Air conditioner anti-condensation structure and air conditioner thereof

By incorporating a baffle structure and a condensation chamber into the air conditioner, airflow backflow is blocked and condensation is collected, thus solving the user experience problem caused by condensate backflow and improving the performance of the air conditioner.

CN117647002BActive Publication Date: 2026-07-21GREE ELECTRIC APPLIANCE INC OF ZHUHAI

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
GREE ELECTRIC APPLIANCE INC OF ZHUHAI
Filing Date
2023-12-11
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

During the cooling process, condensate can easily flow back through the assembly gap between the casing and the panel, resulting in a reduced user experience.

Method used

A windbreak structure is set between the panel and the housing to form a condensation chamber, which blocks the backflow of airflow at the air outlet and collects condensation, reducing the temperature difference between the panel and the surrounding environment.

Benefits of technology

It effectively prevents condensate dripping, improves user experience, and enhances the performance of the air conditioner.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application belongs to the technical field of air conditioners, and particularly relates to an air conditioner anti-condensation structure and an air conditioner thereof. The air conditioner anti-condensation structure comprises a shell, a panel and a wind blocking structure. The shell is provided with an air inlet and an air outlet. The panel is connected with the shell and encloses a chamber for communication with the air inlet and the air outlet. The wind blocking structure is arranged on the side opposite to the shell relative to the panel. The wind blocking structure is arranged close to the air outlet. The wind blocking structure and the panel enclose a condensation chamber for balancing the temperature of the panel. The air conditioner anti-condensation structure and the air conditioner thereof provided by the application can reduce the temperature difference between the panel and the ambient environment by arranging a structure between the panel and the wind blocking structure, thereby solving the technical problem that the condensate generated by the air conditioner in the prior art can easily reduce the user experience.
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Description

Technical Field

[0001] This invention belongs to the field of air conditioner technology, specifically relating to an anti-condensation structure for an air conditioner and the air conditioner thereof. Background Technology

[0002] An air conditioner is a mechanical device used to regulate the temperature of a room. Its principle involves the physical changes of a circulating medium to achieve temperature regulation. Existing air conditioners are classified into wall-mounted air conditioners, floor-standing air conditioners, window air conditioners, and central air conditioners. An air conditioner mainly consists of a casing, a panel mounted on the casing, a heat exchanger housed within the casing, and fan blades. The air inlet and outlet are located on the casing. However, in actual use, for ease of assembly, there is a gap between the panel and the casing. Therefore, when the cooling capacity increases, the cooling outlet temperature is low, and the fan speed is low, condensation easily forms on the heat exchanger and at the gap. This condensation can easily be blown towards the user or drip from the outlet, thus reducing the user's cooling experience.

[0003] Taking a wall-mounted air conditioner as an example, a wall-mounted air conditioner is an air conditioner installed on a wall. It mainly includes a casing, a panel, a heat exchanger, and fan blades. The panel is located on the side of the casing opposite to the wall, and the panel and casing form a chamber for regulating air. The heat exchanger and fan blades are located inside the chamber. The top of the panel is near the air inlet, and the bottom of the panel is near the air outlet. During the cooling process, a large amount of cold air is blown out from the air outlet, but some of the cold air is still blown back due to air vortices. The backflowing cold air can easily flow back into the chamber through the gap between the casing and the panel. At this time, the temperature of the panel drops, creating a temperature difference between the panel and the surrounding environment, which makes it easy for condensation to form on the panel. When the condensation accumulates to a certain amount, it will drip from the panel. The dripping condensate is blown to the user by the cold air at the air outlet, thus reducing the user experience. Summary of the Invention

[0004] In view of this, the present invention provides an anti-condensation structure for an air conditioner and an air conditioner thereof. By setting a structure between the panel and the wind deflector to reduce the temperature difference between the panel and its surrounding environment, the technical problem that condensate generated by the air conditioner in the prior art easily reduces the user experience is solved.

[0005] To address the aforementioned problems, according to one aspect of this application, the present invention provides an anti-condensation structure for an air conditioner, the anti-condensation structure for an air conditioner including a housing having an air inlet and an air outlet. The panel is connected to the housing and forms a chamber for communicating with the air inlet and air outlet. A windbreak structure is provided on the side opposite to the panel and the housing. The windbreak structure is located near the air outlet. The windbreak structure and the panel form a condensation cavity for balancing the temperature difference of the panel.

[0006] In some embodiments, the housing includes a first housing body and a bottom housing, the first housing body being disposed near the air outlet, and the air outlet being formed between the first housing body and the bottom housing. The windproof structure is sealed to the first shell body to prevent cold air from flowing back.

[0007] In some embodiments, the windbreak structure has multiple protrusions on the side opposite to the first shell body; The first shell body has a groove on the side opposite to the windproof structure that matches the protrusion.

[0008] In some embodiments, the housing further includes a second housing body, one end of which is connected to the windbreak structure and the other end of which is disposed near the air inlet. The second housing body is used to guide a portion of the airflow at the air inlet into the condensation chamber.

[0009] In some embodiments, one end of the windbreak structure is disposed between the panel and the first housing body, and the other end of the windbreak structure is provided with a guide portion for guiding the recirculated cold air to the fan blade.

[0010] In some embodiments, the other end of the windbreak structure is a bent structure, which bends toward the first shell body.

[0011] In some embodiments, a sealing groove is provided on the side of the bent structure facing the second shell body, and one end of the second shell body is disposed in the sealing groove.

[0012] In some embodiments, the bottom of the condensation chamber is a sloped structure, which is used to discharge the condensate accumulated in the condensation chamber to the outside of the shell.

[0013] In some embodiments, the air conditioner anti-condensation structure further includes a guide pipe, one end of which is connected to the lower side of the bottom of the condensation chamber, and the other end of which is located outside the housing.

[0014] In some embodiments, the windbreak structure is integrally formed with the panel.

[0015] To address the aforementioned problems, according to one aspect of this application, the present invention provides an air conditioner including the aforementioned anti-condensation structure.

[0016] Compared with the prior art, the anti-condensation structure of the air conditioner of the present invention has at least the following beneficial effects: The housing and panel form a chamber for refrigerant to exchange heat. The housing has an air inlet and an air outlet communicating with the chamber to achieve airflow circulation within the chamber. However, during the refrigerant exchange process, due to the significant temperature difference between the panel and its surrounding environment, condensation easily occurs inside the air conditioner. To address this issue, this invention provides a condensation chamber on the side of the panel facing the chamber to collect the condensation inside, thereby mitigating the impact of condensation on the performance of the air conditioner.

[0017] First, air enters the cavity through the air inlet, exchanges heat, and then flows out through the air outlet. However, during the airflow at the outlet, eddies are easily generated near the panel, causing some airflow to flow back into the cavity through the assembly gap between the housing and the panel, thus reducing the performance of the air conditioner. This invention addresses this by incorporating a baffle structure between the housing and the panel to prevent backflow of airflow at the outlet. Simultaneously, the baffle structure and the panel form a condensation cavity, which on one hand forms an insulation layer to ensure the stability of the panel temperature, thus preventing condensation on both the inner and outer sides of the panel and reducing user experience; on the other hand, it collects condensate on the inner side of the panel, preventing condensate accumulation in the condensation cavity and subsequent performance degradation. When condensate accumulates in the condensation cavity, the wall thickness of the cavity increases, reducing the temperature gradient at the panel and decreasing the panel's thermal conductivity. This results in more stable temperatures on both sides of the panel, making it less prone to temperature differences between the panel and its surroundings, thereby preventing condensation. The present invention provides an anti-condensation structure for an air conditioner, which solves the technical problem in the prior art that the condensate generated by the air conditioner easily reduces the user experience by setting a structure between the panel and the wind deflector to reduce the temperature difference between the panel and its surrounding environment.

[0018] The air conditioner provided by this invention is designed based on the above-mentioned anti-condensation structure for air conditioners. Therefore, the beneficial effects of the air conditioner are the same as all the beneficial effects of the above-mentioned anti-condensation structure for air conditioners, and will not be repeated here.

[0019] The above description is merely an overview of the technical solution of the present invention. In order to better understand the technical means of the present invention and to implement it in accordance with the contents of the specification, the preferred embodiments of the present invention are described in detail below with reference to the accompanying drawings. Attached Figure Description

[0020] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0021] Figure 1This is a schematic diagram illustrating the working principle of the anti-condensation structure for an air conditioner provided in an embodiment of the present invention. Figure 2 This is a schematic diagram illustrating the working principle of the windbreak structure of the anti-condensation structure for an air conditioner provided in an embodiment of the present invention. Figure 3 An assembly view of the housing, panel, bottom shell, and windbreak structure of the air conditioner anti-condensation structure provided in an embodiment of the present invention; Figure 4 for Figure 3 Enlarged view of the structure at point A; Figure 5 An assembly view of the housing, panel, and windbreak structure of the air conditioner anti-condensation structure provided in an embodiment of the present invention; Figure 6 This is an assembly structure view of the housing, panel, and guide pipe of the air conditioner anti-condensation structure provided in an embodiment of the present invention; Figure 7 for Figure 6 Enlarged view of the structure at point B.

[0022] Wherein: 1-shell; 11-air inlet; 111-groove; 12-air outlet; 13-first shell body; 14-second shell body; 15-bottom shell; 2-panel; 21-chamber; 3-windproof structure; 31-protrusion; 32-sealing groove; 33-guide part; 4-condensation chamber; 5-guide pipe; 6-fan blade; 7-hook. Detailed Implementation

[0023] To further illustrate the technical means and effects adopted by the present invention to achieve the intended purpose, the specific embodiments, structures, features, and effects according to the present invention will be described in detail below with reference to the accompanying drawings and preferred embodiments. In the following description, different "embodiments" or "embodiments" do not necessarily refer to the same embodiment. Furthermore, specific features, structures, or characteristics in one or more embodiments can be combined in any suitable form.

[0024] In the description of this invention, it should be clearly stated that the terms "first," "second," etc., in the specification, claims, and accompanying drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence; the terms "vertical," "lateral," "longitudinal," "front," "rear," "left," "right," "up," "down," "horizontal," etc., indicate orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, and are merely for the convenience of describing this invention, and do not mean that the device or element referred to must have a specific orientation or position, and therefore should not be construed as a limitation of this invention.

[0025] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances. Example 1

[0026] This invention provides an anti-condensation structure for an air conditioner, as shown in the reference. Figures 1 to 6 The anti-condensation structure includes a shell 1, a panel 2, and a windproof structure 3. The shell 1 has an air inlet 11 and an air outlet 12. The panel 2 is connected to the shell 1 and forms a chamber 21 for communicating with the air inlet 11 and the air outlet 12. The windproof structure 3 is located on the side of the panel 2 opposite to the shell 1 and is located close to the air outlet 12. The windproof structure 3 and the panel 2 form a condensation chamber 4 for balancing the temperature difference of the panel 2.

[0027] Specifically, the housing 1 and the panel 2 form a chamber 21 for heat exchange by the refrigerant. The housing 1 has an air inlet 11 and an air outlet 12 communicating with the chamber 21 to achieve airflow circulation within the chamber 21. However, during the refrigerant exchange process, due to the large temperature difference between the panel 2 and its surrounding environment, condensation is prone to occur in the air conditioner. To address this issue, this embodiment provides a condensation chamber 4 on the side of the panel 2 facing the chamber 21. This forms an insulation structure on one side of the panel 2 and collects the condensation within the chamber 21 to improve the condensation phenomenon inside the air conditioner.

[0028] In addition, refer to Figure 1This is a schematic diagram illustrating the working principle of the anti-condensation structure for an air conditioner provided in this embodiment of the invention. The arrows in the diagram indicate the direction of indoor air circulation. Air first enters the chamber 21 through the air inlet 11 for heat exchange and then flows out through the air outlet 12. However, during the airflow at the air outlet 12, eddies are easily generated near the panel 2, causing some airflow to flow back into the chamber 21 through the assembly gap between the housing 1 and the panel 2, further reducing the performance of the air conditioner. This embodiment addresses this by providing a baffle structure 3 between the housing 1 and the panel 2 to block the backflow of airflow at the air outlet 12. Simultaneously, the baffle structure 3 and the panel 2 form a condensation cavity 4. This serves two purposes: firstly, it forms an insulation layer to ensure the temperature stability of the panel 2, thus preventing condensation on both the inner and outer sides of the panel 2 and reducing the user experience; secondly, it collects condensate from the inner side of the panel 2, preventing condensate accumulation in the condensation cavity 4 and reducing the air conditioner's performance. When condensate accumulates in the condensation chamber 4, the wall thickness of the chamber 21 increases, which in turn reduces the gradient at the panel 2 and decreases the thermal conductivity of the panel 2. This makes the temperature on both sides of the panel 2 more stable, making it less likely for the panel 2 to have a temperature difference with its surrounding environment, thereby preventing condensation.

[0029] The present invention provides an anti-condensation structure for an air conditioner, which solves the technical problem in the prior art that the condensate generated by the air conditioner easily reduces the user experience by setting a temperature difference between the panel 2 and the surrounding environment between the panel 2 and the wind deflector structure 3.

[0030] In a specific embodiment, reference is made to... Figures 1 to 3 as well as Figure 6 The housing 1 includes a first housing body 13 and a bottom housing 15. The first housing body 13 is located near the air outlet 12, and the air outlet 12 is formed between the first housing body 13 and the bottom housing 15. The windproof structure 3 is sealed to the first housing body 13 to prevent cold air from flowing back.

[0031] Specifically, during the cooling and heating process of the air conditioner, the temperature inside the chamber 21 is transferred to the panel 2. A temperature difference exists between the panel 2 and its surrounding environment, making condensation easily form on the panel 2. Furthermore, the influence of the recirculating airflow also makes condensation easily form on the panel 2. To illustrate this more clearly, let's take the cooling process of an air conditioner as an example. Air enters the chamber 21 through the air inlet 11 and becomes cold air after heat exchange. The cold air flows out from the air outlet 12. Near the panel 2, the cold air easily generates eddies, causing it to easily flow back into the chamber 21 from the assembly gap between the casing 1 and the panel 2. As the recirculating cold air passes over the panel 2, the temperature on the side of the panel 2 inside the chamber 21 decreases. At this point, there is a significant temperature difference between the panel 2 and the temperature inside the chamber 21, making condensation easily form on the side wall of the panel 2. In this embodiment, the windshield structure 3 is sealed between the panel 2 and the first shell body 13 to reduce the gap between the panel 2 and the first shell body 13, thereby preventing condensation caused by the temperature drop of the panel 2 on the side of the chamber 21 due to the return air cooling.

[0032] It should be noted that the windbreak structure 3 can be a sealing gasket or other structure that can provide a sealing effect. In the preferred embodiment, refer to... Figure 3 and Figure 5 The windproof structure 3 has multiple protrusions 31 on the side opposite to the first shell body 13. The first shell body 13 has a groove 111 that mates with the protrusions 31 on the side opposite to the windproof structure 3.

[0033] Specifically, the protrusion 31 and the groove 111 cooperate to form a "Z"-shaped structure in the assembly gap between the windbreak structure 3 and the first shell body 13, thereby making it difficult for the returning cold air to enter the chamber 21. The windbreak structure 3 achieves a sealed connection with the first shell body 13 through the protrusion 31, so that the windbreak structure 3 can achieve a seal while connecting with the first shell body 13 through the protrusion 31 and the groove 111. In addition, the cooperation between the protrusion 31 and the groove 111 can prevent large displacement during the assembly of the first shell body 13 and the groove 111, thereby ensuring the sealing performance between the first shell body 13 and the windbreak structure 3. In this embodiment, the structure only requires splicing the protrusion 31 and the groove 111. Compared with using an additional sealing structure, this embodiment can directly splice the two parts to complete the assembly. The assembly method in this embodiment is more convenient and has higher assembly efficiency.

[0034] It should be noted that the multiple protrusions 31 can be arranged in a row along the width direction of the air outlet 12, or multiple rows can be arranged from one end of the panel 2 to the other end. In addition, multiple grooves 111 can be provided on the wind deflector structure 3, and protrusions 31 that cooperate with the grooves 111 can be provided on the first shell body 13.

[0035] In a specific embodiment, reference is made to... Figures 1 to 3 as well as Figure 4 The housing 1 also includes a second housing body 14. One end of the second housing body 14 is connected to the windproof structure 3, and the other end of the second housing body 14 is located near the air inlet 11. The second housing body 14 is used to guide part of the airflow at the air inlet 11 into the condensation chamber 4.

[0036] Specifically, as heat exchange continues, the temperature inside the condensing chamber 4 changes and approaches the temperature at the air conditioner heat exchanger, thereby reducing the regulating capacity of the condensing chamber 4. In this embodiment, the second shell body 14 is disposed inside the chamber 21, and part of the airflow at the air inlet 11 is directed into the condensing chamber 4 to reduce the temperature difference between the panel 2 and its surrounding environment, thereby improving the condensation phenomenon on the panel 2. In addition, the second shell body 14 can also be used to prevent the airflow after heat exchange from entering the condensing chamber 4, thereby improving the condensation phenomenon on the panel 2.

[0037] It should be noted that the panel 2, the windbreak structure 3, and the second shell body 14 form a condensing cavity 4. The panel 2 and the second shell body 14 have openings that connect to the condensing cavity 4 and the air inlet 11, guiding a portion of the airflow from the air inlet 11 into the condensing cavity 4 to regulate the temperature within it. In other words, the second shell body 14 and the windbreak structure 3 are separate components. When the second shell body 14 and the windbreak structure 3 are separate, they are detachably connected. Therefore, the required airflow can be determined based on the temperature difference, and the installation of the second shell body 14 can be determined accordingly. More specifically, when the temperature difference to be regulated in the condensing cavity 4 is small, the second shell body 14 can be installed on the windbreak structure 3 to reduce the airflow into the condensing cavity 4; when the temperature difference to be regulated in the condensing cavity 4 is large, the second shell body 14 can be removed from the windbreak structure 3 to increase the airflow into the condensing cavity 4, thereby achieving temperature control of the panel 2 relative to its surrounding environment.

[0038] In addition, the side of panel 2 located inside the condensation cavity 4 is a sloping structure. The end of the sloping structure connected to the anti-contamination structure 3 is set away from panel 2, and the end of the sloping structure near the air inlet 11 is set near panel 2 to guide the condensation on the inner wall of the second shell body 14.

[0039] In addition, one end of the wind deflector 3 is connected to the end of the panel 2 near the air outlet 12, and the other end of the wind deflector 3 is spaced apart from the end of the panel 2 near the air inlet 11 to form a semi-closed condensing chamber 4. The opening of the semi-closed condensing chamber 4 faces the air inlet 11, which means that the second shell body 14 and the wind deflector 3 are integrally set.

[0040] In a specific embodiment, reference is made to... Figures 1 to 5One end of the windbreak structure 3 is located between the panel 2 and the first shell body 13, and the other end of the windbreak structure 3 is provided with a guide part 33 for guiding the returning cold air to the fan blade 6.

[0041] Specifically, the Z-shaped sealing structure formed by the protrusion 31 and the groove 111 forms a primary barrier against the return of cold air. If the structure fails to block the return of cold air, some of the cold air flowing into the chamber 21 can be guided to the fan blade 6 by the guide part 33 of the baffle structure 3 when passing through the baffle structure 3. Then, the fan blade 6 blows the cold air to the air outlet 12 again, thereby preventing the return of cold air from accumulating and affecting the temperature inside the chamber 21. This further improves the cooling and heating performance of the air conditioner and reduces condensation.

[0042] In the specific embodiments, please continue to refer to Figures 1 to 5 The other end of the windproof structure 3 is a bent structure, which bends towards the first shell body 13.

[0043] Specifically, there is an assembly gap between the wind baffle structure 3 and the first shell body 13. The other end of the wind baffle structure 3 is bent towards the first shell body 13 to guide the cold air flowing back in the gap, thereby preventing the cold air from accumulating and affecting the temperature inside the chamber 21. It should be noted that the other end of the wind baffle structure 3 is bent at the top of the first shell body 13 to directly guide the cold air flowing back in the assembly gap to the fan blade 6, and the surface of the wind baffle structure 3 facing the first shell body 13 is a curved surface.

[0044] In a specific embodiment, reference is made to... Figures 3 to 5 A sealing groove 32 is provided on the side of the bent structure facing the second shell body 14, and one end of the second shell body 14 is disposed in the sealing groove 32.

[0045] Specifically, the sealing groove 32 is used to realize the detachable connection between the second shell body 14 and the windproof structure 3. On the other hand, the sealing groove 32 and the second shell body 14 form a Z-shaped assembly gap to improve the sealing performance of the condensation cavity 4, thereby improving the condensation phenomenon of the panel 2.

[0046] Furthermore, the bottom of the condensing chamber 4 has a sloping structure, which is used to discharge the condensate accumulated in the condensing chamber 4 to the outside of the shell 1.

[0047] Specifically, the condenser chamber 4 is used to collect condensate to prevent it from flowing to other components and causing damage. In this embodiment, the bottom of the condenser chamber 4 is designed with a slope to guide the condensate accumulated within it, thus preventing large amounts of condensate from accumulating. It should be noted that the slope is lower on the side near the outlet of the condenser chamber 4. When a certain amount of condensate accumulates, the slope enhances the efficiency of condensate drainage, thereby preventing condensate buildup within the condenser chamber 4.

[0048] It should be noted that the reference Figures 1 to 3 The panel 2 can be provided with a protruding structure on the side wall of the condensation chamber 4. The protruding structure can form a certain angle with the air inlet direction so that the high-speed airflow entering the condensation chamber 4 from the air inlet 11 can blow away some of the condensation on the side wall of the panel 2 and then blow it out through the fan blade 6 to increase the indoor humidity.

[0049] In a specific embodiment, reference is made to... Figure 6 The air conditioner's anti-condensation structure also includes a guide pipe 5, one end of which is connected to the lower side of the bottom of the condensation chamber 4, and the other end of which is located outside the housing 1.

[0050] Specifically, the guide pipe 5 is connected to the condensation chamber 4 and is used to drain the condensate accumulated in the condensation chamber 4. It should be noted that the guide pipe 5 can be a copper pipe or a rubber hose.

[0051] In a specific embodiment, reference is made to... Figure 7 The guide pipe 5 can be connected to the outlet of the condensing chamber 4 via the hook 7. Of course, the guide pipe 5 can also be fixed to the outlet of the condensing chamber 4.

[0052] Furthermore, the windshield structure 3 is integrally formed with the panel 2.

[0053] Specifically, the windbreak structure 3 is integrally formed with the panel 2, which can improve the sealing performance of the condensation chamber 4, reduce the existence of assembly gaps, and thus improve the condensation phenomenon; on the other hand, it reduces assembly steps and improves assembly efficiency. Example 2

[0054] This invention provides an air conditioner, which includes the anti-condensation structure of the air conditioner in Embodiment 1.

[0055] Specifically, the air conditioner includes a heat exchanger and the anti-condensation structure of Embodiment 1. The heat exchanger is disposed within the chamber 21 of the anti-condensation structure. The fan blades 6 rotate to allow air to enter the chamber 21 from the air inlet 11. When the air passes through the heat exchanger, it exchanges heat with the refrigerant therein and is then blown out from the air outlet 12. The air conditioner provided in this embodiment is designed based on the anti-condensation structure of Embodiment 1. Therefore, the beneficial effects of the air conditioner are all described in the description of the anti-condensation structure of Embodiment 1, and will not be repeated here.

[0056] In summary, it is readily understood by those skilled in the art that, without conflict, the aforementioned advantageous technical features can be freely combined and superimposed.

[0057] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention in any way. Any simple modifications, equivalent changes and alterations made to the above embodiments based on the technical essence of the present invention shall still fall within the scope of the technical solution of the present invention.

Claims

1. An anti-condensation structure for an air conditioner, characterized in that, include: A housing having an air inlet and an air outlet; A panel, which is connected to the housing and forms a chamber for communicating with the air inlet and the air outlet; A windbreak structure is provided on the side of the panel opposite to the housing, the windbreak structure is located near the air outlet, and the windbreak structure and the panel form a condensation cavity for equalizing the temperature difference of the panel; The housing includes a first housing body and a bottom shell. The first housing body is disposed near the air outlet, and the air outlet is formed by the first housing body and the bottom shell. The windbreak structure is sealed to the first shell body to prevent cold air from flowing back; The housing also includes a second housing body, one end of which is connected to the windproof structure, and the other end of which is disposed near the air inlet. The second housing body is used to guide a portion of the airflow at the air inlet into the condensation chamber. The second shell body is detachably connected to the windproof structure.

2. The anti-condensation structure for air conditioners according to claim 1, characterized in that, The windproof structure has multiple protrusions on the side opposite to the first shell body; The first shell body has a groove on the side opposite to the windproof structure that matches the protrusion.

3. The anti-condensation structure for air conditioners according to claim 1, characterized in that, One end of the windbreak structure is located between the panel and the first housing body, and the other end of the windbreak structure is provided with a guide portion for guiding the returning cold air to the fan blade.

4. The anti-condensation structure for air conditioners according to claim 3, characterized in that, The other end of the windproof structure is a bent structure, which bends towards the first shell body.

5. The anti-condensation structure for air conditioners according to claim 4, characterized in that, The bent structure has a sealing groove on the side facing the second shell body, and one end of the second shell body is disposed in the sealing groove.

6. The anti-condensation structure for an air conditioner according to claim 1, characterized in that, The bottom of the condensation chamber has a sloping structure, which is used to discharge the condensate accumulated in the condensation chamber to the outside of the shell.

7. The anti-condensation structure for an air conditioner according to claim 6, characterized in that, The air conditioner's anti-condensation structure also includes a guide pipe, one end of which is connected to the lower side of the bottom of the condensation chamber, and the other end of which is located outside the housing.

8. The anti-condensation structure for an air conditioner according to claim 1, characterized in that, The windbreak structure is integrally formed with the panel.

9. An air conditioner, characterized in that, The air conditioner includes the anti-condensation structure of the air conditioner as described in any one of claims 1 to 8.