Air conditioner

By designing airflow guiding components in the air conditioner, the air outlet area and air delivery range of fresh air and purified air are increased, solving the problem of insufficient air delivery range and efficiency of existing air conditioners, and improving air delivery comfort and user experience.

CN224534361UActive Publication Date: 2026-07-21GD MIDEA AIR CONDITIONING EQUIP CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GD MIDEA AIR CONDITIONING EQUIP CO LTD
Filing Date
2025-07-21
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing air conditioners have small fresh air and purified air outlets, which limits the air delivery range and ventilation efficiency, affecting the comfort of air delivery.

Method used

An airflow guiding component was designed, including an airflow guide and an airflow guide baffle. Through the airflow guide cavity, the flow divider and the flow divider cone, the airflow is guided to multiple air outlets to achieve front and rear air supply of fresh air and purified air, thereby increasing the air outlet area and air supply range.

Benefits of technology

It improves the ventilation efficiency of fresh air and purified air, enhances the air supply comfort of the air conditioner, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of air conditioners, air conditioner includes: shell and flow guide assembly.There is first air inlet, first air outlet and second air outlet on shell, first air outlet is located in front of second air outlet;Flow guide assembly is located in shell, flow guide assembly is used to guide flow from first air inlet to first air outlet and second air outlet.According to the air conditioner of the utility model, flow guide assembly can play the role of flow guide and reasonable distribution airflow, can realize new air and purified air front and back air supply, increase the air outlet area and air supply range of new air and purified air, can improve the ventilation efficiency of new air and purified air, to improve the air supply comfort of air conditioner, it is beneficial to improve the use experience of user.
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Description

Technical Field

[0001] This utility model relates to the field of air handling equipment technology, and in particular to an air conditioner. Background Technology

[0002] In related technologies, air conditioners are equipped with air inlets and outlets for supplying fresh air and purified air, which can introduce fresh outdoor air into the room to achieve air exchange between indoors and outdoors, or to circulate indoor air to increase the amount of circulating air in the room. However, the existing air outlets for supplying fresh air and purified air are relatively small, with limited air supply range and ventilation efficiency, which affects the comfort of the air conditioner's air supply. Utility Model Content

[0003] This utility model aims to solve at least one of the technical problems existing in the prior art. To this end, this utility model proposes an air conditioner that increases the air outlet area and air delivery range of fresh air and purified air, improves ventilation efficiency, and thus enhances the air delivery comfort of the air conditioner.

[0004] An air conditioner according to an embodiment of the present invention includes: a housing and an airflow guiding assembly. The housing has a first air inlet, a first air outlet, and a second air outlet, with the first air outlet located in front of the second air outlet; the airflow guiding assembly is disposed inside the housing and is used to guide the airflow entering from the first air inlet to the first air outlet and the second air outlet.

[0005] According to the embodiment of the present invention, the air conditioner, by providing a flow guiding component for guiding the airflow entering from the first air inlet to the first air outlet and the second air outlet, can play the role of guiding and rationally distributing the airflow, realizing the front and rear air supply of fresh air and purified air, increasing the air outlet area and air supply range of fresh air and purified air, improving the ventilation efficiency of fresh air and purified air, thereby improving the air supply comfort of the air conditioner and improving the user experience.

[0006] According to some embodiments of the present invention, the second air outlet is two that are spaced apart in the left-right direction. The flow guiding component includes a flow guide, which has a flow guiding cavity. The flow guide is provided with an air intake, a first air exhaust, a second air exhaust, and a third air exhaust that are connected to the flow guiding cavity. The air intake is connected to the first air inlet, the first air exhaust is connected to the first air outlet, and the second air exhaust and the third air exhaust are respectively connected to the two second air outlets.

[0007] In some embodiments of this utility model, a first flow divider is provided in the flow guiding cavity. The first flow divider is connected to the inner wall of the flow guiding cavity to divide the flow guiding cavity into a first flow channel and a flow cavity. At least a portion of the flow cavity is located behind the first flow channel. The air intake is connected to the first flow channel and the flow cavity. The first exhaust port is connected to the first flow channel. The second exhaust port and the third exhaust port are connected to the flow cavity.

[0008] In some embodiments of this utility model, a first flow divider cone is provided in the flow guide cavity. The first flow divider cone is disposed in the flow cavity and is used to divide the flow cavity into a second flow channel and a third flow channel. The rear end of the first flow divider plate is connected to the front end of the first flow divider cone. The air intake is connected to both the second flow channel and the third flow channel. The second exhaust port is connected to the second flow channel. The third exhaust port is connected to the third flow channel.

[0009] In some embodiments of this utility model, the first diverter cone includes a second diverter plate and a third diverter plate, the second diverter plate and the third diverter plate are arranged in the left-right direction, the lower ends of the second diverter plate and the lower ends of the third diverter plate are connected, and in the bottom-up direction, the second diverter plate and the third diverter plate are inclined in a direction away from each other, and the front ends of the second diverter plate and the front ends of the third diverter plate are connected to the rear end face of the first diverter plate.

[0010] In some embodiments of this utility model, the flow guide includes a first flow guide and a second flow guide, the first flow guide and the second flow guide are arranged and connected in a front-to-back direction, the first flow guide and the second flow guide together define the flow guide cavity, the first flow divider is connected to the first flow guide, the first exhaust port is disposed on the first flow guide, the rear end of the first flow divider cone is connected to the second flow guide, the first flow guide and the second flow guide together define the second exhaust port and the third exhaust port, the second exhaust port and the third exhaust port are respectively located on the left and right sides of the first exhaust port.

[0011] In some embodiments of this utility model, the first flow divider cone is divided into a front flow divider cone and a rear flow divider cone along the front-back direction. The front flow divider cone is connected to the first flow divider plate, and the rear flow divider cone is connected to the second flow guide.

[0012] In some embodiments of this utility model, a positioning rib is provided on one of the rear end of the front splitter cone and the front end of the rear splitter cone, and a positioning groove that cooperates with the positioning rib is provided on the other of the rear end of the front splitter cone and the front end of the rear splitter cone.

[0013] In some embodiments of this utility model, the first fluid guide and the second fluid guide are snap-fitted together.

[0014] In some embodiments of this utility model, the first guide fluid is provided with a locking protrusion, the locking protrusion is provided on the outer wall surface of the upper end of the first guide fluid, and the upper end of the second guide fluid is provided with a locking hole that cooperates with the locking protrusion. The locking protrusion is a plurality of protrusions spaced apart along the left-right direction, and the locking hole is a plurality of protrusions that correspond one-to-one with the plurality of locking protrusions.

[0015] In some embodiments of this utility model, a stop buckle is connected to the first fluid guide, the stop buckle is disposed on the outer wall surface of the upper end of the first fluid guide, and a stop groove is defined between the stop buckle and the outer wall surface of the first fluid guide. At least a portion of the second fluid guide is inserted into the stop groove, and the stop buckle is a plurality of them spaced apart along the left-right direction.

[0016] In some embodiments of this invention, the first fluid guide and the second fluid guide are connected by fasteners.

[0017] In some embodiments of this utility model, the housing includes a rear shell, a panel bracket, and a top panel; the first air inlet and the second air outlet are disposed on the rear shell; the air guide is connected to the rear shell; the panel bracket is disposed in front of the rear shell and connected to the rear shell; at least a portion of the air guide is located within the space defined by the panel bracket and the rear shell; the top panel is disposed in front of the panel bracket and connected to the panel bracket; and the first air outlet is disposed on the top panel.

[0018] In some embodiments of this utility model, the first air outlet is two that are spaced apart along the left and right direction. The flow guiding component also includes a flow guiding baffle. The flow guiding baffle is disposed in the housing. The flow guiding baffle is located in front of the flow guide and behind the upper panel. The flow guiding baffle has a flow splitting cavity. The flow guiding baffle has an air inlet, a first ventilation port and a second ventilation port that communicate with the flow splitting cavity. The air inlet communicates with the first air outlet. The first ventilation port and the second ventilation port communicate with the two first air outlets respectively.

[0019] In some embodiments of this utility model, a second flow-dividing cone is provided in the flow-dividing cavity, which is used to divide the flow-dividing cavity into a fourth flow channel and a fifth flow channel. The air inlet is connected to both the fourth and fifth flow channels. The first vent is connected to the fourth flow channel, and the second vent is connected to the fifth flow channel.

[0020] In some embodiments of this utility model, the second diverter cone includes a fourth diverter plate and a fifth diverter plate, which are arranged in the left-right direction. The rear ends of the fourth diverter plate and the rear ends of the fifth diverter plate are connected. In the direction from back to front, the fourth diverter plate and the fifth diverter plate are inclined in a direction away from each other.

[0021] In some embodiments of this utility model, the air conditioner includes an air outlet frame, which is disposed between the panel support and the upper panel. The air outlet frame is connected to the panel support and the upper panel respectively. The air outlet frame is provided with an abutment portion, which defines a guide channel. The abutment portion abuts against the guide, and the guide channel is connected to the first exhaust port and the air inlet respectively.

[0022] In some embodiments of this utility model, the flow guide baffle is snapped together with the upper panel.

[0023] In some embodiments of this utility model, the top plate is provided with a first slot and a second slot, the first slot and the second slot are spaced apart in the vertical direction, the ends of the first slot and the second slot that are close to each other are open, and the upper and lower ends of the flow guide baffle are respectively inserted into the first slot and the second slot.

[0024] In some embodiments of this utility model, a first buckle and a second buckle are connected to the top plate. The first buckle and the second buckle define the first slot and the second slot respectively with the top plate. In the direction from back to front, the side surface of the second buckle facing away from the second slot is inclined toward the direction close to the first buckle.

[0025] According to some embodiments of the present invention, the first air inlet includes a fresh air inlet and a purified air inlet, wherein the fresh air inlet is adapted to communicate with the outdoor environment and the purified air inlet is adapted to communicate with the indoor environment.

[0026] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0027] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:

[0028] Figure 1 This is a perspective view of an air conditioner according to an embodiment of the present utility model;

[0029] Figure 2This is a front view of an air conditioner according to an embodiment of the present utility model;

[0030] Figure 3 It is along Figure 2 Sectional view of line AA in the middle;

[0031] Figure 4 It is along Figure 2 Sectional view of the middle BB line;

[0032] Figure 5 This is an exploded view of some components of an air conditioner according to an embodiment of the present utility model;

[0033] Figure 6 This is an exploded view of another component of the air conditioner according to an embodiment of the present utility model;

[0034] Figure 7 This is a first-view perspective perspective view of the air guide of the air guide assembly of an air conditioner according to an embodiment of the present utility model;

[0035] Figure 8 This is a perspective view of the air guide of the air guide assembly of an air conditioner according to an embodiment of the present utility model;

[0036] Figure 9 This is a third-view perspective view of the air guide component of an air conditioner according to an embodiment of the present utility model;

[0037] Figure 10 This is a perspective view of the first guide fluid of the air guide component of the air conditioner according to an embodiment of the present utility model.

[0038] Figure 11 This is a perspective view of the first guide fluid of the air guide component of the air conditioner according to an embodiment of the present utility model.

[0039] Figure 12 This is a perspective view of the second guide fluid of the air guide component of the air conditioner according to an embodiment of the present utility model.

[0040] Figure 13 This is a perspective view of the second guide fluid of the air guide component of the air conditioner according to an embodiment of the present utility model.

[0041] Figure 14 This is a fourth-angle perspective view of the air guide component of an air conditioner according to an embodiment of the present utility model;

[0042] Figure 15 yes Figure 14 Enlarged view of point C in the middle;

[0043] Figure 16This is a perspective view from the fifth angle of the air guide component of the air conditioner according to an embodiment of the present utility model;

[0044] Figure 17 yes Figure 16 Enlarged view at point D;

[0045] Figure 18 This is a sixth-angle perspective view of the air guide component of an air conditioner according to an embodiment of the present utility model;

[0046] Figure 19 yes Figure 18 Enlarged view at point E in the middle;

[0047] Figure 20 This is a perspective view from the seventh angle of the air guide component of the air conditioner according to an embodiment of the present utility model;

[0048] Figure 21 yes Figure 20 Enlarged view at point F;

[0049] Figure 22 This is a perspective view of the rear shell, air guide, fresh air module, and purification module of an air conditioner according to an embodiment of the present utility model;

[0050] Figure 23 yes Figure 22 Enlarged view of point G in the middle;

[0051] Figure 24 This is a perspective view of a portion of the rear casing structure of an air conditioner according to an embodiment of the present utility model;

[0052] Figure 25 yes Figure 24 Enlarged view of point H in the middle;

[0053] Figure 26 This is an exploded view of the airflow guide assembly, air outlet frame, and top panel of an air conditioner according to an embodiment of the present utility model;

[0054] Figure 27 This is a perspective view of the airflow guide baffle of the airflow guide assembly of an air conditioner according to an embodiment of the present utility model;

[0055] Figure 28 This is a perspective view of the airflow guiding assembly of an air conditioner according to an embodiment of the present utility model, including the airflow guiding baffle and the upper panel.

[0056] Figure 29 This is a cross-sectional view of the airflow guiding assembly of the air conditioner according to an embodiment of the present utility model, including the airflow guiding baffle and the upper panel.

[0057] Figure 30 This is a perspective view of the air outlet frame of an air conditioner according to an embodiment of the present utility model;

[0058] Figure 31 This is a perspective view of the airflow guiding baffle and the upper panel of the airflow guiding assembly of the air conditioner according to an embodiment of the present utility model.

[0059] Figure 32 yes Figure 31 Enlarged view of point I in the middle;

[0060] Figure 33 yes Figure 31 Enlarged view of point J in the middle;

[0061] Figure 34 This is a structural schematic diagram of the airflow guiding assembly of an air conditioner according to an embodiment of the present utility model, including the airflow guiding baffle, the upper panel, the air outlet frame, and the panel support.

[0062] Figure 35 yes Figure 34 A magnified view of point K in the middle.

[0063] Figure label:

[0064] 100. Air conditioner;

[0065] 1. Housing; 110. First air inlet; 111. Fresh air inlet; 112. Purified air inlet; 120. Second air inlet; 130. First air outlet; 140. Second air outlet; 150. Third air outlet; 160. Heat exchange duct; 11. Rear housing; 113. Third screw post; 114. Limiting rib; 12. Panel bracket; 13. Top panel; 131. First slot; 132. Second slot; 133. First buckle; 134. Second buckle; 14. Bottom panel; 15. Top cover; 16. Chassis components;

[0066] 20. Flow guiding components;

[0067] 2. Flow guide; 21. Flow guide cavity; 211. First flow channel; 212. Flow cavity; 213. Second flow channel; 214. Third flow channel; 210. Air intake; 220. First exhaust outlet; 230. Second exhaust outlet; 240. Third exhaust outlet; 22. First splitter plate; 23. First splitter cone; 231. Second splitter plate; 232. Third splitter plate; 233. Front splitter cone; 234. Rear splitter cone; 235. Positioning protrusion Rib; 236, Positioning groove; 24, First guide fluid; 241, Locking protrusion; 242, Locking buckle; 243, Stop groove; 244, First part; 245, Second part; 246, First screw post; 247, Second screw post; 25, Second guide fluid; 251, Locking hole; 252, First groove; 253, First screw hole; 254, Second groove; 255, Second screw hole; 261, Third groove; 262, Third screw hole;

[0068] 3. Flow guide baffle; 31. Flow splitting cavity; 311. Fourth flow channel; 312. Fifth flow channel; 32. Air inlet; 33. First vent; 34. Second vent; 35. Second flow splitting cone; 351. Fourth flow splitting plate; 352. Fifth flow splitting plate;

[0069] 4. Air outlet frame; 41. Contact part; 42. Airflow guide channel;

[0070] 51. Fresh air module; 52. Purification module; 53. Louver assembly; 54. Upper drive assembly; 55. Air guide plate; 56. Lower drive assembly; 57. Heat exchange assembly; 58. Air duct components; 59. Electrical control box;

[0071] 61. First air intake grille; 62. Second air intake grille; 63. Air outlet grille. Detailed Implementation

[0072] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0073] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "transverse," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential," etc., indicating the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, features defined with "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more.

[0074] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" 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; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0075] The air conditioner 100 according to an embodiment of the present invention is described below with reference to the accompanying drawings.

[0076] like Figure 1 , Figure 4 , Figure 6 and Figure 7 As shown, the air conditioner 100 according to an embodiment of the present utility model includes a housing 1 and an airflow guiding assembly 20.

[0077] Specifically, such as Figures 1-6 As shown, the housing 1 has a first air inlet 110, a first air outlet 130, and a second air outlet 140, with the first air outlet 130 located in front of the second air outlet 140. A flow guiding assembly 20 is disposed inside the housing 1, and the flow guiding assembly 20 is used to guide the airflow entering from the first air inlet 110 to the first air outlet 130 and the second air outlet 140.

[0078] Reference Appendix Figures 1-4 As shown, the housing 1 can protect the internal structure of the air conditioner 100, prevent the internal structure of the air conditioner 100 from being exposed and damaged, help extend the service life of the air conditioner 100, and has a better appearance.

[0079] Understandably, the first air inlet 110 can be connected to the indoor environment and / or the outdoor environment. When the first air inlet 110 is connected to the indoor environment, indoor airflow enters the air guide assembly 20 from the first air inlet 110, and is then blown back into the room through the first air outlet 130 and the second air outlet 140, achieving indoor air circulation. This increases the amount of circulating indoor air, improves the uniformity of indoor temperature, and avoids localized temperature differences. The air conditioner 100 may be equipped with a purification module 52 to filter and purify the airflow entering from the first air inlet 110, so that the purified air is blown into the room from the first air outlet 130 and the second air outlet 140, which helps to improve indoor air quality.

[0080] When the first air inlet 110 is connected to the outdoor environment, outdoor airflow enters the air guide component 20 through the first air inlet 110 and is blown into the room through the first air outlet 130 and the second air outlet 140, introducing fresh outdoor air into the room and realizing the fresh air function. The introduction of fresh outdoor air through the first air inlet 110 realizes the exchange of indoor and outdoor air, which can improve the indoor air quality to a certain extent and enhance the user experience.

[0081] Furthermore, the first air outlet 130 and the second air outlet 140 on the housing 1 are spaced apart in the front-to-back direction, and the first air outlet 130 and the second air outlet 140 can be along the length of the air conditioner 100 (see attached diagram). Figure 1(As shown in the vertical direction). The airflow guiding component 20 serves to guide the airflow. By setting the airflow guiding component 20, the airflow entering from the first air inlet 110 can be reasonably distributed to the first air outlet 130 and the second air outlet 140, which helps to ensure the uniform distribution of airflow from the first air outlet 130 and the second air outlet 140, avoiding excessive or insufficient airflow in local areas. It can also realize the front and rear air supply of fresh air and purified air, increasing the air outlet area and air supply range of fresh air and purified air, which can improve the ventilation efficiency of fresh air and purified air, thereby improving the air supply comfort and enhancing the user experience.

[0082] According to the embodiment of the present invention, the air conditioner 100, by providing a flow guiding component 20 for guiding the airflow entering from the first air inlet 110 to the first air outlet 130 and the second air outlet 140, can play the role of guiding and rationally distributing the airflow, realizing the front and rear air supply of fresh air and purified air, increasing the air outlet area and air supply range of fresh air and purified air, improving the ventilation efficiency of fresh air and purified air, thereby improving the air supply comfort of the air conditioner 100 and improving the user experience.

[0083] In some embodiments of this utility model, such as Figures 6-9 As shown, there are two second air outlets 140 arranged at intervals along the left and right directions. The flow guiding assembly 20 includes a flow guide 2, which has a flow guiding cavity 21. The flow guide 2 is provided with an air intake 210, a first air exhaust 220, a second air exhaust 230 and a third air exhaust 240 that are connected to the flow guiding cavity 21. The air intake 210 is connected to the first air inlet 110, the first air exhaust 220 is connected to the first air outlet 130, and the second air exhaust 230 and the third air exhaust 240 are respectively connected to the two second air outlets 140.

[0084] Understandably, after outdoor fresh air and / or indoor purified air enter through the first air inlet 110, they flow into the guide cavity 21 of the guide vane 2 through the air intake 210, and then are directed to the first air outlet 130 and two second air outlets 140 through the first air outlet 220, the second air outlet 230, and the third air outlet 240, respectively, to achieve the supply of fresh air and purified air. This allows for the front and rear supply of fresh air and purified air, increasing the air outlet area and supply range of fresh air and purified air, improving the ventilation efficiency of fresh air and purified air, thereby enhancing air supply comfort and improving the user experience.

[0085] The first exhaust vent 220 can direct some airflow to the first air outlet 130 located in front of the air conditioner 100, thereby achieving the supply of fresh and purified air to the front of the air conditioner 100. The second exhaust vent 230 and the third exhaust vent 240 can divide the airflow flowing to the rear into two streams, which are directed to the two first air outlets 130 located behind the air conditioner 100 and on the left and right sides of the air conditioner 100, respectively. This can reasonably distribute the airflow entering from the first air inlet 110 to the first air outlet 130 and the second air outlet 140, helping to ensure a uniform distribution of airflow from the first air outlet 130 and the second air outlet 140, and avoiding excessive or insufficient airflow in some areas.

[0086] In some embodiments of this utility model, such as Figure 9 and Figure 11 As shown, a first flow divider 22 is provided inside the flow guide cavity 21. The first flow divider 22 is connected to the inner wall of the flow guide cavity 21 to divide the flow guide cavity 21 into a first flow channel 211 and a flow cavity 212. At least a portion of the flow cavity 212 is located behind the first flow channel 211. The air intake 210 is connected to the first flow channel 211 and the flow cavity 212. The first exhaust 220 is connected to the first flow channel 211. The second exhaust 230 and the third exhaust 240 are connected to the flow cavity 212.

[0087] By setting the first diverter plate 22, the outdoor fresh air and / or indoor purified air entering from the first air inlet 110 can be divided into two airflows, one flowing into the first flow channel 211 and the other flowing into the flow cavity 212. This guides the airflow to the first air outlet 130 located in front of the air conditioner 100, thereby achieving the supply of fresh air and purified air in front of the air conditioner 100. This increases the air outlet area and air supply range of the fresh air and purified air, improves the ventilation efficiency of the fresh air and purified air, and thus improves the comfort of the air supply, which is beneficial to improving the user experience.

[0088] In some embodiments of this utility model, such as Figure 9 As shown, a first flow divider cone 23 is provided in the flow guide cavity 21. The first flow divider cone 23 is located in the flow cavity 212 and is used to divide the flow cavity 212 into a second flow channel 213 and a third flow channel 214. The rear end of the first flow divider plate 22 is connected to the front end of the first flow divider cone 23. The air intake 210 is connected to both the second flow channel 213 and the third flow channel 214. The second exhaust 230 is connected to the second flow channel 213, and the third exhaust 240 is connected to the third flow channel 214.

[0089] By setting the first diversion cone 23, the outdoor fresh air and / or indoor purified air entering the flow cavity 212 can be divided into two airflows, one flowing into the second flow channel 213 and the other flowing into the third flow channel 214. This guides the airflow to the two second air outlets 140 located behind and on the left and right sides of the air conditioner 100, thus achieving the supply of fresh air and purified air to the left and right sides behind the air conditioner 100. This increases the air outlet area and supply range of the fresh air and purified air, improving the ventilation efficiency and thus enhancing air supply comfort and user experience.

[0090] In some embodiments of this utility model, such as Figure 9 As shown, the first diverter cone 23 includes a second diverter plate 231 and a third diverter plate 232. The second diverter plate 231 and the third diverter plate 232 are arranged in the left-right direction. The lower end of the second diverter plate 231 and the lower end of the third diverter plate 232 are connected. In the bottom-up direction, the second diverter plate 231 and the third diverter plate 232 are inclined in a direction away from each other. The front end of the second diverter plate 231 and the front end of the third diverter plate 232 are connected to the rear end face of the first diverter plate 22.

[0091] Therefore, the second diverter plate 231 and the third diverter plate 232 can form a V-shaped structure, dividing the flow cavity 212 into a second flow channel 213 and a third flow channel 214, which is simple and easy to implement. The outdoor fresh air and / or indoor purified air entering the flow cavity 212 can be divided into two airflows by the first diverter cone 23. One airflow flows into the second flow channel 213 along the second diverter plate 231, and the other airflow flows into the third flow channel 214 along the third diverter plate 232. This guides the airflow to the two second air outlets 140 located behind the air conditioner 100 and on its left and right sides, thus achieving the supply of fresh air and purified air to the left and right sides behind the air conditioner 100. This increases the air outlet area and supply range of the fresh air and purified air, improving the ventilation efficiency and thus enhancing air supply comfort, which is beneficial to improving the user experience.

[0092] In some embodiments of this utility model, such as Figures 7-13 As shown, the flow guide 2 includes a first flow guide 24 and a second flow guide 25. The first flow guide 24 and the second flow guide 25 are arranged and connected in the front-to-back direction. The first flow guide 24 and the second flow guide 25 together define the flow guide cavity 21. The first flow divider 22 is connected to the first flow guide 24. The first exhaust port 220 is provided on the first flow guide 24. The rear end of the first flow divider cone 23 is connected to the second flow guide 25. The first flow guide 24 and the second flow guide 25 together define the second exhaust port 230 and the third exhaust port 240. The second exhaust port 230 and the third exhaust port 240 are located on the left and right sides of the first exhaust port 220, respectively.

[0093] This facilitates the separate processing of the first guide fluid 24 and the second guide fluid 25, and then the first guide fluid 24 and the second guide fluid 25 are assembled and connected together to form the guide cavity 21. Compared with processing the guide cavity 21 directly on the entire guide 2, dividing the guide 2 into the first guide fluid 24 and the second guide fluid 25 is easier to manufacture and process, thereby improving the production and processing efficiency of the guide assembly 20 and the air conditioner 100.

[0094] The first diverter plate 22 is connected to the first guide tube 24. Outdoor fresh air and / or indoor purified air enter from the first air inlet 110 and flow into the guide chamber 21 of the guide tube 2 through the air intake 210. Part of the airflow is guided forward by the first guide plate to the first exhaust vent 220, thereby guiding the airflow to the first air outlet 130 located in front of the air conditioner 100, thus realizing the supply of fresh air and purified air in front of the air conditioner 100. The other part of the airflow is divided into two airflows, left and right, by the first diverter cone 23, thereby guiding the airflow to the two second air outlets 140 located behind the air conditioner 100 and on the left and right sides of the air conditioner 100, thus realizing the supply of fresh air and purified air to the left and right sides behind the air conditioner 100, increasing the air outlet area and air supply range of fresh air and purified air, thereby improving the ventilation efficiency of fresh air and purified air and improving the user experience.

[0095] In some embodiments of this utility model, such as Figures 9-13 As shown, the first flow divider cone 23 is divided into a front flow divider cone 233 and a rear flow divider cone 234 along the front-to-back direction. The front flow divider cone 233 is connected to the first flow divider plate 22, and the rear flow divider cone 234 is connected to the second flow guide 25. This design accommodates the separate structure of the first flow guide 24 and the second flow guide 25. In the specific manufacturing process, the first flow guide 24, the first flow divider plate 22, and the front flow divider cone 233 can be integrally manufactured, as can the second flow guide 25 and the rear flow divider cone 234. Then, the first flow guide 24 and the second flow guide 25 are assembled and connected together, while the front flow divider cone 233 and the rear flow divider cone 234 are butted together. This facilitates production and processing, thereby improving the production and processing efficiency of the flow guide assembly 20 and the air conditioner 100.

[0096] In some embodiments of this utility model, such as Figures 9-15As shown, a positioning rib 235 is provided on one of the rear end of the front splitter cone 233 and the front end of the rear splitter cone 234, and a positioning groove 236 that mates with the positioning rib 235 is provided on the other of the rear end of the front splitter cone 233 and the front end of the rear splitter cone 234. When assembling the first guide fluid 24 and the second guide fluid 25, the positioning rib 235 can be inserted into the positioning groove 236. Through the cooperation of the positioning rib 235 and the positioning groove 236, positioning and limiting functions can be achieved, enabling rapid alignment and splicing between the front splitter cone 233 and the rear splitter cone 234, effectively reducing assembly difficulty, thereby improving the assembly efficiency between the first guide fluid 24 and the second guide fluid 25, as well as between the front splitter cone 233 and the rear splitter cone 234, and thus improving the assembly efficiency of the guide assembly 20 and the air conditioner 100.

[0097] In some embodiments of this utility model, such as Figure 7 , Figure 8 , Figure 16 and Figure 17 As shown, the first fluid guide 24 and the second fluid guide 25 are snap-fitted together, which allows for quick and easy installation without tools, ensuring a stable connection between them. It also allows for detachable connection, facilitating future inspection and maintenance.

[0098] In some embodiments of this utility model, such as Figure 7 , Figure 8 , Figures 10-13 , Figure 17 and Figure 18 As shown, the first guide fluid 24 is provided with a locking protrusion 241, which is located on the outer wall surface of the upper end of the first guide fluid 24. The upper end of the second guide fluid 25 is provided with a locking hole 251 that cooperates with the locking protrusion 241. There are multiple locking protrusions 241 spaced apart in the left and right direction, and multiple locking holes 251 that correspond one-to-one with the multiple locking protrusions 241.

[0099] When assembling the first fluid guide 24 and the second fluid guide 25, the locking protrusion 241 engages with the locking hole 251, achieving a snap-fit ​​connection between the first fluid guide 24 and the second fluid guide 25. This operation is simple and quick, enabling rapid assembly of the first fluid guide 24 and the second fluid guide 25. The cooperation between multiple locking protrusions 241 and multiple locking holes 251 improves the connection stability between the first fluid guide 24 and the second fluid guide 25 and reduces the stress on each locking protrusion 241 and locking hole 251.

[0100] Furthermore, in the upward direction, the rear end face of the locking protrusion 241 is inclined forward. Thus, during the assembly of the first fluid guide 24 and the second fluid guide 25, the rear end face of the locking protrusion 241 can act as a guide, causing the front end of the second fluid guide 25 to move upwards along the rear end face of the locking protrusion 241 until the locking protrusion 241 engages with the locking hole 251. This further reduces the difficulty of connecting the locking protrusion 241 and the locking hole 251, making the operation simpler and faster, and further improving the assembly efficiency between the first fluid guide 24 and the second fluid guide 25.

[0101] In some embodiments of this utility model, such as Figure 7 , Figure 8 , Figure 10 , Figure 11 , Figure 17 and Figure 18 As shown, a stop 242 is connected to the first fluid guide 24. The stop 242 is located on the outer wall surface of the upper end of the first fluid guide 24. A stop groove 243 is defined between the stop 242 and the outer wall surface of the first fluid guide 24. At least a portion of the second fluid guide 25 is inserted into the stop groove 243. There are multiple stop 242s spaced apart in the left-right direction.

[0102] When assembling the first guide fluid 24 and the second guide fluid 25, the front end of the second guide fluid 25 is engaged in the stop groove 243, which achieves upper and lower limit positioning and snap-fit ​​connection between the first guide fluid 24 and the second guide fluid 25. The operation is simple and quick, enabling rapid assembly between the first guide fluid 24 and the second guide fluid 25. Multiple stop clips 242 limit the second guide fluid 25 at multiple points, which can improve the connection stability between the first guide fluid 24 and the second guide fluid 25 and reduce the stress on each stop clip 242.

[0103] Furthermore, such as Figure 17 As shown in the example, the stop 242 includes a first part 244 and a second part 245. The first part 244 extends vertically, and the second part 245 extends horizontally. The lower end of the first part 244 is connected to the outer wall surface of the first fluid guide 24, and the upper end of the first part 244 is connected to the front end of the second part 245. A stop groove 243 is defined between the first part 244, the second part 245, and the outer wall surface of the first fluid guide 24. When assembling the first fluid guide 24 and the second fluid guide 25, the front end of the second fluid guide 25 is engaged between the second part 245 and the outer wall surface of the first fluid guide 24, which can realize the upper and lower limiting and snap-fit ​​connection between the first fluid guide 24 and the second fluid guide 25. The structure is simple and easy to implement.

[0104] Preferably, the first fluid guide 24 is provided with a locking protrusion 241, which is located on the outer wall surface of the upper end of the first fluid guide 24. The upper end of the second fluid guide 25 is provided with a locking hole 251 that mates with the locking protrusion 241. At the same time, a stop 242 is connected to the first fluid guide 24, which is located on the outer wall surface of the upper end of the first fluid guide 24. A stop groove 243 is defined between the stop 242 and the outer wall surface of the first fluid guide 24. At least a portion of the second fluid guide 25 is engaged in the stop groove 243. The engagement of the locking protrusion 241 and the locking hole 251 can limit the first fluid guide 24 and the second fluid guide 25 in the front-back direction and the left-right direction, while the stop 242 can limit the first fluid guide 24 and the second fluid guide 25 in the up-down direction. This allows for a more comprehensive and stable engagement connection between the first fluid guide 24 and the second fluid guide 25, further enhancing the connection stability between the first fluid guide 24 and the second fluid guide 25.

[0105] In some embodiments of this utility model, such as Figures 18-21 As shown, the first fluid guide 24 and the second fluid guide 25 are connected by fasteners. This allows for quick and easy installation of the first fluid guide 24 and the second fluid guide 25, while ensuring a stable connection. It also allows for a detachable connection between the first fluid guide 24 and the second fluid guide 25, facilitating future inspection and maintenance. Optionally, the fasteners can be screws, rivets, or other fasteners.

[0106] Preferably, the first fluid guide 24 and the second fluid guide 25 are connected at multiple points by fasteners, which can improve the connection stability between the first fluid guide 24 and the second fluid guide 25 and reduce the stress at the fastener connection.

[0107] Furthermore, such as Figure 18 and Figure 19 As shown in the example, the lower end of the first fluid guide 24 is provided with first screw posts 246 on the left and right sides. The first screw posts 246 are located on the rear surface of the first fluid guide 24. The lower end of the second fluid guide 25 is provided with first grooves 252 on the left and right sides. The first grooves 252 are located on the front surface of the second fluid guide 25. The bottom wall of the first groove 252 is provided with a first screw hole 253 that penetrates the second fluid guide 25. The first screw hole 253 is opposite to the first screw post 246. The fastener is adapted to pass through the first screw hole 253 and be threadedly connected to the first screw post 246. This enables the fastener connection between the first fluid guide 24 and the second fluid guide 25. The structure is simple and the connection stability is high. It also facilitates the assembly and disassembly of the first fluid guide 24 and the second fluid guide 25.

[0108] Furthermore, such as Figure 20 and Figure 21As shown in the example, the rear surface of the first fluid guide 24 is provided with a second screw post 247, which is located inside the flow guide cavity 21. The front surface of the second fluid guide 25 is provided with a second groove 254, and the bottom wall of the second groove 254 is provided with a second screw hole 255 that penetrates the second fluid guide 25. The second screw hole 255 is opposite to the second screw post 247. The fastener is adapted to pass through the second screw hole 255 and be threadedly connected to the second screw post 247. This enables the fastener connection between the first fluid guide 24 and the second fluid guide 25. The structure is simple and the connection stability is high. It also facilitates the assembly and disassembly of the first fluid guide 24 and the second fluid guide 25.

[0109] The first diverting cone 23 includes a second diverting plate 231 and a third diverting plate 232. The second diverting plate 231 and the third diverting plate 232 are arranged in the left and right directions and form a V shape. The second groove 254, the second screw hole 255 and the second screw post 247 are all located between the second diverting plate 231 and the third diverting plate 232, which can improve the tightness of each component of the guide 2 and improve the space utilization of the guide cavity 21.

[0110] In some embodiments of this utility model, such as Figure 5 , Figure 6 , Figure 22 , Figure 24 , Figure 26 , Figure 28 , Figure 34 and Figure 35 As shown, the housing 1 includes a rear housing 11, a panel bracket 12, and a top panel 13. A first air inlet 110 and a second air outlet 140 are disposed on the rear housing 11, and a flow guide 2 is connected to the rear housing 11. The panel bracket 12 is located in front of and connected to the rear housing 11. At least a portion of the flow guide 2 is located within the space defined by the panel bracket 12 and the rear housing 11. The top panel 13 is located in front of and connected to the panel bracket 12, and a first air outlet 130 is disposed on the top panel 13.

[0111] Reference Appendix Figure 5 and attached Figure 6 As shown, the housing 1 also includes a top cover 15, a chassis component 16, and a lower panel 14. The panel bracket 12 is connected to the rear housing 11. The lower panel 14 is located below the upper panel 13. The upper panel 13 and the lower panel 14 are respectively connected to the panel bracket 12. The lower ends of the rear housing 11, the panel bracket 12, and the lower panel 14 are all connected to the chassis component 16. The upper ends of the rear housing 11, the panel bracket 12, and the lower panel 14 are all connected to the top cover 15, thus forming an integral structure to protect the internal structure of the air conditioner 100 and prevent the user from contacting the interior and causing injury.

[0112] The first air outlet 130 is located on the upper panel 13 at the front of the air conditioner 100, and the second air outlet 140 is located on the rear cover 11 at the rear of the air conditioner 100. Both the first air outlet 130 and the second air outlet 140 are along the length of the air conditioner 100 (see attached diagram). Figure 6 Extending in the vertical direction (as shown). Most of the air guide 2 is located within the space defined by the panel bracket 12 and the rear shell 11, facilitating the connection between the air intake 210 and the first air inlet 110. Outdoor fresh air and / or indoor purified air enter from the first air inlet 110 located on the rear shell 11, flow into the air guide cavity 21 of the air guide 2 through the air intake 210, and then are guided through the first exhaust vent 220, the second exhaust vent 230, and the third exhaust vent 240 to the first air outlet 130 located on the upper panel 13 and the two second air outlets 140 located on the rear shell 11, respectively, to achieve the supply of fresh air and purified air. This allows for the front and rear supply of fresh air and purified air, increasing the air outlet area and supply range of fresh air and purified air, improving the ventilation efficiency of fresh air and purified air, thereby improving air supply comfort and enhancing the user experience.

[0113] In some embodiments, such as Figures 22-25 As shown, the flow guide 2 and the rear shell 11 are connected by fasteners, which allows for quick and easy installation of the flow guide 2 and the rear shell 11, while ensuring the stability of the connection. It also allows for a detachable connection between the flow guide 2 and the rear shell 11, facilitating future inspection and maintenance. Optionally, the fasteners can be screws, rivets, or other fasteners.

[0114] Preferably, the flow guide 2 and the rear shell 11 are connected at multiple points by fasteners, which can improve the connection stability between the flow guide 2 and the rear shell 11 and reduce the stress at the fastener connection.

[0115] Furthermore, such as Figure 23 and Figure 25 As shown in the example, the rear shell 11 has third screw posts 113 on its left and right sides, and the guide tube 2 has third grooves 261 on its left and right sides. The third grooves 261 are located on the surface of the guide tube 2 facing the rear shell 11. The bottom wall of the third groove 261 has a third screw hole 262 that penetrates the guide tube 2, and the third screw hole 262 is opposite to the third screw post 113. At the same time, the rear shell 11 also has limiting ribs 114 on its left and right sides. The limiting ribs 114 are connected to the third screw posts 113. The limiting ribs 114 and the third screw posts 113 are adapted to extend into the third grooves 261. The fasteners are adapted to pass through the third screw holes 262 and be threadedly connected to the third screw posts 113. This allows for fastener connection between the rear shell 11 and the guide tube 2. The structure is simple and the connection stability is high. It also facilitates the assembly and disassembly of the rear shell 11 and the guide tube 2.

[0116] Preferably, each third screw post 113 is surrounded by multiple limiting ribs 114, which can both enhance the structural strength of the third screw post 113 and serve a positioning and limiting function. Figure 25 As shown, the third screw post 113 is surrounded by two limiting ribs 114 that extend in the vertical direction and are spaced apart in the horizontal direction, and three limiting ribs 114 that extend in the horizontal direction and are spaced apart in the vertical direction.

[0117] In some embodiments of this utility model, such as Figures 26-29 , Figure 34 and Figure 35 As shown, there are two first air outlets 130 spaced apart in the left-right direction. The flow guiding assembly 20 also includes a flow guiding baffle 3. The flow guiding baffle 3 is disposed inside the housing 1. The flow guiding baffle 3 is located in front of the flow guide 2 and behind the upper panel 13. The flow guiding baffle 3 has a flow splitting cavity 31. The flow guiding baffle 3 has an air inlet 32, a first ventilation port 33 and a second ventilation port 34 that are connected to the flow splitting cavity 31. The air inlet 32 ​​is connected to the first exhaust port 220. The first ventilation port 33 and the second ventilation port 34 are respectively connected to the two first air outlets 130.

[0118] Understandably, after the outdoor fresh air and / or indoor purified air flow out from the first exhaust vent 220, they enter the diversion cavity 31 through the air inlet 32, and then are introduced into the left and right first air outlets 130 respectively through the first ventilation opening 33 and the second ventilation opening 34, thus achieving the supply of fresh air and purified air. This enables the left and right supply of fresh air and purified air in front of the air conditioner 100, further increasing the air outlet area and supply range of fresh air and purified air, improving the ventilation efficiency of fresh air and purified air, thereby improving air supply comfort and enhancing the user experience.

[0119] The first vent 33 and the second vent 34 can divide the airflow flowing to the rear into two streams, one to the left and one to the right, which are respectively directed to the two first air outlets 130 located in front of the air conditioner 100 and on the left and right sides of the air conditioner 100. This can reasonably distribute the airflow entering from the air inlet 32 ​​to the two first air outlets 130, which helps to ensure a uniform distribution of airflow from the two first air outlets 130 and avoid excessive or insufficient airflow in local areas.

[0120] In some embodiments of this utility model, such as Figure 27 and Figure 29 As shown, a second flow divider cone 35 is provided in the flow divider cavity 31. The second flow divider cone 35 is used to divide the flow divider cavity 31 into a fourth flow channel 311 and a fifth flow channel 312. The air inlet 32 ​​is connected to both the fourth flow channel 311 and the fifth flow channel 312. The first ventilation port 33 is connected to the fourth flow channel 311, and the second ventilation port 34 is connected to the fifth flow channel 312.

[0121] By setting the second diversion cone 35, the outdoor fresh air and / or indoor purified air entering the diversion cavity 31 can be divided into two airflows, one flowing into the fourth flow channel 311 and the other flowing into the fifth flow channel 312. This guides the airflow to the two second air outlets 140 located in front of and on the left and right sides of the air conditioner 100, thus achieving the supply of fresh air and purified air to the left and right sides in front of the air conditioner 100. This increases the air outlet area and supply range of the fresh air and purified air, improving the ventilation efficiency and thus enhancing air supply comfort and user experience.

[0122] In some embodiments of this utility model, such as Figure 27 and Figure 29 As shown, the second diverter cone 35 includes a fourth diverter plate 351 and a fifth diverter plate 352. The fourth diverter plate 351 and the fifth diverter plate 352 are arranged in the left-right direction. The rear end of the fourth diverter plate 351 and the rear end of the fifth diverter plate 352 are connected. In the direction from back to front, the fourth diverter plate 351 and the fifth diverter plate 352 are inclined in a direction away from each other.

[0123] Therefore, the fourth diversion plate 351 and the fifth diversion plate 352 can form a V-shaped structure, dividing the diversion cavity 31 into the fourth flow channel 311 and the fifth flow channel 312, which is simple and easy to implement. The outdoor fresh air and / or indoor purified air entering the diversion cavity 31 can be divided into two airflows by the second diversion cone 35. One airflow flows along the fourth diversion plate 351 into the fourth flow channel 311, and the other airflow flows along the fifth diversion plate 352 into the fifth flow channel 312. This guides the airflow to the two first air outlets 130 located in front of the air conditioner 100 and on its left and right sides, thus achieving the supply of fresh air and purified air to the left and right sides in front of the air conditioner 100. This increases the air outlet area and supply range of the fresh air and purified air, improving the ventilation efficiency and thus enhancing air supply comfort, which is beneficial to improving the user experience.

[0124] In some embodiments of this utility model, such as Figure 5 , Figure 26 , Figure 30 , Figure 34 and Figure 35 As shown, the air conditioner 100 includes an air outlet frame 4, which is located between the panel support 12 and the upper panel 13. The air outlet frame 4 is connected to the panel support 12 and the upper panel 13 respectively. The air outlet frame 4 is provided with an abutment part 41, which defines a guide channel 42. The abutment part 41 abuts against the guide 2. The guide channel 42 is connected to the first air outlet 220 and the air inlet 32 ​​respectively.

[0125] By setting the air outlet frame 4, the upper panel 13 can be easily fixedly installed onto the panel bracket 12 via the air outlet frame 4. The air guide baffle 3 is sandwiched between the upper panel 13 and the air outlet frame 4, which can ensure the stability of the air guide baffle 3 within the housing 1. Furthermore, the air outlet frame 4 has a guide channel 42, which can guide the airflow direction, so that the first air outlet 220 of the air guide 2 is connected to the air inlet 32 ​​of the air guide baffle 3, which can ensure the air guiding and splitting effect of the air guide component 20, thereby optimizing the air supply distribution of the air conditioner 100.

[0126] In some embodiments of this utility model, such as Figures 31-33 As shown, the flow guide baffle 3 is snap-fitted to the upper panel 13. This allows for quick and easy installation without tools, ensuring a stable connection between the flow guide baffle 3 and the upper panel 13. It also allows for detachable connection between the flow guide baffle 3 and the upper panel 13, facilitating future inspection and maintenance.

[0127] In some embodiments of this utility model, such as Figures 31-33 As shown, the upper panel 13 is provided with a first slot 131 and a second slot 132, which are spaced apart in the vertical direction. The ends of the first slot 131 and the second slot 132 that are close to each other are open. The upper and lower ends of the flow guide baffle 3 are respectively inserted into the first slot 131 and the second slot 132. When assembling the flow guide baffle 3 with the upper panel 13, the upper and lower ends of the flow guide baffle 3 are respectively inserted into the first slot 131 and the second slot 132, which can realize the limiting and snap-fit ​​connection between the flow guide baffle 3 and the upper panel 13. The operation is simple and quick, and the rapid assembly of the flow guide baffle 3 and the upper panel 13 can be achieved, thereby improving the assembly efficiency of the air conditioner 100.

[0128] In some embodiments of this utility model, such as Figures 31-33 As shown, a first buckle 133 and a second buckle 134 are connected to the upper panel 13. The first buckle 133 and the second buckle 134 define a first slot 131 and a second slot 132 respectively with the upper panel 13. In the direction from back to front, the side surface of the second buckle 134 facing away from the second slot 132 is inclined toward the direction close to the first buckle 133.

[0129] The first latch 133 can extend vertically. During the assembly of the flow guide baffle 3 and the upper panel 13, one end of the flow guide baffle 3 is first inserted into the first slot 131 between the first latch 133 and the upper panel 13. Then, a force is applied to the other end of the flow guide baffle 3 towards the second slot 132. The inclined surface of the second latch 134, which faces away from the second slot 132, can act as a guide, causing the other end of the flow guide baffle 3 to move along the inclined surface until the other end of the flow guide baffle 3 is engaged in the second slot 132. This further reduces the difficulty of connecting the flow guide baffle 3 and the upper panel 13, making the operation simpler and faster, and further improving the assembly efficiency between the flow guide baffle 3 and the upper panel 13.

[0130] In some embodiments of this utility model, such as Figure 1 and Figure 3 As shown, the first air inlet 110 includes a fresh air inlet 111 and a purified air inlet 112. The fresh air inlet 111 is adapted to connect with the outdoor environment, and the purified air inlet 112 is adapted to connect with the indoor environment.

[0131] The purification air inlet 112 is located on the left and right sides of the air conditioner 100. The purification air inlet 112 is connected to the indoor environment. The indoor airflow enters the air guide component 20 from the purification air inlet 112 and is blown back into the room through the first air outlet 130 and the second air outlet 140, realizing the circulation of indoor air. This can increase the amount of indoor circulating air, improve the uniformity of indoor temperature, and avoid local temperature differences.

[0132] The fresh air inlet 111 is located at the rear of the air conditioner 100. The fresh air inlet 111 is connected to the outdoor environment. Outdoor airflow enters the air guide assembly 20 through the fresh air inlet 111 and is blown into the room through the first air outlet 130 and the second air outlet 140, introducing fresh outdoor air into the room and achieving the fresh air function. The fresh air inlet 111 introduces fresh outdoor air, realizing indoor-outdoor air exchange, which can improve indoor air quality to a certain extent and enhance the user experience.

[0133] During the use of the air conditioner 100, different modes can be selected according to different actual needs. The opening and closing of one or both of the purification air inlet 112 and the fresh air inlet 111 can be controlled by the valve to meet the different usage needs of users.

[0134] In some embodiments, refer to the appendix Figure 3 , Figure 6 and Figure 22As shown, the air conditioner 100 also includes a fresh air module 51, which is disposed inside the housing 1. The fresh air module 51 drives airflow from the first air inlet 110 to the first air outlet 130 and the second air outlet 140, thereby ensuring the effective delivery of fresh and purified air by the air conditioner 100. It also enables preliminary treatment of the airflow entering the fresh air module 51, providing users with cleaner, more hygienic, and healthier air, thus improving the user experience.

[0135] Further, see attached document. Figure 3 , Figure 6 and Figure 22 As shown, the air conditioner 100 also includes a purification module 52, which is located inside the housing 1, above the fresh air module 51 and below the air guide 2. The purification module 52 is used to filter and purify the airflow. Fresh air or purified air entering from the first air inlet 110 passes through the fresh air module 51 and the purification module 52, and then enters the air guide 2 through the air intake 210. The purification module 52 can block pollutants such as smoke, dust, and bacteria from passing through while allowing air to pass, thus purifying the airflow. This ensures that the airflow is purified before entering the air guide assembly 20, which can improve indoor air quality to a certain extent, providing users with cleaner, more hygienic, and healthier air. This guarantees the cleanliness of the fresh air and purified air supplied by the air conditioner 100, improving the user experience.

[0136] Optionally, refer to the appendix. Figure 6 As shown, a first air intake grille 61 is provided at the purification air inlet 112. On the one hand, the first air intake grille 61 can prevent hands or other foreign objects from entering the fresh air module 51 and the purification module 52, protecting the safety of users and ensuring the normal operation of the fresh air module 51 and the purification module 52; on the other hand, the first air intake grille 61 can prevent insects, rodents, etc. from damaging the fresh air module 51, ensuring the normal operation of the fresh air module 51.

[0137] In some embodiments, refer to the appendix Figure 1 , Figure 2 , Figure 5 and Figure 6 As shown, the housing 1 also has a second air inlet 120, a third air outlet 150, and a heat exchange duct 160. The second air inlet 120 is located on the rear housing 11, and the third air outlet 150 is located on the panel bracket 12 and along the length of the air conditioner 100 (see attached diagram). Figure 2 Extending in the vertical direction shown, the second air inlet 120 and the third air outlet 150 are connected to the heat exchange duct 160. The airflow outside the air conditioner 100 can enter the heat exchange duct 160 through the second air inlet 120 to achieve heat exchange, and then be blown into the room through the third air outlet 150.

[0138] Furthermore, see the attached document. Figure 6As shown, a second air inlet grille 62 is provided at the second air inlet 120. On the one hand, the second air inlet grille 62 can prevent hands or other foreign objects from entering the air conditioner 100, protecting the safety of the user and ensuring the normal operation of the air conditioner 100. On the other hand, the second air inlet grille 62 can prevent insects, rodents, etc. from entering the housing 1 of the air conditioner 100 and causing damage to the air conditioner 100, ensuring the normal operation of the air conditioner 100 and ensuring the aesthetic appearance of the air conditioner 100.

[0139] Optionally, the second air intake grille 62 is detachably connected to the rear shell 11. The second air intake grille 62 can ensure the aesthetic appearance of the shell 1. After the second air intake grille 62 is removed, it is convenient to repair and replace the components inside the air conditioner 100. At the same time, it is convenient to clean the second air intake grille 62, avoiding dust accumulation caused by prolonged use.

[0140] In some embodiments, refer to the appendix Figure 5 As shown, an air outlet grille 63 is provided at the third air outlet 150. The air outlet grille 63 is connected to the panel bracket 12. On the one hand, the air outlet grille 63 can prevent hands or other foreign objects from entering the air conditioner 100, protecting the user's safety and ensuring the normal operation of the air conditioner 100. On the other hand, the air outlet grille 63 can make the air outlet at the third air outlet 150 more uniform, improve the comfort of air outlet, and ensure the aesthetic appearance of the air conditioner 100.

[0141] Optionally, the air outlet grille 63 is detachably connected to the panel bracket 12. The air outlet grille 63 can ensure the aesthetic appearance of the housing 1, and after the air outlet grille 63 is removed, it is easy to clean the air outlet grille 63, avoiding dust accumulation caused by prolonged use.

[0142] In some embodiments, refer to the appendix Figure 5 As shown, a louver assembly 53 is provided at the third air outlet 150. The louver assembly 53 includes a plurality of louvers spaced apart in the vertical direction for adjusting the airflow direction in the vertical direction. Furthermore, an upper drive assembly 54 is connected to the upper end of the louver assembly 53 for driving the louvers in the louver assembly 53 to swing in the vertical direction, thereby adjusting the air supply direction in the length direction of the air conditioner 100.

[0143] The louver assembly 53 includes a connecting rod and multiple louvers. The connecting rod extends along the length of the third air outlet 150, and the multiple louvers are spaced apart along the length of the third air outlet 150 and rotatably connected to the connecting rod. The upper drive assembly 54 is connected to the connecting rod and is used to drive the connecting rod to move along the length of the third air outlet 150. The louver assembly 53 is located upstream of the air outlet grille 63 along the airflow direction. The connecting rod extends along the length of the third air outlet 150, and the upper drive assembly 54 drives the connecting rod to move along the length of the third air outlet 150, which can drive the louvers to rotate around a rotation axis extending along the width direction of the third air outlet 150, thereby guiding the airflow along the length of the third air outlet 150. In addition, there are multiple louvers spaced along the length of the third air outlet 150. All louvers are rotatably connected to the connecting rod, which can realize the synchronous rotation of multiple louvers. The airflow entering from the second air inlet 120 flows out after being guided by multiple louvers, which can improve the uniformity of air supply of the louver assembly 53 along the length of the third air outlet 150, thereby better meeting the user's needs.

[0144] In some embodiments, refer to the appendix Figure 5 As shown, the panel bracket 12 is provided with an air guide plate 55, and the air guide plate 55 is along the width direction of the second air outlet 140 (see attached diagram). Figure 1 The air deflector 55 (in the direction shown in a) is movable, allowing the air deflector 55 to open or close the second air outlet 140 to coordinate with the opening or closing of the air conditioner 100.

[0145] Understandably, when the air conditioner 100 is in use, the air guide plate 55 can open the second air outlet 140, allowing airflow to pass through the second air outlet 140 into the room. Simultaneously, the air guide plate 55 can also swing left and right along the width of the second air outlet 140 to adjust the airflow direction. When the air conditioner 100 is off, the air guide plate 55 can close the second air outlet 140 to prevent dust, insects, etc., from entering the air conditioner 100, ensuring its normal operation and maintaining a good appearance.

[0146] Furthermore, the lower end of the air guide plate 55 is connected to a lower drive assembly 56, which is used to drive the air guide plate 55 to rotate along the width direction of the second air outlet 140.

[0147] In some embodiments, refer to the appendix Figure 5 and attached Figure 6As shown, the heat exchange component 57, the heat exchange fan component, and the air duct component 58 are disposed in the heat exchange air duct 160. The heat exchange fan component can drive the airflow outside the air conditioner 100 to enter the heat exchange air duct 160 through the second air inlet 120. The airflow in the heat exchange air duct 160 can exchange heat with the heat exchange component 57. The airflow after heat exchange can be diverted by the air duct component 58 and flow to the two second air outlets 140 located on the left and right sides of the air conditioner 100 and blown into the room, thereby achieving the effect of regulating the indoor temperature and meeting the user's usage needs.

[0148] Optionally, refer to the appendix. Figure 6 As shown, the second air inlet grille 62 can be arranged opposite to the heat exchange assembly 57 and the heat exchange fan assembly, facilitating the flow of air from outside the air conditioner 100 through the second air inlet grille 62 into the heat exchange duct 160. This makes the airflow smoother, increases the air intake volume, improves the air intake efficiency of the heat exchange fan assembly, reduces the noise of the air conditioner 100 during operation, and enhances the performance and comfort of the air conditioner 100. Preferably, along the airflow direction (see attached diagram) Figure 6 (As shown in the front-to-back direction), the heat exchange component 57 is located upstream of the heat exchange fan component.

[0149] Furthermore, a drip tray is located below the heat exchange assembly 57 to collect the condensate generated during the operation of the heat exchange assembly 57, preventing the condensate on the heat exchange assembly 57 from flowing into the housing 1, which could cause dripping in the housing 1 or short circuits in the components inside the housing 1. Additionally, a drain pipe is connected to the drip tray to discharge the condensate from the drip tray to the outside of the air conditioner 100.

[0150] Optionally, the heat exchange duct 160 may be equipped with at least one of a purification component and a humidification component. Different components can be selected according to different actual needs to meet different usage requirements. The purification component purifies the airflow entering the heat exchange duct 160, allowing the purified airflow to be blown into the room, thus improving air quality. The humidification component humidifies the airflow entering the heat exchange duct 160, allowing the humidified airflow to be blown into the room, increasing the indoor moisture content and achieving a humidification effect.

[0151] In some embodiments, refer to the appendix Figure 6 As shown, the air conditioner 100 also includes an electrical control box 59, which is located inside the housing 1. The electrical control box 59 is responsible for the power distribution, signal processing and operation control of the air conditioner 100, and can realize the basic power control and intelligent control of the air conditioner 100.

[0152] Other components of the air conditioner 100 according to the present invention, such as heat exchange assembly 57, air duct component 58, and louver assembly 53, are known to those skilled in the art and will not be described in detail here.

[0153] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0154] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.

Claims

1. An air conditioner, characterized in that, include: The housing has a first air inlet, a first air outlet, and a second air outlet, with the first air outlet located in front of the second air outlet; A flow guiding component is disposed within the housing and is used to guide the airflow entering from the first air inlet to the first air outlet and the second air outlet.

2. The air conditioner according to claim 1, characterized in that, The second air outlet consists of two outlets spaced apart in the left-right direction, and the airflow guiding component includes: A flow guide has a flow guide cavity inside. The flow guide is provided with an air intake, a first air exhaust, a second air exhaust and a third air exhaust, which are connected to the flow guide cavity. The air intake is connected to the first air inlet, the first air exhaust is connected to the first air outlet, and the second air exhaust and the third air exhaust are respectively connected to two second air outlets.

3. The air conditioner according to claim 2, characterized in that, The flow guiding cavity is provided with a first flow divider plate, which is connected to the inner wall of the flow guiding cavity to divide the flow guiding cavity into a first flow channel and a flow cavity. At least a portion of the flow cavity is located behind the first flow channel. The air intake is connected to the first flow channel and the flow cavity. The first exhaust port is connected to the first flow channel. The second exhaust port and the third exhaust port are connected to the flow cavity.

4. The air conditioner according to claim 3, characterized in that, The flow guiding cavity is provided with a first flow splitter cone, which is located in the flow cavity and is used to divide the flow cavity into a second flow channel and a third flow channel. The rear end of the first flow splitter plate is connected to the front end of the first flow splitter cone. The air intake is connected to both the second flow channel and the third flow channel. The second air exhaust port is connected to the second flow channel, and the third air exhaust port is connected to the third flow channel.

5. The air conditioner according to claim 4, characterized in that, The first splitter cone includes: The second and third flow dividers are arranged in the left-right direction. The lower ends of the second and third flow dividers are connected. In the top-bottom direction, the second and third flow dividers are inclined in a direction away from each other. The front ends of the second and third flow dividers are connected to the rear end face of the first flow divider.

6. The air conditioner according to claim 4, characterized in that, The flow guide includes: A first flow guide and a second flow guide are arranged and connected in a front-to-back direction. The first flow guide and the second flow guide together define the flow guide cavity. A first flow divider is connected to the first flow guide. A first exhaust port is disposed on the first flow guide. The rear end of the first flow divider cone is connected to the second flow guide. The first flow guide and the second flow guide together define the second exhaust port and the third exhaust port. The second exhaust port and the third exhaust port are respectively located on the left and right sides of the first exhaust port.

7. The air conditioner according to claim 6, characterized in that, The first flow divider cone is divided into a front flow divider cone and a rear flow divider cone along the front-back direction. The front flow divider cone is connected to the first flow divider plate, and the rear flow divider cone is connected to the second flow guide.

8. The air conditioner according to claim 7, characterized in that, One of the rear end of the front splitter cone and the front end of the rear splitter cone is provided with a positioning rib, and the other of the rear end of the front splitter cone and the front end of the rear splitter cone is provided with a positioning groove that cooperates with the positioning rib.

9. The air conditioner according to claim 6, characterized in that, The first fluid guide and the second fluid guide are connected by a snap-fit.

10. The air conditioner according to claim 9, characterized in that, The first guide fluid is provided with a locking protrusion, which is located on the outer wall surface of the upper end of the first guide fluid. The upper end of the second guide fluid is provided with a locking hole that cooperates with the locking protrusion. There are multiple locking protrusions spaced apart along the left-right direction, and there are multiple locking holes that correspond one-to-one with the multiple locking protrusions.

11. The air conditioner according to claim 9, characterized in that, The first guide fluid is connected to a buckle, which is disposed on the outer wall surface of the upper end of the first guide fluid. A stop groove is defined between the buckle and the outer wall surface of the first guide fluid. At least a portion of the second guide fluid is inserted into the stop groove. The buckles are a plurality of buckles spaced apart along the left-right direction.

12. The air conditioner according to claim 6, characterized in that, The first fluid guide and the second fluid guide are connected by fasteners.

13. The air conditioner according to claim 2, characterized in that, The housing includes: The rear shell has a first air inlet and a second air outlet, and the air guide is connected to the rear shell. A panel bracket is disposed in front of and connected to the rear housing, and at least a portion of the flow guide is located within the space defined by the panel bracket and the rear housing; The upper panel is located in front of and connected to the panel bracket, and the first air outlet is located on the upper panel.

14. The air conditioner according to claim 13, characterized in that, The first air outlet consists of two outlets spaced apart along the left-right direction, and the airflow guiding component further includes: A flow guide baffle is disposed inside the housing. The flow guide baffle is located in front of the flow guide and behind the upper panel. The flow guide baffle has a flow splitting cavity. The flow guide baffle has an air inlet, a first ventilation port and a second ventilation port that communicate with the flow splitting cavity. The air inlet is connected to the first exhaust port. The first ventilation port and the second ventilation port are respectively connected to the two first air outlets.

15. The air conditioner according to claim 14, characterized in that, The flow divider cavity is provided with a second flow divider cone, which is used to divide the flow divider cavity into a fourth flow channel and a fifth flow channel. The air inlet is connected to both the fourth and fifth flow channels. The first vent is connected to the fourth flow channel, and the second vent is connected to the fifth flow channel.

16. The air conditioner according to claim 15, characterized in that, The second flow divider cone includes: The fourth and fifth splitter plates are arranged in the left-right direction, with the rear ends of the fourth and fifth splitter plates connected. In the direction from back to front, the fourth and fifth splitter plates are inclined in a direction away from each other.

17. The air conditioner according to claim 14, characterized in that, The air conditioner includes: An air outlet frame is disposed between the panel support and the upper panel. The air outlet frame is connected to the panel support and the upper panel respectively. The air outlet frame is provided with an abutment portion, which defines a guide channel. The abutment portion abuts against the guide device. The guide channel is connected to the first exhaust port and the air inlet respectively.

18. The air conditioner according to claim 14, characterized in that, The flow guide baffle is snapped into the upper panel.

19. The air conditioner according to claim 18, characterized in that, The top plate is provided with a first slot and a second slot, which are spaced apart in the vertical direction. The ends of the first slot and the second slot that are close to each other are open, and the upper and lower ends of the flow guide baffle are respectively inserted into the first slot and the second slot.

20. The air conditioner according to claim 19, characterized in that, The top panel is connected to a first buckle and a second buckle. The first buckle and the second buckle define a first slot and a second slot respectively with the top panel. In the direction from back to front, the side surface of the second buckle facing away from the second slot is inclined toward the direction close to the first buckle.

21. The air conditioner according to claim 1, characterized in that, The first air inlet includes a fresh air inlet and a purified air inlet. The fresh air inlet is adapted to connect with the outdoor environment, and the purified air inlet is adapted to connect with the indoor environment.