Air outlet assembly and air conditioning device with same

By designing an air outlet assembly with movable air guide plates and air outlet panels, the problem of cold air blowing directly on the human body is solved, multi-mode air supply is realized, and the comfort and efficiency of air conditioning are improved.

CN223985251UActive Publication Date: 2026-03-10ZHUHAI GREE REFRIGERATION TECH CENT OF ENERGY SAVING & ENVIRONMENTAL PROTECTION
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-07
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Traditional air conditioner vents blow cold air directly onto people in cooling mode, causing discomfort, and the way the air guide plate is designed affects the air delivery distance and air guiding effect.

Method used

Design an air outlet component including a movable air guide plate and an air outlet plate. The air guide plate can block or avoid the air outlet, and the air outlet plate has through holes. The air supply mode can be adjusted by a drive component to achieve large air volume long-distance air supply, light breeze or no wind feeling air supply.

Benefits of technology

It improves user comfort and air conditioning efficiency, enhances air delivery distance and air guiding effect, meets different air delivery needs, and improves the user experience of air conditioning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an air outlet assembly and an air conditioning device with the same. The air outlet assembly comprises an air outlet frame provided with an air inlet, a mounting cavity and an air outlet, and the air inlet communicates with the air outlet through the mounting cavity; the air guide plate is movably arranged in the mounting cavity so as to block or avoid at least part of the air outlet; the air outlet plate is movably arranged, and the air outlet plate is provided with a through hole; wherein the air outlet plate has a first air outlet state and a second air outlet state, and when the air outlet plate is in the first air outlet state, the air outlet plate avoids the air outlet; and when the air outlet plate is in the second air outlet state, the through hole communicates with the air outlet, so that the airflow is exhausted from the air outlet assembly after sequentially passing through the air outlet and the through hole. The air conditioner effectively solves the problem that in the prior art, the air outlet mode that holes are directly formed in the air guide plate affects the heat exchange efficiency of the air conditioner device and the use comfort of a user.
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Description

Technical Field

[0001] This utility model relates to the field of air conditioning technology, and more specifically, to an air outlet component and an air conditioning device having the same. Background Technology

[0002] Currently, traditional air conditioner vent designs often prioritize airflow efficiency while neglecting the impact of airflow on the human body. Especially in cooling mode, strong cold air blowing directly on the body can easily cause discomfort.

[0003] In existing technologies, to address the aforementioned problems, perforations are typically made in the air guide plate to disperse the cold air and reduce its direct impact on the human body. However, while this method of creating perforations in the air guide plate alleviates the problem of direct cold air blowing to some extent, it also shortens the air delivery distance of the air conditioner and weakens its guiding effect. Specifically, when the airflow passes through the holes in the air guide plate, its flow path becomes irregular, resulting in dispersed airflow and an inability to deliver air over long distances. This undoubtedly reduces the efficiency of the air conditioner and user comfort in large spaces or environments requiring rapid cooling. Utility Model Content

[0004] The main objective of this invention is to provide an air outlet component and an air conditioning device having the same, so as to solve the problem that the air outlet method of directly opening holes on the air guide plate in the prior art affects the heat exchange efficiency of the air conditioning device and the user's comfort.

[0005] To achieve the above objectives, according to one aspect of the present invention, an air outlet assembly is provided, comprising: an air outlet frame having an air inlet, a mounting cavity, and an air outlet, wherein the air inlet is connected to the air outlet through the mounting cavity; an air guide plate movably disposed within the mounting cavity to block or avoid at least part of the air outlet; and an air outlet plate movably disposed having a through hole; wherein the air outlet plate has a first air outlet state and a second air outlet state, wherein when the air outlet plate is in the first air outlet state, the air outlet plate avoids the air outlet; and when the air outlet plate is in the second air outlet state, the through hole is connected to the air outlet, so that airflow passes sequentially through the air outlet and the through hole before being discharged from the air outlet assembly.

[0006] Furthermore, along the length of the air outlet plate, the air outlet plate has an interconnected air passage area and a blocking area, with the through hole located within the air passage area; wherein, when the air outlet plate is in the second air outlet state, the air passage area is positioned opposite to the air outlet, and the blocking area avoids the air outlet; the length direction of the air outlet plate is consistent with the movement direction of the air outlet plate.

[0007] Furthermore, the air outlet panel is an arc-shaped panel, located inside the decorative panel of the air conditioning unit, and the shape of the arc-shaped panel matches that of the decorative panel.

[0008] Furthermore, the air outlet assembly also includes a drive assembly, which includes: a drive device; and a transmission assembly, which includes a gear and a rack. The gear is connected to the drive shaft of the drive device, and the rack is disposed on the surface of the air outlet plate. The gear meshes with the rack to drive the rack and the air outlet plate to move.

[0009] Furthermore, there is one drive component; or there are two drive components, with one drive component located at one end of the air outlet panel and the other drive component located at the other end of the air outlet panel along the height direction of the air outlet panel.

[0010] Furthermore, a first protrusion is provided on the air outlet frame, and a second protrusion is provided on the surface of the air outlet plate facing the air outlet frame. When the air outlet assembly is in the first air outlet state, the first protrusion is used to limit and stop the second protrusion.

[0011] Furthermore, the air outlet assembly also includes: a sealing structure located on one side of the air outlet plate, the sealing structure being disposed close to the air passage area to block at least part of the air outlet; wherein, the sealing structure is one, or, the sealing structure is two, at least parts of the two sealing structures being disposed opposite each other and pressed against each other.

[0012] Furthermore, there are multiple through holes, which are spaced apart along the length and / or height of the air outlet plate; and / or, the sum of the areas of the multiple through holes is 40% to 80% of the surface area of ​​the air outlet plate.

[0013] Furthermore, the inner wall of the through hole is inclined, and the cross-sectional area of ​​the end of the through hole near the air outlet frame is smaller than the cross-sectional area of ​​the end of the through hole away from the air outlet frame; wherein, the inner wall of the through hole has a smooth transition.

[0014] According to another aspect of the present invention, an air conditioning device is provided, comprising: a housing having an air inlet and an air outlet; a heat exchanger disposed inside the housing and opposite to the air inlet; an air duct assembly disposed inside the housing, the air duct assembly being located on one side of the heat exchanger; an air outlet assembly having an air outlet of the air duct assembly communicating with an air inlet of the air outlet assembly; and a decorative panel covering the outside of the air outlet assembly; wherein the air outlet assembly is the aforementioned air outlet assembly.

[0015] Applying the technical solution of this utility model, the air outlet assembly includes an air outlet frame, an air guide plate, and an air outlet plate. The air outlet frame has an air inlet, a mounting cavity, and an air outlet, with the air inlet communicating with the air outlet through the mounting cavity. The air guide plate is movably disposed within the mounting cavity to block or avoid at least part of the air outlet. The air outlet plate is movably disposed and has through holes. Thus, the movable arrangement of the air outlet plate and the presence of the through holes allow the air delivery mode of the air outlet assembly to be adjusted according to the user's needs. When the air outlet is in its first air outlet state, the airflow is directly discharged from the outlet through the guide plate because the air outlet avoids the air vent, achieving a high-volume, long-distance air delivery mode suitable for rapid cooling or heating needs. When the air outlet is in its second air outlet state, the airflow needs to pass through the guide plate and through holes, thus creating a gentle breeze or windless air delivery mode, making the air delivery softer and avoiding direct airflow onto the human body, improving user comfort. This solves the problem in existing technologies where direct openings in the guide plate affect the heat exchange efficiency of the air conditioning unit and user comfort. Simultaneously, the guide plate is movably installed within the mounting cavity, and its position can be adjusted according to different air delivery modes, blocking or avoiding the air vent. This helps enhance the air delivery effect, especially in the high-wind-feel air delivery mode, where adjusting the guide plate can change the direction and concentration of the airflow, effectively increasing the air delivery distance and allowing the cool or warm air to cover a wider indoor area. Attached Figure Description

[0016] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention. In the drawings:

[0017] Figure 1 A front view of an embodiment of the air outlet assembly according to the present invention is shown;

[0018] Figure 2 A front view of an embodiment of the air conditioning device according to the present invention is shown in the high-wind-feed mode.

[0019] Figure 3 It shows Figure 2 A cross-sectional view of the air conditioning unit in the high-wind-feed mode.

[0020] Figure 4 A front view of an embodiment of the air conditioning device according to the present invention in a gentle breeze air supply mode is shown.

[0021] Figure 5 It shows Figure 4 A cross-sectional view of the air conditioning unit in the gentle airflow mode.

[0022] Figure 6A cross-sectional view of an embodiment of the air conditioning device according to the present invention in the windless air supply mode is shown.

[0023] The above figures include the following reference numerals:

[0024] 10. Air outlet frame; 11. Air inlet; 12. Mounting cavity; 13. Air outlet; 14. First protrusion; 20. Air guide plate; 30. Air outlet plate; 31. Through hole; 32. Air passage area; 33. Blocking area; 34. Second protrusion; 40. Decorative panel; 50. Drive unit; 70. Rack; 80. Sealing structure; 90. Housing; 100. Heat exchanger; 110. Air duct assembly. Detailed Implementation

[0025] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0026] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.

[0027] In this utility model, unless otherwise stated, directional terms such as "upper" and "lower" are generally used in relation to the direction shown in the accompanying drawings, or in relation to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" are generally used in relation to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.

[0028] In order to solve the problem that the air outlet method of directly opening holes on the air guide plate in the prior art affects the heat exchange efficiency of the air conditioning device and the user comfort, this application provides an air outlet component and an air conditioning device having the same.

[0029] like Figures 1 to 6 As shown, the air outlet assembly includes an air outlet frame 10, an air guide plate 20, and an air outlet plate 30. The air outlet frame 10 has an air inlet 11, a mounting cavity 12, and an air outlet 13. The air inlet 11 communicates with the air outlet 13 through the mounting cavity 12. The air guide plate 20 is movably disposed within the mounting cavity 12 to block or avoid at least part of the air outlet 13. The air outlet plate 30 is movably disposed and has a through hole 31. The air outlet plate 30 has a first air outlet state and a second air outlet state. When the air outlet plate 30 is in the first air outlet state, it avoids the air outlet 13; when the air outlet plate 30 is in the second air outlet state, the through hole 31 communicates with the air outlet 13, allowing airflow to pass sequentially through the air outlet 13 and the through hole 31 before being discharged from the air outlet assembly.

[0030] By applying the technical solution of this embodiment, the movable setting of the air outlet plate and the presence of through holes allow the air delivery mode of the air outlet assembly to be adjusted according to the user's needs. When the air outlet plate is in the first air outlet state, because the air outlet plate avoids the air outlet, the airflow will be directly discharged from the air outlet through the air guide plate, so as to achieve a large air volume and long distance air delivery mode, which is suitable for the needs of rapid cooling or heating. When the air outlet plate is in the second air outlet state, the airflow needs to be blown out through the air guide plate and through holes, thereby forming a breeze or windless air delivery mode, making the air delivery gentler, avoiding direct blowing on the human body, improving the user's comfort, and thus solving the problem in the prior art that the air outlet method of directly opening holes on the air guide plate affects the heat exchange efficiency of the air conditioning device and the user's comfort. Meanwhile, the air guide plate can be movably installed in the installation cavity, and its position can be adjusted according to different air supply modes to block or avoid the air outlet. This helps to enhance the air guiding effect. Especially in the high-wind-feel air supply mode, the adjustment of the air guide plate can change the direction and concentration of the airflow, thereby effectively increasing the air supply distance and enabling the cold and warm air to cover a wider indoor area.

[0031] like Figure 1 As shown, along the length of the air outlet panel 30, the air outlet panel 30 has an interconnected airflow area 32 and a blocking area 33, with a through hole 31 located within the airflow area 32. When the air outlet panel 30 is in its second airflow state, the airflow area 32 is positioned opposite the air outlet 13, and the blocking area 33 avoids the air outlet 13. The length direction of the air outlet panel 30 is consistent with its direction of movement. Thus, in the second airflow state, the airflow area 32 is opposite the air outlet 13, and the airflow is discharged after connecting with the air outlet 13 through the through hole 31, while the blocking area 33 avoids the air outlet 13 and does not directly participate in the air supply. This precise control allows the air conditioning unit to adjust the intensity and direction of the airflow according to the user's selected air supply mode, preventing hot or cold air from blowing directly onto the body and providing a more comfortable and personalized air supply experience.

[0032] In this embodiment, the combined design of the airflow zone 32 and the blocking zone 33 allows for control of airflow distribution based on different states of the air outlet panel 30. In the second airflow state, the blocking zone 33 avoids the air outlet 13, reducing airflow diffusion on the surface of the air outlet panel 30, resulting in more concentrated airflow. This helps improve the uniformity of indoor airflow and prevents localized overcooling or overheating. By switching between the airflow zone 32 and the blocking zone 33, users can intuitively perceive changes in the air conditioning's airflow mode. This design not only provides physical control over the airflow mode but also enhances the user's perception of the air conditioner's operating status, improving the user experience.

[0033] In this embodiment, the air outlet plate 30 is an arc-shaped plate located inside the decorative panel 40 of the air conditioning unit, and the shape of the arc-shaped plate matches that of the decorative panel 40. This matching shape makes the layout of the air outlet plate 30 within the air conditioning unit more harmonious and visually unified, avoiding any abrupt or uncoordinated visual effects. It not only prevents movement interference between the air outlet plate 30 and the decorative panel 40, thus avoiding affecting the normal operation of the air outlet plate 30, but also enhances the overall aesthetics and design of the air conditioning unit. Simultaneously, the arc-shaped plate design facilitates smooth airflow transition and guidance, reducing airflow collisions and friction on the air outlet plate 30, thereby lowering the noise level during air delivery.

[0034] Specifically, the curved plate design reduces airflow stagnation on the surface, making it less likely for dust and impurities to accumulate on the air outlet plate 30, simplifying the cleaning and maintenance process, maintaining the cleanliness of the air outlet, and at the same time, the shape of the curved plate facilitates the use of cleaning tools, improving cleaning efficiency.

[0035] like Figure 1 As shown, the air outlet assembly also includes a drive assembly, which comprises a drive unit 50 and a transmission assembly. The transmission assembly includes a gear and a rack 70. The gear is connected to the drive shaft of the drive unit 50, and the rack 70 is mounted on the surface of the air outlet plate 30. The gear meshes with the rack 70 to drive the rack 70 and the air outlet plate 30 to move. Thus, the position of the air outlet plate 30 can be precisely adjusted by controlling the drive unit 50, thereby achieving rapid and accurate switching of the air supply mode. The meshing motion of the gear and rack 70 ensures the stability and precision of the transmission process, avoiding the inaccuracy and inconvenience of manual adjustment, and improving the user experience.

[0036] Specifically, compared to other transmission mechanisms such as pulleys or chains, the gear and rack transmission method 70 has higher efficiency and faster response speed. The rotation of the gear can be quickly and without delay converted into the movement of the rack 70, which in turn drives the air outlet 30 to quickly reach the preset position, meeting the user's need to adjust the air supply mode in real time. At the same time, the efficient transmission mechanism of the gear and rack 70 reduces energy loss during the transmission process and lowers the energy consumption of the drive components.

[0037] Optionally, there may be one drive component; or, there may be two drive components, with one drive component located at one end of the air outlet plate 30 and the other at the other end along the height direction of the air outlet plate 30. This arrangement allows for greater flexibility in selecting the number of drive components to meet different usage requirements and working conditions, and also improves the processing flexibility for operators. Furthermore, when using two drive components, they work synchronously at both ends of the air outlet plate 30, which can distribute the driving force more evenly, ensuring the balance and stability of the air outlet plate 30 during movement, reducing vibration and noise, and providing a smoother airflow adjustment experience.

[0038] In this embodiment, there are two drive components. Along the height direction of the air outlet plate 30, one drive component is located at one end of the air outlet plate 30, and the other drive component is located at the other end of the air outlet plate 30. The two drive components operate in the same state to ensure that the operating parameters at both ends of the air outlet plate 30 are consistent, allowing the air outlet plate 30 to move smoothly. This dual-drive component design significantly improves the adjustment speed of the air outlet plate 30. The simultaneous action of the two drive components accelerates the movement response of the air outlet plate 30, making the switching of air supply modes more rapid. Especially when users need to quickly change the air supply state, it can provide an immediate response, improving user satisfaction.

[0039] like Figure 3 As shown, a first protrusion 14 is provided on the air outlet frame 10, and a second protrusion 34 is provided on the surface of the air outlet plate 30 facing the air outlet frame 10. When the air outlet assembly is in the first air outlet state, the first protrusion 14 is used to limit and stop the second protrusion 34. In this way, the limiting and stopping between the first protrusion 14 and the second protrusion 34 can not only prevent the air outlet plate 30 from excessive movement and causing its functional failure, but also prevent the air supply mode from being inaccurate due to the positional deviation of the air outlet plate 30, ensuring that the air conditioning unit can supply air according to the mode set by the user, thus improving the user experience. At the same time, through the structural cooperation of the first protrusion 14 and the second protrusion 34, the safety and reliability of the air conditioning unit in the first air outlet state are increased, reducing the potential risks caused by loose parts or abnormal movement, and ensuring the safety of the user during use.

[0040] like Figure 3 , Figure 5 as well as Figure 6As shown, the air outlet assembly also includes a sealing structure 80. The sealing structure 80 is located on one side of the air outlet panel 30, close to the airflow area 32, to block at least part of the air outlet 13. By blocking part of the air outlet 13 with the sealing structure 80, the intensity and direction of the airflow through the air outlet panel 30 can be more precisely adjusted, ensuring more accurate control of airflow in different air supply modes (such as gentle breeze or no breeze), preventing leakage of hot or cold air, and improving the implementation effect of the air conditioning air supply mode and the user's comfort experience.

[0041] In this embodiment, by partially or completely blocking the air outlet 13, the sealing structure 80 can effectively reduce unnecessary loss of hot or cold air. Especially in the gentle breeze or no-wind air supply mode, it helps to concentrate the airflow to a specific area, reducing energy waste and achieving more efficient cooling or heating. Thus, when the air outlet 30 is in the first air outlet state and the second air outlet state, the sealing structure 80 is used to prevent cold air from entering the left side of the air outlet 13, which would cause condensation to accumulate on the decorative panel 40 in the cooling state.

[0042] Optionally, there may be one sealing structure 80, or two sealing structures 80, with at least a portion of the two sealing structures 80 arranged opposite each other and pressing against each other. This arrangement allows for greater flexibility in selecting the number of sealing structures 80 to meet different usage requirements and working conditions, and also improves the processing flexibility for operators. Furthermore, when there are two sealing structures 80, the pressing of at least a portion of the two sealing structures 80 enhances the sealing effect of the sealing structures 80.

[0043] In this embodiment, there are two sealing structures 80, at least a portion of which are arranged opposite to each other and pressed together, thereby more effectively preventing air leakage. The two sealing structures can form a double seal during the movement of the air outlet plate 30, maintaining good sealing performance even under high pressure or large airflow, avoiding loss of hot and cold air during air supply mode switching, and significantly improving the accuracy of the air conditioning supply mode and energy utilization efficiency.

[0044] Optionally, there are multiple through holes 31, which are spaced apart along the length and / or height of the air outlet plate 30; and / or, the sum of the areas of the multiple through holes 31 is 40% to 80% of the surface area of ​​the air outlet plate 30. In this way, by spaced out multiple through holes 31 on the air outlet plate 30, the airflow can be dispersed more evenly, avoiding excessive airflow concentration and uneven air delivery. This also ensures a more balanced airflow distribution within the room, providing a comfortable ambient temperature. The aforementioned relationship between the sum of the areas of the multiple through holes 31 and the surface area of ​​the air outlet plate 30 ensures the cooling or heating effect of the air conditioning unit in the windless air delivery mode, thus guaranteeing the user's cooling needs while ensuring a comfortable user experience.

[0045] In this embodiment, there are multiple through holes 31, which are spaced apart along the length and height of the air outlet plate 30, thereby increasing the air outlet efficiency and air outlet area of ​​the air outlet plate 30 to meet different air outlet needs of users.

[0046] Optionally, the inner wall of the through hole 31 is inclined, and the cross-sectional area of ​​the end of the through hole 31 near the air outlet frame 10 is smaller than the cross-sectional area of ​​the end of the through hole 31 away from the air outlet frame 10; wherein, the inner wall of the through hole 31 has a smooth transition. In this way, the inclined inner wall of the through hole 31 can guide the airflow, reduce wind resistance, and ensure the air volume of the air conditioner in the windless air supply mode. At the same time, the above-mentioned relationship between the cross-sectional area of ​​the end of the through hole 31 near the air outlet frame 10 and the cross-sectional area of ​​the end of the through hole 31 away from the air outlet frame 10 can increase the air supply range of the air conditioner in the windless air supply mode, ensure the cooling or heating effect of the air conditioner, and improve the comfort of the user.

[0047] Specifically, the air outlet component has a strong airflow mode, a gentle airflow mode, and a no-airflow mode:

[0048] When the air conditioning unit detects that the room temperature is above t1℃ (t1=27℃), that is, when the indoor temperature is high, the air outlet panel switches to the fully open state (first air outlet state), the air guide plate rotates to the most favorable position, and the air sweeping blades rotate to the highest angle to quickly achieve whole-house cooling.

[0049] When the air conditioning unit detects that the room temperature has dropped to t1℃ or below, that is, when the room reaches a comfortable temperature, the air outlet switch to a gentle airflow state (second airflow state) and rotates the upper and lower air sweeping blades to a horizontal position. The air conditioning unit achieves a gentle cooling airflow, and the airflow from the air conditioning unit reaches a relatively slow wind speed, thereby providing a comfortable indoor airflow and ensuring the user's comfort requirements.

[0050] When the air conditioning unit detects that the room temperature has dropped to t2℃ or below (t1=24℃), that is, when the room temperature is already low, it switches to the windless air supply state (second air supply state), and the air sweeping blades rotate to the lowest angle, thereby achieving windless air supply and improving cooling comfort.

[0051] like Figures 2 to 6As shown, this application also provides an air conditioning device, including a housing 90, a heat exchanger 100, an air duct assembly 110, an air outlet assembly, and a decorative panel 40. The housing 90 has an air inlet and an air outlet, and the heat exchanger 100 is disposed within the housing 90 and opposite to the air inlet. The air duct assembly 110 is disposed within the housing 90 and is located on one side of the heat exchanger 100. The air outlet of the air duct assembly 110 communicates with the air inlet 11 of the air outlet assembly. The decorative panel 40 covers the outside of the air outlet assembly. The air outlet assembly is the aforementioned air outlet assembly.

[0052] In this embodiment, the air outlet assembly includes three air guide plates, which are spaced apart along the extension direction of the housing 90.

[0053] In this embodiment, the control steps of the air conditioning unit are as follows:

[0054] Step S1: Users can directly turn on the air conditioning unit or schedule it to turn on at a specific time.

[0055] Step S2: The user selects the air conditioning fan mode.

[0056] Step S3: If the user selects the "High Wind Sensation" air supply mode, the control module controls the air outlet to rotate to the fully open state, the left and right air guides to rotate to the most efficient air outlet position, and the up and down sweeping blades to rotate to the horizontal position. At this time, the air conditioning unit has the maximum air volume, achieving direct airflow to people and high wind sensation long-distance air supply, in order to meet the user's need for rapid cooling with a "high wind sensation" when the indoor air is hot, and to ensure rapid temperature rise when the air conditioning unit is heating in winter, so that the air conditioning unit can deliver warm air to the room area or the area where people are active in a timely manner.

[0057] If the user selects the "gentle breeze" airflow mode, the control module rotates the air outlet plate until the air vents are positioned at the air outlet, and the left and right air guide plates rotate to the optimal position for airflow. The air outlet plate effectively blocks the airflow from the outlet, forcing the air from the air conditioner to pass through the holes in the air outlet plate, thus ensuring a lower airflow speed. This prevents high-speed airflow from reaching the user's activity area, improving user comfort.

[0058] If the user selects the "windless" air supply mode, the control module controls the air outlet to rotate to the fully open state and the left and right air guides to rotate to the leftmost or rightmost position. At this time, the air volume of the air conditioner is at its minimum when the air outlet rotates to the through hole. This not only prevents the wind from blowing at a high speed into the human activity area, but also avoids the wind blowing directly on the human body, achieving cooling without blowing on people and meeting the user's "windless" comfort needs.

[0059] Step S4: Users can directly turn off or schedule a specific time to turn off the air conditioning unit. At this time, the air conditioner's fan stops running, and the control module controls the air guide plate, the air sweeping blades, and the air outlet plate to close, completely sealing the air outlet.

[0060] Specifically, by controlling the relative position of the air outlet panel to the air outlet, air can be discharged in the desired air discharge mode. This effectively realizes an adjustable control method for multiple air discharge modes at the air outlet, increasing the practicality of the air conditioning unit, meeting different user needs, and improving user comfort.

[0061] As can be seen from the above description, the embodiments of this utility model achieve the following technical effects:

[0062] The air outlet assembly includes an air outlet frame, an air guide plate, and an air outlet panel. The air outlet frame has an air inlet, a mounting cavity, and an air outlet, with the air inlet communicating with the air outlet through the mounting cavity. The air guide plate is movably disposed within the mounting cavity to block or obstruct at least part of the air outlet. The air outlet panel is movably disposed and has through holes. Thus, the movable arrangement of the air outlet panel and the presence of the through holes allow the air delivery mode of the air outlet assembly to be adjusted according to the user's needs. When the air outlet is in its first air outlet state, the airflow is directly discharged from the outlet through the guide plate because the air outlet avoids the air vent, achieving a high-volume, long-distance air delivery mode suitable for rapid cooling or heating needs. When the air outlet is in its second air outlet state, the airflow needs to pass through the guide plate and through holes, thus creating a gentle breeze or windless air delivery mode, making the air delivery softer and avoiding direct airflow onto the human body, improving user comfort. This solves the problem in existing technologies where direct openings in the guide plate affect the heat exchange efficiency of the air conditioning unit and user comfort. Simultaneously, the guide plate is movably installed within the mounting cavity, and its position can be adjusted according to different air delivery modes, blocking or avoiding the air vent. This helps enhance the air delivery effect, especially in the high-wind-feel air delivery mode, where adjusting the guide plate can change the direction and concentration of the airflow, effectively increasing the air delivery distance and allowing the cool or warm air to cover a wider indoor area.

[0063] Obviously, the embodiments described above are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of this utility model.

[0064] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0065] It should be noted that the terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in sequences other than those illustrated or described herein.

[0066] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. An air outlet assembly, comprising: The air outlet assembly comprises: an air outlet frame (10) having an air inlet (11), a mounting cavity (12) and an air outlet (13), the air inlet (11) being in communication with the air outlet (13) through the mounting cavity (12); an air baffle (20) movably arranged in the mounting cavity (12) to block or avoid at least part of the air outlet (13); an air outlet plate (30) movably arranged, the air outlet plate (30) having a through hole (31); wherein the air outlet plate (30) has a first air outlet state and a second air outlet state, when the air outlet plate (30) is in the first air outlet state, the air outlet plate (30) avoids the air outlet (13); when the air outlet plate (30) is in the second air outlet state, the through hole (31) is in communication with the air outlet (13) to make the airflow sequentially pass through the air outlet (13) and the through hole (31) and then be discharged from the air outlet assembly.

2. The air outlet assembly of claim 1, wherein, Along the length direction of the air outlet plate (30), the air outlet plate (30) has a through air area (32) and a blocking area (33) connected with each other, the through hole (31) is located in the through air area (32); wherein, when the air outlet plate (30) is in the second air outlet state, the through air area (32) is arranged opposite to the air outlet (13) and the blocking area (33) avoids the air outlet (13); the length direction of the air outlet plate (30) is consistent with the movement direction of the air outlet plate (30).

3. The air outlet assembly of claim 1, wherein, The air outlet plate (30) is an arc-shaped plate, the arc-shaped plate is located on the inner side of a decorative plate (40) of an air conditioner device, and the arc-shaped plate is adapted to the shape of the decorative plate (40).

4. The air outlet assembly of claim 1, wherein, The air outlet assembly further comprises a driving assembly, the driving assembly comprising: a driving device (50); a transmission assembly comprising a gear and a rack (70), the gear being connected with a driving shaft of the driving device (50), the rack (70) being arranged on the plate surface of the air outlet plate (30); wherein the gear is engaged with the rack (70) to drive the rack (70) and the air outlet plate (30) to move.

5. The air outlet assembly of claim 4, wherein, The driving assembly is one; or the driving assembly is two, one of the driving assemblies is located at one end of the air outlet plate (30) along the height direction of the air outlet plate (30), and the other driving assembly is located at the other end of the air outlet plate (30).

6. The air outlet assembly of claim 1, wherein, A first protrusion (14) is arranged on the air outlet frame (10), a second protrusion (34) is arranged on the plate surface of the air outlet plate (30) facing the air outlet frame (10), and the first protrusion (14) is used for limiting and stopping the second protrusion (34) when the air outlet assembly is in the first air outlet state.

7. The air outlet assembly of claim 2, wherein, The air outlet assembly further comprises: a sealing structure (80) located on one side of the air outlet plate (30), the sealing structure (80) being arranged close to the through air area (32) to shield at least part of the air outlet (13); The sealing structure (80) is one, or the sealing structure (80) is two, and at least part of the two sealing structures (80) are oppositely arranged and pressed against each other.

8. The air outlet assembly of claim 1, wherein, The through holes (31) are multiple, the multiple through holes (31) are arranged at intervals along the length direction and / or the height direction of the air outlet plate (30), and / or the sum of the areas of the multiple through holes (31) is 40%-80% of the surface area of the air outlet plate (30).

9. The air outlet assembly of claim 1, wherein, The inner wall of the through hole (31) is obliquely arranged, and the cross-sectional area of one end of the through hole (31) close to the air outlet frame (10) is smaller than the cross-sectional area of the other end of the through hole (31) away from the air outlet frame (10); wherein the inner wall of the through hole (31) is smoothly transitioned.

10. An air conditioning apparatus characterized by comprising: Comprise: A cabinet (90) having an air inlet portion and an air outlet portion; A heat exchanger (100) arranged in the cabinet (90) and opposite to the air inlet portion; An air duct assembly (110) arranged in the cabinet (90), the air duct assembly (110) being located on one side of the heat exchanger (100); An air outlet assembly, the air outlet of the air duct assembly (110) being in communication with the air inlet (11) of the air outlet assembly; A decorative plate (40) covering the outside of the air outlet assembly; Wherein, the air outlet assembly is any one of the air outlet assemblies in claims 1-9.