Wind deflector driving device and air conditioner

By combining support components and drive components, and utilizing structures such as rotating motors and crankshafts, the air guide plate can deliver diverse airflow, solving the problem of single airflow in traditional air conditioners and improving the airflow effect and comfort of the air conditioner.

CN115900042BActive Publication Date: 2026-01-23GD MIDEA AIR CONDITIONING EQUIP CO LTD +1
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Patent Information

Application Number
CN202111165689.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-09-30
Publication Date
2026-01-23
Estimated Expiration
2041-09-30

AI Technical Summary

Technical Problem

The air deflector of a traditional single-flow air conditioner is difficult to meet diverse air supply needs, and it is difficult to achieve diverse air supply effects simply by rotating it.

Method used

An air guide plate drive device is adopted, which includes a support assembly and a drive assembly. Through the combination of a drive part, a moving part and a rotating part, the air guide plate can be used for diversified air guiding. The drive device includes a rotating motor and a crankshaft, and a gear and rack mechanism to realize the movement and rotation of the air guide plate.

Benefits of technology

It enables diverse air delivery methods for the air guide plate, meets the demand for comfortable air delivery, and improves the air delivery effect and flexibility of the air conditioner.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of air deflector driving device and air conditioner, the driving device includes support assembly and drive assembly, the drive assembly is located on the support assembly, the drive assembly includes drive part, moving part and rotating part, the drive part is relatively fixedly located on the support assembly;The moving part movably connects the support assembly, and is driven by the drive part;The rotating part is located on the moving part, and the rotating part is configured to connect air deflector and drive air deflector to rotate.According to the air deflector driving device of embodiment of the application, the diversification of air deflector can be realized.
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Description

Technical Field

[0001] This invention relates to the field of air conditioning technology, and in particular to an air guide vane driving device and an air conditioner having the driving device. Background Technology

[0002] Traditional cross-flow air conditioners typically include an air deflector to guide the airflow direction and achieve directional air delivery. The air deflector can be rotated to adjust the airflow direction and can also be oscillated to achieve a wider airflow range. However, relying solely on the rotation of the air deflector is insufficient to meet diverse air delivery needs. Summary of the Invention

[0003] One objective of this invention is to provide a wind deflector driving device that can achieve diversified wind deflection.

[0004] Another object of the present invention is to provide an air conditioner that includes the aforementioned air guide vane driving device.

[0005] According to an embodiment of the present invention, the air guide plate driving device includes a support assembly and a driving assembly. The driving assembly is disposed on the support assembly and includes a driving part, a moving part, and a rotating part. The driving part is relatively fixedly disposed on the support assembly. The moving part is movably connected to the support assembly and is driven by the driving part. The rotating part is disposed on the moving part and is configured to connect to the air guide plate and drive the air guide plate to rotate.

[0006] According to the air guide plate driving device of the present invention, the air guide plate can realize diversified air guiding.

[0007] In addition, the air guide vane driving device according to the above embodiments of the present invention may also have the following additional technical features:

[0008] Optionally, the bracket assembly includes a drive box, the rotating part is disposed inside the drive box, and the drive box is provided with a wire-passing hole suitable for leading out the wire harness of the rotating part.

[0009] Optionally, the drive box includes a box body, a wire clamp, and a box cover. The box body is configured as a box shape with one side open and a notch on its peripheral wall. The wire clamp is inserted into the notch to position the wire harness. The box cover seals the box body and the notch.

[0010] Optionally, the bottom edge of the notch is provided with a protrusion, and the wire clamp is provided with a wire clamping groove. The protrusion is embedded in the wire clamping groove to position the wire harness.

[0011] Optionally, the inner bottom surface of the box is further provided with a wire guide groove, the wire harness of the rotating part is adapted to be embedded in the wire guide groove and led out from the wire passage hole, and the moving part is adapted to cover the wire guide groove to position the wire harness.

[0012] Optionally, the drive box is provided with a through slot, and the shaft of the rotating part is adapted to pass through the through slot to connect to the air guide plate.

[0013] Optionally, the rotating part includes a rotating motor and a crankshaft, the rotating motor being connected to the crankshaft, and the crankshaft being used to connect the air guide plate.

[0014] Optionally, the drive unit includes a sliding motor and a gear connected to the sliding motor, and the moving unit includes a rack meshing with the gear.

[0015] Optionally, the bracket assembly includes a drive box, the sliding motor is mounted on the outside of the drive box, and the gear and the rack are both located inside the drive box.

[0016] Optionally, the drive unit further includes a motor cover, which is fixedly connected to the drive box. The sliding motor is fixedly mounted on the motor cover, and the inner circumferential surface of the motor cover is provided with ribs.

[0017] Optionally, the movable part further includes a mounting bracket, which is fixedly connected to the rack, and the rotating part is mounted on the mounting bracket.

[0018] Optionally, the driving device includes a plurality of driving components, which are configured to drive a plurality of air guide vanes respectively.

[0019] Optionally, the moving parts of the plurality of drive components are adapted to drive the air guide plate to move along the same curve.

[0020] An air conditioner according to an embodiment of the present invention includes a body, a drive device, and an air guide plate. The body has an air outlet. The drive device is connected to the body and is an air guide plate drive device as described above. The air guide plate is disposed at the air outlet and is throttle-connected to the rotating part. The air guide plate is adapted to be rotated by the drive device and to move along the width direction of the air outlet.

[0021] Optionally, a plurality of air guide plates are arranged along the width direction at the air outlet, and the driving device includes a plurality of driving components corresponding to the plurality of air guide plates.

[0022] Optionally, the driving device is provided at both ends of the air outlet along its length. Attached Figure Description

[0023] Figure 1This is a schematic diagram of a wind deflector driving device according to an embodiment of the present invention.

[0024] Figure 2 This is a schematic diagram of a wind deflector driving device according to an embodiment of the present invention.

[0025] Figure 3 This is a schematic diagram of a wind deflector driving device according to an embodiment of the present invention.

[0026] Figure 4 This is an exploded schematic diagram of a wind deflector driving device according to an embodiment of the present invention.

[0027] Figure 5 This is an exploded schematic diagram of a wind deflector driving device according to an embodiment of the present invention.

[0028] Figure 6 This is an exploded schematic diagram of a wind deflector driving device according to an embodiment of the present invention.

[0029] Figure 7 This is a schematic diagram of the air guide plate driving device according to an embodiment of the present invention after the cover is opened.

[0030] Figure 8 This is a schematic diagram of a wind deflector driving device according to an embodiment of the present invention.

[0031] Figure 9 This is a schematic diagram of an air conditioner according to an embodiment of the present invention.

[0032] Figure 10 This is a schematic diagram of an air conditioner according to an embodiment of the present invention.

[0033] Figures 11a to 11i yes Figure 10 A cross-sectional view at section AA of a central air conditioner when the first and second air guide vanes are in different states.

[0034] Figure 12 This is a schematic diagram of the first air guide plate, the second air guide plate, and the driving device of an air conditioner according to an embodiment of the present invention.

[0035] Figure 13 This is a front view of the first air guide plate, the second air guide plate, and the driving device of an air conditioner according to an embodiment of the present invention.

[0036] Reference numerals: Air conditioner 100, body 10, air outlet 101, first air guide plate 111, second air guide plate 112, drive device 12, first drive assembly 121, second drive assembly 122, drive part 12A, sliding motor 1201, gear 1202, moving part 12B, rack 1203, mounting bracket 1204, rotating part 12C, rotating motor 1205, crankshaft 1206, motor cover 1207, guide structure 13, guide 13A, sliding part 13B, drive box 14, box body 14A, box cover 14B, wire clamp 14C, slot 1401, buckle 1402, lead wire groove 1403, notch 1404, protrusion 1405. Detailed Implementation

[0037] Embodiments of the present invention are described in detail below, examples of which are illustrated 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 the present invention, and should not be construed as limiting the present invention.

[0038] Combination Figures 1 to 8 According to an embodiment of the present invention, the air guide plate driving device 12 includes a bracket assembly and a driving assembly. The driving assembly is connected to the bracket assembly and includes a driving part 12A, a moving part 12B, and a rotating part 12C. The driving part 12A can be disposed on the bracket assembly, and the driving part 12A can be fixed in a relative position to the bracket assembly. The moving part 12B is connected to the bracket assembly and is movable relative to the bracket assembly. The driving part 12A is drively connected to the moving part 12B, so that the driving part 12A can drive the moving part 12B to move. The rotating part 12C can be used to drive the air guide plate to rotate, and the rotating part 12C can move with the moving part 12B. That is, the rotating part 12C can be disposed on the moving part 12B, so that during the movement of the moving part 12B, it will drive the moving part 12B and the air guide plate. Specifically, in the air conditioner 100 having this driving device 12, the rotating part 12C is connected to the air guide plate, and the rotating part 12C drives the air guide plate to rotate. The rotating part 12C is connected to the air guide plate. Therefore, the air guide plate will also move when the rotating part 12C moves. In other words, the air guide plate can be driven to move by the driving part 12A. In addition, the rotating part 12C can drive the air guide plate to rotate.

[0039] According to an embodiment of the present invention, the air guide plate driving device 12 can be used to drive the air guide plate to realize the movement and rotation of the air guide plate, thereby optimizing the air delivery direction of the air guide plate. Moreover, the air guide plate can realize different air delivery modes at different positions to meet the requirements of comfort.

[0040] In addition, in this invention, the driving device 12 drives the air guide plate to move through the driving part 12A and drives the air guide plate to rotate through the rotating part 12C. The driving part 12A and the rotating part 12C can drive the air guide plate separately or simultaneously. That is to say, under the driving action of the driving device 12, the air guide plate can move alone, rotate alone, or rotate and move simultaneously.

[0041] The driving device 12 in this invention may include a driving component for driving an air guide plate. During use, the air supply can be adjusted by moving the air guide plate at the air outlet 101. For example, the airflow can be divided into multiple streams by the air guide plate, thereby achieving more air supply methods. The driving device 12 may also include a driving component for driving multiple air guide plates, which move synchronously during use. The driving device 12 may also include multiple driving components for driving multiple air guide plates, thereby achieving the movement and rotation of multiple air guide plates. In this way, more air supply forms can be achieved by adjusting the position and air guiding angle of multiple air guide plates.

[0042] The bracket assembly in this invention can be in the form of a plate or similar material to provide support for the drive assembly. Furthermore, the bracket assembly can be integrated into the housing of the air conditioner 100 to simplify the structure. For modular design purposes, the bracket assembly can include a drive box 14, which integrates the drive assembly for easier assembly and maintenance. By providing the drive box 14 to house at least one of the rotating part 12C, the moving part 12B, and the drive part 12A, the drive device 12 is constructed as a single unit, facilitating assembly and use.

[0043] Combination Figures 4 to 6 In some embodiments of the present invention, the bracket assembly may include a drive box 14, which may have an accommodating space for accommodating the rotating part 12C. That is, the rotating part 12C can be installed inside the drive box 14. This provides protection for the rotating part 12C, facilitates assembly, and extends the service life of the rotating part 12C.

[0044] Additionally, a wire pass-through hole can be provided on the drive box 14, through which the wiring harness or other wiring harness of the rotating part 12C can be led out. This facilitates the routing of the wiring harness and the connection of the drive device 12 with other structures and signal transmission.

[0045] Optionally, the drive box 14 includes a box body 14A and a box cover 14B. The box body 14A is configured as a box with one side open, and the box cover 14B covers the box body 14A. This facilitates the installation of various components inside the drive box 14. Additionally, a notch 1404 can be provided on the peripheral wall of the box body 14A, and the notch 1404 can be covered by the box cover 14B to facilitate the installation of wire harnesses. Specifically, after the wire harness is inserted into the notch 1404, the sealing action of the box cover 14B can achieve the positioning of the wire harness.

[0046] The drive box 14 also includes a wire clamp 14C, which can be inserted into the notch 1404 to position the wire harness. A positioning groove can also be provided on the outer surface of the wire clamp 14C, into which the edge of the notch 1404 can be inserted to achieve stable positioning of the wire clamp 14C.

[0047] Optionally, the bottom edge of the notch 1404 is provided with a protrusion 1405, and the wire clamp 14C is provided with a wire clamping groove. The protrusion 1405 is embedded in the wire clamping groove to position the wire harness. This can improve the positioning effect of the wire harness. Of course, the cooperation between the wire clamp 14C and the box 14A in this invention can realize the positioning of the wire harness. In order to facilitate the movement of the moving part 12B, sufficient wire harness length can be left in the drive box 14 in this invention to facilitate the movement of the moving part 12B.

[0048] The box body 14A has a slot 1401 on its peripheral wall. A part of the box cover 14B is embedded in the box body 14A and has a buckle 1402. The buckle 1402 engages with the slot 1401 to buckle and connect the box cover 14B and the box body 14A.

[0049] like Figure 4 In some embodiments of the present invention, the inner bottom surface of the housing 14A is further provided with a wire guide groove 1403. The wire harness of the rotating part 12C is adapted to be embedded in the wire guide groove 1403 and led out from the wire passage hole. The moving part 12B is adapted to cover the wire guide groove 1403 to position the wire harness. The wire harness can be guided by the wire guide groove 1403, which facilitates the storage of the wire harness and avoids tangling. The sealing effect of the moving part 12B improves the positioning effect of the wire harness.

[0050] like Figure 2 The drive box 14 is provided with a through groove, and the shaft of the rotating part 12C is adapted to pass through the through groove to connect to the air guide plate. This facilitates the connection between the rotating part 12C and the air guide plate. Of course, it can also be configured such that the structure on the air guide plate extends through the through groove and connects to the rotating part 12C.

[0051] In some embodiments of the present invention, the rotating part 12C includes a rotating motor 1205 and a crankshaft 1206, the rotating motor 1205 being connected to the crankshaft 1206, and the crankshaft 1206 being used to connect to the air guide plate. This facilitates the driving of the air guide plate by the rotating part 12C, simplifies the structure of the rotating part 12C, and achieves stable driving of the air guide plate.

[0052] In some examples of the present invention, the drive unit 12A includes a sliding motor 1201 and a gear 1202, the gear 1202 being connected to the sliding motor 1201, and the sliding motor 1201 can drive the gear 1202 to rotate. The moving unit 12B includes a rack 1203, which meshes with the gear 1202. Through the driving method of the gear 1202 and rack 1203, stable driving of the air guide plate can be achieved.

[0053] Combination Figure 1 and Figure 4 The support assembly includes a drive box 14, a sliding motor 1201 mounted on the drive box 14 and located on the outside of the drive box 14, a gear 1202 disposed inside the drive box 14, and a rack 1203 disposed inside the drive box 14. This allows the gear 1202 and rack 1203 mechanism to stably transmit power.

[0054] Optionally, the drive unit 12A also includes a motor cover 1207, which is fixedly connected to the drive box 14. The sliding motor 1201 is mounted on the motor cover 1207, and the relative position of the sliding motor 1201 and the motor cover 1207 is fixed. Ribs can be provided on the inner circumferential surface of the motor cover 1207. This allows for stable installation of the drive unit 12A, reduces vibration transmission, and enables the drive assembly to stably transmit power. The ribs on the inner circumferential surface of the motor cover 1207 can be configured to extend in a direction parallel to the axis of the sliding motor 1201, and multiple ribs are provided on the inner circumferential surface of the motor cover 1207, with the multiple ribs spaced circumferentially along the inner circumferential surface of the motor cover 1207.

[0055] like Figure 4 As shown, the moving part 12B also includes a mounting bracket 1204, which is fixedly connected to the rack 1203. The rotating part 12C is mounted on the mounting bracket 1204. This allows for stable driving of the rotating part 12C and improves its stability.

[0056] In some embodiments of the present invention, the drive device 12 includes a plurality of drive components configured to drive a plurality of air guide vanes respectively. By driving a plurality of air guide vanes with a plurality of drive components, the air supply patterns can be further increased, thereby further optimizing the comfort of the air conditioner 100.

[0057] Optionally, the moving part 12B of the multiple drive components is adapted to drive the air guide plate to move along the same curve.

[0058] Combination Figures 1 to 13 According to an embodiment of the present invention, an air conditioner 100 includes a body 10, a drive device 12, and an air guide plate. The body 10 has an air outlet 101. The drive device 12 is connected to the body 10 and is an air guide plate drive device 12 as described above. The air guide plate is disposed at the air outlet 101 and is connected to the rotating part 12C for transmission. The air guide plate is adapted to be driven to rotate by the drive device 12 and to move along the width direction of the air outlet 101.

[0059] According to an embodiment of the present invention, the air conditioner is provided with the aforementioned air guide plate driving device 12, which can realize the movement and rotation of the air guide plate through compound motion, thereby optimizing the air delivery direction of the air guide plate. Moreover, the air guide plate can realize different air delivery modes at different positions to meet the requirements of comfort.

[0060] Optionally, multiple air guide plates are arranged along the width direction at the air outlet 101, and the driving device 12 includes multiple driving components corresponding to the multiple air guide plates. The multiple air guide plates can be driven by the driving components to realize the movement and rotation of the air guide plates to meet different air supply requirements. Further, driving devices 12 are provided at both ends of the air outlet 101 along the length direction.

[0061] As one implementation method, the air conditioner 100 of the present invention includes multiple air guide plates. By driving the multiple air guide plates, more air delivery methods can be achieved, thereby improving the comfort requirements.

[0062] To this end, the present invention provides a specific embodiment in which multiple air guide plates are provided, including a first air guide plate 111 and a second air guide plate 112. For ease of explanation, the driving component that drives the first air guide plate 111 is named the first driving component 121, and the driving component that drives the second air guide plate 112 is named the second driving component 122. The specific description of this embodiment is as follows.

[0063] Combination Figures 1 to 1 1. This invention provides an air conditioner 100, comprising: a body 10, a first air guide plate 111, a second air guide plate 112, and a drive device 12. The body 10 can provide support for other components of the air conditioner 100, and an air conditioning module, such as a heat exchanger or a fan, can be installed inside the body 10; both the first air guide plate 111 and the second air guide plate 112 can guide airflow, which is suitable for guiding the airflow delivered by the air conditioner 100, and can also increase or decrease pressure, etc., to achieve various air delivery methods.

[0064] Specifically, the body 10 has an air outlet 101 through which airflow is sent out. In other words, the airflow entering the body 10 undergoes one or more operations such as heat exchange, filtration, sterilization, and disinfection within the body 10 before being sent out through the air outlet 101.

[0065] The first air guide plate 111 is connected to the body 10 and is rotatable. The first air guide plate 111 can change its air delivery direction by rotating, so as to deliver air to the target location according to the actual use needs. The first air guide plate 111 is set at the air outlet 101, that is, the first air guide plate 111 can guide the airflow of the air outlet 101.

[0066] The second air guide plate 112 is connected to the body 10 and is rotatable. The second air guide plate 112 can change its air delivery direction by rotating, so as to deliver air to the target location according to the actual use needs. The second air guide plate 112 is set at the air outlet 101, that is, the second air guide plate 112 can guide the airflow of the air outlet 101.

[0067] The first air guide plate 111 and the second air guide plate 112 are arranged along the width direction of the air outlet 101, and at least one of the first air guide plate 111 and the second air guide plate 112 is movable along the width direction of the air outlet 101. In other words, the first air guide plate 111 can move along the width direction; or the second air guide plate 112 can move along the width direction; or the first air guide plate 111 can move along the width direction and the second air guide plate 112 can also move along the width direction. By moving the first air guide plate 111 and / or the second air guide plate 112 along the width direction, the spacing between the first air guide plate 111 and the second air guide plate 112 can be adjusted. In fact, the first air guide plate 111 and the second air guide plate 112 divide the air outlet 101 into multiple air outlet areas, namely, there are air outlet areas between the first air guide plate 111 and the side of the air outlet 101, between the second air guide plate 112 and the other side of the air outlet 101, and between the first air guide plate 111 and the second air guide plate 112. In addition, since the air guiding direction of the first air guide plate 111 and the air guiding direction of the second air guide plate 112 can be adjusted, the air supply methods of the multiple air outlet areas divided by the first air guide plate 111 and the second air guide plate 112 may also be different. Moreover, since the first air guide plate 111 and the second air guide plate 112 can rotate, a variety of different air supply methods can be provided to meet different usage needs.

[0068] Furthermore, the driving device 12 of the present invention is connected to the first air guide and is also connected to the second air guide plate 112. The driving device 12 can drive the first air guide plate 111 and the second air guide plate 112, so that the first air guide plate 111 and the second air guide plate 112 can be combined to form different air supply patterns. According to the air conditioner 100 of the present invention, a first air guide plate 111 and a second air guide plate 112 are provided. The combination of the first air guide plate 111 and the second air guide plate 112 can provide a variety of air outlet methods to meet different usage needs.

[0069] The first air guide plate 111 and the second air guide plate 112 can both direct airflow in the same direction, thus forming multiple airflows to improve the comfort of air delivery. Alternatively, the first air guide plate 111 and the second air guide plate 112 can also direct airflow in different directions, thus creating multiple airflows and producing different air delivery effects. For example, the first air guide plate 111 and the second air guide plate 112 can form a gradually expanding or contracting channel.

[0070] The air conditioner 100 in this invention can be a cabinet air conditioner, a standing air conditioner, a wall-mounted air conditioner, a split unit, a portable air conditioner, etc. The width and length directions are different for different air conditioners 100. However, as a general principle, the air outlet 101 is generally a long strip structure. Therefore, its length direction is the direction of the longer dimension of the air outlet 101, and its width direction is the direction corresponding to its narrower dimension. Specifically, taking a cabinet air conditioner as an example, the length direction of the air outlet 101 is the vertical direction shown in the attached drawings, and the width direction of the air outlet 101 is the horizontal direction shown in the attached drawings. The accompanying drawings of this invention mainly use a cabinet air conditioner as an example for illustration, but this should not be construed as a limitation on the scope of protection of this invention. It should be understood as a detailed description of one embodiment for clearly illustrating the technical solution of this application.

[0071] Among them, the appendix Figures 11a to 11i A schematic diagram is shown of the first air guide plate 111 and the second air guide plate 112 in different states. Wherein, Figure 11a In this configuration, the first air guide plate 111 and the second air guide plate 112 extend in opposite directions, and the first air guide plate 111 and the second air guide plate 112 are substantially perpendicular to the air supply direction of the air outlet 101, so as to facilitate sealing the air outlet 101. Figure 11b In this configuration, the first air guide plate 111 and the second air guide plate 112 extend in the same direction, and the first air guide plate 111 and the second air guide plate 112 are substantially perpendicular to the air supply direction of the air outlet 101, so as to facilitate sealing the air outlet 101. Figure 11c In the middle, the first air guide plate 111 and the second air guide plate 112 extend in the same direction and are tilted to the right in the air delivery direction. Figure 11dIn the middle, the first air guide plate 111 and the second air guide plate 112 extend in the same direction and are tilted to the left in the air delivery direction. Figure 11e In the middle, the first air guide plate 111 and the second air guide plate 112 extend in the same direction and are tilted to the left in the air supply direction, wherein the first air guide plate 111 is closer to the leftmost side of the air outlet 101, and the second air guide plate 112 is closer to the middle position of the air outlet 101 in the left-right direction. Figure 11f In this configuration, the first air guide plate 111 and the second air guide plate 112 extend in the same direction and along the air delivery direction, and both the first air guide plate 111 and the second air guide plate 112 have arc-shaped surfaces, with the arc-shaped surface of the first air guide plate 111 facing the arc-shaped surface of the second air guide plate 112. Figure 11g In the middle, the first air guide plate 111 and the second air guide plate 112 extend in the same direction and along the air supply direction, and both the first air guide plate 111 and the second air guide plate 112 have arc-shaped surfaces. The arc-shaped surface of the first air guide plate 111 is opposite to the arc-shaped surface of the second air guide plate 112. Figure 11f , Figure 11g The distance between the first air guide plate 111 and the second air guide plate 112 is increased. Figure 11h In this configuration, the first air guide plate 111 and the second air guide plate 112 extend in opposite directions. The first air guide plate 111 tilts to the left in the airflow direction, and the second air guide plate 112 tilts to the right in the airflow direction. Both the first air guide plate 111 and the second air guide plate 112 have curved surfaces, with the curved surface of the first air guide plate 111 facing the curved surface of the second air guide plate 112. Figure 11i In the middle section, the first air guide plate 111 and the second air guide plate 112 extend in opposite directions. The first air guide plate 111 is tilted to the left in the air delivery direction, and the second air guide plate 112 is tilted to the right in the air delivery direction. Both the first air guide plate 111 and the second air guide plate 112 have arc-shaped surfaces. The arc-shaped surface of the first air guide plate 111 is opposite to the arc-shaped surface of the second air guide plate 112, and relative to... Figure 11h In other words, Figure 11i The gap between the first air guide plate 111 and the second air guide plate 112 is reduced.

[0072] The driving device 12 in this invention includes a structure for driving the first air guide plate 111, and may also have a structure for driving the second air guide plate 112. The driving device 12 can be configured to simultaneously drive the first air guide plate 111 and the second air guide plate 112, or it can be configured to drive the first air guide plate 111 and the second air guide plate 112 separately. For example, the first air guide plate 111 and the second air guide plate 112 may share a single driving structure, thus driving both simultaneously. Alternatively, the first air guide plate 111 and the second air guide plate 112 may be configured with different driving structures, allowing for separate control of both. Of course, when different driving structures are used for the first air guide plate 111 and the second air guide plate 112, synchronous driving of the first air guide plate 111 and the second air guide plate 112 can be achieved based on programs, synchronization structures, or other methods.

[0073] Combination Figures 1 to 13 In some embodiments of the present invention, the driving device 12 includes a first driving component 121. The first driving component 121 can be configured to drive the first air guide plate 111 to move and rotate. The first driving component 121 is connected to the body 10 and to the first air guide plate 111. The first driving component 121 can drive the first air guide plate 111 to perform translational or rotational motion relative to the body 10. Alternatively, the first driving component 121 can be configured to drive the body 10 to perform a combination of movement and rotation. Preferably, the first driving component 121 is used to drive the first air guide plate 111 to move and rotate. Through the driving action of the first driving component 121, the movement and rotation of the first air guide plate 111 can be easily achieved to meet different air delivery requirements.

[0074] Similarly, the driving device 12 may further include a second driving assembly 122, which can be configured to drive the movement and rotation of the second air guide plate 112. The second driving assembly 122 is connected to the body 10 and to the second air guide plate 112. The second driving assembly 122 can drive the second air guide plate 112 to perform translational or rotational movements relative to the body 10, or it can be configured to perform a combination of movement and rotation of the body 10. Preferably, the second driving assembly 122 is used to drive the movement and rotation of the second air guide plate 112. Through the driving action of the second driving assembly 122, the movement and rotation of the second air guide plate 112 can be easily achieved to meet different air delivery requirements.

[0075] Furthermore, the first air guide plate 111 and the second air guide plate 112 each employ corresponding drive components, which allows for more flexible driving of the first air guide plate 111 and the second air guide plate 112, further enhancing the air delivery method and effect of the air conditioner 100. Additionally, under the driving action of the drive device 12, both the first air guide plate 111 and the second air guide plate 112 can move and rotate, further optimizing the air delivery effect of the air conditioner 100.

[0076] like Figures 1 to 8 In some embodiments of the present invention, the first driving assembly 121 may include a driving part 12A. The fixed driving part 12A of the first driving assembly 121 may be configured to be fixedly connected to the body 10. The fixed driving part 12A of the first driving assembly 121 may be directly connected to the body 10 or fixedly connected to the body 10. The first driving assembly 121 may also include a moving part 12B. The moving part 12B of the first driving assembly 121 may be drively connected to the fixed driving part 12A of the first driving assembly 121. The moving part 12B of the first driving assembly 121 may be used to drive the first air guide plate 111 to move. Under the driving action of the fixed part driving part 12A of the first driving assembly 121, the moving part 12B of the first driving assembly 121 can move in a predetermined direction, wherein the predetermined direction can be the width direction of the air outlet 101. The moving part 12B of the first driving assembly 121 is connected to the first air guide plate 111, and the movement of the moving part 12B of the first driving assembly 121 will be transmitted to the first air guide plate 111, thereby realizing the driving of the first air guide plate 111. The first drive assembly 121 may further include a rotating part 12C, which drives the first air guide plate 111 to rotate. The rotating part 12C may be disposed on the moving part 12B of the first drive assembly 121, and the first air guide plate 111 is connected to the rotating part 12C of the first drive assembly 121. In this way, the moving part 12B of the first drive assembly 121 can drive the rotating part 12C of the first drive assembly 121 to move, and then the rotating part 12C of the first drive assembly 121 will drive the first air guide plate 111 to move, and the rotating part 12C of the first drive assembly 121 can drive the first air guide plate 111 to rotate. In this way, the rotation and movement of the first air guide plate 111 can be realized.

[0077] Similarly, the second drive assembly 122 may include a fixed drive portion 12A, which may be fixedly connected to the body 10. The fixed drive portion 12A may be directly connected to the body 10 or fixedly connected to it. The second drive assembly 122 may also include a moving portion 12B, which may be drively connected to the fixed drive portion 12A. The moving portion 12B may be used to drive the second air guide plate 112 to move. Under the driving action of the fixed part driving part 12A of the second driving assembly 122, the moving part 12B of the second driving assembly 122 can move in a predetermined direction, which can be the width direction of the air outlet 101. The moving part 12B of the second driving assembly 122 is connected to the second air guide plate 112, and the movement of the moving part 12B of the second driving assembly 122 will be transmitted to the second air guide plate 112, thereby realizing the driving of the second air guide plate 112. The second drive assembly 122 may further include a rotating part 12C, which drives the second air guide plate 112 to rotate. The rotating part 12C can be mounted on the moving part 12B of the second drive assembly 122, connecting the second air guide plate 112 to the rotating part 12C. Thus, the moving part 12B of the second drive assembly 122 can move the rotating part 12C, which in turn drives the second air guide plate 112 to move. The rotating part 12C then drives the second air guide plate 112 to rotate, thereby achieving the rotation and movement of the second air guide plate 112. This ensures stable movement and rotation of the first air guide plate 111 and the second air guide plate 112, enabling the air guide plates to deliver air in a predetermined manner and improving the intelligence of the air conditioner 100.

[0078] In addition, to achieve stable movement of the first air guide plate 111 and the second air guide plate 112, a guide structure 13 is also provided in this invention, which can guide the air guide plates. Specifically, as shown in the figure... Figures 1 to 8 The driving device 12 may also include a guide structure 13, which may include a guide member 13A and a slider 13B. The guide member 13A may extend along the width direction of the air outlet 101, and the slider 13B may slide along the guide member 13A. The guide member 13A may be a slide groove or a slide rail, and the corresponding slider 13B may be a slider.

[0079] In this design, one of the guide member 13A and the sliding member 13B can be mounted on the moving part 12B, while the other can be fixedly connected to the body 10. Specifically, the guide member 13A is fixed in relative position to the moving part 12B, and the sliding member 13B is fixed in relative position to the body 10; or the sliding member 13B is fixed in relative position to the moving part 12B, and the guide member 13A is fixed in relative position to the body 10. Through the guiding effect of the guide structure 13, the moving part 12B can move stably, improving the stability of the air guide plate movement.

[0080] For ease of understanding, the guide structure 13 of a specific structure in this invention will be described below, taking the example of a slider 13B disposed on the moving part 12B and a guide 13A fixedly connected to the body 10. The guide 13A can be a groove, and the slider 13B can be a slider. Specifically, the guide structure 13 includes a groove and a slider. The slider is connected to the moving part 12B, and the groove is fixed in relative position to the body 10. The groove extends along the width direction of the air outlet 101, and the slider is slidably embedded in the groove along the width direction of the air outlet 101. Through the combination of the slider and the groove, stable movement of the moving part 12B can be achieved, improving the stability of the air guide plate movement process.

[0081] Corresponding to the moving part 12B of the first drive assembly 121 and the moving part 12B of the second drive assembly 122, corresponding guide structures 13 can be respectively provided to avoid mutual interference between the first drive assembly 121 and the second drive assembly 122, and further improve the stability of the movement of the first air guide plate 111 and the second air guide plate 112. Of course, in order to simplify the guide structure 13, the guide structure 13 of the first drive assembly 121 and the guide structure 13 of the second drive part 12A can be shared to simplify the structure. Specifically, a slider is provided on the moving part 12B of the first drive assembly 121, and a slider is also provided on the moving part 12B of the second drive assembly 122. They can move along the same slide groove, that is, they share the same slide groove. In other words, the drive device 12 includes the first drive assembly 121, the second drive assembly 122 and the slide groove. The slider provided on the rotating part 12C of the first drive assembly 121 can be slidably embedded in the slide groove, and the slider provided on the rotating part 12C of the second drive assembly 122 can be slidably embedded in the same slide groove.

[0082] Of course, the above specific description of the guiding structure 13 is merely one specific embodiment of the present invention and is not intended to limit the scope of protection of the present invention.

[0083] In addition, the drive component in this invention can adopt a gear 1202 transmission mechanism, a pulley transmission mechanism, a sprocket transmission mechanism, etc. In order to clearly describe the technical solution of this invention, this invention provides some specific implementation methods. Of course, this is not a limitation on the scope of protection of this invention.

[0084] In some specific examples of the present invention, one of the fixed part driving part 12A and the moving part 12B is a gear 1202, and the other is a rack 1203 meshing with the gear 1202, the rack 1203 extending along the width direction of the air outlet 101. In other words, the fixed part driving part 12A is a gear 1202, and the moving part 12B is a rack 1203 meshing with the gear 1202; or the moving part 12B is a gear 1202, and the fixed part driving part 12A is a rack 1203 meshing with the gear 1202. These will be described separately below.

[0085] like Figures 1 to 8 In one example, the fixed drive unit 12A includes a gear 1202 and the moving unit 12B includes a rack 1203. The gear 1202 is fixed in relative position to the body 10, but can rotate relative to the body 10. The rack 1203 extends along the width direction of the air outlet 101 and meshes with the gear 1202. At this time, the guide structure 13 in the drive device 12 can guide the rack 1203 to move along a predetermined trajectory. The gear 1202 can be driven by a motor or the like. When the gear 1202 rotates, since the gear 1202 meshes with the rack 1203 and the rack 1203 is limited by the guide structure 13, the rack 1203 will move along the predetermined trajectory during the rotation of the gear 1202 driven by the motor, thereby achieving the purpose of driving the air guide plate to move.

[0086] In another example, the fixed part driving part 12A includes a rack 1203 and the moving part 12B includes a gear 1202. The rack 1203 is fixed in relative position to the body 10, while the gear 1202 is fixedly connected to the moving part 12B. The gear 1202 extends along the width direction of the air outlet 101, and the rack 1203 and the gear 1202 mesh with each other. At this time, the guide structure 13 in the driving device 12 can guide the gear 1202 to move along a predetermined trajectory. The gear 1202 can be driven by a motor or the like. When the gear 1202 rotates, since the rack 1203 meshes with the gear 1202, the rack 1203 is fixed relative to the body 10, and the gear 1202 is limited by the guide structure 13, the gear 1202 will move along a predetermined trajectory during the rotation of the gear 1202 driven by the motor, thereby achieving the purpose of driving the air guide plate to move. The guide plate can be driven to move stably through the meshing of gear 1202 and rack 1203, improving stability and allowing for relatively precise determination of the guide plate's position. Of course, the movement of the guide plate along the width of the air outlet 101 in this invention can also be driven by other structures, such as pulley mechanisms or linkage mechanisms. These are all within the scope of protection of this application.

[0087] The rotating part 12C of the present invention may also include a rotary motor 1205, which can drive the guide plate to rotate, thereby simplifying the driving of the guide plate and improving the driving stability. Of course, the rotating part 12C may also include a reduction mechanism, etc.

[0088] The drive device 12 in this invention can be exposed on the body 10, or it can be concealed by a corresponding structure on the body 10. Furthermore, this invention provides a specific embodiment.

[0089] like Figures 1 to 8 The drive device 12 may also include a drive box 14, in which the first drive component 121 is housed. The first drive component 121 can be integrated through the drive box 14, thereby effectively improving the integration of the drive device 12 and facilitating the assembly and installation of the drive device 12.

[0090] Alternatively, the drive device 12 can be configured to include a drive box 14, with the second drive component 122 housed within the drive box 14. The second drive component 122 can be integrated through the drive box 14, thereby effectively improving the integration of the drive device 12 and facilitating its assembly and installation.

[0091] Of course, the drive box 14 accommodating the first drive component 121 and the drive box 14 accommodating the second drive component 122 can be the same box or different boxes. Preferably, in this invention, the first drive component 121 and the second drive component 122 are disposed in the same drive box 14 in the same drive device 12, which further facilitates the integration of the drive device 12, protects the drive components, and improves the stability of the air conditioner 100.

[0092] The drive box 14 includes a box body 14A and a box cover 14B. The box body 14A and the box cover 14B are closed together. A through groove is provided on one side surface of the drive box 14 so that the rotating part 12C can be connected to the corresponding guide plate.

[0093] Combination Figures 1 to 10 In some embodiments of the present invention, the first air guide plate 111 extends along the length direction of the air outlet 101, and the second air guide plate 112 also extends along the length direction of the air outlet 101, and at least one end of the air outlet 101 along the length direction is provided with a driving device 12. In other words, the first guide plate can be connected to the driving device 12 at one end or at both ends; similarly, the second guide plate can also be connected to the driving device 12 at one end or at both ends.

[0094] Taking a cabinet air conditioner as an example, the air outlet 101 extends in the vertical direction. Therefore, the length direction of the air outlet 101 is the vertical direction in the attached figure. The first air guide plate 111 extends in the vertical direction and the second air guide plate 112 extends in the vertical direction. The first air guide plate 111 can move in the left and right direction and the second air guide plate 112 can move in the left and right direction. In addition, the first air guide plate 111 can rotate and the second air guide plate 112 can rotate. A driving device 12 can be provided at the upper end of the air outlet 101, and the driving device 12 is connected to the upper ends of the first air guide plate 111 and the second air guide plate 112 to drive the first air guide plate 111 and the second air guide plate 112; a driving device 12 can also be provided at the lower end of the air outlet 101, and the driving device 12 is connected to the lower ends of the first air guide plate 111 and the second air guide plate 112 to drive the first air guide plate 111 and the second air guide plate 112; or a driving device 12 can be provided at both the upper and lower ends of the air outlet 101, with the driving device 12 at the upper end of the air outlet 101 connected to the upper ends of the first air guide plate 111 and the second air guide plate 112, and the driving device 12 at the lower end of the air outlet 101 connected to the lower ends of the first air guide plate 111 and the second air guide plate 112 to drive the first air guide plate 111 and the second air guide plate 112. When both the upper and lower ends of the air outlet 101 are connected to a drive device 12, the drive devices 12 at the upper and lower ends of the air outlet 101 are connected to the same control module to facilitate stable driving of the air guide plate.

[0095] Of course, the driving device 12 in this invention can also be located in other positions, for example, the driving device 12 can be located at the middle position in the length direction of the air outlet 101.

[0096] As shown in the figure, in some embodiments of the present invention, the first air guide plate 111 moves along an arc-shaped curve in the width direction of the air outlet 101; that is, the movement trajectory of the first air guide plate 111 in the width direction of the air outlet 101 is an arc-shaped curve. Similarly, the second air guide plate 112 moves along an arc-shaped curve in the width direction of the air outlet 101; that is, the movement trajectory of the second air guide plate 112 in the width direction of the air outlet 101 is an arc-shaped curve. The middle part of this arc-shaped curve protrudes outwards from the air outlet 101. The air delivery trajectories of the first air guide plate 111 and the second air guide plate 112 can be adapted to the outer surface of the air conditioner 100, thereby improving the aesthetic appearance of the air conditioner 100. Furthermore, by setting an arc-shaped movement trajectory, the air delivery method can be further optimized. Compared to an air guide plate moving in a straight line, an air guide plate moving in a curved direction can provide more air delivery methods to meet different user needs.

[0097] The first air guide plate 111 and the second air guide plate 112 move along the same arc curve in the width direction of the air outlet 101. This can improve the consistency of the moving trajectory of the first air guide plate 111 and the second air guide plate 112, simplify the structure, and improve the assembly efficiency of the air conditioner 100.

[0098] Optionally, the rotation center axis of the first air guide plate 111 is located at the center of its cross-section; or the rotation center axis of the first air guide plate 111 is located close to the center of its cross-section. Similarly, the rotation center axis of the second air guide plate 112 is located at the center of its cross-section; or the rotation center axis of the second air guide plate 112 is located close to the center of its cross-section. This facilitates the rotation of both the first air guide plate 111 and the second air guide plate 112.

[0099] In some embodiments of the present invention, the first air guide plate 111 is a single-layer plate structure; alternatively, the first air guide plate 111 may also be a multi-layer plate structure. Similarly, the second air guide plate 112 may also be a single-layer plate structure; or the second air guide plate 112 may also be a multi-layer plate structure.

[0100] The single-layer plate has a single-layer structure, and its surface can be curved. For example, one side of the single-layer plate can be convex, while the other side can be either convex or concave, thus creating different airflow patterns. Alternatively, the double-layer plate can be composed of multiple stacked plates, for example, two plates stacked together with a hollow space between them. Furthermore, the air guide plate can extend along the length of the air outlet 101, and its curved surface can be curved along the airflow direction. Of course, the description of the specific structure of the air guide plate in this invention is merely one specific embodiment of the invention and is not intended to limit the scope of protection of this invention.

[0101] Furthermore, in this invention, the first air guide plate 111 is rotatable at the air outlet 101, and the second air guide plate 112 is rotatable at the air outlet 101. At least one of the first air guide plate 111 and the second air guide plate 112 can be configured to rotate within a range of 10°, thereby achieving stable air delivery. Moreover, through reasonable configuration, the air guide plates can also achieve the effect of sealing the air outlet 101. This invention provides several embodiments to achieve large-angle rotation of the air guide plates. In some embodiments of this invention, the body 10 has an air outlet duct, through which airflow can be sent to the air outlet 101. The air outlet 101 and the air outlet duct are interconnected; that is, the airflow sent through the air outlet duct will be sent to the air outlet 101.

[0102] In this invention, the width of the air outlet 101 and the width of the air outlet duct can be set to be different. For example, the width of the air outlet 101 can be set to be larger, that is, larger than the width of the air outlet duct, thus forming an flared shape. The air outlet 101 protrudes from both sides of the air outlet duct in the width direction. Of course, the air outlet 101 can also be set to be smaller than the width of the air outlet duct.

[0103] Furthermore, when the width of the air outlet 101 is greater than the width of the air outlet duct, the connection between the air outlet duct and the air outlet 101 will be constructed as a stepped surface, that is, the inner side of the air outlet duct and the inner side of the air outlet 101 will be connected by a stepped surface. In order to achieve 180° rotation of the air guide plate, the position of the rotation center axis of the air guide plate needs to be set to avoid interference. Specifically, the first air guide plate 111 can be set to be able to rotate 180°, or the second air guide plate 112 can be set to be able to rotate 180°.

[0104] When the first air guide plate 111 can rotate 180°, the distance from the rotation center axis of the first air guide plate 111 to the step surface is D1, and the distance from the rotation center axis of the first air guide plate 111 to one end face of the air guide plate is D2. The rotation center axis of the first air guide plate 111 can be set eccentrically, meaning that the distance from the rotation center axis of the first air guide plate 111 to the first end face of the first air guide plate 111 is less than the distance from the rotation center axis of the first air guide plate 111 to the second end face of the first air guide plate 111. When the first air guide plate 111 extends along the air supply direction, the second end face of the first air guide plate 111 is located in front of the first end face (along the air supply direction). By setting dimension D1 to be the same as D2, stable rotation of the first air guide plate 111 can be achieved, avoiding interference and thus enabling the first air guide plate 111 to rotate 180°.

[0105] Furthermore, when the second air guide plate 112 can rotate 180°, the distance from the rotation center axis of the second air guide plate 112 to the step surface is D, and the distance from the rotation center axis of the second air guide plate 112 to one end face of the air guide plate is D. The rotation center axis of the second air guide plate 112 can be set in an eccentric form, meaning that the distance from the rotation center axis of the second air guide plate 112 to the second end face of the second air guide plate 112 is less than the distance from the rotation center axis of the second air guide plate 112 to the second end face of the second air guide plate 112. When the second air guide plate 112 extends along the air supply direction, the second end face of the second air guide plate 112 is located in front of the second end face (along the air supply direction). Stable rotation of the second air guide plate 112 can be achieved by setting dimension D1 to be the same as D2, avoiding interference and thus enabling the second air guide plate 112 to rotate 180°.

[0106] Furthermore, dimension D2 can be set to be smaller than dimension D1. This avoids assembly problems caused by production and assembly errors, and also effectively prevents excessive noise between the air guide plate and the step surface during rotation, improving the stability of the air guide plate's rotation. The difference between dimension D2 and dimension D1 can be set to be greater than millimeters, meaning that dimension D1 minus dimension D2 is greater than millimeters. Similarly, the difference between dimensions D can be set to be less than millimeters; for example, the difference between dimensions D can be set to millimeters, millimeters, millimeters, millimeters, etc. Preferably, to facilitate the rotation of the air guide plate and improve the air guiding effect, the difference between dimensions D is set in the range of millimeters to millimeters.

[0107] The present invention provides two air guide plates (or more air guide plates) at the air outlet 101. The air guide plates are provided with motion mechanisms above and below them to drive the air guide plates to move. The air guide plate motion mechanism is a combination of two motion modes: one is a gear 1202 rack 1203 mechanism that drives the air guide plates to slide left and right, and the other is a motor direct drive crank structure that drives the air guide plates to rotate. The motor that drives the air guide plates to rotate is mounted on the rack 1203 that slides left and right, and the crank is connected to the air guide plates.

[0108] Upon startup: The first air guide plate 111 rotates counterclockwise under the drive of the rotating motor 1205, while the second air guide plate 112 rotates clockwise, forming a front-sweeping state. This sweeping state allows for 0-180° airflow. The maximum front-sweeping airflow occurs when the air guide plates slide to their maximum left and right positions while simultaneously rotating to the target position, extending the air duct and allowing the air to travel further. In this state, left and right sweeping is also possible. In the zoned airflow state, the air guide plates rotate a certain angle, and then slide a certain distance towards the center, creating zoned airflow. Additionally, sliding the air guide plates to the sides a certain distance adds an air outlet, achieving three-way airflow and increasing the number of zoned airflow options, while also addressing the issue of insufficient front-sweeping airflow. Through the air guide plates and their mechanism, multiple airflow modes are achieved, including 180° sweeping, zoned airflow, and high-volume, long-distance airflow. This provides good comfort, maintains airflow without attenuation, and improves the user experience.

[0109] The air outlet 101 of the air conditioner 100 of the present invention is provided with two air guide plates (or more than three air guide plates). A drive device 12 for driving the air guide plates is provided above and below each air guide plate. The drive assembly drives the air guide plates to move in the following ways: a gear 1202 and a rack 1203 drive the air guide plates to slide left and right; a motor on the rack 1203 drives the air guide plates to rotate. The two movements are independent of each other and can be combined. The drive assembly consists of a sliding motor 1201, a gear 1202, a rack 1203, a rotating motor 1205, a crankshaft 1206, a wire clamp 14C, and a drive box 14. The left and right sliding motor 1201 drives the gear 1202 to rotate, which in turn drives the rack 1203 to move. The rack 1203 has a rotating motor 1205, and the rotating motor 1205 has a crankshaft 1206. The crankshaft 1206 is connected to the air guide plate, thereby driving the left and right sliding motor 1201... The air guide plate can slide left and right at the target position, and the rack 1203 rotates on the drive box 14 according to the trajectory. The rack 1203 has a rotating motor 1205, and the rotating motor 1205 has a crankshaft 1206. The rotation of the motor drives the crankshaft 1206, which in turn drives the air guide plate to rotate. The air guide plate can slide left and right on the housing and rotate on its own. It moves to the target position on the cabinet air conditioner to achieve different air outlet effects. The rack 1203 has a cable clip for the rotating motor 1205 to run. The motor is installed on the rack 1203, the cable is run on the rack 1203, and then installed on the drive box 14. There is a wire clamp 14C on the motor cable. The cable and the clamp are installed together on the drive box 14. After the other parts are installed, the box, cover, wire clamp 14C and cable are clamped together. The cable has a certain length inside the drive box 14 so that it will not be pulled when the rack 1203 rotates. In summary, it consists of a drive mechanism for a guide vane that can both rotate and slide. This enables multiple airflow patterns and improves comfort.

[0110] As described above, the air outlet 101 of the air conditioner of the present invention has multiple air guide plates. The air guide plates are connected to a moving mechanism at the top and bottom, which can realize the left and right sliding and rotation of the air guide plates. The moving mechanism is simple and reliable, and the wiring of the rotating motor 1205 is reliable and does not pull the wire. The drive box 14 has a protruding rib for installing the wire clamp 14C. The cover presses down on the wire clamp 14C, and then the wire clamp 14C presses the wire onto the protruding rib, so that the wire will not run around. The wire is of the designed length, which meets the requirements when the rack 1203 drives the rotating motor 1205 to slide. The length of the wire inside the drive box 14 is sufficient, so that the wire will not pull on the rack 1203, and there will be no abnormal noise caused by the wire outside the drive box 14 running around inside.

[0111] The present invention completes the wiring of the rotating motor 1205 through a series of structures such as the drive box 14, the wire clamp 14C, the rack 1203, and the rotating motor 1205, so that the sliding mechanism includes the rotating mechanism.

[0112] In this invention, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., 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 or an electrical connection; they can refer to 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, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0113] 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.

[0114] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention.

Claims

1. A wind deflector driving device (12), characterized in that, The driving device (12) includes a support assembly and a driving assembly, the driving assembly being disposed on the support assembly, and the driving assembly comprising: A drive unit (12A) is fixedly disposed on the bracket assembly; A movable part (12B) is movably connected to the support assembly and is driven by the drive part (12A); A rotating part (12C) is provided on the moving part (12B), and the rotating part (12C) is configured to connect to the air guide plate and drive the air guide plate to rotate; The drive unit (12A) includes a sliding motor (1201) and a gear (1202) connected to the sliding motor (1201), and the moving unit (12B) includes a rack (1203) meshing with the gear (1202); The movable part (12B) further includes a mounting bracket (1204), which is fixedly connected to the rack (1203), and the rotating part (12C) is mounted on the mounting bracket (1204); The drive device (12) includes a plurality of drive components, which are configured to drive a plurality of air guides respectively.

2. The air guide plate driving device (12) according to claim 1, characterized in that, The bracket assembly includes a drive box (14), the rotating part (12C) is disposed inside the drive box (14), and the drive box (14) is provided with a wire hole suitable for leading out the wire harness of the rotating part (12C).

3. The air guide plate driving device (12) according to claim 2, characterized in that, The drive box (14) includes: Box body (14A), said box body (14A) is constructed as a box shape with one side open, and a notch (1404) is provided on the peripheral wall; A wire clamp (14C) is inserted into the notch (1404) to position the wire harness; A lid (14B) covers the box body (14A) and the notch (1404).

4. The air guide plate driving device (12) according to claim 3, characterized in that, The bottom edge of the notch (1404) is provided with a protrusion (1405), and the wire clamp (14C) is provided with a wire clamping groove. The protrusion (1405) is embedded in the wire clamping groove to position the wire harness.

5. The air guide plate driving device (12) according to claim 3, characterized in that, The inner bottom surface of the housing (14A) is also provided with a lead wire groove (1403). The wire harness of the rotating part (12C) is adapted to be embedded in the lead wire groove (1403) and led out from the wire hole. The moving part (12B) is adapted to cover the lead wire groove (1403) to position the wire harness.

6. The air guide plate driving device (12) according to claim 2, characterized in that, The drive box (14) is provided with a through groove, and the shaft of the rotating part (12C) is adapted to pass through the through groove to connect to the air guide plate.

7. The air guide vane driving device (12) according to any one of claims 1-6, characterized in that, The rotating part (12C) includes a rotating motor (1205) and a crankshaft (1206), the rotating motor (1205) being connected to the crankshaft (1206), and the crankshaft (1206) being used to connect to the air guide plate.

8. The air guide plate driving device (12) according to claim 1, characterized in that, The bracket assembly includes a drive box (14), the sliding motor (1201) is mounted on the outside of the drive box (14), and the gear (1202) and the rack (1203) are both located inside the drive box (14).

9. The air guide plate driving device (12) according to claim 8, characterized in that, The drive unit (12A) also includes a motor cover (1207), which is fixedly connected to the drive box (14). The sliding motor (1201) is fixedly installed on the motor cover (1207), and the inner circumferential surface of the motor cover (1207) is provided with ribs.

10. The air guide plate driving device (12) according to claim 1, characterized in that, The moving parts (12B) of the plurality of drive components are adapted to drive the air guide plate to move along the same curve.

11. An air conditioner (100), characterized in that, include: The body (10) has an air outlet (101); A drive device (12) is connected to the body (10), and the drive device (12) is a guide vane drive device (12) according to any one of claims 1-10; An air guide plate is provided at the air outlet (101) and is connected to the rotating part (12C) for transmission. The air guide plate is adapted to be rotated by the drive device (12) and to move along the width direction of the air outlet (101).

12. The air conditioner (100) according to claim 11, characterized in that, The air outlet (101) has a plurality of air guide plates arranged along its width, and the driving device (12) includes a plurality of driving components corresponding to the plurality of air guide plates; and / or The air outlet (101) is equipped with the drive device (12) at both ends along its length.

Citation Information

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