air conditioner

By setting up a heat insulation layer and heat dissipation structure in the air conditioner, the heat dissipation and anti-condensation problems when the LCD screen is combined with traditional air conditioners are solved, and the reliability and service life of the air conditioner are improved.

CN110940012BActive Publication Date: 2025-09-02GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN201911253530.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2019-12-09
Publication Date
2025-09-02
Estimated Expiration
2039-12-09

AI Technical Summary

Technical Problem

When the LCD screen is combined with traditional air conditioners, there are problems with the display's heat dissipation and anti-condensation, which affects the reliability and service life of the air conditioner.

Method used

A heat insulation layer and a heat dissipation structure are provided in the air conditioner to reduce heat exchange between the display screen and the main body of the air conditioner through the heat insulation layer, and the heat dissipation structure is used to absorb and dissipate heat from the display screen, combining ventilation holes and ventilation devices to accelerate heat dissipation.

Benefits of technology

It effectively solves the heat dissipation and anti-condensation problems of the display screen, and improves the reliability and service life of the air conditioner.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an air conditioner comprising an air conditioner main body, a display screen, a thermal insulation layer, and a heat dissipation structure. The air conditioner main body is used for heat exchange; the display screen is disposed on the air conditioner main body, with a heat dissipation cavity defined between the display screen and the air conditioner main body; the thermal insulation layer is located within the heat dissipation cavity and is disposed on the side of the air conditioner main body facing the display screen, and the thermal insulation layer is made of a thermal insulation material; and the heat dissipation structure is located within the heat dissipation cavity and is disposed on the side of the display screen facing the air conditioner main body. Using this solution, the thermal insulation layer can insulate the display screen and the air conditioner main body, reducing heat exchange between the two. Thus, when the air conditioner main body is cooling, condensation will not form in the heat dissipation cavity due to excessively low temperatures. Furthermore, the heat dissipation structure can absorb and dissipate heat from the display screen, preventing the display screen from overheating during operation. Therefore, this technical solution can solve the problems of heat dissipation and condensation prevention for the display screen, thereby improving the reliability and service life of the air conditioner.
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Description

Technical Field

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

[0002] With the continuous development of intelligent air conditioners, simple temperature control is no longer enough to meet people's needs. Integrating more functions into the air conditioner itself is a future trend. Integrating LCD screens with traditional air conditioners is also a trend, reducing space in homes, increasing home intelligence, and improving quality of life. The integration of LCD screens with traditional air conditioners raises the issue of heat dissipation and condensation prevention, which is a key issue to address after integration. Summary of the Invention

[0003] The present invention provides an air conditioner to solve the heat dissipation and condensation prevention problems of a display screen in an air conditioner provided with the display screen.

[0004] In order to solve the above problems, the present invention provides an air conditioner, comprising: an air conditioner main body, which is used for heat exchange; a display screen, which is arranged on the air conditioner main body, and a heat dissipation cavity is defined between the display screen and the air conditioner main body; a heat insulation layer, which is located in the heat dissipation cavity, is arranged on the side of the air conditioner main body facing the display screen, and is made of a heat insulation material; and a heat dissipation structure, which is located in the heat dissipation cavity, and is arranged on the side of the display screen facing the air conditioner main body.

[0005] Furthermore, a plurality of ventilation holes are provided on the side wall of the heat dissipation cavity, each of the ventilation holes is communicated with the outside of the air conditioner, and the plurality of ventilation holes are used for ventilation and heat dissipation.

[0006] Furthermore, a groove is provided on the outer wall of the air conditioner body, and the groove forms the heat dissipation cavity; and a plurality of the ventilation holes are distributed on the air conditioner body along the circumference of the heat dissipation cavity.

[0007] Furthermore, the air conditioner further comprises: a ventilation device, wherein the air outlet of the ventilation device corresponds to a part of the plurality of ventilation holes to supply air into the heat dissipation cavity.

[0008] Furthermore, the air conditioner main body includes a bottom shell and a panel body arranged on the bottom shell, and the display screen is arranged on the panel body.

[0009] Furthermore, the heat insulation layer is a plate-like structure, and the heat insulation layer is made of foam or thermal insulation cotton.

[0010] Furthermore, the heat dissipation structure includes a first heat dissipation plate, a second heat dissipation plate and a connecting plate, the first heat dissipation plate and the second heat dissipation plate are arranged at intervals, and the connecting plate is located between the first heat dissipation plate and the second heat dissipation plate to connect the first heat dissipation plate and the second heat dissipation plate, wherein the first heat dissipation plate is arranged on the display screen.

[0011] Furthermore, a side of the first heat dissipation plate facing the display screen has a plurality of tooth-shaped grooves, and the connecting plate has through holes.

[0012] Furthermore, the heat dissipation structure is an I-shaped structure, and the length direction of the heat dissipation structure extends along the vertical direction.

[0013] Furthermore, there are multiple heat dissipation structures, and the multiple heat dissipation structures are distributed in the heat dissipation cavity.

[0014] Furthermore, the plurality of heat dissipation structures form a plurality of heat dissipation groups, and each of the heat dissipation groups comprises a plurality of heat dissipation structures arranged in a plurality of rows and columns.

[0015] Furthermore, the multiple heat dissipation groups include an upper left heat dissipation group, a lower left heat dissipation group, an upper right heat dissipation group and a lower right heat dissipation group, wherein the upper left heat dissipation group is located above the lower left heat dissipation group, the upper right heat dissipation group is located above the lower right heat dissipation group, the upper left heat dissipation group and the upper right heat dissipation group are arranged side by side in the horizontal direction, and the lower left heat dissipation group and the lower right heat dissipation group are arranged side by side in the horizontal direction.

[0016] Furthermore, the size of the heat dissipation structure in the upper left heat dissipation group is smaller than the size of the heat dissipation structure in the lower left heat dissipation group, and the number of heat dissipation structures in the upper left heat dissipation group is greater than the number of heat dissipation structures in the lower left heat dissipation group; the size of the heat dissipation structure in the lower right heat dissipation group is smaller than the size of the heat dissipation structure in the upper right heat dissipation group, and the number of heat dissipation structures in the lower right heat dissipation group is greater than the number of heat dissipation structures in the upper right heat dissipation group.

[0017] Furthermore, the spacing between two adjacent heat dissipation structures in the upper left heat dissipation group is smaller than the spacing between two adjacent heat dissipation structures in the lower left heat dissipation group, and the number of heat dissipation structures in the upper left heat dissipation group is greater than the number of heat dissipation structures in the lower left heat dissipation group; the spacing between two adjacent heat dissipation structures in the lower right heat dissipation group is smaller than the spacing between two adjacent heat dissipation structures in the upper right heat dissipation group, and the number of heat dissipation structures in the lower right heat dissipation group is greater than the number of heat dissipation structures in the upper right heat dissipation group.

[0018] The technical solution of the present invention comprises an air conditioner body, a display screen, a thermal insulation layer, and a heat dissipation structure. The air conditioner body is used for heat exchange; the display screen is mounted on the air conditioner body, with a heat dissipation cavity defined between the display screen and the air conditioner body; the thermal insulation layer is located within the heat dissipation cavity and is disposed on the side of the air conditioner body facing the display screen, and is made of a heat-insulating material; and the heat dissipation structure is located within the heat dissipation cavity and is disposed on the side of the display screen facing the air conditioner body. This solution insulates the display screen from the air conditioner body through the thermal insulation layer, reducing heat exchange between the two. This prevents condensation from forming in the heat dissipation cavity due to excessively low temperatures during cooling. Furthermore, the heat dissipation structure absorbs and dissipates heat from the display screen, preventing the display screen from overheating during operation. Therefore, this technical solution solves the heat dissipation and condensation prevention issues of the display screen, thereby improving the reliability and service life of the air conditioner. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] The accompanying drawings, which constitute part of this application, are intended to provide a further understanding of the present invention. The exemplary embodiments of the present invention and their descriptions are intended to explain the present invention and do not constitute an undue limitation of the present invention. In the accompanying drawings:

[0020] Figure 1 A schematic structural diagram of an air conditioner provided by an embodiment of the present invention is shown;

[0021] Figure 2 Shown Figure 1 Schematic diagram of the distribution of the heat dissipation structure;

[0022] Figure 3 Shown Figure 1 Another distribution diagram of the heat dissipation structure in FIG.

[0023] Figure 4 Shown Figure 1 Schematic diagram of the heat dissipation structure in .

[0024] The above drawings include the following reference numerals:

[0025] 10. Air conditioner body; 11. Ventilation holes; 12. Bottom shell; 13. Panel body; 14. Upper crossflow fan blades; 15. Lower crossflow fan blades; 16. Heat exchanger; 20. Display screen; 30. Thermal insulation layer; 40. Heat dissipation structure; 41. First heat dissipation plate; 42. Second heat dissipation plate; 43. Connecting plate; 44. Toothed groove; 45. Through hole; 51. Upper left heat dissipation group; 52. Lower left heat dissipation group; 53. Upper right heat dissipation group; 54. Lower right heat dissipation group. DETAILED DESCRIPTION

[0026] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. The following description of at least one exemplary embodiment is actually only illustrative and is in no way intended to limit the present invention and its application or use. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative work are within the scope of protection of the present invention.

[0027] As shown in the accompanying drawings, an embodiment of the present invention provides an air conditioner, including: an air conditioner main body 10, the air conditioner main body 10 is used for heat exchange; a display screen 20, which is arranged on the air conditioner main body 10, and a heat dissipation cavity is provided between the display screen 20 and the air conditioner main body 10; a heat insulation layer 30, which is located in the heat dissipation cavity, and the heat insulation layer 30 is arranged on the side of the air conditioner main body 10 facing the display screen 20, and the heat insulation layer 30 is made of a heat insulation material; a heat dissipation structure 40, which is located in the heat dissipation cavity, and the heat dissipation structure 40 is arranged on the side of the display screen 20 facing the air conditioner main body 10.

[0028] The technical solution of the present invention is provided in an air conditioner comprising an air conditioner main body 10, a display screen 20, a thermal insulation layer 30, and a heat dissipation structure 40. The air conditioner main body 10 is used for heat exchange; the display screen 20 is disposed on the air conditioner main body 10, with a heat dissipation cavity defined between the display screen 20 and the air conditioner main body 10; the thermal insulation layer 30 is located within the heat dissipation cavity and is disposed on the side of the air conditioner main body 10 facing the display screen 20. The thermal insulation layer 30 is made of a heat-insulating material; and the heat dissipation structure 40 is located within the heat dissipation cavity and is disposed on the side of the display screen 20 facing the air conditioner main body 10. With this solution, the thermal insulation layer 30 insulates the display screen 20 from the air conditioner main body 10, reducing heat exchange between the two. This prevents condensation from forming in the heat dissipation cavity due to excessively low temperatures during cooling. Furthermore, the heat dissipation structure 40 absorbs and dissipates heat from the display screen 20, preventing the display screen 20 from overheating during operation. Therefore, this technical solution solves the heat dissipation and condensation prevention issues of the display screen 20, thereby improving the reliability and service life of the air conditioner.

[0029] In this embodiment, the sidewalls of the heat dissipation cavity are provided with a plurality of ventilation holes 11, each of which communicates with the exterior of the air conditioner. The plurality of ventilation holes 11 are provided for ventilation and heat dissipation. The provision of the plurality of ventilation holes 11 allows air to flow and exchange heat between the heat dissipation cavity and the exterior of the air conditioner, thereby dissipating heat and accelerating heat dissipation from the display screen 20.

[0030] In this embodiment, the outer wall of the air conditioner body 10 has a groove that forms a heat dissipation cavity. A plurality of ventilation holes 11 are distributed along the circumference of the heat dissipation cavity. This arrangement facilitates assembly and arrangement of the various components. Furthermore, the plurality of ventilation holes 11 improves air flow.

[0031] In this embodiment, the air conditioner further comprises a ventilation device, wherein the air outlet of the ventilation device corresponds to a portion of the plurality of ventilation holes 11 to supply air into the heat dissipation cavity. This increases the air volume through the ventilation device, thereby removing heat from the heat dissipation cavity and improving the heat dissipation effect.

[0032] In this embodiment, the air conditioner body 10 includes a bottom shell 12 and a panel body 13 disposed on the bottom shell 12, and the display screen 20 is disposed on the panel body 13. The above arrangement facilitates the assembly of the display screen 20 and improves the overall aesthetics of the air conditioner.

[0033] Optionally, the bottom shell 12 has an upper air vent and a lower air vent, and the upper air vent and the lower air vent can switch the air outlet. In this way, the air can be discharged upward or downward as needed, which enriches the functions of the air conditioner and improves the user experience.

[0034] Optionally, the air conditioner body further includes upper crossflow blades 14 and lower crossflow blades 15, with the upper crossflow blades corresponding to the upper air outlet and the lower crossflow blades corresponding to the lower air outlet. This dual blade configuration can increase airflow volume and heat exchange efficiency. Alternatively, the upper crossflow blades 14 can be used for upward airflow, while the lower crossflow blades 15 can be used for downward airflow.

[0035] Optionally, the air conditioner body further includes a plate-shaped heat exchanger 16, which is tilted relative to the vertical direction, with upper and lower crossflow blades 14 and 15 located on either side of the heat exchanger 16. The plate-shaped heat exchanger 16 can reduce the thickness of the air conditioner. The tilted heat exchanger 16 relative to the vertical direction, with upper and lower crossflow blades 14 and 15 located on either side of the heat exchanger, ensures that air is in full contact with the heat exchanger 16 regardless of whether the air is discharged upward or downward, ensuring effective heat exchange.

[0036] Optionally, the periphery of the display screen 20 is flush with the periphery of the panel body 13. This allows the display screen 20 to have a larger area, and all that can be seen from the front is the display screen 20, which can display more information or images, making the air conditioner more attractive in appearance and more functional, thereby realizing the combination of a traditional display screen and an air conditioner.

[0037] In this embodiment, the heat insulating layer 30 is a plate-like structure, and the heat insulating layer 30 is made of foam or thermal insulation cotton. With the above arrangement, the manufacturing cost is low and the heat insulating effect is good.

[0038] In this embodiment, the heat dissipation structure 40 includes a first heat dissipation plate 41, a second heat dissipation plate 42, and a connecting plate 43. The first heat dissipation plate 41 and the second heat dissipation plate 42 are spaced apart, and the connecting plate 43 is located between the first heat dissipation plate 41 and the second heat dissipation plate 42 to connect the first heat dissipation plate 41 and the second heat dissipation plate 42. The first heat dissipation plate 41 is disposed on the display screen 20. With this arrangement, the heat dissipation structure 40 has a larger surface area, which improves heat exchange with the air and thus improves the heat dissipation effect on the display screen 20.

[0039] Furthermore, the first heat sink 41 has a plurality of tooth-shaped grooves 44 on the side facing the display screen 20, and the connecting plate 43 has through holes 45. The tooth-shaped grooves 44 further increase the surface area of ​​the heat sink 40, and the through holes 45 facilitate air flow, thereby improving the heat dissipation effect.

[0040] In this embodiment, the heat dissipation structure 40 is an I-shaped structure, and the length direction of the heat dissipation structure 40 extends in the vertical direction. The heated gas tends to flow upward, and the above arrangement can reduce resistance and facilitate air flow.

[0041] In this embodiment, there are multiple heat dissipation structures 40, and the multiple heat dissipation structures 40 are distributed in the heat dissipation cavity. By providing multiple heat dissipation structures 40, different positions of the display screen 20 can all achieve good heat dissipation.

[0042] In this embodiment, the plurality of heat dissipation structures 40 form a plurality of heat dissipation groups, and each heat dissipation group comprises a plurality of heat dissipation structures 40 arranged in multiple rows and columns, which can enhance the heat dissipation effect and facilitate gas flow.

[0043] Specifically, the multiple heat dissipation groups include an upper left heat dissipation group 51, a lower left heat dissipation group 52, an upper right heat dissipation group 53, and a lower right heat dissipation group 54. The upper left heat dissipation group 51 is located above the lower left heat dissipation group 52, and the upper right heat dissipation group 53 is located above the lower right heat dissipation group 54. The upper left heat dissipation group 51 and the upper right heat dissipation group 53 are arranged side by side in the horizontal direction, while the lower left heat dissipation group 52 and the lower right heat dissipation group 54 are arranged side by side in the horizontal direction. These four heat dissipation groups ensure good heat dissipation for different areas of the display screen 20.

[0044] Furthermore, the size of the heat dissipation structures 40 in the upper left heat dissipation group 51 is smaller than the size of the heat dissipation structures 40 in the lower left heat dissipation group 52, and the number of heat dissipation structures 40 in the upper left heat dissipation group 51 is greater than the number of heat dissipation structures 40 in the lower left heat dissipation group 52. The size of the heat dissipation structures 40 in the lower right heat dissipation group 54 is smaller than the size of the heat dissipation structures 40 in the upper right heat dissipation group 53, and the number of heat dissipation structures 40 in the lower right heat dissipation group 54 is greater than the number of heat dissipation structures 40 in the upper right heat dissipation group 53. Heat dissipation groups with more heat dissipation structures 40 absorb more heat, while heat dissipation groups with fewer heat dissipation structures 40 absorb less heat. Different heat dissipation leads to different gas pressures. With the above arrangement, in the absence of active external air blowing, different areas within the heat dissipation cavity will form pressure differences, thereby allowing air to flow naturally, facilitating the entry and exit of external air into the heat dissipation cavity, thereby achieving heat dissipation and ensuring effective heat dissipation for the display screen 20.

[0045] Alternatively, the spacing between two adjacent heat dissipation structures 40 in the upper left heat dissipation group 51 is smaller than the spacing between two adjacent heat dissipation structures 40 in the lower left heat dissipation group 52, and the number of heat dissipation structures 40 in the upper left heat dissipation group 51 is greater than the number of heat dissipation structures 40 in the lower left heat dissipation group 52; the spacing between two adjacent heat dissipation structures 40 in the lower right heat dissipation group 54 is smaller than the spacing between two adjacent heat dissipation structures 40 in the upper right heat dissipation group 53, and the number of heat dissipation structures 40 in the lower right heat dissipation group 54 is greater than the number of heat dissipation structures 40 in the upper right heat dissipation group 53. With this arrangement, even without active external air blowing, pressure differences can be formed in different areas of the heat dissipation cavity, thereby allowing air to flow naturally, facilitating the entry of external air into the heat dissipation cavity and the outflow of air from the heat dissipation cavity, thereby achieving heat dissipation.

[0046] To facilitate understanding of this solution, further explanation is given below.

[0047] When the air conditioner is running in cooling mode and the display is not in use, condensation forms inside the unit. This lowers the temperature of the panel in contact with the display, creating a cooler air gap (i.e., the heat dissipation cavity) between the display and the panel, causing condensation to adhere to the panel and the back of the display. If the display is turned on at this point, two problems may arise. First, the display's waterproofing is weak, and condensation entering the display can damage the circuitry and potentially cause a fire. Second, the back of the display generates significant heat when in operation. This condensation on the back causes uneven heat dissipation, resulting in cracks and damage to the display. The back of the display generates significant heat when in operation. If the heat isn't dissipated promptly, the display will crack due to the high temperatures. Therefore, timely heat dissipation is essential.

[0048] The display screen and air conditioner main body combination provided by the present invention is mainly composed of a bottom shell component, a panel body, a display screen, a heat insulation layer, and a heat dissipation structure group. The panel body is installed on the bottom shell component, and after being fixed, the display screen is installed on the panel body, leaving a certain gap in the middle. A heat insulation layer is installed on the side of the gap close to the panel body to protect the temperature in the gap from varying slightly. The serrated side of the heat dissipation structure is installed on the side close to the display screen to increase the contact area with the display screen and absorb more heat. A heat insulation layer is attached to the panel body to insulate the gap and prevent cold air from the air conditioner from entering the gap and generating condensation. The selection and thickness of the specific heat insulation material are determined according to actual conditions.

[0049] This solution uses materials with good radiation heat transfer to design an I-shaped heat dissipation structure to absorb heat and cool the display screen. The heat dissipation structure is designed with one smooth surface and the other side serrated. The serrated surface has a larger contact area with the air and can absorb more heat. Therefore, the serrated surface is installed on the side close to the display screen; the serrated surface absorbs heat and transfers it to the smooth surface through the middle connecting plate for heat dissipation (the serrated surface is not designed to reduce the resistance of the heat dissipation airflow). At the same time, the connecting plate is provided with through holes to further accelerate the heat dissipation and cooling of the heat dissipation structure.

[0050] The heat dissipation structure installed in the gap between the display screen and the air conditioning panel is assembled using the method of "different sizes, different sparseness, and vertical arrangement". When the display screen is working, under the influence of the external environment, forced air is sent into the gap (fresh air is sent from the bottom) to dissipate heat. At this time, the flow direction of the internal airflow of the heat dissipation structure is as follows: Figure 2 As shown, the airflow passes through the gaps in the heat dissipation structure and removes the heat from the heat dissipation structure through the ventilation holes at the top and sides, thereby reducing the gap temperature.

[0051] When there is no external force to supply fresh air, the installation arrangement of the heat dissipation structure will play a role. Figure 3As shown, after the heat behind the display screen is absorbed by the heat dissipation structure, the heat dissipation group with denser installation absorbs more heat, and the heat dissipation group with sparser installation absorbs relatively less heat. A pressure difference will be formed inside the gap. The denser heat dissipation group on the right absorbs more heat and has a higher air pressure. The hot air flows upward and drives the air in the sparser installation part above to flow upward and out through the vents above. There is less air in the red area and the air pressure is lower. The external air will be squeezed into the gap by the atmospheric pressure, thus forming a gas flow cycle and reducing the temperature in the gap. The installation on the left is exactly the opposite to the right. When the temperature of the heat dissipation structure on the left is higher When the heat is high, the air pressure increases, and the hot air is squeezed out of the gap through the vents above. At this time, a pressure difference is generated between the upper and lower parts. The air pressure above is lower than that below due to the loss of some air. The air with high pressure flows to the area with lower pressure. The heat below will rise to the denser installation area. The air pressure above increases again, squeezing out some hot air. The air pressure below is lower than atmospheric pressure due to the loss of more air. The atmospheric pressure squeezes the cold air outside relative to the inside into the gap through the vents below, forming a heat dissipation cycle, reducing the temperature of the gap, and indirectly reducing the temperature of the display screen, while not relying on external effects to dissipate heat itself.

[0052] The innovative features of this solution include: when the air conditioner is operating, the insulation layer ensures that the temperature fluctuation in the heat dissipation cavity (the gap between the panel body and the display screen) is small, preventing condensation; when the display screen is working and generating heat, the heat dissipation structure formed by the radiant heat transfer material automatically guides the heat into the gap. Due to the different installation methods of the heat dissipation structure, airflow can be generated, which will drive the heat flow in the gap to flow rapidly into the air, quickly reducing the temperature of the display screen. At the same time, the heat dissipation structure guides air quickly through the gap, facilitating air exchange and achieving the goal of rapid cooling.

[0053] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that various modifications and variations of the present invention are possible. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.

Claims

1. An air conditioner, characterized in that: include: An air-conditioning main body (10), the air-conditioning main body (10) being used for heat exchange; A display screen (20) is arranged on the air conditioner main body (10), and a heat dissipation cavity is provided between the display screen (20) and the air conditioner main body (10); a plurality of ventilation holes (11) are provided on a side wall of the heat dissipation cavity, each of the ventilation holes (11) being in communication with the outside of the air conditioner, and the plurality of ventilation holes (11) are used for ventilation and heat dissipation; a heat insulation layer (30) located in the heat dissipation cavity, the heat insulation layer (30) being arranged on a side of the air conditioner main body (10) facing the display screen (20), the heat insulation layer (30) being made of a heat insulation material; A heat dissipation structure (40) is located in the heat dissipation cavity, and the heat dissipation structure (40) is arranged on a side of the display screen (20) facing the air conditioner main body (10); The heat dissipation structure (40) includes a first heat dissipation plate (41), a second heat dissipation plate (42) and a connecting plate (43), wherein the first heat dissipation plate (41) and the second heat dissipation plate (42) are arranged at intervals, and the connecting plate (43) is located between the first heat dissipation plate (41) and the second heat dissipation plate (42) to connect the first heat dissipation plate (41) and the second heat dissipation plate (42), wherein the first heat dissipation plate (41) is arranged on the display screen (20); the heat dissipation structure (40) is multiple, and the multiple heat dissipation structures (40) are distributed in the heat dissipation cavity; the multiple heat dissipation structures (40) form multiple heat dissipation groups, and each heat dissipation group has multiple heat dissipation structures (40) arranged in multiple rows and columns.

2. The air conditioner according to claim 1, characterized in that The outer wall of the air conditioner main body (10) is provided with a groove, the groove forming the heat dissipation cavity; a plurality of ventilation holes (11) are distributed on the air conditioner main body (10) along the circumference of the heat dissipation cavity.

3. The air conditioner according to claim 1, wherein: The air conditioner further comprises: A ventilation device, wherein the air outlet of the ventilation device corresponds to a portion of the ventilation holes (11) among the plurality of ventilation holes (11) to supply air into the heat dissipation cavity.

4. The air conditioner according to claim 1, wherein: The air conditioner main body (10) comprises a bottom shell (12) and a panel body (13) arranged on the bottom shell (12), and the display screen (20) is arranged on the panel body (13).

5. The air conditioner according to claim 1, characterized in that The heat insulation layer (30) is a plate-shaped structure, and the heat insulation layer (30) is made of foam or thermal insulation cotton.

6. The air conditioner according to claim 1, characterized in that The first heat dissipation plate (41) has a plurality of tooth-shaped grooves (44) on one side facing the display screen (20), and the connecting plate (43) has a through hole (45).

7. The air conditioner according to claim 1, wherein: The heat dissipation structure (40) is an I-shaped structure, and the length direction of the heat dissipation structure (40) extends in a vertical direction.

8. The air conditioner according to claim 1, wherein: The plurality of heat dissipation groups include an upper left heat dissipation group (51), a lower left heat dissipation group (52), an upper right heat dissipation group (53) and a lower right heat dissipation group (54), wherein the upper left heat dissipation group (51) is located above the lower left heat dissipation group (52), the upper right heat dissipation group (53) is located above the lower right heat dissipation group (54), the upper left heat dissipation group (51) and the upper right heat dissipation group (53) are arranged side by side in a horizontal direction, and the lower left heat dissipation group (52) and the lower right heat dissipation group (54) are arranged side by side in a horizontal direction.

9. The air conditioner according to claim 8, characterized in that The size of the heat dissipation structure (40) in the upper left heat dissipation group (51) is smaller than the size of the heat dissipation structure (40) in the lower left heat dissipation group (52), and the number of the heat dissipation structures (40) in the upper left heat dissipation group (51) is greater than the number of the heat dissipation structures (40) in the lower left heat dissipation group (52); The size of the heat dissipation structure (40) in the lower right heat dissipation group (54) is smaller than the size of the heat dissipation structure (40) in the upper right heat dissipation group (53), and the number of the heat dissipation structures (40) in the lower right heat dissipation group (54) is greater than the number of the heat dissipation structures (40) in the upper right heat dissipation group (53).

10. The air conditioner according to claim 8, characterized in that The distance between two adjacent heat dissipation structures (40) in the upper left heat dissipation group (51) is smaller than the distance between two adjacent heat dissipation structures (40) in the lower left heat dissipation group (52), and the number of heat dissipation structures (40) in the upper left heat dissipation group (51) is greater than the number of heat dissipation structures (40) in the lower left heat dissipation group (52); The distance between two adjacent heat dissipation structures (40) in the lower right heat dissipation group (54) is smaller than the distance between two adjacent heat dissipation structures (40) in the upper right heat dissipation group (53), and the number of heat dissipation structures (40) in the lower right heat dissipation group (54) is greater than the number of heat dissipation structures (40) in the upper right heat dissipation group (53).

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