Air treatment equipment

By using the adjustment and drive components of the air guide assembly, the problem of small air supply coverage area of ​​air conditioning equipment is solved, achieving a wider range of air supply coverage and precise air supply direction control, thereby improving user experience and energy efficiency.

CN224230168UActive Publication Date: 2026-05-12DREAM INNOVATION TECH (SUZHOU) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DREAM INNOVATION TECH (SUZHOU) CO LTD
Filing Date
2025-05-30
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing air conditioning equipment has a small air supply coverage area, resulting in a poor user experience, and the cold air blowing directly on the human body can easily cause discomfort.

Method used

An air guide assembly is adopted, including an adjustment assembly and a drive assembly. The drive assembly drives the air guide blades and the adjustment assembly to change their positions relative to the air outlet, thereby expanding the air supply coverage area. The air supply direction is precisely controlled by adjusting the angle and position of the air guide blades.

Benefits of technology

It achieves a wider air supply coverage, improves air handling efficiency, reduces energy consumption, avoids cold air blowing directly on the human body, and enhances user comfort and equipment energy efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides air treatment equipment which comprises a shell provided with a mounting surface and a first air outlet, and the first air outlet is located in the side, away from the ground, of the mounting surface; the adjusting assembly comprises an air guide blade which is movably arranged; and the driving assembly is in transmission connection with the adjusting assembly, the driving assembly drives the air guide blades to change in position, and the driving assembly further drives the adjusting assembly to change in position relative to the first air outlet. According to the air treatment equipment, the first air outlet far away from the ground is formed, the first air outlet is combined with the natural convection law, cold air is evenly diffused to the whole room from the high position during refrigeration, then the indoor temperature is rapidly reduced, and efficient air circulation is achieved; at the moment, the air supply distance is long, and cold air can be supplied to a far area of a room; and the air outlet is not easy to touch after being mounted, so that man-made interference is reduced.
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Description

Technical Field

[0001] This application relates to air handling equipment technology, and more particularly to an air handling equipment. Background Technology

[0002] Air handling equipment, such as air conditioning equipment, typically includes an air outlet and an air guide plate located on the outside of the air outlet. One end of the air guide plate is rotatably connected to the bottom of the air outlet. By changing the angle at which the air guide plate opens relative to the air outlet, the airflow direction of the air outlet can be changed.

[0003] In related technologies, some air conditioning devices blow air upwards.

[0004] However, this method of adjusting the airflow direction results in a smaller area covered by the air conditioning unit. Utility Model Content

[0005] This application provides an air handling device to solve the problem of small area covered by air conditioning equipment.

[0006] This application provides an air handling device, comprising:

[0007] The housing has a mounting surface and a first air outlet, the first air outlet being located on the side of the mounting surface away from the ground;

[0008] Adjustment components, including adjustable air guide vanes;

[0009] A drive assembly is connected to the adjustment assembly in a driving manner. The drive assembly drives the air guide vanes to change position. The drive assembly also drives the adjustment assembly to change position relative to the first air outlet.

[0010] The air handling equipment in this embodiment of the application sets a first air outlet far from the ground. The first air outlet, combined with the natural convection law, allows cold air to be evenly diffused from a high place to the entire room during cooling, thereby quickly reducing the indoor temperature and achieving efficient air circulation. At this time, the air supply distance is relatively long, which can deliver cold air to a far area of ​​the room. Moreover, the air outlet is not easily touched after installation, reducing human interference.

[0011] By setting up an adjustment component and a drive component, and driving the adjustment component to change its position relative to the mounting surface via the drive component, the air guide component can be positioned outside the air outlet of the air handling unit using the air guide component. The area obstructed by the sidewall of the air outlet is reduced when the air guide component is located outside the air outlet, thereby increasing the airflow area of ​​the air guide component. This allows the air handling unit using the air guide component to cover a larger airflow area and increase the air volume. Compared to related technologies that adjust the air delivery angle using a guide plate, the technical solution of this application can cover a larger airflow area, improve air handling efficiency, and thus save energy.

[0012] By incorporating movable guide vanes on the regulating component and controlling their positional changes—such as rotation and / or translation—the guide vanes can be oscillated. Adjusting the angle of these vanes adjusts the airflow direction of the air guiding assembly. When the regulating component moves a certain distance relative to the mounting surface outside the air outlet, interference from the outlet sidewall on the oscillating guide vanes is reduced, increasing the oscillation angle and thus expanding the coverage area of ​​the air guiding assembly. Controlling the airflow angle by adjusting the guide vanes allows for more precise control of airflow direction, facilitating optimized air distribution based on room layout and user needs. This adapts to different room shapes and sizes, providing a more uniform temperature distribution. Optimizing the airflow path reduces air conditioning operating time and energy consumption, improving overall energy efficiency. This helps reduce electricity consumption and operating costs.

[0013] By adjusting the air outlet angle using the air guide component, the air outlet can prevent it from blowing directly onto areas where people are active. In other words, it avoids blowing air onto people in these areas, preventing discomfort or health problems caused by cold air blowing directly on the body. Furthermore, adjusting the air guide component allows the air outlet angle to be constantly changed, preventing the air conditioner from blowing directly in one direction for extended periods, thus preventing direct airflow from the air conditioner.

[0014] Optionally, the air handling equipment described above may also include an air guide plate located at the first air outlet, the air guide plate being movably connected to the mounting surface, and the air guide plate being used to open the first air outlet.

[0015] An air outlet channel is formed between the air guide plate and the mounting surface, and the driving component drives the adjusting component to enter or move out of the air outlet channel.

[0016] In the above-mentioned air handling equipment, optionally, the ratio between the ventilation area of ​​the first air outlet and the area of ​​the mounting surface is in the range of 1 / 4 to 1 / 2.

[0017] And / or, the ratio between the height of the first air outlet and the height of the mounting surface is in the range of 1 / 4 to 1 / 2.

[0018] The above settings ensure sufficient airflow while achieving efficient air handling. Furthermore, they guarantee ample space for the air guide vanes to oscillate, while also ensuring a rational layout of other components, thus enhancing the flexibility of airflow direction control. Secondly, they prevent situations where localized airflow is too strong or too weak, resulting in a more uniform indoor temperature distribution and improved user comfort.

[0019] Optionally, the air handling equipment described above may also include an air guide drive component connected to the air guide plate, which is used to drive the angle between the air guide plate and the mounting surface to change.

[0020] With the above settings, during air handling, the air guide drive adjusts the angle of the air guide vane to optimize airflow diffusion and air mixing. Properly adjusting the air guide vane angle allows cold air to mix rapidly with warm indoor air, reducing temperature gradients, improving air handling efficiency, and lowering equipment energy consumption.

[0021] Optionally, in the above-mentioned air handling equipment, the housing also has a second air outlet, which is located on the side of the first air outlet closer to the ground.

[0022] The air handling equipment also includes a panel, which is rotatably connected to the mounting surface;

[0023] The direction of rotation between the panel and the mounting surface is different from the direction of angular change between the air guide plate and the mounting surface.

[0024] The above settings prevent mutual interference between the two, ensuring precise control and optimization of airflow. When needed, users can freely adjust the angle of the air guide plate to control the airflow direction, while the rotation of the panel can be used to adjust the overall layout of the equipment or perform necessary maintenance. This design improves the flexibility of equipment use and user convenience.

[0025] In the above-mentioned air handling equipment, optionally, the angle variation range between the air guide plate and the mounting surface is greater than the angle variation range between the panel and the mounting surface;

[0026] And / or, the cross-sectional area of ​​the second air outlet is greater than the cross-sectional area of ​​the first air outlet;

[0027] And / or, the first air outlet and the second air outlet are spaced apart and both are connected to the interior of the housing.

[0028] With the above settings, the air guide plate's air supply adjustment function can be fully utilized, while the panel's protection of the equipment's internal structure can be ensured. The two coordinate with each other without interfering with each other, jointly improving the overall performance of the air handling equipment, allowing users to enjoy a more convenient, comfortable, and reliable air handling experience.

[0029] In the aforementioned air handling equipment, optionally, the adjusting component includes a support plate and a plurality of guide vanes, wherein the extending direction of the support plate is the same as the extending direction of the adjusting component; the plurality of guide vanes are spaced apart along the extending direction of the support plate, and each guide vane is movably connected to the support plate;

[0030] The direction of the angle change between the air guide blade and the bearing plate is different from the direction of the angle change between the air guide plate and the mounting surface.

[0031] By installing a support plate, a stable mounting base can be provided for the air guide vanes, ensuring their stability during adjustment and helping to reduce vibration and noise. The modular design of the support plate and air guide vanes reduces installation and maintenance difficulty. Users can replace or adjust individual air guide vanes as needed without requiring large-scale adjustments to the entire air guide assembly.

[0032] By setting multiple air guide vanes at intervals, users can more flexibly adjust the angle of each vane to precisely control the direction and intensity of airflow, adapting to different room layouts and usage needs. Multiple air guide vanes can also promote indoor air mixing, improve air quality and comfort, and make the airflow more evenly distributed, avoiding localized areas that are too cold or too hot. By optimizing the airflow path, dead zones and stagnant areas in the air can be reduced, thereby enhancing the user experience.

[0033] In the aforementioned air handling equipment, optionally, the drive assembly includes a first drive member and a second drive member; wherein,

[0034] The first driving component is connected to the air guide blade in a transmission manner, and the first driving component drives the air guide blade to rotate relative to the support plate;

[0035] The second driving member is connected to the support plate in a transmission manner, and the second driving member drives the support plate to change position relative to the mounting surface.

[0036] By configuring the drive assembly to include a first drive component and a second drive component, the air guide vanes and the support plate can be controlled independently. Users can adjust the air delivery angle range of the air guide vanes or the support plate as needed, which improves the accuracy of airflow regulation. The combination of the first and second drive components provides a wider adjustment range and flexibility to achieve complex airflow patterns to adapt to different room layouts and usage scenarios. By adjusting the air guide vanes and the support plate separately, a more uniform and efficient airflow distribution can be achieved. Precise airflow control can reduce the operating time and energy consumption of air handling equipment (e.g., air conditioning units) using this air guide assembly, thereby improving overall energy efficiency. Since the first and second drive components are set independently, individual drive components can be replaced or adjusted as needed during later maintenance without requiring large-scale adjustments to the entire system, thus reducing maintenance costs.

[0037] In the aforementioned air handling equipment, optionally, the first driving member includes a first transmission member; wherein,

[0038] The first transmission component is connected to all the guide vanes on the adjustment assembly;

[0039] In the extending direction of the support plate, the first transmission member is movably connected to the support plate. When the first transmission member moves along the extending direction of the adjustment assembly, it drives the air guide blade connected to the first transmission member to rotate relative to the support plate.

[0040] or,

[0041] The second driving component includes a second motor and a second transmission component; wherein,

[0042] The second motor is connected to the second transmission component, and the second transmission component is connected to the support plate;

[0043] The second motor drives the second transmission component to move, thereby causing the position of the support plate relative to the mounting surface to change.

[0044] By incorporating a first transmission component and connecting all the guide vanes on the adjusting assembly to it, the guide vanes can be rotated relative to the support plate, ensuring the flexibility, smoothness, and efficiency of the air guiding assembly's movement. The design of the first transmission component optimizes torque transmission and reduces energy loss. Furthermore, it reduces friction and wear, improving system reliability.

[0045] By incorporating a second motor, precise motion control is achieved, allowing for accurate adjustment of the support plate angle as needed, resulting in more efficient and precise airflow management. The second transmission component effectively transmits the rotational motion of the second motor to the support plate, ensuring flexible, smooth, and efficient movement. The transmission component's design optimizes torque transmission and reduces energy loss. Furthermore, the design of the second transmission component further reduces friction and wear, improving system reliability.

[0046] Optionally, the air handling equipment described above may include:

[0047] Multiple adjustment components, each of which includes the movably configured air guide vane;

[0048] Multiple first drive components, each first drive component corresponding to one of the adjustment components;

[0049] The second drive assembly is drively connected to all of the plurality of adjustment assemblies, and the second drive assembly simultaneously drives at least a portion of the structure of the plurality of adjustment assemblies to change position relative to the mounting surface.

[0050] By using a second drive component to jointly drive multiple adjustment components to change position relative to the mounting surface, where this position change can be translation and / or rotation relative to the mounting surface, and multiple adjustment components can be controlled independently by multiple second drive components, the structure of the air guide component can be simplified, and assembly difficulty and cost can be reduced by controlling multiple adjustment components with a single second drive component. Furthermore, by using multiple adjustment components, the air guide component can deliver air to multiple areas, allowing multiple adjustment components to blow air to different areas, thereby expanding the coverage angle of the air conditioning unit.

[0051] In the aforementioned air handling equipment, optionally, the two regulating components are a first regulating component and a second regulating component, respectively;

[0052] The first adjustment component includes a first base point, and the second adjustment component includes a second base point;

[0053] The second driving component simultaneously drives the first adjusting component and the second adjusting component, so that the first adjusting component rotates around the first base point and the second adjusting component rotates around the second base point;

[0054] or,

[0055] The second transmission component includes a first connecting rod, a second connecting rod, and a push-pull rod;

[0056] One end of the first connecting rod is connected to the push-pull rod, and the other end is connected to one of the two adjustment components;

[0057] One end of the second link is connected to the push-pull rod, and the other end is connected to one of the two adjustment components;

[0058] The second motor is connected to the push-pull rod, and the second motor drives the push-pull rod to change position relative to the mounting surface, so as to drive at least part of the structure of the two adjustment components to change position relative to the mounting surface through the first link and the second link.

[0059] By setting a first base point, the first drive component can provide a stable support and reference point for the first adjustment component at this base point. This allows the movement and adjustment of the first adjustment component to be performed relative to this first base point, helping to ensure more precise and controllable movement of the first adjustment component. It also prevents swaying during the movement of the first adjustment component, improving its stability, and simplifies the structure of the air guide component, eliminating the need for a separate structure corresponding to the first base point, thereby reducing costs.

[0060] By setting a second base point, the first drive component can provide a stable support and reference point for the second adjustment component at this base point. This allows the movement and adjustment of the second adjustment component to be performed relative to this second base point, helping to ensure more precise and controllable movement of the second adjustment component. It also prevents swaying during the movement of the second adjustment component, improving its stability, and simplifies the structure of the air guide component, eliminating the need for a separate structure corresponding to the second base point, thereby reducing costs.

[0061] Optionally, the air handling equipment described above may include:

[0062] The plurality of adjustment components correspond to the plurality of air outlet areas, and the plurality of drive components drive the adjustment component corresponding to the drive component individually;

[0063] The drive assembly is used to drive at least a portion of the structure of the adjustment assembly corresponding to the drive assembly to change position relative to the mounting surface; each adjustment assembly includes a movable guide vane;

[0064] The direction of the angle change between the air guide blade and the mounting surface is different from the direction of the angle change between the air guide plate and the mounting surface.

[0065] By adjusting the airflow angles of multiple control components, the air conditioning unit can prevent direct airflow from the same angle, reducing discomfort and improving user comfort. Additionally, in areas with people, the air outlets can be positioned to avoid blowing air directly onto those areas, thus preventing discomfort or health problems caused by cold air blowing directly on the body. Furthermore, adjusting the airflow guide components allows the air outlet angle to be continuously changed, preventing the air conditioner from blowing directly in one direction for extended periods, thereby preventing direct airflow from the air conditioner.

[0066] Optionally, the aforementioned air handling equipment may also include a data collection device and a control device; wherein,

[0067] The data acquisition device is communicatively connected to the control device, and the control device is electrically connected to each of the drive components.

[0068] The data acquisition device is used to collect regional information within different air outlet areas and transmit the regional information to the control device;

[0069] The control device is used to control one or more of the plurality of drive components according to the area information, driving at least a portion of the structure of one or more adjustment components corresponding to the one or more drive components to change position relative to the mounting surface.

[0070] By setting up a data acquisition device to collect area information, the control device can precisely control the airflow angle of each adjustment component based on this information, adapting to different room layouts and usage needs. This area information can be input by the user via a remote control or other input device, or it can be automatically collected by the device. The control device can precisely control the drive components based on this area information, allowing users to adjust the angle of the guide vanes and the direction of the adjustment components as needed, thus achieving more precise airflow management. The control device can also automate operation, automatically adjusting airflow settings based on preset programs or sensor inputs such as temperature, humidity, and human activity, improving the system's intelligence level. Attached Figure Description

[0071] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0072] Figure 1 This is a schematic diagram of the structure of an air handling device provided in an embodiment of this application;

[0073] Figure 2 This is a schematic diagram of the structure of an air guide assembly provided in an embodiment of this application;

[0074] Figure 3 A state reference for the adjustment component of an air guide assembly provided in this application embodiment. Figure 1 ;

[0075] Figure 4 A state reference for the adjustment component of an air guide assembly provided in this application embodiment. Figure 2 ;

[0076] Figure 5 This is a front view structural diagram of an air handling device provided in an embodiment of this application;

[0077] Figure 6 This is a side view of an air handling device provided in an embodiment of this application;

[0078] Figure 7 This is a schematic diagram of the structure of an air guide assembly provided in an embodiment of this application;

[0079] Figure 8 An exploded structural diagram of an adjusting component of an air guide assembly provided in an embodiment of this application;

[0080] Figure 9 This is a schematic diagram of the structure of the second drive component of an air guide assembly provided in an embodiment of this application;

[0081] Figure 10 This is a schematic diagram of another air guide component provided in an embodiment of this application;

[0082] Figure 11 A reference diagram showing the usage state of another air guide component provided in the embodiments of this application;

[0083] Figure 12 This is a schematic diagram of another air guide assembly provided in the embodiments of this application;

[0084] Figure 13 This is a reference diagram showing the usage state of another air guide component provided in an embodiment of this application.

[0085] Explanation of reference numerals in the attached figures:

[0086] 300. Air handling equipment;

[0087] 200, Housing; 210, First air outlet; 220, Air guide plate; 230, Air outlet channel; 240, Second air outlet; 250, Panel;

[0088] 100. Air guide assembly;

[0089] 10. Adjustment assembly; 10a. First adjustment assembly; 10b. Second adjustment assembly; 11. Support plate; 111. Top wall; 112. Bottom wall; 113. Receiving cavity; 12. Guide vane; 13a. First base point; 13b. Second base point;

[0090] 20. Driving component; 20a. First driving component; 20b. Second driving component;

[0091] 21. First driving component; 211. First motor; 212. First transmission component;

[0092] 22. Second driving component; 221. Second transmission component; 2211. Second connecting rod; 2212. First connecting rod; 2213. Push-pull rod; 222. Second motor;

[0093] 30. Control device; 40. Support component; m. Mounting surface.

[0094] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation

[0095] Traditional air conditioning systems typically adjust the airflow angle using blades. These blades are usually fixed to a specific area of ​​the air outlet, and a lever pulls on the blades to rotate them one-dimensionally, thus adjusting the airflow angle. For example, left-right oscillation achieves left-right airflow, and up-down oscillation achieves up-down airflow. However, this adjustment method has a limited range, resulting in a small coverage area and an inability to provide multi-directional zoned airflow, leading to a poor user experience. Furthermore, some air conditioning systems, to simplify the delivery of cold air, place the air outlet at the top, directing the cold air directly towards the ceiling.

[0096] To address the aforementioned technical issues, this application provides an air handling device. This air guide component can precisely control the airflow direction, cover a larger blowing area, and improve the user experience. Furthermore, the location of this air guide component can evenly diffuse cool air from a height to the entire room, thereby rapidly reducing the indoor temperature and achieving efficient air circulation.

[0097] To make the objectives, implementation methods and advantages of this application clearer, the exemplary implementation methods of this application will be clearly and completely described below with reference to the accompanying drawings of the exemplary embodiments of this application. Obviously, the described exemplary embodiments are only some embodiments of this application, and not all embodiments.

[0098] It should be noted that the brief descriptions of terms in this application are only for the convenience of understanding the embodiments described below, and are not intended to limit the embodiments of this application. Unless otherwise stated, these terms should be understood in their ordinary and common meaning.

[0099] Furthermore, the terms “comprising” and “having”, and any variations thereof, are intended to cover but not exclusively include, for example, a product or device that includes a series of components is not necessarily limited to those that are explicitly listed, but may include other components that are not explicitly listed or that are inherent to such product or device.

[0100] In the description of this application, it should be understood that the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0101] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, unless otherwise stated, "a plurality of" means two or more.

[0102] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0103] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0104] This application provides an air handling device 300, which includes, but is not limited to, air conditioning equipment, humidifiers, dehumidifiers, ventilation equipment, heat recovery ventilation systems, air purifiers, and fresh air equipment. 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 conditioners. In this application embodiment, the type of air conditioning equipment is not further limited.

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

[0106] Reference Figure 1 Specifically, the air handling unit 300 is an indoor unit of an air conditioner. The air handling unit 300 includes a housing 200, which has a mounting surface m and a first air outlet 210, which is located on the side of the mounting surface m away from the ground.

[0107] Understandably, hot air, being less dense, rises naturally, while cold air, being denser, sinks. Positioning the first air outlet 210 on the side of the mounting surface m furthest from the ground allows cold air to diffuse evenly throughout the room from a higher position. As the cold air exits from the first outlet 210, it sinks naturally under gravity, mixing with the existing warmer air in the room. This accelerates the vertical circulation of air, allowing the room temperature to drop more quickly and evenly, achieving a more efficient cooling effect.

[0108] It should be noted that the side furthest from the ground refers to the vertical direction z.

[0109] The air guide component 100 is located at the first air outlet 210. The air guide component 100 is used to adjust the air delivery angle of the air outlet, thereby enabling air to be delivered to different angles, improving the coverage of the air conditioning, and thus enhancing the user experience.

[0110] The air guide component 100 can adjust the air outlet angle, thereby expanding the coverage angle of the air conditioning equipment. In other words, it can deliver air to more areas to regulate the air temperature. It can also deliver air precisely at more angles, improving the accuracy of air temperature regulation and enhancing the user experience.

[0111] In this embodiment, for ease of description, the extension direction of the adjustment component 10 is taken as the x-direction, and the vertical direction of the mounting surface m is taken as the y-direction.

[0112] This application provides an air guide assembly 100, such as... Figure 2 and Figure 3As shown, the air guide assembly 100 is mounted on the mounting surface m. The air guide assembly 100 may include an adjustment assembly 10 and a drive assembly 20. The adjustment assembly 10 may include movably disposed air guide blades 12. The drive assembly 20 is connected to the adjustment assembly 10 in a driving manner. The drive assembly 20 drives the air guide blades 12 to change position, so that the air guide blades 12 can realize the function of swinging air. The drive assembly 20 also drives the adjustment assembly 10 to change position relative to the mounting surface m.

[0113] For example, the drive assembly 20 drives the adjustment assembly 10 to translate away from the mounting surface m along a direction, so that the adjustment assembly 10 can translate relative to the mounting surface m, thereby extending the adjustment assembly 10 out of the mounting surface m, thereby reducing the area of ​​the adjustment assembly 10 blocked by the air outlet sidewall, and further expanding the air blowing area of ​​the air guide assembly 100, so that the air handling equipment 300 using the air guide assembly 100 can cover a larger air blowing area.

[0114] When the adjusting component 10 moves outward relative to the first air outlet 210, the air outlet area expands. The adjusting component 10 can be moved in such a way that it translates away from the mounting surface m relative to the first air outlet 210.

[0115] It should be noted that "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 it is installed on the air handling unit 300, and this mounting surface m extends along the extension direction of the regulating assembly 10. This mounting surface m can serve as a reference for the initial position of the air guide assembly 100 or the regulating assembly 10.

[0116] In some embodiments, the mounting surface m can be the mounting surface m of the air handling unit 300 on which the air guide assembly 100 is applied. For example, the mounting surface m can be the surface on which the air handling unit 300 is mounted on the wall. In this case, the mounting surface m can be parallel to or nearly parallel to the wall.

[0117] It should be noted that "a change in position relative to the mounting surface m" refers to a movement such as translation or rotation relative to the mounting surface m. As long as the adjusting component 10 as a whole moves relative to the mounting surface m, it is considered a change in the position of the adjusting component 10 relative to the mounting surface m. For example, the adjusting component 10 may translate relative to the mounting surface m in the directions of up, down, left, right, forward, or backward. Alternatively, the adjusting component 10 may rotate around a point or axis to cause it to flip or rotate. Or, the adjusting component 10 may translate relative to the mounting surface m in the directions of up, down, left, right, forward, or backward, and may also rotate around a point or axis to cause it to flip or rotate.

[0118] In one possible implementation, the drive component 20 is at least used to drive the adjustment component 10 to move relative to the mounting surface m in a direction away from the mounting surface m. For example... Figure 3 In the figure, the adjustment component 10 is translated along the dashed arrow in the direction y shown in the figure.

[0119] Here, "direction away from mounting surface m" refers to the direction in which the distance to mounting surface m increases. In some embodiments, the direction away from mounting surface m can be a direction perpendicular to mounting surface m, that is, moving in a direction away from mounting surface m. In other words, the drive adjustment component 10 is translated vertically outward relative to the air outlet (e.g., Figure 4 (As shown). In some other embodiments, the direction away from the mounting surface m can be a direction that forms a certain angle with the mounting surface m, that is, the drive adjustment component 10 is tilted outward relative to the air outlet.

[0120] like Figure 4 As shown, the adjustment component 10 moves along... Figure 4 The dashed arrow in the middle of the diagram has been shifted in both the x and y directions, which is a tilted shift, thus changing the air supply area.

[0121] Of course, it is understandable that the drive component 20 can also drive the adjustment component 10 to move towards the mounting surface m. The directions of moving away from and moving towards are opposite and correspond to different working modes. For example, during operation, the adjustment component 10 can be driven to move away from the mounting surface m, and when the operation is completed, the adjustment component 10 can be driven to move towards the mounting surface m to return to the initial position.

[0122] This configuration allows the adjusting component 10 to translate away from the mounting surface m. As it moves in this direction, the adjusting component 10 extends beyond the air outlet of the air handling unit 300 using the air guide component 100, further reducing the area obstructed by the air outlet sidewall and thus further expanding the airflow area of ​​the air guide component 100. This allows the air handling unit 300 using the air guide component 100 to cover a larger airflow area. In other words, when the adjusting component 10 extends beyond the air outlet of the air handling unit 300 using the air guide component 100, it provides a wider field of view, allowing air to be directed in more directions.

[0123] By adjusting the airflow angle of the first air outlet 210 using the air guide assembly 100, the air outlet 210 can be prevented from blowing directly onto areas where people are active. In other words, it avoids blowing air onto areas where people are present, preventing discomfort or health problems caused by cold air blowing directly on the body. In addition, by adjusting the air guide assembly 100, the airflow angle of the air outlet can be continuously changed, which can also prevent the air conditioner from blowing directly in one direction for a long time, thus preventing direct airflow from the air conditioner.

[0124] Reference Figure 1 , Figure 5 as well as Figure 6 As an optional implementation, the air handling unit 300 further includes a guide vane 220 located at the first air outlet 210. The guide vane 220 is movably connected to the mounting surface m and is used to open the first air outlet 210. This movable connection allows the air outlet to be opened, enabling smooth airflow and improving air handling efficiency. When airflow is required, the guide vane 220 opens, and the airflow is discharged through the air outlet channel 230, reducing resistance during airflow discharge and thus improving the airflow efficiency of the air handling unit 300.

[0125] An air outlet channel 230 is formed between the air guide plate 220 and the mounting surface m, and the drive component 20 drives the adjustment component 10 to enter or move out of the air outlet channel 230.

[0126] Understandably, the entry or exit of the adjustment component 10 can change the shape and size of the air outlet duct 230, thereby adjusting the distribution and direction of the airflow, making the airflow more evenly distributed throughout the air outlet area, and optimizing the indoor air temperature distribution.

[0127] By adjusting the opening angle of the air guide plate 220 and the position of the adjusting component 10, flexible control of the air supply direction can be achieved. For example, when it is necessary to guide the airflow to a specific area of ​​the room, the angle of the air guide plate 220 can be adjusted and the adjusting component 10 can be positioned in the corresponding position of the air outlet duct 230, thereby achieving precise control of the air supply direction.

[0128] As an optional implementation, the ratio between the ventilation area of ​​the first air outlet 210 and the area of ​​the mounting surface m is in the range of 1 / 4 to 1 / 2, that is, the ventilation area of ​​the first air outlet 210 is smaller than the area of ​​the mounting surface m.

[0129] If the ratio between the ventilation area of ​​the first air outlet 210 and the area of ​​the mounting surface m is less than 1 / 4, the ventilation area is too small, resulting in a limited amount of air discharged per unit time, slow air handling speed, increased equipment operating time, and increased energy consumption. Simultaneously, the insufficient space for the air guide assembly 100 and the small swing range of the air guide blades 12 make it difficult to meet diverse air supply needs and accurately guide airflow to all corners of the room. Furthermore, the small and concentrated airflow discharge cannot be evenly diffused throughout the entire indoor space, leading to excessively low or high temperatures in certain areas, affecting user comfort.

[0130] If the ratio between the ventilation area of ​​the first air outlet 210 and the area of ​​the mounting surface m is greater than 1 / 2, the ventilation area is too large, the air velocity decreases, and the airflow lingers near the outlet, failing to mix quickly with the indoor air. This results in reduced air handling efficiency and poorer cooling or heating effects. Furthermore, an excessively large area can cause the outlet to be too far from internal components, obstructing airflow during exit, increasing energy consumption, and potentially generating noise, affecting the stable operation of the equipment and the user experience. Secondly, an excessively large outlet area weakens the overall structural strength of the equipment, making it more susceptible to damage from vibrations during transportation or use, thus affecting normal operation.

[0131] By setting the aforementioned proportional range, efficient air handling can be achieved while ensuring sufficient airflow. Furthermore, it ensures that the guide vanes 12 have enough space to oscillate, while also guaranteeing a reasonable layout of other components, thereby enhancing the flexibility of airflow direction control. Secondly, it avoids situations where localized airflow is too strong or too weak, resulting in a more uniform indoor temperature distribution and improved user comfort.

[0132] As an optional implementation, the ratio between the height of the first air outlet 210 and the height of the mounting surface m is in the range of 1 / 4 to 1 / 2.

[0133] If the ratio between the height of the first air outlet 210 and the height of the mounting surface m is less than 1 / 4, the outlet height is too low, resulting in a limited amount of air discharged per unit time, slow air handling speed, increased equipment operating time, and increased energy consumption. Furthermore, due to the low height, the air guide assembly 100 has insufficient space to maneuver, and the air guide blades 12 have a small swing range, making it difficult to meet diverse air supply needs and accurately guide airflow to all corners of the room. Secondly, the airflow is small and concentrated, failing to diffuse evenly throughout the entire indoor space, leading to excessively low or high temperatures in certain areas, affecting user comfort.

[0134] If the ratio between the height of the first air outlet 210 and the height of the mounting surface m is greater than 1 / 2, the outlet height is too high, the air velocity decreases, and the airflow lingers near the outlet, failing to mix quickly with the indoor air. This results in reduced air handling efficiency and poorer cooling or heating performance. Secondly, an excessively high outlet can cause the distance between the outlet and internal components to be too great, obstructing airflow during exit, increasing energy consumption, and potentially generating noise, affecting the stable operation of the equipment and the user experience. Furthermore, an excessively high outlet weakens the overall structural strength of the equipment, making it more susceptible to damage from vibrations during transportation or use, thus affecting normal operation.

[0135] As an optional implementation, the air handling unit 300 also includes an air guide drive component connected to the air guide plate 220, which is used to drive the angle between the air guide plate 220 and the mounting surface m to change.

[0136] It is understood that the air guide drive component refers to the motor that can drive the air guide plate 220 to rotate. When the air guide drive component is working, the angle between the air guide plate 220 and the mounting surface m changes, realizing flexible adjustment of the air supply direction to meet different room layouts and user needs, and achieving precise air supply effect.

[0137] During air handling, the air guide drive unit adjusts the angle of the air guide plate by 220° to optimize airflow diffusion and air mixing. Properly adjusting the angle of the air guide plate 220° allows cold air to mix rapidly with warm indoor air, reducing temperature gradients, improving air handling efficiency, and lowering equipment energy consumption.

[0138] Reference Figure 5 As an optional implementation, the housing 200 also has a second air outlet 240, which is located on the side of the first air outlet 210 closer to the ground, allowing the airflow to cover a wider area and achieving a more uniform air distribution in the vertical direction.

[0139] The air handling unit 300 also includes a panel 250, which is rotatably connected to the mounting surface m. It is understood that the panel 250 may be equipped with a display screen for user identification, which can be used to display information, including but not limited to the current indoor temperature and the operating status of the air handling unit 300.

[0140] Reference Figure 6 The direction of rotation between panel 250 and mounting surface m is different from the direction of angle change between air guide plate 220 and mounting surface m.

[0141] It is understandable that the direction of rotation between panel 250 and mounting surface m refers to direction a, and the angle change between air guide plate 220 and mounting surface m refers to the angle change corresponding to the rotation of air guide plate 220 relative to mounting surface m, and the direction of the angle change refers to direction b. The difference between a and b refers to their different orientations.

[0142] The above settings prevent mutual interference between the two components, ensuring precise control and optimization of airflow. When needed, the user can freely adjust the angle of the air guide plate 220 to control the airflow direction, while the rotation of the panel 250 can be used to adjust the overall layout of the equipment or perform necessary maintenance. This design improves the flexibility of equipment use and user convenience.

[0143] Reference Figure 6 As an optional implementation, the angle variation range between the air guide plate 220 and the mounting surface m is greater than the angle variation range between the panel 250 and the mounting surface m, that is, b is greater than a.

[0144] When the angle variation range between the air guide plate 220 and the mounting surface m is greater than that between the panel 250 and the mounting surface m, the air guide plate 220 can be adjusted within a wider angle range, thereby achieving flexible and diverse airflow guidance to meet the air supply needs in different scenarios and optimize airflow distribution and air supply flexibility. At the same time, the small angle variation range of the panel 250 ensures the stability of the equipment during operation, reduces operational interruptions caused by component interference or other malfunctions, and ensures long-term stable operation of the equipment.

[0145] With the above settings, the air supply adjustment function of the air guide plate 220 can be fully utilized, and the protection function of the panel 250 for the internal structure of the equipment can be guaranteed. The two coordinate with each other and do not interfere with each other, jointly improving the overall performance of the air handling equipment 300, so that users can enjoy a more convenient, comfortable and reliable air handling experience during use.

[0146] As an optional implementation, the cross-sectional area of ​​the second air outlet 240 is larger than the cross-sectional area of ​​the first air outlet 210.

[0147] Specifically, when the cross-sectional area of ​​the second air outlet 240 is larger than that of the first air outlet 210, the airflow has more space to pass through the second air outlet 240, thereby increasing the air volume and improving air handling efficiency. At the same time, the larger cross-sectional area helps to reduce the airflow velocity, allowing the airflow to diffuse more evenly throughout the room, optimizing air distribution and improving user comfort. Furthermore, the larger outlet area can reduce the impact of airflow on internal components of the equipment, reducing vibration and noise during operation and improving the operational stability of the equipment.

[0148] As an optional implementation, the first air outlet 210 and the second air outlet 240 are spaced apart and both are connected to the inside of the housing 200.

[0149] As an optional implementation, see [link to implementation details]. Figure 2 As shown, the adjustment assembly 10 may include a support plate 11 and a plurality of guide vanes 12, wherein the extension direction (x-direction) of the support plate 11 is the same as the extension direction of the adjustment assembly 10. The plurality of guide vanes 12 are spaced apart along the extension direction of the support plate 11. Each guide vane 12 is movably connected to the support plate 11, for example, rotatably connected.

[0150] By setting up the support plate 11, a stable mounting base can be provided for the air guide blade 12, ensuring that the air guide blade 12 remains stable during adjustment, which helps to reduce vibration and noise. The modular design of the support plate 11 and the air guide blade 12 reduces the difficulty of installation and subsequent maintenance. Users can replace or adjust individual air guide blades 12 as needed without making large-scale adjustments to the entire air guide assembly 100.

[0151] By setting multiple air guide vanes 12 on each adjustment component 10 and spacing them on the support plate 11, users can more flexibly adjust the angle of each air guide vane 12 to precisely control the airflow direction and intensity to adapt to different room layouts and usage needs. Multiple air guide vanes 12 can also promote indoor air mixing, improve air quality and comfort, make the airflow more evenly distributed, avoid local areas being too cold or too hot, and reduce dead zones and stagnant areas in the air by optimizing the airflow path, thereby improving the user experience.

[0152] It should be noted that the extending direction of the support plate 11 is the direction of the side or surface with the largest dimension of the support plate 11. In some embodiments, the extending direction of the support plate 11 may be approximately parallel to the extending direction of the adjusting assembly 10.

[0153] For example, the support plate 11 can be a plate-like structure used to support the air guide vanes 12 and facilitate connection with structures such as the drive assembly 20. In this embodiment, the specific structure of the support plate 11 is not further limited.

[0154] It should be noted that the number of air guide blades 12 can be determined based on the dimensions of the support plate 11 in the extension direction and the arrangement density of the air guide blades 12. Therefore, the number of air guide blades 12 is not limited in this embodiment.

[0155] Specifically, the direction of the angle change between the air guide vane 12 and the support plate 11 is different from the direction of the angle change between the air guide plate 220 and the mounting surface m.

[0156] Reference Figure 3 and Figure 6 It should be noted that the angle change between the guide vane 12 and the support plate 11 refers to the angle change corresponding to the movement of the guide vane 12 relative to the support plate 11, and the direction of the angle change is direction c. As mentioned above, the direction of the angle change between the guide plate 220 and the mounting surface m is direction b. The difference between c and b can achieve multi-angle wind direction adjustment.

[0157] The above settings enable precise air delivery from multiple angles to meet the needs of different room layouts and users, such as directing airflow away from air conditioning. Simultaneously, adjusting the air guide vane to a 220° angle optimizes airflow diffusion and air mixing, improving air handling efficiency and reducing equipment operating time to lower energy consumption.

[0158] As an optional implementation method, such as Figure 7 As shown, the drive assembly 20 may include a first drive member 21 and a second drive member 22. The first drive member 21 is connected to the air guide vane 12 and is used to drive the position of the air guide vane 12 to change, for example, to drive the air guide vane 12 to rotate and / or translate. In this embodiment, the air guide vane 12 is rotated so that it can achieve a swing effect, thereby changing the air delivery angle of the air guide assembly 100.

[0159] For example, the second driving member 22 is connected to the support plate 11 in a driving manner, and the second driving member 22 is used to drive the support plate 11 to change position relative to the mounting surface m. For example, it drives the support plate 11 to move away from the mounting surface m in a direction. Since the air guide vanes 12 are all mounted on the support plate 11, when the support plate 11 moves, the entire adjustment assembly 10 can move together relative to the mounting surface m.

[0160] By configuring the drive assembly 20 as a first drive element 21 and a second drive element 22, the air guide vane 12 and the support plate 11 can be controlled independently, which improves the accuracy of airflow regulation. Users can adjust the air delivery angle range of the air guide vane 12 or the support plate 11 individually as needed. The combination of the first drive element 21 and the second drive element 22 provides a greater adjustment range and flexibility to achieve complex airflow patterns to adapt to different room layouts and usage scenarios.

[0161] By adjusting the guide vanes 12 and the support plate 11 separately, a more uniform and efficient airflow distribution can be achieved. Precise airflow control can reduce the operating time and energy consumption of the air handling equipment 300 (e.g., air conditioning equipment) using this guide assembly 100, thereby improving overall energy efficiency. Since the first drive component 21 and the second drive component 22 are independently configured, individual drive components can be replaced or adjusted as needed during later maintenance without requiring large-scale adjustments to the entire system, thus reducing maintenance costs.

[0162] As an optional implementation method, such as Figure 8 As shown, the first driving member 21 may include a first transmission member 212. The first transmission member 212 is tractively connected to all the guide vanes 12 on the adjusting assembly 10. The first driving member 21 is used to drive the guide vanes 12 to change position. For example, the first driving member 21 is used to drive the guide vanes 12 to change position relative to the support plate 11, such as driving the guide vanes 12 to translate and / or rotate relative to the support plate 11, so that the guide vanes 12 can swing.

[0163] In the extending direction of the support plate 11, the first transmission member 212 is movably connected to the support plate 11. When the first transmission member 212 moves along the extending direction of the adjustment assembly 10, it drives the air guide blade 12 connected to the first transmission member 212 to rotate relative to the support plate 11, so that the air guide blade 12 connected to the first transmission member 212 can rotate relative to the support plate 11, thereby allowing the air guide blade 12 to adjust the air delivery angle and thus change the air delivery direction of the air guide assembly 100.

[0164] By setting up a first transmission component 212 and connecting all the air guide vanes 12 on the adjusting assembly 10 to the first transmission component 212, the air guide vanes 12 can be rotated relative to the support plate 11 through the first transmission component 212, ensuring the flexibility, smoothness, and efficiency of the movement of the air guiding assembly 100. The design of the first transmission component 212 can optimize torque transmission and reduce energy loss. The design of the first transmission component 212 can further reduce friction and wear, and improve the reliability of the system.

[0165] As an optional implementation method, such as Figure 9 As shown, the second driving component 22 may include a second motor 222 and a second transmission component 221. The second motor 222 is connected to the second transmission component 221, and the second transmission component 221 is connected to the support plate 11. The second motor 222 is used to drive the second transmission component 221 to move, so as to cause the support plate 11 to change position relative to the mounting surface m. Figure 9 To adjust the bottom view of component 10.

[0166] By incorporating a second motor 222, precise motion control is provided, allowing for accurate adjustment of the angle of the support plate 11 as needed, resulting in more efficient and accurate airflow management. The second transmission component 221 effectively transmits the rotational motion of the second motor 222 to the support plate 11, ensuring flexible, smooth, and efficient movement. The transmission component's design optimizes torque transmission and reduces energy loss. Furthermore, the design of the second transmission component 221 further reduces friction and wear, improving system reliability.

[0167] Reference Figure 10 As an optional implementation, the air handling unit 300 includes a second drive assembly 20b, a plurality of adjustment assemblies 10, and a plurality of first drive assemblies 20a.

[0168] Specifically, each adjustment component 10 includes a movable guide vane 12, and each first drive component 20a corresponds to one adjustment component 10; the second drive component 20b is connected to multiple adjustment components 10 in a transmission manner, and the second drive component 20b simultaneously drives at least a portion of the structure of multiple adjustment components 10 to change position relative to the mounting surface m.

[0169] By setting a second drive component 20b to jointly drive multiple adjustment components 10 to change position relative to the mounting surface m, wherein the position change can be translation and / or rotation relative to the mounting surface m, and multiple adjustment components 10 are controlled by multiple second drive components 20b respectively, multiple adjustment components 10 can be controlled by one second drive component 20b, which simplifies the structure of the air guide component 100, reduces assembly difficulty and cost, etc.

[0170] In addition, by setting multiple adjustment components 10, the air guide component 100 can deliver air to multiple areas respectively, so that multiple adjustment components 10 can blow air to different areas, thereby expanding the coverage angle of the air conditioning equipment.

[0171] The following explanation uses an example where there are two adjustment components 10 and two drive components 20. The two adjustment components 10 are the first adjustment component 10a and the second adjustment component 10b.

[0172] Reference Figure 11 As an optional implementation, the first adjustment component 10a includes a first base point 13a, and the second drive component 20b is used to drive the first adjustment component 10a to rotate about the first base point 13a, so that at least a portion of the structure of the first adjustment component 10a moves away from the mounting surface m. The first drive component 20a corresponding to the first adjustment component 10a is connected to the first adjustment component 10a at the first base point 13a.

[0173] By setting a first base point 13a and connecting it to the first drive component 20a, the first drive component 20a can provide a stable support and reference point for the first adjustment component 10a at the first base point 13a. This allows the position changes and adjustments of the first adjustment component 10a to be performed relative to this first base point 13a, helping to ensure more precise and controllable movement of the first adjustment component 10a. It also prevents swaying during the movement of the first adjustment component 10a, improving its stability, and simplifies the structure of the air guide component 100, eliminating the need for a separate structure corresponding to the first base point 13a, thereby reducing costs.

[0174] Similarly, the second adjustment component 10b may include a second base point 13b, and the second drive component 20b is used to drive the second adjustment component 10b to rotate about the second base point 13b, so that at least a portion of the structure of the second adjustment component 10b moves away from the mounting surface m. The first drive component 20a corresponding to the second adjustment component 10b is connected to the second adjustment component 10b at the second base point 13b.

[0175] By setting a second base point 13b and connecting it to the first drive component 20a at the second base point 13b, the first drive component 20a can provide a stable support and reference point for the second adjustment component 10b at the second base point 13b. This allows the movement and adjustment of the second adjustment component 10b to be performed relative to this second base point 13b, helping to ensure more precise and controllable movement of the second adjustment component 10b. It also prevents swaying during the movement of the second adjustment component 10b, improving its stability, and simplifies the structure of the air guide component 100, eliminating the need for a separate structure corresponding to the second base point 13b, thereby reducing costs.

[0176] It should be noted that the positions of the first base point 13a and the second base point 13b are related to the setting positions of the two first drive mechanisms. In the following description, the setting position of the first drive mechanism represents the setting position of the first base point 13a and the second base point 13b.

[0177] In the embodiments of this application, such as Figure 11 As shown, the first driving component 20a corresponding to the first adjusting component 10a can be located at the end of the first adjusting component 10a that is away from the second adjusting component 10b, that is, the first base point 13a is located at the end of the first adjusting component 10a that is away from the second adjusting component 10b. Similarly, the first driving component 20a corresponding to the second adjusting component 10b can be located at the end of the second adjusting component 10b that is away from the first adjusting component 10a, that is, the second base point 13b is located at the end of the second adjusting component 10b that is away from the first adjusting component 10a.

[0178] In this embodiment, the location of the first driving component 20a can be set according to specific circumstances, and is not further limited in this embodiment.

[0179] As an optional implementation method, refer to Figure 11 The second transmission component 221 may 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 to the push-pull rod 2213, and the other end is connected to the support plate 11 (e.g., the first support plate 11) of one of the two adjusting components 10. One end of the second connecting rod 2211 is connected to the push-pull rod 2213, and the other end is connected to the support plate 11 (e.g., the second support plate 11) of the other of the two adjusting components 10. A second motor 222 is drively connected to the push-pull rod 2213, and the second motor 222 drives the push-pull rod 2213 to change position relative to the mounting surface m, so as to drive at least a portion of the structure of the support plate 11 to change position relative to the mounting surface m via the first connecting rod 2212 and the second connecting rod 2211.

[0180] By arranging the second transmission component 221 including the first connecting rod 2212, the second connecting rod 2211, and the push-pull rod 2213, synchronous adjustment of the two adjustment components 10 can be achieved, improving the motion consistency of the two adjustment components 10 and enhancing adjustment accuracy. The mechanical structure using the first connecting rod 2212, the second connecting rod 2211, and the push-pull rod 2213 is relatively simple, easy to manufacture and assemble, and can reduce costs. By setting the push-pull rod 2213, the rotational motion of the second motor 222 can be converted into linear motion, thereby achieving precise motion control and improving adjustment accuracy. Since the first connecting rod 2212, the second connecting rod 2211, and the push-pull rod 2213 can be effectively arranged in a plane, this allows for a compact layout and saves internal space in the equipment.

[0181] As an optional implementation, the air handling unit 300 includes a drive assembly 20 and a plurality of adjustment assemblies 10, each corresponding to a plurality of air outlet zones. Each drive assembly 20 individually drives its corresponding adjustment assembly 10. The drive assembly 20 is used to drive at least a portion of the structure of its corresponding adjustment assembly 10 to change position relative to the mounting surface m; each adjustment assembly 10 includes movable guide vanes 12.

[0182] For example, the number of adjustment components 10 is the same as the number of drive components 20, with one adjustment component 10 corresponding to one drive component 20.

[0183] The direction of the angle change between the air guide vane 12 and the mounting surface m is different from the direction of the angle change between the air guide plate 220 and the mounting surface m. This has been described in detail earlier and will not be repeated here.

[0184] The air guide assembly 100 in this embodiment of the application, by setting multiple adjustment components 10 and multiple drive components 20, can respectively discharge air to multiple air outlet areas. For example Figure 12 As shown, when the number of adjustment components 10 is three, air can be discharged to three air discharge areas: air discharge area, air discharge area, and air discharge area. The air discharge direction in each air discharge area can be adjusted according to actual needs to make the air handling equipment 300 using the air guide component 100 more practical.

[0185] For example, when a space includes a rest area, an office area, and an entertainment area, one of the regulating components 10 in the air guide assembly 100 can be directed to the rest area, one to the office area, and one to the entertainment area. This way, only one air guide assembly 100 is needed to achieve different air delivery angles for multiple areas, reducing costs compared to installing multiple indoor air conditioning units or multiple air outlets in a single space. Figure 13 This is a top view. For example... Figure 13 As shown, the state of the adjustment component 10 in each air outlet area can be different, and the position of the rotation base point of the different adjustment components 10 can be different, in order to meet the different needs of different areas. Here, represents the initial position of the three adjustment components 10.

[0186] Multiple driving components 20 drive multiple regulating components 10 respectively, so that each regulating component 10 has its own dedicated driving component 20. This allows for independent control of each regulating component 10, enabling precise adjustment of the airflow direction and intensity in each area as needed. It can also adapt to different room layouts and usage requirements. Users can flexibly adjust the settings of each regulating component 10 according to specific environmental conditions to achieve a more uniform and effective airflow distribution, especially in large spaces or multi-functional areas, to avoid local areas being too cold or too hot, and to improve overall comfort.

[0187] Furthermore, in multifunctional spaces such as conference rooms and open-plan offices, different air supply angles can provide suitable airflow conditions for different activity areas, meeting diverse usage needs. By adjusting the air supply angle of each regulating component 10, the problem of uneven temperature within the room can be solved more effectively. For example, special adjustments can be made for areas with direct sunlight or near doors and windows. By precisely controlling the airflow direction in 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. Setting up multiple regulating components 10 and multiple drive components 20 improves the reliability and stability of the system. For example, when one drive component 20 fails, the other drive components 20 can still operate normally. Since each regulating component 10 and drive component 20 is independent, maintenance and troubleshooting become simpler, reducing maintenance time and costs.

[0188] By adjusting the air delivery angles of multiple adjustment components 10, the air conditioning unit can be prevented from blowing directly at the same angle, reducing discomfort and improving user comfort. Furthermore, in areas where people are present, the first air outlet 210 can be prevented from blowing directly onto areas where people are active, thus avoiding discomfort or health problems caused by cold air blowing directly on the body. Additionally, by adjusting the air guide component 100, the air delivery angle of the first air outlet 210 can be continuously changed, which also prevents the air conditioner from blowing directly in one direction for extended periods, thereby preventing direct airflow.

[0189] In one possible implementation, the air guide assembly 100 may further include a data acquisition device and a control device 30. The data acquisition device is communicatively connected to the control device 30, and the control device 30 is electrically connected to each drive assembly 20. The data acquisition device is used to acquire area information within different air outlet areas and transmit the area information to the control device 30. The control device 30 is used to control one or more drive assemblies 20 among the plurality of drive assemblies 20 according to the area information, driving at least a portion of the structure of one or more adjustment assemblies 10 corresponding to one or more drive assemblies 20 to change position relative to the mounting surface m.

[0190] It should be noted that the area information can be input by the user into the data acquisition device via a remote control, electronic device, or other input device. For example, the user can input their desired indoor temperature and airflow angle via a remote control. The area information can also be area information automatically collected by the data acquisition device.

[0191] For example, the area information can be image information, video information, etc. The data acquisition device may include a camera, sensors, etc., to collect area information within different air supply areas. For instance, the camera collects information about people, plants, animals, and furniture, while the temperature sensor collects the temperature within different areas. The location of the data acquisition device is not limited in this embodiment; it can be placed inside or outside the air outlet of the air handling unit 300, depending on installation requirements.

[0192] By setting up a data acquisition device to collect area information, the control device 30 can precisely control the air delivery angle of each adjustment component 10 based on the area information to adapt to different room layouts and usage needs. The control device 30 can also precisely control the drive component 20 based on the area information, allowing users to adjust the angle of the guide vanes 12 and the direction of the adjustment components 10 as needed, thereby achieving more precise airflow management. The control device 30 can automate operation, automatically adjusting airflow settings based on preset programs or sensor inputs such as temperature, humidity, and human activity, improving the system's intelligence level.

[0193] In one possible implementation, the area information may include personnel information, animal information, plant information, and furniture layout information.

[0194] It's worth noting that by setting area information including personnel, animal, plant, and furniture layout details, the type of area can be determined. For example, if an area contains beds, it's a rest area. If it includes multiple desks, it's an office area. This facilitates area type identification and allows for precise determination of airflow requirements.

[0195] Of course, in other embodiments, the area information may also include other information, such as temperature information, humidity information, area information, etc. In the embodiments of this application, the specific information included in the area information is not further limited.

[0196] This setup allows for personalized airflow adjustments in different areas of the room, meeting the comfort needs of diverse users, especially in large or multi-functional spaces. Furthermore, in multi-functional spaces such as conference rooms and open-plan offices, different airflow angles can provide suitable airflow conditions for different activity areas, satisfying diverse usage requirements.

[0197] By adjusting the airflow angle of each regulating component 10 according to regional information, the problem of uneven temperature in a room can be solved more effectively. For example, special adjustments can be made for areas with direct sunlight or areas near doors and windows. By precisely controlling the airflow direction in 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.

[0198] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

[0199] For ease of explanation, the above description has been provided in conjunction with specific embodiments. However, the above exemplary discussion is not intended to be exhaustive or to limit the embodiments to the specific forms disclosed above. Various modifications and variations can be obtained based on the above teachings. The selection and description of the above embodiments are for the purpose of better explaining the principles and practical applications, thereby enabling those skilled in the art to better utilize the described embodiments and various different variations of embodiments suitable for specific use considerations.

Claims

1. An air handling unit (300), characterized in that, include: The housing (200) has a mounting surface (m) and a first air outlet (210), the first air outlet (210) being located on the side of the mounting surface (m) away from the ground; Adjustment assembly (10) includes movable guide vanes (12); The drive assembly (20) is connected to the adjustment assembly (10) in a transmission manner. The drive assembly (20) drives the air guide vane (12) to change position. The drive assembly (20) also drives the adjustment assembly (10) to change position relative to the first air outlet (210).

2. The air handling equipment (300) according to claim 1, characterized in that, It also includes an air guide plate (220), which is located at the first air outlet (210). The air guide plate (220) is movably connected to the mounting surface (m) and is used to open the first air outlet (210). An air outlet channel (230) is formed between the air guide plate (220) and the mounting surface (m), and the drive component (20) drives the adjustment component (10) to enter or move out of the air outlet channel (230).

3. The air handling equipment (300) according to claim 2, characterized in that, The ratio between the ventilation area of ​​the first air outlet (210) and the area of ​​the mounting surface (m) is in the range of 1 / 4 to 1 / 2; And / or, the ratio between the height of the first air outlet (210) and the height of the mounting surface (m) is in the range of 1 / 4 to 1 / 2.

4. The air handling equipment (300) according to claim 2 or 3, characterized in that, It also includes an air guide drive component, which is connected to the air guide plate (220) and is used to drive the angle between the air guide plate (220) and the mounting surface (m) to change.

5. The air handling equipment (300) according to claim 4, characterized in that, The housing (200) also has a second air outlet (240), which is located on the side of the first air outlet (210) closer to the ground; The air handling unit (300) further includes a panel (250) rotatably connected to the mounting surface (m); The rotation direction between the panel (250) and the mounting surface (m) is different from the angular change direction between the air guide plate (220) and the mounting surface (m).

6. The air handling equipment (300) according to claim 5, characterized in that, The angle variation range between the air guide plate (220) and the mounting surface (m) is greater than the angle variation range between the panel (250) and the mounting surface (m); And / or, the cross-sectional area of ​​the second air outlet (240) is greater than the cross-sectional area of ​​the first air outlet (210); And / or, the first air outlet (210) and the second air outlet (240) are spaced apart and are both connected to the interior of the housing (200).

7. The air handling equipment (300) according to claim 4, characterized in that, The adjustment assembly (10) includes a support plate (11) and a plurality of guide vanes (12). The extension direction of the support plate (11) is the same as the extension direction of the adjustment assembly (10). The plurality of guide vanes (12) are spaced apart along the extension direction of the support plate (11), and each guide vane (12) is movably connected to the support plate (11). The direction of the angle change between the air guide blade (12) and the bearing plate (11) is different from the direction of the angle change between the air guide plate (220) and the mounting surface (m).

8. The air handling equipment (300) according to claim 7, characterized in that, The drive assembly (20) includes a first drive element (21) and a second drive element (22); wherein, The first driving member (21) is connected to the air guide blade (12) in a transmission connection, and the first driving member (21) drives the air guide blade (12) to rotate relative to the support plate (11); The second driving member (22) is connected to the support plate (11) in a transmission manner, and the second driving member (22) drives the support plate (11) to change position relative to the mounting surface (m).

9. The air handling equipment (300) according to claim 8, characterized in that, The first driving member (21) includes a first transmission member (212); wherein, The first transmission component (212) is connected to all the guide vanes (12) on the adjustment assembly (10) in a transmission connection; In the extending direction of the support plate (11), the first transmission member (212) is movably connected to the support plate (11). When the first transmission member (212) moves along the extending direction of the adjustment assembly (10), it drives the air guide blade (12) connected to the first transmission member (212) to rotate relative to the support plate (11). or, The second driving component (22) includes a second motor (222) and a second transmission component (221); wherein, The second motor (222) is connected to the second transmission component (221), and the second transmission component (221) is connected to the support plate (11); The second motor (222) drives the second transmission component (221) to move, thereby causing the bearing plate (11) to change position relative to the mounting surface (m).

10. The air handling equipment (300) according to claim 9, characterized in that, include: Multiple adjustment components (10), each of the adjustment components (10) including the movably configured air guide vane (12); Multiple first drive components (20a), each of the first drive components (20a) corresponding to one of the adjustment components (10); The second drive assembly (20b) is drively connected to all of the plurality of adjustment assemblies (10), and the second drive assembly (20b) simultaneously drives at least a portion of the structure of the plurality of adjustment assemblies (10) to change position relative to the mounting surface (m).

11. The air handling equipment (300) according to claim 10, characterized in that, The two adjustment components (10) are a first adjustment component (10a) and a second adjustment component (10b), respectively. The first adjustment component (10a) includes a first base point (13a), and the second adjustment component (10b) includes a second base point (13b); The second driving component (20b) simultaneously drives the first adjusting component (10a) and the second adjusting component (10b) so that the first adjusting component (10a) rotates around the first base point (13a) and the second adjusting component (10b) rotates around the second base point (13b); And / or, The second transmission component (221) includes 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 to the push-pull rod (2213), and the other end is connected to one of the two adjusting components (10); One end of the second link (2211) is connected to the push-pull rod (2213), and the other end is connected to one of the two adjustment components (10); The second motor (222) is connected to the push-pull rod (2213) for transmission. The second motor (222) drives the push-pull rod (2213) to change position relative to the mounting surface (m) so as to drive at least part of the structure of the two adjustment components (10) to change position relative to the mounting surface (m) through the first link (2212) and the second link (2211).

12. The air handling equipment (300) according to claim 7, characterized in that, include: The plurality of adjustment components (10) correspond to the plurality of air outlet areas respectively, and the plurality of drive components (20) drive the adjustment component (10) corresponding to the drive component (20) individually; The drive assembly (20) is used to drive at least a portion of the structure of the adjustment assembly (10) corresponding to the drive assembly (20) to change position relative to the mounting surface (m); each adjustment assembly (10) includes a movable guide vane (12); The direction of the angle change between the air guide blade (12) and the mounting surface (m) is different from the direction of the angle change between the air guide plate (220) and the mounting surface (m).

13. The air handling equipment (300) according to claim 12, characterized in that, It also includes a data acquisition device and a control device (30); among which, The acquisition device is communicatively connected to the control device (30), and the control device (30) is electrically connected to each of the drive components (20); The data acquisition device is used to collect regional information within different air outlet areas and transmit the regional information to the control device (30); The control device (30) is used to control one or more of the drive components (20) among the plurality of drive components (20) according to the area information, and drive at least a portion of the structure of one or more adjustment components (10) corresponding to the one or more drive components (20) to change position relative to the mounting surface (m).