Air guide components, air outlet frame components and air conditioners

By setting a limit groove and a buckle structure in the air guide component of the air conditioner, the problem of difficult disassembly and assembly of the inner and outer layer structures of the air guide component is solved, and the effects of simple disassembly and convenient cleaning are achieved.

CN115077076BActive Publication Date: 2025-09-23GD MIDEA AIR CONDITIONING EQUIP CO LTD +1
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Patent Information

Application Number
CN202110283000.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-03-16
Publication Date
2025-09-23
Estimated Expiration
2041-03-16

AI Technical Summary

Technical Problem

The inner and outer layer structures of the air guide components of the existing air conditioners are difficult to disassemble and assemble, are easily damaged, and are inconvenient to clean.

Method used

An air guide component is designed. By setting a first limit groove and a limit buckle between the outer air guide plate and the inner air guide assembly, simple disassembly and assembly of the outer air guide plate and the inner air guide assembly can be achieved. The cooperation of the sliding area and the limit area is utilized to facilitate disassembly and installation.

Benefits of technology

The air guide components can be easily disassembled and assembled, thus avoiding damage and improving the convenience of internal cleaning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an air guide component, an air outlet frame assembly and an air conditioner. The air guide component includes an air guide assembly, and the air guide assembly includes: an outer air guide plate and an inner air guide assembly. The inner air guide assembly is arranged on the outer air guide plate and is located on the inner side of the outer air guide plate; a first limiting groove is provided on one of the outer air guide plate and the inner air guide assembly, and a first limiting buckle is provided on the other of the outer air guide plate and the inner air guide assembly. The first limiting groove includes a sliding area and a limiting area that are interconnected, and the first limiting buckle is suitable for sliding into the limiting area along the sliding area and cooperating with the limiting area. The air guide component according to the embodiment of the present invention can easily realize the separation or assembly between the outer air guide plate and the inner air guide assembly, thereby making the disassembly and assembly of the outer air guide plate simple and convenient, solving the problem that the inner and outer layer structures of the air guide component are difficult to disassemble and the disassembly process is easy to cause damage, and also making the internal cleaning of the air guide component more convenient.
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Description

Technical Field

[0001] The present invention relates to the technical field of air treatment equipment, and in particular to an air guide component, an air outlet frame assembly and an air conditioner. Background Art

[0002] After an air conditioner has been powered on for extended periods, dust accumulates inside the air guide component, causing it to become dirty. If the dust is not cleaned for a long time, the air output will drop sharply, leading to a significant decrease in heating / cooling performance. In related art, air guide components for air conditioners, when composed of inner and outer layers, are difficult to disassemble and assemble, often requiring the use of tools, which can easily damage the air guide component. 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, one object of the present invention is to provide an air guide component that is simple and convenient to assemble and disassemble, thereby resolving the problems of the difficult disassembly of the inner and outer layers of the air guide component and the easy damage caused by the disassembly process. It also makes it easier to clean the interior of the air guide component.

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

[0005] The present invention also provides an air conditioner having the air outlet frame assembly.

[0006] According to the first aspect of the embodiment of the present invention, the wind guide component includes an wind guide assembly, and the wind guide assembly includes: an outer wind guide plate; an inner wind guide assembly, the inner wind guide assembly is arranged on the outer wind guide plate and located on the inner side of the outer wind guide plate; a first limiting groove is provided on one of the outer wind guide plate and the inner wind guide assembly, and a first limiting buckle is provided on the other of the outer wind guide plate and the inner wind guide assembly, the first limiting groove includes a sliding area and a limiting area that are interconnected, and the first limiting buckle is suitable for sliding into the limiting area along the sliding area and cooperating with the limiting area.

[0007] According to the air guide component of the embodiment of the present invention, the outer air guide plate is slid relative to the inner air guide assembly by a certain distance, so that the first limit buckle is disengaged from the first limit groove or the first limit buckle slides along the sliding area of ​​the first limit groove into the limit area, so that the outer air guide plate and the inner air guide assembly can be easily separated or assembled, thereby making the disassembly and assembly of the outer air guide plate simple and convenient, solving the problem that the inner and outer layer structures of the air guide component are difficult to disassemble and the disassembly process is easy to cause damage, and also making the internal cleaning of the air guide component more convenient.

[0008] According to some embodiments of the present invention, the inner air guide assembly includes an inner air guide plate, the first limiting groove is formed on the side wall in the width direction of the inner air guide plate, the sliding area and the limiting area are arranged in the length direction of the inner air guide plate, and the first limiting buckle is formed at both ends of the outer air guide plate in the width direction.

[0009] According to some optional embodiments of the present invention, a step surface is formed between the sliding area and the limiting area, and at least a portion of the inner wall surface of the limiting area connected to the step surface is formed as a guide surface, and the guide surface extends to the step surface. In the direction from the limiting area to the sliding area, the guide surface extends obliquely toward the direction adjacent to the outer air guide plate.

[0010] According to some optional embodiments of the present invention, the sliding area includes a first sub-sliding area and a second sub-sliding area that are interconnected, the first sub-sliding area passes through the side wall of the inner air guide plate in the thickness direction, and the first limiting buckle is suitable for sliding from the first sub-sliding area to the second sub-sliding area, and then sliding from the second sub-sliding area into the limiting area along the length direction of the inner air guide plate.

[0011] In a further embodiment of the present invention, a second limiting buckle is formed on the outer air guide plate, and a second limiting groove is formed on the inner air guide plate. The second limiting groove includes a first limiting section and a second limiting section arranged along the length direction of the inner air guide plate. The second limiting buckle is suitable for first fitting into the first limiting section, and then sliding to the second limiting section in the second limiting groove along the length direction of the inner air guide plate.

[0012] According to some embodiments of the present invention, a first fixing hole is formed on the outer air guide plate, a second fixing hole is formed on the inner air guide assembly, and fasteners are passed through the first fixing hole and the second fixing hole.

[0013] In some embodiments of the present invention, the outer air guide plate includes an outer air guide plate body and an outer plate portion provided on one side of the length direction of the outer air guide plate body, and the first fixing hole is formed on the outer plate portion; the inner air guide plate includes an inner air guide plate body and an inner plate portion provided on one side of the length direction of the inner air guide plate, and the inner plate portion includes a first inner plate portion and a second inner plate portion located on opposite sides in the thickness direction of the inner air guide plate body, and the second fixing hole is formed on the first inner plate portion.

[0014] In some optional embodiments of the present invention, the outer plate portion is located on the side of the first inner plate portion away from the outer air guide plate body, and the surface of the outer plate portion away from the outer air guide plate body is flush with the surface of the second inner plate portion away from the inner air guide plate body.

[0015] In some optional embodiments of the present invention, the first limiting buckle is formed at both ends of the outer air guide plate body in the width direction, the first limiting groove is formed on the side wall of the inner air guide plate body in the width direction, and the sliding area and the limiting area are arranged in the length direction of the inner air guide plate body.

[0016] According to some embodiments of the present invention, the air guide component includes: a water receiving tray, a water receiving chamber is defined in the water receiving tray of the wind assembly, and the water receiving tray is arranged on the bottom surface of the air guide assembly to receive the condensed water on the air guide assembly; wherein, the outer wall surface of the outer air guide plate adjacent to the water receiving tray is formed as a guide surface, and the guide surface extends to the bottom surface of the outer air guide plate, and the projection of the bottom edge of the guide surface adjacent to the water receiving tray on the horizontal plane is located within the projection of the water receiving chamber on the horizontal plane.

[0017] According to some optional embodiments of the present invention, at least a portion of the guide surface is located in the water receiving cavity, and a portion of the inner side wall of the water receiving cavity opposite to the guide surface is spaced apart from the guide surface to form a guide space.

[0018] According to some optional embodiments of the present invention, a portion of the outer wall of the outer air guide plate adjacent to the water receiving tray is recessed inward to form the guide surface.

[0019] According to some optional embodiments of the present invention, the guide surface includes a first guide portion and a second guide portion, the first guide portion is connected to the upper side of the second guide portion, the first guide portion is located above the water receiving tray, at least a portion of the second guide portion is located in the water receiving chamber, and the angle between the first guide portion and the vertical direction is greater than the angle between the second guide portion and the vertical direction.

[0020] In some embodiments of the present invention, the outer wall surface of the outer air guide plate excluding the guide surface is the outer main surface, the outer main surface is connected to the upper side of the guide surface, and the guide surface also includes an arc-shaped transition portion, which is connected between the outer main surface and the first guide portion.

[0021] In some embodiments of the present invention, the guide surface further includes a second arc-shaped transition portion, and the second transition portion is connected between the second guide portion and the first guide portion.

[0022] According to some optional embodiments of the present invention, a projection of the guide surface on the horizontal plane is located within a projection of the water receiving tray on the horizontal plane.

[0023] According to some optional embodiments of the present invention, at least a portion of the inner wall of the water receiving chamber is formed as a drainage surface, which extends to the upper end surface of the water receiving tray, and the drainage surface extends obliquely from top to bottom toward the center of the water receiving chamber.

[0024] According to some optional embodiments of the present invention, the bottom surface of the outer air guide plate is spaced apart from the inner bottom wall of the water receiving chamber, and the water receiving tray is provided on the bottom surface of the inner air guide assembly and connected to the air guide assembly.

[0025] According to some optional embodiments of the present invention, the inner air guide assembly includes an inner air guide plate, which is connected to the outer air guide plate. The water receiving tray is arranged on the bottom surface of the inner air guide plate and is connected to the inner air guide plate. The inner air guide plate and the water receiving tray are integrally formed or the inner air guide plate and the water receiving tray are both independently formed parts.

[0026] According to some optional embodiments of the present invention, a water absorbing member is provided on the bottom surface of the water receiving tray.

[0027] According to an embodiment of the second aspect of the present invention, an air outlet frame assembly includes: an air outlet frame, on which is formed at least one air outlet channel; an air guide component, which is the air guide component according to the embodiment of the first aspect of the present invention, and is rotatably arranged in the air outlet channel.

[0028] According to the air outlet frame assembly of the embodiment of the present invention, by providing the above-mentioned air guide component, the air guide component is simple and convenient to assemble and disassemble, which solves the problem that the inner and outer layer structures of the air guide component are difficult to disassemble and the disassembly process is easy to cause damage, and also makes the internal cleaning of the air guide component more convenient.

[0029] An air conditioner according to an embodiment of a third aspect of the present invention includes: an air outlet frame assembly according to an embodiment of the second aspect of the present invention.

[0030] According to the air conditioner of the embodiment of the present invention, by providing the above-mentioned air outlet frame assembly, the disassembly and assembly of the air guide component is simple and convenient, which solves the problem that the inner and outer layer structures of the air guide component are difficult to disassemble and the disassembly process is easy to cause damage, and also makes the internal cleaning of the air guide component more convenient.

[0031] Additional aspects and advantages of the present invention will be set forth in part in the description which follows and, in part, will be obvious from the description which follows, or may be learned by practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] 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:

[0033] Figure 1is a perspective view of an indoor unit of an air conditioner according to some embodiments of the present invention, wherein the air conditioner is in a no-wind mode;

[0034] Figure 2 yes Figure 1 The main view of the air conditioner indoor unit;

[0035] Figure 3 It is along Figure 2 Sectional view along line AA;

[0036] Figure 4 It is along Figure 2 Cross-section along the midline BB;

[0037] Figure 5 is a perspective view of an indoor unit of an air conditioner according to some embodiments of the present invention, wherein the air conditioner is in a normal air supply mode;

[0038] Figure 6 yes Figure 5 The main view of the air conditioner indoor unit;

[0039] Figure 7 It is along Figure 6 Cross-section along the mid-CC line;

[0040] Figure 8 is a perspective view of an air outlet frame assembly according to some embodiments of the present invention;

[0041] Figure 9 is a perspective view of a shutter drive mechanism according to some embodiments of the present invention;

[0042] Figure 10 yes Figure 9 A top view of the shutter drive mechanism in FIG.

[0043] Figure 11 It is along Figure 10 Sectional view of the mid-DD line;

[0044] Figure 12 is a perspective view of an indoor unit of an air conditioner according to other embodiments of the present invention, wherein the air conditioner is in a normal air supply mode;

[0045] Figure 13 yes Figure 12 The main view of the air conditioner indoor unit;

[0046] Figure 14 It is along Figure 13 Cross-section along line EE;

[0047] Figure 15 is a perspective view of an indoor unit of an air conditioner according to other embodiments of the present invention, wherein the air conditioner is in a no-wind mode;

[0048] Figure 16 yes Figure 15 The main view of the air conditioner indoor unit;

[0049] Figure 17 It is along Figure 16 Cross-section of the mid-FF line;

[0050] Figure 18 is a front view of an indoor unit of an air conditioner according to yet other embodiments of the present invention, wherein the air conditioner is in a no-wind mode;

[0051] Figure 19 It is along Figure 18 Sectional view of the mid-GG line;

[0052] Figure 20 is a front view of an indoor unit of an air conditioner according to yet other embodiments of the present invention, wherein the air conditioner is in a normal air supply mode;

[0053] Figure 21 It is along Figure 20 Sectional view along the mid-HH line;

[0054] Figure 22 is a front view of an indoor unit of an air conditioner according to yet other embodiments of the present invention, wherein the air conditioner is in a shutdown state;

[0055] Figure 23 It is along Figure 22 Cross-section of the middle II line;

[0056] Figure 24 is a partial exploded view of an air guide component according to some embodiments of the present invention, wherein the partial exploded view illustrates the assembly process of the accidental air guide plate and the inner air guide assembly;

[0057] Figure 25 yes Figure 24 Enlarged view of J in the middle;

[0058] Figure 26 is a partial exploded view of an air guide component according to some embodiments of the present invention, wherein the partial exploded view shows that the accidental air guide plate and the inner air guide assembly are assembled in place;

[0059] Figure 27 yes Figure 26 Enlarged view of point K in the middle;

[0060] Figure 28 is a perspective view of an outer air guide plate of an air guide component according to some embodiments of the present invention;

[0061] Figure 29 yes Figure 28 Enlarged view of L in the middle;

[0062] Figure 30is a perspective view of an inner air guide plate of an air guide component according to some embodiments of the present invention;

[0063] Figure 31 yes Figure 30 Enlarged view of the M in the middle;

[0064] Figure 32 is a perspective view from another angle of the inner air guide plate of the air guide component according to some embodiments of the present invention;

[0065] Figure 33 yes Figure 32 Enlarged view of point N in the middle;

[0066] Figure 34 is a front view of an air guide component according to some embodiments of the present invention;

[0067] Figure 35 It is along Figure 34 Sectional view along the mid-OO line;

[0068] Figure 36 It is along Figure 34 Cross-section of the mid-PP line;

[0069] Figure 37 It is along Figure 34 Sectional view of the mid-QQ line;

[0070] Figure 38 yes Figure 37 Enlarged view of R in the middle;

[0071] Figure 39 is a perspective view of an air guide component according to some embodiments of the present invention;

[0072] Figure 40 yes Figure 39 Enlarged view of S in the middle;

[0073] Figure 41 is a perspective view of an air guide component according to some embodiments of the present invention from another angle;

[0074] Figure 42 yes Figure 41 Enlarged view of T in the middle;

[0075] Figure 43 yes Figure 41 Enlarged view of the U in the middle;

[0076] Figure 44 3. A diagram showing the separation of an outer air guide plate and an inner air guide assembly of an air guide component according to some embodiments of the present invention;

[0077] Figure 45 yes Figure 44 Enlarged view of the V in the middle;

[0078] Figure 46 is an exploded view of an air guide component according to some embodiments of the present invention;

[0079] Figure 47 is a stereoscopic view of a connector of an air guide component according to some embodiments of the present invention.

[0080] Reference numerals:

[0081] Air conditioner indoor unit 1000;

[0082] Housing 100; front panel 101; back panel 102; base 103; top cover 104; air inlet 105; air outlet 106; door 107;

[0083] Heat exchange unit 200;

[0084] Air outlet frame 1; air outlet channel 11;

[0085] Air guide drive mechanism 2;

[0086] Shutter drive mechanism 3; shutter drive motor 31; drive gear 32; drive rack 33;

[0087] Wind guide component 4; wind guide assembly 50; inner wind guide assembly 501;

[0088] Outer air deflector 41; outer air deflector body 410; air dispersion structure 411; first position-limiting buckle 412; second position-limiting buckle 413; outer main body surface 414; air guide surface 415; first air guide portion 4151; second air guide portion 4152; first transition portion 4153; second transition portion 4154; outer plate portion 420; first fixing hole 421;

[0089] Inner air deflector 43; inner air deflector body 430; first limiting groove 431; sliding area 4311; first sub-sliding area 43111; second sub-sliding area 43112; limiting area 4312; step surface 4313; guide surface 4314; second limiting groove 432; first limiting section 4321; second limiting section 4322; air hole 433; mounting opening 434; elastic buckle 435; first inner plate portion 440; second fixing hole 441; second inner plate portion 450; mounting hole 451;

[0090] Guide vane assembly 46; moving blade 461; moving blade shaft 4611; stationary blade 462; stationary blade hub 4621;

[0091] Shutter mechanism 47; connecting rod 471; shutter 472; shutter shaft 4721;

[0092] Water receiving tray 48; water receiving cavity 481; drainage surface 482; drainage space 483; flow channel 484; receiving groove 485; water absorbing member 486;

[0093] Sliding assembly 49; mounting block 491; slide groove 4911; slider 492; slide cover 493;

[0094] Connecting member 40; connecting portion 401; shaft hole 4011; positioning portion 402; limiting protrusion 4021; elastic opening 4022;

[0095] Fan component 5; wind wheel 51; heat exchanger component 6;

[0096] Air handling unit 300. DETAILED DESCRIPTION

[0097] The following describes embodiments of the present invention in detail. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended only to explain the present invention and are not to be construed as limiting the present invention.

[0098] The following describes an embodiment of the present invention with reference to the accompanying drawings. The air guide member 4 can be rotatably arranged on the air outlet channel 11 of the air conditioner to adjust the direction and airflow.

[0099] like Figure 24-27 As shown ( Figure 25 and Figure 27 The direction of the arrow in the figure is a schematic assembly direction during the process of assembling the outer air guide plate 41 to the inner air guide assembly 501). According to the embodiment of the first aspect of the present invention, the air guide component 4 may include an air guide assembly 50, and the air guide assembly 50 may include: an outer air guide plate 41 and an inner air guide assembly 501. The inner air guide assembly 501 may be provided on the outer air guide plate 41 and the inner air guide assembly 501 is located on the inner side of the outer air guide plate 41. It should be noted that the "inner side of the outer air guide plate 41" refers to the side of the outer air guide plate 41 facing inward when the air guide component 4 is in the position of closing the air outlet end of the air outlet channel 11, that is, the side of the outer air guide plate 41 adjacent to the center of the entire machine.

[0100] One of the outer air guide plate 41 and the inner air guide assembly 501 is provided with a first limiting groove 431, and the other of the outer air guide plate 41 and the inner air guide assembly 501 is provided with a first limiting buckle 412. For example, the outer air guide plate 41 may be provided with the first limiting groove 431, and the inner air guide assembly 501 may be provided with the first limiting buckle 412; alternatively, the inner air guide assembly 501 may be provided with the first limiting groove 431, and the outer air guide plate 41 may be provided with the first limiting buckle 412. The first limiting groove 431 may include a sliding area 4311 and a limiting area 4312, and the first limiting buckle 412 is adapted to slide along the sliding area 4311 into the limiting area 4312 and engage with the limiting area 4312.

[0101] Optionally, there can be multiple first limiting grooves 431 and first limiting buckles 412, and the number of first limiting grooves 431 and first limiting buckles 412 are the same and correspond one to one, thereby allowing there to be more buckle positioning points between the outer air guide plate 41 and the inner air guide component 501, so that the outer air guide plate 41 and the inner air guide component 501 can be reliably assembled.

[0102] When the outer air guide plate 41 needs to be removed from the inner air guide assembly 501, the first limiting buckle 412 can be pushed to make the first limiting buckle 412 slide from the limiting area 4311 of the first limiting groove 431 to the sliding area 4312, and finally disengage from the sliding area 4312, thus realizing the disengagement of the first limiting buckle 412 from the first limiting groove 431, thereby realizing the removal of the outer air guide plate 41 from the inner air guide assembly 501, and facilitating the cleaning and maintenance of the outer air guide plate 41 and the inner air guide assembly 501. The connection structure design between the outer air deflector 41 and the inner air guide assembly 501 makes the outer air deflector 41 easy to install and remove, solving the problem of difficult disassembly and poor operation convenience of previous connection structures. This technical solution is easy to disassemble, clean, and install, and has high reliability. During the process of disassembling and installing the outer air deflector 41, no tools are required, which can avoid damage to the air guide components caused by using tools.

[0103] According to the air guide component 4 of the embodiment of the present invention, by sliding the outer air guide plate 41 relative to the inner air guide assembly 501 for a certain distance, the first limit buckle 412 is disengaged from the first limit groove 431 or the first limit buckle 412 slides along the sliding area 4311 of the first limit groove 431 to the limit area 4312, the outer air guide plate 41 and the inner air guide assembly 501 can be easily separated or assembled, thereby making the disassembly and assembly operation of the outer air guide plate 41 simple and convenient, solving the problem that the inner and outer layer structures of the air guide component 4 are difficult to disassemble and the disassembly process is easy to cause damage, and also making the internal cleaning of the air guide component 4 more convenient.

[0104] According to some embodiments of the present invention, referring to Figures 24-33The inner air guide assembly 501 may include an inner air guide plate 43. A first limiting groove 431 may be formed on a sidewall of the inner air guide plate 43 in the width direction (e.g., with reference to the left-right direction in the drawings). Both sidewalls of the inner air guide plate 43 in the width direction are formed with a first limiting groove 431. Multiple first limiting grooves 431 may be formed on each sidewall of the inner air guide plate 43 in the width direction. The multiple first limiting grooves 431 may be arranged at intervals along the length direction of the inner air guide plate 43 (e.g., with reference to the up-down direction in the drawings). The sliding area 4311 and the limiting area 4312 of the first limiting groove 431 may be arranged in the length direction of the inner air guide plate 43.

[0105] The first limiting clips 412 can be formed at both ends of the outer air deflector 41 in the width direction (e.g., refer to the left-right direction in the accompanying drawings). Multiple first limiting clips 412 are provided at each end of the outer air deflector 41 in the width direction. The multiple first limiting clips 412 at each end of the outer air deflector 41 in the width direction are spaced apart in the length direction of the outer air deflector 41 (e.g., refer to the up-down direction in the accompanying drawings). It should be noted that the width direction of the inner air deflector 43 is consistent with the width direction of the outer air deflector 41, and the length direction of the inner air deflector 43 is consistent with the length direction of the outer air deflector 41.

[0106] When the outer air guide plate 41 is installed on the inner air guide plate 43, the first limiting buckle 412 on the outer air guide plate 41 can first enter the sliding area 4311 of the first limiting groove 431. After the first limiting buckle 412 enters the sliding area 4311 of the first limiting groove 431, the outer air guide plate 41 is pushed so that the first limiting buckle 412 slides into the limiting area 4312 of the first limiting groove 431 roughly along the length direction of the inner air guide plate 43, thereby facilitating the disassembly and assembly of the outer air guide plate 41. For example, when the length direction of the inner air guide plate 43 is specifically the up and down direction, the limiting area 4312 can be located below the sliding area 4311. After the first limiting buckle 412 on the outer air guide plate 41 first enters the sliding area 4311 of the first limiting groove 431, the outer air guide plate 41 can be pushed downward and the outer air guide plate 41 can be used to move downward relative to the inner air guide plate 43 by using its own gravity. In this way, the first limiting buckle 412 on the outer air guide plate 41 can be conveniently and easily made to slide downward from the sliding area 4311 of the first limiting groove 431 to the limiting area 4312 of the first limiting groove 431, and the first limiting buckle 412 can be reliably accommodated and fitted in the limiting area 4312, so that the outer air guide plate 41 and the inner air guide assembly 501 can be conveniently assembled.

[0107] When removing the outer air guide plate 41 from the inner air guide plate 43, the outer air guide plate 41 can be pushed roughly along the length direction of the outer air guide plate 41 so that the first limiting buckle 412 on the outer air guide plate 41 disengages from the limiting area 4312 of the first limiting groove 431 and slides into the sliding area 4311 of the first limiting groove 431, and then the first limiting buckle 412 disengages from the sliding area 4311 of the first limiting groove 431, so that the first limiting buckle 412 is completely disengaged from the first limiting groove 431, so that the outer air guide plate 41 can be easily removed from the inner air guide plate 43. For example, when the length direction of the inner air guide plate 43 is specifically the up and down direction, the limiting area 4312 can be located below the sliding area 4311. By pushing the outer air guide plate 41 upward, the first limiting buckle 412 on the outer air guide plate 41 slides upward out of the limiting area 4312 of the first limiting groove 431, and then the first limiting buckle 412 slides out of the sliding area 4311 of the first limiting groove 431, so that the first limiting buckle 412 is completely separated from the first limiting groove 431, so that the outer air guide plate 41 can be easily removed from the inner air guide plate 43, which facilitates the cleaning and maintenance of the air guide assembly 50.

[0108] According to some optional embodiments of the present invention, referring to Figures 24-33 A stepped surface 4313 may be formed between the sliding area 4311 and the limiting area 4312. At least a portion of the inner wall of the limiting area 4312 connected to the stepped surface 4313 may be formed as a guide surface 4314, which extends to the stepped surface 4313. In the direction from the limiting area 4312 to the sliding area 4311, the guide surface 4314 extends obliquely toward the outer air deflector 41. When the outer air deflector 41 is mounted on the inner air deflector 43, the first limiting buckle 412 on the outer air deflector 41 may first enter the sliding area 4311 of the first limiting groove 431. For example, the outer air deflector 41 may be pushed horizontally so that the first limiting buckle 412 on the outer air deflector 41 first enters the sliding area 4311 of the first limiting groove 431. As the first limiting buckle 412 enters the sliding area 4311, it slides along the stepped surface 4313. After the first limiting buckle 412 enters the sliding area 4311 of the first limiting groove 431, by pushing the outer air guide plate 41, for example, pushing it downward to the outer air guide plate 41, the first limiting buckle 412 slides smoothly into the limiting area 4312 of the first limiting groove 431 under the guidance of the guide surface 4314, so that the outer air guide plate 41 can be conveniently installed on the inner air guide plate 43.

[0109] When the outer air guide plate 41 needs to be removed, the outer air guide plate 41 can be pushed, for example, upward, so that the first limiting buckle 412 slides from the limiting area 4312 of the first limiting groove 431 to the sliding area 4311. During this process, the first limiting buckle 412 can be smoothly slid from the limiting area 4312 into the sliding area 4311 by the guiding effect of the guide surface 4314. Then, the outer air guide plate 41 is pushed again, for example, horizontally, so that the first limiting buckle 412 is disengaged from the sliding area 4311, thus achieving the disengagement of the first limiting buckle 412 from the first limiting groove 431. Thus, the outer air guide plate 41 can be removed from the inner air guide plate 43, making it easier to clean and maintain the outer air guide plate 41 and the inner air guide plate 43.

[0110] According to some optional embodiments of the present invention, referring to Figures 24-33 The sliding area 4311 may include a first sub-sliding area 43111 and a second sub-sliding area 43112 arranged in the arrangement direction of the outer air guide plate 41 and the inner air guide assembly 501. The first sub-sliding area 43111 and the second sub-sliding area 43112 are connected to each other, and the first sub-sliding area 43111 can pass through the side wall surface of the inner air guide plate 43 in the thickness direction toward the outer air guide plate 41. When the outer air guide plate 41 is assembled on the inner air guide plate 43, the outer air guide plate 41 can be pushed in the horizontal direction and in the direction close to the inner air guide plate 43, so that the first limit buckle 412 slides from the first sub-sliding area 43111 to the second sub-sliding area 43112 along the arrangement direction of the outer air guide plate 41 and the inner air guide assembly 501 (for example, in the front to rear direction or from away from the center of the whole machine to close to the center of the whole machine), and then the outer air guide plate 41 is pushed along the length direction of the inner air guide plate 43. For example, the outer air guide plate 41 can be pushed downward so that the first limit buckle 412 on the outer air guide plate 41 slides from the second sub-sliding area 43112 along the length direction of the inner air guide plate 43 into the limit area 4312, so that the first limit buckle 412 on the outer air guide plate 41 is reliably accommodated and fitted into the limit area 4312 of the inner air guide plate 43, so that the outer air guide plate 41 can be conveniently assembled to the inner air guide plate 43.

[0111] When removing the outer air guide plate 41 from the inner air guide plate 43, the outer air guide plate 41 can be pushed roughly along the length direction of the outer air guide plate 41, for example, pushing the outer air guide plate 41 upward, so that the first limiting buckle 412 on the outer air guide plate 41 disengages from the limiting area 4312 of the first limiting groove 431 and slides into the second sub-sliding area 43112 of the first limiting groove 431, and then the outer air guide plate 41 is pushed horizontally so that the first limiting buckle 412 disengages from the second sub-sliding area 43112 of the first limiting groove 431 and the first sub-sliding area 43111 of the first limiting groove 431 in turn, so that the first limiting buckle 412 is completely disengaged from the first limiting groove 431, so that the outer air guide plate 41 can be easily removed from the inner air guide plate 43, which facilitates the cleaning and maintenance of the air guide assembly 50.

[0112] In a further embodiment of the present invention, referring to Figures 24-33 A second limiting buckle 413 may be formed on the side wall of the outer air deflector 41 adjacent to the inner air deflector 43 in the thickness direction, and a second limiting groove 432 may be formed on the side wall of the inner air deflector 43 adjacent to the outer air deflector 41 in the thickness direction. The second limiting buckle 413 is adapted to fit into the second limiting groove 432, thereby further increasing the number of buckle positioning points between the outer air deflector 41 and the inner air deflector 43 and improving the positioning reliability between the two. Furthermore, the outer air deflector 41 and the inner air deflector 43 can be limited in different directions. For example, the first limiting buckle 412 can be used to limit the outer air deflector in the front-to-back direction, or in both the front-to-back direction and the left-to-right direction, and the first limiting buckle 413 can be used to limit the outer air deflector in the left-to-right direction.

[0113] Optionally, a plurality of second limit buckles 413 are respectively formed at both ends in the width direction of the outer air guide plate 41, and the plurality of second limit buckles 413 can be arranged at intervals along the length direction of the outer air guide plate 41; a plurality of second limit grooves 432 are respectively formed at both ends in the width direction of the inner air guide plate 43, and the plurality of second limit grooves 432 can be arranged at intervals along the length direction of the inner air guide plate 43.

[0114] The second limiting groove 432 may include a first limiting section 4321 and a second limiting section 4322 arranged along the length of the inner air deflector 43. The first limiting section 4321 and the second limiting section 4322 are interconnected, and the first limiting section 4321 and the second limiting section 4322 may have the same width. When the length of the inner air deflector 43 is in the up-down direction, the second limiting section 4322 may be located below the first limiting section 4321.

[0115] When the outer air guide plate 41 is assembled onto the inner air guide plate 43, the outer air guide plate 41 can be pushed in the horizontal direction and close to the inner air guide plate 43, so that the first limit buckle 412 slides from the first sub-sliding area 43111 to the second sub-sliding area 43112 along the arrangement direction of the outer air guide plate 41 and the inner air guide assembly 501 (for example, along the front to back direction or from away from the center of the whole machine to close to the center of the whole machine), and at the same time, the second limit buckle 413 cooperates with the first limit section 4321 along the arrangement direction of the outer air guide plate 41 and the inner air guide assembly 501. Then, the outer air deflector 41 is pushed along the length direction of the inner air deflector 43, for example, the outer air deflector 41 can be pushed downward, so that the first limiting buckle 412 on the outer air deflector 41 slides from the second sub-sliding area 43112 along the length direction of the inner air deflector 43 into the limiting area 4312, so that the first limiting buckle 412 on the outer air deflector 41 is securely accommodated and engaged with the limiting area 4312 of the inner air deflector 43. At the same time, the second limiting buckle 413 slides along the length direction of the inner air deflector 43 in the second limiting groove 432 to the second limiting section 4322. In this way, the outer air deflector 41 can be conveniently assembled to the inner air deflector 43.

[0116] When removing the outer air guide plate 41 from the inner air guide plate 43, the outer air guide plate 41 can be pushed roughly along the length direction of the outer air guide plate 41, for example, pushing the outer air guide plate 41 upward, so that the first limit buckle 412 on the outer air guide plate 41 disengages from the limit area 4312 of the first limit groove 431 and slides into the second sub-sliding area 43112 of the first limit groove 431, and at the same time, the second limit buckle 413 slides in the second limit groove 432 along the length direction of the inner air guide plate 43 to the first limit section 4321. Then push the outer air guide plate 41 in the horizontal direction so that the first limiting buckle 412 disengages from the second sub-sliding area 43112 of the first limiting groove 431 and the first sub-sliding area 43111 of the first limiting groove 431 in turn, so that the first limiting buckle 412 is completely disengaged from the first limiting groove 431, and at the same time, the second limiting buckle 413 disengages from the second limiting section 4322, so that the second limiting buckle 413 is completely disengaged from the second limiting groove 432, so that the outer air guide plate 41 can be easily removed from the inner air guide plate 43, which facilitates the cleaning and maintenance of the air guide assembly 50.

[0117] According to some embodiments of the present invention, referring to Figure 44-45A first fixing hole 421 may be formed on the outer air guide plate 41, and a second fixing hole 441 may be formed on the inner air guide assembly 501, and fasteners are inserted through the first fixing hole 421 and the second fixing hole 441. Thus, on the basis of the above-mentioned buckle and slot cooperation, the outer air guide plate 41 and the inner air guide assembly 501 are connected and fixed by fasteners, which can further improve the installation reliability of the outer air guide plate 41. For example, when installing the outer air guide plate 41, the outer air guide plate 41 can be initially positioned by first engaging the above-mentioned first limiting groove 431 with the first limiting buckle 412, or engaging the first limiting groove 431 with the first limiting buckle 412, and engaging the second limiting groove 432 with the second limiting buckle 413. Then, the outer air guide plate 41 can be reliably fixed to the inner air guide assembly 501 by inserting fasteners through the first fixing hole 421 and the second fixing hole 441. When the outer air guide plate 41 needs to be removed, the fasteners can be removed first, and then a force can be applied to the outer air guide plate 41 to disengage the above-mentioned first limiting groove 431 from the first limiting buckle 412 or the first limiting groove 431 from the first limiting buckle 412 and the second limiting groove 432 from the second limiting buckle 413, so that the outer air guide plate 41 can be easily disassembled.

[0118] According to some optional embodiments of the present invention, referring to Figure 44-45 The inner air guide assembly 501 includes an inner air guide plate 43. A first limiting groove 431 may be formed on the sidewall of the inner air guide plate 43 in the width direction. A sliding area 4311 and a limiting area 4312 are arranged in the length direction of the inner air guide plate 43. First limiting buckles 412 may be formed at both ends in the width direction of the outer air guide plate 41. A first fixing hole 421 is formed on the sidewall of the outer air guide plate 41 in the length direction, and a second fixing hole 441 is formed on the sidewall of the inner air guide plate 43 in the length direction. By forming the first fixing hole 421 on the sidewall of the outer air guide plate 41 in the length direction and the second fixing hole 441 on the sidewall of the inner air guide plate 43 in the length direction, the outer air guide plate 41 can be installed and fixed in different directions, which is more reliable and stable.

[0119] In some specific embodiments of the present invention, referring to Figure 42 、 Figure 44-45The outer air deflector 41 may include an outer air deflector body 410 and an outer plate portion 420 disposed on one side of the outer air deflector body 410 in the longitudinal direction, for example, the outer plate portion 420 is disposed on the upper side of the outer air deflector body 410. The outer plate portion 420 is located on a side of the outer air deflector body 410 adjacent to the inner air deflector 43. First retaining clips 412 are formed at both ends of the outer air deflector body 410 in the width direction, and first fixing holes 421 are formed in the outer plate portion 420. The inner air deflector 43 may include an inner air deflector body 430 and an inner plate portion disposed on one side of the inner air deflector body 43 in the longitudinal direction, for example, the inner plate portion is disposed on the upper side of the inner air deflector body 430. A first retaining groove 431 is formed on a sidewall of the inner air deflector body 430 in the width direction. The sliding area 4311 and the retaining area 4312 are arranged in the longitudinal direction of the inner air deflector body 430. The inner plate portion includes a first inner plate portion 440 and a second inner plate portion 450 located on opposite sides in the thickness direction of the inner air guide plate body 430. The first inner plate portion 440 is located on the side of the inner air guide plate body 430 adjacent to the outer air guide plate 41, and the second fixing hole 441 is formed on the first inner plate portion 440.

[0120] When the outer air deflector 41 and the inner air deflector 43 are assembled, the outer plate portion 420 is located on the side of the first inner plate portion 440 away from the outer air deflector body 410. The surface of the outer plate portion 420 away from the outer air deflector body 410 is flush with the surface of the second inner plate portion 450 away from the inner air deflector body 430. This structural arrangement makes the connection between the outer air deflector 41 and the inner air deflector 43 more convenient and makes the structure of the entire air deflector component 4 compact and beautiful.

[0121] According to some embodiments of the present invention, referring to Figures 34-44 The air guide component 4 may further include a water receiving tray 48, which may define a water receiving cavity 481. The water receiving tray 48 may be disposed on the bottom surface of the air guide assembly 50 and connected to the air guide assembly 50. The water receiving tray 48 may receive condensed water on the air guide assembly 50, and the condensed water on the air guide assembly 50 may flow downward into the water receiving cavity 481 of the water receiving tray 48.

[0122] When the air conditioner is in cooling operation, the condensed water generated on the air guide assembly 50 flows downward along the air guide assembly 50 into the water receiving pan 48. The water receiving pan 48 can receive the condensed water generated on the air guide assembly 50, which can effectively prevent the condensed water generated on the air guide assembly 50 from dripping onto the ground or other components in the air conditioner (for example, dripping onto the electric control box, motor and other components in the air conditioner, which can easily cause safety hazards). This can effectively prevent the inconvenience caused by the condensed water dripping onto the ground to the user and can reduce safety hazards. During the rotation of the air guide assembly 50, even if a part of the air guide assembly 50 is located outside the air outlet 106 of the air conditioner, since the water receiving pan 48 is provided on the bottom surface of the air guide assembly 50, and since the water receiving pan 48 rotates together with the air guide assembly 50, no matter where the air guide assembly 50 rotates to, the water receiving pan 48 can receive the condensed water on the air guide assembly 50.

[0123] The portion of the outer wall of the outer air deflector 41 adjacent to the water receiving tray 48 can be formed as a guide surface 415. The guide surface 415 can extend to the bottom surface of the outer air deflector 41. The horizontal projection of the bottom edge of the guide surface 415 adjacent to the water receiving tray 48 lies within the horizontal projection of the water receiving chamber 481. As condensed water on the outer air deflector 41 flows downward along the outer wall of the outer air deflector 41, the horizontal projection of the bottom edge of the guide surface 415 lies within the horizontal projection of the water receiving chamber 481. This guide surface 415 at the bottom of the outer air deflector 41 can guide the condensed water into the water receiving chamber 481 of the water receiving tray 48, thereby preventing the condensed water on the outer wall of the outer air deflector 41 from dripping onto the ground. It should be noted that the "outer wall of the outer air deflector 41" refers to the outward-facing wall of the outer air deflector 41 when the air guide component 5 is in the position closing the outlet end of the air outlet channel 11.

[0124] According to the embodiment of the present invention, the air guide component 4 is provided with a water collecting pan 48 on the bottom surface of the air guide component 50, so that the condensed water generated on the air guide component 50 can be received, and even if a part of the air guide component 4 is located outside the air outlet 106 of the air conditioner during the rotation of the air guide component 4, the water collecting pan 48 can still receive the condensed water generated on the air guide component 50; and, by forming the part of the outer wall surface of the air guide component 50 adjacent to the water collecting pan 48 into a guide surface 415, and making the projection of the bottom edge of the guide surface 415 on the horizontal plane be located within the projection of the water collecting chamber 481 on the horizontal plane, the condensed water generated by the air guide component 50 can be guided through the guide surface 415 to the water collecting chamber 481 of the water collecting pan 48, thereby effectively preventing the condensed water on the air guide component 50 from dripping onto the ground and other components in the air conditioner, thereby effectively avoiding the inconvenience caused to the user by the condensed water dripping onto the ground, and also reducing safety hazards.

[0125] According to some embodiments of the present invention, the horizontal projection of the guide surface 415 lies within the horizontal projection of the water receiving pan 48. This ensures that when condensed water on the outer air deflector 41 flows downward onto the guide surface 415, it flows entirely into the water receiving pan 48, effectively preventing the condensed water from falling outside the water receiving pan 48 and causing safety hazards and inconvenience.

[0126] According to some embodiments of the present invention, referring to Figures 34-44 At least a portion of the guide surface 415 is located within the water receiving chamber 481. For example, a portion of the guide surface 415 may be located within the water receiving chamber 481, or the entire guide surface 415 may be located within the water receiving chamber 481. By ensuring that at least a portion of the guide surface 415 is located within the water receiving chamber 481, it is possible to better ensure that condensed water flowing downward from the air guide assembly 50 to the guide surface 415 is directed into the water receiving chamber 481 of the water receiving tray 48. The portion of the inner sidewall of the water receiving chamber 481 that faces the guide surface 415 may be spaced apart from the guide surface 415, thereby forming a guide space 483 between the inner sidewall of the water receiving chamber 481 and the guide surface 415. By separating the portion of the inner wall of the water receiving chamber 481 opposite to the guide surface 415 from the guide surface 415, when the condensed water on the air guide assembly 50 flows downward to the guide surface 415, the guide space 483 can provide a flow space for the condensed water flowing onto the guide surface 415, thereby preventing the condensed water flowing onto the guide surface 415 from falling outside the water receiving tray 48, thereby further effectively preventing the condensed water on the air guide assembly 50 from falling to the ground.

[0127] According to some embodiments of the present invention, referring to Figures 34-44 The portion of the outer wall of the outer air guide plate 41 adjacent to the water receiving pan 48 is recessed inward (the term "recessed inward" refers to recessing toward the center of the air conditioner, relative to the position of the air guide component 4 at the outlet end that closes the air outlet passage 11), thereby forming a guide surface 415. As a result, the guide surface 415 is recessed inward relative to the other portions of the outer wall of the outer air guide plate 41. This allows condensed water on the air guide assembly 50 to flow inward when it flows downward to the guide surface 415. Under the guiding action of the guide surface 415, the water flows into the water receiving chamber 481 of the water receiving pan 48, thereby effectively preventing the condensed water on the outer air guide plate 41 from falling to the ground.

[0128] In some optional embodiments of the present invention, referring to Figures 34-44At least a portion of the guide surface 415 is located within the water receiving chamber 481. The portion of the outer wall of the outer air deflector 41 adjacent to the water receiving pan 48 is recessed inward to form the guide surface 415. Furthermore, the portion of the inner wall of the water receiving chamber 481 that faces the guide surface 415 can be conveniently spaced apart from the guide surface 415. For example, a portion of the guide surface 415 can be located within the water receiving chamber 481, or the entire guide surface 415 can be located within the water receiving chamber 481. By ensuring that at least a portion of the guide surface 415 is located within the water receiving chamber 481, it is possible to better ensure that condensed water flowing downward from the air deflector assembly 50 to the guide surface 415 is directed into the water receiving chamber 481 of the water receiving pan 48. The portion of the inner wall of the water receiving chamber 481 opposite to the guide surface 415 can be spaced apart from the guide surface 415 , thereby forming a guide space 483 between the inner wall of the water receiving chamber 481 and the guide surface 415 , which can facilitate the formation of the above-mentioned guide space 483 .

[0129] In some embodiments of the present invention, at least a portion of the guide surface 415 extends inwardly in a top-to-bottom direction (the "extending inwardly in a top-to-bottom direction" refers to extending inwardly in a top-to-bottom direction toward the center of the air conditioner, relative to the position of the air guide component 4 at the air outlet end of the air outlet channel 11). For example, a portion of the guide surface 415 may extend inwardly in a top-to-bottom direction, or the entire guide surface 415 may extend inwardly in a top-to-bottom direction. By extending at least a portion of the guide surface 415 inwardly in a top-to-bottom direction, when the condensed water on the outer air guide plate 41 flows downwardly to the guide surface 415, the guide surface 415 can guide the condensed water downwardly and inwardly into the water receiving chamber 481 of the water receiving tray 48, thereby enabling the guide surface 415 to play a better guiding role.

[0130] In some embodiments of the present invention, reference Figure 38The guide surface 415 may include a first guide portion 4151 and a second guide portion 4152. The first guide portion 4151 may be connected to the upper side of the second guide portion 4152. The first guide portion 4151 is located above the water receiving tray 48. At least a portion of the second guide portion 4152 is located within the water receiving cavity 481. For example, a portion of the second guide portion 4152 may be located within the water receiving cavity 481 of the water receiving tray 48, or the entire second guide portion 4152 may be located within the water receiving cavity 481. The angle between the first guide portion 4151 and the vertical direction is greater than the angle between the second guide portion 4152 and the vertical direction. In this way, by setting a larger angle between the first guide part 4151 located on the upper side and the vertical direction, the condensed water on the air guide assembly 50 can be guided to the position directly above the water receiving chamber 481 under the guiding action of the first guide part 4151. In the process of the condensed water flowing downward from the first guide part 4151 to the second guide part 4152, and flowing from the second guide part 4152 to the water receiving chamber 481, since the angle between the second guide part 4152 and the vertical direction is set to be smaller, the condensed water can flow quickly along the second guide part 4152 to the water receiving chamber 481.

[0131] Optionally, the angle between the first guide portion 4151 and the vertical direction can be 60-90°, for example, the angle between the first guide portion 4151 and the vertical direction can be 45°; the angle between the second guide portion 4152 and the vertical direction can be 0-30°, for example, the angle between the second guide portion 4152 and the vertical direction can be 0°.

[0132] In some optional embodiments of the present invention, referring to Figure 38 The outer wall of the outer air guide plate 41, excluding the guide surface 415, is an outer main surface 414, which is connected to the upper side of the guide surface 415. The guide surface 415 may further include a first transition portion 4153 located above the first guide portion 4151. The first transition portion 4153 may be connected between the outer main surface 414 and the first guide portion 4151, and the first transition portion 4153 may be arc-shaped. By connecting the first guide portion 4151 and the remaining portion of the outer wall of the outer air guide plate 41 excluding the guide surface 415 (i.e., the outer main surface 414) through the first transition portion 4153 and making the first transition portion 4153 arc-shaped, a smooth transition can be made between the first guide portion 4151 and the outer main surface 414. In this way, when the condensed water on the outer main surface 414 flows to the first guide portion 4151, the condensed water can flow along the first transition portion 4153 to the first guide portion 4151, making the flow of the condensed water smoother and reducing the flow resistance of the condensed water.

[0133] In some optional embodiments of the present invention, referring to Figure 38The guide surface 415 may further include an arcuate second transition portion 4154, which is connected between the second guide portion 4152 and the first guide portion 4151. The second transition portion 4154 is arcuate. By connecting the second guide portion 4152 and the first guide portion 4151 via the second transition portion 4154 and making the second transition portion 4154 arcuate, a smooth transition can be achieved between the second guide portion 4152 and the first guide portion 4151. As the condensed water flowing through the first guide portion 4151 flows to the second guide portion 4152, the condensed water can flow along the second transition portion 4154 to the second guide portion 4152, thereby making the flow of the condensed water smoother and reducing the flow resistance of the condensed water.

[0134] According to some embodiments of the present invention, referring to Figure 38 At least a portion of the inner sidewall of the water receiving chamber 481 is formed as a drainage surface 482. The drainage surface 482 extends to the upper end surface of the water receiving tray 48. The drainage surface 482 extends obliquely from top to bottom toward the center of the water receiving chamber 481. This increases the water receiving area of ​​the water receiving chamber 481. When condensed water from the air guide assembly 50 falls onto the drainage surface 482 of the water receiving tray of the air guide assembly, the drainage effect of the drainage surface 482 can drain the condensed water into the water receiving chamber 481, further reducing the chance of condensed water from the air guide assembly 50 falling outside the water receiving tray 48, thereby alleviating safety hazards and reducing inconvenience caused to the user.

[0135] Optionally, refer to Figure 38 The part of the guide surface 415 located in the water receiving chamber 481 is opposite to the drainage surface 482 and is spaced apart, so that the space defined between the guide surface 415 and the drainage surface 482 can constitute at least a part of the above-mentioned guide space 483. The condensed water flowing downward from the air guide component 50 to the guide surface 415 and the condensed water falling from the air guide component 50 to the drainage surface 482 can both be accommodated in the guide space 483 and be quickly and smoothly guided into the water receiving chamber 481.

[0136] According to some embodiments of the present invention, referring to Figures 34-44 Combined with the diagram Figure 1-Figure 23 The outer air guide plate 41 is formed with a wind dispersing structure 411 through which air can pass. Thus, when the air guide component 4 is used in an air conditioner, the air conditioner can have a normal air supply mode and a windless mode. In the normal air supply mode, the air guide component 4 rotates to a position that opens the outlet end of the air outlet channel 11, at which point the air guide component 4 serves to adjust the wind direction. In the windless mode, the air guide component 4 rotates to a position that closes the outlet end of the air outlet channel 11, and the air flows into the room through the wind dispersing structure 411 on the air guide component 4, thereby dispersing the airflow and achieving a windless feeling.

[0137] According to some embodiments of the present invention, referring to Figures 34-44 The bottom surface of the outer air guide plate 41 can be spaced apart from the inner bottom wall of the water receiving chamber 481. By spaced apart from the bottom surface of the outer air guide plate 41 and the inner bottom wall of the water receiving chamber 481, a flow channel 484 is formed between the bottom surface of the outer air guide plate 41 and the inner bottom wall of the water receiving chamber 481. When the condensed water on the outer air guide plate 41 flows into the water receiving chamber 481 of the water receiving tray 48 through the guide surface 415, it can flow to other parts of the water receiving chamber 481 through the flow channel 484 in time, thereby preventing the condensed water from accumulating in some areas of the water receiving chamber 481 and overflowing outward. The inner air guide component 501 is arranged on the outer air guide plate 41 and the inner air guide component 501 is located on the inner side of the outer air guide plate 41 (the inner side means that when the air guide component 4 is rotated to the air outlet end to close the air outlet channel 11, the inner air guide component 501 is located on the side of the outer air guide plate 41 adjacent to the center of the whole machine), the water collecting tray 48 can be arranged on the bottom surface of the inner air guide component 501 and the water collecting tray 48 can be connected to the inner air guide component 501, so that the connection between the water collecting tray 48 and the air guide component 50 can be realized.

[0138] According to some embodiments of the present invention, referring to Figures 34-44 The inner air guide assembly 501 may include an inner air guide plate 43, which may be connected to the outer air guide plate 41. A water receiving tray 48 may be provided on the bottom surface of the inner air guide plate 43 and connected to the inner air guide plate 43, thereby enabling connection between the water receiving tray 48 and the air guide assembly 50. The inner air guide plate 43 and the water receiving tray 48 may be integrally formed, thereby reducing the number of assembly steps for the air guide component 4. Alternatively, the inner air guide plate 43 and the water receiving tray 48 may be independently formed parts, which are then independently processed and assembled. In this way, while the air guide assembly 50 has the same structure, water receiving trays 48 of different structures may be selected according to actual conditions.

[0139] According to some embodiments of the present invention, referring to Figure 38 , the bottom surface of the water receiving tray 48 can be provided with a water absorbing member 486. By providing the water absorbing member 486 on the bottom surface of the water receiving tray 48, the water absorbing member 486 can absorb the condensed water on the bottom surface of the water receiving tray 48, and can prevent the condensed water on the bottom surface of the water receiving tray 48 from falling to the ground or other components in the air conditioner. For example, during the rotation of the air guide component 4, even if a part of the air guide component 4 is located outside the air outlet 106 of the air conditioner, since the bottom surface of the air guide component 4 is provided with the water absorbing member 486, the water absorbing member 486 can absorb the condensed water on the bottom surface of the air guide component 4, and can prevent the condensed water on the bottom surface of the air guide component 4 from falling to the ground. Optionally, the water absorbing member 486 can be a sponge member.

[0140] According to some optional embodiments of the present invention, referring to Figure 38The projection of the inner bottom wall of the water receiving chamber 481 on the horizontal plane is located within the projection of the water absorbing member 486 on the horizontal plane. In this way, the positions on the bottom surface of the water receiving tray 48 where condensed water is easily generated are covered by the water absorbing member 486, so that the water absorbing member 486 can better absorb the condensed water generated on the bottom surface of the water receiving tray 48.

[0141] According to some optional embodiments of the present invention, referring to Figure 38 The bottom surface of the water receiving tray 48 is formed with a receiving groove 485, and the water absorber 486 is disposed within the receiving groove 485. The provision of the receiving groove 485 facilitates the installation of the water absorber 486. Optionally, the bottom surface of the water absorber 486 is flush with the bottom surface of the water receiving tray 48, which not only makes the structure compact but also allows the water absorber 486 to have a larger volume, thereby providing a greater water absorption capacity.

[0142] According to some embodiments of the present invention, referring to Figures 34-44 The outer air guide plate 41 may be formed with a wind dispersing structure 411 through which air can pass, and the wind dispersing structure 411 may include a plurality of wind dispersing holes. The inner air guide assembly 501 may include an inner air guide plate 43, a guide vane assembly 46, and a louver mechanism 47. The inner air guide plate 43 may be connected to the outer air guide plate 41, and the guide vane assembly 46 may be provided on the inner air guide plate 43. The guide vane assembly 46 may include rotatable blades 461, which are arranged in a plurality of intervals along the length direction (e.g., the up and down direction) of the inner air guide plate 43. The blades 461 are located between the outer air guide plate 41 and the inner air guide plate 43. Air holes 433 are formed on the inner air guide plate 43 at positions opposite to the blades 461. The number of air holes 433 is the same as that of the blades 461 and they correspond one to one. The louver mechanism 47 is provided on the side of the inner air guide plate 43 away from the outer air guide plate 41. The louver mechanism 47 can adjust the direction of the airflow. The water receiving tray 48 is connected to at least one of the outer air guide plate 41 and the inner air guide plate 43. For example, the water receiving tray 48 can be connected to the outer air guide plate 41, the water receiving tray 48 can also be connected to the inner air guide plate 43, or the water receiving tray 48 is connected to both the outer air guide plate 41 and the inner air guide plate 43.

[0143] When the air guide component 4 is used in an air conditioner, the airflow can first flow through the plurality of moving blades 461. The rotating moving blades 461 can form a swirling flow. The airflow passing through the moving blades 461 passes through the air holes 433, and then is guided by the louver mechanism 47 to the outer air guide plate 41. Finally, it is blown into the room through the wind dispersing structure 411 on the outer air guide plate 41. In this way, the airflow after passing through the air guide assembly 50 can be made softer and more similar to natural wind.

[0144] For example, in some specific embodiments of the present invention, referring to Figures 34-44The air guide assembly 50 includes an outer air guide plate 41 and an inner air guide assembly 501. The inner air guide assembly 501 includes an inner air guide plate 43, a guide vane assembly 46, and a louver mechanism 47. The inner air guide plate 43 can be connected to the outer air guide plate 41. The water receiving tray 48 is provided on the bottom surface of the inner air guide plate 43 and is connected to the inner air guide plate 43. The guide vane assembly 46 and the louver mechanism 47 are both provided on the inner air guide plate 43. The guide vane assembly 46 can include stationary vanes 462 and rotatable moving vanes 461. The moving vanes 461 are arranged in a plurality of intervals in the vertical direction and are located between the outer air guide plate 41 and the inner air guide plate 43. The inner air guide plate 43 has air holes 433 formed opposite the moving blades 461. The number of air holes 433 is the same as the number of moving blades 461, and they correspond one-to-one. Each air hole 433 is equipped with a stationary blade 462, which is fixed relative to the inner air guide plate 43. A louver mechanism 47 is provided on the side of the inner air guide plate 43 away from the outer air guide plate 41. The louver mechanism 47 includes a connecting rod 471 that extends and moves in the vertical direction, and a plurality of louvers 472 that are spaced apart in the vertical direction. Each louver 472 is rotatably connected to the connecting rod 471 and the inner air guide plate 43. The number of louvers 472 is the same as the number of air holes 433, and they correspond one-to-one. Specifically, each stationary blade 462 arranged in the air hole 433 has a stationary blade hub 4621, each moving blade 461 has a moving blade shaft 4611, and each louver 472 has a louver shaft 4721. The louver shaft 4721 of each louver 472 is connected to the moving blade shaft 4611 of the corresponding moving blade 461 and is relatively fixed. The moving blade shaft 4611 of each moving blade 461 is rotatably engaged in the corresponding stationary blade hub 4621. Each moving blade 461 is connected to the louver shaft 4721, and when the louver shaft 4721 rotates, it can synchronously drive the corresponding moving blade 461 to rotate.

[0145] Among them, reference Figures 8-11 The shutter drive mechanism 3 for driving the shutter mechanism 47 to move can be arranged below the shutter mechanism 47. The shutter drive mechanism 3 can include a shutter drive motor 31, a drive gear 32, and a drive rack 33. The drive gear 32 is connected and fixed to the motor shaft of the shutter drive motor 31. The drive gear 32 is engaged with the drive rack 33, and the drive rack 33 is connected to the connecting rod 471. When the shutter drive motor 31 is working, it drives the drive gear 32 to rotate. Through the engagement of the drive gear 32 and the drive rack 33, the drive rack 33 can be driven to move in the up and down direction, thereby driving the connecting rod 471 to move in the up and down direction, and then driving the multiple shutters 472 to swing. The multiple shutters 472 can be swung to a set direction, or the multiple shutters 472 can be swung back and forth.

[0146] Further, refer to Figure 43 and Figure 46The air guide component 4 may further include a sliding assembly 49, which is provided at the lower end of the air guide component 50. The sliding assembly 49 includes a mounting block 491, a slider 492, and a sliding cover 493, wherein the mounting block 491 may be detachably mounted on the inner air guide plate 43. For example, a mounting opening 434 is formed at the lower end of the inner air guide plate 43, and the mounting block 491 engages with the mounting opening 434, and the mounting block 491 is fixed relative to the inner air guide plate 43. A sliding groove 4911 extending in the vertical direction is formed on the mounting block 491, and the slider 492 slidably engages with the sliding groove 4911 in the vertical direction. The connecting rod 471 is connected to the slider 492, and the above-mentioned drive rack 33 is also connected to the slider 492. The sliding cover 493 may be provided to cover the side of the slider 492 connected to the connecting rod 471. When the louver drive motor 31 is working, it drives the drive gear 32 to rotate. Through the engagement of the drive gear 32 and the drive rack 33, the drive rack 33 can be driven to move in the up and down directions, thereby driving the slider 492 to move in the up and down directions. During the movement of the slider 492, it slides along the slide groove 4911, so that the slider 492 can move stably in the up and down directions, and can also drive the connecting rod 471 to move stably in the up and down directions, thereby driving multiple louvers 472 to swing, and can make multiple louvers 472 swing to the set direction, and can also make multiple louvers 472 swing back and forth.

[0147] Among them, the wind guide drive mechanism 2 for driving the wind guide component 4 to rotate can be arranged above the wind guide component 4, and the wind guide drive mechanism 2 can include a motor. The wind guide component 4 can also include a connector 40, which is arranged at the upper end of the wind guide assembly 50. The connector 40 has a locked state and an unlocked state. The connector 40 includes a connecting portion 401 and a positioning portion 402. The positioning portion 402 can be switched between a first position and a second position relative to the connecting portion 401. The wind guide drive mechanism 2 is suitable for being connected to the connecting portion 401 to drive the wind guide component 4 to rotate. An installation and positioning structure for installing and positioning the connector 40 on the wind guide assembly 50 is formed on the wind guide assembly 50. The installation and positioning structure includes a locking structure that cooperates with the positioning portion 402.

[0148] When the positioning portion 402 is engaged with the locking structure, the positioning portion 402 is in the first position and the connector 40 is in the locked state, thereby fixing the connector 40 relative to the air guide assembly 50 and connecting the air guide assembly 50 with the air guide drive mechanism 2, thereby conveniently achieving the connection between the air guide component 4 and the air guide drive mechanism 2. When the positioning portion 402 is disengaged from the locking structure, the positioning portion 402 is in the second position and the connector 40 is in the unlocked state. At this time, the connector 40 can be removed from the air guide assembly 50 in the downward direction, and at the same time, the connector 40 can be disengaged from the air guide drive mechanism 2, thereby achieving the separation of the air guide component 4 from the air guide drive mechanism 2, thereby facilitating the removal of the air guide component 4. For example, when the air guide component 4 needs maintenance, the air guide component 4 can be conveniently removed. When the air guide component 4 needs to be installed, the connecting member 40 can be installed on the air guide assembly 50. For example, the connecting part 401 can be connected to the air guide drive mechanism 2, and the positioning part 402 can be coordinated with the locking structure, so that the connecting member 40 can be installed and fixed on the air guide assembly 50, and at the same time, the connecting member 40 can also be connected to the air guide drive mechanism 2, so that the installation of the air guide component 4 can be easily achieved.

[0149] The positioning portion 402 can be switched between the first position and the second position by elastic deformation, and the positioning portion 402 is in a natural state in the first position. By applying a force to the positioning portion 402, the positioning portion 402 is deformed, so that the positioning portion 402 is switched between the first position and the second position, and the positioning portion 402 is conveniently matched with and disengaged from the locking structure, thereby conveniently achieving the unlocking and locking of the connector 40. In addition, by making the positioning portion 402 be in a natural state when in the first position, the connector 40 will not be affected by its own elastic restoring force when it is in the locked state, so that the connector 40 is more reliably and stably installed and fixed on the air guide assembly 50. Optionally, an elastic opening 4022 is formed on the positioning portion 402, so that the elastic deformation capacity of the positioning portion 402 can be further increased.

[0150] Specifically, refer to Figure 42 and Figure 47The mounting and positioning structure includes a mounting hole 451 formed on the inner air guide plate 43 and a locking structure. The locking structure includes an elastic buckle 435. The mounting hole 451 is formed on the second inner plate portion 450 of the inner air guide plate 43. The connecting portion 401 is inserted through the mounting hole 451 and fixed relative to the mounting hole 451. A limiting protrusion 4021 is also formed on the positioning portion 402. When the connecting member 40 is in the locked state, the connecting portion 401 is inserted through the mounting hole 451 and is suitable for connecting to the air guide drive mechanism 2. The positioning portion 402 abuts against the inner air guide plate 43. The elastic buckles 435 are located on opposite sides of the positioning portion 402 in the left-right direction and are engaged with the positioning portion 402. The limiting protrusion 4021 abuts against the elastic buckle 435 in the upper and lower directions. Therefore, the connecting member 40 can be installed and fixed on the air guide assembly 50, thereby achieving the connection between the air guide component 4 and the air guide drive mechanism 2, making the assembly of the air guide component 4 convenient. When the connector 40 is in the unlocked state, the connector 401 can be disengaged from the mounting hole 451 in the downward direction, thereby disengaging the air guide component 4 from the air guide drive mechanism 2, thereby enabling the removal of the air guide component 4. An axial hole 4011 can be formed in the connector 401, into which the drive shaft of the air guide drive mechanism 2 engages. Applying a force in the upward and downward directions to the connector 40 can disengage the drive shaft of the air guide drive mechanism 2 from the axial hole 4011 of the connector 40, thereby disengaging the connector 40 from the mounting hole 451.

[0151] For example, when the air guide component 4 needs to be removed, the positioning portion 402 can be disengaged from the elastic snap 435, thereby placing the connector 40 in an unlocked state. At this time, a force can be applied to the connector 40 in a downward direction away from the air guide drive mechanism 2, thereby disengaging the connector 40 from the air guide drive mechanism 2, thereby conveniently achieving the removal of the air guide component 4. When the air guide component 4 needs to be installed on the entire machine, the connecting portion 401 of the connector 40 can be engaged with the mounting hole 451 on the inner air guide plate 43, thereby engaging the positioning portion 402 with the elastic snap 435, thereby securing the connector 40 to the air guide assembly 50 and simultaneously connecting the connecting portion 401 of the connector 40 to the air guide drive mechanism 2, thereby conveniently achieving the installation of the air guide component 4.

[0152] Reference Figure 1-Figure 23The air outlet frame assembly according to the second embodiment of the present invention includes: an air outlet frame 1 and an air guide component 4. The air outlet frame 1 is formed with at least one air outlet channel 11. For example, the air outlet frame 1 can be formed with one air outlet channel 11. The air outlet frame 1 can also be formed with multiple air outlet channels 11. For example, the air outlet frame 1 is formed with two air outlet channels 11. The air guide component 4 is the air guide component 4 according to the first embodiment of the present invention. The air guide component 4 is rotatably disposed in the air outlet channel 11. The air guide drive mechanism 2 for driving the air guide component 4 to rotate can be disposed on the air outlet frame 1 and located on one side of the air outlet channel 11.

[0153] According to the air outlet frame assembly of the embodiment of the present invention, by providing the above-mentioned air guide component 4, the air guide component 4 is simple and convenient to assemble and disassemble, which solves the problem that the inner and outer layer structures of the air guide component 4 are difficult to disassemble and the disassembly process is easy to cause damage, and also makes the internal cleaning of the air guide component 4 more convenient.

[0154] In some embodiments of the present invention, when the air guide component 4 includes the above-mentioned water receiving tray 48, the water receiving tray 48 may not be provided with a drainage hole, and the condensed water received in the water receiving cavity 481 of the water receiving tray 48 can be evaporated by natural drying.

[0155] In other embodiments of the present invention, when the air guide component 4 includes the aforementioned water receiving pan 48, a drainage hole may be provided on the water receiving pan 48, and an air outlet frame water receiving pan may be formed on the bottom surface of the air outlet channel 11. Condensed water received in the water receiving cavity 481 of the water receiving pan 48 may be discharged into the air outlet frame water receiving pan through the drainage hole. In this embodiment, the condensed water flowing into the air outlet frame water receiving pan may also be evaporated by natural air drying; alternatively, a drainage channel may be formed on the air outlet frame water receiving pan, and the condensed water flowing into the air outlet frame water receiving pan may flow through the drainage channel into the heat exchanger water receiving pan on the bottom surface of the heat exchanger component 6. For example, the heat exchanger water receiving pan may be connected to the air outlet frame water receiving pan, and the heat exchanger water receiving pan may be lower than the air outlet frame water receiving pan.

[0156] Reference Figure 1-Figure 23 The air conditioner according to the third embodiment of the present invention includes: an air outlet frame assembly according to the above-mentioned second embodiment of the present invention.

[0157] According to the air conditioner of the embodiment of the present invention, by providing the above-mentioned air outlet frame assembly, the air guide component 4 is made to be easy to assemble and disassemble, thereby solving the problem that the inner and outer layer structures of the air guide component 4 are difficult to disassemble and the disassembly process is prone to damage, and also making the internal cleaning of the air guide component 4 more convenient.

[0158] Optionally, the air conditioner can be a split-type air conditioner or an integrated air conditioner. When the air conditioner is a split-type air conditioner, the air conditioner can be a split wall-mounted air conditioner or a split floor-standing air conditioner. When the air conditioner is a split-type air conditioner, the air conditioner includes an indoor air conditioner unit 1000 and an outdoor air conditioner unit, wherein the indoor air conditioner unit includes the above-mentioned air outlet frame assembly.

[0159] Specifically, the air conditioner indoor unit 1000 includes a housing 100, a heat exchanger component 6, a fan component 5, an air outlet frame 1, and an air guide component 4. The housing 100 includes a front panel 101, a back panel 102, a top cover 104, and a base 103. The air outlet frame 1 is connected to the front end of the back panel 102, the front panel 101 is connected to the front side of the air outlet frame 1, and the top cover 104 and base 103 are respectively connected to the upper and lower sides of the back panel 102. The heat exchanger component 6 and the fan component 5 are both disposed within the housing 100 and located within the space defined by the air outlet frame 1 and the housing 100. At least one air outlet channel 11 is formed on the air outlet frame 1, and the air guide component 4 is rotatably disposed in the air outlet channel 11. An air outlet 106 is formed on the housing 100 at a position opposite the air outlet side of the air outlet duct 11. The air outlet 106 can be defined between the front panel 101 and the back panel 102. The back panel 102 is formed with an air inlet 105. A switch door 107 can also be provided at the air outlet 106. The switch door 107 is slidably provided on the housing 100 along the circumference of the housing 100. The air outlet 106 can be opened and closed by sliding the switch door 107.

[0160] When the air conditioner is operating, the door 107 opens the air outlet 106, and the fan component 5 operates, driving external air from the air inlet 105 into the housing 100 to exchange heat with the heat exchanger component 6. The heat-exchanged air then flows through the air outlet duct 11. During the airflow through the air outlet duct 11, the airflow is guided or dispersed by the air guide component 4 before being blown out of the air outlet 106 into the room, thereby regulating the indoor ambient temperature. When the air conditioner is turned off, the door 107 closes the air outlet 106.

[0161] Optionally, the working modes of the air conditioner may include a normal air supply mode and a no-wind mode. When the air conditioner is in the normal air supply mode, the air guide component 4 rotates to the position of opening the air outlet end of the air outlet channel 11, and the air flow mainly flows from one side or both sides of the air guide component 4 to the air outlet 106; when the air conditioner is in the no-wind mode, the air guide component 4 rotates to the position of closing the air outlet end of the air outlet channel 11, and the air flow passes through the air guide component 4 and is blown out more softly from the air outlet 106 through the wind dispersing effect of the air guide component 4.

[0162] Optionally, an air outlet channel 11 may be formed on the air outlet frame 1 . In this case, there is only one air outlet 106 and it is opposite to the air outlet channel 11 . The fan component 5 may include a wind wheel 51 , and the wind wheel 51 may be a cross-flow wind wheel 51 .

[0163] Optionally, two air outlet channels 11 may also be formed on the air outlet frame 1. In this case, there are two air outlets 106, and the two air outlets 106 are opposite to the two air outlet channels 11 respectively. The fan component 5 may include two wind wheels 51, and both wind wheels 51 may be cross-flow wind wheels 51. The two wind wheels 51 are respectively arranged corresponding to the two air outlet channels 11, and the two wind wheels 51 respectively drive the airflow into the corresponding air outlet channels 11.

[0164] In some embodiments of the present invention, the air conditioner indoor unit 1000 may include a heat exchange unit 200 and an air handling unit 300. The heat exchange unit 200 and the air handling unit 300 are located within the housing 100 and may be arranged along the length of the housing 100. The heat exchange unit 200 includes the aforementioned heat exchanger component 6, fan component 5, air outlet frame 1, and air guide component 4. The air handling unit 300 may have at least one of fresh air, humidification, and purification functions, thereby improving the quality of the indoor environment.

[0165] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples" means that a specific feature, structure, material, or characteristic described in conjunction with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, illustrative uses of the above 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.

[0166] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to the embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the claims and their equivalents.

Claims

1. An air guide component, characterized in that: The wind guide component includes a wind guide assembly, and the wind guide assembly includes: External air deflector; an inner air guide assembly, the inner air guide assembly being disposed on the outer air guide plate and located on the inner side of the outer air guide plate; 18. The foldable airbag of claim 17, wherein the at least one airbag is configured to be folded relative to the first and second airbags and to extend the life of the at least one airbag from a source of tension.

2. The air guide component according to claim 1, characterized in that: A step surface is formed between the sliding area and the limiting area, and at least a portion of the inner wall surface of the limiting area connected to the step surface is formed as a guide surface. The guide surface extends to the step surface, and in the direction from the limiting area to the sliding area, the guide surface extends obliquely toward the direction adjacent to the outer air guide plate.

3. The air guide component according to claim 1, characterized in that: A second limiting buckle is formed on the outer air guide plate, and a second limiting groove is formed on the inner air guide plate. The second limiting groove includes a first limiting section and a second limiting section arranged along the length direction of the inner air guide plate. The second limiting buckle is suitable for first fitting into the first limiting section, and then sliding into the second limiting section in the second limiting groove along the length direction of the inner air guide plate.

4. The air guide component according to claim 1, characterized in that A first fixing hole is formed on the outer air guide plate, a second fixing hole is formed on the inner air guide assembly, and fasteners are passed through the first fixing hole and the second fixing hole.

5. The air guide component according to claim 4, characterized in that: The outer air guide plate includes an outer air guide plate body and an outer plate portion provided on one side of the length direction of the outer air guide plate body, and the first fixing hole is formed on the outer plate portion; the inner air guide plate includes an inner air guide plate body and an inner plate portion provided on one side of the length direction of the inner air guide plate, the inner plate portion includes a first inner plate portion and a second inner plate portion located on opposite sides in the thickness direction of the inner air guide plate body, and the second fixing hole is formed on the first inner plate portion.

6. The air guide component according to claim 5, characterized in that: The outer plate portion is located on a side of the first inner plate portion away from the outer air deflector body, and a surface of the outer plate portion away from the outer air deflector body is flush with a surface of the second inner plate portion away from the inner air deflector body.

7. The air guide component according to claim 5, characterized in that: The first limiting buckle is formed at both ends of the outer air guide plate body in the width direction, the first limiting groove is formed on the side wall of the inner air guide plate body in the width direction, and the sliding area and the limiting area are arranged in the length direction of the inner air guide plate body.

8. The air guide component according to claim 1, characterized in that: include: a water receiving tray, wherein a water receiving cavity is defined in the water receiving tray and the water receiving tray is provided on the bottom surface of the air guide assembly to receive condensed water on the air guide assembly; Among them, the part of the outer wall surface of the outer air guide plate adjacent to the water receiving tray is formed as a guide surface, and the guide surface extends to the bottom surface of the outer air guide plate. The projection of the bottom edge of the guide surface adjacent to the water receiving tray on the horizontal plane is located within the projection of the water receiving chamber on the horizontal plane.

9. The air guide component according to claim 8, characterized in that: At least a portion of the guide surface is located in the water receiving cavity, and a portion of the inner side wall of the water receiving cavity opposite to the guide surface is spaced apart from the guide surface to form a guide space.

10. The air guide component according to claim 8, characterized in that: The portion of the outer wall of the outer air guide plate adjacent to the water receiving tray is recessed inward to form the guide surface.

11. The air guide component according to claim 8, characterized in that: The guide surface includes a first guide portion and a second guide portion, the first guide portion is connected to the upper side of the second guide portion, the first guide portion is located above the water receiving tray, at least a portion of the second guide portion is located in the water receiving cavity, and the angle between the first guide portion and the vertical direction is greater than the angle between the second guide portion and the vertical direction.

12. The air guide component according to claim 8, characterized in that: The projection of the guide surface on the horizontal plane is located within the projection of the water receiving tray on the horizontal plane.

13. The air guide component according to claim 8, characterized in that: At least a portion of the inner side wall of the water receiving chamber is formed as a drainage surface, which extends to the upper end surface of the water receiving tray. The drainage surface extends obliquely from top to bottom toward a direction adjacent to the center of the water receiving chamber.

14. The air guide component according to claim 8, characterized in that: The bottom surface of the outer air guide plate is spaced apart from the inner bottom wall of the water receiving cavity, and the water receiving tray is arranged on the bottom surface of the inner air guide assembly and is connected to the air guide assembly.

15. The air guide component according to claim 8, characterized in that: The inner air guide assembly includes an inner air guide plate, which is connected to the outer air guide plate. The water receiving tray is arranged on the bottom surface of the inner air guide plate and is connected to the inner air guide plate. The inner air guide plate and the water receiving tray are integrally formed or both are independent molded parts.

16. The air guide component according to any one of claims 8 to 15, characterized in that: The bottom surface of the water receiving tray is provided with a water absorbing member.

17. An air outlet frame assembly, characterized in that: include: an air outlet frame, wherein at least one air outlet channel is formed on the air outlet frame; An air guide component, wherein the air guide component is the air guide component according to any one of claims 1 to 16, and the air guide component is rotatably arranged in the air outlet channel.

18. An air conditioner, characterized in that: include: The air outlet frame assembly according to claim 17.

Citation Information

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