realizing the opening or closing of the first air outlet portion 1020, so that the wind dispersion component 10 can automatically open or close the side air outlet mode, thereby optimizing the structure of the wind dispersion component 10, improving the degree of automation of the wind dispersion component 10, and improving the user experience.

[0089] Example 4:

[0090] like Figure 20 、 Figures 23 to 28 As shown, according to one embodiment of the present invention, on the basis of the above embodiment, further: the driving member 104 includes: a first driving member 1040, connected to the substrate 100; a second driving member 1042, rotatably connected to the first driving member 1040; a spiral member 1044, provided on the second driving member 1042, the spiral member 1044 is arranged along the axial direction of the second driving member 1042, the spiral member 1044 is threadedly connected to the swirl part 102, the first driving member 1040 drives the second driving member 1042 to rotate, driving the spiral member 1044 to rotate, and the spiral member 1044 drives the swirl part 102 to switch between the first state and the second state.

[0091] In this embodiment, the driving member 104 includes a first driving member 1040, a second driving member 1042, and a screw 1044, wherein the first driving member 1040 is connected to the base plate 100, the second driving member 1042 is rotatably connected to the first driving member 1040, and the screw 1044 is provided on the second driving member 1042. The screw 1044 is threadedly connected to the swirl portion 102, and the axis of the screw 1044 is in the same direction as the rotation axis of the second driving member 1042. During operation, the first driving member 1040 drives the second driving member 1042 to rotate, thereby driving the screw 1044 to rotate. The screw 1044 drives the swirl portion 102 to move up and down along the axis of the second driving member 1042, thereby switching the swirl portion 102 between the first state and the second state. With such a design, when the first driving member 1040 drives the second driving member 1042 to rotate, the spiral member 1044 rotates, and then the swirl portion 102 threadedly connected to the spiral member 1044 moves up and down along the spiral member 1044 under the drive of the thread, thereby realizing the switching of the state of the swirl portion 102, making the wind dispersion component 10 simple in structure, easy to assemble, and reducing production costs.

[0092] Specifically, when the wind dispersion component 10 needs to turn on the side air outlet mode, the first driving member 1040 drives the second driving member 1042 to rotate, and then drives the spiral member 1044 to rotate. The spiral member 1044 drives the swirl part 102 to move upward along the axial direction of the second driving member 1042, so that the swirl part 102 can protrude from the installation cavity 108. At this time, the first air outlet part 1020 is in the open state, and the airflow is discharged into the environment through the first air outlet part 1020, realizing the side air outlet of the wind dispersion component 10, avoiding the airflow blowing directly on the user, and improving the user experience. Correspondingly, when the wind dispersion component 10 does not need to turn on the side air outlet mode, the first driving member 1040 drives the second driving member 1042 to rotate, and then drives the spiral member 1044 to rotate. The spiral member 1044 drives the swirl part 102 to move downward along the axial direction of the second driving member 1042, so that the swirl part 102 can be retracted into the installation cavity 108. At this time, the first air outlet part 1020 is in a closed state, realizing the hidden arrangement of the first air outlet part 1020, which is conducive to realizing the overall integration of the product appearance and improving the aesthetics of the product appearance.

[0093] Embodiment 5:

[0094] like Figure 20 As shown, according to an embodiment of the present invention, on the basis of the above embodiment, further: the first driving member 1040 includes a rack, the second driving member 1042 includes a gear, or the first driving member 1040 and the second driving member 1042 both include gears.

[0095] In this embodiment, the first drive member 1040 comprises a rack, and the second drive member 1042 comprises a gear. During operation, the rack transmits the rotational force to the meshing gear through meshing, thereby driving the spiral member 1044 to rotate, allowing the swirl portion 102 to move up and down along the axis of the second drive member 1042 to switch the state of the swirl portion 102. The rack and gear are both standard components, with low design difficulty and cost. The use of a rack and gear helps reduce the cost of the air dispersion assembly 10.

[0096] In a specific application, when there are multiple swirl parts 102, there are multiple gears, and the swirl parts 102 are arranged in a one-to-one correspondence with the gears, wherein adjacent gears are engaged with each other. In this way, by driving one of the gears to rotate, multiple gears can be linked to rotate, thereby driving multiple swirl parts 102 to move along the direction of the rotation axis of the second driving member 1042, so that the swirl parts 102 move to the first state or the second state.

[0097] Furthermore, the first driving member 1040 and the second driving member 1042 can both include gears. In this case, when the gear of the first driving member 1040 rotates, the gear of the second driving member 1042 rotates simultaneously through meshing, thereby driving the spiral member 1044 to rotate, so that the swirl part 102 moves up and down along the axial direction of the second driving member 1042, so as to realize the switching of the state of the swirl part 102, thereby improving the flexibility of the wind dispersion component 10.

[0098] Example 6:

[0099] According to one embodiment of the present invention, based on the above embodiment, further: a first limiting member is provided on the substrate 100, and a second limiting member is provided on the swirl part 102, and the first limiting member and the second limiting member are slidably connected to limit the rotation of the swirl part 102.

[0100] In this embodiment, a first limiting member is provided on the substrate 100, and a second limiting member is provided on the swirl portion 102, wherein the first limiting member and the second limiting member are slidably connected to realize a stop limit between the second driving member 1042 and the swirl portion 102. On the one hand, it avoids the phenomenon that the swirl portion 102 rotates with the rotation of the second driving member 1042, and ensures that the swirl portion 102 can move up and down along the axis direction of the second driving member 1042 with the rotation of the spiral member 1044, thereby improving the working stability and reliability of the swirl portion 102. Reliability; on the other hand, when the swirl part 102 is in the second state, that is, the swirl part 102 retracts into the installation cavity 108, the second limit member abuts against the first limit member, so that the swirl part 102 cannot continue to move into the installation cavity 108 under the action of the first limit member and the second limit member, thereby achieving the positioning effect of the swirl part 102, preventing the swirl part 102 from penetrating into the interior of the installation cavity 108, colliding with and damaging the components inside the installation cavity 108, and interfering with the normal operation of the components inside the installation cavity 108, thereby reducing the product failure rate.

[0101] Furthermore, the second limit member and the swirl portion 102 can be set as an integrated structure. On the one hand, the structure of the swirl portion 102 is simplified, which can reduce processing difficulty and production costs; on the other hand, there is no structural connection section in the integrated structure, and the structural stability and reliability are stronger.

[0102] Embodiment seven:

[0103] like Figures 4 to 8 As shown, according to an embodiment of the present invention, on the basis of the above embodiment, further: the swirl part 102 includes: a shell 1022, the shell 1022 is arranged in the installation cavity 108, and the first air outlet part 1020 is arranged on the side wall of the shell 1022; a plurality of guide plates 1024, which are arranged in the shell 1022, and the guide plates 1024 are inclined relative to the first air outlet part 1020.

[0104] In this embodiment, the swirl unit 102 includes a housing 1022 and a plurality of deflectors 1024. The housing 1022 is disposed within the mounting cavity 108. The housing 1022 serves as the outer frame structure of the swirl unit 102, used for positioning and mounting, and encompassing the internal structure of the swirl unit 102. A first air outlet 1020 is disposed on a sidewall of the housing 1022. When at least a portion of the swirl unit 102 protrudes from the mounting cavity 108, the first air outlet 1020 is in an open state, and air is discharged through the first air outlet 1020, thereby achieving the lateral air outlet function of the air dispersion assembly 10. Furthermore, multiple guide plates 1024 are arranged in the shell 1022, and the guide plates 1024 are inclined relative to the first air outlet 1020. Under the guidance of the guide plates 1024, the airflow can diffuse along the circumference of the shell 1022, thereby providing more air outlet angles. Therefore, under the guidance of the guide plates 1024, the airflow can be dispersed to the four sides of the wind dispersion component 10, thereby improving the diffusion effect of the airflow.

[0105] Embodiment 8:

[0106] like Figure 6 、 Figure 7 and Figure 8 As shown, according to an embodiment of the present invention, on the basis of the above embodiment, further: along the circumference of the shell 1022, any first air outlet 1020 includes a first end and a second end relatively arranged, and the guide plate 1024 includes a third end and a fourth end, the third end is connected to the first end, and the fourth end is inclined toward the second end relative to the first air outlet 1020.

[0107] In this embodiment, along the circumference of the housing 1022, each first air outlet portion 1020 has a first end and a second end disposed opposite each other, and the deflector 1024 has a third end and a fourth end. The third end is connected to the first end, thereby increasing the connection strength between the first air outlet portion 1020 and the deflector 1024, improving the structural stability of both, and thereby enhancing the operational stability and reliability of the air dispersion assembly 10. Furthermore, the fourth end is inclined toward the second end relative to the first air outlet portion 1020. Guided by the deflector 1024, the airflow can swirl around the circumference of the housing 1022. Thus, if there are multiple swirl portions 102, the airflows discharged from two adjacent swirl portions 102 can collide with each other, preventing the airflow from being blown too far and resulting in a smoother airflow.

[0108] Embodiment 9:

[0109] like Figure 6 and Figure 8As shown, according to one embodiment of the present invention, on the basis of the above embodiment, further: the swirl part 102 also includes: a plurality of blades 1026, which are arranged in the shell 1022, and the plurality of blades 1026 are distributed along the circumference of the shell 1022, and the guide plate 1024 is arranged on the blade 1026.

[0110] In this embodiment, the swirl unit 102 further includes a plurality of blades 1026 disposed within the housing 1022. The plurality of blades 1026 are distributed circumferentially around the housing 1022. The blades 1026 are used to cut the airflow passing through, thereby breaking it up and achieving a windless airflow. The guide plates 1024 are disposed on the blades 1026. This design, on the one hand, ensures that the blades 1026 can break up the airflow before outputting it, and that the guide plates 1024 further guide the airflow blown out by the blades 1026, making the airflow softer and achieving a better windless effect. On the other hand, it enables the air dispersion assembly 10 to simultaneously perform the functions of wind dispersion and air diversion, achieving an integrated wind dispersion and air diversion system, thereby further simplifying the product structure, improving assembly efficiency, and helping to reduce production costs.

[0111] In specific applications, such as Figure 6 As shown, the multiple blades 1026 are all inclined clockwise or counterclockwise along the circumference of the shell 1022, and the multiple blades 1026 are arranged in a one-to-one correspondence with the multiple guide plates 1024. When the airflow passes through the blades 1026, under the guidance of the blades 1026 inclined in the same direction, the airflow can rotate and flow in the same direction, that is, forming a vortex in the same direction, thereby reducing the wind outlet resistance inside the wind dispersion component 10. At the same time, when there are multiple vortex parts 102, the airflows flowing out of the multiple vortex parts 102 collide with each other, making the airflow softer.

[0112] Embodiment 10:

[0113] like Figure 7 As shown, according to an embodiment of the present invention, on the basis of the above embodiment, further: the swirl part 102 also includes: a second air outlet 1028 is provided on the top of the swirl part 102, and the second air outlet 1028 is connected to the installation cavity 108.

[0114] In this embodiment, a second air outlet 1028 is provided at the top of the swirl unit 102. The second air outlet 1028 communicates with the mounting cavity 108, allowing airflow to be discharged into the environment through the second air outlet 1028. Specifically, when the swirl unit 102 is in the first state, at least a portion of the swirl unit 102 protrudes from the mounting cavity 108, meaning that the first air outlet 1020 is in an open state. Airflow can then be discharged into the environment through both the first air outlet 1020 and the second air outlet 1028, achieving a 4D (four-dimensional) airflow pattern. This increases both the airflow volume and efficiency while achieving a windless airflow. When the swirl unit 102 is in the first state, the swirl unit 102 is located within the mounting cavity 108, meaning that the first air outlet 1020 is in a closed state. Airflow can then be discharged into the environment through the second air outlet 1028, achieving a 2D (two-dimensional) airflow pattern, enhancing the flexibility and practicality of the air dispersion assembly 10.

[0115] In specific applications, such as Figures 16 to 22 As shown, by arranging the swirl portion 102 to be movable relative to the mounting cavity 108, the first air outlet portion 1020 and the second air outlet portion 1028 can cooperate with each other, expanding the air outlet modes. For example, a side air outlet mode, a front air outlet mode, and a combined side and front air outlet mode are provided. This enriches the product's functionality, adapts it to the needs of different users, and enhances the user experience.

[0116] Example 11:

[0117] like Figure 4 As shown, according to an embodiment of the present invention, on the basis of the above embodiment, further: the wind dispersing component 10 further includes: an air outlet grille 106, and the air outlet grille 106 is covered on the second air outlet portion 1028.

[0118] In this embodiment, the air dispersion assembly 10 is equipped with an air outlet grille 106 positioned over the second air outlet portion 1028. The air outlet grille 106 serves to rectify and further disperse the air. After entering the air dispersion assembly 10, the airflow is diffused by the swirl portion 102. The diffused airflow is then rectified and further dispersed by the air outlet grille 106 before being delivered out of the air dispersion assembly 10 through the second air outlet portion 1028. This softens the airflow and enhances the perceived windlessness. Furthermore, the provision of the air outlet grille 106 enhances the aesthetics of the product, prevents dust and impurities from entering the air dispersion assembly 10, and increases the service life of the air dispersion assembly 10.

[0119] Furthermore, the air outlet grille 106 and the air dispersion assembly 10 can be detachably connected via a snap-fit ​​or threaded connection, allowing for easy cleaning and replacement of the air outlet grille 106 , thereby increasing the service life of the air outlet grille 106 and, in turn, the service life of the air dispersion assembly 10. Furthermore, if the air outlet grille 106 becomes damaged, it can be removed and replaced with a new one, reducing subsequent maintenance and repair costs. Of course, the air outlet grille 106 and the air dispersion assembly 10 can also be an integrated structure, improving the strength of the connection between the two.

[0120] The air outlet grille 106 also serves as an exterior decoration, preventing the swirl portion 102 from being exposed and affecting the appearance.

[0121] Example 12:

[0122] like Figure 4 As shown, according to an embodiment of the present invention, on the basis of the above embodiment, further: the air outlet grille 106 includes multiple first air outlets 1060 and multiple second air outlets 1062, and the air outlet direction of the first air outlet 1060 is different from the air outlet direction of the second air outlet 1062.

[0123] In this embodiment, the air outlet grille 106 is provided with a plurality of first air dispersion ports 1060 and a plurality of second air dispersion ports 1062. The plurality of first air dispersion ports 1060 and the plurality of second air dispersion ports 1062 have different air outlet directions, allowing the airflow discharged from the air outlet grille 106 to diffuse in multiple different directions, thereby diversifying the airflow direction and allowing the airflows from the different air dispersion ports to fully collide, thereby further fully breaking up the airflow, reducing the impact of the airflow and making the airflow softer. This not only reduces the velocity of the exhaust airflow, but also prevents the airflow from converging in the same direction, reducing the windy feeling of the front airflow, thereby improving the windless effect of the airflow.

[0124] Example 13:

[0125] like Figure 4 As shown, according to an embodiment of the present invention, on the basis of the above embodiment, further: a plurality of first air dispersion outlets 1060 and a plurality of second air dispersion outlets 1062 are staggered.

[0126] In this embodiment, multiple first air dispersion vents 1060 and multiple second air dispersion vents 1062 are staggered. This allows the airflow exiting through the first air dispersion vents 1060 to intersect with the airflow exiting through the second air dispersion vents 1062, causing the adjacent airflows to collide at the intersection. This reduces the velocity of the airflow discharged into the environment and prevents the airflows from converging in the same direction, weakening the front airflow and reducing the user's airflow sensation, thus achieving the product's wind-free function.

[0127] In specific applications, such as Figure 7 As shown, the plurality of first air dispersion outlets 1060 and the plurality of second air dispersion outlets 1062 are arranged in a long strip shape, and the inclination directions of the plurality of first air dispersion outlets 1060 and the plurality of second air dispersion outlets 1062 are arranged to intersect, so that the airflows flowing out through the first air dispersion outlets 1060 and the second air dispersion outlets 1062 intersect and fully collide, thereby breaking up the airflow and finally achieving a windless feeling of the airflow.

[0128] Example 14:

[0129] like Figure 9 、 Figure 10 and Figure 16 As shown, according to an embodiment of the present invention, on the basis of the above embodiment, further: based on the number of the swirl parts 102 being multiple, the multiple swirl parts 102 are arranged at intervals.

[0130] In this embodiment, when there are multiple swirl sections 102, the multiple swirl sections 102 are spaced apart. As the airflow passes through the multiple swirl sections 102, the airflow from the wind dispersing assembly 10 can be dispersed by the multiple swirl sections 102. When at least a portion of the swirl section 102 protrudes from the mounting cavity 108, the first air outlet section 1020 is in an open state, and the airflow is discharged into the environment through the first air outlet section 1020. The airflows from adjacent swirl sections 102 collide with each other, thereby more fully dispersing the airflow, reducing the impact of the airflow and making the airflow softer. This improves the air dispersing effect of the wind dispersing assembly 10 and further enhances the windless airflow effect.

[0131] In specific applications, such as Figure 9 and Figure 18 As shown, the swirl portion 102 can be configured as a circular ring, which reduces the wind resistance of the swirl portion 102 and makes the airflow spread more smoothly. The multiple swirl portions 102 are distributed side by side and spaced apart along the length of the base plate 100, thereby increasing the degree of airflow dispersion and enhancing the wind-free effect of the wind dispersion assembly 10.

[0132] Embodiment 15:

[0133] like Figure 1 、 Figure 2 and Figure 3 As shown, according to a second aspect of the present invention, an air conditioner indoor unit 1 is further provided, comprising: an air dispersion component 10 as provided in the first aspect above.

[0134] The air conditioner indoor unit 1 provided in the second aspect of the present invention includes the air dispersion component 10 proposed in the first aspect, and thus has all the beneficial effects of the air dispersion component 10, which will not be described in detail here.

[0135] In a specific application, the air conditioner indoor unit 1 includes an air outlet 2, and the air dispersion component 10 is disposed at the air outlet 2. Airflow from the air outlet 2 passes through the air dispersion component 10 and then flows out of the air conditioner indoor unit 1, achieving windless air flow from the air conditioner indoor unit 1. When the windless air flow mode is activated, the air dispersion component 10 blocks the air outlet 2 and, together with the air guide plate 3, forms a cavity. At least a portion of the cavity is located outside the air outlet 2, and the cavity is connected to the air outlet 2.

[0136] Furthermore, side openings are provided on both sides of the cavity.

[0137] Example 16:

[0138] According to a third aspect of the present invention, an air conditioner is further provided, comprising: the air dispersion assembly 10 as provided in the first aspect; or the air conditioner indoor unit 1 as provided in the second aspect.

[0139] The air conditioner provided in the third aspect of the invention includes the air dispersion component 10 proposed in the first aspect above; or the air conditioning indoor unit 1 proposed in the second aspect above, and therefore has all the beneficial effects of the air dispersion component 10 and the air conditioning indoor unit 1, which will not be repeated here.

[0140] Embodiment 17:

[0141] like Figure 9 、 Figure 15 、 Figure 17 and Figure 19 As shown, according to a specific embodiment of the present invention, the wind dispersion assembly 10 includes a base plate 100 and a swirl portion 102. The base plate 100 includes a mounting cavity 108. The swirl portion 102 can switch between a first state and a second state. In the first state, the swirl portion 102 extends from the mounting cavity 108 so that at least a portion of the swirl portion 102 protrudes from the mounting cavity 108. In the second state, the swirl portion 102 retracts into the mounting cavity 108. A plurality of first air outlet portions 1020 are provided on the sidewall of the swirl portion 102. The plurality of first air outlet portions 1020 are distributed along the circumference of the swirl portion 102 and communicate with the mounting cavity 108.

[0142] In this embodiment, the swirl section 102 is designed to be retractable relative to the base plate 100. The swirl section 102 has a cavity within it and a first air outlet 1020 on its sidewall for controlling the lateral rotation of the airflow. A second air outlet 1028 is provided on the front side of the swirl section 102 for transmitting air from the front. The retraction of the swirl section 102 achieves a wind-free airflow. When the first air outlet 1020 is extended, it operates in a lateral swirl airflow mode. The lateral swirls of adjacent swirl sections 102 collide at the intersection of the airflows, preventing the wind from blowing directly to further locations. The swirl airflow is softer and dissipates beyond a certain distance, achieving a wind-free airflow. When not in use, the first air outlet 1020 is closed, ensuring the overall aesthetics of the air dispersion assembly 10. The flexible retraction of the swirl section 102 enables multiple airflow modes: a 4D (four-dimensional) airflow mode and an axial 2D (two-dimensional) airflow mode. Compared with the related art that uses a grille to block the air outlet 2, the telescopic swirl portion 102 can effectively prevent the outer grille from affecting the effect of the lateral swirl, thereby improving the user experience.

[0143] Specifically, the first drive member 1040 drives the second drive member 1042, and the spiral member 1044 on the second drive member 1042 can drive the swirl portion 102 to extend and retract. When the first air outlet 1020 is open, at least a portion of the swirl portion 102 protrudes. In this state, air is discharged in four directions, specifically in two lateral directions and two front directions, which can both increase the air volume and achieve a windless feeling. When the first air outlet 1020 is closed, the swirl portion 102 will retract. In this state, the swirl portion 102 discharges air through the second air outlet 1028, achieving a front-side 2D (two-dimensional) air outlet mode.

[0144] Furthermore, if Figures 20 to 22 As shown, a spiral member 1044 is rotatably connected to the swirl unit 102. The spiral member 1044 is used to drive the swirl unit 102 to slide up and down along the axis of the second driving member 1042. The first driving member 1040 rotates the second driving member 1042, which in turn drives the spiral member 1044 to rotate, driving the swirl unit 102 to expand and contract, allowing the airflow to be blown out from the side of the first air outlet 1020, forming a lateral swirl. This design has a simple and reliable structure, reduces the failure rate, and improves assembly efficiency.

[0145] In the present invention, the term "plurality" refers to two or more, unless otherwise specified. Terms such as "mounted," "connected," "connected," and "fixed" should be interpreted broadly. For example, "connected" can refer to fixed, removable, or integral connections; and "connected" can refer to direct or indirect connections through an intermediary. Those skilled in the art will understand the specific meanings of these terms in the present invention based on specific circumstances.

[0146] Throughout this specification, terms such as "one embodiment," "some embodiments," and "specific embodiments" mean that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of the present invention. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.

[0147] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that various modifications and variations of the present invention are possible. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention are intended to be within the scope of protection of the present invention.

Claims

1. A wind dissipation component, characterized in that: include: a substrate, the substrate comprising a mounting cavity; At least one swirl portion is provided in the mounting cavity, at least a portion of the swirl portion is capable of protruding from the mounting cavity, a sidewall of the swirl portion is provided with a plurality of first air outlet portions, the plurality of first air outlet portions are distributed along the circumference of the swirl portion, and the first air outlet portions are in communication with the mounting cavity; The first air outlet portion can protrude from the installation cavity; The swirl portion is movably connected to the mounting cavity so that the swirl portion can switch between a first state and a second state. Wherein, in the first state, at least a portion of the swirl portion protrudes from the installation cavity, and in the second state, the swirl portion retracts into the installation cavity; Based on the fact that there are multiple swirl parts, the multiple swirl parts are arranged at intervals.

2. The wind dissipation assembly according to claim 1, characterized in that: Also includes: A driving member is connected to the swirl portion, and is used to drive the swirl portion to switch between the first state and the second state.

3. The wind dispersing assembly according to claim 2, characterized in that: The driving member includes: a first driving member connected to the substrate; a second driving member, rotatably connected to the first driving member; A spiral member is provided on the second driving member, and the spiral member is along the axis of the second driving member The direction is set, the spiral member is threadedly connected to the swirl part, the first driving member drives the second driving member to rotate, driving the spiral member to rotate, and the spiral member drives the swirl part to switch between the first state and the second state.

4. The wind dispersing assembly according to claim 3, characterized in that: The first driving member includes a rack, the second driving member includes a gear, or both the first driving member and the second driving member include a gear.

5. The wind dispersing assembly according to claim 3, characterized in that: A first limiting member is provided on the base plate, and a second limiting member is provided on the swirl portion. The first limiting member is slidably connected to the second limiting member to limit the rotation of the swirl portion.

6. The wind dispersing assembly according to any one of claims 1 to 5, characterized in that: The swirl portion includes: a housing, the housing being disposed in the mounting cavity, the first air outlet being disposed on a side wall of the housing; A plurality of guide plates are arranged in the shell, and the guide plates are arranged obliquely relative to the first air outlet.

7. The wind dispersing assembly according to claim 6, characterized in that: Along the circumference of the shell, any first air outlet includes a first end and a second end that are relatively arranged, and the guide plate includes a third end and a fourth end, the third end is connected to the first end, and the fourth end is inclined toward the second end relative to the first air outlet.

8. The wind dispersing assembly according to claim 7, characterized in that: The swirl portion further includes: A plurality of blades are arranged in the shell, the plurality of blades are distributed along the circumference of the shell, and the guide plates are arranged on the blades.

9. The wind dispersing assembly according to any one of claims 1 to 5, characterized in that: A second air outlet is provided on the top of the swirl portion, and the second air outlet is communicated with the installation cavity.

10. The wind dispersing assembly according to claim 9, characterized in that: Also includes: An air outlet grille is provided on the second air outlet portion.

11. The wind dispersing assembly according to claim 10, characterized in that: The air outlet grille includes a plurality of first air outlets and a plurality of second air outlets, and the air outlet directions of the first air outlets are different from the air outlet directions of the second air outlets.

12. The wind dispersing assembly according to claim 11, characterized in that: The plurality of first air dispersion outlets and the plurality of second air dispersion outlets are staggered.

13. An air conditioner indoor unit, characterized in that: include: The wind dispersing assembly according to any one of claims 1 to 12.

14. An air conditioner, characterized in that: include: The wind dispersing assembly according to any one of claims 1 to 12; or The air conditioner indoor unit according to claim 13.

Citation Information

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