Panel member and air conditioning device

By designing a movable carrier frame and air guide components, the problem of limited air outlet range of the air conditioning unit was solved, enabling air delivery over a wider range and longer distance, thus improving the air delivery efficiency and user experience of the air conditioning unit.

CN224534457UActive Publication Date: 2026-07-21GD MIDEA AIR CONDITIONING EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GD MIDEA AIR CONDITIONING EQUIP CO LTD
Filing Date
2025-07-25
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

When the air outlet direction of an existing air conditioning unit is at a large angle to the direct airflow from the outlet, it is easily blocked by obstacles, resulting in a limited actual airflow range.

Method used

Design a panel component that allows the air guide to move outward through the movement of the carrier frame relative to the air outlet, thereby expanding the air supply range and changing the air outlet direction to avoid obstruction by obstacles.

Benefits of technology

It expands the air delivery range, reduces energy loss of airflow near the air outlet, achieves air delivery over a wider range and longer distance, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a panel component and air conditioning device, panel component includes panel and air outlet subassembly, and the air outlet is formed on the panel, and air outlet subassembly is located at the air outlet, and includes carrier frame and air deflector, and the air deflector is at least one and movably located in carrier frame relative to carrier frame, and carrier frame can move relative to panel to make at least one air deflector can move out relative to air outlet. According to the panel component of the utility model, by setting carrier frame movable relative to panel, so that the air deflector can move out relative to the air outlet, when the air deflector moves out, the air deflector guides the airflow to change the air outlet direction and is no longer blocked and limited by the nearby obstacles of the air outlet, thereby can guide the airflow to a larger range, and the air supply range is expanded, and meanwhile, the vortex or backflow of the airflow at the nearby obstacles of the air outlet is reduced, and the energy loss of the airflow at the air outlet is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of air conditioning technology, and in particular to a panel component and an air conditioning device. Background Technology

[0002] In related technologies, air conditioning devices rectify and guide the airflow by installing air guide plates at the air outlet. However, the larger the angle between the airflow direction and the positive airflow direction at the air outlet, the easier it is for the air outlet to be blocked by obstacles near the air outlet, which limits the actual airflow range of the air conditioning device and needs to be improved. Utility Model Content

[0003] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention provides a panel component whose air guide can be moved outward relative to the air outlet under the action of the carrier frame, thereby enabling the airflow to be directed over a wider area and expanding the air delivery range.

[0004] This utility model also proposes an air conditioning device having the above-mentioned panel components.

[0005] According to a first aspect of the present invention, the panel component includes a panel and an air outlet assembly. An air outlet is formed on the panel. The air outlet assembly is disposed at the air outlet and includes a carrier frame and an air guide. The air guide is at least one and is movably disposed on the carrier frame relative to the carrier frame. The carrier frame is movable relative to the panel so that at least one air guide can be moved outward relative to the air outlet.

[0006] According to the panel component of this utility model embodiment, by setting the carrier frame to move relative to the panel, the air guide component can move relative to the carrier frame, so that the air guide component can be moved outward relative to the air outlet or located at the air outlet, thereby enabling the air guide component to guide air in multiple positions, thereby exporting airflow over a larger range and expanding the air supply range; secondly, after the air guide component moves outward, when the air guide component guides the airflow to change the air outlet direction, it is no longer blocked or restricted by obstacles near the air outlet, thereby exporting airflow over a larger range and expanding the air supply range; at the same time, it also reduces the formation of vortices or backflows of airflow at obstacles near the air outlet, reduces the energy loss of airflow at the air outlet, and enables the airflow to be blown to a greater distance, thereby meeting the user's needs for a larger air supply range and a greater delivery distance in different scenarios.

[0007] In some embodiments, the air guide includes a first air guide plate, which is formed as an elongated plate extending along a first direction. The first air guide plate is rotatably connected to the carrier frame and is rotatable about a first axis extending along the first direction. The movement of the carrier frame relative to the panel is configured such that the first axis can move toward the outside of the air outlet.

[0008] In some embodiments, there are one or more first air guide plates, and the carrier frame is configured to move relative to the panel such that the first axis of at least one first air guide plate can move to the outside of the air outlet.

[0009] In some embodiments, a plurality of the first air guide plates are arranged side by side as an air guide group along a second direction perpendicular to the first direction, and the carrier frame is rotatable relative to the panel to rotate about a second axis extending along the first direction, the second axis being located on one side of the air guide group in the second direction.

[0010] In some embodiments, the carrier frame is movably connected to the panel.

[0011] In some embodiments, the carrier frame is rotatably connected to the panel.

[0012] In some embodiments, the carrier frame is rotatable relative to the panel, and the carrier frame is rotatable about a second axis extending along the length direction of the carrier frame, the second axis being located at one end in the width direction of the carrier frame.

[0013] In some embodiments, the carrier frame includes a first border that extends along the length of the carrier frame and is located on a side of the carrier frame away from the second axis in the width direction, and the first border is formed in a curved shape that protrudes in a direction away from the second axis.

[0014] In some embodiments, the carrier frame includes a grid frame, the grid frame including vertical grid strips extending along the length direction of the carrier frame, the vertical grid strips being multiple and spaced apart along the width direction of the carrier frame.

[0015] In some embodiments, the vertical grid strips are formed in a curved shape that protrudes in a direction away from the second axis.

[0016] In some embodiments, the extension dimension of the vertical grille bar along the airflow direction is the guide width of the vertical grille bar; wherein, among two adjacent vertical grille bars, the guide width of the vertical grille bar relatively far from the second axis is greater than or equal to the guide width of the vertical grille bar relatively close to the second axis; and / or, the carrier frame includes a first frame extending along the length direction of the carrier frame and disposed on the side of the carrier frame away from the second axis in the width direction, the extension dimension of the first frame along the airflow direction is the guide width of the first frame, and the guide width of the first frame is greater than the guide width of any of the vertical grille bars.

[0017] In some embodiments, the carrier frame includes a first border that extends along the length of the carrier frame and is located on a side of the carrier frame away from the second axis in the width direction. At least a portion of the first border is movable outside the air outlet, and the first border is clearance-fitted with the corresponding side edge of the air outlet.

[0018] In some embodiments, the air guide includes a first air guide plate, which is formed as an elongated strip plate extending along a first direction. The first air guide plate is rotatably connected to the carrier frame and is rotatable about a first axis extending along the first direction. When the first air guide plate is in a closed state, the first axis is located at the end of the first air guide plate away from the second axis. The first air guide plate includes an edge air guide plate disposed near the first frame. When the edge air guide plate is rotated to a preset position, the first frame can guide air to the edge air guide plate. The first frame and the edge air guide plate together form an extended air guiding surface.

[0019] In some embodiments, when the edge air guide plate is rotated to a preset position, the air guiding direction of the first frame is substantially the same as the air guiding direction of the edge air guide plate, and / or, one end of the first frame overlaps with one end of the edge air guide plate, and / or, the minimum distance between the first frame and the edge air guide plate is less than 10mm.

[0020] In some embodiments, the carrier frame is rotatably connected to the panel, such that the carrier frame is rotatable relative to the panel about the second axis.

[0021] In some embodiments, a rotational fitting structure is provided at both ends of the carrier frame along its length, and a first driving device is provided at both ends of the panel along the length of the carrier frame. The first driving device cooperates with the rotational fitting structure to drive the carrier frame to rotate relative to the panel around the second axis.

[0022] In some embodiments, the rotational engagement structure includes a first pivot structure and a first driven member, and the first driving device includes a second pivot structure, a first motor and a first gear. The first pivot structure and the second pivot structure are rotatably engaged so that the carrier frame can rotate about the second axis. The first gear meshes with the first driven member, and the first motor is connected to the first gear so that the carrier frame is driven to rotate about the second axis relative to the panel through the meshing of the first gear and the first driven member.

[0023] In some embodiments, the panel includes a panel support, on which the air outlet is formed. The panel support has a first base at each end of the air outlet along its length. The first base includes a partition, an outer mounting base, and an inner mounting base. An inner mounting area and an outer mounting area are respectively provided on the inner and outer sides of the partition. A first through hole is formed on the partition, connecting the inner mounting area and the outer mounting area. The outer mounting base is located in the outer mounting area and carries the second pivot structure. The inner mounting base is located in the inner mounting area and carries the first motor. The first gear is located in the inner mounting area. The end of the carrier frame along its length is located in the outer mounting area. The first pivot structure and the second pivot structure are connected in the outer mounting area. The first driven member passes through the first through hole and meshes with the first gear in the inner mounting area.

[0024] In some embodiments, the carrier frame includes a grid frame having grid ventilation holes, and the air guide is disposed on the air outlet side of the grid frame, located downstream of the grid ventilation holes.

[0025] In some embodiments, the air guide includes a first air guide plate, which is formed as an elongated strip plate extending along the length direction of the grille frame. There are multiple first air guide plates arranged side by side along the width direction of the grille frame. Each first air guide plate is rotatably engaged with the grille frame via a first pivot, so as to be rotatable about a first axis extending along the length direction of the grille frame.

[0026] In some embodiments, a plurality of adjacent first air guide plates form an air guide group. Each first air guide plate in the same air guide group has a second rotating shaft arranged parallel to the first rotating shaft. The second rotating shafts of a plurality of first air guide plates in the same air guide group are connected by a connecting rod so that the connecting rod drives each first air guide plate in the air guide group to rotate synchronously. Each of the two ends of the length direction of one of the first air guide plates in the air guide group has a transmission structure. The grille frame is provided with a second driving device at the corresponding transmission structure. The second driving device cooperates with the transmission structure to drive the first air guide plate to rotate around the first axis.

[0027] In some embodiments, the carrier frame includes a second base disposed at both ends of the length of the grille frame, the second base defining a mounting groove that opens along the length of the grille frame toward a direction away from the grille frame, a second through hole formed on the second base located on the side of the mounting groove, a second driving device disposed in the mounting groove and including a second motor and a second gear, the transmission structure being configured as a second driven member, the second driven member passing through the second through hole and meshing with the second gear, the second motor being connected to the second gear to drive the first air guide plate to rotate through the meshing of the second gear and the second driven member.

[0028] In some embodiments, each of the two ends of the length of the first air guide plate has a bracket on one side in the thickness direction. The bracket has a second rotating shaft and a first shaft hole. The second base has a second shaft hole coaxially arranged with the first shaft hole. The second follower has a third shaft hole coaxially arranged with the second shaft hole. The first rotating shaft passes through the first shaft hole, the second shaft hole and the third shaft hole in sequence, and its two ends are stopped on both sides of the bracket and the second follower.

[0029] In some embodiments, an air inlet is formed on the panel, and the air inlet and the air outlet are spaced apart.

[0030] In some embodiments, the panel includes a panel support and an air inlet grille, the air outlet is formed on the panel support, the air inlet grille covers the panel support and defines the air inlet; and / or, the air inlet and the air outlet are arranged along the width direction of the panel support, and in the length direction of the panel, the length of the air inlet and the length of the air outlet assembly are both greater than 1 / 2 of the length of the panel.

[0031] In some embodiments, the carrier frame is rotatably connected to the panel so as to be rotatable about a second axis extending along the length direction of the carrier frame, the second axis extending along the length direction of the panel support and located at the end of the carrier frame away from the air inlet in the width direction of the panel; and / or, in the width direction of the panel, the width of the air inlet is greater than the width of the air outlet assembly, and the sum of the width of the air inlet and the width of the air outlet assembly is greater than 4 / 5 of the width of the panel.

[0032] An air conditioning device according to a second aspect of the present invention includes a panel component according to a first aspect of the present invention.

[0033] According to the embodiments of the present invention, the air conditioning device increases the air outlet range by providing the panel component described in the first aspect.

[0034] In some embodiments, the air conditioning device includes a rear compartment component that cooperates with the panel component to define an accommodating space between the rear compartment component and the panel component, and the air conditioning device includes a ventilation and heat exchange component disposed within the accommodating space.

[0035] In some embodiments, the air conditioning device is embedded, and the air conditioning device includes an air conditioning body, the air conditioning body includes a housing and a ventilation and heat exchange component disposed within the housing, the housing has an air outlet area, the air conditioning body is adapted to be embedded in a cabinet with an opening, the panel component is disposed on the outside of the air conditioning body and is adapted to cover the opening of the cabinet, and the air outlet is correspondingly connected to the air outlet area.

[0036] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0037] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0038] Figure 1 This is a schematic diagram of a panel component according to an embodiment of the present invention;

[0039] Figure 2 yes Figure 1 An exploded view of the panel component shown;

[0040] Figure 3 This is a horizontal cross-sectional view of an air conditioning device having a panel component according to an embodiment of the present invention;

[0041] Figure 4 This is a horizontal cross-sectional view of an air conditioning device having a panel component according to an embodiment of the present invention;

[0042] Figure 5 yes Figure 2 A schematic diagram of the air guide component shown;

[0043] Figure 6 yes Figure 3 Enlarged view of point B shown;

[0044] Figure 7 yes Figure 4 Enlarged view of point C shown;

[0045] Figure 8 yes Figure 1 A schematic diagram of the back of the panel component shown;

[0046] Figure 9 yes Figure 8 Enlarged view of point D shown;

[0047] Figure 10 yes Figure 2 Enlarged view of point A shown in the image;

[0048] Figure 11 yes Figure 5 A top view of the air guide shown;

[0049] Figure 12 yes Figure 5 An exploded view of the air guide component shown;

[0050] Figure 13 yes Figure 3 A schematic diagram of the air guide assembly shown;

[0051] Figure 14 yes Figure 13 Enlarged view of point M shown;

[0052] Figure 15 yes Figure 1 A vertical cross-sectional view of the panel component shown;

[0053] Figure 16 yes Figure 15 The enlarged view at point N shown;

[0054] Figure 17 yes Figure 12 Enlarged view of point E shown;

[0055] Figure 18 yes Figure 12 The enlarged view at point F shown;

[0056] Figure 19 yes Figure 1 A front view of the panel component shown;

[0057] Figure 20 This is a schematic diagram of an air conditioning device according to an embodiment of the present invention;

[0058] Figure 21 yes Figure 20 An exploded view of the air conditioning unit shown in the image;

[0059] Figure 22 This is a schematic diagram of the embedded installation of an air conditioning device according to an embodiment of the present utility model;

[0060] Figure 23 yes Figure 22The image shows a horizontal cross-sectional view of the air conditioning unit.

[0061] Figure label:

[0062] Air conditioning unit 1000;

[0063] Panel component 100; First direction F1; First axis S1; Second axis S2; Second direction F2;

[0064] Panel 1;

[0065] First drive device 12; second pivot structure 121; first motor 122; first gear 123;

[0066] Panel bracket 11; air inlet 110; air outlet 111;

[0067] First base 112; partition 1121; first through hole 1121a;

[0068] External mounting base 1122; Internal mounting base 1123; Internal mounting area 112a; External mounting area 112b;

[0069] Air outlet component 2;

[0070] Carrier frame 21; First border 211;

[0071] Grid frame 212; vertical grid bars 2121; horizontal grid bars 2124; pivot fixing groove 2125;

[0072] Rotational engagement structure 2122; First pivoting structure 21221; First follower 21222;

[0073] Second drive unit 2123; Second motor 21231; Second gear 21232;

[0074] Second base 213; mounting groove 2131; second through hole 2131b; second shaft hole 2131a;

[0075] Air guide component 22; air guide assembly 22a; extended air guide surface 23;

[0076] First air guide plate 221; edge air guide plate 2210; transmission structure 221a;

[0077] First rotating shaft 2211; second follower 2212; third shaft hole 2212a;

[0078] Support 2213; Second rotating shaft 22131; First shaft hole 2213a;

[0079] Rotary shaft bracket 2214; third rotating shaft 22141; connecting rod 222;

[0080] Air intake grille 3;

[0081] Air conditioner body 200; outer casing 201; air outlet area 202; ventilation and heat exchange components 203;

[0082] Rear box components 300; cabinet body 2000. Detailed Implementation

[0083] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.

[0084] The following disclosure provides numerous different embodiments or examples for implementing various structures of the present invention. To simplify the disclosure, specific examples of components and arrangements are described below. These are merely examples and are not intended to limit the scope of the invention. Furthermore, reference numerals and / or letters may be repeated in different examples. Such repetition is for simplification and clarity and does not in itself indicate a relationship between the various embodiments and / or arrangements discussed. In addition, examples of various specific processes and materials are provided in this invention; however, those skilled in the art will recognize the applicability of other processes and / or the use of other materials.

[0085] Hereinafter, with reference to the accompanying drawings, a panel component 100 according to a first aspect embodiment of the present invention will be described.

[0086] See Figure 1 and Figure 2 The panel component 100 includes a panel 1 and an air outlet assembly 2. An air outlet 111 is formed on the panel 1. The air outlet assembly 2 is located at the air outlet 111 and includes a carrier frame 21 and an air guide 22, which are then combined with... Figure 3 and Figure 4 At least one air guide 22 is movably disposed on the carrier frame 21 relative to the carrier frame 21, and the carrier frame 21 is movable relative to the panel 1 so that at least one air guide 22 can be moved outward relative to the air outlet 111.

[0087] The fact that the air guide 22 can be moved outward relative to the air outlet 111 can be understood as: the air guide 22 can move to outside the air outlet 111 to guide air. In the first aspect embodiment of this utility model, the air guide 22 is movably disposed at the air outlet 111 or moved outward to outside the air outlet 111 under the drive of the carrier frame 21, so that the air guide 22 can guide air in multiple positions, thereby enabling the airflow to be exported over a larger range and expanding the air supply range.

[0088] The air outlet assembly 2 includes a carrier frame 21 and an air guide 22. The carrier frame 21 supports and carries the air guide 22, providing a basic framework for the movement of the air guide 22. Exemplarily, the carrier frame 21 not only provides a basic framework for the movement of the air guide 22, but the carrier frame 21 can also be further configured to guide the airflow direction to a certain extent, thereby directing the airflow to a larger angle.

[0089] The air guide component 22 is movably mounted on the carrier frame 21 relative to the carrier frame 21, meaning that the air guide component 22 has a certain degree of freedom of movement on the carrier frame 21 and its position or angle can be changed through some driving method. For example, the air guide component 22 can be connected to the carrier frame 21 via a rotating shaft, allowing the air guide component 22 to rotate on the carrier frame 21 to change the air outlet direction. For example, the air guide component 22 can be connected to the carrier frame 21 via a sliding groove, allowing the air guide component 22 to slide and adjust the air outlet position.

[0090] The specific implementation of "the carrier frame 21 being able to move relative to the panel 1" is not limited. For example, the carrier frame 21 is movably connected to the panel 1 so that at least one air guide 22 can be moved outward relative to the air outlet 111 through the movement of the carrier frame 21 relative to the panel 1. As another example, the carrier frame 21 is movably connected to a structural component (such as an air duct or air outlet frame) on the equipment (such as an air conditioner) to which the panel component 100 is applied so that at least one air guide 22 can be moved outward relative to the air outlet 111 through the movement of the carrier frame 21 relative to the panel 1.

[0091] For the sake of simplicity, this article mainly uses the example of "movable connection between carrier frame 21 and panel 1" for illustration, but "movable connection between carrier frame 21 and structural components on the device on which panel component 100 is applied" also falls within the protection scope of this application. After reading the technical solution of "movable connection between carrier frame 21 and panel 1", those skilled in the art can obviously understand the technical solution of "movable connection between carrier frame 21 and structural components on the device on which panel component 100 is applied".

[0092] For example, the carrier frame 21 is movably connected to the panel 1. That is, the connection between the carrier frame 21 and the panel 1 is not fixed, but can be made relatively movable through some mechanism or method. For example, the connection method can be a sliding connection (such as the carrier frame 21 sliding on the panel 1 through a groove), a rotating connection (such as the carrier frame 21 rotating on the panel 1 around a certain axis), etc. Through this movable connection, the carrier frame 21 can move relative to the panel 1, so that the air guide 22 can move outward relative to the air outlet 111. That is, the outward movement is not achieved by the movement of the air guide 22 itself relative to the carrier frame 21, but by the movement of the carrier frame 21 relative to the panel 1, which drives the air guide 22 to move outward relative to the air outlet 111. This changes the working position of the air guide 22. By making the working position of the air guide 22 move outward, the air guide 22 can move relative to the carrier frame 21 at a more outward position, thereby reducing the obstruction of the air guide 22 by obstacles near the air outlet 111. The air guide 22 can better guide the airflow, thereby expanding the air outlet range.

[0093] The phrase "the air guide 22 can be moved outward relative to the air outlet 111" means that the air guide 22 can move to the outside of the air outlet 111 to guide the air. That is, the air guide 22 moves a certain distance toward the outside of the air outlet 111 (i.e., the air outlet side), so that at least part of the air guide 22 moves to the outside of the air outlet 111, and thus the working position of the air guide 22 can be further outward relative to the air outlet 111.

[0094] Because the air guide 22 is movable relative to the carrier frame 21, and the carrier frame 21 is movable relative to the panel 1, the air outlet assembly 2 has multiple adjustable movement dimensions. Through the movement of the carrier frame 21 relative to the panel 1 and the movement of the air guide 22 relative to the carrier frame 21, multi-level adjustment of the air outlet direction and range can be achieved. For example, as... Figure 4 As shown, the carrier frame 21 rotates to the right relative to the panel 1, thereby guiding the airflow to the right and changing the air outlet angle by a certain amount. At the same time, the carrier frame 21 drives the air guide 22 to move to the outside of the air outlet 111. The air guide 22 is connected to the carrier frame 21 through a rotating shaft. The air guide 22 rotates to the right on the carrier frame 21 by a certain angle, further causing the air outlet angle of the airflow to deflect to the right, thereby enabling the air guide 22 to more effectively guide the airflow to a farther or wider area.

[0095] In the technical solution of this application, by moving the carrier frame 21 relative to the panel 1, the air guide 22 can move relative to the carrier frame, allowing the air guide 22 to move outward relative to the air outlet 111 or be located at the air outlet 111. This enables the air guide 22 to guide air at multiple positions, thereby expanding the airflow range. Secondly, after the air guide 22 moves outward, it is no longer blocked or restricted by obstacles near the air outlet when guiding the airflow to change its direction, thus guiding the airflow to a larger angle and expanding the airflow range. At the same time, it reduces the formation of vortices or backflows of airflow near obstacles near the air outlet, reduces the energy loss of airflow at the air outlet 111, and allows the airflow to be blown to a greater distance, thereby meeting the user's needs for a larger airflow range and a greater delivery distance in different scenarios and improving the user experience.

[0096] The application scenarios of the panel component 100 according to the embodiments of this application are not limited. For example, it can be used in equipment that requires air outlet, such as air conditioning unit, fan unit, and purification unit. For the sake of simplicity, the following description will only take the use of the panel component 100 in an air conditioning unit as an example.

[0097] For example, in large conference rooms, shopping malls and other places, the technical solution of this application can provide good air supply effect in corner areas; for another example, in the case of an air conditioner installed in a cabinet, the air outlet 111 of the air conditioner is flush with the surface of the cabinet. Due to the obstruction of the cabinet, it is difficult to achieve large-angle air supply. However, the technical solution of this application can make the air guide 22 move outward and protrude from the surface of the cabinet, thereby reducing the limitation of the cabinet on the air outlet angle and achieving air supply at a larger angle.

[0098] In the embodiments of this application, an air outlet 111 is formed on the panel 1. The relative position of the air outlet 111 on the panel 1 is not limited. For example, the air outlet 111 can be located in the central area of ​​the panel 1 or near the side edge of the panel 1. For example, the air outlet 111 is near the right edge, the air inlet 110 is near the left edge, and the air inlet 110 and the air outlet 111 are spaced apart.

[0099] In the embodiments of this application, the air guide 22 is movable relative to the carrier frame 21, and the carrier frame 21 is movable relative to the panel 1. The driving method of the movement is not limited; it can be manual or driven by a device such as a motor. The movement of the two can be independent or linked.

[0100] In some embodiments, combined with Figure 2 , Figure 3 and Figure 4The air guide 22 includes a first air guide plate 221, which is formed as an elongated plate extending along the first direction F1. The first air guide plate 221 is rotatably connected to the carrier frame 21 and can rotate about the first axis S1 extending along the first direction F1. The movement of the carrier frame 21 relative to the panel 1 is configured such that the first axis S1 can move toward the outside of the air outlet 111.

[0101] In the above technical solution, the air guide 22 is a long strip-shaped air guide plate extending along the first direction F1 (the vertical direction of the air conditioning unit). When the long strip-shaped air guide plate guides air in the lateral direction (e.g., to the right), it is blocked by obstacles near the air outlet at different air outlet heights. Therefore, it is more necessary to move the air guide plate outward to guide the airflow and change its flow direction. The carrier frame 21 moves relative to the panel 1, so that the first axis S1 of the first air guide plate 221 can move towards the outside of the air outlet 111, thereby changing the working position of the first air guide plate 221. After the working position of the first air guide plate 221 is moved outward, it rotates relative to the carrier frame 21 at a more outward position, so that the first air guide plate 221 is not constrained by the air outlet duct, improving the problem of the air supply of the air guide 22 being blocked. The air guide 22 can better guide the airflow, thereby expanding the air outlet range.

[0102] In the embodiments of this application, the movement of the first axis S1 is achieved by the movement of the carrier frame 21 relative to the panel 1. The specific movement form of the carrier frame 21 is not limited, but the movement of the carrier frame 21 should enable the first air guide plate 221 to rotate within a reasonable angle range without interfering with other components. For example, the movement form of the carrier frame 21 can be sliding along a certain path, rotating the carrier frame 21 around a certain axis on the panel 1, etc.

[0103] In some embodiments, combined with Figure 2 , Figure 3 and Figure 4 The first air guide plate 221 can be one or more, and the carrier frame 21 is configured to move relative to the panel 1 such that the first axis S1 of at least one first air guide plate 221 can move to the outside of the air outlet 111.

[0104] For example, the first air guide plate 221 is one, and the carrier frame 21 moves relative to the panel 1 so that the first axis S1 of the first air guide plate 221 can move to the outside of the air outlet 111. Thus, by moving the first axis S1 to the outside of the air outlet 111 through the movement of the carrier frame 21 relative to the panel 1, a greater range of air guide angle adjustment in a certain direction can be achieved.

[0105] For example, there are two first air guide plates 221. The carrier frame 21 moves relative to the panel 1 so that the first axis S1 of at least one of the first air guide plates 221 can move to the outside of the air outlet 111. Multiple first air guide plates 221 can rotate independently or in concert to achieve more complex air guiding control. For example, in large air conditioners or scenarios requiring uniform air supply, multiple first air guide plates 221 can adjust their angles in segments along the airflow path to achieve a larger final air outlet angle, reduce dead zones, and improve the uniformity of indoor temperature.

[0106] In some embodiments, combined with Figure 2 , Figure 3 and Figure 4 Multiple first air guide plates 221 are arranged side-by-side as an air guide group 22a along a second direction F2 perpendicular to the first direction F1. The carrier frame 21 can rotate relative to the panel 1 to rotate about a second axis S2 extending along the first direction F1. The second axis S2 is located on one side of the air guide group 22a in the second direction F2. It is worth noting that the multiple first air guide plates 221 in the air guide group 22a can be linked together or their air guide angles can be adjusted individually.

[0107] For example, such as Figure 3 As shown, two first air guide plates 221 are arranged side by side in the left-right direction as air guide group 22a. The carrier frame 21 can rotate relative to the panel 1 and can rotate about a second axis S2 extending in the up-down direction. The second axis S2 is located on the right side of the air guide group 22a. Of course, there can also be 3, 4, 5, etc., first air guide plates 221.

[0108] In the above technical solution, the carrier frame 21 can rotate relative to the panel 1. For example, the carrier frame 21 and the panel 1 are connected by rotation around the second axis S2, and the second axis S2 extends along the first direction F1 and is located on one side of the air guide group 22a. Thus, the installation and connection of the carrier frame 21 is simple and the rotation is reliable. It can make the first axis S1 of the multiple first air guide plates 221 move outward as far as possible from the air outlet 111, so that when the first air guide plates 221 guide the air in the lateral direction, the airflow is no longer blocked and restricted by obstacles near the air outlet, and the airflow can be guided to a larger angle, expanding the air delivery range.

[0109] Furthermore, the second axis S2 extends along the first direction F1 and is located on one side of the air guide group 22a, so that the first air guide plate 221, which is farther away from the second axis S2, can rotate out a larger range. During the rotation, the first air guide plate 221 at different positions can adjust different angles as needed. For example, when it is necessary to expand the air supply range, the first air guide plate 221, which is farther away from the second axis S2, can rotate a larger angle to guide the airflow to a more distant area. When it is necessary to concentrate the air supply, the first air guide plates 221 at different positions can form the same air guiding angle to deliver the airflow more concentratedly.

[0110] refer to Figure 3 and Figure 4 In some embodiments, the carrier frame 21 is movably connected to the panel 1. Compared to the structural components on the device with the panel component 100, the panel 21 is relatively closer to the external space of the device, which facilitates the installation and connection of the carrier frame 21 and enables the carrier frame 21 to move relative to the panel 1 without being constrained or obstructed by other structural components.

[0111] For example, the carrier frame 21 is rotatably connected to the panel 1, thereby facilitating the rotation of the carrier frame 21 and causing the air guide 22 to move outward relative to the air outlet 111. This changes the working position of the air guide 22, reduces the obstruction of the air guide 22 by obstacles near the air outlet 111, and enables the air guide 22 to better guide the airflow, thereby expanding the air outlet range.

[0112] For example, the carrier frame 21 and the panel 1 can also be connected by other movable methods such as sliding connection, as long as the carrier frame 21 can move relative to the panel 1 so that at least one air guide 22 can move outward relative to the air outlet 111.

[0113] In some embodiments, combined with Figure 2 , Figure 3 and Figure 4 When the carrier frame 21 can rotate relative to the panel 1 (the carrier frame 21 can be rotatably connected to the panel 1 or to other structural components other than the panel 1), the carrier frame 21 can rotate about a second axis S2 extending along the length direction of the carrier frame 21, and the second axis S2 is located at one end in the width direction of the carrier frame 21.

[0114] In the above technical solution, the carrier frame 21 is rotatable around the second axis S2, allowing the air guide 22 mounted on the carrier frame 21 to change its air guiding angle as the carrier frame 21 rotates. Therefore, the air guide 22 can change its air guiding angle not only through its movement relative to the carrier frame 21 (e.g., rotation around the first axis S1), but also by changing the rotation angle of the carrier frame 21 relative to the panel 1, thereby expanding the angle at which the air guide 22 can guide airflow and change its direction, and thus expanding the air delivery range. Furthermore, by setting the second axis S2 at one end in the width direction of the carrier frame 21, the carrier frame 21 can rotate outwards during rotation, allowing the first air guide plate 221 mounted on the carrier frame 21 to move further outwards, achieving a larger air delivery range.

[0115] Furthermore, when the axis is located at the center in the width direction, the rotation of the carrier frame 21 will cause half of the carrier frame 21 to turn out and half to turn in. The part of the carrier frame 21 that turns in will obstruct the air outlet and reduce the flow area of ​​the air outlet duct. However, if the axis is set at one end, the carrier frame 21 can turn out as a whole when rotating, and there will be no situation where part of it turns in and obstructs the air outlet, thus ensuring the stability of the flow area of ​​the air outlet duct.

[0116] In the embodiments of this application, the movement of the air guide plate is not limited. For example, the air guide 22 can be connected to the carrier frame 21 by a rotating shaft, so that the air guide 22 can rotate on the carrier frame 21 to change the air outlet direction, or it can be connected to the carrier frame 21 by a sliding groove, so that the air guide 22 moves along a certain trajectory to adjust the air outlet position.

[0117] In some embodiments, combined with Figure 5 , Figure 6 and Figure 7 The carrier frame 21 includes a first border 211, which extends along the length of the carrier frame 21 and is located on the side of the carrier frame 21 away from the second axis S2 in the width direction. The first border 211 is formed in a curved shape that protrudes in the direction away from the second axis S2.

[0118] For example, such as Figure 6 As shown, the second axis S2 is located on the right side of the carrier frame 21, and the first frame 211 is located on the left side of the carrier frame 21. The horizontal cross-sectional shape of the first frame 211 is formed into a streamlined shape convex to the left. When the carrier frame 21 rotates around the second axis S2, the first frame 211 will rotate out accordingly, allowing the first frame 211 to participate in the airflow guidance process. It can guide the airflow to gradually change its direction, thereby enabling the airflow assembly 2 to guide the airflow to a larger angle and expand the air delivery range.

[0119] When airflow encounters an obstacle or needs to change direction, resistance is generated. The streamlined shape of the first frame 211 allows the airflow to change direction more smoothly as it passes over it, reducing turbulence and thus lowering wind resistance. Compared to other frame shapes, the streamlined shape of the first frame 211 can reduce the kinetic energy loss of airflow when changing its flow direction, improving the air delivery efficiency of the air conditioning unit.

[0120] In some embodiments, combined with Figure 5 , Figure 6 and Figure 7 The carrier frame 21 includes a grid frame 212, which includes vertical grid strips 2121 extending along the length direction of the carrier frame 21. There are multiple vertical grid strips 2121, which are spaced apart along the width direction of the carrier frame 21.

[0121] In the above technical solution, the vertical grille strips 2121 extend along the length of the carrier frame 21, and can guide the airflow blown out by the air conditioning unit. When the airflow is blown out from inside the air conditioning unit, the vertical grille strips 2121 guide the airflow to flow in a specific direction, making the airflow more concentrated and directional. Compared with the case without the grille frame 212, the vertical grille strips 2121 can make the airflow blow more accurately to the target area.

[0122] Furthermore, the spacing of the vertical grille bars 2121 can also rectify the airflow. During the airflow process of the air conditioning unit, turbulence and irregular flow may occur. The vertical grille bars 2121 can rectify these irregular airflows into airflows with a more consistent direction, reducing airflow turbulence and energy loss. The rectified airflow can propagate more stably and blow to farther places, thereby increasing the air delivery distance of the air conditioning unit.

[0123] In some embodiments, combined with Figure 5 , Figure 6 and Figure 7 The vertical grille bars 2121 are formed in a curved shape that protrudes in a direction away from the second axis S2. For example, as shown... Figure 6 As shown, the vertical grille bars 2121 are formed in a streamlined shape that bulges to the left. Therefore, the vertical grille bars 2121 can guide the airflow to gradually change its direction to the right, unlike straight-shaped vertical grille bars 2121 which generate greater impact and rebound when changing airflow direction, thus reducing turbulence and noise caused by abrupt changes in airflow direction.

[0124] In some embodiments, such as Figure 6 As shown, the extension dimension of the vertical grille bar 2121 along the airflow direction is the guide width of the vertical grille bar 2121. Among two adjacent vertical grille bars 2121, the guide width of the vertical grille bar 2121 that is relatively farther away from the second axis S2 (e.g.) Figure 6The guide width H1 of the left-leaning vertical grid bar 2121 among two adjacent vertical grid bars 2121 marked in the middle is greater than or equal to the guide width of the vertical grid bar 2121 that is closer to the second axis S2 (e.g., Figure 6 The guide width H2 of the rightmost vertical grid strip 2121 among the two adjacent vertical grid strips 2121 marked in the middle.

[0125] In the above technical solution, when the carrier frame 21 rotates about the second axis S2 located at one end in its width direction, the airflow away from the second axis S2 travels a longer path when changing direction, making turbulence more likely. Turbulence leads to disordered airflow direction and increased energy loss. Setting the guide width of the vertical grille strips 2121 relatively far from the second axis S2 to be greater than or equal to the guide width of the vertical grille strips 2121 relatively close to the second axis S2 can provide more sufficient guidance for the airflow away from the second axis S2, thereby reducing the generation of turbulence, allowing the airflow to change direction more smoothly, and enabling the changed airflow to be transported to a greater distance. As a result, the air conditioning unit can effectively regulate indoor temperature over a wider angular range and over a longer distance, meeting the needs of different room layouts and usage.

[0126] In some embodiments, such as Figure 6 As shown, the extension dimension of the vertical grille bar 2121 along the airflow direction is the guide width of the vertical grille bar 2121; the carrier frame 21 includes a first frame 211, which extends along the length direction of the carrier frame 21 and is located on the side away from the second axis S2 in the width direction of the carrier frame 21. The extension dimension of the first frame 211 along the airflow direction is the guide width H3 of the first frame 211, and the guide width H3 of the first frame 211 is greater than the guide width of any vertical grille bar 2121.

[0127] In the above technical solution, since the sidewall of the air outlet duct corresponding to the first frame 211 cannot be further extended, and the first frame 211 extends along the length of the carrier frame 21 and is located on the side away from the second axis S2, its larger guide width (greater than the guide width of any vertical grille strip 2121) is equivalent to effectively extending the air outlet duct. When the first frame 211 partially moves out of the air outlet 111 due to the rotation of the carrier frame 21, the first frame 211 replaces the sidewall of the air outlet duct on the corresponding side of the first frame 211 to form a relatively closed airflow path boundary, thereby guiding the airflow to change the airflow direction.

[0128] In some embodiments, such as Figure 6As shown, the extension dimension of the vertical grille bar 2121 along the airflow direction is the guide width of the vertical grille bar 2121; among two adjacent vertical grille bars 2121, the guide width H1 of the vertical grille bar 2121 that is relatively far from the second axis S2 is greater than or equal to the guide width H2 of the vertical grille bar 2121 that is relatively close to the second axis S2; the extension dimension of the vertical grille bar 2121 along the airflow direction is the guide width of the vertical grille bar 2121; the carrier frame 21 includes a first frame 211, which extends along the length direction of the carrier frame 21 and is located on the side of the carrier frame 21 away from the second axis S2 in the width direction; the extension dimension of the first frame 211 along the airflow direction is the guide width H3 of the first frame 211, and the guide width H3 of the first frame 211 is greater than the guide width of any vertical grille bar 2121. Therefore, the air outlet assembly 2 can meet the needs for a larger air supply range and a longer delivery distance, improving the user experience.

[0129] In some embodiments, such as Figure 7 As shown, the carrier frame 21 includes a first frame 211, which extends along the length of the carrier frame 21 and is located on the side of the carrier frame 21 away from the second axis S2 in the width direction. At least a portion of the first frame 211 can be moved outside the air outlet 111, and the first frame 211 and the corresponding side edge of the air outlet 111 are fitted with a clearance.

[0130] For example, such as Figure 7 As shown, at one position during the rotation of the carrier frame 21, the length L1 of the first frame 211 extending out of the air outlet 111 is less than the guide width H3 of the first frame 211, and the first frame 211 and the corresponding side edge of the air outlet 111 have a fitting gap G.

[0131] In the above technical solution, at least a portion of the first frame 211 moves outside the air outlet 111. The first frame 211 replaces the side wall of the air outlet duct on the corresponding side of the first frame 211 to form a relatively closed airflow path boundary, so that after the airflow exits the air outlet 111, it flows along the direction determined by the first frame 211, thereby expanding the air supply range and guiding the airflow to change its direction. The first frame 211 and the corresponding side edge of the air outlet 111 are fitted with a clearance, so that the first frame 211 will not interfere with the corresponding side air outlet duct during rotation, improving the reliability of the carrier frame 21's rotation. For example, during the process of adjusting the air guide angle by rotating the carrier frame 21, the clearance fit can reduce the friction and collision between the first frame 211 and the air outlet duct, extend the service life of the equipment, and reduce maintenance costs.

[0132] For example, refer to Figure 7When the carrier frame 21 rotates to its extreme extension position, the first frame 211 can be mostly moved outside the air outlet 111, and the first frame 211 and the corresponding side edge of the air outlet 111 are in clearance fit. Here, "the first frame 211 can be mostly" means that more than half of the dimension of the air guiding surface of the first frame 211 along the air outlet direction. Therefore, the first frame 211 can have a longer air guiding range.

[0133] In some embodiments, such as Figure 7 As shown, the air guide 22 includes a first air guide plate 221, which is formed as an elongated strip extending along a first direction F1. The first air guide plate 221 is rotatably connected to the carrier frame 21 and is rotatable about a first axis S1 extending along the first direction F1. When the first air guide plate 221 is in a closed state (e.g., ...), the air guide plate 221 is rotatably connected to the carrier frame 21 and is rotatable about a first axis S1 extending along the first direction F1. Figure 6 As shown below, the first axis S1 is located at the end of the first air guide plate 221 that is away from the second axis S2.

[0134] For example, the first air guide plate 221 includes an edge air guide plate 2210 disposed near the first frame 211. Specifically, there can be one or more first air guide plates 221; when there is one first air guide plate 221, the first air guide plate 221 is the edge air guide plate 2210, and the first axis S1 of the edge air guide plate 2210 is close to the first frame 211; while when there are multiple first air guide plates 221, the multiple first air guide plates 221 can be arranged along the direction from the second axis S2 to the first frame 211, wherein the one closest to the first frame 211 is the edge air guide plate 2210, and the first axis S1 of the edge air guide plate 2210 is close to the first frame 211.

[0135] For example, such as Figure 7 As shown, when the edge guide plate 2210 rotates to the preset position, the first frame 211 can guide the air to the edge guide plate 2210, and the first frame 211 and the edge guide plate 2210 together form an extended air guiding surface 23.

[0136] The "preset position" is not limited and needs to be specifically defined according to the shape of the extended air guide surface 23. For example, the extended air guide surface 23 can be a smooth curved surface, or it can be a curved surface that bends at the connection between the first frame 211 and the edge air guide plate 2210. Once the shape of the extended air guide surface 23 is determined, the "preset position" can be determined.

[0137] In summary, the edge guide plate 2210 has at least one rotational position, which allows the first frame 211 and the edge guide plate 2210 to take turns guiding the air, forming an air guiding connection. After the airflow guided by the first frame 211 flows out of the first frame 211, it flows onto the edge guide plate 2210, and then the edge guide plate 2210 continues to guide the airflow to flow out.

[0138] In the above technical solution, when the edge guide plate 2210 rotates to the preset position, the first frame 211 and the edge guide plate 2210 together form an extended guide surface 23. The extended guide surface 23 takes over the air outlet duct on the corresponding side of the first frame 211 to continue guiding the airflow. After the airflow exits the air outlet 111, it flows along the direction defined by the extended guide surface 23, thereby extending the guide length and increasing the air delivery distance. At the same time, the extended guide surface 23 can provide more reliable guidance for the airflow away from the second axis S2, thereby reducing the generation of turbulence and making the airflow change direction more smoothly.

[0139] In some embodiments, such as Figure 7 As shown, when the edge guide plate 2210 rotates to the preset position, the air guiding direction of the first frame 211 is basically the same as the air guiding direction of the edge guide plate 2210. Therefore, since the air guiding direction of the first frame 211 is basically the same as the air guiding direction of the edge guide plate 2210, the edge guide plate 2210 can guide the airflow to continue flowing in the original direction, thereby enabling the airflow to be delivered to a greater distance.

[0140] Of course, this application is not limited to this. When the edge guide plate 2210 is rotated to the preset position, the air guiding direction of the first frame 211 and the air guiding direction of the edge guide plate 2210 can also have a certain angle. For example, the edge guide plate 2210 deflects relative to the first frame 211 in a direction closer to the second axis S2, or the edge guide plate 2210 deflects relative to the first frame 211 in a direction away from the second axis S2, etc.

[0141] In some embodiments, such as Figure 7 As shown, when the edge guide plate 2210 rotates to a preset position, the first frame 211 overlaps with the edge guide plate 2210. This reduces airflow loss, allowing the first frame 211 to guide more airflow onto the edge guide plate 2210. "Overlapping" can mean either the first frame 211 overlapping the airflow guide surface of the edge guide plate 2210, or the edge guide plate 2210 overlapping the airflow guide surface of the first frame 211.

[0142] For example, when the edge guide plate 2210 rotates to a preset position, one end of the first frame 211 (i.e., the air outlet end) overlaps with one end of the edge guide plate 2210 (i.e., the air inlet end). Thus, the first frame 211 and the edge guide plate 2210 can form a longer extended air guide surface 23, thereby further increasing the air delivery distance. For example, the air outlet end of the first frame 211 can overlap the leeward side of the air inlet end of the edge guide plate 2210, or the air outlet end of the first frame 211 can overlap the windward side of the air inlet end of the edge guide plate 2210.

[0143] Of course, when the edge guide plate 2210 rotates to the preset position, the first frame 211 and the edge guide plate 2210 may not overlap. For example, when the edge guide plate 2210 rotates to the preset position, the first frame 211 and the edge guide plate 2210 may be spliced ​​(i.e., without overlapping), and the splicing point may be in contact or may form a small gap.

[0144] In some embodiments, such as Figure 7 As shown, when the edge guide plate 2210 rotates to the preset position, the minimum distance d between the first frame 211 and the edge guide plate 2210 is less than 10mm. Therefore, when the first frame 211 guides air to the edge guide plate 2210, the connection position between the first frame 211 and the edge guide plate 2210 will not result in airflow leakage loss due to excessive distance between the first frame 211 and the edge guide plate 2210, thereby improving the air guiding effect of the extended guide surface 23 and allowing more airflow to flow along the guide surface 23.

[0145] In some embodiments, such as Figure 7 As shown, the carrier frame 21 is rotatably connected to the panel 1, allowing the carrier frame 21 to rotate relative to the panel 1 around the second axis S2. This facilitates the rotation of the carrier frame 21, causing the air guide 22 to move outward relative to the air outlet 111. This changes the working position of the air guide 22, reduces obstruction from obstacles near the air outlet 111, and allows the air guide 22 to better guide airflow, thereby expanding the air outlet range.

[0146] In some embodiments, such as Figure 8 As shown, rotational fitting structures 2122 are respectively provided at both ends of the carrier frame 21 along its length. The panel 1 is provided with first driving devices 12 at both ends of the carrier frame 21 along its length. The first driving devices 12 cooperate with the rotational fitting structures 2122 to drive the carrier frame 21 to rotate relative to the panel 1 around the second axis S2.

[0147] Since the air outlet assembly 2 includes a carrier frame 21 and an air guide 22, its overall weight is relatively large. During rotation, if only one end is driven, the two ends are prone to rotating asynchronously, resulting in torsional force. This torsional force will cause great stress on the carrier frame 21, the air outlet assembly 2, and related connecting parts. Long-term accumulation may lead to deformation, damage, or even breakage of the parts. However, by setting the first drive device 12 at each end and cooperating with the rotational mating structure 2122, the synchronicity of the rotation of the two ends of the carrier frame 21 can be significantly improved. This ensures that the two ends of the carrier frame 21 maintain the same speed and angle during rotation, allowing the entire carrier frame 21 to rotate smoothly and accurately around the second axis S2, reducing the possibility of torsional damage and decreasing maintenance costs and failure rate.

[0148] In the embodiments of this application, the rotational engagement structure 2122 can take various forms, depending on the choice of driving method. For example, if it is a motor-driven structure, the rotational engagement structure 2122 can be a shaft-hole engagement, where the motor shaft is inserted into the shaft hole at the end of the carrier frame 21, and power transmission is achieved through a key connection or other means; it can also be a gear meshing structure, where the motor drives a small gear, which meshes with the driven member at the end of the carrier frame 21, thereby driving the carrier frame 21 to rotate. Of course, other driving methods are also possible; for example, it can be hydraulic drive, electromagnetic drive, etc.

[0149] In some embodiments, combined with Figure 8 , Figure 9 and Figure 10 The rotating engagement structure 2122 includes a first pivoting structure 21221 and a first driven member 21222, and the first driving device 12 includes a second pivoting structure 121, a first motor 122, and a first gear 123, which are combined. Figure 16 The first pivot structure 21221 and the second pivot structure 121 are rotatably engaged so that the carrier frame 21 can rotate around the second axis S2. The first gear 123 meshes with the first driven member 21222. The first motor 122 is connected to the first gear 123 so that the carrier frame 21 can be driven to rotate relative to the panel 1 around the second axis S2 through the meshing of the first gear 123 with the first driven member 21222.

[0150] The specific form of the rotational engagement between the first pivot structure 21221 and the second pivot structure 121 is not limited; for example, in combination with... Figure 8 , Figure 9 , Figure 10 and Figure 16 The first pivot structure 21221 is a shaft hole one, and the second pivot structure 121 is a shaft hole two. Shaft holes one and two are coaxially arranged, and a pin passes through shaft holes one and two, so that shaft holes one and two are rotatably engaged, and the carrier frame 21 can rotate around the second axis S2 on the pin. Of course, the rotatable engagement between the first pivot structure 21221 and the second pivot structure 121 can also be achieved by a shaft and a shaft hole engagement. For example, a shaft can be set on the first pivot structure 21221 of the carrier frame 21, and a shaft hole can be set at the corresponding position on the panel 1. The shaft rotates in the shaft hole, thereby realizing the rotation of the carrier frame 21.

[0151] In the above technical solution, the pivoting fit structure is simple, and the rotational fit between the first pivoting structure 21221 and the second pivoting structure 121 is easy to implement and install, thereby reducing manufacturing and maintenance costs and improving system reliability. Compared with some complex transmission structures, the pivoting fit does not require too many parts and complex assembly processes, which can reduce errors and defects in the production process and extend the service life of the equipment. In addition, the pivoting fit can withstand large torque rotation, which is crucial for the relatively heavy air outlet assembly 2. During the operation of the air conditioner, the carrier frame 21 needs to rotate frequently to adjust the air guide angle. The large torque bearing capacity of the pivoting fit ensures that the carrier frame 21 will not suffer structural damage or rotational failure due to excessive torque during rotation.

[0152] In the above technical solution, the meshing transmission between the first gear 123 and the first driven member 21222 can provide a larger torque, thereby making the rotation of the carrier frame 21 smoother. For example, the first driven member 21222 is an involute rack, which has the characteristics of smooth transmission and strong load-bearing capacity, providing a larger torque to make the rotation of the carrier frame 21 smoother, and the rotational speed of the carrier frame 21 is also easier to control and adjust. Especially for the relatively heavy air outlet assembly 2, the meshing transmission between the first gear 123 and the first driven member 21222 can reduce rotational jamming or damage due to insufficient torque compared to the direct drive of the shaft by the motor. For example, when the air conditioner is started or the air guide angle is adjusted, even if a larger torque is needed to overcome the inertia and resistance of the carrier frame 21, the meshing of the involute rack and the first gear 123 can improve the smoothness of rotation and reduce jamming or shaking.

[0153] In some embodiments, combined with Figure 8 , Figure 9 , Figure 10 and Figure 11The panel 1 includes a panel support 11, on which an air outlet 111 is formed. At each end of the panel support 11 along the length of the air outlet 111, there is a first base 112. The first base 112 includes a partition 1121, an outer mounting base 1122, and an inner mounting base 1123. An inner mounting area 112a and an outer mounting area 112b are respectively provided on the inner and outer sides of the partition 1121. A first through hole 1121a is formed on the partition 1121, connecting the inner mounting area 112a and the outer mounting area 112b. The outer mounting base... 1122 is located in the outer mounting area 112b and carries the second pivot structure 121. The inner mounting base 1123 is located in the inner mounting area 112a and carries the first motor 122. The first gear 123 is located in the inner mounting area 112a. The end of the carrier frame 21 in the length direction is located in the outer mounting area 112b. The first pivot structure 21221 and the second pivot structure 121 are connected in the outer mounting area 112b. The first driven member 21222 passes through the first through hole 1121a and meshes with the first gear 123 in the inner mounting area 112a.

[0154] In the above technical solution, the first base 112 includes a partition 1121, an outer mounting base 1122, and an inner mounting base 1123, forming a compact integrated structure. This makes full use of space, making the entire panel 1 structure more compact. The partition 1121 divides the first base 112 into an inner mounting area 112a and an outer mounting area 112b, which not only enhances the overall structural strength of the first base 112 but also enables the partitioned installation of different components. This provides clear installation positions and spaces for each component, avoiding mutual interference between components and improving the accuracy and stability of installation. For example, the outer mounting base 1122, which carries the second pivot structure 121, is located in the outer mounting area 112b, and the inner mounting base 1123, which carries the first motor 122, is located in the inner mounting area 112a, allowing components with different functions to work in their respective suitable spaces, reducing the risk of failure caused by collisions or interference between components. Furthermore, since the inner mounting base 1123 is located in the inner mounting area 112a and carries the first motor 122, the first motor 122 can be shielded by the partition 1121, thereby improving safety and protecting the first motor 122.

[0155] In the above technical solution, a first through hole 1121a is formed on the partition 1121, connecting the inner mounting area 112a and the outer mounting area 112b. The first driven member 21222 passes through the through hole and meshes with the first gear 123 in the inner mounting area 112a. This allows the first gear 123 and the first driven member 21222 to transmit power in relatively independent spaces, reducing the interference of external factors on the transmission system. For example, meshing transmission in the inner mounting area 112a can reduce the influence of external dust on the first gear 123 and the first driven member 21222, ensuring smooth transmission and extending the service life of the transmission components.

[0156] In some embodiments, such as Figure 12 As shown, the carrier frame 21 includes a grille frame 212 with grille ventilation holes. An air guide 22 is located on the air outlet side of the grille frame 212, downstream of the grille ventilation holes. In this technical solution, the air guide 22 is located on the air outlet side of the grille frame 212 and downstream of the grille ventilation holes, thereby guiding the airflow through the grille ventilation holes. The grille ventilation holes provide multiple effects, including airflow rectification and protection.

[0157] For example, the grille frame 212 may include a plurality of vertical grille bars 2121 and a plurality of horizontal grille bars 2124. The plurality of vertical grille bars 2121 are arranged in parallel and extend along the length direction of the grille frame 212, and the plurality of horizontal grille bars 2124 are arranged in parallel and extend along the width direction of the grille frame 212. The plurality of vertical grille bars 2121 and the plurality of horizontal grille bars 2124 are interlaced to form a mesh, so as to form grille ventilation holes between the vertical grille bars 2121 and the horizontal grille bars 2124.

[0158] Combination Figure 3 and Figure 4 For example, the movement of the carrier frame 21 relative to the panel 1 is configured such that at least a portion of the grille frame 212 can move to the outside of the air outlet 111. When the grille frame 212 moves to the outside of the air outlet 111, the air guide 22 can more flexibly adjust the airflow direction, without being limited by the structure of the air outlet 111 itself, and can achieve a larger angle of airflow. Alternatively, in other embodiments of this application, the grille frame 212 may always be located inside the air outlet 111.

[0159] In some embodiments, combined with Figure 12 and Figure 13 The air guide component 22 includes a first air guide plate 221, which is formed as an elongated strip extending along the length direction of the grille frame 212. Multiple first air guide plates 221 are arranged side-by-side along the width direction of the grille frame 212. Figure 16 Each first air guide plate 221 is rotatably engaged with the grille frame 212 via a first rotating shaft 2211, so as to be rotatable about a first axis S1 extending along the length direction of the grille frame 212.

[0160] In the above technical solution, multiple first air guide plates 221 are arranged side by side along the width direction of the grille frame 212 to work together to change the airflow direction. Compared with a single first air guide plate 221 guiding and changing the airflow direction, multiple first air guide plates 221 can change the airflow direction more gently. In addition, multiple first air guide plates 221 can rectify the airflow, making the airflow direction more consistent, thereby enabling the airflow to be delivered to a longer distance.

[0161] In the embodiments of this application, the first air guide plate 221 is formed as an elongated strip plate extending along the length direction of the grille frame 212. To ensure stable rotational engagement between the first rotating shaft 2211 and the grille frame 212, a rotating shaft bracket 2214 can also be provided in the middle region of the first air guide plate 221. For example, as shown... Figure 12 As shown, the rotating shaft bracket 2214 is provided with a third rotating shaft 22141. The axis of the third rotating shaft 22141 coincides with that of the first rotating shaft 2211 and both are the first axis S1. The grille frame 212 is provided with a rotating shaft fixing groove 2125 that rotatably engages with the third rotating shaft 22141, so that it can rotate around the first axis S1 extending along the length direction of the grille frame 212, thereby improving the rotational stability of the first air guide plate 221.

[0162] In some embodiments, combined with Figure 13 and Figure 14 Multiple adjacent first air guide plates 221 form an air guide group 22a. Each first air guide plate 221 in the same air guide group 22a has a second rotating shaft 22131 arranged parallel to the first rotating shaft 2211. The second rotating shafts 22131 of multiple first air guide plates 221 in the same air guide group 22a are connected by a connecting rod 222, so that the connecting rod 222 drives each first air guide plate 221 in the air guide group 22a to rotate synchronously. Figure 13 , Figure 15 and Figure 16 In the air guide assembly 22a, the first air guide plate 221 has a transmission structure 221a at both ends in the length direction. The grille frame 212 is provided with a second driving device 2123 at the corresponding transmission structure 221a. The second driving device 2123 cooperates with the transmission structure 221a to drive the first air guide plate 221 to rotate around the first axis S1.

[0163] In the above technical solution, multiple first air guide plates 221 in the same air guide group 22a are connected by a connecting rod 222 to achieve synchronous rotation, so that multiple first air guide plates 221 can guide the airflow direction at the same angle, thereby improving the consistency of the air outlet direction. Moreover, it also reduces the number of second drive devices 2123, simplifies the structure, and reduces costs.

[0164] In the embodiments of this application, one of the first air guide plates 221 in the air guide group 22a has a transmission structure 221a at both ends in the length direction. That is, only one first air guide plate 221 has a transmission structure 221a at both ends. The remaining first air guide plates 221 are driven by the connecting rod 222 so that the connecting rod 222 drives each first air guide plate 221 in the air guide group 22a to rotate synchronously.

[0165] In some embodiments, combined with Figure 12 and Figure 18The carrier frame 21 includes second bases 213 located at both ends of the length of the grid frame 212. The second bases 213 define mounting grooves 2131, which open along the length of the grid frame 212 in a direction away from the grid frame 212. Second through holes 2131b are formed on the second bases 213 located on the side of the mounting groove 2131. A second drive device 2123 is located within the mounting groove 2131 and includes a second motor 21231 and a second gear 21232. Figure 16 , Figure 17 and Figure 18 The transmission structure 221a is configured to have a second driven member 2212, which passes through the second through hole 2131b and meshes with the second gear 21232. The second motor 21231 is connected to the second gear 21232 so as to drive the first air guide plate 221 to rotate through the meshing of the second gear 21232 and the second driven member 2212.

[0166] In the above technical solution, the carrier frame 21 has second bases 213 at both ends of the length of the grille frame 212, providing a stable mounting foundation for the second drive device 2123. The mounting groove 2131 defined by the second base 213 opens along the length of the grille frame 212 in a direction away from the grille frame 212, thus facilitating the installation and removal of the second drive device 2123 and providing convenience for subsequent maintenance and repair. Furthermore, the sidewalls of the mounting groove 2131 can provide some shielding for the second drive device 2123, reducing the possibility of dust directly adhering to the second motor 21231 and the second gear 21232. Dust accumulation may affect the meshing accuracy of the gears, increase wear, and even lead to drive device failure. The mounting groove 2131 effectively reduces this risk and extends the service life of the second drive device 2123. In addition, during air conditioning use, humid environments or accidental water splashes may occur. The mounting slot 2131 can prevent some moisture from directly contacting the second drive unit 2123, thus avoiding damage such as corrosion and short circuits to the motor and gears, and improving the reliability and stability of the drive unit.

[0167] In some embodiments, combined with Figure 12 and Figure 17 Each of the two ends of the first air guide plate 221 has a bracket 2213 on one side of its thickness direction. The bracket 2213 has a second rotating shaft 22131 and a first shaft hole 2213a, which are combined with Figure 18 The second base 213 has a second shaft hole 2131a coaxially arranged with the first shaft hole 2213a, and the second follower 2212 has a third shaft hole 2212a coaxially arranged with the second shaft hole 2131a, and then combined with Figure 15 and Figure 16 The first rotating shaft 2211 is sequentially passed through the first shaft hole 2213a, the second shaft hole 2131a and the third shaft hole 2212a, and its two ends are stopped on both sides of the bracket 2213 and the second follower 2212.

[0168] In the above technical solution, the first rotating shaft 2211 is sequentially provided with a first shaft hole 2213a, a second shaft hole 2131a, and a third shaft hole 2212a. This multi-shaft hole structure achieves multi-point positioning and support for the first air guide plate 221. The first shaft hole 2213a on the bracket 2213 provides an initial support point for one end of the first air guide plate 221. The second shaft hole 2131a on the second base 213 further positions and supports the first air guide plate 221, while the third shaft hole 2212a on the second follower 2212 constrains the first air guide plate 221 from the other side. This improves the stability of the first air guide plate 221 during rotation, reduces potential swaying or offset during rotation, and ensures that the first air guide plate 221 can rotate according to a predetermined angle and direction, thereby improving the overall performance of the air guiding system.

[0169] In the above technical solution, the second shaft hole 2131a on the second base 213 is coaxially arranged with the first shaft hole 2213a and the third shaft hole 2212a, which can reduce rotational friction and wear caused by misalignment of the shaft holes, thereby extending the service life of the equipment and reducing maintenance costs. The first rotating shaft 2211 is stopped at both ends on both sides of the bracket 2213 and the second driven member 2212. This design effectively limits the axial movement of the first rotating shaft 2211. During the rotation of the first air guide plate 221, the first rotating shaft 2211 will not experience axial movement, ensuring the fitting accuracy between the first rotating shaft 2211 and each shaft hole, making the rotation more stable and reliable.

[0170] The arrangement of "the two ends of the first rotating shaft 2211 being stopped on both sides of the bracket 2213 and the second follower 2212" is not limited. For example, the two ends of the first rotating shaft 2211 are respectively provided with spring buckles, or one end of the first rotating shaft 2211 is a limiting boss and the other end is a spring buckle, etc.

[0171] In some embodiments, see Figure 19 An air inlet 110 is formed on the panel 1, and the air inlet 110 and the air outlet 111 are spaced apart. As a result, the air inlet 110 and the air outlet 111 are spaced apart, so that the airflow blown out of the air outlet 111 is not easily drawn back into the air inlet 110 without exchanging heat with the indoor air, thereby reducing the possibility of short-circuiting of the return air.

[0172] In some embodiments, see Figure 19The panel 1 includes a panel support 11 and an air inlet grille 3. An air outlet 111 is formed on the panel support 11, and the air inlet grille 3 covers the panel support 11 and defines the air inlet 110. Therefore, the panel support 11 and the air inlet grille 3 can be manufactured separately and then assembled, reducing the manufacturing difficulty of the panel 1. Furthermore, the air inlet grille 3 defines the air inlet 110, and can be configured as needed to guide the airflow direction, thus ensuring smoother airflow into the air inlet 110. Additionally, the air inlet grille 3 can be made detachable from the panel support 11 as needed, facilitating cleaning.

[0173] In addition, panel 1 can be configured as a one-piece structure, and air inlet 110 can be configured as a multi-hole type, etc., which are not limited here.

[0174] It is worth noting that when the air intake grille 3 defines the air intake 110, the width W2 of the air intake 110 is the width of the air intake grille 3, and the length L2 of the air intake 110 is the length of the air intake grille 3.

[0175] In some embodiments, the air inlet 110 and the air outlet 111 are arranged along the width direction of the panel support 11. In the length direction of the panel 1, the length L2 of the air inlet 110 and the length L3 of the air outlet assembly 2 are both greater than 1 / 2 of the length L4 of the panel 1.

[0176] For example, when the panel 1 includes a panel support 11 and an air inlet grille 3, an air outlet 111 is formed on the panel support 11, and the air inlet grille 3 covers the panel support 11 and defines the air inlet 110, the air inlet grille 3 and the air outlet 111 are arranged along the width direction of the panel support 11. In the length direction of the panel support 11, the length L2 of the air inlet grille 3 and the length L3 of the air outlet assembly 2 are both greater than 1 / 2 of the length L4 of the panel support 11.

[0177] This fully utilizes the length of panel 1, resulting in a larger area for both air intake and exhaust. The larger air intake 110 area increases the air volume, ensuring the equipment can obtain sufficient fresh air in a timely manner; while the larger exhaust assembly 2 area allows the treated air to be distributed more quickly and evenly into the indoor environment, resulting in a more uniform indoor temperature.

[0178] In some embodiments, see Figure 19The carrier frame 21 is rotatably connected to the panel 1, and can rotate about a second axis S2 extending along the length of the carrier frame 21. The second axis S2 extends along the length of the panel support 11 and is located at the end of the carrier frame 21 away from the air inlet 110 (i.e. away from the air inlet grille 3) in the width direction of the panel 1. Since both the air inlet 110 and the air outlet assembly 2 are located on the panel 1, a short circuit problem of return air is easily formed. By extending the second axis S2 along the length of the panel support 11 and at the end of the carrier frame 21 away from the air inlet 110 in the width direction of the panel 1, the air outlet assembly 2 can be moved away from the air inlet 110, reducing the possibility of a short circuit problem of return air. Moreover, the air delivery of the air guide 22 in the air outlet assembly 2 is not easily restricted by the air inlet 110, so as to achieve a large-angle air guide.

[0179] In some embodiments, see Figure 19 In the width direction of panel 1, the width W2 of air inlet 110 is greater than the width W1 of air outlet assembly 2. This means that air inlet 110 has a larger area. A larger air inlet area can reduce the resistance when air enters the device. The sum of the width W2 of air inlet 110 and the width W1 of air outlet assembly 2 is greater than 4 / 5 of the width W3 of panel 1. This indicates that in the width direction of panel 1, air inlet 110 and air outlet assembly 2 occupy most of the width space of panel support 11, thereby enabling more efficient air circulation. This allows the air conditioner to adjust the indoor temperature more quickly, reduces the residence time of air inside the air conditioner, and reduces energy loss. Moreover, air inlet 110 and air outlet 111 are offset in the width direction of panel support 11, that is, neither air inlet 110 nor air outlet 111 is in the central area of ​​panel support 11. This shifts the working position of air guide 22 outward, allowing air guide 22 to better guide airflow, reduce air outlet obstruction, and thus expand the air outlet range.

[0180] See Figure 20 An air conditioning device 1000 according to a second aspect of the present invention includes a panel component 100 according to any embodiment of the first aspect of the present invention.

[0181] The form of the air conditioning device 1000 according to this utility model is not limited. For example, it can be an integrated air conditioning unit (such as a kitchen air conditioner, a portable air conditioner, a window air conditioner, etc.) or a split air conditioning unit (such as a split wall-mounted unit, a split cabinet unit, etc.); it can be a cooling / heating air conditioner, a dehumidifying air conditioner, a fresh air air conditioner; it can be an embedded air conditioner or a non-embedded air conditioner, etc.

[0182] According to the embodiment of the present utility model, the air conditioning device 1000 improves the air output efficiency of the air conditioning device by providing the panel component 100 of the first aspect described above.

[0183] In some embodiments, see Figure 20 and Figure 21 The air conditioning unit 1000 includes a rear compartment component 300, which cooperates with the panel component 100 to define an accommodating space between the rear compartment component 300 and the panel component 100. The air conditioning unit 1000 includes a ventilation and heat exchange component 203 disposed in the accommodating space.

[0184] In the above technical solution, the air conditioning unit 1000 includes a rear box component 300 and a panel component 100, which cooperate to define an accommodating space. The rear box component 300 and the panel component 100 serve as the boundaries of the accommodating space, providing space for the installation and protection of ventilation and heat exchange components 203, etc. Moreover, this type of air conditioning unit 1000 has flexible application scenarios; for example, it can be installed in a recessed manner or not, and can be placed directly in a suitable indoor location.

[0185] In some embodiments, combined with Figure 22 and Figure 23 The air conditioning unit 1000 is embedded and includes an air conditioning body 200. The air conditioning body 200 includes a housing 201 and a ventilation and heat exchange component 203 disposed in the housing 201. The housing 201 has an air outlet area 202. The air conditioning body 200 is adapted to be embedded in a cabinet 2000 with an opening. The panel component 100 is disposed on the outside of the air conditioning body 200 and is adapted to cover the opening of the cabinet 2000. The air outlet 111 is correspondingly connected to the air outlet area 202.

[0186] In the above technical solution, the air conditioning unit 1000 is embedded, and the panel component 100 covers the opening of the cabinet 2000, thereby making full use of the space of the cabinet 2000 and ensuring that the air conditioning unit 1000 does not occupy too much extra space in the room. At the same time, the panel component 100 covering the opening of the cabinet 2000 not only serves an aesthetic purpose but also provides a certain degree of protection for the air conditioning unit 200, preventing dust and other debris from entering the air conditioning unit. However, since the air conditioning unit 200 is embedded in the cabinet 2000, the presence of the cabinet 2000 will limit the air outlet angle and range of the air conditioning. If the air outlet angle is small, the air supply range may be limited, and it may not be able to effectively deliver the processed air to all corners of the room, thus affecting the cooling or heating effect of the air conditioning and the uniformity of the indoor temperature. Therefore, it is necessary to use the outward movement of the air guide component 22 to achieve a larger angle of air outlet, so as to improve the air supply effect and comfort of the air conditioning.

[0187] Other components of the panel component according to the embodiments of the present invention, such as the display module, and its operation are known to those skilled in the art and will not be described in detail here.

[0188] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0189] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.

[0190] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, a direct connection, or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0191] In this utility model, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0192] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions 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 one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0193] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.

Claims

1. A panel component, characterized in that, include: A panel having an air outlet formed thereon; An air outlet assembly is provided at the air outlet and includes a carrier frame and an air guide. The air guide is at least one and is movably disposed on the carrier frame relative to the carrier frame. The carrier frame is movable relative to the panel so that at least one air guide can be moved outward relative to the air outlet.

2. The panel component according to claim 1, characterized in that, The air guide includes a first air guide plate, which is formed as an elongated strip plate extending along a first direction. The first air guide plate is rotatably connected to the carrier frame and is rotatable about a first axis extending along the first direction. The movement of the carrier frame relative to the panel is configured such that the first axis can move toward the outside of the air outlet.

3. The panel component according to claim 2, characterized in that, The first air guide plate is one or more, and the carrier frame is configured to move relative to the panel such that the first axis of at least one of the first air guide plates can move to the outside of the air outlet.

4. The panel component according to claim 2 or 3, characterized in that, Multiple first air guide plates are arranged side by side as an air guide group along a second direction perpendicular to the first direction. The carrier frame is rotatable relative to the panel to rotate about a second axis extending along the first direction, the second axis being located on one side of the air guide group in the second direction.

5. The panel component according to claim 1, characterized in that, The carrier frame is movably connected to the panel.

6. The panel component according to claim 5, characterized in that, The carrier frame is rotatably connected to the panel.

7. The panel component according to claim 1, characterized in that, The carrier frame is rotatable relative to the panel, and the carrier frame is rotatable about a second axis extending along the length direction of the carrier frame, the second axis being located at one end in the width direction of the carrier frame.

8. The panel component according to claim 7, characterized in that, The carrier frame includes a first border that extends along the length of the carrier frame and is located on the side of the carrier frame away from the second axis in the width direction. The first border is formed in a curved shape that protrudes in a direction away from the second axis.

9. The panel component according to claim 7, characterized in that, The carrier frame includes a grid frame, the grid frame includes vertical grid strips extending along the length direction of the carrier frame, and there are multiple vertical grid strips spaced apart along the width direction of the carrier frame.

10. The panel component according to claim 9, characterized in that, The vertical grid bars are formed in a curved shape that protrudes in a direction away from the second axis.

11. The panel component according to claim 9, characterized in that, The extension dimension of the vertical grille bar along the airflow direction is the guide width of the vertical grille bar; Among two adjacent vertical grid bars, the guide width of the vertical grid bar that is relatively far from the second axis is greater than or equal to the guide width of the vertical grid bar that is relatively close to the second axis; And / or, the carrier frame includes a first border that extends along the length direction of the carrier frame and is located on the side of the carrier frame away from the second axis in the width direction. The extension dimension of the first border along the airflow direction is the guide width of the first border, and the guide width of the first border is greater than the guide width of any of the vertical grid strips.

12. The panel component according to claim 7, characterized in that, The carrier frame includes a first frame that extends along the length of the carrier frame and is located on the side of the carrier frame away from the second axis in the width direction. At least a portion of the first frame can be moved outside the air outlet, and the first frame is in clearance fit with the corresponding side edge of the air outlet.

13. The panel component according to claim 12, characterized in that, The air guide includes a first air guide plate, which is formed as an elongated strip plate extending along a first direction. The first air guide plate is rotatably connected to the carrier frame and is rotatable about a first axis extending along the first direction. When the first air guide plate is in a closed state, the first axis is located at the end of the first air guide plate away from the second axis. The first air guide plate includes an edge air guide plate disposed near the first frame. When the edge air guide plate is rotated to a preset position, the first frame can guide air to the edge air guide plate, and the first frame and the edge air guide plate together form an extended air guiding surface.

14. The panel component according to claim 13, characterized in that, When the edge air guide plate is rotated to a preset position, the air guiding direction of the first frame is basically the same as that of the edge air guide plate, and / or, one end of the first frame overlaps with one end of the edge air guide plate, and / or, the minimum distance between the first frame and the edge air guide plate is less than 10mm.

15. The panel component according to claim 7, characterized in that, The carrier frame is rotatably connected to the panel, so that the carrier frame can rotate relative to the panel about the second axis.

16. The panel component according to claim 7, characterized in that, Rotational fitting structures are respectively provided at both ends of the carrier frame along its length. First driving devices are respectively provided at both ends of the panel along the length of the carrier frame. The first driving devices cooperate with the rotational fitting structures to drive the carrier frame to rotate relative to the panel around the second axis.

17. The panel component according to claim 16, characterized in that, The rotational engagement structure includes a first pivot structure and a first driven member. The first driving device includes a second pivot structure, a first motor, and a first gear. The first pivot structure and the second pivot structure are rotatably engaged so that the carrier frame can rotate around the second axis. The first gear meshes with the first driven member. The first motor is connected to the first gear so that the carrier frame is driven to rotate relative to the panel around the second axis through the meshing of the first gear and the first driven member.

18. The panel component according to claim 17, characterized in that, The panel includes a panel support, on which the air outlet is formed. The panel support has a first base at each end of the air outlet along its length. The first base includes a partition, an outer mounting base, and an inner mounting base. The inner and outer sides of the partition are respectively provided with an inner mounting area and an outer mounting area. A first through hole is formed on the partition, connecting the inner mounting area and the outer mounting area. The outer mounting base is located in the outer mounting area and carries the second pivot structure. The inner mounting base is located in the inner mounting area and carries the first motor. The first gear is located in the inner mounting area. The end of the carrier frame along its length is located in the outer mounting area. The first pivot structure and the second pivot structure are connected in the outer mounting area. The first driven member passes through the first through hole and meshes with the first gear in the inner mounting area.

19. The panel component according to claim 1, characterized in that, The carrier frame includes a grid frame with grid ventilation holes, and the air guide is located on the air outlet side of the grid frame, downstream of the grid ventilation holes.

20. The panel component according to claim 19, characterized in that, The air guide includes a first air guide plate, which is formed as an elongated strip plate extending along the length direction of the grille frame. There are multiple first air guide plates arranged side by side along the width direction of the grille frame. Each first air guide plate is rotatably engaged with the grille frame through a first pivot, so as to be rotatable about a first axis extending along the length direction of the grille frame.

21. The panel component according to claim 20, characterized in that, Multiple first air guide plates arranged adjacent to each other constitute an air guide group. Each first air guide plate in the same air guide group has a second rotating shaft arranged parallel to the first rotating shaft. The second rotating shafts of multiple first air guide plates in the same air guide group are connected by a connecting rod so that the connecting rod drives each first air guide plate in the air guide group to rotate synchronously. One of the first air guide plates in the air guide group has a transmission structure at both ends along its length. The grille frame is provided with a second driving device at the corresponding transmission structure. The second driving device cooperates with the transmission structure to drive the first air guide plate to rotate around the first axis.

22. The panel component according to claim 21, characterized in that, The carrier frame includes a second base located at both ends of the length of the grille frame. The second base defines a mounting groove that opens along the length of the grille frame in a direction away from the grille frame. A second through hole is formed on the second base on the side of the mounting groove. The second driving device is located in the mounting groove and includes a second motor and a second gear. The transmission structure is configured as a second driven member. The second driven member passes through the second through hole and meshes with the second gear. The second motor is connected to the second gear so as to drive the first air guide plate to rotate through the meshing of the second gear and the second driven member.

23. The panel component according to claim 22, characterized in that, Each of the two ends of the first air guide plate has a bracket on one side in the thickness direction. The bracket has a second rotating shaft and a first shaft hole. The second base has a second shaft hole coaxially arranged with the first shaft hole. The second driven member has a third shaft hole coaxially arranged with the second shaft hole. The first rotating shaft passes through the first shaft hole, the second shaft hole and the third shaft hole in sequence, and its two ends are stopped on both sides of the bracket and the second driven member.

24. The panel component according to claim 1, characterized in that, An air inlet is formed on the panel, and the air inlet and the air outlet are spaced apart.

25. The panel component according to claim 24, characterized in that, The panel includes a panel support and an air inlet grille. The air outlet is formed on the panel support, and the air inlet grille covers the panel support and defines the air inlet. And / or, the air inlet and the air outlet are arranged along the width direction of the panel bracket, and in the length direction of the panel, the length of the air inlet and the length of the air outlet assembly are both greater than 1 / 2 of the length of the panel.

26. The panel component according to claim 24, characterized in that, The carrier frame is rotatably connected to the panel so as to be rotatable about a second axis extending along the length direction of the carrier frame, the second axis extending along the length direction of the panel support and located at the end of the carrier frame away from the air inlet in the width direction of the panel. And / or, in the width direction of the panel, the width of the air inlet is greater than the width of the air outlet assembly, and the sum of the width of the air inlet and the width of the air outlet assembly is greater than 4 / 5 of the width of the panel.

27. An air conditioning device, characterized in that, include: The panel component according to any one of claims 1-26.

28. The air conditioning device according to claim 27, characterized in that, The air conditioning unit includes a rear compartment component, which cooperates with the panel component to define an accommodating space between the rear compartment component and the panel component. The air conditioning unit includes a ventilation and heat exchange component disposed within the accommodating space.

29. The air conditioning device according to claim 27, characterized in that, The air conditioning unit is embedded and includes an air conditioning body. The air conditioning body includes a housing and a ventilation and heat exchange component disposed within the housing. The housing has an air outlet area. The air conditioning body is adapted to be embedded in a cabinet with an opening. The panel component is disposed on the outside of the air conditioning body and is adapted to cover the opening of the cabinet. The air outlet is correspondingly connected to the air outlet area.