Air guide component and air conditioning equipment

By installing a rotatable guide vane structure at the air conditioner outlet to form a wind guide curved surface, the problem of air volume loss during high-angle wind direction is solved, and the efficiency and service life of the air conditioner are improved.

CN222911921UActive Publication Date: 2025-05-27GD MIDEA AIR CONDITIONING EQUIP CO LTD
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Patent Information

Application Number
CN202420873939.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-04-24
Publication Date
2025-05-27
Estimated Expiration
2034-04-24

AI Technical Summary

Technical Problem

When the existing air conditioner is adjusted with the left and right wind directions, increasing the adjustment angle will lead to air volume loss, thereby reducing the efficiency of the air conditioner.

Method used

A wind guide component is designed, including a component body and a guide vane structure. The guide vane structure can rotate about a first axis. The extension direction of the first axis is parallel to the air outlet direction. The guide vane structure partly forms a wind guide curved surface to reduce the flow loss of air flow when turning at a large angle.

Benefits of technology

By changing the flow direction of the airflow, the flow loss of the airflow during the flow process is reduced, the efficiency of the air conditioning equipment is improved, and the service life is extended.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an air guide component and air conditioning equipment, and the air guide component comprises a component main body which is suitable for being installed at an air outlet of the air conditioning equipment; and the guide vane structure is installed on the component main body, the guide vane structure can rotate around a first axis relative to the component main body, the extending direction of the first axis is parallel to the air outlet direction of the air outlet, and at least part of the guide vane structure forms an air guide curved surface. According to the air guide component, the guide vane structure is arranged and can rotate around the first axis relative to the component main body, so that the flow direction of the airflow is changed, the user requirement is met, the extending direction of the first axis is parallel to the air outlet direction of the air outlet, the flow loss of the airflow in the flowing process is reduced, and the service life of the air guide component is prolonged. And at least part of the guide vane structure forms an air guide curved surface, so that the flow loss of the airflow during large-angle turning is reduced, and the efficiency of the air conditioning equipment is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of air conditioner manufacturing, in particular to a wind guiding component and an air conditioner device with the wind guiding component. Background Art

[0002] With the continuous improvement of people's living standards, air conditioners have become an indispensable part of people's lives. When the existing air conditioners adjust the left and right air directions, the adjustment range of the left and right is small. If the left and right adjustment angles are increased, the air volume loss will increase, reducing the efficiency of the air conditioner, and there is room for improvement. Summary of the Utility Model

[0003] The utility model aims to solve at least one of the technical problems existing in the prior art. For this purpose, the utility model provides a wind guiding component, which can change the flow direction of the air flow, reduce the flow loss when the air flow turns at a large angle, and improve the efficiency of the air conditioner device.

[0004] The wind guiding component according to an embodiment of the utility model includes: a component main body, which is suitable for being installed at the air outlet of the air conditioner device; a guide vane structure, which is installed on the component main body, the guide vane structure is rotatable relative to the component main body around a first axis, the extending direction of the first axis is parallel to the air outlet direction at the air outlet, and at least part of the guide vane structure is formed with a wind guiding curved surface.

[0005] According to the wind guiding component of the embodiment of the utility model, by arranging the wind guiding component at the air outlet of the air conditioner device, arranging the guide vane structure in the wind guiding component, and making the guide vane structure rotatable relative to the component main body around the first axis to change the flow direction of the air flow to meet the user's needs. At the same time, making the extending direction of the first axis parallel to the air outlet direction at the air outlet to reduce the flow loss during the air flow, and making at least part of the guide vane structure form a wind guiding curved surface to reduce the flow loss when the air flow turns at a large angle, effectively reducing the energy loss during the operation of the air conditioner device and improving the efficiency of the air conditioner device.

[0006] The wind guiding component according to some embodiments of the utility model further includes a mounting member, the mounting member is rotatably mounted on the component main body around the first axis, and the guide vane structure is connected to the mounting member.

[0007] The wind guiding component according to some embodiments of the utility model further includes a driving structure, the driving structure is power-connected to the mounting member and is used to drive the mounting member to rotate around the first axis.

[0008] For the air guiding component according to some embodiments of the present utility model, the mounting member is provided with driving teeth, the driving structure includes a driving member and a driving gear, the driving gear is connected to the output end of the driving member, and the driving gear is in power connection with the driving teeth to drive the mounting member to rotate.

[0009] For the air guiding component according to some embodiments of the present utility model, the mounting member is configured as a toothed ring, the outer peripheral wall of the toothed ring is provided with the driving teeth, and the guide vane structure is connected inside the toothed ring.

[0010] For the air guiding component according to some embodiments of the present utility model, both the mounting member and the guide vane structure are multiple and are in one-to-one correspondence and cooperation, and are driven by a transmission gear between adjacent two mounting members and / or between the mounting member and the driving gear.

[0011] For the air guiding component according to some embodiments of the present utility model, the guide vane structure and the mounting member are detachably connected.

[0012] For the air guiding component according to some embodiments of the present utility model, the component main body includes a bottom plate and a cover plate, the bottom plate and the cover plate are detachably connected, and at least part of the mounting member is located between the bottom plate and the cover plate.

[0013] For the air guiding component according to some embodiments of the present utility model, the guide vane structure is multiple, and the multiple guide vane structures are sequentially distributed along the length direction of the air outlet.

[0014] For the air guiding component according to some embodiments of the present utility model, it further includes a driving structure, and the driving structure is used to drive at least one of the guide vane structures to rotate.

[0015] For the air guiding component according to some embodiments of the present utility model, the multiple guide vane structures are driven by sharing one driving structure.

[0016] For the air guiding component according to some embodiments of the present utility model, at least two of the guide vane structures are independently driven.

[0017] For the air guiding component according to some embodiments of the present utility model, the guide vane structure includes a windward vane and a leeward vane, the windward vane and the leeward vane are relatively fixed, the windward vane extends to the windward side of the component main body, and the leeward vane extends to the leeward side of the component main body.

[0018] For the air guiding component according to some embodiments of the present utility model, the windward vane and / or the leeward vane are formed with the air guiding curved surface.

[0019] For the air guiding component according to some embodiments of the present utility model, the windward vane is configured as at least two layers; and / or the leeward vane is configured as at least two layers.

[0020] The air guiding component according to some embodiments of the present invention, wherein there are multiple guide vane structures, and the multiple guide vane structures are sequentially distributed along the length direction of the air outlet; among them, in the multiple guide vane structures, the number of layers of the air outlet vanes of the guide vane structures at both ends is greater than that of the air outlet vanes of the remaining guide vane structures.

[0021] The air guiding component according to some embodiments of the present invention, an included angle is formed between the extending direction of the windward vane and / or the extending direction of the air outlet vane and the extending direction of the first axis.

[0022] The present invention also provides an air conditioning device.

[0023] The air conditioning device according to the embodiment of the present invention includes a front frame, a chassis, and the air guiding component according to any one of the above embodiments. The front frame is connected to the chassis and defines an air outlet cavity and the air outlet. The air outlet is communicated with the air cavity, and the air guiding component is installed at the air outlet.

[0024] The advantages of the air conditioning device and the above air guiding component over the prior art are the same, and will not be elaborated here.

[0025] Some of the additional aspects and advantages of the present invention will be given in the following description, some will become obvious from the following description, or will be understood through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] The above and / or additional aspects and advantages of the present invention will become obvious and easy to understand from the description of the embodiments in conjunction with the following drawings, wherein:

[0027] Figure 1 is an exploded schematic view of the air guiding component according to the embodiment of the present invention Figure 1 ;

[0028] Figure 2 is an exploded schematic view of the air guiding component according to the embodiment of the present invention Figure 2 ;

[0029] Figure 3 is a partial schematic view of the air guiding component according to the embodiment of the present invention Figure 1 ;

[0030] Figure 4 is a partial schematic view of the air guiding component according to the embodiment of the present invention Figure 2 ;

[0031] Figure 5 is a partial schematic view of the air guiding component according to the embodiment of the present invention Figure 3 ;

[0032] Figure 6 is Figure 5 the schematic cross-sectional view at A-A in

[0033] Figure 7 the partial schematic view of the air guiding component according to the embodiment of the present utility model Figure 4 ;

[0034] Figure 8 is Figure 7 the schematic cross-sectional view at B-B in

[0035] Figure 9 the explosion schematic view of the air conditioner according to the embodiment of the present utility model

[0036] Figure 10 the side view of the air conditioner according to the embodiment of the present utility model

[0037] Figure 11 the schematic cross-sectional view of the air conditioner according to the embodiment of the present utility model

[0038] Figure 12 the schematic structure view of the air conditioner for upward air guiding according to the embodiment of the present utility model

[0039] Figure 13 the schematic structure view of the air conditioner for downward air guiding according to the embodiment of the present utility model

[0040] Figure 14 the schematic structure view of the air conditioner for leftward air guiding according to the embodiment of the present utility model

[0041] Figure 15 the schematic structure view of the air conditioner for rightward air guiding according to the embodiment of the present utility model

[0042] Figure 16 the schematic structure view of the air conditioner for simultaneous leftward and rightward air guiding according to the embodiment of the present utility model

[0043] Reference numerals:

[0044] the air guiding component 100, the air conditioner 200,

[0045] the component main body 1, the bottom plate 11, the cover plate 12, the guide vane structure 2, the windward vane 21, the air outlet vane 22, the air guiding curved surface 23, the mounting member 3, the driving tooth 31, the transmission gear 32, the driving structure 4, the driving member 41, the driving gear 42,

[0046] the face frame 201, the chassis 202, the air cavity 203, the air outlet 204, the side air outlet 205. Detailed implementation manners

[0047] Embodiments of the present utility model will be described in detail below. Examples of the embodiments are shown in the accompanying drawings, where like or similar reference numerals denote like or similar elements or elements having like or similar functions throughout. The embodiments described below by referring to the accompanying drawings are exemplary only for explaining the present utility model and should not be construed as limiting the present utility model.

[0048] In the description of the present utility model, it should be understood that the orientation or positional relationships indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. are based on the orientation or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as limiting the present utility model. In addition, features defined as "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present utility model, unless otherwise specified, the meaning of "a plurality" is two or more.

[0049] In the description of the present utility model, it should be noted that unless otherwise clearly specified and limited, the terms "mounted", "connected" and "coupled" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.

[0050] Reference is made below Figures 1 - 16 to describe the air guiding component 100 according to an embodiment of the present utility model. By providing the component main body 1 at the air outlet 204 of the air conditioning device 200 and installing the guide vane structure 2 in the component main body 1, the flow direction of the air flow is changed by the rotation of the guide vane structure 2 relative to the component main body 1 to meet the user's needs, and at least a part of the guide vane structure 2 forms a wind guiding surface 23 to reduce the flow loss of the air flow during large-angle turning and improve the efficiency of the air conditioning device 200.

[0051] As Figure 1 shown, the air guiding component 100 according to an embodiment of the present utility model includes: a component main body 1 and a guide vane structure 2.

[0052] The component main body 1 is adapted to be installed at the air outlet 204 of the air conditioning device 200.

[0053] Specifically, the air guiding component 100 can play a role in guiding air, that is, guiding the air flow sent out by the air conditioner 200 so that the air flow can flow in the direction specified by the user. By arranging the component main body 1 at the air outlet 204 of the air conditioner 200, the air guiding component 100 can be fixed at the air outlet 204 of the air conditioner 200, realizing the installation of the air guiding component 100, and enabling the air guiding component 100 to guide the air flow sent out by the air conditioner 200 from the air outlet 204 to meet the user's needs.

[0054] The guide vane structure 2 is installed on the component main body 1. The guide vane structure 2 is rotatable relative to the component main body 1 about a first axis. The extending direction of the first axis is parallel to the air outlet direction at the air outlet 204, and at least part of the guide vane structure 2 forms a wind guiding surface 23.

[0055] Specifically, the guide vane structure 2 is installed on the component main body 1. The guide vane structure 2 can be used to guide the air flow so that the air flow flows in the direction required by the user. By setting the guide vane structure 2 to be rotatable, the flow direction of the air flow can be changed by changing the position of the guide vane structure 2. And by making the guide vane structure 2 rotatable about the first axis, the position of the guide vane structure 2 can be changed by the rotation of the guide vane structure 2 about the first axis, thereby changing the flow direction of the air flow. At the same time, making the extending direction of the first axis parallel to the air outlet direction at the air outlet 204 can reduce the flow loss during the air flow movement. In addition, making at least part of the guide vane structure 2 form a wind guiding surface 23 to reduce the flow loss when the air flow makes a large-angle turn, the flow loss of the air flow can be reduced on the premise of increasing the left-right adjustment angle, effectively reducing the energy consumption during the operation of the air conditioner 200 and improving the efficiency of the air conditioner 200.

[0056] Therefore, by installing the component main body 1 at the air outlet 204 of the air conditioner 200 to realize the installation of the air guiding component 100 on the air conditioner 200. At the same time, the guide vane structure 2 is arranged on the component main body 1, and the guide vane structure 2 is rotatable about the first axis to change the flow direction of the air flow by changing the position of the guide vane structure 2, and making the extending direction of the first axis parallel to the air outlet direction at the air outlet 204 to reduce the flow loss during the air flow movement. In addition, making at least part of the guide vane structure 2 form a wind guiding surface 23 to reduce the flow loss when the air flow makes a large-angle turn.

[0057] According to the air guiding component 100 of the embodiment of the present utility model, by arranging the air guiding component 100 at the air outlet 204 of the air conditioning device 200, arranging the guide vane structure 2 in the air guiding component 100, and enabling the guide vane structure 2 to rotate relative to the component main body 1 around the first axis to change the flow direction of the air flow to meet the user's needs. At the same time, making the extending direction of the first axis parallel to the air outlet direction at the air outlet 204 to reduce the flow loss during the air flow process, and making at least a part of the guide vane structure 2 form an air guiding curved surface 23 to reduce the flow loss when the air flow makes a large-angle turn, effectively reducing the energy consumption during the operation of the air conditioning device 200 and improving the efficiency of the air conditioning device 200.

[0058] In some embodiments, the air guiding component 100 further includes a mounting member 3. The mounting member 3 is rotatably mounted on the component main body 1 around the first axis, and the guide vane structure 2 is connected to the mounting member 3.

[0059] Specifically, as Figure 5 and Figure 7 shown, the mounting member 3 is used to provide a mounting position for the guide vane structure 2. Connecting the guide vane structure 2 to the mounting member 3 can realize the installation and fixation of the guide vane structure 2. At the same time, setting the mounting member 3 to be rotatable enables the mounting member 3 to rotate relative to the component main body 1, and further enables the guide vane structure 2 to rotate driven by the mounting member 3. And making the mounting member 3 rotatable around the first axis enables the guide vane structure 2 to rotate around the first axis when the mounting member 3 rotates around the first axis, so as to change the flow direction of the air flow sent out by the air conditioning device 200, and further enable the air flow to flow in the direction specified by the user to meet the user's needs.

[0060] In some embodiments, the air guiding component 100 further includes a driving structure 4. The driving structure 4 is power-connected to the mounting member 3 and is used to drive the mounting member 3 to rotate around the first axis.

[0061] Specifically, a driving structure 4 is further arranged in the air guiding component 100. The driving structure 4 is used to provide a driving force for the mounting member 3 so that the mounting member 3 can rotate around the first axis under the action of the driving structure 4. Connecting the driving structure 4 to the mounting member 3 enables the driving force of the driving structure 4 to be transmitted to the mounting member 3. And making the mounting member 3 rotate around the first axis under the action of the driving force, and connecting the guide vane structure 2 to the mounting member 3 enables the guide vane structure 2 to rotate around the first axis when the mounting member 3 rotates around the first axis under the action of the driving structure 4, so as to change the flow direction of the air flow.

[0062] In some embodiments, the mounting member 3 is provided with a driving tooth 31. The driving structure 4 includes a driving member 41 and a driving gear 42. The driving gear 42 is connected to the output end of the driving member 41, and the driving gear 42 is power-connected to the driving tooth 31 to drive the mounting member 3 to rotate.

[0063] Specifically, the driving structure 4 includes two parts, namely a driving member 41 and a driving gear 42. The driving member 41 is used to provide a driving force to the mounting member 3. The driving gear 42 is connected to the output end of the driving member 41, so that the driving force of the driving member 41 can be transmitted to the driving gear 42, causing the driving gear 42 to rotate under the drive of the driving member 41. At the same time, a driving tooth 31 is provided on the mounting member 3, and the mounting member 3 is power-connected to the driving gear 42 through the driving tooth 31, so that the driving force of the driving member 41 can be transmitted to the driving tooth 31 through the driving gear 42, that is, transmitted to the mounting member 3. Furthermore, the mounting member 3 can be rotated around the first axis under the action of the driving member 41, driving the guide vane structure 2 to rotate around the first axis to change the flow direction of the air flow.

[0064] It should be noted that the driving member 41 can be configured as a driving motor, and the driving force of the driving motor is transmitted to the mounting member 3 through the driving gear 42 to drive the mounting member 3 to rotate around the first axis. Furthermore, the guide vane structure 2 is driven by the mounting member 3 to rotate around the first axis to change the flow direction of the air flow.

[0065] In some embodiments, the mounting member 3 is configured as a toothed ring, and the outer peripheral wall of the toothed ring is provided with driving teeth 31, and the guide vane structure 2 is connected inside the toothed ring.

[0066] Specifically, the mounting member 3 can be configured as a toothed ring, and driving teeth 31 are provided on the outer peripheral wall of the mounting member 3. Then, the driving member 41 can be connected to the outside of the toothed ring, and the driving teeth 31 can be power-connected to the driving gear 42, so that the driving force of the driving member 41 can be transmitted to the driving teeth 31 through the driving gear 42, that is, transmitted to the mounting member 3, causing the mounting member 3 to rotate around the first axis under the action of the driving member 41. At the same time, the guide vane structure 2 is arranged inside the toothed ring, so that the driving member 41 and the guide vane structure 2 can be respectively arranged on the inside and outside of the toothed ring to avoid interference between the two. Moreover, since the guide vane structure 2 is connected to the toothed ring, the guide vane structure 2 can be driven by the toothed ring to rotate around the first axis to change the flow direction of the air flow, and the guide vane structure 2 can also be installed and fixed to improve the reliability of the rotation of the guide vane structure 2 driven by the toothed ring, that is, improve the reliability of using the guide vane structure 2 to change the flow direction of the air flow.

[0067] In some embodiments, there are multiple mounting members 3 and guide vane structures 2, which are in one-to-one correspondence and cooperation. A transmission gear 32 is used for transmission between adjacent two mounting members 3 and / or between the mounting member 3 and the driving gear 42.

[0068] Specifically, the guide vane structure 2 is used to change the flow direction of the air flow. By setting the guide vane structure 2 in multiple numbers, multiple guide vane structures 2 can be used to change the flow direction of the air flow simultaneously, so as to improve the reliability of changing the flow direction of the air flow. At the same time, the mounting member 3 is used to provide a mounting position for the guide vane structure 2 and drive the guide vane structure 2 to rotate around the first axis. By setting the mounting member 3 in multiple numbers and making the mounting member 3 cooperate with the guide vane structure 2 in a one-to-one correspondence, a mounting position can be provided for each guide vane structure 2 to realize the installation and fixation of all guide vane structures 2. Also, each guide vane structure 2 can be rotated under the drive of the corresponding mounting member 3, so as to improve the reliability of the rotation of the guide vane structure 2, and further improve the reliability of changing the flow direction of the air flow through the rotation of the guide vane structure 2.

[0069] Moreover, a transmission gear 32 can be arranged between two adjacent mounting members 3 to transmit the driving force transmitted by the driving member 41 to one of the mounting members 3 to the adjacent mounting member 3 through the transmission gear 32, and then to all the remaining mounting members 3. Thus, the transmission of the driving force between the mounting members 3 can be realized, the number of driving members 41 can be reduced, the setting cost and the overall weight of the air-conditioning device 200 can be reduced. At the same time, a transmission gear 32 can also be arranged between the mounting member 3 and the driving gear 42, and the driving gear 42 is engaged with the transmission gear 32 to transmit the driving force of the driving member 41 to the driving gear 42, and then from the driving gear 42 through the transmission gear 32 to the mounting member 3, so that the guide vane structure 2 can rotate around the first axis under the drive of the mounting member 3 to realize the change of the air flow direction.

[0070] It should be noted that the driving gear 42 can be selectively matched with any one of the transmission gears 32 to transmit the driving force of the driving member 41 to the two mounting members 3 connected to the transmission gear 32, and drive the remaining mounting members 3 to rotate under the drive of the transmission gear 32, so that all the guide vane structures 2 can rotate and jointly change the flow direction of the air flow. Also, transmission gears 32 can be arranged on the outer sides of the two mounting members 3 at both ends. In the embodiment shown in Figures 1 - 2 As shown, a transmission gear 32 is arranged on the right side of the rightmost mounting member 3. When the driving gear 42 is connected to the transmission gear 32, the driving force can be transmitted to the rightmost mounting member 3, and all the mounting members 3 can be driven to rotate under the action of multiple transmission gears 32, that is, all the guide vane structures 2 are driven to rotate to jointly change the flow direction of the air flow.

[0071] In some embodiments, the guide vane structure 2 and the mounting member 3 are detachably connected.

[0072] Specifically, the mounting member 3 is power-connected to the driving member 41, and the guide vane structure 2 is further connected to the mounting member 3. When the mounting member 3 rotates under the action of the driving member 41, the guide vane structure 2 can be driven to rotate together, so as to change the flow direction of the air flow by the rotation of the guide vane structure 2. The guide vane structure 2 and the mounting member 3 can be set to be detachably connected, which is convenient for the user to connect or separate the mounting member 3 and the guide vane structure 2. Furthermore, when the guide vane structure 2 or the mounting member 3 is damaged and fails, it can be replaced. That is, when the guide vane structure 2 or the mounting member 3 is damaged and fails, the two can be separated first, the damaged part can be replaced, and then the two can be reconnected. Thus, the service life of the air guiding component 100 can be extended, and further the service life of the air conditioning device 200 can be extended.

[0073] In some embodiments, the component main body 1 includes a bottom plate 11 and a cover plate 12, and the bottom plate 11 and the cover plate 12 are detachably connected, and at least part of the mounting member 3 is located between the bottom plate 11 and the cover plate 12.

[0074] Specifically, the bottom plate 11 is used to provide a mounting position for the components inside the component main body 1, and the cover plate 12 is used to shield and protect the components inside the component main body 1. By constructing the bottom plate 11 and the cover plate 12 to be detachably connected, it is convenient to connect or separate the bottom plate 11 and the cover plate 12. That is, the bottom plate 11 and the cover plate 12 can be separated first, the components inside the air guiding component 100 can be installed on the bottom plate 11, and then the bottom plate 11 and the cover plate 12 can be connected, so as to realize the installation of the component main body 1. In addition, by arranging at least part of the mounting member 3 between the bottom plate 11 and the cover plate 12, the mounting member 3 can be connected to the bottom plate 11 to realize the installation of the mounting member 3, and then the cover plate 12 is used to shield and protect the mounting member 3, so as to reduce the possibility that the mounting member 3 cannot rotate driven by the transmission gear 32 due to long-term dust accumulation or other situations, and the reliability of the rotation of the mounting member 3 driven by the transmission gear 32 can be improved.

[0075] In the embodiment as Figures 1 - 2 shown, the mounting member 3 is connected to the bottom plate 11 to realize the installation of the mounting member 3, and the mounting member 3 can rotate relative to the component main body 1, so that the mounting member 3 can drive the guide vane structure 2 to rotate to change the flow direction of the air flow.

[0076] In some embodiments, there are multiple guide vane structures 2, and the multiple guide vane structures 2 are sequentially distributed along the length direction of the air outlet 204.

[0077] Specifically, the guide vane structure 2 is used to change the flow direction of the air flow when rotating around the first axis. By setting the guide vane structure 2 as multiple ones, the flow direction of the air flow can be changed jointly by multiple guide vane structures 2, improving the reliability of using the guide vane structure 2 to change the flow direction of the air flow. At the same time, by arranging multiple guide vane structures 2 successively along the length direction of the air outlet 204, the number of the set guide vane structures 2 can be increased, improving the reliability of using the guide vane structure 2 to change the flow direction of the air flow at the air outlet 204, and the gas flow rate inside the air conditioner 200 can be effectively distributed by multiple guide vane structures 2 to ensure uniform distribution of the indoor air flow and avoid problems such as insufficient local ventilation or excessive ventilation.

[0078] In some embodiments, the air guiding member 100 further includes a driving structure 4, and the driving structure 4 is used to drive at least one guide vane structure 2 to rotate.

[0079] Specifically, a driving structure 4 is arranged in the air guiding member 100 to provide a driving force for the mounting member 3 by using the driving structure 4, and then the guide vane structure 2 connected to the mounting member 3 can be driven to rotate, that is, the driving structure 4 can drive the guide vane structure 2 to rotate, and the driving structure 4 can drive at least one guide vane structure 2 to rotate, that is, the driving structure 4 can drive one guide vane structure 2 among multiple guide vane structures 2 to rotate, or drive two or more guide vane structures 2 to rotate simultaneously, and under the action of multiple transmission gears 32, all the guide vane structures 2 can be driven to rotate to jointly change the flow direction of the air flow, so that the flow direction of the air flow can be changed by driving one of the guide vane structures 2 to rotate or driving multiple guide vane structures 2 to rotate simultaneously by the driving structure 4.

[0080] In the embodiment as Figures 1 - 2 shown, the driving structure 4 can drive the rightmost guide vane structure 2 to rotate alone, or drive two adjacent guide vane structures 2 to rotate simultaneously. When the driving structure 4 drives the rightmost guide vane structure 2 to rotate, the driving force can be sequentially transmitted to the left under the action of multiple transmission gears 32 to drive all the guide vane structures 2 to rotate. When the driving structure 4 drives two adjacent guide vane structures 2 to rotate simultaneously, the driving force can be transmitted to both the left and right directions simultaneously under the action of multiple transmission gears 32 to drive all the guide vane structures 2 to rotate, that is, the driving structure 4 can only drive the rightmost guide vane structure 2 to rotate, or drive two adjacent guide vane structures 2 to rotate simultaneously to realize the rotation of all the guide vane structures 2, and then the flow direction of the air flow can be jointly changed by the rotation of all the guide vane structures 2.

[0081] In some embodiments, multiple guide vane structures 2 are driven by sharing one driving structure 4.

[0082] Specifically, the driving structure 4 is used to drive the installation member 3 to rotate, and drive the guide vane structure 2 to rotate under the drive of the installation member 3, that is, the driving structure 4 can drive the guide vane structure 2 to rotate. A plurality of guide vane structures 2 are provided in the air guiding component 100. Thus, the flow direction of the air flow can be changed jointly by the rotation of the plurality of guide vane structures 2. By sharing one driving structure 4 to drive the plurality of guide vane structures 2, the plurality of guide vane structures 2 can be rotated only by one driving structure 4. This can reduce the number of driving structures 4, lower the installation cost and the overall weight of the air-conditioning device 200, improve the convenience of driving the plurality of guide vane structures 2, and make the rotation directions of the plurality of guide vane structures 2 the same, which is beneficial to controlling the flow direction of the air flow to meet the user's needs.

[0083] In the embodiment as Figures 1 - 2 shown, the driving structure 4 can be used to drive the rightmost guide vane structure 2, and under the action of a plurality of transmission gears 32, the plurality of guide vane structures 2 can be rotated, or the driving structure 4 can be used to drive two adjacent guide vane structures 2, and under the action of a plurality of transmission gears 32, the plurality of guide vane structures 2 can be rotated. That is, the plurality of guide vane structures 2 can share one driving structure 4, which can reduce the number of driving structures 4, lower the installation cost and the overall weight of the air-conditioning device 200.

[0084] In some embodiments, at least two guide vane structures 2 are independently driven.

[0085] Specifically, a plurality of guide vane structures 2 are provided in the air guiding component 100. The driving structure 4 can be used to drive the plurality of guide vane structures 2 to rotate to change the flow direction of the air flow. At least two guide vane structures 2 are independently driven, that is, two of the plurality of guide vane structures 2 can be independently driven, or three or more guide vane structures 2 can be independently driven. Thus, the plurality of guide vane structures 2 can be individually driven by the driving structure 4, and the plurality of guide vane structures 2 can rotate in the same direction or in the opposite direction, increasing the selection space of the air flow direction, which is beneficial to improving the user satisfaction.

[0086] Among them, it should be noted that any two mounting members 3 can be respectively connected to a driving structure 4, and any one transmission gear 32 disposed between the two mounting members 3 is reduced, so that the two driving structures 4 can respectively drive one mounting member 3, and the two mounting members 3 can rotate in the same direction or in opposite directions. When the two mounting members 3 rotate in the same direction, the same-direction rotation of multiple guide vane structures 2 can be realized, so that the air flow flows in one direction. When the two mounting members 3 rotate in opposite directions, part of the guide vane structures 2 among the multiple guide vane structures 2 can rotate in one direction, and the other part can rotate in different directions, that is, the air flow can be made to flow in two directions at the same time. Moreover, on this basis, by increasing the number of driving structures 4 provided and reducing the number of transmission gears 32 provided, multiple mounting members 3 can be driven to rotate independently, and the same-direction or opposite-direction rotation of multiple guide vane structures 2 can be realized, and further the same-direction or opposite-direction flow of the air flow can be realized.

[0087] In some embodiments, the guide vane structure 2 includes a windward blade 21 and a leeward blade 22. The windward blade 21 and the leeward blade 22 are relatively fixed, and the windward blade 21 extends to the windward side of the component main body 1, and the leeward blade 22 extends to the leeward side of the component main body 1.

[0088] Specifically, the windward blade 21 is used to receive the air flow generated inside the air-conditioning device 200 and guide it. By setting the windward blade 21 to extend towards the windward side of the component main body 1, it is convenient for the air flow generated inside the air-conditioning device 200 to enter the inside of the guide vane structure 2 therefrom. The leeward blade 22 is used to send out and guide the air flow generated inside the air-conditioning device 200. By setting the leeward blade 22 to extend towards the leeward side of the component main body 1, it is convenient for the air flow flowing into the guide vane structure 2 to be sent out from a specified direction therefrom to meet the user's usage requirements. Moreover, the windward blade 21 and the leeward blade 22 can be relatively fixed, that is, relative rotation between the windward blade 21 and the leeward blade 22 can be prevented, the reliability of the air flow flowing from the windward blade 21 to the leeward blade 22 can be improved, and the reliability of guiding the air flow by the windward blade 21 and the leeward blade 22 can be improved.

[0089] In some embodiments, the windward blade 21 and / or the leeward blade 22 are formed with a wind guiding curved surface 23.

[0090] That is to say, the windward blade 21 can be formed with the wind guiding curved surface 23, or the leeward blade 22 can be formed with the wind guiding curved surface 23, or both the windward blade 21 and the leeward blade 22 are formed with the wind guiding curved surface 23, so as to guide the flow direction of the air flow by means of the wind guiding curved surface 23.

[0091] Specifically, in Figures 3 - 9 and Figures 11 - 13In the illustrated embodiment, the windward blade 21 and the air outlet blade 22 are both formed with a wind guiding curved surface 23. By forming the wind guiding curved surface 23 on the windward blade 21, the airflow generated inside the air conditioner 200 can be guided by the wind guiding curved surface 23, and the flow loss when the airflow flows from the inside of the air conditioner 200 into the guide vane structure 2 can be reduced. By forming the wind guiding curved surface 23 on the air outlet blade 22, the airflow inside the guide vane structure 2 can be guided by the wind guiding curved surface 23, and the flow loss when the airflow flows from the air outlet blade 22 to the outside of the air conditioner 200 can be reduced. Thus, the flow loss when the airflow flows from the inside of the air conditioner 200 to the outside can be reduced, which is beneficial to improving the efficiency of the air conditioner 200.

[0092] In some embodiments, the windward blade 21 is configured to have at least two layers.

[0093] Specifically, the windward blade 21 is used to guide the airflow generated inside the air conditioner 200 so that the airflow flows toward the inside of the guide vane structure 2. By configuring the windward blade 21 to have at least two layers, the windward blade 21 can be configured to have two, three, or more layers, so as to improve the reliability of guiding the airflow, and by increasing the number of layers of the windward blade 21, the flow rate of the airflow can be increased, and thus the efficiency of the air conditioner 200 can be improved.

[0094] And / or the air outlet blade 22 is configured to have at least two layers.

[0095] Specifically, the air outlet blade 22 is used to guide the airflow flowing from the inside of the guide vane structure 2 to the outside of the air conditioner 200 so that the airflow flows in the direction specified by the user. By configuring the air outlet blade 22 to have at least two layers, the air outlet blade 22 can be configured to have two, three, or more layers, so as to improve the reliability of guiding the airflow by the air outlet blade 22, and by increasing the number of layers of the air outlet blade 22, the flow rate of the airflow can be increased, and thus the efficiency of the air conditioner 200 can be improved.

[0096] In some embodiments, there are multiple guide vane structures 2, and the multiple guide vane structures 2 are sequentially distributed along the length direction of the air outlet 204.

[0097] Specifically, the guide vane structure 2 is used to change the flow direction of the airflow when rotating around the first axis. By providing multiple guide vane structures 2, the flow direction of the airflow can be changed jointly by the multiple guide vane structures 2, improving the reliability of changing the flow direction of the airflow by the guide vane structure 2. At the same time, by sequentially distributing the multiple guide vane structures 2 along the length direction of the air outlet 204, the number of the guide vane structures 2 can be increased, improving the reliability of changing the flow direction of the airflow at the air outlet 204 by the guide vane structure 2, and the multiple guide vane structures 2 can be used to effectively distribute the gas flow inside the air conditioner 200 to ensure uniform distribution of the indoor airflow and avoid problems such as insufficient or excessive ventilation in local areas.

[0098] Among them, in multiple guide vane structures 2, the number of layers of the air outlet vanes 22 of the guide vane structures 2 at both ends is greater than the number of layers of the air outlet vanes 22 of the remaining guide vane structures 2.

[0099] Specifically, the guide vane structure 2 is used to guide the flow direction of the air flow. Multiple guide vane structures 2 are arranged in the air guiding component 100. Thus, the multiple guide vane structures 2 can be used to jointly guide the air flow. The number of layers of the air outlet vanes 22 of the guide vane structures 2 at the left and right ends of the air guiding component 100 can be set to be greater than the number of layers of the air outlet vanes 22 of the remaining guide vane structures 2, so as to increase the flow rate of the air flow at both ends and reduce the possibility of air leakage, which is beneficial to improving the efficiency and directivity of the left and right air guiding of the air conditioning device 200.

[0100] In some embodiments, an included angle is formed between the extending direction of the windward vane 21 and / or the extending direction of the air outlet vane 22 and the extending direction of the first axis.

[0101] That is to say, an included angle can be formed between the extending direction of the windward vane 21 and the extending direction of the first axis, or an included angle can be formed between the extending direction of the air outlet vane 22 and the extending direction of the first axis, or included angles can be formed between the extending directions of both the windward vane 21 and the air outlet vane 22 and the extending direction of the first axis.

[0102] In the embodiments such as Figures 3 - 4 、 Figure 6 、 Figure 8 and 11 - Figure 13 shown, included angles are formed between the extending directions of both the windward vane 21 and the air outlet vane 22 and the extending direction of the first axis. An included angle is formed between the extending direction of the windward vane 21 and the extending direction of the first axis to reduce the flow loss when the air flow generated inside the air conditioning device 200 flows into the guide vane structure 2, and an included angle is formed between the extending direction of the air outlet vane 22 and the extending direction of the first axis to reduce the flow loss when the air flow flows from inside the guide vane structure 2 to the outside of the air conditioning device 200. Thus, the flow loss when the air flow flows from inside the air conditioning device 200 to the outside can be effectively reduced, which is beneficial to improving the efficiency of the air conditioning device 200.

[0103] The present utility model also proposes an air conditioning device 200.

[0104] An air conditioning device 200 according to an embodiment of the present utility model includes a front frame 201, a chassis 202, and the air guiding component 100 of any one of the above embodiments. The front frame 201 is connected to the chassis 202 and defines an air outlet cavity 203 and an air outlet 204. The air outlet 204 is communicated with the air cavity 203, and the air guiding component 100 is installed at the air outlet 204. Among them, the chassis 202 is used to provide an installation position for the air guiding component 100 and other components in the air conditioning device 200. The front frame 201 is used to shield and protect the components installed on the chassis 202 to prevent the components in the air conditioning device 200 from being damaged by collision or the efficiency of the air conditioning device 200 from being reduced due to dust accumulation. Connecting the front frame 201 to the bottom plate 11 can improve the overall structural strength of the air conditioning device 200, and the air outlet cavity 203 and the air outlet 204 are defined between the front frame 201 and the bottom plate 11. The air cavity 203 is used to form cold or hot air flow for the air entering the air conditioning device 200. Connecting the air outlet 204 to the air cavity 203 enables the cold or hot air flow formed in the air cavity 203 to flow to the air outlet 204. Installing the air guiding component 100 at the air outlet 204 can further make the cold or hot air flow flowing to the air outlet 204 flow in the direction specified by the user under the action of the air guiding component 100 to meet the user's usage requirements.

[0105] Among them, it should be noted that, as Figures 9 - 10 shown, side air outlets 205 are also provided on the left and right sides of the air conditioning device 200, so that the air flow can also flow to the outside from the side air outlets 205 on both sides, which can further increase the efficiency and directivity of the left and right air supply of the air conditioning device 200.

[0106] And, it should be noted that, as Figure 12 shown, when the guide vane structure 2 is rotated to make the air outlet blades 22 tilt upward, upward air guiding of the air conditioning device 200 can be realized. As Figure 13 shown, when the guide vane structure 2 is rotated to make the air outlet blades 22 tilt downward, downward air guiding of the air conditioning device 200 can be realized. As Figure 14 shown, when the guide vane structure 2 is rotated to make the air outlet blades 22 tilt to the left, left air guiding of the air conditioning device 200 can be realized. As Figure 15 shown, when the guide vane structure 2 is rotated to make the air outlet blades 22 tilt to the right, right air guiding of the air conditioning device 200 can be realized. As Figure 16 shown, when the guide vane structure 2 is rotated to make some air outlet blades 22 tilt to the left and some air outlet blades 22 tilt to the right, simultaneous left and right air guiding of the air conditioning device 200 can be realized. Thus, the selection range of the air guiding direction can be increased, which is beneficial to improving user satisfaction.

[0107] In the description of this specification, the descriptions referring to terms such as "one embodiment", "some embodiments", "schematic embodiments", "examples", "specific examples", or "some examples", etc. mean that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present utility model. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.

[0108] Although the embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present utility model, and the scope of the present utility model is defined by the claims and their equivalents.

Claims

1. An air guide component, characterized in that: include: A component body, wherein the component body is suitable for being installed at an air outlet of an air conditioning device; A guide vane structure is installed on the component body, the guide vane structure is rotatable around a first axis relative to the component body, the extension direction of the first axis is parallel to the air outlet direction at the air outlet, and at least a portion of the guide vane structure is formed with an air guide curved surface.

2. The air guide component according to claim 1, characterized in that: It also includes a mounting member, which is rotatably mounted on the component body around the first axis, and the guide vane structure is connected to the mounting member.

3. The air guide component according to claim 2, characterized in that: It also includes a driving structure, which is dynamically connected to the mounting member and is used to drive the mounting member to rotate around the first axis.

4. The air guide component according to claim 3, characterized in that: The mounting member is provided with a driving tooth, and the driving structure includes a driving member and a driving gear. The driving gear is connected to the output end of the driving member, and the driving gear is dynamically connected to the driving tooth to drive the mounting member to rotate.

5. The air guide component according to claim 4, characterized in that: The mounting member is configured as a gear ring, the outer peripheral wall of the gear ring is provided with the driving teeth, and the guide vane structure is connected inside the gear ring.

6. The air guide component according to claim 5, characterized in that: The mounting parts and the guide vane structures are multiple and matched one by one, and transmission gears are used to transmit power between two adjacent mounting parts and / or between the mounting parts and the driving gear.

7. The air guide component according to claim 2, characterized in that: The guide vane structure is detachably connected to the mounting member.

8. The air guide component according to claim 2, characterized in that: The component body comprises a bottom plate and a cover plate, wherein the bottom plate is detachably connected to the cover plate, and at least a portion of the mounting member is located between the bottom plate and the cover plate.

9. The air guide component according to claim 1, characterized in that: There are multiple guide vane structures, and the multiple guide vane structures are distributed in sequence along the length direction of the air outlet.

10. The air guide component according to claim 9, characterized in that: It also includes a driving structure, which is used to drive at least one of the guide vane structures to rotate.

11. The air guide component according to claim 10, characterized in that: The plurality of guide vane structures are driven by a common driving structure.

12. The air guide component according to claim 9, characterized in that: At least two of the guide vane structures are driven independently of each other.

13. The air guide component according to any one of claims 1 to 12, characterized in that: The guide vane structure includes a windward blade and an air outlet blade. The windward blade is relatively fixed to the air outlet blade, and the windward blade extends to the windward side of the component body, and the air outlet blade extends to the air outlet side of the component body.

14. The air guide component according to claim 13, characterized in that: The windward blade and / or the wind outlet blade is formed with the wind guiding curved surface.

15. The air guide component according to claim 13, characterized in that: The windward blade is constructed of at least two layers; And / or the air outlet blade is constructed of at least two layers.

16. The air guide component according to claim 13, characterized in that: There are multiple guide vane structures, and the multiple guide vane structures are distributed in sequence along the length direction of the air outlet; Among the plurality of guide vane structures, the number of layers of air outlet blades of the guide vane structures located at the two ends is greater than the number of layers of air outlet blades of the remaining guide vane structures.

17. The air guide component according to claim 13, characterized in that: An angle is formed between an extending direction of the windward blade and / or an extending direction of the wind outlet blade and an extending direction of the first axis.

18. An air conditioning device, characterized in that: It comprises a face frame, a chassis and an air guide component according to any one of claims 1 to 17, wherein the face frame is connected to the chassis and defines an air outlet cavity and the air outlet, the air outlet is connected to the air cavity, and the air guide component is installed at the air outlet.