Air guide assembly and air treatment equipment

By designing the air guide component and utilizing the synergistic effect of two adjustment components and a drive component, the air delivery angle of the air conditioning equipment can be precisely adjusted, solving the problem of small air delivery coverage area and improving user experience and energy efficiency.

CN223580185UActive Publication Date: 2025-11-21DREAM INNOVATION TECH (SUZHOU) CO LTD
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Patent Information

Application Number
CN202422908731.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Priority Date
2024-10-28
Filing Date
2024-11-27
Publication Date
2025-11-21
Estimated Expiration
2034-11-27

AI Technical Summary

Technical Problem

Existing air conditioning equipment has a small air supply coverage area and cannot achieve multi-directional zoned air supply, resulting in a poor user experience.

Method used

An air guide assembly is adopted, including two adjustment components and two drive components. The second drive component simultaneously drives the two adjustment components to change their position relative to the mounting surface, and the first drive component controls the rotation of the air guide blades of the adjustment components to achieve precise adjustment of the air delivery angle.

Benefits of technology

It expands the air supply coverage area of ​​the air conditioning equipment, improves the flexibility and accuracy of air supply, optimizes the airflow path, reduces operating time and energy consumption, and enhances user comfort and overall energy efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an air guide assembly and air treatment equipment, and relates to the technical field of air treatment equipment. The air guide assembly is installed on the installation face and comprises two adjusting assemblies, and each adjusting assembly comprises an air guide blade which is movably arranged. And each first driving assembly corresponds to one adjusting assembly. And the second driving assembly is in transmission connection with the two adjusting assemblies, and the second driving assembly simultaneously drives at least partial structures of the two adjusting assemblies to change positions relative to the mounting surface. The air guide assembly provided by the embodiment of the utility model can solve the problem that the air blowing coverage area of air conditioning equipment in the related technology is small.
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Description

[0001] The present application claims priority to the Chinese patent application No. 202411514814.7, filed on October 28, 2024, entitled "Air guide assembly and air treatment device", the whole content of which is incorporated herein by reference. TECHNICAL FIELD

[0002] The present application relates to the technical field of air treatment devices, in particular to an air guide assembly and an air treatment device. BACKGROUND

[0003] An air treatment device, such as an air conditioner, usually comprises an air outlet and an air guide plate arranged outside the air outlet. One end of the air guide plate is rotatably connected to the bottom of the air outlet. By changing the angle of the air guide plate relative to the air outlet, the air supply direction of the air outlet can be changed.

[0004] However, the above-mentioned method of adjusting the air supply direction results in a small air blowing coverage area of the air conditioner. CONTENT OF THE INVENTION

[0005] The present application provides an air guide assembly and an air treatment device to solve the problem of small air blowing coverage area of the air conditioner in the related art.

[0006] In order to achieve the above-mentioned purpose, the present application provides the following technical solutions:

[0007] The first aspect of the present application provides an air guide assembly installed on a mounting surface, comprising:

[0008] two adjustment assemblies, each of which comprises an air guide vane movably arranged;

[0009] two first drive assemblies, each of which corresponds to one of the adjustment assemblies;

[0010] a second drive assembly, which is in transmission connection with both of the adjustment assemblies, and simultaneously drives at least part of the structures of the two adjustment assemblies to change the position relative to the mounting surface.

[0011] The air guide assembly in the embodiments of the present application can drive two adjusting assemblies to change positions relative to the mounting surface through a second driving assembly, wherein the position change can be translation and / or rotation relative to the mounting surface. Compared with controlling the two adjusting assemblies through two second driving assemblies respectively, the two adjusting assemblies can be controlled through one second driving assembly, which simplifies the structure of the air guide assembly, reduces assembly difficulty and cost, and the like. In addition, the air guide assembly can supply air to two regions respectively through the two adjusting assemblies, so that the two adjusting assemblies can blow air to different regions, thereby expanding the coverage angle of the air conditioning equipment.

[0012] In addition, the first driving assembly and the second driving assembly can be provided to adjust the air supply angle of the air guide assembly from two dimensions, which can further improve the adjustment flexibility of the air guide assembly, so that air can be supplied to more regions to adjust the air temperature. By adjusting the air supply angle of the two adjusting assemblies, the air flow path can be optimized, the operation time and energy consumption of the air conditioning equipment can be reduced, and the overall energy efficiency can be improved. This helps to reduce power consumption and operating costs.

[0013] By adjusting the air supply angle of the air guide assembly, the air outlet of the air conditioner can not directly blow air to the region where people are active, that is, the region where people are present is avoided to blow air, so as to avoid discomfort or health problems caused by direct blowing of cold air to the body. In addition, the air supply angle of the air outlet can be continuously changed through the adjustment of the air guide assembly, so that the air conditioner can also be prevented from blowing directly in one direction for a long time.

[0014] In a possible implementation, the first driving assembly is in transmission connection with the air guide vane on the adjusting assembly corresponding to the first driving assembly, and the first driving assembly drives the position of the air guide vane to change.

[0015] The two first driving assemblies respectively and individually drive the two adjusting assemblies corresponding to the two first driving assemblies.

[0016] By providing two adjusting assemblies and adjusting the rotation of the air guide vane on the two adjusting assemblies through two first driving assemblies, the air supply angle of the air guide assembly is adjusted, the adjustment flexibility of the air guide assembly is improved, and the rotation of the air guide vane can prevent the air conditioner from blowing directly in one direction for a long time, thereby preventing the air conditioner from blowing directly. By providing two first driving assemblies to respectively and individually control the two adjusting assemblies, the adjustment flexibility of the two adjusting assemblies can be improved to meet different needs of users.

[0017] In a possible implementation, the first driving assembly drives the air guide vane to rotate.

[0018] In this way, the driving difficulty of the air guide blade can be reduced, the structure of the first driving member can be simplified, and the action range of the air guide blade can be increased, and the swing effect can be improved.

[0019] In a possible implementation, the air guide blade comprises an initial position and a working position; wherein,

[0020] The air guide blade on the two adjusting assemblies rotates at different angles from the initial position to the working position; or,

[0021] The air guide blade on the two adjusting assemblies rotates at the same angle from the initial position to the working position.

[0022] In this way, the adjusting flexibility of the two adjusting assemblies can be further improved, the two adjusting assemblies can be respectively used to send air in different directions to different positions, and the applicability of the air conditioner can be improved.

[0023] In a possible implementation, the two adjusting assemblies are respectively a first adjusting assembly and a second adjusting assembly; wherein,

[0024] The first adjusting assembly comprises a first base point, and the second adjusting assembly comprises a second base point;

[0025] The second driving assembly simultaneously drives the first adjusting assembly and the second adjusting assembly, so that the first adjusting assembly rotates around the first base point, and the second adjusting assembly rotates around the second base point.

[0026] By arranging the first base point, the first driving assembly can provide a stable support point and a reference point for the first adjusting assembly at the first base point, so that the movement and adjustment of the first adjusting assembly can be performed relative to the first base point, which helps to ensure that the movement of the first adjusting assembly is more accurate and controllable. It can also prevent the first adjusting assembly from shaking during movement, improve the stability of the first adjusting assembly, and simplify the structure of the air guide assembly, without the need to arrange a separate first base point structure, thereby reducing costs.

[0027] By arranging the second base point, the first driving assembly can provide a stable support point and a reference point for the second adjusting assembly at the second base point, so that the movement and adjustment of the second adjusting assembly can be performed relative to the second base point, which helps to ensure that the movement of the second adjusting assembly is more accurate and controllable. It can also prevent the second adjusting assembly from shaking during movement, improve the stability of the second adjusting assembly, and simplify the structure of the air guide assembly, without the need to arrange a separate second base point structure, thereby reducing costs.

[0028] In a possible implementation, the two adjustment assemblies are arranged at intervals along the extension direction of the adjustment assemblies, and the second driving assembly is located between the two adjustment assemblies.

[0029] In this way, the compactness of the air guide assembly can be improved, the air guide assembly can be arranged in a nearly symmetrical structure to improve the aesthetics, and the distance from the second driving assembly to the two adjustment assemblies can be similar, thereby simplifying the structure of the second driving assembly, reducing the occupied space of the air guide assembly, reducing the assembly difficulty, and improving the aesthetics.

[0030] In a possible implementation, the second driving assembly comprises a second motor and a second transmission member; wherein,

[0031] The second motor is in transmission connection with the second transmission member, and the second transmission member is in transmission connection with the two adjustment assemblies respectively.

[0032] The second motor drives the second transmission member to move, so as to drive at least part of the structures of the two adjustment assemblies to change positions relative to the mounting surface respectively.

[0033] By arranging the second motor, precise motion control capability can be provided, and the angle of the bearing plate can be accurately adjusted as required, so that the air flow management is more efficient and accurate. By arranging the second transmission member, the second transmission member can effectively transmit the rotary motion of the second motor to the bearing plate, ensuring the flexibility, stability and efficiency of the motion. The design of the transmission member can optimize the torque transmission and reduce energy loss. The design of the second transmission member can further reduce friction and wear, and improve the reliability of the system.

[0034] In a possible implementation, the second transmission member comprises a first connecting rod, a second connecting rod and a push-pull rod; wherein,

[0035] One end of the first connecting rod is connected with the push-pull rod, and the other end is connected with one of the two adjustment assemblies;

[0036] One end of the second connecting rod is connected with the push-pull rod, and the other end is connected with the other of the two adjustment assemblies;

[0037] The second motor is in transmission connection with the push-pull rod, and the second motor drives the push-pull rod to change positions relative to the mounting surface, so as to drive at least part of the structures of the two adjustment assemblies to change positions relative to the mounting surface through the first connecting rod and the second connecting rod.

[0038] By setting the second transmission member to include the first connecting rod, the second connecting rod and the push-pull rod, synchronous adjustment of the two adjustment assemblies can be achieved, the motion consistency of the two adjustment assemblies is improved, and the adjustment accuracy is improved. The mechanical structure of the first connecting rod, the second connecting rod and the push-pull rod is relatively simple, and is easy to manufacture and assemble. The cost can be reduced. By setting the push-pull rod, the rotary motion of the second motor can be converted into linear motion, so that precise motion control is achieved, and the accuracy of adjustment is improved. Since the first connecting rod, the second connecting rod and the push-pull rod can be effectively arranged in a plane, a compact layout can be achieved, and the internal space of the equipment is saved.

[0039] In a possible implementation, the second motor drives the push-pull rod to move along a direction perpendicular to the mounting surface.

[0040] In this way, the second drive assembly can drive the ends of the two adjustment assemblies that are close to each other to move along a direction perpendicular to the mounting surface to a direction close to the mounting surface or a direction away from the mounting surface. When the ends of the two adjustment assemblies that are close to each other move in the direction away from the mounting surface, the ends of the two adjustment assemblies that are close to each other can be moved outward, and then the two adjustment assemblies can be expanded outward, so that diffusion wind can be formed, and the area covered by the air supply can be increased. When the ends of the two adjustment assemblies that are close to each other move in the direction close to the mounting surface, the ends of the two adjustment assemblies that are close to each other can be moved inward, and then the two adjustment assemblies can be gathered inward, so that the air supply area can be increased, and the adjustment rate can be improved.

[0041] In a possible implementation, the push-pull rod includes a rack, and the second motor is in transmission connection with the rack.

[0042] In this way, the rotary motion of the second motor can be directly converted into linear motion of the push-pull rod, an efficient motion conversion mode is provided, and the accuracy of adjustment can be improved. The gear and the rack have a relatively simple structure, are easy to design and manufacture, have high reliability and durability, are easy to maintain, and can reduce maintenance costs. In addition, the gear and rack transmission can effectively transmit motion in a limited space, can save assembly space, and reduce assembly difficulty.

[0043] In a possible implementation, the first drive assembly corresponding to the first adjustment assembly is connected with the first adjustment assembly at the first base point.

[0044] The first drive assembly corresponding to the second adjustment assembly is connected with the second adjustment assembly at the second base point.

[0045] In this way, the first driving assembly can not only drive, but also serve as a support point, which can simplify the structure of the air guide assembly and reduce costs.

[0046] In a possible implementation, the first driving assembly corresponding to the first adjusting assembly is located at one end of the first adjusting assembly away from the second driving assembly.

[0047] In a possible implementation, the first driving assembly corresponding to the second adjusting assembly is located at one end of the second adjusting assembly away from the second driving assembly.

[0048] By arranging the two first driving assemblies at the mutually facing ends of the first adjusting assembly and the second adjusting assembly respectively, the mechanical interference of the first driving assembly with other intermediate components or functions such as sensors or display screens can be reduced, and the layout of the internal space of the device is more conducive, especially when other components need to be placed in the center. In addition, by arranging the first driving assembly at the end of the first adjusting assembly and the second adjusting assembly, the first driving assembly can be more easily accessed, thereby simplifying the installation and maintenance process. In addition, when moving with the first driving assembly as the base point, the moving range of the adjusting assembly can be increased, and a larger coverage angle can be obtained.

[0049] In a possible implementation, each adjusting assembly comprises a bearing plate and a plurality of air guide blades, and the extension direction of the bearing plate is the same as the extension direction of the adjusting assembly.

[0050] The plurality of air guide blades are arranged at intervals along the extension direction of the bearing plate.

[0051] Each air guide blade is movably connected to the bearing plate.

[0052] In a possible implementation, each air guide blade is rotatably connected to the bearing plate.

[0053] By arranging the bearing plate, a stable mounting base can be provided for the air guide blades, ensuring that the air guide blades remain stable during adjustment, which helps to reduce vibration and noise. The modular design of the bearing plate and the air guide blades can reduce the difficulty of installation and later maintenance. Users can replace or adjust individual air guide blades as needed without the need for large-scale adjustment of the entire air guide assembly.

[0054] By setting multiple air guide vanes on each adjustment assembly and spacing them on the carrier plate, users can more flexibly adjust the angle of each vane to precisely control the direction and intensity of the air flow to adapt to different room layouts and usage requirements. Multiple air guide vanes can also promote the mixing of indoor air, improve air quality and comfort, and make the air flow more evenly distributed to avoid local areas being too cold or too hot. By optimizing the air flow path, dead corners and stagnant areas in the air can be reduced, thereby improving user experience.

[0055] In a possible implementation, the first driving assembly comprises a first transmission member; wherein,

[0056] The first transmission member and the air guide vane of the adjustment assembly corresponding to the first driving assembly are in transmission connection;

[0057] In the extension direction of the carrier plate, the first transmission member is in movable connection with the carrier plate, and when the first transmission member moves along the extension direction of the adjustment assembly, it drives the air guide vane connected with the first transmission member to rotate.

[0058] By setting a first transmission member and connecting all air guide vanes on the adjustment assembly with the first transmission member in transmission, the first transmission member can drive the air guide vanes to rotate, ensuring the flexibility, stability and efficiency of the movement of the air guide assembly. The design of the first transmission member can optimize torque transmission and reduce energy loss. The design of the first transmission member can further reduce friction and wear, improving the reliability of the system.

[0059] In a possible implementation, the first driving assembly further comprises a first motor; wherein,

[0060] The first motor is in transmission connection with one of the plurality of air guide vanes, and the first motor drives the air guide vane in transmission connection with the first motor to rotate to drive the first transmission member to move along the extension direction of the adjustment assembly.

[0061] By setting a first motor and connecting the first motor with one of the air guide vanes in transmission, the rotation of the air guide vane can drive the first transmission member connected with the air guide vane to move and drive the other air guide vanes connected with the first transmission member to rotate, which can reduce the assembly difficulty of the first motor and provide precise motion control capability, thereby precisely adjusting the angle of the air guide vane as needed to make air flow management more efficient and accurate.

[0062] In a possible implementation, the first driving assembly further comprises a first motor; wherein,

[0063] The first motor is in transmission connection with the first transmission member, and the first motor drives the first transmission member to move along the extension direction of the adjusting assembly.

[0064] By arranging the first motor, precise motion control capability can be provided, and the angle of the air guide blade can be accurately adjusted as required, so that air flow management is more efficient and accurate. By arranging the first motor in transmission connection with the first transmission member, the first transmission member can effectively transmit the rotary motion of the first motor to the air guide blade, ensuring flexibility, stability and efficiency of the motion.

[0065] In a possible implementation, the first transmission member is a transmission link.

[0066] The transmission link is arranged along the extension direction of the adjusting assembly and connected with all the air guide blades of the adjusting assembly.

[0067] By arranging the first transmission member as a transmission link, the structure of the first transmission member can be simplified, the processing technology is simple, the cost is low, and it is suitable for large-scale production and application. In addition, the transmission link is a simple and reliable mechanical structure, which can effectively convert the rotary motion of the motor into linear or swinging motion of the air guide blade, helping to improve the reliability and durability of the system. Due to the geometric characteristics of the transmission link, it can provide precise motion control, so that the air guide blade can be accurately adjusted in a set range, thereby realizing more accurate air flow management.

[0068] In a possible implementation, the carrier plate comprises a top wall and a bottom wall arranged opposite along the thickness direction.

[0069] The top wall and the bottom wall are provided with a receiving cavity, and the first transmission member is movably arranged in the receiving cavity.

[0070] The air guide blade is rotatably arranged on one side of the top wall away from the bottom wall, and one end of the air guide blade penetrates through the top wall and is connected with the first transmission member.

[0071] By arranging the receiving cavity between the top wall and the bottom wall, the space can be effectively utilized, and the overall structure is more compact. By arranging the first transmission member in the receiving cavity, it can be effectively protected from the external environment, such as dust, moisture or physical damage, thereby improving the reliability and service life of the system. The receiving cavity can play a certain sound insulation and shock absorption effect, reducing the noise and vibration generated by the first transmission member during operation, and improving the user experience. By arranging the first transmission member in the receiving cavity, the appearance of the air guide assembly can be more simple and beautiful, and the beauty of the air guide assembly can be improved.

[0072] In a possible implementation, the first motor is located on a side of the bottom wall away from the top wall.

[0073] By arranging the first motor outside the bearing plate, the first motor can be directly exposed to air, which is conducive to heat dissipation and thus improves the efficiency and service life of the motor. By arranging the first motor outside the bearing plate, the vibration of the first motor can be directly transmitted to the bearing plate and the guide vane, thereby reducing the noise and vibration of the overall system. The first motor can also be more easily accessed, simplifying the maintenance and replacement process, and relative to arranging the first motor inside the bearing plate, the need to disassemble other components can be reduced, thereby saving time and reducing maintenance costs. In addition, external installation can simplify electrical connections and wiring, as the first motor can be more directly connected to the power supply and control system.

[0074] In a possible implementation, the air handling device further comprises a control device, and

[0075] The control device is electrically connected to the two first driving assemblies and the second driving assembly, and is configured to control the two first driving assemblies and the second driving assembly respectively.

[0076] In this way, each driving assembly can be independently controlled, so that the system can flexibly adjust the action of each component according to specific needs. In turn, precise control of air flow in different areas can be achieved to meet the different needs of users, especially in large spaces or multi-functional areas. In addition, in multi-functional spaces (such as conference rooms, open offices, etc.), different air supply angles can provide suitable air flow conditions for different activity areas to meet diverse use requirements. By adjusting the air supply angle of each adjustment assembly, the problem of uneven temperature in the room can be more effectively solved. For example, special adjustment can be made for areas directly exposed to sunlight or near doors and windows. By precisely controlling the air flow direction of each area, unnecessary energy consumption can be reduced, thereby improving the overall energy efficiency of the system and helping to reduce operating costs and energy consumption. By using a control device to centrally manage multiple driving assemblies, the integration and wiring design of the system can be simplified, and the maintainability of the overall system can be improved.

[0077] The second aspect of the embodiment of the present application provides an air handling device, comprising a device body and the air guide assembly according to any one of the first aspect.

[0078] The air handling device in the embodiment of the present application includes but is not limited to air conditioning devices, air purifiers, fresh air machines, etc. By arranging the air guide assembly of the first aspect, the air supply area of the air handling device can be expanded. Relative to the air guide plate in the related art, the technical solution of the present application can cover a larger air blowing area, improving the user experience. BRIEF DESCRIPTION OF DRAWINGS

[0079] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the accompanying drawings needed to be used in the embodiments or prior art description will be briefly introduced as follows. Obviously, the accompanying drawings in the following description are some embodiments of the present application, and other drawings can be obtained by those skilled in the art without any creative effort based on these drawings.

[0080] Figure 1 A structural schematic diagram of an indoor unit of an air conditioner is provided for the embodiments of the present application.

[0081] Figure 2 A structural schematic diagram of an air guide assembly is provided for the embodiments of the present application.

[0082] Figure 3 Another angle of a structural schematic diagram of an air guide assembly is provided for the embodiments of the present application.

[0083] Figure 4 A reference of a use state of an air guide assembly is provided for the embodiments of the present application. Figure 1 ;

[0084] Figure 5 A cross-sectional structural schematic diagram of an air guide assembly is provided for the embodiments of the present application.

[0085] Figure 6 An exploded structural schematic diagram of an adjusting assembly of an air guide assembly is provided for the embodiments of the present application.

[0086] Figure 7 A structural schematic diagram of a second driving assembly of an air guide assembly is provided for the embodiments of the present application.

[0087] Figure 8 A frame structural schematic diagram of an air guide assembly is provided for the embodiments of the present application.

[0088] Explanation of reference signs:

[0089] 200-air treatment device; 300-device body; 310-air outlet;

[0090] 100-air guide assembly; 10-adjusting assembly; 10a-first adjusting assembly;

[0091] 10b-second adjusting assembly; 11-bearing plate; 111-top wall;

[0092] 112-bottom wall; 113-containing cavity;

[0093] 11a-first bearing plate; 11b-second bearing plate; 12a-first air guide blade;

[0094] 12b - second guide vane; 13a - first base point; 13b - second base point;

[0095] 20a - first driving assembly; 20b - second driving assembly; 211 - first motor;

[0096] 212 - first transmission; 221 - second transmission; 2211 - second connecting rod;

[0097] 2212 - first connecting rod; 2213 - push-pull rod; 222 - second motor;

[0098] 30 - control device; m - mounting surface;

[0099] p - first air outlet area; g - second air outlet area. DETAILED DESCRIPTION

[0100] To make the purpose, technical scheme and advantages of the embodiments of the present application more clear, the technical scheme of the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0101] The air supply angle of the conventional air conditioning equipment is usually adjusted by a vane, wherein the vane is usually fixed in a local area of the air outlet of the air conditioning equipment, the vane is pulled by a pull rod to produce one-dimensional rotation, so as to realize the air supply angle adjustment function, for example, left and right swing to realize left and right air sweeping, and up and down swing to realize up and down air sweeping. However, the adjustment angle of this adjustment mode is relatively limited, which leads to a small coverage area of the air conditioning equipment, and the air conditioning equipment cannot realize multi-directional partition air supply, thereby leading to poor user experience.

[0102] To solve the above technical problems, the embodiments of the present application provide a guide vane assembly and an air handling equipment, which can accurately control the airflow direction, cover a larger blowing area, and improve the user experience.

[0103] The guide vane assembly and the air handling equipment provided by the embodiments of the present application will be described in detail below with reference to the drawings.

[0104] This application provides an air handling device, which includes, but is not limited to, air conditioning equipment, humidifiers, dehumidifiers, ventilation equipment, heat recovery ventilation systems, air purifiers, and fresh air systems. In this application embodiment, an air conditioning device is used as an example for description, wherein the air conditioning equipment includes, but is not limited to, indoor air conditioning units, floor-standing air conditioners, central air conditioning systems, and ducted air conditioning systems. In this application embodiment, the type of air conditioning equipment is not further limited.

[0105] The following explanation uses an air conditioner indoor unit as an example.

[0106] Figure 1 This is a schematic diagram of the structure of an indoor air conditioner unit provided in an embodiment of this application. Figure 1 As shown, the air handling equipment 200 may include an equipment body 300, the equipment body 300 includes an air outlet 310, and an air guide assembly 100 is provided at the air outlet 310. The air guide assembly 100 may include two adjustment assemblies 10, the two adjustment assemblies 10 are spaced apart along the extension direction of the adjustment assembly 10, and each adjustment assembly 10 includes a movable air guide blade 12.

[0107] The air guide assembly 100 may further include two first drive assemblies 20a and one second drive assembly 20b. Each first drive assembly 20a corresponds to an adjustment assembly 10. All the air guide blades 12 on the first drive assembly 20a and the adjustment assembly 10 corresponding to the first drive assembly 20a are connected in a transmission manner to drive the air guide blades 12 to swing toward both ends of the adjustment assembly 10 in the extension direction.

[0108] The second drive assembly 20b is located between the two adjustment assemblies 10. The second drive assembly 20b is connected to both adjustment assemblies 10 by means of transmission. The second drive assembly 20b is used to drive at least a portion of the structure of the two adjustment assemblies 10 to change position relative to the mounting surface m.

[0109] For ease of description, in the embodiments of this application, such as Figure 2 As shown, the two adjustment components are designated as the first adjustment component 10a and the second adjustment component 10b, respectively. The first adjustment component 10a and the second adjustment component 10b are spaced apart in the extending direction of the air guide component 100.

[0110] The air guide assembly 100 can adjust the first air outlet area p by controlling the first adjusting assembly 10a and the second air outlet area g by controlling the second adjusting assembly 10b, thereby adjusting the air supply angle of the air outlet 310, realizing air supply to different areas, improving the coverage range of air conditioning, and also preventing the air conditioner from blowing directly at the same angle, reducing discomfort, and improving user comfort experience. By optimizing the air flow path, the running time and energy consumption of the air conditioner can be reduced, thereby improving the overall energy efficiency. This helps to reduce power consumption and operating costs.

[0111] The air guide assembly 100 can adjust the air supply angle of the air outlet 310, thereby expanding the coverage angle of the air conditioner. In addition, this can also make the air guide assembly 100 blow air towards more areas to realize air temperature adjustment. By controlling the air supply angle of the adjusting assembly, the air supply can be accurately supplied at more angles, improving the accuracy of air temperature adjustment and improving user experience.

[0112] By adjusting the air supply angle of the air outlet 310, the air outlet can not blow air directly to the area where people are active, that is, to avoid blowing air to the area where people are, to avoid discomfort or health problems caused by direct cold wind blowing to the body. In addition, by adjusting the air guide assembly 100, the air supply angle of the air outlet can be continuously changed, which can also avoid the air conditioner blowing directly in one direction for a long time, thereby preventing the air conditioner from blowing directly.

[0113] The air guide assembly 100 provided by the embodiment of the present application will be described in detail below in conjunction with the drawings.

[0114] Figure 2 A structural schematic diagram of an air guide assembly provided by the embodiment of the present application. Figure 3 Another angle of a structural schematic diagram of an air guide assembly provided by the embodiment of the present application. Figure 2 A perspective view of the air guide assembly. Figure 3 A top view structural schematic diagram.

[0115] In this embodiment, for the convenience of description, the extension direction of the first adjusting assembly 10a and the second adjusting assembly 10b is taken as the x direction, and the vertical direction of the mounting surface m is taken as the y direction.

[0116] The air guide assembly 100 provided by the embodiment of the present application is shown in Figure 2 and Figure 3 The air guide assembly 100 is installed on the mounting surface m (see Figure 3As shown in the figure, the air guide assembly 100 can include a first adjusting assembly 10a, a second adjusting assembly 10b, two first driving assemblies 20a and one second driving assembly 20b, wherein the first adjusting assembly 10a and the second adjusting assembly 10b are spaced apart along the x direction.

[0117] For example, one of the two first driving assemblies 20a is in transmission connection with the air guide blades 12 on the first adjusting assembly 10a, and the other one of the two first driving assemblies 20a is in transmission connection with the air guide blades 12 on the second adjusting assembly 10b. The first driving assemblies 20a and the second driving assembly 20b drive the air guide blades 12 on the first adjusting assembly 10a and the second adjusting assembly 10b to change positions, for example, to drive the air guide blades 12 to rotate and / or translate, etc. In this embodiment, the air guide blades 12 are rotated to realize the swing function of the adjusting assembly 10.

[0118] The second driving assembly 20b can be located between the first adjusting assembly 10a and the second adjusting assembly 10b, and the second driving assembly 20b is used to simultaneously drive the first adjusting assembly 10a and the second adjusting assembly 10b to change positions relative to the mounting surface m, so that the first adjusting assembly 10a can adjust the range of the first air supply angle α1 (see Figure 4 As shown in the figure, and then air can be supplied to the first air outlet area p. At the same time, the second adjusting assembly 10b can adjust the range of the second air supply angle α2 (see Figure 4 As shown in the figure, and then air can be supplied to the second air outlet area g. Figure 4 It is a top view structure schematic diagram.

[0119] It should be noted that the "mounting surface m" as the mounting surface m of the air guide assembly 100 refers to the mounting surface m of the air guide assembly 100 when mounted on the air handling device 200, which extends along the extension direction of the adjusting assembly 10. The mounting surface m can be used as a reference for the initial position of the air guide assembly 100 or the adjusting assembly 10.

[0120] In some embodiments, the mounting surface m can be the mounting surface of the air handling device 200 to which the air guide assembly 100 is applied, for example, the mounting surface m can be the surface on which the air handling device 200 is mounted on the wall, at this time, the mounting surface m can be parallel or close to parallel to the wall.

[0121] It should be noted that the "first air outlet area p" refers to the air outlet area corresponding to the first adjusting assembly 10a, that is, the first adjusting assembly 10a can supply air to the first air outlet area p. It can be understood that the first air outlet area p changes during the adjustment of the first adjusting assembly 10a, and is not limited to a fixed area.

[0122] Similarly, the "second air outlet area g" refers to an air outlet area corresponding to the second adjustment assembly 10b, that is, the second adjustment assembly 10b can send air into the second air outlet area g. It can be understood that the second air outlet area g changes in the adjustment process of the second adjustment assembly 10b, and is not limited to a fixed area. Figure 4 The dashed boxes of the first air outlet area p and the second air outlet area g in the figure only indicate that the first adjustment assembly 10a and the second adjustment assembly 10b can send air to different areas, respectively, and do not represent the boundaries of the actual air outlet areas of the first adjustment assembly 10a and the second adjustment assembly 10b.

[0123] It should be noted that the "first air supply angle α1" refers to the angle of movement of the first adjustment assembly 10a relative to the initial position (that is, the mounting surface m). That is, by arranging the first adjustment assembly 10a to be movable relative to the mounting surface m, the first adjustment assembly 10a can adjust the range of the first air supply angle, and by changing the range of the first air supply angle, the user can adjust the air supply direction of the first adjustment assembly 10a as needed, thereby meeting the different needs of customers.

[0124] The "second air supply angle α2" refers to the angle of movement of the second adjustment assembly 10b relative to the initial position (that is, the position relative to the mounting surface m at the beginning).

[0125] It should be noted that "position change relative to the mounting surface m" refers to translation, rotation, etc. relative to the mounting surface m, as long as the adjustment assembly as a whole moves relative to the mounting surface m, the adjustment assembly is said to have changed relative to the mounting surface m. For example, the adjustment assembly moves up, down, left, right, front, back, etc. relative to the mounting surface m. Or, the adjustment assembly rotates around a certain point or axis to flip, rotate, etc. the adjustment assembly. Or, the adjustment assembly can move up, down, left, right, front, back, etc. relative to the mounting surface m, and can also rotate around a certain point or axis to flip, rotate, etc. the adjustment assembly.

[0126] By arranging the second adjustment assembly 10b to be movable relative to the mounting surface m, the second adjustment assembly 10b can adjust the range of the second air supply angle, and by changing the range of the second air supply angle, the user can adjust the air supply direction of the second adjustment assembly 10b as needed, thereby meeting the different needs of customers.

[0127] In the embodiments of the present application, the movement of the first adjusting assembly 10a and the second adjusting assembly 10b relative to the mounting surface is controlled by the second driving assembly 20b at the same time, so that the structure of the entire air guide assembly can be simplified and the cost can be reduced. The air guide blades of the first adjusting assembly 10a and the second adjusting assembly 10b are controlled by the two first driving assemblies 20a respectively, so that the first adjusting assembly 10a and the second adjusting assembly 10b can blow air to different air outlet areas respectively. In this way, the air outlet area of the air conditioning equipment can be expanded, and a larger air outlet area can achieve more uniform air distribution, reduce temperature differences in the room, and thus improve overall comfort. A larger air outlet area can quickly reach the set temperature target, which means that the air conditioning equipment can complete the cooling or heating task in a shorter time, thereby improving energy efficiency. A larger air outlet area can reduce the discomfort caused by strong wind in a single direction and provide a softer air flow experience, making users feel more natural and comfortable in the air conditioning environment. In addition, by controlling the air outlet angle of the first adjusting assembly 10a and the second adjusting assembly 10b, the direct blowing of the air conditioning equipment can be prevented, and the user experience can be improved.

[0128] In addition, by separately controlling the air guide blades 12 of the first adjusting assembly 10a and the second adjusting assembly 10b, the air flow direction and intensity of the first air outlet area p corresponding to the first adjusting assembly 10a and the air flow direction and intensity of the second air outlet area g corresponding to the second adjusting assembly 10b can be accurately adjusted as needed to adapt to different room layouts and use requirements. Users can flexibly adjust the settings of each adjusting assembly according to specific environmental conditions to achieve more uniform and effective air distribution, avoid local overcooling or overheating, and improve overall comfort.

[0129] It should be noted that in some embodiments, for example, in the case of an air conditioning equipment with a large air outlet in the x direction, multiple air guide assemblies 100 can be provided at the air outlet, and each air guide assembly 100 can include a first adjusting assembly 10a and a second adjusting assembly 10b to adapt to more models of air conditioning equipment. Of course, the size of the air guide assembly 100 in the x direction can also be increased to adapt to different models of air conditioning equipment. In the embodiments of the present application, the number of air guide assemblies 100 provided in an air conditioning equipment is not further limited.

[0130] For example, the second driving assembly 20b drives the first adjusting assembly 10a and the second adjusting assembly 10b to change position relative to the mounting surface m, and specifically can drive at least part of the structure of the first adjusting assembly 10a and the second adjusting assembly 10b to move away from the mounting surface m.

[0131] The "direction away from the mounting surface m" refers to a direction in which the distance to the mounting surface m is getting farther. For example, it can be a direction along a direction perpendicular to the mounting surface m (moving forward or backward relative to the mounting surface), or a direction at an angle to the mounting surface m (obliquely upward or obliquely downward).

[0132] Of course, in some embodiments, the second driving assembly 20b can also drive at least part of the structures of the first adjusting assembly 10a and the second adjusting assembly 10b to move in a direction close to the mounting surface m. The directions away from and close to are opposite, and correspond to different working modes, for example, during work, the first adjusting assembly 10a and the second adjusting assembly 10b can be driven to move in a direction away from the mounting surface m, and after work, at least part of the structures of the first adjusting assembly 10a and the second adjusting assembly 10b can be driven to move in a direction close to the mounting surface m, so as to return to the initial position.

[0133] It should be noted that "perpendicular" refers to a range of errors that are allowed to be perpendicular, for example, an angle between 80° and 90° to the mounting surface m can be considered as perpendicular to the mounting surface m. The extension direction of the first adjusting assembly 10a and the second adjusting assembly 10b is the direction of the largest dimension of the first adjusting assembly 10a and the second adjusting assembly 10b, which is shown as the x direction in the figure, and the direction perpendicular to the mounting surface m is the y direction.

[0134] It should be noted that the movement relative to the mounting surface m is the movement relative to the mounting surface, when the position of the mounting surface changes, the movement direction of the first adjusting assembly 10a and the second adjusting assembly 10b also changes accordingly, therefore, in the embodiments of the present application, the specific movement direction of the first adjusting assembly 10a and the second adjusting assembly 10b is not limited further, as long as the position can change relative to the mounting surface m.

[0135] The air guide assembly 100 in the embodiments of the present application drives at least part of the structures of the first adjusting assembly 10a and the second adjusting assembly 10b to move in a direction perpendicular to the mounting surface m. In this way, at least part of the structures of the first adjusting assembly 10a and the second adjusting assembly 10b can be located outside the air outlet 310 of the air handling device 200 to which the air guide assembly 100 is applied, and the shielding area of the part of the first adjusting assembly 10a and the second adjusting assembly 10b located outside the air outlet 310 to the sidewall of the air outlet 310 is reduced, so that the blowing area of the air guide assembly 100 can be expanded, so that the air handling device 200 to which the air guide assembly 100 is applied can cover a larger blowing area. Compared with the related art in which the blowing angle is adjusted by the air guide plate, the technical solution of the present application can cover a larger blowing area, improve the efficiency of air handling, and thus save energy.

[0136] In one possible implementation, the first adjusting assembly 10a and the second adjusting assembly 10b are spaced apart along the x direction, and the second driving assembly 20b is located between the first adjusting assembly 10a and the second adjusting assembly 10b. The second driving assembly 20b is configured to drive the end of the first adjusting assembly 10a and the second driving assembly 20b that are close to each other to move away from or close to the mounting surface m.

[0137] For example, the second driving assembly 20b is configured to drive the end of the first adjusting assembly 10a and the second driving assembly 20b that are close to each other to move away from the mounting surface m along the y direction, so as to expand the air supply angle.

[0138] In this way, the end of the first adjusting assembly 10a and the second driving assembly 20b that are close to each other can be translated away from the mounting surface m, that is, the end of the first adjusting assembly 10a and the second driving assembly 20b that are close to each other can extend outside the air outlet 310 of the air handling device 200 to which the air guide assembly 100 is applied, thereby further reducing the area of the end of the first adjusting assembly 10a and the second driving assembly 20b that are close to each other that is blocked by the side wall of the air outlet 310, so as to further expand the areas of the first air outlet region p and the second air outlet region g, so that the air handling device 200 to which the air guide assembly 100 is applied can cover a larger air blowing area.

[0139] Referring to Figure 4 As shown, the first adjusting assembly 10a includes a first base point 13a, and the second driving assembly 20b is configured to drive the first adjusting assembly 10a to rotate around the first base point 13a, so as to move at least part of the structure of the first adjusting assembly 10a away from the mounting surface m. The first driving assembly 20a corresponding to the first adjusting assembly 10a is connected to the first adjusting assembly 10a at the first base point 13a.

[0140] By providing the first base point 13a and connecting the first driving assembly 20a to the first adjusting assembly 10a at the first base point 13a, the first driving assembly 20a can provide a stable support point and reference point for the first adjusting assembly 10a at the first base point 13a, so that the position change and adjustment of the first adjusting assembly 10a can be performed relative to the first base point 13a, which helps to ensure that the movement of the first adjusting assembly 10a is more accurate and controllable. It can also prevent the first adjusting assembly 10a from shaking during movement, improve the stability of the first adjusting assembly 10a, and simplify the structure of the air guide assembly 100, without the need to separately provide a structure corresponding to the first base point 13a, thereby reducing costs.

[0141] Similarly, the second adjusting assembly 10b can comprise a second base point 13b, and the second driving assembly 20b is configured to drive the second adjusting assembly 10b to rotate around the second base point 13b, so as to move at least part of the structure of the second adjusting assembly 10b away from the mounting surface m. The first driving assembly 20a corresponding to the second adjusting assembly 10b is connected with the second adjusting assembly 10b at the second base point 13b.

[0142] By setting the second base point 13b and connecting the first driving assembly 20a with the second adjusting assembly 10b at the second base point 13b, the first driving assembly 20a can provide a stable support point and reference point for the second adjusting assembly 10b at the second base point 13b, so that the movement and adjustment of the second adjusting assembly 10b can be performed relative to the second base point 13b, which helps to ensure that the movement of the second adjusting assembly 10b is more accurate and controllable. It can also prevent shaking during the movement of the second adjusting assembly 10b, improve the stability of the second adjusting assembly 10b, and simplify the structure of the air guide assembly 100, without the need to set a separate second base point 13b for the structure, thereby reducing costs.

[0143] It should be noted that the positions of the first base point and the second base point are related to the positions of the two first driving mechanisms, and in the following description, the positions of the first driving mechanisms represent the positions of the first base point and the second base point.

[0144] In the embodiments of the present application, as shown in Figure 4 The first driving assembly 20a corresponding to the first adjusting assembly 10a can be located at one end of the first adjusting assembly 10a away from the second adjusting assembly 10b, that is, the first base point 13a is located at one end of the first adjusting assembly 10a away from the second adjusting assembly 10b. The first driving assembly 20a corresponding to the second adjusting assembly 10b can be located at one end of the second adjusting assembly 10b away from the first adjusting assembly 10a, that is, the second base point is located at one end of the second adjusting assembly 10b away from the first adjusting assembly 10a.

[0145] In the embodiments of the present application, the position of the first driving assembly 20a can be set according to specific conditions, and in the embodiments of the present application, it is not further limited.

[0146] By arranging the two first driving assemblies 20a at the two ends of the first adjusting assembly 10a and the second adjusting assembly 10b respectively, the mechanical interference of the first driving assembly 20a to other intermediate components or functions (such as sensors or display screens) can be reduced, and the layout of the internal space of the device is more favorable, especially when other components need to be placed in the center position. In addition, by arranging the first driving assembly at the ends of the first adjusting assembly 10a and the second adjusting assembly 10b, the first driving assembly 20a can be more easily accessed, thereby simplifying the installation and maintenance process. In addition, when moving with the first driving assembly 20a as the reference point, the moving range of the adjusting assembly can be increased, and a larger coverage angle can be obtained.

[0147] In addition, by arranging the two first driving assemblies 20a at the two ends of the first adjusting assembly 10a and the second adjusting assembly 10b respectively, the first adjusting assembly 10a and the second adjusting assembly 10b can achieve a larger swing angle, thereby covering a wider space area.

[0148] Of course, in other embodiments, the first driving assembly 20a can also be arranged at other positions. For example, the first driving assembly 20a corresponding to the first adjusting assembly 10a can be located between the two ends of the extension direction of the first adjusting assembly 10a (for example, near the middle position). The first driving assembly 20a corresponding to the second adjusting assembly 10b can be located between the two ends of the extension direction of the second adjusting assembly 10b, for example, near the middle position.

[0149] In this way, the design flexibility of the first driving assembly 20a can be improved, and interference between the first driving assembly 20a and the second driving assembly 20b can be prevented. In addition, when the first driving assembly 20a is located between the two ends of the first adjusting assembly 10a, the first driving assembly 20a can have a portion of the guide vane 12 on both sides of the extension direction of the first adjusting assembly 10a, which can more evenly distribute the driving force and reduce the uneven stress or deformation problem that may occur during the adjustment of the guide vane 12, thereby prolonging the service life of the first adjusting assembly 10a.

[0150] In addition, when the second driving assembly 20b drives the first adjusting assembly 10a and the second adjusting assembly 10b to move a distance away from the mounting surface along the direction perpendicular to the mounting surface (y direction), a portion of the structure of the first adjusting assembly 10a and the second adjusting assembly 10b can be located outside the air outlet 310 of the air handling device 200 to which the air guide assembly 100 is applied, and another portion of the structure is located inside the air outlet 310. The area of the portion of the first adjusting assembly 10a and the second adjusting assembly 10b located outside the air outlet 310 that is blocked by the sidewall of the air outlet 310 can be reduced, thereby expanding the blowing area of the air guide assembly 100.​​​​

[0151] In addition, by controlling the positions of the first base point 13a and the second base point 13b, the sizes of the first adjusting assembly 10a and the second adjusting assembly 10b located outside the air outlet 310 of the air handling device 200 to which the air guide assembly 100 is applied can be controlled, and thus the blowing area of the air guide assembly 100 can be controlled, and the installation flexibility of the air guide assembly 100 can be improved.

[0152] It should be noted that the positions of the two first driving assemblies 20a, i.e., the positions of the first base point 13a and the second base point 13b, include but are not limited to a fixed position, and the positions of the two first driving assemblies 20a can be set according to actual installation requirements. In the embodiments of the present application, the positions of the two first driving assemblies 20a are not limited, and can be set according to specific conditions.

[0153] It should be noted that the base point is only a reference point or a reference line, and does not exist as an actual structure.

[0154] It should be noted that the rotation axes of the first adjusting assembly 10a and the second adjusting assembly 10b can be perpendicular to the mounting surface m. In some other embodiments, the rotation axes of the first adjusting assembly 10a and the second adjusting assembly 10b can also be parallel to the mounting surface m (for example, transversely parallel or longitudinally parallel). For example, the direction perpendicular to the mounting surface m is the front-back direction, and the direction parallel to the mounting surface m includes the up-down direction and the left-right direction. Then, the first adjusting assembly 10a and the second adjusting assembly 10b can rotate left and right with the up-down direction as the axis, rotate front and back with the left-right direction as the axis, and rotate up and down with the front-back direction as the axis. Of course, the rotation axes of the first adjusting assembly 10a and the second adjusting assembly 10b can also be arranged at an angle with the mounting surface m, and in the embodiments of the present application, the rotation directions of the first adjusting assembly 10a and the second adjusting assembly 10b are not further limited.

[0155] In addition, in the embodiments shown in the figure, the position of the first base point 13a relative to the first adjusting assembly 10a is the same as the position of the second base point 13b relative to the second adjusting assembly 10b. Of course, in other embodiments, the position of the first base point 13a relative to the first adjusting assembly 10a can also be different from the position of the second base point 13b relative to the second adjusting assembly 10b. Therefore, in the embodiments of the present application, the specific positions of the first base point 13a and the second base point 13b are not further limited.

[0156] In a possible implementation, the first driving assembly 20a is in transmission connection with the guide vanes 12 on the adjusting assembly 10 corresponding to the first driving assembly 20a, and the first driving assembly 20a is configured to drive the guide vanes 12 to change positions. For example, the first driving member 22 is configured to drive the guide vanes 12 to change positions relative to the bearing plate 11, for example, the first driving member 22 is configured to drive the guide vanes 12 to translate and / or rotate relative to the bearing plate 11, so that the guide vanes 12 can swing. In this embodiment, two first driving assemblies 20a are configured to separately drive the guide vanes 12 on the two adjusting assemblies 10 corresponding to the two first driving assemblies 20a.

[0157] For convenience of description, the guide vanes arranged on the first adjusting assembly 10a are referred to as first guide vanes 12a, and the guide vanes arranged on the second adjusting assembly 10b are referred to as second guide vanes 12b.

[0158] Referring to Figure 4 As shown in FIG. 1, the first adjusting assembly 10a can be provided with a plurality of first guide vanes 12a arranged movably, and the first driving assembly 20a corresponding to the first adjusting assembly 10a is in transmission connection with the first guide vanes 12a arranged on the first adjusting assembly 10a, and the first driving assembly 20a corresponding to the first adjusting assembly 10a is configured to drive the first guide vanes 12a to rotate relative to the bearing plate 11, so that the first guide vanes 12a swing towards the two ends of the extension direction (x direction) of the first adjusting assembly 10a, and the first guide vanes 12a on the first adjusting assembly 10a can adjust the range of the third air supply angle α3, as shown in FIG. 1. Figure 4 As shown in FIG. 1, in some embodiments, the range of the overall air supply angle of the first adjusting assembly 10a is the sum of α1 and α3.

[0159] Similarly, the second adjusting assembly 10b can also be provided with a plurality of second guide vanes 12b arranged movably, and the first driving assembly 20a corresponding to the second adjusting assembly 10b is in transmission connection with the second guide vanes 12b arranged on the second adjusting assembly 10b, and the first driving assembly 20a corresponding to the second adjusting assembly 10b is configured to drive the second guide vanes 12b to swing towards the two ends of the extension direction (x direction) of the second adjusting assembly 10b, so that the second guide vanes 12b on the second adjusting assembly 10b can adjust the range of the fourth air supply angle α4, as shown in FIG. 1. Figure 4 As shown in FIG. 1, in some embodiments, the range of the overall air supply angle of the second adjusting assembly 10b is the sum of α2 and α4.

[0160] It should be noted that, in this embodiment, "towards" refers to a broad sense of "towards", and is not limited to a front surface.

[0161] By setting the first air guide vane 12a on the first adjusting assembly 10a and the second air guide vane 12b on the second adjusting assembly 10b, the blowing direction of the first adjusting assembly 10a and the second adjusting assembly 10b can be further adjusted by adjusting the angle of the first air guide vane 12a and the second air guide vane 12b. That is, the blowing angle of the first adjusting assembly 10a and the second adjusting assembly 10b can be controlled by two-dimensional adjustment, which can more accurately control the direction of the air flow, help to optimize air distribution according to the layout of the room and the needs of the user, adapt to different room shapes and sizes, provide more uniform temperature distribution, and also avoid cold or warm air directly blowing to the human body, reduce discomfort, and improve the comfort experience of the user. This design can also optimize the air flow path, reduce the running time and energy consumption of the air conditioner, and thus improve the overall energy efficiency. This helps to reduce power consumption and operating costs.

[0162] In some embodiments, the air guide vane 12 can include an initial position and a working position. Among them, Figure 3 The position where the second air guide vane 12b is located can be used as the initial position, and the position of the first air guide vane 12a can be used as the working position.

[0163] It should be noted that when the air guide vane is not rotating, its working position is the initial position. In addition, the working position is not a fixed position, and when the air guide vane is swinging, the working position is an angle range.

[0164] It should be noted that the angle of rotation of the first air guide vane 12a from the initial position to the working position can be a third blowing angle α3, and the angle of rotation of the second air guide vane 12b from the initial position to the working position can be a fourth blowing angle α4. Among them, the third blowing angle α3 and the fourth blowing angle α4 can be the same (such as Figure 4 ), or different (such as Figure 3 ). For example, the third blowing angle α3 and the fourth blowing angle α4 can each be 45°, the third blowing angle α3 and the fourth blowing angle α4 can be 0° and 45°, respectively, and the like. In this way, the adjustment flexibility of the first adjusting assembly and the second adjusting assembly can be improved.

[0165] It should be noted that the first air guide vane 12a and the second air guide vane 12b shown in the figure are the same structure, the first air guide vane 12a and the second air guide vane 12b are arranged along the z direction and can rotate around the z direction, and the shape, arrangement direction, arrangement manner, etc. of the first air guide vane 12a and the second air guide vane 12b are the same, and the first air guide vane 12a and the second air guide vane 12b are in a rectangular sheet structure. And a plurality of through holes are provided on the first air guide vane 12a and the second air guide vane 12b, which can be used for ventilation.

[0166] Of course, in other embodiments, the first air guide blade 12a and the second air guide blade 12b can also be arranged to rotate around the y direction or the x direction. The rotation axes of the first air guide blade 12a and the second air guide blade 12b can also be arranged to be different. In the embodiments of the present application, the arrangement directions of the first air guide blade 12a and the second air guide blade 12b and the directions of the rotation axes are not further limited.

[0167] In addition, in other embodiments, the first air guide blade 12a and the second air guide blade 12b can also be arranged to other shapes, for example, arc shape, S shape or special shape. In the embodiments of the present application, the arrangement directions of the first air guide blade 12a and the second air guide blade 12b and the shapes are not further limited.

[0168] In addition, the shapes of the first air guide blade 12a and the second air guide blade 12b can be the same or different. In the embodiments of the present application, the shapes of the first air guide blade 12a and the second air guide blade 12b are not further limited.

[0169] In some embodiments, the first air guide blade 12a and the second air guide blade 12b can have the same function as the blades in the prior art, that is, can realize the left and right swinging (left and right directions in the figure) in the extension directions of the first adjusting assembly 10a and the second adjusting assembly 10b or the up and down swinging (up and down directions in the figure) perpendicular to the extension directions.

[0170] In other embodiments, the first air guide blade 12a and the second air guide blade 12b can also realize the swinging in multiple directions, for example, the first air guide blade 12a and the second air guide blade 12b can realize the swinging in the x direction (left and right swinging), can also realize the swinging in the z direction (up and down swinging), or can realize the swinging in the direction at a certain angle with the z direction (inclined swinging) and the like.

[0171] Of course, it can be understood that when the first air guide blade 12a and the second air guide blade 12b can swing relative to the air handling equipment 200 in the z direction or the direction at a certain angle with the z direction, a third driving member can also be arranged to drive the air guide blade 12 to swing relative to the air handling equipment 200 in the z direction or the direction at a certain angle with the z direction. Specifically, the third driving member can drive the entire first adjusting assembly 10a or the second adjusting assembly 10b to swing in the z direction or the direction at a certain angle with the z direction, or the third driving member can drive the air guide blade 12 to swing in the z direction or the direction at a certain angle with the z direction. In the embodiments of the present application, the specific implementation mode for realizing the swinging of the air guide blade 12 in the z direction or the direction at a certain angle with the z direction is not further limited.

[0172] With reference to Figure 2 and Figure 4 shown, each adjustment assembly 10 includes a carrier plate 11 and a plurality of air guide vanes 12. The extension direction (x direction) of the carrier plate 11 is the same as the extension direction of the adjustment assembly 10. The plurality of air guide vanes 12 are spaced along the extension direction of the carrier plate 11. Each air guide vane 12 is movably connected to the carrier plate 11, for example, rotatably connected to the carrier plate 11.

[0173] By providing the carrier plate 11, a stable mounting base can be provided for the air guide vanes 12, ensuring that the air guide vanes 12 remain stable during adjustment, which helps to reduce vibration and noise. The modular design of the carrier plate 11 and the air guide vanes 12 can reduce installation difficulty and later maintenance difficulty. Users can replace or adjust individual air guide vanes 12 as needed without having to make large-scale adjustments to the entire air guide assembly 100.

[0174] By providing multiple air guide vanes 12 on each adjustment assembly 10 and spacing them on the carrier plate 11, users can more flexibly adjust the angle of each air guide vane 12 to precisely control the direction and intensity of the airflow to adapt to different room layouts and usage requirements. The plurality of air guide vanes 12 can also promote the mixing of indoor air, improve air quality and comfort, and make the airflow more evenly distributed to avoid local areas being too cold or too hot. By optimizing the airflow path, dead corners and stagnant areas in the air can be reduced, thereby improving user experience.

[0175] For ease of description, the carrier plate on the first adjustment assembly 10a is referred to as the first carrier plate 11a, and the carrier plate on the second adjustment assembly 10b is referred to as the second carrier plate 11b.

[0176] As shown in Figure 5 , the first adjustment assembly 10a can include a first carrier plate 11a. A plurality of first air guide vanes 12a are rotatably connected to the first carrier plate 11a. Illustratively, the first air guide vanes 12a extend along the z direction. The plurality of first air guide vanes 12a are spaced along the extension direction of the first carrier plate 11a.

[0177] It should be noted that the extension direction of the first carrier plate 11a is the direction in which the largest dimension or face of the first carrier plate 11a lies. In some embodiments, the extension direction of the first carrier plate 11a can be approximately parallel to the extension direction of the first adjustment assembly 10a.

[0178] Illustratively, the first carrier plate 11a can be a plate structure for supporting the first air guide vanes 12a and facilitating connection with the first drive assembly 20a and other structures. In the embodiments of the present application, the specific structure of the first carrier plate 11a is not further limited.

[0179] By setting the first bearing plate 11a, a stable installation foundation can be provided for the first air guide blade 12a, ensuring that the first air guide blade 12a remains stable during adjustment, helping to reduce vibration and noise. The modular design of the first bearing plate 11a and the first air guide blade 12a can reduce installation difficulty and later maintenance difficulty. Users can replace or adjust individual first air guide blades 12a as needed without the need for large-scale adjustment of the entire air guide assembly 100.

[0180] By setting the first air guide blade 12a to be multiple and spaced, users can more flexibly adjust the angle of each first air guide blade 12a to accurately control the direction and intensity of the airflow to adapt to different room layouts and usage requirements. Multiple first air guide blades 12a can also promote the mixing of indoor air, improve air quality and comfort, and make the airflow more evenly distributed to avoid local areas being too cold or too hot. By optimizing the airflow path, dead corners and stagnant areas in the air can be reduced, thereby improving user experience.

[0181] It should be noted that the number of first air guide blades 12a can be determined according to the size of the first bearing plate 11a in the extension direction and the setting density of the first air guide blades 12a, so the number of first air guide blades 12a is not limited in the embodiments of the present application.

[0182] Similarly, the second adjustment assembly 10b can include a second bearing plate 11b. A plurality of second air guide blades 12b are rotationally connected to the second bearing plate 11b. Illustratively, the second air guide blade 12b extends along the z direction. A plurality of second air guide blades 12b are spaced along the extension direction of the second bearing plate 11b.

[0183] It should be noted that the extension direction of the second bearing plate 11b is the direction of the largest dimension or face of the second bearing plate 11b, which is the x direction in the figure. In some embodiments, the extension direction of the second bearing plate 11b can be approximately parallel to the extension direction of the second adjustment assembly 10b.

[0184] Illustratively, the second bearing plate 11b can be a plate structure for supporting the second air guide blade 12b and facilitating connection with the second drive assembly 20b and other structures. In the embodiments of the present application, the specific structure of the second bearing plate 11b is not further limited.

[0185] By setting the second bearing plate 11b, a stable installation foundation can be provided for the second air guide blade 12b, ensuring that the second air guide blade 12b remains stable during adjustment, helping to reduce vibration and noise. The modular design of the second bearing plate 11b and the second air guide blade 12b can reduce installation difficulty and post-maintenance difficulty. Users can replace or adjust individual second air guide blades 12b as needed without the need for large-scale adjustment of the entire air guide assembly 100.

[0186] By setting the second air guide blade 12b to be multiple and spaced, users can more flexibly adjust the angle of each second air guide blade 12b to accurately control the direction and intensity of the airflow to adapt to different room layouts and usage requirements. Multiple second air guide blades 12b can also promote indoor air mixing, improve air quality and comfort, and make the airflow more evenly distributed to avoid local areas being too cold or too hot. By optimizing the airflow path, dead corners and stagnant areas in the air can be reduced, thereby improving user experience.

[0187] It should be noted that the number of second air guide blades 12b can be determined according to the size of the second bearing plate 11b in the extension direction and the setting density of the second air guide blade 12b, so the number of second air guide blades 12b is not limited in the embodiments of the present application.

[0188] It should be noted that the structure, principle and setting position of the two first drive assemblies 20a relative to the first adjustment assembly 10a and the second adjustment assembly 10b can be the same. Of course, in some other embodiments, the structure, principle and setting position of the two first drive assemblies 20a relative to the first adjustment assembly 10a and the second adjustment assembly 10b can also be different, as long as they can control the first adjustment assembly 10a and the second adjustment assembly 10b respectively.

[0189] The first drive assembly 20a will be described in detail below, taking the structure, principle and setting position of the two first drive assemblies 20a relative to the first adjustment assembly 10a and the second adjustment assembly 10b as an example.

[0190] In combination with Figure 5 and Figure 6As shown, the first driving assembly 20a can include a first transmission member 212. The first transmission member 212 is in transmission connection with all the guide vanes 12 of the adjustment assembly 10 corresponding to the first driving assembly 20a. In the extension direction of the carrier plate 11, the first transmission member 212 is in movable connection with the carrier plate 11. When the first transmission member 212 moves along the extension direction of the adjustment assembly 10, it drives the guide vanes 12 connected with the first transmission member 212 to move, for example, rotate, so that the guide vanes 12 connected with the first transmission member 212 swing towards both ends of the extension direction of the adjustment assembly 10, so that the guide vanes 12 can adjust the third air supply angle a3 and the fourth air supply angle a4 (see Figure 4

[0191] By providing the first transmission member 212 and connecting all the guide vanes 12 of the adjustment assembly 10 with the first transmission member 212, the first transmission member 212 can drive the guide vanes 12 to rotate relative to the carrier plate 11, ensuring the flexibility, stability and high efficiency of the movement of the guide vane assembly 100. The design of the first transmission member 212 can optimize the torque transmission and reduce energy loss. The design of the first transmission member 212 can further reduce friction and wear, and improve the reliability of the system.

[0192] In a possible implementation, the first driving assembly 20a can further include a first motor 211. The first motor 211 is in transmission connection with one of the plurality of guide vanes 12. The first motor 211 is used to drive the guide vane 12 in transmission connection with the first motor 211 to rotate relative to the carrier plate 11, so as to drive the first transmission member 212 to move along the extension direction of the adjustment assembly 10.

[0193] For example, the first motor 211 can be in transmission connection with the guide vane 12 located on the adjustment assembly 10 farthest from the second driving assembly 20b. By driving the guide vane 12 farthest from the second driving assembly 20b to rotate relative to the carrier plate 11, the first transmission member 212 is driven to move along the extension direction of the adjustment assembly 10, and in turn drives the plurality of guide vanes 12 connected with the first transmission member 212 to rotate relative to the carrier plate 11, which can reduce the assembly difficulty.

[0194] Of course, in other embodiments, the first motor 211 can also be in transmission connection with the guide vane 12 located near the middle of the adjustment assembly 10, so that the first motor 211 has a part of the guide vanes 12 on both sides of the extension direction of the adjustment assembly, which can optimize the distribution of driving force and reduce energy consumption.

[0195] ​By setting the first motor 211 and drivingly connecting the first motor 211 with one of the guide vanes 12, the rotation of the guide vane 12 can drive the first transmission member 212 connected with the guide vane 12 to move, and drive other guide vanes 12 connected with the first transmission member 212 to rotate together, which can reduce the assembly difficulty of the first motor 211 and provide precise motion control capability, thereby accurately adjusting the angle of the guide vane 12 as needed, making the air flow management more efficient and accurate.

[0196] In some other embodiments, as shown in Figure 6 The first motor 211 can also be drivingly connected with the first transmission member 212, and the first motor 211 is used to drive the first transmission member 212 to move along the extension direction of the adjustment assembly 10, thereby driving the plurality of guide vanes 12 connected with the first transmission member 212 to rotate relative to the carrier plate 11.

[0197] By setting the first motor 211, precise motion control capability can be provided, thereby accurately adjusting the angle of the guide vane 12 as needed, making the air flow management more efficient and accurate. By drivingly connecting the first motor 211 with the first transmission member 212, the first transmission member 212 can effectively transmit the rotational motion of the first motor 21 to the guide vane 12, ensuring the flexibility, stability and efficiency of the motion.

[0198] In one possible implementation, as shown in Figure 6 The first transmission member 212 can be a transmission link. The transmission link is arranged along the extension direction of the adjustment assembly 10 and connected with all the guide vanes 12 of the adjustment assembly 10.

[0199] By setting the first transmission member 212 as a transmission link, the structure of the first transmission member 212 can be simplified, the processing technology is simple, the cost is low, and it is suitable for large-scale production and application. In addition, the transmission link is a simple and reliable mechanical structure, which can effectively convert the rotational motion of the motor into linear or swinging motion of the guide vane, helping to improve the reliability and durability of the system. Due to the geometric characteristics of the transmission link, it can provide precise motion control, so that the guide vane can be accurately adjusted in a set range, thereby realizing more accurate air flow management.

[0200] Of course, in other embodiments, the first transmission member 212 can also be a crank link mechanism, a gear and rack mechanism, a cam mechanism, an eccentric mechanism, an electric push rod, a stepper motor or a servo motor drive, a pneumatic or hydraulic cylinder gear, a universal joint or a ball hinge, etc. In the embodiments of the present application, the specific structure of the first transmission member 212 is not limited further.

[0201] In a possible implementation, the bearing plate 11 comprises a top wall 111 and a bottom wall 112 arranged opposite in the thickness direction (z direction). A receiving cavity 113 is arranged between the top wall 111 and the bottom wall 112, and the first transmission member 212 is movably arranged in the receiving cavity 113. The air guide blade 12 is rotatably arranged on the side of the top wall 111 away from the bottom wall 112, and one end of the air guide blade 12 is connected to the first transmission member 212 through the top wall 111.

[0202] By arranging the receiving cavity 113 between the top wall 111 and the bottom wall 112, the space can be effectively utilized, and the overall structure is more compact. By arranging the first transmission member in the receiving cavity 113, the first transmission member can be effectively protected from the external environment, such as dust, moisture or physical damage, thereby improving the reliability and service life of the system. The receiving cavity 113 can play a certain sound insulation and shock absorption role, reducing the noise and vibration generated by the first transmission member during operation, and improving the user experience. By arranging the first transmission member in the receiving cavity 113, the appearance of the air guide assembly can be more simple and beautiful, and the aesthetic sense of the air guide assembly can be improved.

[0203] For example, the top wall 111 is provided with a mounting hole, and one end of the air guide blade 12 is assembled into the receiving cavity 113 through the mounting hole and is rotatably connected to the top wall 111. In this way, the assembly difficulty of the air guide blade 12 can be reduced. The assembly difficulty is reduced, and the cost is reduced.

[0204] In a possible implementation, the first motor 211 is located on the side of the bottom wall 112 away from the top wall 111.

[0205] By arranging the first motor 211 outside the bearing plate, the first motor 211 can be directly exposed to the air, which is beneficial to heat dissipation, and thus is beneficial to improve the efficiency and service life of the motor. By arranging the first motor 211 outside the bearing plate 11, the vibration of the first motor 211 can be directly transmitted to the bearing plate 11 and the air guide blade, thereby reducing the noise and vibration of the overall system. The first motor 211 can also be more easily accessed, simplifying the maintenance and replacement process. Compared with arranging the first motor 211 inside the bearing plate 11, the need to disassemble other components can be reduced, thereby saving time and reducing maintenance costs. In addition, external installation can simplify electrical connections and wiring, as the first motor 211 can be more directly connected to the power supply and control system.

[0206] For example, Figure 7As shown, the second driving assembly 20b can include a second motor 222 and a second transmission member 221. The second motor 222 is in driving connection with the second transmission member 221, and the second transmission member 221 is connected with the bearing plates 11 of the two adjusting assemblies 10 respectively. The second motor 222 is configured to drive the second transmission member 221 to move, so as to drive at least part of the structure of the bearing plate 11 to change the position relative to the mounting surface m. Among them, Figure 7 FIG. 7 is a bottom view of the second driving assembly 20b.

[0207] By setting the second motor 222, precise motion control capability can be provided, and the angle of the bearing plate 11 can be accurately adjusted as needed, so that the airflow management is more efficient and accurate. By setting the second transmission member 221, the second transmission member 221 can effectively transmit the rotary motion of the second motor 222 to the bearing plate 11, ensuring the flexibility, stability and efficiency of the motion. The design of the transmission member can optimize the torque transmission and reduce energy loss. The design of the second transmission member 221 can further reduce friction and wear, and improve the reliability of the system.

[0208] In a possible implementation, the second transmission member 221 can include a first connecting rod 2212, a second connecting rod 2211 and a push-pull rod 2213. One end of the first connecting rod 2212 is connected with the push-pull rod 2213, and the other end is connected with the bearing plate 11 (for example, the first bearing plate 11a) of one of the two adjusting assemblies 10. One end of the second connecting rod 2211 is connected with the push-pull rod 2213, and the other end is connected with the bearing plate 11 (for example, the second bearing plate 11b) of the other of the two adjusting assemblies 10. The second motor 222 is in driving connection with the push-pull rod 2213, and the second motor 222 is configured to drive the push-pull rod 2213 to change the position relative to the mounting surface m, so as to drive at least part of the structure of the bearing plate 11 to change the position relative to the mounting surface m.

[0209] By setting the second transmission member 221 to include the first connecting rod 2212, the second connecting rod 2211 and the push-pull rod 2213, synchronous adjustment of the two adjusting assemblies 10 can be realized, the motion consistency of the two adjusting assemblies 10 can be improved, and the adjustment accuracy can be improved. The mechanical structure using the first connecting rod 2212, the second connecting rod 2211 and the push-pull rod 2213 is relatively simple, and is easy to manufacture and assemble. The cost can be reduced. By setting the push-pull rod 2213, the rotary motion of the second motor 222 can be converted into linear motion, so as to realize precise motion control and improve the accuracy of adjustment. Since the first connecting rod 2212, the second connecting rod 2211 and the push-pull rod 2213 can be effectively arranged in a plane, a compact layout can be realized, and the internal space of the equipment can be saved.

[0210] In a possible implementation, the push-pull rod 2213 is arranged along a direction perpendicular to the mounting surface m, and the second motor 222 is configured to drive the push-pull rod 2213 to move along the direction perpendicular to the mounting surface m. Of course, in other embodiments, the push-pull rod 2213 can also be arranged along other directions, for example, along the thickness direction (z direction) of the bearing plate, and the like, and the arrangement direction of the push-pull rod 2213 is not limited in the embodiments of the present application.

[0211] By arranging the push-pull rod 2213 along the direction perpendicular to the mounting surface m, the second drive assembly can drive the two ends of the two adjustment assemblies 10 that are close to each other to move along the direction perpendicular to the mounting surface m to the direction close to the mounting surface m or the direction away from the mounting surface m. When the two ends of the two adjustment assemblies 10 that are close to each other move to the direction away from the mounting surface m, the two ends of the two adjustment assemblies 10 that are close to each other can be moved outward, and then the two adjustment assemblies 10 can be expanded outward, and then the diffused wind can be formed, and the area covered by the air supply can be increased. When the two ends of the two adjustment assemblies that are close to each other move to the direction close to the mounting surface m, the two ends of the two adjustment assemblies 10 that are close to each other can be moved inward, and then the two adjustment assemblies 10 can be gathered inward, and then the gathered wind can be formed, and the air volume of the air supply area can be increased, and the adjustment rate can be improved.

[0212] In a possible implementation, the push-pull rod 2213 can include a rack, and the second motor 222 is in transmission connection with the rack.

[0213] In this way, the rotary motion of the second motor 222 can be directly converted into the linear motion of the push-pull rod 2213, an efficient motion conversion mode is provided, and the accuracy of adjustment can be improved. The gear and the rack have a relatively simple structure, are easy to design and manufacture, have high reliability and durability, are easy to maintain, and can reduce maintenance costs. In addition, the gear and rack transmission can achieve effective motion transmission in a limited space, can save assembly space, and reduce assembly difficulty.

[0214] Of course, in other embodiments, the push-pull rod 2213 can also include a guide rail, a sliding block, or the like, and the specific structure of the push-pull rod 2213 is not limited in the embodiments of the present application, as long as the rotary motion can be converted into the linear motion.

[0215] In addition, in other embodiments, the second transmission member 221 can also be a screw transmission mechanism, a gear and rack transmission mechanism, an electric push rod, a linear guide rail and a sliding block, a pneumatic or hydraulic cylinder, a linear actuator driven by a stepping motor or a servo motor, a cam mechanism, and the like, and the specific structure of the second transmission member 221 is not limited in the embodiments of the present application.

[0216] In a possible implementation, as shown in FIG. 22, the second transmission member 221 can include a push-pull rod 2213 arranged along a direction perpendicular to the mounting surface m. Figure 8As shown, the air guide assembly 100 can further include a control device 30. The control device 30 is electrically connected to the two first driving assemblies 20a and the second driving assembly 20b, and is configured to control the two first driving assemblies 20a and the second driving assembly 20b respectively.

[0217] In this way, each driving assembly can be controlled independently, so that the system can flexibly adjust the action of each component according to specific needs. In turn, it can achieve precise control of air flow in different areas to meet the different needs of users, especially in large spaces or multi-functional areas. In addition, in multi-functional spaces such as conference rooms and open offices, different air supply angles can provide suitable air flow conditions for different activity areas to meet diverse usage needs. By adjusting the air supply angle of each adjustment assembly, the problem of uneven temperature in the room can be more effectively solved. For example, special adjustments can be made for areas directly exposed to sunlight or near doors and windows. By precisely controlling the air flow direction of each area, unnecessary energy consumption can be reduced, thereby improving the overall energy efficiency of the system and helping to reduce operating costs and energy consumption. By using a control device to centrally manage multiple driving assemblies, the integration and wiring design of the system can be simplified, and the overall maintainability of the system can be improved.

[0218] For example, the control device 30 can be electrically or signal connected to the first motor 211 in the two first driving assemblies 20a, so as to control the first motor 211 in the two first driving assemblies 20a through the control device 30, to adjust the range of the third air supply angle α3 and the range of the fourth air supply angle α4.

[0219] The control device 30 can also be electrically or signal connected to the second motor 222 in the second driving assembly 20b, and control the second motor 222 in the second driving assembly 20b to adjust the range of the first air supply angle α1 and the range of the second air supply angle α2.

[0220] In addition, when the first air guide blade 12a or the second air guide blade 12b can swing in the z direction or in a direction at an angle to the z direction, the control device can also control the first air guide blade 12a or the second air guide blade 12b to swing in the z direction or in a direction at an angle to the z direction. In the embodiments of the present application, the control mode of the control device to the driving assembly 20 is not limited further.

[0221] In the embodiments of the present application, the control device is used to individually control the two first adjusting assemblies 10a, that is, the control device can arbitrarily individually adjust the third air supply angle a3 and the fourth air supply angle a4, so that the air supply angle ranges of the first adjusting assembly 10a and the second adjusting assembly 10b can be different. The control device can also individually control the second driving assembly 20b, that is, synchronously adjust the first air supply angle a1 and the second air supply angle a2, so as to improve the adjustment efficiency. Wherein, the first air supply angle a1 and the second air supply angle a2 are the same, and the third air supply angle a3 and the fourth air supply angle a4 can be the same or different (see Figure 3 and Figure 4 In the embodiments of the present application, the quantitative relationship of the third air supply angle a3 and the fourth air supply angle a4 is not further limited.

[0222] In addition, it should be noted that the first adjusting assembly 10a and the second adjusting assembly 10b follow the principle of not interfering with each other during movement. That is, no matter how the first adjusting assembly 10a and the second adjusting assembly 10b adjust, there will be no interference problem.

[0223] In the description of the present application, each embodiment or implementation is described in a progressive manner, and each embodiment focuses on the difference from other embodiments. The same and similar parts between each embodiment can be referred to each other.

[0224] In the description of the present application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application.

[0225] In the description of the present application, it should be understood that the terms "include" and "have" and any variations thereof used herein are intended to cover non-exclusive inclusion, for example, a process, method, system, product or device including a series of steps or units need not be limited to those clearly listed steps or units, but can include other steps or units not clearly listed or inherent to these processes, methods, products or devices.

[0226] Unless specifically stated and defined, the terms "mounting", "connected", "connecting", "fixed", and the like, should be interpreted broadly, for example, can be fixed connection, can also be detachable connection, or become an integral; can be directly connected, or indirectly connected through an intermediate medium, can be connected inside two elements or the interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in this application can be understood according to the specific circumstances. In addition, the terms "first", "second" and the like are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features.

[0227] Finally, it should be pointed out that: the above embodiments are only used to illustrate the technical solutions of the present application, and not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that: it can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.

Claims

1. A wind guide assembly mounted to a mounting surface (m), characterized by The utility model relates to a kind of air conditioner, including: Two adjusting assemblies (10), each of the adjusting assembly (10) includes movablely arranged air guide vane (12); Two first drive assemblies (20a), each of the first drive assembly (20a) corresponds one of the adjusting assembly (10); Second drive assembly (20b) is drivenly connected with two adjusting assemblies (10), and at least part of structure of two adjusting assemblies (10) is changed simultaneously by the second drive assembly (20b) relative to the mounting surface (m) position.

2. The air deflector assembly of claim 1, wherein, The first drive assembly (20a) and the air guide vane (12) on the adjusting assembly (10) corresponding to the first drive assembly (20a) are drivenly connected, and the first drive assembly (20a) drives the position of the air guide vane (12) to change;Wherein, Two first drive assemblies (20a) respectively independently drive two adjusting assemblies (10) corresponding to two first drive assemblies (20a).

3. The air deflector assembly of claim 2, wherein, The first drive assembly (20a) drives the air guide vane (12) to rotate.

4. The air deflector assembly of claim 3, wherein, The air guide vane (12) includes initial position and working position;Wherein, The angle of rotation of the air guide vane (12) on two adjusting assemblies (10) from the initial position to the working position is different;Or The angle of rotation of the air guide vane (12) on two adjusting assemblies (10) from the initial position to the working position is the same.

5. The air deflector assembly of any one of claims 1-4, wherein, Two adjusting assemblies are respectively first adjusting assembly (10a) and second adjusting assembly (10b);Wherein, The first adjusting assembly (10a) includes first base point (13a), and the second adjusting assembly (10b) includes second base point (13b); The second drive assembly (20b) simultaneously drives the first adjusting assembly (10a) and the second adjusting assembly (10b), so that the first adjusting assembly (10a) rotates around the first base point (13a), and the second adjusting assembly (10b) rotates around the second base point (13b).

6. The air deflector assembly of any one of claims 1-4, wherein, Two adjusting assemblies (10) are spaced apart along the extension direction of the adjusting assembly (10), and the second drive assembly is located between two adjusting assemblies (10).

7. The air deflector assembly of any one of claims 1-4, wherein, The second drive assembly (20b) includes second motor (222) and second transmission member (221);Wherein, The second motor (222) is drivenly connected with the second transmission member (221), and the second transmission member (221) is drivenly connected with two adjusting assemblies (10) respectively; The second motor (222) drives the second transmission member (221) to move, so that at least part of structure of two adjusting assemblies (10) is changed relative to the mounting surface (m) position respectively.

8. The air deflector assembly of claim 7, wherein, The second transmission member (221) includes first connecting rod, second connecting rod and push-pull rod;Wherein, One end of the first connecting rod is connected with the push-pull rod, and the other end is connected with one of two adjusting assemblies (10); The second motor (222) drives the second transmission member (221) to move, so that at least part of structure of two adjusting assemblies (10) is changed relative to the mounting surface (m) position respectively. One end of the second connecting rod is connected with the push-pull rod, and the other end is connected with another one of the two adjusting assemblies (10); The second motor (222) is in driving connection with the push-pull rod, and the second motor (222) drives the push-pull rod to change the position relative to the mounting surface (m) to drive at least part of the structures of the two adjusting assemblies to change the position relative to the mounting surface (m) through the first connecting rod and the second connecting rod.

9. The air deflector assembly of claim 8, wherein, The second motor (222) drives the push-pull rod to move along a direction perpendicular to the mounting surface (m).

10. The air deflector assembly of claim 8 or 9, wherein, The push-pull rod comprises a rack, and the second motor (222) is in driving connection with the rack.

11. The air deflector assembly of claim 5, wherein, The first driving assembly (20a) corresponding to the first adjusting assembly (10a) is connected with the first adjusting assembly (10a) at the first base point (13a); The first driving assembly (20a) corresponding to the second adjusting assembly (10b) is connected with the second adjusting assembly (10b) at the second base point (13b).

12. The air deflector assembly of claim 11, wherein, The first driving assembly (20a) corresponding to the first adjusting assembly (10a) is located at one end of the first adjusting assembly (10a) away from the second driving assembly (20b).

13. The air deflector assembly of claim 11, wherein, The first driving assembly (20a) corresponding to the second adjusting assembly (10b) is located at one end of the second adjusting assembly (10b) away from the second driving assembly (20b).

14. The air deflector assembly of any one of claims 1-4, wherein, Each adjusting assembly (10) comprises a carrier plate (11) and a plurality of guide vanes (12), and the extension direction of the carrier plate (11) is the same as the extension direction of the adjusting assembly (10); A plurality of guide vanes (12) are arranged at intervals along the extension direction of the carrier plate (11); Each guide vane (12) is movably connected with the carrier plate (11).

15. The air deflector assembly of claim 14, wherein, The first driving assembly (20a) comprises a first transmission member (212); wherein, The first transmission member (212) is in driving connection with the guide vane (12) of the adjusting assembly (10) corresponding to the first driving assembly (20a); In the extension direction of the carrier plate (11), the first transmission member (212) is movably connected with the carrier plate (11), and when the first transmission member (212) moves along the extension direction of the adjusting assembly (10), the guide vane (12) connected with the first transmission member (212) is driven to rotate.

16. The air deflector assembly of claim 15, wherein, The first driving assembly (20a) further comprises a first motor (211); wherein, The first motor (211) is in driving connection with one of the plurality of guide vanes (12), and the first motor (211) drives the guide vane (12) in driving connection with the first motor (211) to rotate to drive the first transmission member (212) to move along the extension direction of the adjusting assembly (10).

17. The air deflector assembly of claim 15, wherein, The first driving assembly (20a) further comprises a first motor (211); wherein, The first motor (211) is in transmission connection with the first transmission member (212), and the first motor (211) drives the first transmission member (212) to move along the extension direction of the adjusting assembly (10).

18. A wind deflector assembly according to any one of claims 15 to 17, wherein, The first transmission member (212) is a transmission connecting rod. The transmission connecting rod is arranged along the extension direction of the adjusting assembly (10) and is connected with all the guide vanes (12) of the adjusting assembly (10).

19. The air deflector assembly of claim 16 or 17, wherein, The bearing plate (11) comprises a top wall and a bottom wall arranged oppositely along the thickness direction. A containing cavity is arranged between the top wall and the bottom wall, and the first transmission member (212) is movably arranged in the containing cavity. The guide vane (12) is rotatably arranged on the side of the top wall away from the bottom wall, and one end of the guide vane (12) penetrates through the top wall and is connected with the first transmission member (212).

20. The air deflector assembly of any one of claims 1-4, wherein, Further comprising a control device (30). The control device (30) is electrically connected with the two first driving assemblies (20a) and the second driving assembly (20b), and the control device (30) is used for controlling the two first driving assemblies (20a) and the second driving assembly (20b) respectively.

21. An air treatment device, characterised in that, The device body (300) and the air guide assembly (100) as claimed in any one of claims 1-20 are comprised.