Air guide assembly and air conditioner
By designing the drive blades with input part, rotating part and output part, the movement stroke of the drive mechanism of the air guide assembly is reduced, and the wind sweep is achieved through the linkage between the output part and the air sweep module, the problem of poor wind sweep effect caused by the existing air guide assembly is solved, and a better wind sweep effect is achieved.
Patent Information
- Application Number
- CN202421971632.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-14
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-08-14
AI Technical Summary
The existing air guide assembly causes the driving mechanism to move too much, and the installation area of the air sweeping blades is too small, which affects the air sweeping effect.
A air guide assembly is designed, which includes a air guide plate, a driving blade and a wind sweeping module. The distance between the input part of the driving blade and the rotating part is smaller than the distance between the input part and the output part, reduces the motion stroke of the driving mechanism, and realizes the wind sweeping through the linkage between the output part and the wind sweeping module.
The movement stroke and driving force of the driving mechanism are reduced, the installation area of the sweeping blades is expanded, and the sweeping effect is improved.
Smart Images

Figure CN222993149U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of air conditioners, and more particularly, to a wind guiding component and an air conditioner. Background Art
[0002] Some air conditioners are configured with a wind guiding component, which usually consists of a wind guiding plate and a sweeping blade. The wind guiding plate flips up and down at the air outlet under the drive of a driving mechanism to achieve up and down air guiding; a plurality of sweeping blades are arranged in sequence on the wind guiding plate and swing left and right under the drive of the driving mechanism to achieve left and right air sweeping.
[0003] Currently, for the wind guiding components on the market, a plurality of sweeping blades are connected to the driving mechanism through a linkage member, and the driving mechanism drives the plurality of sweeping blades to swing relative to the wind guiding plate through the linkage member. In order to reduce the driving force, the same end edge of the plurality of sweeping blades in such a wind guiding component is connected to the linkage member. However, during the rotation of the sweeping blade, the movement stroke of its edge is the largest, resulting in an excessive movement stroke of the driving mechanism. The wind guiding component needs to reserve too much space for this, resulting in a too small installable area for the sweeping blade and affecting the air sweeping effect. Summary of the Utility Model
[0004] The problem solved by the utility model is that the existing wind guiding component can cause an excessive movement stroke of the driving mechanism, a too small installable area for the sweeping blade, and a poor air sweeping effect.
[0005] To solve the above problems, the utility model provides a wind guiding component, which can reduce the movement stroke of the driving mechanism, expand the installable area of the sweeping blade, and thus obtain a better air sweeping effect.
[0006] An embodiment of the utility model provides a technical solution:
[0007] A wind guiding component includes a wind guiding plate, a driving blade, and a sweeping module. The sweeping module is arranged on the wind guiding plate. The driving blade has a rotating part, an input part, and an output part. The rotating part is rotatably connected to the wind guiding plate, and the output part is connected to the sweeping module;
[0008] The input part is between the rotating part and the output part and is closer to the rotating part. The input part is used to drive the driving blade to rotate relative to the wind guiding plate under the action of an external force to drive the sweeping module to act.
[0009] The air guiding assembly provided by the embodiment of the present utility model has an input part of the driving blade for connecting to a driving mechanism. The distance between the input part and the rotating part is less than the distance between the input part and the output part. The movement stroke of the input part is much smaller than that of the output part, which greatly reduces the movement stroke of the driving mechanism. Moreover, the output part, which is farther from the rotating part than the input part, is connected to the air sweeping module. The output part drives the air sweeping module to act to achieve left - and - right air sweeping, reducing the driving force. Therefore, the air guiding assembly provided by the embodiment of the present utility model can reduce the movement stroke and driving force of the driving mechanism, thereby expanding the installable area of the air sweeping module and obtaining a better air sweeping effect.
[0010] In an alternative embodiment, in the direction parallel to the air guiding plate, the rotating part, the input part, and the output part are arranged in sequence, and the rotating part and the output part are respectively located at opposite ends of the driving blade.
[0011] The distance between the output part and the rotating part is the largest, obtaining the largest force arm and reducing the driving force of the driving mechanism.
[0012] In an alternative embodiment, in the direction parallel to the air guiding plate, the distance between the input part and the rotating part is less than the distance between the input part and the output part.
[0013] The driving mechanism drives the driving blade to rotate around the rotating part through the input part. Since the distance between the input part and the rotating part is less than the distance between the input part and the output part, the driving mechanism obtains a smaller movement stroke, thereby expanding the installable area of the air sweeping module and the driving blade and obtaining a better air sweeping effect.
[0014] In an alternative embodiment, the air guiding assembly further includes an adapter. The adapter is slidably arranged on the air guiding plate and rotatably connected to the input part. The adapter is used to drive the driving blade to rotate relative to the air guiding plate under an external force to drive the air sweeping module to act.
[0015] The adapter is slidably arranged on the air guiding plate and connected to the input part of the driving blade. The driving mechanism drives the driving blade to rotate through the adapter. The sliding stroke of the adapter is small, occupying less space on the air guiding plate, so that the range of the installable area of the driving blade and the air sweeping module is larger, and a better air sweeping effect can be obtained.
[0016] In an alternative embodiment, a mounting bushing is arranged on the air guiding plate. The extending direction of the axis of the mounting bushing is parallel to the length direction of the air guiding plate. The adapter is sleeved in the mounting bushing and is used to slide along the extending direction of the axis of the mounting bushing under an external force.
[0017] The adapter slides along the mounting bushing under the drive of the drive mechanism, ensuring a smooth and stable sliding process, thereby ensuring a stable and smooth process of adjusting the air-sweeping angle.
[0018] In an alternative embodiment, the air-sweeping module includes a linkage and a driven blade. The driven blade is fixedly connected to the air deflector. The output part is connected to the driven blade through the linkage. The linkage is configured to drive the driven blade to deform and swing under the drive of the output part.
[0019] As a transmission component, the linkage drives the output part of the blade to drive the driven blade to swing through the linkage, thereby realizing the adjustment of the air-sweeping angle.
[0020] In an alternative embodiment, the driving blade and the driven blade are arranged in sequence along a first direction, and the position where the input part is connected to the driven blade and the air deflector is aligned in the first direction.
[0021] The alignment of the input part and the position where the driven blade is connected to the air deflector in the first direction further optimizes the torque of the driven blade, ensures that the movement strokes of the driving blade and the driven blade are consistent, ensures the accuracy of the air-sweeping condition, and improves the air-sweeping adjustment effect.
[0022] In an alternative embodiment, one end of the driven blade is connected to the linkage, and the linkage extends between the driving blade and the driven blade along the first direction.
[0023] One end of the driven blade is connected to the linkage, and the linkage extends along the first direction, effectively reducing the driving force of the drive mechanism, ensuring that the air-sweeping blade and the driving blade swing synchronously, and thus obtaining a better air-sweeping adjustment effect.
[0024] In an alternative embodiment, the number of the driven blades is multiple. The driving blade and the multiple driven blades are arranged at intervals in sequence in the first direction. The driving blade is connected to the multiple driven blades through the same linkage.
[0025] An embodiment of the present invention further provides an air conditioner, including the air guiding assembly. The air guiding assembly includes an air deflector, a driving blade and an air-sweeping module. The air-sweeping module is arranged on the air deflector. The driving blade has a rotating part, an input part and an output part. The rotating part is rotatably connected to the air deflector. The output part is connected to the air-sweeping module. The input part is between the rotating part and the output part and is closer to the rotating part. The input part is configured to drive the driving blade to rotate relative to the air deflector under the action of an external force to drive the air-sweeping module to act. The machine body has an air outlet, and multiple air guiding assemblies are all installed at the air outlet.
[0026] The air conditioner provided by the embodiment of the present utility model is installed with a plurality of air guiding components in its air outlet, realizing the zonal adjustment of the air output from the air outlet, with a richer adjustment function and better user experience. Moreover, benefiting from the beneficial effects of the air guiding components, the air conditioner also has the characteristic of better air sweeping effect. Description of the Drawings
[0027] Figure 1 It is a schematic structural diagram of the air conditioner provided by the embodiment of the present utility model;
[0028] Figure 2 For Figure 1 It is a schematic structural diagram of the middle air guiding component;
[0029] Figure 3 It is a schematic connection structure diagram among the driving blade, the air sweeping module and the air guiding plate of the air guiding component;
[0030] Figure 4 For Figure 3 It is an enlarged schematic diagram of area A in
[0031] Figure 5 It is a schematic connection structure diagram between the air sweeping module and the air guiding plate of the air guiding component;
[0032] Figure 6 For Figure 5 It is an enlarged schematic diagram of area B in
[0033] Description of the Reference Numerals:
[0034] 10 - Air conditioner; 11 - Body; 12 - Air outlet; 100 - Air guiding component; 110 - Air guiding plate; 111 - Outer plate; 112 - Liner plate; 113 - Installation bushing; 114 - Installation ear plate; 115 - Matching bushing; 120 - Driving blade; 121 - Rotating part; 122 - Input part; 123 - Output part; 124 - Relief hole; 130 - Air sweeping module; 131 - Linkage part; 132 - Driven blade; 1321 - Blade body; 1322 - Leg; 1323 - Oscillating part; 1324 - Deformation part; 1325 - Strength reducing hole; 1326 - Relief notch; 140 - Adapter; 141 - Active section; 142 - Driven section. Detailed Embodiment
[0035] In order to make the above objects, features and advantages of the present utility model more obvious and understandable, the following detailed description of the specific embodiments of the present utility model will be given with reference to the drawings.
[0036] Please refer to Figure 1 , Figure 1 Shown is a schematic structural diagram of the air conditioner 10 provided in this embodiment.
[0037] The air conditioner 10 provided in this embodiment includes a body 11 and a plurality of air guiding components 100. The body 11 has an air outlet 12, and the plurality of air guiding components 100 are all installed at the air outlet 12.
[0038] Actually, a driving mechanism (not shown in the figure) for controlling the movement of the air guiding components 100 is provided on the body 11. The plurality of air guiding components 100 are connected to the driving mechanism. Under the drive of the driving mechanism, the plurality of air guiding components 100 realize the sub-region adjustment of the air outlet angle of the air outlet 12.
[0039] Specifically, in this embodiment, the number of the air guiding components 100 is two, and the two air guiding components 100 are arranged in sequence in the length direction of the air outlet 12 to realize the independent adjustment of the air outlet conditions in the left and right regions of the air outlet 12.
[0040] Please refer to Figure 2 , Figure 2 The structural schematic diagram of the air guiding component 100 provided in this embodiment is shown.
[0041] The air guiding component 100 provided in this embodiment includes a wind guiding plate 110, a driving blade 120 and a sweeping module 130. The sweeping module 130 is arranged on the wind guiding plate 110. The driving blade 120 is rotatably connected to the wind guiding plate 110, and the driving blade 120 is connected to the sweeping module 130 for driving the sweeping module 130 to act to realize sweeping under the drive of the driving mechanism.
[0042] Specifically, in this embodiment, the sweeping module 130 includes a linkage member 131 and a driven blade 132. The driven blade 132 is fixedly connected to the wind guiding plate 110. The driving blade 120 is connected to the driven blade 132 through the linkage member 131. The driving blade 120 is used for rotating relative to the wind guiding plate 110 under the action of an external force to drive the driven blade 132 to deform and swing through the linkage member 131.
[0043] In this embodiment, the length direction of the wind guiding plate 110 is parallel to the length direction of the air outlet 12. Both the wind guiding plate 110 and the driving blade 120 are in transmission connection with the driving mechanism on the body 11. In practical applications, the driving mechanism drives the wind guiding plate 110 to turn up and down at the air outlet 12 to realize the adjustment of the air outlet angle in the vertical direction. The driving mechanism drives the driving blade 120 to rotate horizontally, and drives the driven blade 132 to swing horizontally through the linkage member 131 to realize the adjustment of the air outlet angle in the horizontal direction, that is, the adjustment of the sweeping angle.
[0044] In fact, the number of driven blades 132 is multiple. Since the driving blade 120 is rotatably connected to the air guide plate 110, the rotation angle is ensured to be in place, thereby ensuring the standard and in-place sweeping action and sweeping angle of the multiple driven blades 132, and obtaining a better sweeping effect. The multiple driven blades 132 are fixed on the air guide plate 110, omitting a large number of component combinations, with a simple structure, easy disassembly and assembly, and better structural stability.
[0045] In order to further reduce the assembly difficulty of the air guide assembly 100, in this embodiment, the driving blade 120 is detachably and rotatably connected to the air guide plate 110. Moreover, the linkage member 131 and the multiple driven blades 132 are integrally formed with the air guide plate 110. In this embodiment, the driving blade 120 and the multiple driven blades 132 are arranged at intervals in sequence along the first direction. The multiple driven blades 132 are all connected to the driving blade 120 through the linkage member 131, and the linkage member 131 extends along the first direction.
[0046] In this embodiment, the first direction is Figure 2 the direction indicated by the X arrow in, that is, the length extension direction of the air guide plate 110. The driving blade 120 and the multiple driven blades 132 are arranged in sequence along the length extension direction of the air guide plate 110 on the same side of the air guide plate 110, achieving the maximum utilization of the surface space of the air guide plate 110. When the driving blade 120 and the multiple driven blades 132 swing in the first direction, the horizontal air outlet angle of the air outlet 12 can be adjusted quickly and efficiently.
[0047] Considering that in practical applications, when the driving blade 120 rotates, the force exerted on the linkage member 131 is actually at an angle with the first direction. Therefore, in order to prevent the linkage member 131 from deflecting and causing inconsistent swinging degrees of the multiple driven blades 132, in this embodiment, the driving blade 120 is detachably and rotatably connected to the linkage member 131.
[0048] Please refer to Figure 3 and Figure 4 , Figure 3 which shows the connection structure schematic diagram among the driving blade 120, the sweeping module 130 and the air guide plate 110 of the air guide assembly 100 provided in this embodiment. Figure 4 As shown in Figure 3 the enlarged schematic diagram of area A in.
[0049] Actually, the driving blade 120 has a rotating part 121, an input part 122 and an output part 123. The rotating part 121 is rotatably connected to the air deflector 110, and the output part 123 is connected to the linkage 131 of the air sweeping module 130. The input part 122 is located between the rotating part 121 and the output part 123 and is closer to the rotating part 121. The input part 122 is used to drive the driving blade 120 to rotate relative to the air deflector 110 under the action of an external force, so as to drive the driven blade 132 to swing through the linkage 131.
[0050] In the direction parallel to the air deflector 110, the rotating part 121, the input part 122 and the output part 123 are arranged in sequence. The distance between the input part 122 and the rotating part 121 is less than the distance between the input part 122 and the output part 123. The rotating part 121 and the output part 123 are respectively located at opposite ends of the driving blade 120.
[0051] It should be noted that for the non-flat air deflector 110, the direction parallel to the air deflector 110 may refer to the direction parallel to the plane formed by the periphery of the air deflector 110. For example, for the arc-shaped air deflector 110, the periphery of the arc-shaped air deflector 110 forms a rectangular plane, and the direction parallel to the air deflector 110 refers to the direction parallel to this rectangular plane.
[0052] It can be understood that the distance between the input part 122 and the rotating part 121 is less than the distance between the input part 122 and the output part 123, and the movement stroke of the input part 122 is much smaller than the movement stroke of the output part 123, so that the movement stroke of the driving mechanism is greatly reduced. Moreover, compared with the input part 122, the output part 123, which is farther away from the rotating part 121, is connected to the linkage 131 of the air sweeping module 130, and the output part 123 drives the driven blade 132 to swing through the linkage 131, so that the driving force of the driving mechanism is reduced.
[0053] In order to increase the lever arm length of the driven blade 132 and further reduce the driving force, in this embodiment, one end of the plurality of driven blades 132 corresponding to the output part 123 of the driving blade 120 in the first direction is connected to the linkage 131. In order to further optimize the driving torque, in this embodiment, the positions where the input part 122 of the driving blade 120 and the plurality of driven blades 132 are respectively connected to the air deflector 110 are aligned in the first direction.
[0054] It can be understood that since one end of the plurality of driven blades 132 corresponding to the output part 123 of the driving blade 120 in the first direction is connected to the linkage 131, and the positions where the plurality of driven blades 132 are connected to the air deflector 110 are aligned with the input part 122 of the driving blade 120 in the first direction, the lever arm of the driven blade 132 is maximized, so that the driving force is greatly reduced.
[0055] Although the movement stroke of the linkage member 131 is the largest, the driving mechanism is connected to the input portion 122 of the driving blade 120 , and the input portion 122 is closer to the rotating portion 121 , that is, the movement stroke of the driving mechanism is smaller and is not affected by the movement stroke of the linkage member 131 .
[0056] It can be seen that the air guide assembly 100 provided in this embodiment can reduce the driving force of the driving mechanism while also reducing the movement stroke of the driving mechanism, thereby obtaining a larger installation area for the driving blades 120 and the wind sweeping module 130 on the air guide plate 110, thereby obtaining a better wind sweeping effect.
[0057] The air guide assembly 100 provided in this embodiment also includes an adapter 140, which is slidably disposed on the air guide plate 110 and rotatably connected to the input portion 122. The adapter 140 is used to drive the driving blade 120 to rotate relative to the air guide plate 110 under the action of an external force, so as to drive the wind sweeping module 130 to move.
[0058] Specifically, the air guide plate 110 is provided with a mounting sleeve 113, the axis of the mounting sleeve 113 is extended in the first direction, one end of the adapter 140 passes through the mounting sleeve 113 and is rotatably connected to the drive blade 120, and the other end is used to connect the drive mechanism. It can be understood that in actual application, under the drive of the drive mechanism, the adapter 140 slides in the mounting sleeve 113 along the first direction, thereby applying a force to the input portion 122 of the drive blade 120, driving the drive blade 120 to rotate with the rotating portion 121 as the rotation center.
[0059] It is understandable that in actual applications, the driving mechanism can be arranged outside the air guide plate 110. Since the input part 122 is closer to the rotating part 121, the sliding stroke of the adapter 140 in the first direction is extremely small, and it occupies extremely small space on the surface of the air guide plate 110, so that the air guide plate 110 has a larger area for arranging the driving blades 120 and the wind sweeping module 130, and a larger number of driven blades 132 can be arranged, so as to obtain a better wind sweeping effect.
[0060] In fact, a mounting lug 114 is vertically provided on the surface of the air guide plate 110, and a mounting sleeve 113 is disposed on the mounting lug 114. In practical applications, the mounting sleeve 113 is also in transmission connection with a driving mechanism, and is used to drive the air guide plate 110 to flip in a vertical plane under the drive of the driving mechanism, so as to adjust the air outlet angle in the vertical direction of the outlet.
[0061] To ensure the smooth rotation of the air deflector 110 during the rotation process, in this embodiment, another mounting ear plate 114 is provided on the air deflector 110. A mating bushing 115 that is aligned with the mounting bushing 113 in the first direction is provided on the other mounting ear plate 114. The mating bushing 115 is rotatably mated with the body 11 of the air conditioner 10. In practical applications, by the support of the drive mechanism and the body 11 for the mounting bushing 113 and the mating bushing 115 respectively, it is ensured that the air deflector 110 flips smoothly in the vertical plane. In this embodiment, the drive blade 120 and the air-sweeping module 130 are arranged in sequence between the mounting bushing 113 and the mating bushing 115.
[0062] Actually, the adapter 140 includes a driving section 141 and a driven section 142. One end of the driving section 141 is connected to the drive mechanism, and the other end passes through the mounting bushing 113 and is connected to the driven section 142. The driven section 142 is rotatably connected to the input part 122 of the drive blade 120. In this embodiment, the driving section 141 is provided with an external thread for connection to the drive mechanism.
[0063] Considering that during the rotation of the drive blade 120, a force at an angle to the first direction will be exerted on the driven section 142. To avoid jamming between the adapter 140 and the mounting bushing 113, in this embodiment, the driven section 142 is in sliding fit with the driving section 141, and relative movement can occur between the two in a direction at an angle to the first direction.
[0064] To facilitate the connection between the adapter 140 and the input part 122 and achieve a certain degree of yielding for the adapter 140, in this embodiment, a yielding hole 124 is provided through the drive blade 120. The input part 122 is located within the yielding hole 124, and at least part of the adapter 140 extends into the yielding hole 124 and is rotatably connected to the input part 122.
[0065] Please refer to Figure 5 and Figure 6 , Figure 5 which shows a schematic connection structure between the air-sweeping module 130 and the air deflector 110 of the air deflector assembly 100 provided in this embodiment. Figure 6 As shown in Figure 5 is an enlarged schematic view of area B in
[0066] In this embodiment, the driven blade 132 includes a blade main body 1321 and legs 1322. The blade main body 1321 has a swinging part 1323 and a deforming part 1324. The legs 1322 are provided upright on the air deflector 110. The swinging part 1323 is connected to the legs 1322 through the deforming part 1324. The swinging part 1323 is connected to the linkage 131.
[0067] It can be understood that in actual applications, the linkage 131 applies a force to the swinging part 1323, and the strength of the deformation part 1324 is lower than that of the swinging part 1323, and it deforms before the swinging part 1323, causing the swinging part 1323 to swing in the first direction relative to the support leg 1322 and the air guide plate 110, thereby achieving adjustment of the horizontal air outlet angle.
[0068] In this embodiment, the swing portion 1323 and the deformation portion 1324 are made of the same material, and the difference between the two is that the thickness of the deformation portion 1324 is less than that of the swing portion 1323. In order to further weaken the strength of the deformation portion 1324, a strength reduction hole 1325 is also provided through the deformation portion 1324. In this embodiment, the strength reduction hole 1325 is a strip hole, which is substantially perpendicular to the first direction, that is, perpendicular to the swing direction of the swing portion 1323.
[0069] In order to reduce the space occupied by the linkage 131 on the surface of the air guide plate 110 and improve the compactness of the overall structure of the air guide assembly 100, in this embodiment, a clearance gap 1326 is provided on the side of the swinging portion 1323 of each driven blade 132 away from the deformation portion 1324, and the linkage 131 passes through the clearance gap 1326 and is connected to the swinging portion 1323.
[0070] The air guide plate 110 may be a single-layer structure or a multi-layer composite structure. In this embodiment, the air guide plate 110 includes an outer plate 111 and a lining plate 112 that are stacked, and the driving blades 120 and the wind sweeping module 130 are both connected to the side of the lining plate 112 that is away from the outer plate 111. That is, the wind sweeping module 130 and the lining plate 112 are integrally formed.
[0071] In fact, in this embodiment, the outer plate 111 is arc-shaped, having a concave arc side and a convex arc side opposite to each other, and the lining plate 112 is disposed on the concave arc side of the outer plate 111 to fill the concave arc side to a certain extent. In other words, during the turning process of the air guide plate 110, the driving blade 120, the air sweeping module 130 and the adapter 140 are always on the concave arc side of the outer plate 111.
[0072] In summary, the wind guide assembly 100 provided in this embodiment has the characteristics of being simpler in structure, easier to assemble and disassemble, and more stable and reliable in structure. In addition, the wind guide assembly 100 can also reduce the movement stroke and driving force of the driving mechanism, thereby expanding the installation area of the driving blade 120 and the wind sweeping module 130, and obtaining a better wind sweeping adjustment effect.
[0073] The air conditioner 10 provided in this embodiment realizes the zoning adjustment of the air outlet 12, has richer adjustment functions and better user experience. Moreover, benefiting from the beneficial effects of the air guide assembly 100, the air conditioner 10 also has the characteristics of simple structure, easy disassembly and assembly, stable and reliable structure and better air outlet effect.
[0074] Although the present utility model is disclosed as above, the present utility model is not limited thereto. Any person skilled in the art can make various changes and modifications without departing from the spirit and scope of the present utility model. Therefore, the protection scope of the present utility model shall be subject to the scope defined by the claims.
Claims
1. An air guide assembly, characterized in that: The invention comprises an air guide plate (110), a driving blade (120) and an air sweeping module (130), wherein the air sweeping module (130) is arranged on the air guide plate (110), the driving blade (120) comprises a rotating part (121), an input part (122) and an output part (123), the rotating part (121) is rotatably connected to the air guide plate (110), and the output part (123) is connected to the air sweeping module (130); The input portion (122) is located between the rotating portion (121) and the output portion (123), and is closer to the rotating portion (121). The input portion (122) is used to drive the driving blade (120) to rotate relative to the wind guide plate (110) under the action of an external force, so as to drive the wind sweeping module (130) to operate.
2. The air guide assembly according to claim 1, characterized in that: In a direction parallel to the air guide plate (110), the rotating part (121), the input part (122) and the output part (123) are arranged in sequence, and the rotating part (121) and the output part (123) are respectively located at two opposite ends of the driving blade (120).
3. The air guide assembly according to claim 2, characterized in that: In a direction parallel to the air guide plate (110), the distance between the input portion (122) and the rotating portion (121) is smaller than the distance between the input portion (122) and the output portion (123).
4. The air guide assembly according to claim 1, characterized in that: The wind guide assembly (100) further includes an adapter (140), which is slidably disposed on the wind guide plate (110) and rotatably connected to the input portion (122), and the adapter (140) is used to drive the driving blade (120) to rotate relative to the wind guide plate (110) under the action of an external force, so as to drive the wind sweeping module (130) to operate.
5. The air guide assembly according to claim 4, characterized in that: The wind deflector (110) is provided with a mounting sleeve (113), the axial extension direction of the mounting sleeve (113) is parallel to the length direction of the wind deflector (110), and the adapter (140) is sleeved in the mounting sleeve (113) and is used to slide along the axial extension direction of the mounting sleeve (113) under the action of an external force.
6. The air guide assembly according to claim 1, characterized in that: The wind sweeping module (130) comprises a linkage member (131) and a driven blade (132); the driven blade (132) is fixedly connected to the wind guide plate (110); the output portion (123) is connected to the driven blade (132) via the linkage member (131); the linkage member (131) is used to drive the driven blade (132) to deform and swing under the drive of the output portion (123).
7. The air guide assembly according to claim 6, characterized in that: The driving blades (120) and the driven blades (132) are arranged in sequence along a first direction, and the positions of the input portion (122) and the driven blades (132) connected to the wind guide plate (110) are aligned in the first direction.
8. The air guide assembly according to claim 7, characterized in that: One end of the driven blade (132) is connected to the linkage member (131), and the linkage member (131) extends along the first direction between the driving blade (120) and the driven blade (132).
9. The air guide assembly according to claim 7, characterized in that: The number of the driven blades (132) is multiple, the driving blade (120) and the multiple driven blades (132) are arranged in sequence and spaced apart in the first direction, and the driving blade (120) is connected to the multiple driven blades (132) via the same linkage (131).
10. An air conditioner, characterized in that: It comprises a machine body (11) and a plurality of air guide assemblies (100) according to any one of claims 1 to 9, wherein the machine body (11) has an air outlet (12), and the plurality of air guide assemblies (100) are all installed at the air outlet (12).