Air treatment equipment

By setting guide vanes on the air guide plate and realizing dual adjustment of the air guide plate and the guide vanes, the problem of limited adjustment angle of the guide vanes is solved, the air supply efficiency and comfort of the air conditioning equipment are improved, and specific air supply needs are met.

CN224230303UActive 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
2025-05-19
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

The limited airflow adjustment angle of the guide vanes in existing air conditioning equipment results in low efficiency in changing indoor temperature and makes it difficult to meet the air supply needs at specific angles.

Method used

The air guide blades are set on the air guide plate. When the air guide plate opens the air outlet, the air guide blades extend outside the air outlet. Two-stage air delivery angle control is achieved through the dual adjustment of the air guide plate and the air guide blades, including the opening angle of the air guide plate and the relative rotation angle of the air guide blades.

Benefits of technology

The adjustment range of the air guide vanes has been expanded, improving the efficiency of indoor temperature change, meeting specific air supply needs, achieving a more uniform temperature distribution and higher comfort, and reducing energy consumption.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides air treatment equipment which can comprise an equipment body, an air inlet and an air outlet. The air guide plate is rotatably arranged at the air outlet so as to open or close the air outlet; the air guide device is arranged on the air guide plate, the air guide device comprises a plurality of air guide blades which are movably arranged, and the air guide blades are used for adjusting the air outlet direction of the air outlet. According to the air treatment equipment, when air is supplied, air supplied out of the air outlet can have a wider coverage space by adjusting the opening angle of the air guide plate and adjusting the relative air guide angle of the air guide blades in two stages, so that the indoor temperature adjusting efficiency is improved, and the comfort degree of a user is improved.
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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 treatment device. BACKGROUND

[0003] In modern life, air treatment devices, such as air conditioning devices, have become an important tool for adjusting indoor environment. The main function of air conditioning devices is to improve indoor comfort by adjusting the temperature, humidity and flow of air. In order to achieve this function, the air outlet of the air conditioning device is provided with air guide vanes and an air guide plate. The air guide vanes are used to adjust the up-down air outlet angle by pitching, and the air guide vanes are used to adjust the horizontal air outlet angle by deflecting.

[0004] However, the air guide vanes are usually only active within the air outlet, resulting in limited air direction adjustment angle of the air guide vanes, low efficiency of indoor temperature change, and difficulty in meeting the air supply demand of specific angles. UTILITY MODEL CONTENT

[0005] In view of the above problems, the present application provides an air treatment device. By arranging the air guide vanes of the air guide device on the air guide plate, when the air guide plate opens the air outlet to adjust the air outlet angle, the air guide vanes can be extended outside the air outlet together. The adjustment range of the air guide vanes is wider, the air supply to a wider area can be achieved, the efficiency of indoor temperature change is improved, and the specific air supply demand can be met.

[0006] The present application provides an air treatment device, comprising: a device body, the device body comprising an air outlet; an air guide plate rotatably arranged at the air outlet to open or close the air outlet; an air guide device arranged on the air guide plate, the air guide device comprising a plurality of air guide vanes arranged movably, the air guide vanes being used to adjust the air outlet direction of the air outlet.

[0007] The air treatment device in the present application embodiment, when air supply, the air guide plate is opened outside the air outlet, at this time, the air guide vanes of the air guide device are rotated outside the air outlet with the air guide plate, the area of the air guide vanes blocked by the device body is reduced, the adjustable air guide angle of the air guide vanes is wider, the air supply to a wider area can be achieved, the efficiency of indoor temperature change is improved, and the specific air supply demand can be met.

[0008] In the adjustment of the air supply angle, the air supply angle can be adjusted by adjusting the opening angle of the air deflector and the relative rotation angle of the air deflection blades, realizing two-stage adjustment of the air supply angle, controlling the air supply angle of the air handling equipment through two-dimensional adjustment, more accurately controlling the direction of the air flow, and helping to optimize air distribution according to the room layout and user demand, to adapt to different room shapes and sizes, and provide more uniform temperature distribution. Under the double adjustment of the air deflector and the air deflection blades, the air sent from the air outlet can have a wider coverage space, thereby improving the indoor comfort.

[0009] In some embodiments, the air deflection device comprises an adjustment assembly comprising a carrier plate and a plurality of air deflection blades, the extension direction of the carrier plate is parallel to the length direction of the air outlet, and the plurality of air deflection blades are arranged at intervals along the extension direction of the carrier plate.

[0010] The structure design of the carrier plate extending along the length direction of the air outlet makes the arrangement of the air deflection blades highly adaptive to the shape of the air outlet and can cover the entire air outlet area. The plurality of blades are arranged at intervals along the extension direction of the carrier plate, which can form a continuous air flow guide surface, effectively avoiding the local air flow concentration or air supply fault phenomenon caused by traditional single-point adjustment, and realizing uniform air supply of the indoor environment. The air deflection blades are integrated in the carrier plate in a linear array form, which can realize horizontal air flow deflection through independent adjustment of the angle of the blades, and can form air flow guidance in three-dimensional space in cooperation with the vertical rotation of the air deflector. This two-stage adjustment mode significantly enhances the control dimension of the air flow direction, which is conducive to meeting the directional air supply demand in complex scenarios.

[0011] According to some embodiments of the present application, the carrier plate and the air deflector are fixedly connected.

[0012] The carrier plate and the air deflector form a monolithic structure, and when the air deflector performs opening and closing or angle adjustment action, the carrier plate and the air deflection blades thereon can move synchronously. This design realizes linkage control of the air deflector rotation adjustment and the air deflection blade angle adjustment, makes the air flow direction form a composite adjustment mode in the vertical and horizontal dimensions, and significantly improves the coverage range of the indoor environment.

[0013] According to some embodiments of the present application, the connection mode of the carrier plate and the air deflector comprises at least one of adhesive connection, bolt connection and buckle connection.

[0014] The selection of various connection modes enables the air guide device to adapt to different production scenes and installation requirements. For example, the adhesive connection is suitable for assembly lines that require quick assembly, the bolt connection is convenient for later maintenance and disassembly, and the buckle connection is suitable for scenes with high assembly efficiency requirements. Moreover, different connection modes can be optimized and matched according to the material properties of the air deflector and the carrier plate. For example, the adhesive connection is suitable for lossless assembly of plastic parts, the bolt connection is suitable for rigid fixation of metal parts, and the buckle connection is suitable for assembly of parts that need to be elastically deformed. In this way, manufacturers can select the most cost-effective connection scheme according to batch production requirements, thereby effectively controlling production costs.

[0015] According to some embodiments of the present application, the air guide device further comprises a driving assembly arranged on the air deflector, the driving assembly is in transmission connection with the adjusting assembly, and the driving assembly drives at least part of the structure of the adjusting assembly to change position relative to the air deflector.

[0016] Through the transmission connection of the driving assembly and the adjusting assembly, the electric control of the air guide blade angle is realized, the user can remotely adjust the air flow direction through the equipment control system, without manually operating the air deflector, and the convenience and intelligent level of equipment use are significantly improved.

[0017] In addition, the driving assembly and the rotating mechanism of the air deflector form a linkage control system, which can synchronously drive the overall deflection of the air deflector and the local adjustment of the air guide blade, form a composite air flow guide in the vertical and horizontal planes, and construct an air flow coverage field in the three-dimensional space, thereby significantly improving the temperature uniformity in a large space environment.

[0018] According to some embodiments of the present application, the air deflector comprises a first end connected with the device body and a second end away from the device body, and when the air deflector opens the air outlet, the driving assembly drives the adjusting assembly to move towards the direction close to the second end.

[0019] When the air deflector opens the air outlet, the driving assembly starts and drives the adjusting assembly to move towards the direction close to the second end of the air deflector. This movement mechanism enables the air guide blade to be adjusted closer to the end of the air outlet, thereby realizing more accurate wind direction control. By moving the adjusting assembly to the vicinity of the second end of the air deflector, the device can better control the direction and distribution of air flow. This design helps to expand the air supply coverage range, reduce the blind area of air flow, and improve the uniformity of indoor air conditioning.

[0020] According to some embodiments of the present application, the adjusting assembly further comprises a base point; wherein,

[0021] The driving assembly is at least used for driving the carrier plate to rotate around the base point, so that at least part of the structure of the adjusting assembly moves away from the mounting surface.

[0022] By setting the base point, the bearing plate can rotate around the base point as the base point for the bearing plate to rotate, which can provide a stable reference point for the bearing plate and help ensure more accurate and controllable movement of the bearing plate.

[0023] When the bearing plate rotates around the base point by a certain angle, part of the structure of the adjusting assembly is located outside the air outlet of the air handling device, and another part of the structure is located inside the air outlet. The area of the part of the structure located outside the air outlet is reduced by the side wall of the air outlet, thereby expanding the blowing area of the air guide device.

[0024] In addition, by controlling the position of the base point, the size of the part of the structure of the air guide device located outside the air outlet of the air handling device can be controlled, and the blowing area of the air guide device can be controlled, thereby improving the installation flexibility of the air guide device.

[0025] According to some embodiments of the present application, the driving assembly comprises a first driving member and a second driving member; wherein,

[0026] The first driving member is in transmission connection with the air guide blade, and the first driving member drives the position of the air guide blade to change;

[0027] The second driving member is in transmission connection with the bearing plate, and the second driving member drives the position of at least part of the structure of the bearing plate relative to the mounting surface to change.

[0028] By setting the driving assembly to include a first driving member and a second driving member, the air guide blade and the bearing plate can be controlled separately, which is beneficial to improve the accuracy of air flow adjustment, and the user can adjust the air supply angle range of the air guide blade or the bearing plate according to the needs.

[0029] The combination of the first driving member and the second driving member provides greater adjustment range and flexibility to achieve complex air flow patterns to adapt to different room layouts and use scenarios. By adjusting the angles of the air guide blade and the bearing plate respectively, more uniform and effective air flow distribution can be achieved, and precise air flow control can reduce the running time and energy consumption of the air handling device (such as an air conditioning device), thereby improving the overall energy efficiency. Since the first driving member and the second driving member are independently arranged, the individual driving member can be replaced or adjusted as needed during later maintenance without the need for large-scale adjustment of the entire system, thereby reducing maintenance costs.

[0030] According to some embodiments of the present application, the first driving member comprises a first motor and a first transmission member; wherein,

[0031] The first motor is in transmission connection with the first transmission member;

[0032] The first transmission member is in transmission connection with each of the guide vanes of the adjusting assembly.

[0033] The first motor is configured to drive the first transmission member to move, so as to drive the guide vanes connected with the first transmission member to rotate.

[0034] By providing the first motor, precise motion control capability can be provided, and the angle of the guide vanes can be accurately adjusted as needed, so that the airflow management is more efficient and accurate. By providing the first transmission member, the first transmission member can effectively transmit the rotational motion of the first motor to the guide vanes, 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 first transmission member can further reduce friction and wear, and improve the reliability of the system.

[0035] According to some embodiments of the present application, at least part of the structure of the first motor and the guide vanes is respectively located on both sides of the bearing plate, and the bearing plate is provided with a mounting hole, and the output shaft of the first motor is arranged in the mounting hole and can rotate relative to the mounting hole.

[0036] In this way, the first motor and the bearing plate can be connected, the assembly difficulty is reduced, and the cost is reduced.

[0037] According to some embodiments of the present application, the second driving member includes a second motor and a second transmission member; wherein the second motor is in transmission connection with the second transmission member, and the second transmission member is connected with the bearing plate; the second motor is configured to drive the second transmission member to move, so as to drive at least part of the structure of the bearing plate to move relative to the mounting surface.

[0038] By providing the second motor, precise motion control capability can be provided, and the angle of the bearing plate can be accurately adjusted as needed, so that the airflow management is more efficient and accurate. By providing the second transmission member, the second transmission member can effectively transmit the rotational 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.

[0039] According to some embodiments of the present application, the second transmission member includes an arc-shaped rack structure; or the second transmission member includes a rack structure and a multi-link mechanism.

[0040] When the second transmission member is an arc-shaped rack structure, it can convert rotational motion into precise linear or angular motion, allowing the carrier plate to be adjusted accurately within a set range, thereby achieving more precise airflow management. The arc-shaped rack provides smooth motion conversion, reducing vibrations and shocks that may occur during motion, improving the smoothness and quietness of system operation. The arc-shaped rack can be customized according to specific design requirements to adapt to different space and motion requirements. This flexibility allows it to be well integrated into various types of air handling equipment.

[0041] When the second transmission member is a rack structure and a multi-link mechanism, the structure of the second transmission member is simplified, the processing technology is simple, the cost is low, and it is suitable for mass production and application. In addition, the multi-link mechanism can include multiple links, so that one second transmission member can control multiple carrier plates of adjustment components, thereby simplifying the structure of the entire air guide device and reducing costs.

[0042] In some embodiments, the side surface of the air deflector facing the air outlet is provided with a plurality of reinforcing ribs, and the plurality of reinforcing ribs are arranged on the peripheral side of the air guide device.

[0043] On the one hand, the reinforcing ribs significantly improve the bending and deformation resistance of the air deflector by increasing its thickness and rigidity. This is particularly important for air deflectors that are subjected to airflow pressure during the operation of air handling equipment, and is beneficial to ensure that the air deflector maintains a stable shape and function during long-term use. Moreover, the reinforcing ribs are arranged on the peripheral side of the air guide device, which helps to guide and stabilize the airflow path. By optimizing the distribution of airflow, the generation of turbulence and vortex is reduced, thereby improving the efficiency and uniformity of air supply. The presence of reinforcing ribs can effectively reduce the vibration of the air deflector under the impact of airflow, which not only reduces the operating noise, but also helps to prolong the service life of the air handling equipment. BRIEF DESCRIPTION OF DRAWINGS

[0044] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed in the description of the embodiments or the prior art will be briefly introduced. Obviously, the drawings in the following description are some embodiments of the present application, and those skilled in the art can also obtain other drawings according to these drawings without creative labor.

[0045] Figure 1 Fig. 1 is a structural schematic diagram of an air handling equipment according to an embodiment of the present application;

[0046] Figure 2 Fig. 2 is another structural schematic diagram of an air handling equipment according to an embodiment of the present application;

[0047] Figure 3Structure schematic diagram of the air deflector according to the embodiment of the present application;

[0048] Figure 4 Structure schematic diagram of the air deflector according to the embodiment of the present application;

[0049] Figure 5 Structure schematic diagram of the air deflector according to the embodiment of the present application;

[0050] Figure 6 Structure schematic diagram of the air deflector according to the embodiment of the present application;

[0051] Figure 7 Structure schematic diagram of the air deflector according to the embodiment of the present application;

[0052] Figure 8 Structure schematic diagram of the air deflector according to the embodiment of the present application;

[0053] Figure 9 Structure schematic diagram of the air deflector according to the embodiment of the present application;

[0054] Figure 10 Structure schematic diagram of the air deflector according to the embodiment of the present application.

[0055] Explanation of reference numerals:

[0056] 100, air treatment device;

[0057] 110, device body;

[0058] 111, air outlet;

[0059] 120, air deflector;

[0060] 130, air deflector device;

[0061] 10, adjusting assembly; 11, bearing plate; 12, air deflector blade; 13, base point;

[0062] 20, driving assembly; 21, first driving member; 22, second driving member; 221, second transmission member; 222, second motor;

[0063] m, mounting surface. DETAILED DESCRIPTION

[0064] In order to make the above objectives, characteristics and advantages of the embodiments of the present application more obvious and easy to understand, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the scope of protection of the present application.

[0065] The air outlet of the air conditioning equipment is provided with a guide vane and a guide plate. The guide vane adjusts the up-down air outlet angle by pitching, and the guide vane adjusts the horizontal air outlet angle by deflecting.

[0066] However, the guide vane is usually only movable in the air outlet, resulting in limited wind direction adjustment angle of the guide vane, low efficiency of indoor temperature change, and difficulty in meeting the air supply demand of a specific angle.

[0067] Therefore, the present application provides an air treatment equipment. By arranging the guide vane of the guide device on the guide plate, when the guide plate opens the air outlet to adjust the air outlet angle, the guide vane can be extended out of the air outlet together, the adjustment range of the guide vane is wider, the air supply to a wider area can be realized, the efficiency of indoor temperature change is improved, and the specific air supply demand can be met.

[0068] For ease of understanding, reference is made to Figure 1 In the description of the present application, the height direction of the air treatment equipment can be Z direction, the length direction of the air treatment equipment can be X direction, and the height direction of the air treatment equipment can be Y direction.

[0069] For ease of understanding, reference is made to Figures 1 to 10 The present application provides an air treatment equipment 100, which includes but is not limited to an air conditioner, a humidifier, a dehumidifier, a ventilation equipment, a heat recovery ventilation system, an air purifier, a fresh air equipment, etc. In the embodiments of the present application, the air treatment equipment 100 is taken as an air conditioner for example, which includes but is not limited to an air conditioner indoor unit, a floor air conditioner, a central air conditioner, a ducted air conditioner, etc. In the embodiments of the present application, the type of the air conditioner is not limited further.

[0070] For ease of understanding, reference is made to Figure 1 、 Figure 2 and Figure 3 The air treatment equipment 100 can include an equipment body 110, a guide plate 120, and a guide device 130.

[0071] The device body 110 includes an air outlet 111. The air deflector 120 is rotatably arranged at the air outlet 111 to open or close the air outlet 111. For example, the air deflector 120 can be flipped to open the air outlet 111 relative to an axis extending along the X direction, or the air deflector 120 can be rotated to open the air outlet 111 relative to an axis extending along the Z direction. By adjusting the opening angle of the air deflector 120, the air outlet direction of the air handling device 100 can be changed.

[0072] The air deflector 130 is arranged on the air deflector 120 and includes a plurality of movable air deflector blades 12. During opening of the air deflector 120, the air deflector blades 12 move together. The air deflector blades 12 are used to adjust the air outlet direction of the air outlet 111 of the air deflector 130. By adjusting the air deflector blades 12, the air outlet direction of the air deflector 130 can be adjusted. For example, the air deflector blades 12 can be in a plate structure and can be perpendicular to the air deflector 120. The air deflector blades 12 can be rotated about an axis extending along the Z direction or flipped about an axis extending along the X direction to expand the air outlet area of the air handling device 100.

[0073] In the air handling device 100 in the embodiment, during air supply, the air deflector 120 is opened to the outside of the air outlet 111. At this time, the air deflector blades of the air deflector 130 are rotated to the outside of the air outlet 111 with the air deflector 120. The area of the air deflector blades 12 blocked by the device body is reduced. The air deflector blades 12 can adjust a wider air deflection angle and can supply air to a wider area to accelerate the indoor temperature change efficiency and meet specific air supply requirements.

[0074] During adjustment of the air supply angle, two-stage adjustment of the opening angle of the air deflector 120 and the relative air deflection angle of the air deflector blades 12 can be performed. For ease of understanding, the angle adjusted when the air deflector 120 is rotated relative to the device body 110 can be defined as a first air supply angle α1. By adjusting the size of the first air supply angle α1, the user can adjust the air outlet direction of the air outlet 111 according to needs to meet the use requirements of the user.

[0075] The air supply direction can be further adjusted by adjusting the angle of the air guide blade 12. The angle of the air guide blade 12 adjusted is defined as a second air supply angle a2, that is, the air guide blade 12 can change the range of the second air supply angle a2. In this way, the air supply angle of the air handling device 100 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 room layout and user needs, and adapt to different room shapes and sizes to provide more uniform temperature distribution. When the air handling device 100 is running, it can avoid cold or warm air directly blowing to the human body, reduce discomfort, and improve the user's 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.

[0076] Under the dual adjustment of the air guide plate 120 and the air guide blade 12, the air sent out from the air outlet 111 can have a wider coverage space, thereby improving the indoor comfort. For example, in a specific adjustment mode, through the dual adjustment, the air outlet 111 can be prevented from directly blowing air to the area where people are active, that is, the area where people are present is avoided to blow air, thereby avoiding discomfort or health problems caused by cold air directly blowing to the body. In addition, through the dual adjustment of the air guide plate 120 and the air guide blade 12, the air supply angle of the air outlet 111 can be constantly changed, so that the air conditioner can be prevented from blowing directly in one direction for a long time, thereby preventing the air conditioner from blowing directly.

[0077] In addition, by cooperating with the air guide of the plurality of air guide blades 12, the air flow can be more efficiently distributed, so that the air blown out from the air outlet 111 can be more uniform, which not only helps to reduce the energy consumption of the equipment, but also avoids the phenomenon of local overcooling (or overheating) of the air handling device 100 during use, thereby improving the user experience.

[0078] It should be noted that in the subsequent description of the present application, the mounting surface m can be the mounting surface m of the air handling device 100, for example, the mounting surface m can be the surface on which the air handling device 100 is mounted on the wall, at this time, the mounting surface m can be parallel or close to parallel to the wall.

[0079] The "first air supply angle a1" refers to the angle of the air guide plate 120 moving relative to the initial position. In addition, the direction away from the mounting surface m can be the direction perpendicular to the mounting surface m, or the direction at a certain angle with the mounting surface m. Among them, "perpendicular" refers to the perpendicular within a certain error range, for example, the angle between the mounting surface m is between 80°-90°, which can be considered as perpendicular to the mounting surface m. Among them, the extension direction of the air guide plate 120 is the direction of the largest dimension of the air guide plate 120 or the direction of the surface.

[0080] Reference Figures 4 to 10In some embodiments, the air guide device 130 can include an adjusting assembly 10, which includes a carrier plate 11 and a plurality of air guide blades 12, the extension direction of the carrier plate 11 is parallel to the length direction of the air outlet 111, and the structure design of extending the carrier plate 11 along the length direction of the air outlet 111 makes the arrangement of the air guide blades 12 highly adapt to the shape of the air outlet 111 and can cover the entire air outlet area. The plurality of blades are arranged at intervals along the extension direction of the carrier plate 11, can form a continuous air flow guide surface, effectively avoid the local air flow concentration or air supply fault phenomenon caused by traditional single-point adjustment, and realize uniform air supply of indoor environment.

[0081] The plurality of air guide blades 12 are arranged at intervals along the extension direction of the carrier plate 11, and the air guide blades 12 are integrated in the carrier plate 11 in the form of a linear array, which can realize air flow deflection in the horizontal direction through independent adjustment of the blade angle, and can form air flow guidance in three-dimensional space in cooperation with the vertical rotation of the air guide plate 120 as a whole. This two-stage adjustment mode significantly enhances the control dimension of the air flow direction, which is beneficial to meet the directional air supply demand in complex scenes.

[0082] According to some embodiments of the present application, the carrier plate 11 is fixedly connected with the air guide plate 120, so that the carrier plate 11 and the air guide plate 120 form a whole structure, and when the air guide plate 120 performs opening and closing or angle adjustment action, the carrier plate 11 and the air guide blades 12 thereon can move synchronously. This design realizes linkage control of the rotation adjustment of the air guide plate 120 and the angle adjustment of the air guide blades 12, so that the air flow direction can form a composite adjustment mode in the vertical and horizontal dimensions, and significantly improves the coverage range of indoor environment.

[0083] Of course, in other embodiments of the present application, the carrier plate 11 can be relatively movably connected with the air guide plate 120, at this time, the carrier plate 11 can move relative to the air guide plate 120 to a certain extent, further improving the air guiding effect of the air guide device 130, so that the air sent out of the air outlet 111 has a larger coverage area, thereby improving the comfort of indoor environment.

[0084] According to some embodiments of the present application, the connection mode of the carrier plate 11 and the air guide plate 120 includes at least one of adhesive connection, bolt connection and buckle connection. Exemplarily, the carrier plate 11 can be connected with the air guide plate 120 by adhesive connection, or the carrier plate 11 and the air guide plate 120 can be connected by bolt connection, or the carrier plate 11 and the air guide plate 120 can be connected by buckle connection, of course, the carrier plate 11 and the air guide plate 120 can also be connected by multiple connection modes mentioned above to improve the fixing strength.

[0085] The air guide device 130 can be adapted to different production scenes and installation requirements by providing a variety of connection options. For example, adhesive connection is suitable for assembly line production that requires quick assembly, bolt connection is convenient for later maintenance and disassembly, and buckle connection is suitable for scenes with high assembly efficiency requirements. Moreover, different connection methods can be optimized and matched according to the material properties of the air deflector 120 and the carrier plate 11. For example, adhesive connection is suitable for lossless assembly of plastic parts, bolt connection is suitable for rigid fixation of metal parts, and buckle connection is suitable for combination of parts that need to be elastically deformed. In this way, manufacturers can choose the most cost-effective connection scheme according to batch production requirements, thereby effectively controlling production costs.

[0086] Reference Figure 4 , Figure 5 , Figure 6 , Figure 7 and Figure 9 According to some embodiments of the present application, the air guide device 130 can further include a driving assembly 20, the driving assembly 20 is arranged on the air deflector 120, the driving assembly 20 is in transmission connection with the adjusting assembly 10, and the driving assembly 20 drives at least part of the structure of the adjusting assembly 10 to change the position relative to the air deflector 120. For example, the driving assembly 20 can change the distance between the air guide vanes 12 to change the airflow distribution of the air outlet 111. Alternatively, the driving assembly 20 can also drive the air guide vanes 12 to rotate or deflect relative to the air deflector 120, thereby changing the gas flow direction.

[0087] Alternatively, in the present embodiment, the carrier plate 11 can be movable relative to the air deflector 120, and under the action of the driving assembly 20, the carrier plate 11 can move (rotate or translate) relative to the air deflector 120. In a specific embodiment of the present application, when the carrier plate 11 rotates relative to the air deflector 120, a third air supply angle α3 can be formed between the carrier plate 11 and the mounting surface m. When adjusting the air supply angle, the third air supply angle α3 can be adjusted independently by the driving assembly 20, or the driving assembly 20 can also adjust the third air supply angle α3 and the second air supply angle α2 at the same time. Through the combined action of α3 and α2, the air guide area of the air guide vane 12 is further expanded, which is beneficial to improve the comfort of indoor space.

[0088] Through the transmission connection of the driving assembly 20 and the adjusting assembly 10, the angle of the air guide vane 12 is electrically controlled, and the user can remotely adjust the airflow direction through the device control system without manually operating the air deflector 120, which significantly improves the convenience and intelligent level of device use.

[0089] In addition, the driving assembly 20 can also form a linkage control system with the rotating mechanism (such as a rotating shaft) of the air deflector 120, and can synchronously drive the overall deflection of the air deflector 120 and the local adjustment of the air deflection blades 12, form a composite air flow guide in the vertical plane and the horizontal plane, and construct an air flow coverage field in a three-dimensional space, thereby significantly improving the temperature uniformity in a large space environment.

[0090] According to some embodiments of the present application, the air deflector 120 includes a first end connected to the device body 110 and a second end away from the device body 110. For example, the air deflector 120 can have a rotating shaft rotatably connected to the device body 110. The rotating shaft is located at the first end of the air deflector 120 and extends along the X direction. The driving assembly 20 is in transmission connection with the rotating shaft to drive the rotating shaft to rotate. The driving assembly 20 drives the rotating shaft to rotate, so that the air deflector 120 opens or closes the air outlet 111.

[0091] Reference Figure 8 When the air deflector 120 opens the air outlet 111, the driving assembly 20 drives the adjustment assembly 10 to move towards the direction close to the second end. For example, the carrier plate 11 can have a certain activity space relative to the air deflector 120. At this time, the driving assembly 20 can drive the carrier plate 11 to move close to the second end, so as to improve the dispersion effect of the air deflection fan blades on the carrier plate 11.

[0092] Alternatively, the driving assembly 20 drives the air deflection blades 12 to rotate, and part of the structure of the air deflection blades 12 rotates close to the second end, so that the air deflection blades 12 are approximately parallel or have a certain angle with the Y-Z plane. At this time, the air deflection blades 12 define an air outlet channel therebetween, and the air deflection blades 12 have a good guiding effect on the air flow.

[0093] When the air deflector 120 opens the air outlet 111, the driving assembly 20 starts and drives the adjustment assembly 10 to move towards the direction close to the second end of the air deflector 120. This movement mechanism enables the air deflection blades 12 to be adjusted closer to the end of the air outlet 111, thereby realizing more accurate wind direction control. By moving part of the structure of the air deflection blades 12 close to the vicinity of the second end of the air deflector 120, the device can better control the direction and distribution of air flow. This design helps to expand the air supply coverage range, reduce the blind area of air flow, and improve the uniformity of indoor air conditioning.

[0094] According to some embodiments of the present application, the adjustment assembly 10 can further include a base point 13. The driving assembly 20 is at least used to drive the carrier plate 11 to rotate around the base point 13, so that at least part of the structure of the adjustment assembly 10 moves away from the mounting surface m.

[0095] By setting the base point 13 and taking the base point 13 as the rotation base point of the bearing plate 11, the bearing plate 11 can rotate around the base point 13, which can provide a stable reference point for the bearing plate 11 and help ensure that the movement of the bearing plate 11 is more accurate and controllable.

[0096] When the bearing plate 11 rotates around the base point 13 by a certain angle, part of the structure of the adjusting assembly 10 can be located outside the air outlet 111 of the air handling device 100, and another part of the structure can be located inside the air outlet 111. The area of the part of the structure located outside the air outlet 111 that is blocked by the side wall of the air outlet 111 can be reduced, thereby expanding the blowing area of the air guide device 130.

[0097] In addition, by controlling the position of the base point 13, the size of the part of the structure of the air guide device 130 located outside the air outlet 111 of the air handling device 100 can be controlled, and the blowing area of the air guide device 130 can be controlled, thereby improving the installation flexibility of the air guide device 130.

[0098] It should be noted that in the embodiments of the present application, "towards" refers to a general direction and is not limited to a front surface.

[0099] It should be noted that in the embodiments of the present application, the extension direction of the air guide blade 12 is close to perpendicular to the X direction and the Y direction, which is represented as the Z direction (see FIG. 8) in the drawings. Of course, in other embodiments, the extension direction of the air guide blade 12 can also be arranged at an angle with the Z direction, and in the embodiments of the present application, the arrangement direction of the air guide blade 12 is not limited further. Figure 1

[0100] In some embodiments, the air guide blade 12 can have the same function as the blade in the prior art, that is, it can swing left and right in the extension direction of the air guide plate 120. In other embodiments, the air guide blade 12 can also swing in multiple directions, for example, the air guide blade 12 can swing in the X direction, or in the Z direction, or in a direction at an angle with the Z direction, etc.

[0101] Of course, it can be understood that when the air guide blade 12 can swing in the Z direction or in a direction at an angle with the Z direction relative to the air handling device 100, a third driving member can also be arranged in the driving assembly 20 to drive the air guide blade 12 to swing in the Z direction or in a direction at an angle with the Z direction relative to the air handling device 100. Specifically, the third driving member can drive the air guide blade 12 to swing in the Z direction or in a direction at an angle with the Z direction, and in the embodiments of the present application, the specific implementation manner of realizing the swinging of the air guide blade 12 in the Z direction or in a direction at an angle with the Z direction is not limited further.​

[0102] By drivingly connecting the driving assembly 20 with the air guide blade 12 and controlling the air guide blade 12 to swing in the extension direction of the adjusting assembly 10, the air guide assembly can cover a wider range, which helps to achieve more uniform air or temperature distribution in the whole room and avoid uneven cold and hot phenomenon. In addition, the second air supply angle range can also be adjusted by the air guide blade 12 to avoid direct airflow blowing to a fixed position, reduce direct stimulation to the human body, and improve comfort. This design allows users to flexibly adjust the airflow direction according to the room layout and personal preferences, meets different use scenarios and needs. By optimizing the airflow path and coverage range, the cooling or heating efficiency of the air conditioner can be improved, and unnecessary energy consumption can be reduced, thereby achieving energy saving.

[0103] According to some embodiments of the present application, the driving assembly 20 includes a first driving member 21 and a second driving member 22; wherein the first driving member 21 is drivingly connected with the air guide blade 12, and the first driving member 21 drives the position of the air guide blade 12 to change; for example, the first driving member 21 is used to drive the air guide blade 12 to change the position relative to the bearing plate 11, for example, the first driving member 21 is used to drive the air guide blade 12 to translate and / or rotate relative to the bearing plate 11, etc., so that the air guide blade 12 can swing.

[0104] The second driving member 22 is drivingly connected with the bearing plate 11, and the second driving member 22 drives the position of at least part of the structure of the bearing plate 11 to change relative to the mounting surface m (for example, moving away from the mounting surface m in the Y direction).

[0105] For example, the first driving member 21 is drivingly connected with the air guide blade 12, and the first driving member 21 drives the air guide blade 12 to rotate. In this way, the driving difficulty of the air guide blade 12 can be reduced, the structure of the first driving member 21 can be simplified, and the action amplitude of the air guide blade 12 can be increased, and the air swinging effect can be improved.

[0106] By setting the driving assembly 20 to include the first driving member 21 and the second driving member 22, the air guide blade 12 and the bearing plate 11 can be controlled separately, which is helpful to improve the accuracy of airflow adjustment, and users can adjust the air supply angle range of the air guide blade 12 or the bearing plate 11 as needed.

[0107] The combination of the first driving member 21 and the second driving member 22 provides a greater adjustment range and flexibility to achieve complex air flow patterns to adapt to different room layouts and usage scenarios. By adjusting the angles of the air guide blades 12 and the carrier plate 11 respectively, more uniform and effective air flow distribution can be achieved, and precise air flow control can reduce the running time and energy consumption of the air handling equipment 100 (for example, an air conditioning device), thereby improving the overall energy efficiency. Since the first driving member 21 and the second driving member 22 are independently arranged, the individual driving members can be replaced or adjusted as needed during later maintenance without the need for large-scale adjustment of the entire system, thereby reducing maintenance costs.

[0108] Of course, in other embodiments, the driving assembly 20 can include one driving member and two transmission mechanisms, which can control the carrier plate 11 and the air guide blades 12 through the transmission mechanisms, thereby simplifying the structure of the driving member. In the embodiments of the present application, the specific structure of the driving assembly 20 for controlling the carrier plate 11 and the air guide blades 12 through one driving member is not further limited.

[0109] In a specific implementation, the first driving member 21 and the second driving member 22 can be arranged at intervals in the extension direction (X direction) of the carrier plate 11. By arranging the first driving member 21 and the second driving member 22 at intervals, the space of the carrier plate 11 can be more effectively utilized, avoiding mutual interference between the driving members, thereby improving the reliability and stability of the air guide assembly. In addition, it also helps to improve the heat dissipation effect, prevent performance degradation or damage due to overheating, thereby prolonging the service life of the driving assembly 20 and improving the overall reliability of the system.

[0110] According to some embodiments of the present application, the first driving member 21 includes a first motor and a first transmission member; wherein the first motor is in transmission connection with the first transmission member; the first transmission member is in transmission connection with the plurality of air guide blades 12 of the adjustment assembly 10; the first motor is used to drive the first transmission member to move, so as to drive the air guide blades 12 connected with the first transmission member to rotate.

[0111] By setting the first motor, precise motion control capability can be provided, thereby accurately adjusting the angle of the air guide blades 12 as needed, making air flow management more efficient and accurate. By setting the first transmission member, the first transmission member can effectively transmit the rotary motion of the first motor to the air guide blades 12, 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 first transmission member can further reduce friction and wear, improving the reliability of the system.

[0112] Exemplarily, the first transmission member can be a transmission link. The transmission link is arranged along the extension direction of the bearing plate 11 and connected with all the guide vanes 12 of the adjusting assembly 10. The first motor is used to drive the transmission link to move along the extension direction of the bearing plate 11, so as to drive the guide vanes 12 connected with the transmission link to rotate.

[0113] By setting the first transmission member as the 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 the linear or oscillating motion of the guide vane 12, and help 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 12 can be accurately adjusted in a set range, thereby realizing more accurate airflow management.

[0114] Of course, in other embodiments, the first transmission member 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 spherical hinge, etc. In the embodiments of the present application, the specific structure of the first transmission member is not further limited.

[0115] According to some embodiments of the present application, at least part of the structure of the first motor and the guide vane 12 is respectively located on both sides of the bearing plate 11. Exemplarily, the mounting space is defined between the bearing plate 11 and the guide plate 120, the first electrode can be located in the mounting space, the bearing plate 11 is provided with a mounting hole, the output shaft of the first motor passes through the mounting hole and is rotatable relative to the mounting hole, and the output shaft of the first motor passes out to the other side of the bearing plate 11 and is connected with the guide vane 12, so as to realize the rotation of the guide vane 12 driven by the first motor.

[0116] In this way, the first motor can be conveniently connected with the bearing plate 11, the assembly difficulty is reduced, and the cost is further reduced. The guide plate 120 can absorb part of the impact and vibration in operation, reduce the damage risk of the first drive member 21 and the bearing plate 11, and improve the safety of the system. The setting mode of the first motor also makes the user can more easily disassemble and replace the assembly without the need to make large-scale adjustment to the whole system, and the installation and maintenance process is more simple and convenient.

[0117] According to some embodiments of the present application, the second drive member 22 comprises a second motor 222 and a second transmission member 221; the second motor 222 is in transmission connection with the second transmission member 221, and the second transmission member 221 is connected with the bearing plate 11; the second motor 222 is used 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 move relative to the mounting surface m.

[0118] By setting the second motor 222, precise motion control capability can be provided, and the angle of the carrier 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 carrier plate 11, ensuring flexibility, smoothness 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.

[0119] Reference Figure 5 and Figure 6 According to some embodiments of the present application, the second transmission member 221 comprises an arc-shaped rack structure. Exemplarily, the arc-shaped rack can extend along the Y direction to drive the carrier plate 11 to move along the Y direction.

[0120] By setting the second transmission member 221 to comprise an arc-shaped rack structure, the rotary motion can be converted into precise linear or angular motion, so that the carrier plate 11 can be accurately adjusted within a set range, thereby realizing more accurate airflow management. The arc-shaped rack provides smooth motion conversion, reduces vibration and impact that may occur during motion, and improves the smoothness and quietness of system operation. The arc-shaped rack can be customized according to specific design requirements to adapt to different space and motion requirements. This flexibility makes it well integrated into various types of air handling equipment 100.

[0121] Of course, 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 and a slider, a pneumatic or hydraulic cylinder, a linear actuator driven by a stepping motor or a servo motor, a cam mechanism, etc. In the embodiments of the present application, the specific structure of the second transmission member 221 is not further limited.

[0122] In another embodiment of the present application, the second transmission member 221 can comprise a rack structure and a multi-link mechanism.

[0123] When the second transmission member 221 is an arc-shaped rack structure, the rotary motion can be converted into precise linear or angular motion, so that the carrier plate 11 can be accurately adjusted within a set range, thereby realizing more accurate airflow management. The arc-shaped rack provides smooth motion conversion, reduces vibration and impact that may occur during motion, and improves the smoothness and quietness of system operation. The arc-shaped rack can be customized according to specific design requirements to adapt to different space and motion requirements. This flexibility makes it well integrated into various types of air handling equipment 100.

[0124] When the second transmission member 221 is a rack structure and a multi-link mechanism, the structure of the second transmission member 221 is simplified, the processing technology is simple, the cost is low, and it is suitable for mass production and application. In addition, the multi-link mechanism can include multiple links, so one second transmission member 221 can control multiple adjustment assemblies 10 of the bearing plate 11, thereby simplifying the structure of the entire air guide device 130 and reducing the cost.

[0125] In some embodiments, the side surface of the air deflector 120 facing the air outlet 111 is provided with multiple reinforcing ribs, which are arranged on the circumferential side of the air guide device 130.

[0126] Since the air guide device 130 is arranged on the air deflector 120, the overall weight of the air deflector 120 is increased, and by arranging the reinforcing ribs, the structural strength of the air deflector 120 is improved, thereby prolonging the service life of the air deflector 120.

[0127] The reinforcing ribs significantly improve the bending resistance and deformation resistance of the air deflector 120 by increasing its thickness and rigidity. This is particularly important for the air deflector 120, which is subjected to air flow pressure during the operation of the air handling equipment 100, and helps to ensure that the air deflector 120 maintains a stable shape and function during long-term use. Moreover, the reinforcing ribs are arranged on the circumferential side of the air guide device 130, which helps to guide and stabilize the air flow path. By optimizing the distribution of air flow, the generation of turbulence and vortex is reduced, thereby improving the efficiency and uniformity of air supply. The presence of reinforcing ribs can effectively reduce the vibration of the air deflector 120 under the impact of air flow, which not only reduces the operating noise, but also helps to prolong the service life of the air handling equipment 100.

[0128] The embodiments or implementations in the specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between embodiments can be mutually referred to.

[0129] It should be noted that the embodiments referred to in the specification as "one embodiment", "an embodiment", "an exemplary embodiment", "some embodiments" and the like can include specific features, structures or characteristics, but not necessarily every embodiment includes the specific features, structures or characteristics. In addition, such phrases do not necessarily refer to the same embodiment. In addition, when a specific feature, structure or characteristic is described in combination with an embodiment, it is within the knowledge of those skilled in the art to realize such feature, structure or characteristic in combination with other embodiments that are explicitly or implicitly described.

[0130] In general, terminology can be understood at least in part from an ordinary sense of the corresponding terminology as would be understood by those of ordinary skill in the art to which the subject matter concerns when context permits. That is, a term should be interpreted as having a frequency based meaning whenever a context indicates so. For example, the terms "a" or "an" can mean one or more than one depending upon the context in which it is used. Similarly, the term "the" can mean one or more than one and the singular term can mean the plural and vice versa depending upon the context in which it is used. It is further

[0131] It will be readily understood that the terms "on", "above", and "on top", in the present disclosure, should be interpreted in the broadest context to mean not only "directly on something", but also to include the meaning of "on something" with intermediate features or layers therebetween, and "above" or "on top of something" not only includes the meaning of "above" or "on top of something", but also can include the meaning of "above" or "on top of something" without intermediate features or layers therebetween (i.e., directly on something).

[0132] Finally, it should be noted that the above-described embodiments are merely used to illustrate the technical solutions of the present application, rather than limit the technical solutions of the present application; even though the present application has been described in detail with reference to the above embodiments, those of ordinary skill in the art should understand that modifications can still be made to the technical solutions recorded in the above embodiments, or equivalent replacements can be made to some or all of the technical features thereof; and such modifications or replacements do not cause the essence of the corresponding technical solutions to depart from the scope of the technical solutions of the embodiments of the present application.

Claims

1. An air handling unit (100), characterized in that, include: The equipment body (110) includes an air outlet (111); An air guide plate (120) is rotatably disposed at the air outlet (111) to open or close the air outlet (111); An air guide device (130) is provided on the air guide plate (120). The air guide device (130) includes a plurality of air guide blades (12) that are movably arranged. The air guide blades (12) are used to adjust the air outlet (111) air outlet direction.

2. The air handling equipment (100) according to claim 1, characterized in that, The air guide device (130) includes: The adjustment assembly (10) includes a support plate (11) and a plurality of the air guide blades (12). The extension direction of the support plate (11) is parallel to the length direction of the air outlet (111), and the plurality of air guide blades (12) are spaced apart along the extension direction of the support plate (11).

3. The air handling equipment (100) according to claim 2, characterized in that, The support plate (11) is fixedly connected to the air guide plate (120).

4. The air handling equipment (100) according to claim 3, characterized in that, The connection method between the bearing plate (11) and the air guide plate (120) includes at least one of adhesive connection, bolt connection, and snap-fit ​​connection.

5. The air handling equipment (100) according to claim 2, characterized in that, The air guide device (130) further includes a drive component (20) disposed on the air guide plate (120), the drive component (20) being connected to the adjustment component (10) in a transmission manner, and the drive component (20) driving at least a portion of the structure of the adjustment component (10) to change position relative to the air guide plate (120).

6. The air handling equipment (100) according to claim 5, characterized in that, The air guide plate (120) includes a first end connected to the device body (110) and a second end away from the device body (110). When the air guide plate (120) opens the air outlet (111), the drive assembly (20) drives the adjustment assembly (10) to move toward the direction closer to the second end.

7. The air handling equipment (100) according to claim 5, characterized in that, The adjustment component (10) further includes a base point (13); wherein, The drive assembly (20) is at least used to drive the support plate (11) to rotate about the base point (13) so that at least a portion of the structure of the adjustment assembly (10) moves away from the mounting surface (m).

8. The air handling equipment (100) 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 guide vane (12) in a transmission manner, and the first driving member (21) drives the position of the guide vane (12) to change. The second driving member (22) is connected to the support plate (11) in a transmission manner, and the second driving member (22) drives at least a portion of the structure of the support plate (11) to change position relative to the mounting surface (m).

9. The air handling equipment (100) according to claim 8, characterized in that, The first driving component (21) includes a first motor and a first transmission component; wherein, The first motor is connected to the first transmission component in a transmission connection; The first transmission component is connected to multiple guide vanes (12) of the adjustment assembly (10) in a transmission connection. The first motor is used to drive the first transmission component to move, so as to drive the guide vane (12) connected to the first transmission component to rotate.

10. The air handling equipment (100) according to claim 9, characterized in that, At least a portion of the structure of the first motor and the guide vane (12) are located on both sides of the support plate (11). The support plate (11) is provided with mounting holes. The output shaft of the first motor passes through the mounting holes and is rotatable relative to the mounting holes.

11. The air handling equipment (100) according to claim 8, characterized in that, 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) is used to drive the second transmission member (221) to move, thereby causing at least a portion of the structure of the support plate (11) to move relative to the mounting surface (m).

12. The air handling equipment (100) according to claim 11, characterized in that, The second transmission component (221) includes an arc-shaped rack and pinion structure; or, The second transmission component (221) includes a rack and pinion structure and a multi-link mechanism.

13. The air handling equipment (100) according to claim 1, characterized in that, The air guide plate (120) has a plurality of reinforcing ribs on the side facing the air outlet (111), and the plurality of reinforcing ribs are arranged around the air guide device (130).