Air guide component and air conditioner having the same

By designing a non-axially symmetric air guide plate structure and driving assembly in the air guide assembly, the air guide plate is axially symmetrical about the mid-perpendicular line, solving the problem of single air guide pattern and increasing the air supply mode and user experience of the air conditioner.

CN115479386BActive Publication Date: 2025-07-18GD MIDEA AIR CONDITIONING EQUIP CO LTD +1
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202110605286.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-05-31
Publication Date
2025-07-18
Estimated Expiration
2041-05-31

AI Technical Summary

Technical Problem

The existing air guide components have a single air guide mode and cannot meet the diverse needs of users.

Method used

The air guide assembly is designed so that the leading edge and trailing edge of the air guide plate are connected as strings, and the inner air guide surface and the outer air guide surface are not axially symmetrical about the strings, and the air guide plate is driven by the driving component to present a state of axis symmetrical about the middle perpendicular line, increasing the air guide mode.

Benefits of technology

It enriches the air guide mode of the air guide components, meets the different needs of users, and improves the air supply effect and user experience of the air conditioner.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115479386B_ABST
    Figure CN115479386B_ABST
Patent Text Reader

Abstract

The present invention discloses a wind guiding component and an air conditioner having the same. The wind guiding component includes: a wind guiding assembly, the wind guiding assembly includes two wind guiding plates, the length extending directions of the two wind guiding plates are the same and are the length extending direction of the wind guiding assembly, the two side edges of the width of each wind guiding plate are respectively a leading edge and a trailing edge, the two side surfaces of the thickness of each wind guiding plate are respectively an inner wind guiding surface and an outer wind guiding surface, in the cross-section of the wind guiding assembly, the connecting line of the leading edge and the trailing edge of each wind guiding plate is a chord line, and the inner wind guiding surface and the outer wind guiding surface of each wind guiding plate are arranged non-axisymmetrically with respect to the chord line; a driving assembly, the driving assembly drives the two wind guiding plates to rotate, the rotation axis of each wind guiding plate is parallel to the length extending direction of the wind guiding assembly, and in the cross-section of the wind guiding assembly, the driving assembly can drive the wind guiding assembly to present a state in which the two wind guiding plates are axisymmetric with respect to the vertical bisector. According to the wind guiding component of the present invention, it is beneficial to increase the wind guiding modes of the wind guiding component and can meet the different needs of users.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the field of air conditioning, in particular to an air guide component and an air conditioner having the same. Background Art

[0002] In the related art, the air guide component is designed inside the air outlet, and usually includes a plurality of air guide plates arranged in parallel. The plurality of air guide plates are connected by a connecting rod, and the motor drives the plurality of air guide plates to work in conjunction with each other through the connecting rod. The air guide component can only realize left and right or up and down swinging wind, and the air guide mode is single, which is not conducive to meeting the different needs of users. Summary of the invention

[0003] The present invention aims to solve at least one of the technical problems existing in the prior art. To this end, the present invention is to propose an air guide component, wherein a driving component can drive the air guide component to present a state in which two air guide plates are symmetrical about the mid-perpendicular axis, which is conducive to increasing the air guide modes of the air guide component and can meet different needs of users.

[0004] The present invention also provides an air conditioner having the above-mentioned air guide component.

[0005] According to the first aspect of the present invention, the wind guide component of the embodiment includes: a wind guide assembly, the wind guide assembly includes two wind guide plates, the length extension direction of the two wind guide plates is the same and is the length extension direction of the wind guide assembly, the width side edges of each wind guide plate are respectively the front edge and the rear edge, the thickness side surfaces of each wind guide plate are respectively the inner wind guide surface and the outer wind guide surface, on the cross section of the wind guide assembly, the line connecting the front edge and the rear edge of each wind guide plate is the chord line, and the inner wind guide surface and the outer wind guide surface of each wind guide plate are non-axisymmetrically arranged about the chord line; a driving assembly, the driving assembly drives the two wind guide plates to rotate, the rotation axis of each wind guide plate is parallel to the length extension direction of the wind guide assembly, and on the cross section of the wind guide assembly, a perpendicular midline of the line connecting the rotation axes of the two wind guide plates is made, and the driving assembly can drive the wind guide assembly to present a state in which the two wind guide plates are axially symmetrical about the perpendicular midline.

[0006] According to the wind guide component of the present invention, on the cross-section of the wind guide component, by making the line connecting the front edge and the rear edge of the wind guide plate a chord line, the inner wind guide surface and the outer wind guide surface of each wind guide plate are arranged non-axisymmetrically about the chord line, and the driving component can drive the wind guide component to present a state in which the two wind guide plates are axially symmetrical about the midline. This is conducive to increasing the wind guiding modes of the wind guide component and can meet the different needs of users.

[0007] In some embodiments of the present invention, the outer wind guide surface and the inner wind guide surface are respectively located on both sides of the chord line, and the outer wind guide surface protrudes in a direction away from the inner wind guide surface, and the inner wind guide surface protrudes in a direction away from the outer wind guide surface.

[0008] In some embodiments of the present invention, the perpendicular distance between the protruding high point of the outer air guiding surface and the chord line is H1, and the perpendicular distance between the protruding high point of the inner air guiding surface and the chord line is H2, and H1 is less than H2.

[0009] In some embodiments of the present invention, a first foot of perpendicular is obtained by drawing a perpendicular line from the protruding high point of the outer air guiding surface to the chord line, and a second foot of perpendicular is obtained by drawing a perpendicular line from the protruding high point of the inner air guiding surface to the chord line, and the second foot of perpendicular and the first foot of perpendicular are spaced apart along the extending direction of the chord line.

[0010] In some embodiments of the present invention, the inner air guiding surface protrudes towards the direction away from the outer air guiding surface, a second foot of perpendicular is obtained by drawing a perpendicular line from the protruding high point of the inner air guiding surface to the chord line, and along the extending direction of the chord line, the second foot of perpendicular is closer to the leading edge relative to the trailing edge.

[0011] In some embodiments of the present invention, the outer air guiding surface protrudes towards the direction away from the inner air guiding surface, a first foot of perpendicular is obtained by drawing a perpendicular line from the protruding high point of the outer air guiding surface to the chord line, and the first foot of perpendicular is located at the center of the chord line.

[0012] In some embodiments of the present invention, at least one of the inner air guiding surface and the outer air guiding surface is a smooth curved surface.

[0013] In some embodiments of the present invention, the driving assembly includes a driving motor and a linkage mechanism, and the driving motor drives the two air guiding plates to rotate synchronously and in opposite directions through the linkage mechanism.

[0014] In some embodiments of the present invention, the driving assembly includes two driving motors, and the two driving motors are respectively arranged corresponding to the two air guiding plates, so that each air guiding plate is independently driven by the corresponding driving motor.

[0015] The air conditioner according to the embodiment of the second aspect of the present invention includes: a body component, an air outlet is provided on a first surface of the body component; an air guiding component, the air guiding component is the air guiding component according to the embodiment of the first aspect of the present invention, and the air guiding assembly is arranged at the air outlet.

[0016] By providing the air guiding component of the above first aspect, the air conditioner according to the present invention is beneficial to increasing the air supply modes of the air conditioner and can meet different needs of users.

[0017] In some embodiments of the present invention, the driving assembly driving the air guiding assembly to present a state where the two air guiding plates are axisymmetric about the vertical center line includes: a first symmetric state, in which the leading edges of the two air guiding plates are close to each other and the trailing edges are far from each other, the outer air guiding surface is located outside the inner air guiding surface, the extending direction of the outer air guiding surface matches the profile line of the first surface at the air outlet, and a side air outlet gap is formed between the trailing edge of each air guiding plate and the corresponding side edge of the air outlet; a second symmetric state, in which the leading edges of the two air guiding plates are far from each other and the trailing edges are close to each other, the outer air guiding surface is located on the side away from the other air guiding plate of the inner air guiding surface, and a side air outlet gap is formed between the outer air guiding surface of each air guiding plate and the corresponding side edge of the air outlet; a third symmetric state, in which the leading edges of the two air guiding plates are close to each other and the trailing edges are far from each other, the inner air guiding surface is located on the side away from the other air guiding plate of the outer air guiding surface, and a side air outlet gap is formed between the inner air guiding surface of each air guiding plate and the corresponding side edge of the air outlet.

[0018] In some embodiments of the present invention, the driving assembly can also drive the air guiding assembly to present: a first spaced state, in which the inner air guiding surfaces of the two air guiding plates are spaced apart face to face to define an intermediate air outlet gap between the two inner air guiding surfaces, and a side air outlet gap is formed between the outer air guiding surface of each air guiding plate and the corresponding side edge of the air outlet; and / or a second spaced state, in which the outer air guiding surfaces of the two air guiding plates are spaced apart face to face to define an intermediate air outlet gap between the two outer air guiding surfaces, and a side air outlet gap is formed between the inner air guiding surface of each air guiding plate and the corresponding side edge of the air outlet.

[0019] Additional aspects and advantages of the present invention will be given in part in the following description, become apparent in part from the following description, or be learned through the practice of the present invention. Description of the Drawings

[0020] Figure 1 is a three-dimensional schematic diagram of an air conditioner according to an embodiment of the present invention;

[0021] Figure 2 is Figure 1 the front view schematic diagram of the air conditioner shown in

[0022] Figure 3 is Figure 2 the cross-sectional schematic diagram at A-A in

[0023] Figure 4 is Figure 3 the enlarged schematic diagram at B in

[0024] Figure 5 It is a schematic diagram of the operation of an air conditioner according to an embodiment of the present invention, where the air conditioner is in the wind-avoiding and person-blowing mode;

[0025] Figure 6 It is a schematic diagram of the operation of an air conditioner according to an embodiment of the present invention, where the air conditioner is in the long-distance surrounding blowing mode;

[0026] Figure 7 It is a schematic diagram of the operation of an air conditioner according to an embodiment of the present invention, where the air conditioner is in the short-distance surrounding blowing mode;

[0027] Figure 8 It is a three-dimensional schematic diagram of an air conditioner according to an embodiment of the present invention, where the air guide assembly presents a first spaced state;

[0028] Figure 9 is Figure 8 the front view schematic diagram;

[0029] Figure 10 is Figure 9 the sectional view schematic diagram at C-C in;

[0030] Figure 11 It is an installation schematic diagram of a panel bracket and a driving assembly according to an embodiment of the present invention;

[0031] Figure 12 is Figure 11 the exploded schematic diagram of the driving assembly in;

[0032] Figure 13 It is an installation schematic diagram of a panel bracket and a driving assembly according to another embodiment of the present invention;

[0033] Figure 14 It is a schematic diagram of the operation of an air conditioner according to another embodiment of the present invention, where the air guide component is in the three-stream left-sweeping state;

[0034] Figure 15 It is a schematic diagram of the operation of an air conditioner according to another embodiment of the present invention, where the air guide component is in the three-stream right-sweeping state.

[0035] Reference numerals:

[0036] Air conditioner 1000;

[0037] Air guide component 100;

[0038] Air guide assembly 10; air guide plate 11; inner air guide surface 111; outer air guide surface 112; side air outlet gap 13; middle air outlet gap 14;

[0039] Drive assembly 20; drive motor 21; linkage mechanism 22; first gear 221; second gear 222; box cover 23; box seat 24;

[0040] Body component 200; air outlet 201; panel bracket 202; left panel 203; right panel 204; display panel 205; lower decorative panel 206; rear housing 207; first surface 208;

[0041] Door opening and closing component 300;

[0042] Heat exchanger 401; cross-flow fan 402; wire mesh 403; louvers 404. Specific embodiments

[0043] Embodiments of the present invention will be described in detail below. Examples of the embodiments are shown in the drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by referring to the drawings are exemplary and are intended to explain the present invention and should not be construed as limiting the present invention.

[0044] The following disclosure provides many different embodiments or examples for implementing different structures of the present invention. To simplify the disclosure of the present invention, components and settings of specific examples are described below. Of course, they are merely examples and are not intended to limit the present invention. In addition, the present invention may repeat reference numerals and / or letters in different examples. This repetition is for the purpose of simplification and clarity and does not itself indicate the relationship between the various embodiments and / or settings discussed. In addition, the present invention provides examples of various specific processes and materials, but those of ordinary skill in the art can realize the applicability of other processes and / or the use of other materials.

[0045] Refer to Figure 1- Figure 3 As shown, the air guiding component 100 according to the first aspect embodiment of the present invention may include: an air guiding assembly 10 and a drive assembly 20. Among them, the air guiding component 100 can be used on a floor-standing air conditioner or a wall-mounted air conditioner. For example, refer to Figure 4 As shown, an air outlet 201 is provided on the body component 200, the drive assembly 20 is installed on the body component 200 of the air conditioner 1000, and the air guiding assembly 10 is provided at the air outlet 201.

[0046] Refer to Figure 3 and Figure 4 As shown, the air guiding assembly 10 includes two air guiding plates 11. The length extension directions of the two air guiding plates 11 are the same and are the length extension direction of the air guiding assembly 10. For example, the two air guiding plates 11 are respectively a first air guiding plate and a second air guiding plate, and the first air guiding plate and the second air guiding plate extend in the up and down directions and are arranged in the left and right directions.

[0047] Referring to Figure 3 and Figure 4 As shown, the widthwise edges on both sides of each air deflector 11 are the leading edge and the trailing edge respectively, and the surfaces on both sides of the thickness of each air deflector 11 are the inner air guiding surface 111 and the outer air guiding surface 112 respectively. In the cross-section of the air guiding assembly 10, the connecting line of the leading edge and the trailing edge of each air deflector 11 is the chord line, and the inner air guiding surface 111 and the outer air guiding surface 112 of each air deflector 11 are arranged non-axially symmetrically with respect to the chord line. Referring to the attached Figure 4 As shown, in the cross-section of the air guiding assembly 10, the leading edge of the first air deflector is M1, the trailing edge of the first air deflector is N1, the connecting line of the leading edge and the trailing edge of the first air deflector is the chord line M1N1, the inner air guiding surface 111 and the outer air guiding surface 112 of the first air deflector are arranged non-axially symmetrically with respect to the chord line M1N1, the leading edge of the second air deflector is M2, the trailing edge of the second air deflector is N2, the connecting line of the leading edge and the trailing edge of the second air deflector is the chord line M2N2, and the inner air guiding surface 111 and the outer air guiding surface 112 of the second air deflector are arranged non-axially symmetrically with respect to the chord line M2N2. Optionally, the cross-sectional shape of the air deflector 11 can be generally formed into a conical shape, a wedge shape, an elliptical shape or the like.

[0048] Referring to Figure 3 and Figure 4 As shown, the driving assembly 20 drives the two air deflectors 11 to rotate. The rotation axis of each air deflector 11 is parallel to the length extension direction of the air guiding assembly 10. In the cross-section of the air guiding assembly 10, draw the perpendicular bisector of the connecting line of the rotation axes of the two air deflectors 11. The driving assembly 20 can drive the air guiding assembly 10 to present a state in which the two air deflectors 11 are axially symmetric with respect to the perpendicular bisector. For example, the rotation axes of the first air deflector and the second air deflector both extend in the up-down direction. In the cross-section of the air guiding assembly 10, the rotation axis of the first air deflector is L1, the rotation axis of the second air deflector is L2, draw the perpendicular bisector K of the connecting line L1L2 of the first air deflector and the second air deflector, and the driving assembly 20 can drive the air guiding assembly 10 to present a state in which the first air deflector and the second air deflector are axially symmetric with respect to the perpendicular bisector axis K.

[0049] For example, referring to Figure 5 As shown, the driving assembly 20 driving the air guiding assembly 10 to present a state in which the two air deflectors 11 are axially symmetric with respect to the perpendicular bisector K may include: a first symmetric state, a second symmetric state and a third symmetric state. In the first symmetric state, the leading edge M1 of the first air deflector and the leading edge M2 of the second air deflector are close to each other, the trailing edge N1 of the first air deflector and the trailing edge N2 of the second air deflector are far from each other, the first air deflector and the second air deflector are flush, the outer air guiding surface 112 of each air deflector 11 is located outside the inner air guiding surface 111, air can be discharged from the left and right sides of the air guiding component 100, and no air is discharged directly in front of the air conditioner 1000. Thus, the functions of avoiding people with air or preventing direct blowing can be achieved;

[0050] Referring toFigure 6 As shown, in the second symmetric state, the leading edge M1 of the first air deflector and the leading edge M2 of the second air deflector are away from each other, the trailing edge N1 of the first air deflector and the trailing edge N2 of the second air deflector are close to each other, the included angle between the first air deflector and the second air deflector is an acute angle, and the outer air guiding surface 112 of each air deflector 11 is located on the side away from the other air deflector 11 of the inner air guiding surface 111, which is conducive to realizing long-distance air supply;

[0051] Referring to Figure 7 As shown, in the third symmetric state, the leading edge M1 of the first air deflector and the leading edge M2 of the second air deflector are close to each other, the trailing edge N1 of the first air deflector and the trailing edge N2 of the second air deflector are away from each other, the included angle between the first air deflector and the second air deflector is an obtuse angle, and the inner air guiding surface 111 of each air deflector 11 is located on the side away from the other air deflector 11 of the outer air guiding surface 112, which is conducive to realizing short-distance surrounding air supply.

[0052] In view of this, for the air deflector component 100 according to the present invention, on the cross-section of the air deflector assembly 10, by making the connecting line of the leading edge and the trailing edge of the air deflector 11 be the chord line, the inner air guiding surface 111 and the outer air guiding surface 112 of each air deflector 11 are non-axisymmetrically arranged with respect to the chord line, and the driving assembly 20 can drive the air deflector assembly 10 to present a state where the two air deflectors 11 are axisymmetric with respect to the vertical bisector. Therefore, it is beneficial to increase the air guiding modes of the air deflector component 100, which can meet different needs of users. At the same time, different air guiding effects can be obtained according to the shape design of the inner air guiding surface 111 and the outer air guiding surface 112.

[0053] In some embodiments of the present invention, referring to Figure 4 As shown, the outer air guiding surface 112 and the inner air guiding surface 111 are respectively located on both sides of the chord line, and the outer air guiding surface 112 protrudes in the direction away from the inner air guiding surface 111, and the inner air guiding surface 111 protrudes in the direction away from the outer air guiding surface 112. For example, the outer air guiding surface 112 and the inner air guiding surface 111 of the first air deflector are respectively located on both sides of the chord line M1N1, and the outer air guiding surface 112 protrudes in the direction away from the inner air guiding surface 111, and the inner air guiding surface 111 protrudes in the direction away from the outer air guiding surface 112; the outer air guiding surface 112 and the inner air guiding surface 111 of the second air deflector are respectively located on both sides of the chord line M2N2, and the outer air guiding surface 112 protrudes in the direction away from the inner air guiding surface 111, and the inner air guiding surface 111 protrudes in the direction away from the outer air guiding surface 112.

[0054] It can be understood that the shapes of the inner air guiding surface 111 and the outer air guiding surface 112 of the air guiding plate 11 are different, which can make the air guiding effects of the inner and outer air guiding surfaces 112 different, conducive to enriching the air guiding forms of the air guiding assembly 10. And by making the outer air guiding surface 112 of the air guiding plate 11 protrude towards the direction away from the inner air guiding surface 111, when the air guiding component 100 is installed on a circular cabinet air conditioner, the shape of the outer surface of the air guiding assembly 10 can be adapted to the shape of the appearance surface of the body component 200, which is conducive to improving the appearance aesthetics of the air conditioner 1000.

[0055] In some embodiments of the present invention, referring to Figure 4 as shown, the perpendicular distance between the protruding high point of the outer air guiding surface 112 and the chord line is H1, and the perpendicular distance between the protruding high point of the inner air guiding surface 111 and the chord line is H2, and H1 is less than H2. Thus, the air guiding effects of the inner air guiding surface 111 and the outer air guiding surface 112 of the air guiding plate 11 can be different, which is conducive to enriching the air guiding forms of the air guiding assembly 10. For example, the perpendicular distance between the protruding high point P1 of the outer air guiding surface 112 of the first air guiding plate and the chord line M1N1 is H1, and the perpendicular distance between the protruding high point P2 of the inner air guiding surface 111 and the chord line M1N1 is H2, and H1 is less than H2. The shape of the second air guiding plate is exactly the same as that of the first air guiding plate.

[0056] In some embodiments of the present invention, referring to Figure 4 as shown, a perpendicular line is drawn from the protruding high point of the outer air guiding surface 112 to the chord line to obtain the first foot of the perpendicular, and a perpendicular line is drawn from the protruding high point of the inner air guiding surface 111 to the chord line to obtain the second foot of the perpendicular. The second foot of the perpendicular and the first foot of the perpendicular are spaced apart along the extension direction of the chord line. Thus, the length of the air guiding surface available for the inner air guiding surface 111 of the air guiding plate 11 is greater than the length of the air guiding surface available for the outer air guiding surface 112, which is conducive to increasing the difference in air guiding between the inner air guiding surface 111 and the outer air guiding surface 112 of the air guiding plate 11. And in the second symmetric state (refer to Figure 7 ), the air flow flowing out from the air outlet 201 can be guided by the inner air guiding surface 111 towards the direction away from the other air guiding plate 11, which is conducive to increasing the air supply range of the air conditioner 1000 and ensuring the effect of long-distance surrounding air supply. And the inner air guiding surface 111 of the air guiding plate 11 has a smooth transition in the air flow direction, which is conducive to reducing the air outlet noise.

[0057] For example, as Figure 4 shown, a perpendicular line is drawn from the protruding high point P1 of the outer air guiding surface 112 of the first air guiding plate to the chord line M1N1 to obtain the first foot of the perpendicular S1, and a perpendicular line is drawn from the protruding high point P2 of the inner air guiding surface 111 to the chord line M1N1 to obtain the second foot of the perpendicular S2. The second foot of the perpendicular S1 and the first foot of the perpendicular S2 are spaced apart along the extension direction of the chord line M1N1.

[0058] In some embodiments of the present invention, referring to Figure 4As shown, the inner air guiding surface 111 protrudes towards the direction away from the outer air guiding surface 112. A perpendicular line is drawn from the protruding high point of the inner air guiding surface 111 to the chord line to obtain the second foot of the perpendicular. Along the extending direction of the chord line, the second foot of the perpendicular is closer to the leading edge relative to the trailing edge. Thus, the length of the air guiding surface between the leading edge and the protruding high point of the inner air guiding surface 111 of the air guiding plate 11 is different from the length of the air guiding surface between the protruding high point and the trailing edge of the inner air guiding surface 111, so that the air guiding effects of the air guiding surface between the leading edge and the protruding high point of the inner air guiding surface 111 of the air guiding plate 11 and the air guiding surface between the protruding high point and the trailing edge of the inner air guiding surface 111 are different. When the air guiding plate 11 rotates to different angles, the air guiding effect of the inner air guiding surface 111 of the air guiding plate 11 can be changed, which is beneficial to further enriching the air guiding forms of the air guiding component 100.

[0059] For example, as Figure 4 shown, the inner air guiding surface 111 of the first air guiding plate protrudes towards the direction away from the outer air guiding surface 112. A perpendicular line is drawn from the protruding high point P2 of the inner air guiding surface 111 to M1N1 to obtain the second foot of the perpendicular S2. Along the extending direction of the chord line M1N1, the second foot of the perpendicular S2 is closer to the leading edge M1 relative to the trailing edge N1. Thus, the length of the air guiding surface between the leading edge M1 and the protruding high point P2 of the inner air guiding surface 111 of the first air guiding plate is different from the length of the air guiding surface between the protruding high point P2 and the trailing edge N1 of the inner air guiding surface 111, so that the air guiding effects of the air guiding surface between the leading edge M1 and the protruding high point P2 of the inner air guiding surface 111 of the air guiding plate 11 and the air guiding surface between the protruding high point P2 and the trailing edge N1 of the inner air guiding surface 111 are different. When the air guiding plate 11 rotates to different angles, the air guiding effect of the inner air guiding surface 111 of the air guiding plate 11 can be changed, which is beneficial to further enriching the air guiding forms of the air guiding component 100.

[0060] In some embodiments of the present invention, referring to Figure 4 shown, the outer air guiding surface 112 protrudes towards the direction away from the inner air guiding surface 111. A perpendicular line is drawn from the protruding high point of the outer air guiding surface 112 to the chord line to obtain the first foot of the perpendicular, and the first foot of the perpendicular is located at the center of the chord line. For example, the outer air guiding surface 112 of the first air guiding plate protrudes towards the direction away from the inner air guiding surface 111. A perpendicular line is drawn from the protruding high point of the outer air guiding surface 112 to the chord line M1N1 to obtain the first foot of the perpendicular S1, and the first foot of the perpendicular S1 is located at the center of the chord line M1N1. Thus, the shape of the outer air guiding surface 112 can approach an arc shape. When the air guiding component 100 is installed on a circular cabinet air conditioner, the shape of the outer surface of the air guiding component 10 can be adapted to the shape of the appearance surface of the body component 200, which is beneficial to improving the appearance aesthetics of the air conditioner 1000. At the same time, the shape is simple, which is beneficial to reducing the production cost.

[0061] In some embodiments of the present invention, referring to Figure 4As shown, at least one of the inner air guiding surface 111 and the outer air guiding surface 112 is a smooth surface. In other words, the inner air guiding surface 111 is a smooth surface, or the outer air guiding surface 112 is a smooth surface, or both the inner air guiding surface 111 and the outer air guiding surface 112 are smooth surfaces. It can be understood that by making at least one of the inner air guiding surface 111 and the outer air guiding surface 112 a smooth surface, when the air guiding plate 11 guides air, it is beneficial to reduce air resistance and lower the air outlet noise.

[0062] In some embodiments of the present invention, referring to Figures 11 - 12 As shown, the driving assembly 20 includes a driving motor 21 and a linkage mechanism 22. The driving motor 21 drives the two air guiding plates 11 to rotate synchronously and in opposite directions through the linkage mechanism 22. For example, when the driving motor 21 operates, the linkage mechanism 22 drives the first air guiding plate and the second air guiding plate to rotate synchronously, and the rotation directions of the first air guiding plate and the second air guiding plate are opposite. It can be understood that the driving motor 21 drives the two air guiding plates 11 to rotate synchronously and in opposite directions through the linkage mechanism 22, which facilitates the switching of the two air guiding plates 11 between the first symmetric state, the second symmetric state, and the third symmetric state. Moreover, the two air guiding plates 11 share the driving motor 21, resulting in low production costs and simple control.

[0063] For example, referring to Figures 11 - 12 As shown, the driving assembly 20 further includes a box cover 23 and a box seat 24. The linkage mechanism 22 includes a first gear 221 and a second gear 222. The box cover 23 and the box seat 24 define an installation space. The first gear 221 and the second gear 222 are arranged in the installation space. The motor shaft of the driving motor 21 passes through the box cover 23 and is connected to the first gear 221. The first gear 221 and the second gear 222 are externally meshed. The first gear 221 is connected to the first air guiding plate to drive the first air guiding plate to rotate, and the second gear 222 is connected to the second air guiding plate to drive the second air guiding plate to rotate.

[0064] In some embodiments of the present invention, referring to Figure 13 As shown, the driving assembly 20 includes two driving motors 21. The two driving motors 21 are respectively arranged corresponding to the two air guiding plates 11, so that each air guiding plate 11 is individually driven by the corresponding driving motor 21. For example, the two driving motors 21 can be respectively arranged above the first air guiding plate and the second air guiding plate. The driving motor 21 located on the left drives the first air guiding plate to rotate alone, and the driving motor 21 located on the right drives the second air guiding plate to rotate alone. Thus, by making each air guiding plate 11 be individually driven by the corresponding driving motor 21, the two air guiding plates 11 can not only be switched between the first symmetric state, the second symmetric state, and the third symmetric state, but also be switched to an asymmetric state, such as the three - flow left - sweeping state referring to Figure 14 and the three - flow right - sweeping state referring to Figure 15 ​

[0065] Referring to Figures 1 - 4 as shown, the air conditioner 1000 according to the embodiment of the second aspect of the present invention includes: a body component 200 and a wind guiding component 100. An air outlet 201 is provided on the first surface 208 of the body component 200. The wind guiding component 100 is the wind guiding component 100 according to the embodiment of the first aspect of the present invention. A wind guiding assembly 10 is arranged at the air outlet 201, and a driving component is connected to the body component 200.

[0066] For example, the air conditioner 1000 is a floor-standing air conditioner. The body component 200 is formed in a cylindrical shape and includes the body component 200, the wind guiding component 100, and a switch door component 300. The body component 200 is formed in a cylindrical shape and includes a lower decorative panel 206, a left panel 203, a right panel 204, a display panel 205, a panel support 202, and a rear housing 207. The lower decorative panel 206, the left panel 203, the right panel 204, the display panel 205, and the rear housing 207 define an installation space with an open front end. The panel support 202 is arranged in the installation space. An air outlet 201 is provided on the first surface 208 of the panel support 202. The air outlet 201 extends vertically and is located at the center of the front side of the body component 200. The wind guiding component 100 includes a wind guiding assembly 10 and a driving assembly 20. The wind guiding assembly 10 is arranged at the air outlet 201, and the driving assembly 20 is installed on the panel support 202 and is located above the air outlet 201. The switch door component 300 is slidably arranged at the air outlet 201 to open or close the air outlet 201. Each air guiding plate 11 extends vertically and two air guiding plates 11 are arranged in sequence horizontally. It can be understood that by arranging the wind guiding component 100 of the above first aspect, it is beneficial to increase the air supply modes of the air conditioner 1000 and can meet the different needs of users.

[0067] In some embodiments of the present invention, referring to Figures 5 - 7 as shown, the driving assembly 20 driving the wind guiding assembly 10 to present a state where two air guiding plates 11 are axisymmetric about the vertical bisector includes a first symmetric state, a second symmetric state, and a third symmetric state. Referring to Figure 5 as shown, in the first symmetric state, the leading edges of the two air guiding plates 11 are close to each other, and the trailing edges are far from each other. The outer air guiding surface 112 is located outside the inner air guiding surface 111. The extending direction of the outer air guiding surface 112 matches the profile line of the first surface 208 at the air outlet 201. A side air outlet gap 13 is formed between the trailing edge of each air guiding plate 11 and the corresponding side edge of the air outlet 201. Thus, the air flow flowing out of the air conditioner 1000 can blow out through the two side air outlet gaps 13, and the functions of avoiding people and preventing direct blowing can be realized. The air flow can be prevented from directly blowing on the user, which is beneficial to improving the user experience.

[0068] For example, as Figure 5As shown, in the first symmetric state, the leading edge M1 of the first air deflector and the leading edge M2 of the second air deflector are close to each other, the trailing edge N1 of the first air deflector and the trailing edge N2 of the second air deflector are far from each other, and the angle between the first air deflector and the second air deflector is approximately 180°. Specifically, the angle between the first air deflector and the second air deflector can be 175°, 176°, 177°, 178°, 179°, 180°, 181°, 182°, 183°, 184°, 185°, etc. The outer air guiding surfaces 112 of the first air deflector and the second air deflector are located outside the inner air guiding surfaces 111. A side air outlet gap 13 on the left is formed between the trailing edge N1 of the first air deflector and the corresponding side of the air outlet 201, and a side air outlet gap 13 on the right is formed between the trailing edge N2 of the second air deflector and the corresponding side of the air outlet 201. Optionally, a seal is provided at one end where the first air deflector and the second air deflector are close to each other. In the first symmetric state, the seal is sealingly fitted between the first air deflector and the second air deflector, which is beneficial to ensuring the effect of avoiding the wind from hitting people in the second symmetric state.

[0069] Referring to Figure 6 As shown, in the second symmetric state, the leading edges of the two air deflectors 11 are far from each other and the trailing edges are close to each other. The outer air guiding surfaces 112 are located on the side away from the other air deflector 11 of the inner air guiding surfaces 111. A side air outlet gap 13 is formed between the outer air guiding surface 112 of each air deflector 11 and the corresponding side of the air outlet 201. For example, as Figure 6 As shown, in the second symmetric state, the leading edge M1 of the first air deflector and the leading edge M2 of the second air deflector are far from each other, the trailing edge N1 of the first air deflector and the trailing edge N2 of the second air deflector are in contact with each other, and the angle between the first air deflector and the second air deflector is an acute angle. The outer air guiding surface 112 of each air deflector 11 is located on the side away from the other air deflector 11 of the inner air guiding surface 111. A side air outlet gap 13 on the left is formed between the outer air guiding surface 112 of the first air deflector and the corresponding side of the air outlet 201, and a side air outlet gap 13 on the right is formed between the outer air guiding surface 112 of the second air deflector and the corresponding side of the air outlet 201. It can be understood that the air flow flowing out of the air conditioner 1000 exits through the two side air outlet gaps 13. The air guiding assembly 10 divides the air flow so that the angle between the flowing direction of the air flow flowing out of the side air outlet 201 and the front-rear direction is less than 45°, which is beneficial to achieving long-distance air outlet, preventing the air flow from directly blowing on the user in front of the air conditioner 1000, and ensuring the air volume.

[0070] Referring to Figure 7As shown, in the third symmetric state, the leading edges of the two air deflector plates 11 are close to each other, and the trailing edges are far from each other. The inner air guiding surface 111 is located on the side of the outer air guiding surface 112 away from the other air deflector plate 11. A side air outlet gap 13 is formed between the inner air guiding surface 111 of each air deflector plate 11 and the corresponding side edge of the air outlet 201. For example, in the third symmetric state, the leading edge M1 of the first air deflector plate and the leading edge M2 of the second air deflector plate are in contact with each other, the trailing edge N1 of the first air deflector plate and the trailing edge N2 of the second air deflector plate are far from each other. The included angle between the first air deflector plate and the second air deflector plate is an obtuse angle. The inner air guiding surfaces 111 of the first air deflector plate and the second air deflector plate are located on the side of the outer air guiding surface 112 away from the other air deflector plate 11. The air guiding assembly 10 divides the air flow so that the included angle between the flowing direction of the air flow flowing out from the side air outlet 201 and the front-back direction is greater than 45°, enabling close-range surrounding air supply, which is beneficial for the air flow to flow circumferentially along the walls of the room, beneficial for reducing the wind feeling, effectively preventing the effect of cold or hot air blowing directly, and also ensuring large air volume for cooling and heating. Compared with the traditional method of opening micro-holes on the air deflector plate to use the no-wind feeling function to prevent cold and hot air from blowing directly, the present invention has the characteristics of large air volume, high energy efficiency ratio, good temperature uniformity in all parts of the room, and good comfort.

[0071] In some embodiments of the present invention, referring to Figures 8 - 10 As shown, the driving assembly 20 can also drive the air guiding assembly 10 to present: a first spaced state. In the first spaced state, the inner air guiding surfaces 111 of the two air deflector plates 11 are spaced apart face to face to define an intermediate air outlet gap 14 between the two inner air guiding surfaces 111. A side air outlet gap 13 is formed between the outer air guiding surface 112 of each air deflector plate 11 and the corresponding side edge of the air outlet 201. For example, in the first spaced state, the inner air guiding surfaces 111 of the first air deflector plate and the second air deflector plate are spaced apart face to face to define an intermediate air outlet gap 14 between the inner air guiding surface 111 of the first air deflector plate and the inner air guiding surface 111 of the second air deflector plate. A side air outlet gap 13 located on the left is formed between the outer air guiding surface 112 of the first air deflector plate and the corresponding side edge of the air outlet 201, and a side air outlet gap 13 located on the right is formed between the outer air guiding surface 112 of the second air deflector plate and the corresponding side edge of the air outlet 201. It can be understood that the air flow can flow out from the intermediate air outlet gap 14 and the two side air outlet gaps 13 respectively, thus realizing three-air-outlet air supply. And when the two air deflector plates 11 are respectively driven by independent driving motors 21, the two air deflector plates 11 can also continuously swing left and right synchronously, realizing left and right air sweeping (referring to Figure 14 and Figure 15 ), which is beneficial for solving the problems of air sweeping dead angles and intermittent air blowing.

[0072] And / or, a second spaced state, in which the outer air guiding surfaces 112 of the two air guiding plates 11 are spaced apart face to face to define an intermediate air outlet gap 14 between the two outer air guiding surfaces 112, and a side air outlet gap 13 is formed between the inner air guiding surface 111 of each air guiding plate 11 and the corresponding side of the air outlet 201. For example, in the second spaced state, the outer air guiding surfaces 112 of the first air guiding plate and the second air guiding plate are spaced apart face to face to define an intermediate air outlet gap 14 between the inner air guiding surface 111 of the first air guiding plate and the outer air guiding surface 112 of the second air guiding plate, and a side air outlet gap 13 located on the left is formed between the inner air guiding surface 111 of the first air guiding plate and the corresponding side of the air outlet 201, and a side air outlet gap 13 located on the right is formed between the inner air guiding surface 111 of the second air guiding plate and the corresponding side of the air outlet 201. It can be understood that the air flow can flow out from the intermediate air outlet gap 14 and the two side air outlet gaps 13 respectively, so as to realize three-air-outlet air supply. When the two air guiding plates 11 are respectively driven by independent driving motors 21, the two air guiding plates 11 can also continuously and synchronously swing left and right, and can realize left and right air sweeping (refer to Figure 14 and Figure 15 ), which is beneficial to solving the problems of air sweeping dead angles and intermittent air blowing.

[0073] The following will refer to the accompanying drawings to detail the specific structures of the air guiding component 100 and the air conditioner 1000 of the present invention. Of course, it can be understood that the following description is intended to explain the present invention and cannot be used as a limitation to the present invention.

[0074] Referring to Figures 1 - 12 as shown, the air conditioner 1000 is an air conditioner cabinet, including: a body component 200, an air guiding component 100 and a switch door component 300. The body component 200 is formed in a cylindrical shape and includes a lower decorative panel 206, a left panel 203, a right panel 204, a display panel 205, a panel bracket 202 and a rear housing 207. The lower decorative panel 206, the left panel 203, the right panel 204, the display panel 205 and the rear housing 207 define an installation space with an open front end. The panel bracket 202 is arranged in the installation space. An air outlet 201 is provided on the first surface 208 of the panel bracket 202. The air outlet 201 extends vertically and is located at the front center of the body component 200. The air guiding component 100 includes an air guiding assembly 10 and a driving component. The air guiding assembly 10 is arranged at the air outlet 201. The driving assembly 20 is installed on the panel bracket 202 and is located above the air outlet 201. The switch door component 300 is movably arranged at the air outlet 201 to open or close the air outlet 201.

[0075] Referring to Figure 3 and Figure 4As shown, the air guiding assembly 10 includes two air guiding plates 11, which are respectively a first air guiding plate and a second air guiding plate. The first air guiding plate and the second air guiding plate extend in the up and down direction and are arranged in the left and right direction respectively. The upper and lower ends of the first air guiding plate and the second air guiding plate are respectively rotatably connected to the body component 200. The two side edges of the width of each air guiding plate 11 are respectively a leading edge and a trailing edge, and the two side surfaces of the thickness of each air guiding plate 11 are respectively an inner air guiding surface 111 and an outer air guiding surface 112.

[0076] Referring to Figure 4 As shown, in the cross-section of the air guiding assembly 10, the leading edge of the first air guiding plate is M1, the trailing edge is N1, and the connecting line between the leading edge and the trailing edge of the first air guiding plate is the chord line M1N1. The inner air guiding surface 111 and the outer air guiding surface 112 of the first air guiding plate are non-axisymmetrically arranged with respect to the chord line M1N1. The leading edge of the second air guiding plate is M2, the trailing edge is N2, and the connecting line between the leading edge and the trailing edge of the second air guiding plate is the chord line M2N2. The inner air guiding surface 111 and the outer air guiding surface 112 of the second air guiding plate are non-axisymmetrically arranged with respect to the chord line M2N2.

[0077] Referring to Figure 4 As shown, the driving assembly 20 drives the first air guiding plate and the second air guiding plate to rotate. The rotation axes of the first air guiding plate and the second air guiding plate both extend in the up and down direction. In the cross-section of the air guiding assembly 10, the rotation axis of the first air guiding plate is L1, and the rotation axis of the second air guiding plate is L2. Draw the perpendicular bisector K of the connecting line L1L2 of the first air guiding plate and the second air guiding plate. The driving assembly 20 can drive the air guiding assembly 10 to present a state where the first air guiding plate and the second air guiding plate are symmetric about the perpendicular bisector axis K.

[0078] Specifically, the structures and shapes of the first air guiding plate and the second air guiding plate are exactly the same. Here, the shape of the air guiding plate 11 is described taking the first air guiding plate on the left side as an example.

[0079] Referring to Figure 4 As shown, both the outer air guiding surface 112 and the inner air guiding surface 111 of the first air guiding plate are formed as smooth curved surfaces. The outer air guiding surface 112 and the inner air guiding surface 111 are respectively located on both sides of the chord line M1N1, and the inner air guiding surface 111 bulges towards the direction away from the outer air guiding surface 112. The perpendicular distance between the protruding high point P1 of the outer air guiding surface 112 of the first air guiding plate and the chord line M1N1 is H1, and the perpendicular distance between the protruding high point P2 of the inner air guiding surface 111 and the chord line M1N1 is H2, and H1 is less than H2.

[0080] Referring to Figure 4As shown in the figure, a perpendicular line is drawn from the protruding high point P1 of the outer air guiding surface 112 of the first air guiding plate to the chord line M1N1 to obtain the first foot of the perpendicular S1, and a perpendicular line is drawn from the protruding high point P2 of the inner air guiding surface 111 to the chord line M1N1 to obtain the second foot of the perpendicular S2. The first foot of the perpendicular S1 is located at the center of the chord line M1N1, and the second foot of the perpendicular S2 is closer to the leading edge M1 than to the trailing edge N1.

[0081] Referring to Figure 11 and Figure 12 As shown in the figure, the drive assembly 20 includes a drive motor 21, a linkage mechanism 22, a box cover 23 and a box seat 24. The drive motor 21 drives the two air guiding plates 11 to rotate synchronously and in opposite directions through the linkage mechanism 22. Specifically, the linkage mechanism 22 includes a first gear 221 and a second gear 222. The box cover 23 and the box seat 24 define an installation space. The first gear 221 and the second gear 222 are arranged in the installation space. The motor shaft of the drive motor 21 passes through the box cover 23 and is connected to the first gear 221. The first gear 221 and the second gear 222 are externally meshed. The first gear 221 is connected to the first air guiding plate to drive the first air guiding plate to rotate, and the second gear 222 is connected to the second air guiding plate to drive the second air guiding plate to rotate.

[0082] The drive assembly 20 drives the air guiding assembly 10 to present a state in which the first air guiding plate and the second air guiding plate are axisymmetric about the perpendicular bisector, including a first symmetric state, a second symmetric state, a third symmetric state and a first interval state.

[0083] Referring to Figure 5 As shown in the figure, in the first symmetric state, the leading edge M1 of the first air guiding plate and the leading edge M2 of the second air guiding plate are close to each other, the trailing edge N1 of the first air guiding plate and the trailing edge N2 of the second air guiding plate are far from each other. The included angle between the first air guiding plate and the second air guiding plate is 180°. The outer air guiding surfaces 112 of the first air guiding plate and the second air guiding plate are located outside the inner air guiding surfaces 111. A side air outlet gap 13 is formed between the trailing edge N1 of the first air guiding plate and the corresponding side edge of the air outlet 201 on the left side, and a side air outlet gap 13 is formed between the trailing edge N2 of the second air guiding plate and the corresponding side edge of the air outlet 201 on the right side;

[0084] Referring to Figure 6As shown, in the second symmetric state, the leading edge M1 of the first air deflector and the leading edge M2 of the second air deflector are away from each other, the trailing edge N1 of the first air deflector and the trailing edge N2 of the second air deflector are close to each other, the included angle between the first air deflector and the second air deflector is an acute angle, the outer air guiding surfaces 112 of the first air deflector and the second air deflector are located on the side away from the other air deflector 11 of the inner air guiding surface 111, a side air outlet gap 13 is formed between the outer air guiding surface 112 of the first air deflector and the corresponding side edge of the air outlet 201 on the left side, a side air outlet gap 13 is formed between the outer air guiding surface 112 of the second air deflector and the corresponding side edge of the air outlet 201 on the right side, and the air guiding assembly 10 divides the air flow so that the included angle between the flowing direction of the air flow flowing out from the side air outlet 201 and the front-back direction is less than 45°;

[0085] Referring to Figure 7 As shown, in the third symmetric state, the leading edge M1 of the first air deflector and the leading edge M2 of the second air deflector are close to each other, the trailing edge N1 of the first air deflector and the trailing edge N2 of the second air deflector are away from each other, the included angle between the first air deflector and the second air deflector is an obtuse angle, the inner air guiding surfaces 111 of the first air deflector and the second air deflector are located on the side away from the other air deflector 11 of the outer air guiding surface 112, and the air guiding assembly 10 divides the air flow so that the included angle between the flowing direction of the air flow flowing out from the side air outlet 201 and the front-back direction is greater than 45°, and short-distance surrounding air supply can be realized.

[0086] Referring to Figure 10 As shown, in the first spaced state, the inner air guiding surfaces 111 of the first air deflector and the second air deflector are spaced apart face to face to define an intermediate air outlet gap 14 between the inner air guiding surface 111 of the first air deflector and the inner air guiding surface 111 of the second air deflector. A side air outlet gap 13 is formed between the outer air guiding surface 112 of the first air deflector and the corresponding side edge of the air outlet 201 on the left side, and a side air outlet gap 13 is formed between the outer air guiding surface 112 of the second air deflector and the corresponding side edge of the air outlet 201 on the right side.

[0087] Specifically, referring to Figures 1 - 4 As shown, when the switch door closes the air outlet 201 and the air guiding assembly 10 presents the first symmetric state, the air conditioner 1000 is in the shutdown state; referring to Figure 5 As shown, when the switch door component 300 opens the air outlet 201 and the air guiding assembly 10 presents the first symmetric state, the air conditioner 1000 is in the air-avoiding-human mode. The air flow flowing out of the air conditioner 1000 can blow out through the two side air outlet gaps 13, and the functions of air-avoiding-human or preventing direct blowing can be realized, the air flow can be prevented from directly blowing on the user, which is beneficial to improving the user experience;

[0088] Referring to Figure 6As shown, the door opening / closing component 300 opens the air outlet 201, the air guiding assembly 10 presents a second symmetrical state, the air flow flowing out of the air conditioner 1000 blows out through the two side air outlet gaps 13, and the air guiding assembly 10 divides the air flow so that the included angle between the flowing direction of the air flow flowing out of the side air outlet 201 and the front-back direction is less than 45°. The air conditioner 1000 is in the long-distance air outlet mode, which can prevent the air flow from directly blowing on the user in front of the air conditioner 1000 and ensure the air volume.

[0089] Referring to Figure 7 As shown, the door opening / closing component 300 opens the air outlet 201, the air guiding assembly 10 presents a third symmetrical state, and the air guiding assembly 10 divides the air flow so that the included angle between the flowing direction of the air flow flowing out of the side air outlet 201 and the front-back direction is greater than 45°. The air conditioner 1000 is in the short-distance surrounding air supply mode, which is beneficial to make the air flow flow circumferentially along the walls of the room, beneficial to reducing the wind feeling, and can effectively prevent the effect of cold air or hot air from directly blowing.

[0090] Referring to Figure 10 As shown, the door opening / closing component 300 opens the air outlet 201, the air guiding assembly 10 presents a first spaced state, and the air flow can flow out from the middle air outlet gap 14 and the two side air outlet gaps 13 respectively. The air conditioner 1000 is in the three-air-flow air outlet mode.

[0091] Thus, for the air conditioner 1000 according to the embodiment of the present invention, by rotating and adjusting the combination and positional relationship of the two air guiding plates 11, the number of air outlets 201 can be changed, and the switching between a single air outlet 201, two air outlets 201, and three air outlets 201 can be realized. Correspondingly, the air outlet modes of one air flow, two air flows, and three air flows are realized. Among them, for the two air flows, by controlling the different combined positions of the air guiding plates 11, the double-air-flow long-distance surrounding air supply and short-distance surrounding air supply are realized. When the two air guiding plates 11 are flush and laid flat at the air outlet 201, the function of avoiding people with the air blowing to the left and right sides at a large angle can be realized, which has the characteristics of simple structure, good air guiding effect, good comfort, good anti-direct-blowing effect, high reliability, and low cost.

[0092] In some other examples, referring to Figure 14 and Figure 15As shown, this example is generally the same as the above-described embodiment, and the same components are denoted by the same reference numerals. The difference lies only in that: the driving assembly 20 includes two driving motors 21, and the two driving motors 21 are respectively arranged corresponding to the two air guide plates 11, so that each air guide plate 11 is individually driven by the corresponding driving motor 21. Thus, by individually driving each air guide plate 11 by the corresponding driving motor 21, the two air guide plates 11 can not only switch between the first symmetric state, the second symmetric state, the third symmetric state, and the first interval state, but also switch to an asymmetric state. The two air guide plates 11 can also continuously swing left and right synchronously, realizing left and right air sweeping, which is beneficial to solving the problems of air sweeping dead angles and intermittent air blowing.

[0093] Other components of the air conditioner 1000 according to the embodiments of the present invention, such as components like the heat exchanger 401, the cross-flow fan 402, the wire mesh 403, and the louvers 404, as well as operations, are known to those of ordinary skill in the art and will not be described in detail here.

[0094] In the description of the present invention, it should be understood that the orientation or positional relationships indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. are based on the orientation or positional relationships shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation on the present invention.

[0095] In addition, the terms "first" and "second" are only used for descriptive purposes and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present invention, "a plurality" means two or more, unless otherwise specifically defined.

[0096] In the present invention, unless otherwise clearly specified and limited, the terms "mounted", "connected", "connected to", "fixed", etc. should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may be a mechanical connection, an electrical connection, or a communication connection; it may be directly connected, or indirectly connected through an intermediate medium, and it may be the internal communication of two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0097] In the present invention, unless otherwise clearly specified or limited, the first feature being "on" or "under" the second feature may mean that the first and second features are in direct contact, or the first and second features are indirectly in contact through an intermediate medium. Also, the first feature being "above", "over" and "on top of" the second feature may mean that the first feature is directly above or obliquely above the second feature, or simply means that the horizontal height of the first feature is higher than that of the second feature. The first feature being "under", "below" and "beneath" the second feature may mean that the first feature is directly below or obliquely below the second feature, or simply means that the horizontal height of the first feature is less than that of the second feature.

[0098] In the description of this specification, the description with reference to terms such as "one embodiment", "some embodiments", "example", "specific example", or "some examples" etc. means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in a suitable manner in any one or more embodiments or examples. In addition, without contradiction, those skilled in the art can combine and combine the different embodiments or examples described in this specification and the features of different embodiments or examples.

[0099] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the claims and their equivalents.

Claims

1. An air guiding component for an air conditioner, the air conditioner comprising: The body component has an air outlet on its first surface, and is characterized by including: An air guiding assembly, the air guiding assembly includes two air guiding plates, the length extension directions of the two air guiding plates are the same and are the length extension direction of the air guiding assembly. The two side edges of the width of each air guiding plate are respectively a leading edge and a trailing edge, and the two side surfaces of the thickness of each air guiding plate are respectively an inner air guiding surface and an outer air guiding surface. In the cross-section of the air guiding assembly, the connecting line between the leading edge and the trailing edge of each air guiding plate is a chord line, and the inner air guiding surface and the outer air guiding surface of each air guiding plate are non-axially symmetrically arranged with respect to the chord line; A driving assembly, the driving assembly drives the two air guiding plates to rotate, the rotation axis of each air guiding plate is parallel to the length extension direction of the air guiding assembly. In the cross-section of the air guiding assembly, make a perpendicular bisector of the connecting line of the rotation axes of the two air guiding plates, and the driving assembly can drive the air guiding assembly to present a state where the two air guiding plates are axially symmetric with respect to the perpendicular bisector; The driving assembly drives the air guiding assembly to present a state where the two air guiding plates are axially symmetric with respect to the perpendicular bisector, including: The first symmetric state. In the first symmetric state, the leading edges of the two air guiding plates are close to each other, and the trailing edges are far from each other. The outer air guiding surface is located outside the inner air guiding surface, the extension direction of the outer air guiding surface matches the profile line of the first surface at the air outlet, and a side air outlet gap is formed between the trailing edge of each air guiding plate and the corresponding side edge of the air outlet; The second symmetric state. In the second symmetric state, the leading edges of the two air guiding plates are far from each other, and the trailing edges are close to each other. The outer air guiding surface is located on the side away from the other air guiding plate of the inner air guiding surface, and a side air outlet gap is formed between the outer air guiding surface of each air guiding plate and the corresponding side edge of the air outlet; The third symmetric state. In the third symmetric state, the leading edges of the two air guiding plates are close to each other, and the trailing edges are far from each other. The inner air guiding surface is located on the side away from the other air guiding plate of the outer air guiding surface, and a side air outlet gap is formed between the inner air guiding surface of each air guiding plate and the corresponding side edge of the air outlet.

2. The air guiding component according to claim 1, wherein The outer air guiding surface and the inner air guiding surface are respectively located on both sides of the chord line, and the outer air guiding surface protrudes in the direction away from the inner air guiding surface, and the inner air guiding surface protrudes in the direction away from the outer air guiding surface.

3. The air guiding component according to claim 2, wherein, The perpendicular distance between the protruding high point of the outer air guiding surface and the chord line is H1, and the perpendicular distance between the protruding high point of the inner air guiding surface and the chord line is H2, and H1 is less than H2.

4. The air guiding component according to claim 2, characterized in that, Make a perpendicular line from the protruding high point of the outer air guiding surface to the chord line to obtain a first foot of the perpendicular, and make a perpendicular line from the protruding high point of the inner air guiding surface to the chord line to obtain a second foot of the perpendicular. The second foot of the perpendicular and the first foot of the perpendicular are spaced apart along the extension direction of the chord line.

5. The air guiding component according to claim 1, characterized in that, The inner air guiding surface protrudes in the direction away from the outer air guiding surface. Make a perpendicular line from the protruding high point of the inner air guiding surface to the chord line to obtain a second foot of the perpendicular. Along the extension direction of the chord line, the second foot of the perpendicular is closer to the leading edge relative to the trailing edge.

6. The air guiding component according to claim 1, wherein The outer air guiding surface protrudes in a direction away from the inner air guiding surface. A perpendicular line is drawn from the protruding high point of the outer air guiding surface to the chord line to obtain a first foot of the perpendicular, and the first foot of the perpendicular is located at the center of the chord line.

7. The air guiding component according to claim 1, characterized in that, At least one of the inner air guiding surface and the outer air guiding surface is a smooth curved surface.

8. The air guiding component according to any one of claims 1-7, characterized in that, The driving assembly includes a driving motor and a linkage mechanism, and the driving motor drives the two air guiding plates to rotate synchronously and in opposite directions through the linkage mechanism.

9. The air guiding component according to any one of claims 1-7, characterized in that, The driving assembly includes two driving motors, and the two driving motors are respectively arranged corresponding to the two air guiding plates, so that each air guiding plate is independently driven by the corresponding driving motor.

10. An air conditioner, characterized in that it includes: A body component, an air outlet is provided on a first surface of the body component; An air guiding component, the air guiding component is the air guiding component according to any one of claims 1-9, and the air guiding assembly is arranged at the air outlet.

11. The air conditioner according to claim 10, characterized in that, The driving assembly can also drive the air guiding assembly to present: A first spaced state, in the first spaced state, the inner air guiding surfaces of the two air guiding plates are spaced apart face to face to define an intermediate air outlet gap between the two inner air guiding surfaces, and a side air outlet gap is formed between the outer air guiding surface of each air guiding plate and the corresponding side of the air outlet; And / or A second spaced state, in the second spaced state, the outer air guiding surfaces of the two air guiding plates are spaced apart face to face to define an intermediate air outlet gap between the two outer air guiding surfaces, and a side air outlet gap is formed between the inner air guiding surface of each air guiding plate and the corresponding side of the air outlet.

Citation Information

Patent Citations

  • Air conditioner cabinet guide device and cross-flow air conditioner cabinet

    CN105003971A

  • Indoor unit of air conditioner

    CN107781910A

  • Air guide component and air conditioner with same

    CN215260455U