Air conditioner

Through the combination of the superimposed frame outer side design and multi-layer air guide plates, the problems of structural complexity and increased cost in the air conditioner's anti-direct blowing design are solved, and the comfort, intelligence and efficient air supply effect of the air conditioner are achieved.

CN223412231UActive Publication Date: 2025-10-03FOSHAN VIOMI ELECTRICAL TECH
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Patent Information

Application Number
CN202422947942.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-10-03
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

Existing air conditioners require redesigning the middle frame structure and adding a driver in the anti-direct blowing design, which leads to increased complexity and cost. At the same time, the traditional air guide plate lacks flexibility and adaptability.

Method used

The outer side of the superimposed frame is designed, the first air guide plate is connected to the first drive component, the second air guide plate is located at the air outlet, and high-frequency and small-amplitude swing is achieved through the second drive component. Combined with the settings of the third air guide plate and the fourth air guide plate, a multi-layer air duct structure is formed to achieve flexible adjustment of the airflow and generation of vortex airflow.

Benefits of technology

It achieves the air conditioner's anti-direct blowing effect, improves user comfort and intelligent experience, reduces the air conditioner's volume and energy consumption, enhances space utilization and airflow stability, and adapts to the generation of vortex airflow under different wind speeds.

✦ Generated by Eureka AI based on patent content.

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Abstract

The air conditioner comprises a shell, a stacking frame, a first air guide plate, a first driving assembly and a second air guide plate, the shell is provided with a panel, the panel is provided with an air outlet, the stacking frame is arranged on the outer side of the panel, the first air guide plate is arranged on the side, away from the panel, of the stacking frame, and the first driving assembly is assembled on the stacking frame. The first driving assembly is connected with the first air guide plate to drive the first air guide plate to move relative to the air outlet, when the first air guide plate is far away from the stacking frame, an air channel is formed between the first air guide plate and the stacking frame, the second air guide plate is rotationally assembled on the stacking frame and located at the air outlet, and the stacking frame is arranged on the outer side of the shell. The first driving assembly is assembled on the stacking frame, the first air guide plate is connected with the first driving assembly, the second air guide plate is also assembled on the stacking frame, and therefore transformation of the direct blowing prevention function of the air conditioner is completed under the condition that the design of the air conditioner middle frame and the design of internal parts of the air conditioner middle frame are not changed.
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Description

Technical Field

[0001] The utility model relates to the technical field of air conditioners, in particular to an air conditioner. Background Art

[0002] To enhance user comfort and prevent cold or hot air from blowing directly onto the body, which could cause discomfort, many existing air conditioners feature movable air deflectors on the front panel. This design controls the movement of the air deflector, creating an air duct between the front panel and the air deflector, thereby directing the airflow and effectively avoiding direct airflow, significantly improving the user experience. However, while this anti-direct airflow technology significantly improves user comfort, its implementation presents some issues.

[0003] First, since the structural design of the air guide plate needs to be able to move flexibly to change the shape of the air duct, the traditional air conditioner middle frame structure often cannot be directly adapted and must be redesigned.

[0004] Secondly, precise control of the air deflector typically requires additional drivers and complex transmission structures. These extra components not only increase the internal space occupied by the air conditioner, but also make the internal structure more compact and complex, resulting in higher production and design costs. Utility Model Content

[0005] In order to overcome at least one of the defects of the above-mentioned prior art, the present invention provides an air conditioner, which can solve the problem that when the air conditioner is equipped with an outer air guide plate of the panel, the air conditioner middle frame and internal components need to be redesigned.

[0006] The technical solution adopted by the present invention to solve the problem is:

[0007] An air conditioner, comprising:

[0008] A housing, wherein the housing has a panel, and the panel is provided with an air outlet;

[0009] a superposition frame, the superposition frame being arranged on the outer side of the panel;

[0010] a first air guide plate, the first air guide plate being arranged on a side of the stacking frame away from the panel;

[0011] a first drive assembly, the first drive assembly being assembled to the stacking frame and connected to the first air guide plate to drive the first air guide plate to move relative to the air outlet, wherein when the first air guide plate moves away from the stacking frame, an air duct is formed between the first air guide plate and the stacking frame;

[0012] The second air guide plate is rotatably assembled on the superposition frame, and the second air guide plate is located at the air outlet.

[0013] By adopting the above solution, the superposition frame is arranged on the outside of the shell, the first drive assembly is assembled on the superposition frame, the first air guide plate is connected to the first drive assembly, and the second air guide plate is also assembled on the superposition frame, thereby completing the transformation of the air conditioner without changing the design of the air conditioner middle frame and its internal components. The first air guide plate can flexibly adjust its position under the drive of the first drive assembly to form an air duct between the superposition frame, effectively preventing cold air or hot air from blowing directly to the user. At the same time, the second air guide plate is located at the air outlet, which can further adjust the distribution and direction of the airflow. This dual air guide design not only improves the comfort of use, but also enhances the intelligence and personalized experience of the air conditioner, and the second air guide plate can swing back and forth at a high frequency and a small amplitude to generate vortex airflow, thereby achieving faster mixed cooling.

[0014] Furthermore, the second air guide plate is connected to a second driving assembly, the second driving assembly is assembled on the stacking frame, and the second driving assembly drives the second air guide plate to swing back and forth.

[0015] By adopting this solution, the second drive assembly drives the second air guide plate to swing back and forth, further fine-tuning the direction of the airflow. This design allows users to flexibly adjust the airflow diffusion angle and range according to actual needs, meeting the needs of different scenarios.

[0016] Furthermore, the stacking frame is provided with an assembly cavity at the side end surface of the air conditioner, and the first driving assembly includes:

[0017] a first driver, the first driver being assembled in the assembly cavity;

[0018] a first connecting rod, the first connecting rod being arranged through the assembly cavity, and a portion of the first connecting rod located inside the assembly cavity being in transmission connection with the first driver;

[0019] The second connecting rod, the first air guide plate is fixedly connected to the second connecting rod, and the second connecting rod and the part of the first connecting rod located outside the assembly cavity are rotatably connected, so that when the first driver drives the first connecting rod to rotate, the second connecting rod is driven to rotate around the rotation connection between the second connecting rod and the first connecting rod while moving with the first connecting rod.

[0020] By adopting this solution, by assembling the first driver within the assembly cavity of the stacking frame, the space on the side end face of the air conditioner is effectively utilized, avoiding the additional space occupied inside or outside the air conditioner. This compact design not only reduces the overall size of the air conditioner but also improves space utilization.

[0021] Furthermore, the first driving assembly also includes a third connecting rod, which is arranged to pass through the assembly cavity, and the part of the third connecting rod located inside the assembly cavity is rotatably connected to the superposition frame, and the part of the third connecting rod located outside the assembly cavity is rotatably connected to the second connecting rod, and the first connecting rod and the third connecting rod are arranged in parallel, so that when the first connecting rod drives the second connecting rod to move, the third connecting rod moves synchronously with the first connecting rod.

[0022] By adopting this solution, adding a third link, parallel to the first link, provides an additional support point and force transmission path for the second link. When the first link drives the second link, the synchronized movement of the third link and the first link helps maintain the stability and balance of the second link, reducing vibration or deflection caused by uneven force on a single link.

[0023] Furthermore, the middle portion of the stacking frame is recessed toward the panel to form a groove, the first air guide plate is located in the groove, and the groove walls of the groove are all hollow structures.

[0024] By adopting the above solution, the first air guide plate is located in the groove, which can more effectively guide the direction of the airflow. The wind guided by the first air guide plate will form a horizontal outlet through the groove wall of the groove. This design significantly reduces the possibility of cold air blowing directly onto the human body, achieving the effect of preventing direct blowing and improving user comfort. In addition, when the cold air flow passes through the groove wall, since the groove wall participates in the work of guiding the airflow, its outer wall may be affected by the cold air flow and condensation may occur. The use of a hollow structure can form an air insulation layer, thereby reducing the risk of condensation.

[0025] Furthermore, it also includes a third air guide plate, which is rotatably mounted on the shell and located at the bottom of the air outlet, and the second air guide plate is located above the third air guide plate.

[0026] By adopting this solution, the third air deflector allows the air conditioner to have more air outlet directions. Combined with the adjustment of the first and second air deflectors, air can be delivered at different angles and directions, ensuring more even airflow distribution indoors. Adjusting the third air deflector also allows for vertical airflow, reducing the possibility of cold or warm air blowing directly onto the body and improving user comfort.

[0027] Furthermore, the stacking frame is provided with a avoidance opening at the air outlet, the third air guide plate is located at the avoidance opening, and the third air guide plate is connected to the groove wall of the groove.

[0028] By adopting the above solution, by connecting the third air guide plate to the groove wall, even if the stacked frame is provided with a relief opening at the air outlet, it can ensure that the vertical air outlet function is achieved by adjusting the angle of the third air guide plate on the basis of horizontal air outlet. This structure increases the flexibility of the air supply of the air conditioner and meets the needs of different users in different scenarios. The third air guide plate is connected to the groove wall on both sides of the relief opening, allowing the third air guide plate to function as a spacing groove wall and guide the airflow vertically, thereby maintaining the integrity of the stacked frame structure and helping to improve the overall stability and durability of the air conditioner.

[0029] Furthermore, a heat insulation layer is provided between the panel and the stacking frame.

[0030] By adopting the above solution, due to the setting of the first air guide plate, when the air conditioner is discharging air horizontally, cold air will continue to flow through the stacking frame, which will cause a large temperature difference between the outside of the stacking frame and the inside of the air conditioner. Providing an insulating layer between the panel and the stacking frame can significantly reduce the temperature gradient during the exchange of hot and cold air. While reducing the generation of condensed water, it can also effectively prevent the direct transfer of heat or cold, thereby reducing unnecessary energy loss and improving the energy efficiency of the air conditioner.

[0031] Furthermore, a fourth air guide plate is provided on the side of the stacking frame facing the air outlet, and the fourth air guide plate is inclined in a direction away from the first air guide plate to guide the airflow to pass through the gap between the stacking frame and the panel.

[0032] By adopting the above solution, the design of the fourth air guide plate enables the air flow to flow along a predetermined path when passing through the air outlet, reducing the leakage of air in the gap between the superimposed frame and the panel, which helps to improve the air supply efficiency of the air conditioner and ensure that more air can be directly delivered to the indoor space. In addition, by reducing the leakage of air in the gap, the setting of the fourth air guide plate also helps to reduce the energy consumption of the air conditioner.

[0033] Furthermore, the stacking frame and the fourth air guide plate are integrally formed.

[0034] By adopting the above solution, the stacking frame and the fourth air guide plate are integrally formed to ensure a seamless connection between the stacking frame and the fourth air guide plate. The seamless connection greatly reduces the possibility of airflow escaping from the connecting gap when passing through, preventing condensation from occurring. At the same time, it also prevents problems such as airflow disturbance caused by gaps, thereby achieving the effect of improving airflow stability.

[0035] In summary, the air conditioner provided by the present invention has the following technical effects:

[0036] 1. The stacking frame is arranged on the outside of the shell, the first drive assembly is assembled on the stacking frame, the first air guide plate is connected to the first drive assembly, and the second air guide plate is also assembled on the stacking frame, thereby completing the transformation of the air conditioner without changing the design of the air conditioner middle frame and its internal components.

[0037] 2. Driven by the first drive assembly, the first air guide plate can adjust its position, forming an air duct between the stacking frame and the airflow, effectively preventing cold or hot air from blowing directly towards the user. Meanwhile, the second air guide plate, located at the air outlet, further adjusts the distribution and direction of the airflow. This dual air guide design not only improves user comfort but also enhances the intelligent and personalized experience of the air conditioner. Furthermore, the second air guide plate can generate vortex airflow through high-frequency, small-amplitude reciprocating motion, achieving faster mixed cooling. BRIEF DESCRIPTION OF THE DRAWINGS

[0038] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;

[0039] Figure 2 This is a schematic diagram of the explosion structure of the utility model;

[0040] Figure 3 This is a schematic structural diagram of the stacking frame and the first panel of the present invention;

[0041] Figure 4 This is a structural diagram of the stacking frame and the second air guide plate of the present invention;

[0042] Figure 5 This is a schematic diagram of the exploded structure of the superimposed frame and the first panel of the present invention;

[0043] Figure 6 This is a schematic structural diagram of the first drive assembly of the present utility model;

[0044] Figure 7 This is a schematic diagram of the exploded structure of the first drive assembly of the present invention;

[0045] Figure 8 This is a schematic cross-sectional view of the utility model;

[0046] Figure 9 For this utility model Figure 8 A magnified view of part A;

[0047] Figure 10 For this utility model Figure 8 A magnified view of part B;

[0048] Figure 11 This is a schematic diagram of the airflow in the normal air outlet state of the present invention;

[0049] Figure 12This is a schematic diagram of vortex airflow generation in the present invention;

[0050] Figure 13 This is a schematic diagram of the airflow in the horizontal air outlet state of the present invention;

[0051] Figure 14 This is a schematic diagram of the airflow in the vertical air outlet state of the utility model.

[0052] Among them, the meanings of the figure marks are as follows: 1. Shell; 11. Panel; 12. Air outlet; 2. Stacking frame; 21. Groove; 22. Groove wall; 23. Avoidance; 24. Assembly cavity; 3. First air guide plate; 4. First drive assembly; 41. First drive; 42. First connecting rod; 43. Second connecting rod; 44. Third connecting rod; 5. Second air guide plate; 6. Second drive assembly; 7. Third air guide plate; 8. Insulation layer; 9. Fourth air guide plate. DETAILED DESCRIPTION

[0053] For better understanding and implementation, the technical solutions in the embodiments of the present invention will be clearly and completely described and discussed below in conjunction with the drawings of the present invention. Obviously, what is described here is only a part of the examples of the present invention, not all the examples. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.

[0054] In order to facilitate the understanding of the embodiments of the present invention, the following will be further explained with reference to specific embodiments as examples in conjunction with the drawings, and each embodiment does not constitute a limitation on the embodiments of the present invention.

[0055] In the description of the present invention, it should be noted that the terms "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they cannot be understood as limiting the present invention.

[0056] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art in the art of the present invention. The terms used herein in the specification of the present invention are only for the purpose of describing specific embodiments and are not intended to limit the present invention.

[0057] See Figures 1-14The utility model discloses an air conditioner, including a shell 1, a superimposed frame 2, a first air guide plate 3, a first driving assembly 4 and a second air guide plate 5. The shell 1 has a panel 11, and the panel 11 is provided with an air outlet 12. The superimposed frame 2 is arranged on the outside of the panel 11, and the first air guide plate 3 is arranged on the side of the superimposed frame 2 away from the panel 11. The first driving assembly 4 is assembled on the superimposed frame 2, and the first driving assembly 4 is connected to the first air guide plate 3 to drive the first air guide plate 3 to move relative to the air outlet 12. When the first air guide plate 3 is away from the superimposed frame 2, an air duct is formed between the first air guide plate 3 and the superimposed frame 2. The second air guide plate 5 is rotatably assembled on the superimposed frame 2, and the second air guide plate 5 is located at the air outlet 12.

[0058] For details, see Figure 1-Figure 5 As shown, the shell 1 is the shell 1 of the air conditioner, and the panel 11 is the panel surface of the air conditioner away from the side of the wall on which it is installed. The panel 11 is provided with an air outlet 12 for normal air outlet of the air conditioner. The superposition frame 2 is arranged on the outside of the panel 11, that is, arranged in the direction of the panel 11 away from the side of the wall on which it is installed. The first air guide plate 3 is arranged on the side of the superposition frame 2 away from the panel 11. The first drive component 4 is assembled on the superposition frame 2. The first drive component 4 is connected to the first air guide plate 3 to drive the first air guide plate 3 to move relative to the air outlet 12. The specific direction of movement is not limited here. It is sufficient to drive the first air guide plate 3 to form an air duct between the superposition frame 2. The second air guide plate 5 is rotatably assembled on the superposition frame 2 and is located at the air outlet 12. It is mainly used to adjust the wind direction. When necessary, a vortex street airflow is generated by the small-amplitude high-frequency reciprocating motion of the second air guide plate 5 to improve the cooling effect. In the above structure, the first drive assembly 4 is assembled on the superimposed frame 2, the first air guide plate 3 is connected to the first drive assembly 4, and the second air guide plate 5 is also assembled on the superimposed frame 2, thereby completing the transformation of the air conditioner without changing the design of the air conditioner middle frame and its internal components.

[0059] The working principle of the above structure is:

[0060] When the anti-direct blowing function is turned on, an air duct is formed between the first air guide plate 3 and the stacking frame 2, and the airflow is guided to the air duct between the first air guide plate 3 and the stacking frame 2 through the second air guide plate 5 or other air guide parts. At this time, the airflow mainly diffuses around along the plate surface of the first air guide plate 3 toward the stacking frame 2 side, thereby achieving the effect of preventing direct blowing.

[0061] See Figure 4 As shown, in some embodiments, the second air guide plate 5 is connected to a second driving assembly 6, the second driving assembly 6 is assembled on the stacking frame 2, and the second driving assembly 6 drives the second air guide plate 5 to swing back and forth.

[0062] Specifically, the second drive assembly 6 is assembled to the stacking frame 2, and the second air deflector 5 is in transmission connection with the second drive assembly 6, so that the second drive assembly 6 can drive the second air deflector 5 to swing back and forth. The second drive assembly 6 can be a combination of a motor and a reducer, and the motor drives the second air deflector 5 to swing through the reducer. The above structure is driven by the second drive assembly 6, and the second air deflector 5 can swing back and forth, thereby further refining the adjustment of the airflow direction. This design allows users to flexibly adjust the diffusion angle and range of the airflow according to actual needs, meeting the needs of different scenarios.

[0063] More importantly, when the second drive assembly 6 drives the second air guide plate 5 to swing back and forth at a small amplitude and high frequency, vortex airflow will be generated. According to the Karman vortex formula f=Sr(v / d), the frequency f of each single vortex in the vortex, the flow velocity v, the cylinder diameter d, and the Strouhal number Sr, the generation of vortex airflow is closely related to the diameter of the turbulent body (d value) and the turbulent velocity. This design drives the second air guide plate 5 to swing back and forth at a high frequency and small amplitude through the second drive assembly 6, which is actually dynamically adjusting the "equivalent d value" so that vortex airflow can be induced at different wind speeds. This dynamic adjustment mechanism has higher flexibility and adaptability than the traditional fixed-shape second air guide plate 5. In the prior art, in order to generate vortex airflow, it is often necessary to design the shape of the second air guide plate 5 for a specific wind speed, which greatly limits the application range of vortex airflow. However, this design can match the multi-level wind speed preset by the air conditioner by adjusting the swing frequency and amplitude of the second air guide plate 5, ensuring that vortex airflow can be effectively generated at each wind speed. This design breaks the limitations of traditional technology and improves the application efficiency and wide range of vortex airflow.

[0064] See Figure 4-Figure 7 As shown, in some embodiments, the superimposed frame 2 is provided with an assembly cavity 24 at the side end surface of the air conditioner, and the first drive assembly 4 includes a first driver 41, a first connecting rod 42 and a second connecting rod 43. The first driver 41 is assembled in the assembly cavity 24, and the first connecting rod 42 is arranged through the assembly cavity 24. The part of the first connecting rod 42 located inside the assembly cavity 24 is transmission-connected to the first driver 41, the first air guide plate 3 is fixedly connected to the second connecting rod 43, and the second connecting rod 43 is rotationally connected to the part of the first connecting rod 42 located outside the assembly cavity 24, so that when the first driver 41 drives the first connecting rod 42 to rotate, it drives the second connecting rod 43 to rotate around the rotation connection between the second connecting rod 43 and the first connecting rod 42 while moving with the first connecting rod 42.

[0065] Specifically, the stacking frame 2 extends to the side end face of the air conditioner and is located at the side end face of the air conditioner. The stacking frame 2 is provided with an assembly cavity 24. The first driver 41 is assembled in the assembly cavity 24. The first connecting rod 42 is arranged through the assembly cavity 24, and one end is transmission-connected to the first driver 41, and the other end is rotationally connected to the second connecting rod 43. When the first driver 41 is in operation, it can drive the first connecting rod 42 to rotate. The rotation of the first connecting rod 42 drives the second connecting rod 43 to rotate, and then drives the first air deflector 3 mounted on the second connecting rod 43 to move relative to the stacking frame 2. The above structure effectively utilizes the space on the side end face of the air conditioner by assembling the first driver 41 in the assembly cavity 24 of the stacking frame 2, avoiding the additional occupation of other space inside or outside the air conditioner. This compact design not only reduces the overall volume of the air conditioner but also improves space utilization.

[0066] More importantly, compared to existing telescopic structures, the linkage structure consisting of the first driver 41, the first connecting rod 42, and the second connecting rod 43 is much simpler, reducing the number and complexity of components. Telescopic structures typically require a telescopic power unit, complex guide structures, and sufficient space for telescopic movement, increasing the difficulty of design and manufacturing. However, the linkage structure achieves precise control of the first air deflector 3 through a simple connection and rotation mechanism, significantly simplifying the structure.

[0067] To ensure smooth expansion and contraction and a clear air path between the first air guide plate 3 and the stacking frame 2, telescopic structures often require a large gap. This not only increases the air conditioner's size upon shipment but also increases unnecessary material consumption and costs. The connecting rod structure, on the other hand, naturally forms an air path as it drives the first air guide plate 3, eliminating the need for a separate gap and effectively reducing the air conditioner's size, making it more compact.

[0068] Air conditioners with a connecting rod design offer significant advantages in transportation and sales due to their smaller size and greater overall integrity. Smaller size means higher transportation efficiency and lower costs, while greater overall integrity reduces the risk of damage from collisions or squeezing during transportation, helping to preserve the integrity and aesthetics of the product.

[0069] During transportation, the connecting rod structure does not require a gap in the air duct, so it has greater stability and rigidity, and can withstand greater external forces and impacts. In contrast, the telescopic structure is more susceptible to damage during transportation due to the gaps and more fragile telescopic parts.

[0070] Further, see Figure 4-Figure 7As shown, the first drive assembly 4 also includes a third connecting rod 44, which is arranged through the assembly cavity 24, and the part of the third connecting rod 44 located inside the assembly cavity 24 is rotatably connected to the stacking frame 2, and the part of the third connecting rod 44 located outside the assembly cavity 24 is rotatably connected to the second connecting rod 43, and the first connecting rod 42 and the third connecting rod 44 are arranged in parallel, so that when the first connecting rod 42 drives the second connecting rod 43 to move, the third connecting rod 44 moves synchronously with the first connecting rod 42.

[0071] Specifically, by adding a third link 44, and by arranging the third link 44 parallel to the first link 42, it can provide an additional support point and force transmission path for the second link 43. When the first link 42 drives the second link 43 to move, the synchronous movement of the third link 44 and the first link 42 helps maintain the stability and balance of the second link 43, reducing vibration or deviation caused by uneven force on a single link.

[0072] See Figure 5 As shown, of course, in order to improve the stability of the movement of the first air guide plate 3, a group of first drive components 4 can be set on both side end surfaces of the air conditioner, and correspondingly, an assembly cavity 24 for assembling the first drive component 4 can also be provided on both sides of the superimposed frame 2.

[0073] See Figure 2 As shown, in some embodiments, in order to further optimize the direction of the airflow, the middle of the superimposed frame 2 is recessed toward the panel 11 to form a groove 21, the first air guide plate 3 is located in the groove 21, and the groove walls 22 of the groove 21 are all hollow structures.

[0074] Specifically, the middle portion of the stacking frame 2 is recessed toward the panel 11 to form a groove 21, and the first air guide plate 3 is located within the groove 21, which can more effectively guide the direction of the airflow. The wind guided by the first air guide plate 3 will form a horizontal outlet through the groove wall 22 of the groove 21. This structure can significantly reduce the possibility of cold air blowing directly onto the human body, achieving the effect of preventing direct blowing and improving user comfort. When the cold air flows through the groove wall 22 of the groove 21, since the groove wall 22 participates in the work of guiding the airflow, its outer wall may be affected by the cold airflow and condensation may occur. The groove wall 22 of the groove 21 is a hollow structure that can form an air insulation layer 8, thereby reducing the risk of condensation.

[0075] See Figure 2 and Figure 14 As shown, in some embodiments, in order to increase the air outlet direction of the air conditioner, the air conditioner also includes a third air guide plate 7, which is rotatably installed on the shell 1 and located at the bottom of the air outlet 12, and the second air guide plate 5 is located above the third air guide plate 7.

[0076] Specifically, by adjusting the third air guide plate 7, vertical air outlet can be achieved, reducing the possibility of cold air or warm air blowing directly onto the human body, thereby improving the user's comfort. The setting of the third air guide plate 7 enables the air conditioner to have more air outlet directions. Combined with the adjustment of the first air guide plate 3 and the second air guide plate 5, air supply at different angles and directions can be achieved, thereby ensuring a more uniform distribution of indoor air flow.

[0077] See Figure 1 、 Figure 2 and Figure 14 As shown, further, the stacking frame 2 is provided with a avoidance opening 23 at the air outlet 12 , the third air guide plate 7 is located at the avoidance opening 23 , and the third air guide plate 7 is connected to the groove wall 22 of the groove 21 .

[0078] Specifically, by connecting the third air guide plate 7 with the groove walls 22 of the groove 21, even if the stacking frame 2 is provided with a relief opening 23 at the air outlet 12, vertical air outlet can be achieved by adjusting the angle of the third air guide plate 7, while still ensuring horizontal air outlet. This structure increases the flexibility of the air conditioner's air supply and meets the needs of different users in different scenarios. The third air guide plate 7 connects with the groove walls 22 on both sides of the relief opening 23, allowing the third air guide plate 7 to function as a spacing wall 22 and guide airflow vertically, thereby maintaining the structural integrity of the stacking frame 2 and helping to improve the overall stability and durability of the air conditioner.

[0079] See Figure 8-10 As shown, in some embodiments, in order to prevent condensation in the air conditioner, a heat insulation layer 8 is provided between the panel 11 and the superimposed frame 2 .

[0080] Specifically, due to the setting of the first air guide plate 3, when the air conditioner is discharging air horizontally, cold air will continue to flow through the stacking frame 2, which will cause a large temperature difference between the outside of the stacking frame 2 and the inside of the air conditioner, and then condensation will occur. An insulation layer 8 is set between the panel 11 and the stacking frame 2. The insulation layer 8 can be made of foam glue or directly form an air insulation layer 8 through the reserved gap between the panel 11 and the stacking frame 2. The insulation layer 8 is set between the panel 11 and the stacking frame 2. It can significantly reduce the temperature gradient during the exchange of hot and cold air. While reducing the generation of condensed water, it can also effectively prevent the direct transfer of heat or cold, thereby reducing unnecessary energy loss and improving the energy efficiency of the air conditioner.

[0081] See Figure 8-10 As shown, in some embodiments, a fourth air guide plate 9 is provided on the side of the superimposed frame 2 facing the air outlet 12, and the fourth air guide plate 9 is inclined in a direction away from the first air guide plate 3 to guide the airflow across the gap between the superimposed frame 2 and the panel 11.

[0082] Specifically, the optional setting methods of the fourth air guide plate 9 are: extending the fourth air guide plate 9 into the air outlet 12 and crossing the gap between the superimposed frame 2 and the panel 11. Of course, other setting methods can also be used, as long as it can guide the airflow to cross the gap between the superimposed frame 2 and the panel 11. The inclined design of the fourth air guide plate 9 ensures that the airflow can flow smoothly along the predetermined path after leaving the air outlet 12, and will not flow into the gap between the superimposed frame 2 and the panel 11, thereby significantly reducing the condensation phenomenon caused by the large temperature difference inside the panel 11. In addition, the setting of the fourth air guide plate 9 can make the airflow flow according to the preset path, and no airflow will escape from between the superimposed frame 2 and the panel 11. The airflow can pass through the air duct more efficiently and directly act on the indoor environment, thereby improving the cooling / heating efficiency of the air conditioner.

[0083] On the basis of the structure of setting the fourth air guide plate 9 in the superimposed frame 2, the fourth air guide plate 9 is an arc-shaped plate and extends into the air outlet 12 of the air conditioner. Since the arc-shaped fourth air guide plate 9 can guide the airflow more accurately, it flows according to a predetermined trajectory, reduces the turbulence and eddy current phenomenon of the airflow, and ensures the stability and continuity of the airflow.

[0084] Based on the structure of the stacking frame 2 provided with the fourth air guide plate 9, the stacking frame 2 and the fourth air guide plate 9 are integrally formed. The integral formation of the stacking frame 2 and the fourth air guide plate 9 ensures a seamless connection between the stacking frame 2 and the fourth air guide plate 9. The seamless connection greatly reduces the possibility of airflow escaping through the connection gap during passage, preventing condensation. It also prevents problems such as airflow disturbance caused by the gap, thereby achieving the effect of improving airflow stability.

[0085] The working principle of the above structure is:

[0086] When normal air flow is required, refer to Figure 11 As shown, the first driving component 4 drives the first air guide plate 3 to move, so that the first air guide plate 3 is moved away from the air outlet 12 of the air conditioner, thereby completing the air outlet of the air conditioner. Furthermore, the swing wind effect can be achieved by adjusting the second air guide plate 5 and the third air guide plate 7.

[0087] When vortex flow is required, refer to Figure 12 As shown, the first drive component 4 drives the first air guide plate 3 to move, so that the first air guide plate 3 moves away from the air-conditioning outlet 12, and the second drive component 6 drives the second air guide plate 5 to swing back and forth with a small amplitude and high frequency, so that the equivalent d value generated by the swing of the second air guide plate 5 and the wind speed (i.e., the flow velocity) generate vortex airflow, thereby improving the cooling / heating effect.

[0088] When horizontal airflow is required, refer to Figure 13As shown, the first driving component 4 drives the first air guide plate 3 to move, so that the first air guide plate 3 is offset a small distance from the air-conditioning outlet 12. At the same time, as the first air guide plate 3 moves, an air duct is formed between the first air guide plate 3 and the superimposed frame 2, and the second air guide plate 5 rotates to a horizontal state. The airflow discharged from the air outlet 12 is conducted to the groove wall 22 of the groove 21 through the action of the first air guide plate 3, and is guided by the groove wall 22 to complete the air outlet on all four sides of the first air guide plate 3.

[0089] When vertical airflow is required, refer to Figure 14 As shown, the third air guide plate 7 rotates to a vertical state, and the airflow guided out through the air outlet 12 is turned vertically downward by the action of the third air guide plate 7, thereby realizing vertical air outlet.

[0090] The technical means disclosed in the present invention are not limited to those disclosed in the above-mentioned embodiments, but also include technical solutions composed of any combination of the above-mentioned technical features. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of the present invention, and such improvements and modifications are also considered to be within the scope of protection of the present invention.

Claims

1. An air conditioner, characterized in that: include: A housing, wherein the housing has a panel, and the panel is provided with an air outlet; a superposition frame, the superposition frame being arranged on the outer side of the panel; a first air guide plate, the first air guide plate being arranged on a side of the stacking frame away from the panel; a first drive assembly, the first drive assembly being assembled to the stacking frame and connected to the first air guide plate to drive the first air guide plate to move relative to the air outlet, wherein when the first air guide plate moves away from the stacking frame, an air duct is formed between the first air guide plate and the stacking frame; The second air guide plate is rotatably assembled on the superposition frame, and the second air guide plate is located at the air outlet.

2. An air conditioner according to claim 1, characterized in that: The second air guide plate is connected to a second driving assembly, the second driving assembly is assembled on the stacking frame, and the second driving assembly drives the second air guide plate to swing back and forth.

3. The air conditioner according to claim 1, characterized in that: The stacking frame is provided with an assembly cavity at the side end surface of the air conditioner, and the first driving assembly includes: a first driver, the first driver being assembled in the assembly cavity; a first connecting rod, the first connecting rod being arranged through the assembly cavity, and a portion of the first connecting rod located inside the assembly cavity being in transmission connection with the first driver; The second connecting rod, the first air guide plate is fixedly connected to the second connecting rod, and the second connecting rod and the part of the first connecting rod located outside the assembly cavity are rotatably connected, so that when the first driver drives the first connecting rod to rotate, the second connecting rod is driven to rotate around the rotation connection between the second connecting rod and the first connecting rod while moving with the first connecting rod.

4. The air conditioner according to claim 3, characterized in that: The first driving assembly also includes a third connecting rod, which is arranged to pass through the assembly cavity. The part of the third connecting rod located inside the assembly cavity is rotatably connected to the superposition frame, and the part of the third connecting rod located outside the assembly cavity is rotatably connected to the second connecting rod, and the first connecting rod and the third connecting rod are arranged in parallel, so that when the first connecting rod drives the second connecting rod to move, the third connecting rod moves synchronously with the first connecting rod.

5. The air conditioner according to claim 1, characterized in that: The middle portion of the stacking frame is recessed toward the panel to form a groove, the first air guide plate is located in the groove, and the groove walls of the groove are all hollow structures.

6. The air conditioner according to claim 5, characterized in that: It also includes a third air guide plate, which is rotatably mounted on the shell and located at the bottom of the air outlet, and the second air guide plate is located above the third air guide plate.

7. The air conditioner according to claim 6, characterized in that: The stacking frame is provided with a avoidance opening at the air outlet, the third air guide plate is located at the avoidance opening, and the third air guide plate is connected with the groove wall of the groove.

8. An air conditioner according to any one of claims 1 to 7, characterized in that: A heat insulation layer is provided between the panel and the superposition frame.

9. The air conditioner according to claim 1, characterized in that: A fourth air guide plate is provided on a side of the stacking frame facing the air outlet. The fourth air guide plate is inclined in a direction away from the first air guide plate to guide airflow to pass through a gap between the stacking frame and the panel.

10. The air conditioner according to claim 9, characterized in that: The stacking frame and the fourth air guide plate are integrally formed.