Water pan and air conditioner
By setting a partition groove and a transition part of the partition gap in the air conditioner water receiving tray, the problem of condensation dripping in the air outlet of the air conditioner is solved, the temperature of the air outlet is increased and the air volume is guaranteed, thereby improving the user experience.
Patent Information
- Application Number
- CN202510898546.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-30
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2045-06-30
AI Technical Summary
The air outlet of the air conditioner is prone to condensation during use, causing dripping and affecting the user experience.
A water receiving tray is designed, comprising a water receiving portion, a transition portion and a wind shield. The transition portion is provided with a partition groove and a partition gap. The wind shield covers the partition groove to limit airflow discharge, and a partition portion is provided between the water receiving portion and the air outlet portion to reduce heat transfer.
It effectively reduces the heat impact of the water inlet on the air outlet, reduces the risk of condensation, increases the temperature of the air outlet, ensures the air volume, and improves the user experience.
Smart Images

Figure CN120593385A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to but is not limited to the field of air-conditioning technology, and specifically refers to a water receiving tray and an air conditioner. Background Art
[0002] In the related art, an air conditioner is provided with an air outlet portion, and the air outlet portion is provided with an air outlet space. During the use of the air conditioner, condensation is easily generated in the air outlet portion, causing dripping, which brings a bad experience to users. Summary of the Invention
[0003] The technical problem to be solved by the present application is to provide a water collecting tray and an air conditioner, which are helpful to improve the problem of dripping caused by condensation generated in the air outlet during the use of the air conditioner, thereby helping to improve the user experience.
[0004] An embodiment of the present application provides a water receiving pan, which is applied to an air conditioner, wherein the air conditioner is provided with an air outlet portion, and the air outlet portion is provided with an air outlet space. The water receiving pan includes: a water receiving portion, which is provided with a water receiving groove; a transition portion, which is connected to the water receiving portion and is located between the air outlet portion and the water receiving portion, and the transition portion includes a partition portion, which is provided with a partition groove; and a wind shield strip, which is installed on the transition portion and covers the partition groove to limit the airflow from being discharged through the partition groove, and a partition gap is provided between the wind shield strip and the transition portion.
[0005] The water receiving tray provided in the embodiment of the present application is provided with a transition portion between the water receiving portion and the air outlet portion. Since the transition portion includes a partition portion and the partition portion is provided with a partition groove, the cold bridge (the portion corresponding to the partition groove) between the water receiving portion and the air outlet portion can be cut off, thereby reducing the heat transfer between the water receiving portion and the air outlet portion, thereby reducing the impact of the low temperature of the water receiving portion on the air outlet portion, which is beneficial to increase the temperature of the air outlet portion in the cooling mode, and is beneficial to reducing the risk of condensation in the air outlet portion causing dripping, and further beneficial to improving the user experience.
[0006] The windshield can cover the partition slot to prevent air leakage in the partition slot and ensure the air output of the air conditioner. In addition, there is a partition gap between the windshield and the transition part, which can reduce heat transfer between the transition part and the windshield, and thus reduce heat transfer between the windshield and the air outlet. This can reduce the impact of the low temperature of the water receiving part on the air outlet, thereby helping to increase the temperature of the air outlet in cooling mode and reduce the risk of condensation and dripping from the air outlet.
[0007] Based on the above technical solution, this application can also be improved as follows.
[0008] In an exemplary embodiment, the windshield strip includes a windshield strip body and a buckle group arranged on the leeward side surface of the windshield strip body; the windshield strip body covers the partition groove; the partition gap is formed between the end of the windshield strip body away from the air outlet portion and the transition portion; the buckle group is snapped into the partition groove, so that the windshield strip is snapped into the transition portion.
[0009] In an exemplary embodiment, the buckle group includes a first buckle and a second buckle arranged at intervals along the length direction of the windshield strip body; the end of the partition part close to the water receiving part is provided with a first rib extending along the length direction of the windshield strip body, and the end of the partition part away from the water receiving part is provided with a second rib extending along the length direction of the windshield strip body, the partition groove is located between the first rib and the second rib, and the distance between the first rib and the second rib is smaller than the width of the windshield strip body; the first buckle is configured to pass through the partition groove and to abut against the first rib to limit the windshield strip from detaching from the partition part; the second buckle is configured to pass through the partition groove and to abut against the second rib to limit the windshield strip from detaching from the partition part.
[0010] In an exemplary embodiment, a first spacer rib is provided at one end of the first clip close to the second rib, and the first spacer rib is clamped between the windshield strip body and the second rib; a second spacer rib is provided at one end of the second clip close to the first rib, and the second spacer rib is clamped between the windshield strip body and the first rib.
[0011] In an exemplary embodiment, the windshield strip body includes a windshield portion and a third rib provided on the leeward side surface of the windshield portion and extending along the length direction of the windshield strip body, the windshield portion covers the partition groove, and the partition gap is formed between the end of the windshield portion away from the air outlet portion and the transition portion, the third rib is located between the first rib and the second rib and inserted into the partition groove; the end of the first clip away from the second rib is located on the side of the third rib away from the second rib, the first partition rib is clamped between the windshield portion and the second rib, and extends along the width direction of the windshield portion; the end of the second clip away from the second rib is connected to the third rib, the second partition rib is clamped between the third rib and the first rib, and extends along the thickness direction of the windshield portion.
[0012] In an exemplary embodiment, the buckle group further includes a third buckle, which is located between the adjacent first buckle and the second buckle, and the third buckle is also provided with the first partition rib and the second partition rib.
[0013] In an exemplary embodiment, the contact surface between the first partition rib and the second convex rib is recorded as the first contact surface, the width of the first contact surface is less than 5 mm, and the length of the first contact surface is less than 5 mm; and / or, the contact surface between the second partition rib and the first convex rib is recorded as the second contact surface, the width of the second contact surface is less than 5 mm, and the length of the second contact surface is less than 5 mm.
[0014] In an exemplary embodiment, the first clip includes a first plug-in portion, a first bending portion and a first abutting portion connected in sequence, the first plug-in portion is connected to the windshield strip body and inserted in the partition groove, the first abutting portion is configured to abut against the first rib, and the first bending portion is configured as an arc-shaped bending portion; and / or, the second clip includes a second plug-in portion, a second bending portion and a second abutting portion connected in sequence, the second plug-in portion is connected to the windshield strip body and inserted in the partition groove, the second abutting portion is configured to abut against the second rib, and the second bending portion is configured as an arc-shaped bending portion.
[0015] In an exemplary embodiment, the transition portion further includes a sealing portion and a gap portion; the sealing portion is located between the gap portion and the water receiving portion, and is connected to the water receiving portion and the gap portion, and the sealing portion is configured to be able to seal with the first air guide plate of the air conditioner; the gap portion is located between the sealing portion and the partition portion, and is connected to the sealing portion and the partition portion, and the gap portion is configured to have a gap with the first air guide plate; the partition gap is located between the wind shield strip and the gap portion.
[0016] In an exemplary embodiment, the width of the gap portion is less than 10 mm.
[0017] In an exemplary embodiment, the partition portion includes a plurality of connecting ribs spaced apart along the length direction of the windshield strip, and the space between any adjacent connecting ribs forms the partition groove; and / or, a sink for supporting the windshield strip is provided at the partition groove to limit the windward side surface of the windshield strip from protruding from the partition portion; and / or, the width of the partition groove is greater than or equal to 4 mm; and / or, the width of the partition gap is greater than 0.4 mm.
[0018] In an exemplary embodiment, the water receiving tray further includes the air outlet portion, which is connected to the transition portion; wherein the air outlet portion, the transition portion and the water receiving portion are arranged as an integrated structure; or, at least two of the air outlet portion, the transition portion and the water receiving portion are arranged as a split assembly structure.
[0019] An embodiment of the present application further provides an air conditioner, comprising a shell, wherein the shell comprises a water receiving tray as described in any one of the above embodiments.
[0020] In an exemplary embodiment, the shell further includes an outer shell and an air guide support, the air conditioner further includes an air guide mechanism, the air guide support is connected to the outer shell, the water receiving tray is connected to the outer shell and the air guide support; an air duct is provided in the outer shell; the air outlet portion and the air guide support enclose a first air outlet connected to the air outlet space, the air guide support is provided with a second air outlet, the air outlet directions of the first air outlet and the second air outlet are different, the first air outlet is configured to be connected to the air duct to form a first air outlet channel, and the second air outlet is configured to be connected to the air duct to form a second air outlet channel; the air guide mechanism includes a first air guide plate and a second air guide plate movably connected to the air guide support; the first air guide plate cooperates with the second air guide plate and is configured to control the opening and closing of the first air outlet and the second air outlet, so that the air conditioner has: a first air outlet mode in which the first air outlet channel is connected and the second air outlet channel is disconnected, a second air outlet mode in which the first air outlet channel is disconnected and the second air outlet channel is connected, and a third air outlet mode in which both the first air outlet channel and the second air outlet channel are connected. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 A schematic cross-sectional structural diagram of an air conditioner in side air outlet mode provided by some embodiments of the present application;
[0022] Figure 2 A schematic cross-sectional structural diagram of an air conditioner in a downward airflow mode provided by some embodiments of the present application;
[0023] Figure 3 A schematic cross-sectional view of a first air guide plate provided in some embodiments of the present application;
[0024] Figure 4 for Figure 1 A schematic diagram of the partial structure of the air conditioner shown;
[0025] Figure 5 A schematic diagram of the three-dimensional structure of a water receiving tray (without the wind shield) provided in some embodiments of the present application;
[0026] Figure 6 A partially enlarged structural schematic diagram of a water receiving tray provided in some embodiments of the present application;
[0027] Figure 7 A schematic diagram of a partial structure of a windshield strip provided in some embodiments of the present application;
[0028] Figure 8 A schematic diagram of a partial structure of a water receiving tray provided in some embodiments of the present application;
[0029] Figure 9A partially enlarged structural schematic diagram of an air conditioner provided in some embodiments of the present application;
[0030] Figure 10 A schematic diagram of a partial structure of a water receiving tray provided in some embodiments of the present application;
[0031] Figure 11 A schematic diagram of a partially exploded structure of a water receiving tray provided in some embodiments of the present application;
[0032] Figure 12 A schematic diagram of a partial structure of a water receiving tray provided in some embodiments of the present application;
[0033] Figure 13 for Figure 12 The cross-sectional structural diagram of the water receiving tray along the AA direction is shown;
[0034] Figure 14 for Figure 12 The cross-sectional structural diagram of the water receiving tray shown in the BB direction;
[0035] Figure 15 A schematic diagram of a partial three-dimensional structure of a windshield strip provided in some embodiments of the present application;
[0036] Figure 16 A schematic diagram of a partial cross-sectional structure of an air conditioner provided in some embodiments of the present application.
[0037] In the accompanying drawings, the components represented by the reference numerals are as follows:
[0038] 11 housing, 12 water receiving tray, 121 air outlet, 1211 air outlet space, 1212 first air outlet wall, 122 water receiving portion, 1221 water receiving trough, 1222 first side wall, 123 transition portion, 1230 second avoidance slope, 1231 partition portion, 1232 sealing portion, 1233 connecting rib, 1234 partition groove, 1235 partition gap, 1236 first convex rib, 1237 second convex rib, 1238 gap portion, 1239 sinking platform, 124 windshield strip, 1241 windshield strip body, 1242 windshield portion, 1243 third convex rib, 1244 first buckle, 1245 second buckle , 1246 third buckle, 1247 first plug-in portion, 1248 first bending portion, 1249 first abutting portion, 1250 second plug-in portion, 1251 second bending portion, 1252 second abutting portion, 1253 first partition rib, 1254 second partition rib, 1255 first contact surface, 1257 third plug-in portion, 1258 third bending portion, 1259 fourth plug-in portion, 1260 first avoidance slope, 1261 guide slope, 1262 matching slope, 13 air guide support, 14 air duct, 151 first air outlet, 152 second air outlet, 1521 first sub-air outlet, 1522 second sub-air outlet;
[0039] 21 first air guide plate, 211 base, 212 insulation layer, 213 step portion, 22 second air guide plate;
[0040] 3 indoor heat exchangers, 4 fans;
[0041] in, Figure 1 and Figure 2 The dashed arrows in the figure indicate the direction of airflow. DETAILED DESCRIPTION
[0042] The principles and features of the present application are described below in conjunction with the accompanying drawings. The examples given are only used to explain the present application and are not used to limit the scope of the present application.
[0043] Research has found that the reason why condensation and dripping easily form on the air outlet of air conditioners in related technologies is that the water tank is located below the evaporator. In cooling mode, it collects low-temperature condensed water dripping from the evaporator, resulting in a lower temperature. The water tank is also close to the air outlet, resulting in a cold bridge between the two, which lowers the air outlet temperature. As a result, when the higher-temperature air contacts the air outlet, condensation forms, causing dripping.
[0044] For this reason, Figure 5 As shown, the embodiment of the present application provides a water receiving tray 12, which is applied to an air conditioner. The air conditioner can be, but is not limited to, an air conditioner with dual air outlets.
[0045] like Figure 2 As shown, the air conditioner is provided with an air outlet 121, and the air outlet 121 is provided with an air outlet space 1211. The air outlet 121 can be a lower air outlet of an air conditioner with double air outlets, which is configured to discharge air downward. The air conditioner can also have a side air outlet, which is configured to discharge air forward, such as Figure 1 When the air conditioner is discharging air from the side, there is no or almost no airflow passing through the lower air outlet, but the cooling capacity transfer of the water receiving tank 1221 is not affected, resulting in more obvious condensation phenomenon in the lower air outlet 121.
[0046] like Figure 4 As shown, the water receiving tray 12 includes a water receiving portion 122 (the portion on the right side of the dividing line L1 ), a transition portion 123 (the portion between the dividing lines L1 and L4 ), and a wind shield 124 .
[0047] Among them, such as Figure 1 As shown, the water receiving portion 122 is provided with a water receiving groove 1221. The transition portion 123 is connected to the water receiving portion 122 and is located between the air outlet portion 121 and the water receiving portion 122. The transition portion 123 includes a partition portion 1231 (the portion between the dividing lines L3 and L4), as shown in FIG. Figure 4 As shown. The partition portion 1231 is provided with a partition groove 1234, as shown Figure 6The windshield strip 124 is installed on the transition portion 123 and covers the partition slot 1234 to limit the airflow from being discharged through the partition slot 1234. There is a partition gap 1235 between the windshield strip 124 and the transition portion 123. Figure 9 shown.
[0048] The water receiving tray 12 provided in the embodiment of the present application is provided with a transition portion 123 between the water receiving portion 122 and the air outlet portion 121. Since the transition portion 123 includes a partition portion 1231 and the partition portion 1231 is provided with a partition groove 1234, the cold bridge (the portion corresponding to the partition groove 1234) between the water receiving portion 122 and the air outlet portion 121 can be cut off, thereby reducing the heat transfer between the water receiving portion 122 and the air outlet portion 121, thereby reducing the impact of the low temperature of the water receiving portion 122 on the air outlet portion 121, which is beneficial to increase the temperature of the air outlet portion 121 in the cooling mode, and is beneficial to reducing the risk of condensation in the air outlet portion 121 causing dripping, and further beneficial to improving the user experience.
[0049] The windshield strip 124 can cover the partition groove 1234 to prevent air leakage at the partition groove 1234 and ensure the air output of the air conditioner. In addition, a partition gap 1235 is provided between the windshield strip 124 and the transition portion 123, which can reduce heat transfer between the transition portion 123 and the windshield strip 124, and thus reduce heat transfer between the windshield strip 124 and the air outlet portion 121. This can reduce the impact of the low temperature of the water receiving portion 122 on the air outlet portion 121, thereby increasing the temperature of the air outlet portion 121 in cooling mode and reducing the risk of condensation and dripping from the air outlet portion 121.
[0050] Among them, such as Figure 5 As shown, the air outlet portion 121 can be roughly in the shape of a quadrangular prism, enclosing an air outlet space 1211 that is roughly in the shape of a quadrangular prism. As shown in the figure, the inner side wall of the air outlet portion 121 can include a first air outlet wall 1212, and the inner side wall of the water receiving portion 122 can include a first side wall 1222, and the transition portion 123 is located between the first air outlet wall 1212 and the first side wall 1222. Since the first side wall 1222 is the area in direct contact with the air duct 14, the first side wall 1222 is completely cold in the cooling mode. The first air outlet wall 1212 is the part of the air outlet portion 121 that is closest to the water receiving portion 122, so the cold bridge is mainly established between the first side wall 1222 and the first air outlet wall 1212, and the temperature of the first air outlet wall 1212 is the lowest, and condensation is most likely to occur. Therefore, providing the transition portion 123 between the first side wall 1222 and the first air outlet wall 1212 can effectively reduce the amount of cold transferred from the water receiving portion 122 to the first air outlet wall 1212, thereby facilitating the prevention of condensation on the first air outlet wall.
[0051] In some embodiments, along the direction from the first side wall 1222 to the first air outlet wall 1212, the first side wall 1222 extends obliquely upward and toward the direction close to the first air outlet wall 1212, such as Figure 4 In other words, the first side wall 1222 is arranged at an angle, and the upper end of the first side wall 1222 extends obliquely toward the direction close to the first air outlet wall 1212 .
[0052] In this way, the first side wall 1222 can also play a guiding role, which is beneficial to guiding the airflow to the air outlet portion 121, and improving the wind speed distribution in the air outlet space 1211, so that the wind speed distribution in the air outlet space 1211 tends to be uniform, so as to reduce the size of the recirculation zone generated in the air outlet space 1211, and reduce the risk of generating a recirculation zone in the air outlet space 1211, thereby helping to further reduce the risk of condensation generating in the air outlet portion 121.
[0053] In some exemplary embodiments, the transition portion 123 further includes a sealing portion 1232 (a portion between the dividing lines L1 and L2) and a gap portion 1238 (a portion between the dividing lines L2 and L3). Figure 4 and Figure 9 shown.
[0054] The sealing portion 1232 is located between the gap portion 1238 and the water receiving portion 122, and is connected to the water receiving portion 122 and the gap portion 1238. The sealing portion 1232 is configured to be able to seal with the first air guide plate 21 of the air conditioner to ensure the sealing of the air outlet space 1211 when no air is flowing. Figure 3 As shown, the first air guide plate 21 may include a base 211 and a heat-insulating layer 212 (such as a foam layer) provided on the base 211. The heat-insulating layer 212 may be in contact with the sealing portion 1232 to achieve sealing. The base 211 may be, but is not limited to, a plastic part.
[0055] The gap portion 1238 is located between the sealing portion 1232 and the partition portion 1231 and is connected to the sealing portion 1232 and the partition portion 1231. The gap portion 1238 is configured to have a gap with the first air guide plate 21. The provision of the gap helps to prevent the first air guide plate 21 and the water tray 12 from having an excessive contact area, which may easily cause interference or a poor seal. It also serves to isolate the cold bridge between the first air guide plate 21 and the partition portion 1231, thereby reducing the amount of cold transferred to the partition portion 1231 and, in turn, reducing the risk of condensation on the air outlet portion 121.
[0056] The partition gap 1235 is located between the wind shield 124 and the gap portion 1238 to effectively reduce the amount of cold transferred to the partition portion 1231 .
[0057] In some exemplary embodiments, the width W3 of the gap portion 1238 (eg Figure 16As shown) is less than 10 mm, it can avoid the gap portion 1238 being too wide, which would cause too much cold to be transferred to the gap portion 1238, thereby helping to reduce the cold transferred from the gap portion 1238 to the partition portion 1231, and further helping to reduce the risk of condensation in the air outlet portion 121.
[0058] Of course, the width of the gap 1238 can be adjusted as needed, for example, it can also be greater than or equal to 10 mm.
[0059] In some exemplary embodiments, Figure 6 As shown, the partition portion 1231 includes a plurality of connecting ribs 1233 spaced apart along the length of the windshield strip 124. The space between any adjacent connecting ribs 1233 forms a partition groove 1234. The two ends of the connecting ribs 1233 can connect the gap portion 1238 and the air outlet portion 121.
[0060] The connecting ribs 1233 can play a role in connection reinforcement, which is beneficial to improving the structural strength of the partition portion 1231, reducing the risk of deformation of the partition portion 1231, and also beneficial to ensuring that the width of each partition groove 1234 is uniform.
[0061] In some exemplary embodiments, Figure 6 As shown, a sink 1239 for supporting the windshield strip 124 is provided at the partition groove 1234 to limit the windshield strip 124 from protruding from the windward side surface of the partition portion 1231 (as shown in FIG. Figure 4 As shown), the wind resistance of the wind shield 124 is reduced, which is conducive to ensuring the air output of the air outlet space 1211. The windward side surface of the wind shield body 1241 can smoothly transition with the first air outlet wall 1212 of the air outlet portion 121.
[0062] In some exemplary embodiments, Figure 14 As shown, the width W2 of the partition groove 1234 is greater than or equal to 4 mm. This can effectively block the cold bridge and effectively reduce the amount of cold transferred to the air outlet 121. Of course, the width of the partition groove 1234 is not limited to the above range and can also be set to less than 4 mm as needed.
[0063] In some exemplary embodiments, Figure 13 As shown, the width W1 of the partition gap 1235 is greater than 0.4 mm. This can effectively block the cold bridge and effectively reduce the amount of cold transferred to the air outlet 121. Of course, the width of the partition gap 1235 is not limited to the above range and can also be set to less than or equal to 0.4 mm as needed.
[0064] In some exemplary embodiments, Figure 5 As shown, the water receiving tray 12 further includes an air outlet 121 ( Figure 4 The air outlet portion 121 is connected to the transition portion 123 .
[0065] In other words, in the embodiment of the present application, the water receiving tray 12 is integrated with the air outlet portion 121 on the basis of the water receiving portion 122 and the transition portion 123, so that it has both the function of receiving condensed water and the function of discharging air, and can better meet the needs of the air conditioner with dual air outlets (lower air outlet and side water outlet) for receiving condensed water and discharging air downward.
[0066] In some embodiments, as Figure 5 As shown, the air outlet portion 121, the transition portion 123, and the water receiving portion 122 are configured as an integrated structure, which is beneficial for improving the connection strength and matching reliability between the water receiving portion 122, the transition portion 123, and the air outlet portion 121, and can eliminate the assembly process between the air outlet portion 121, the transition portion 123, and the water receiving portion 122. For example, the air outlet portion 121, the transition portion 123, and the water receiving portion 122 can be integrally formed by injection molding, which facilitates the reasonable configuration of the water receiving portion 122, the air outlet portion 121, the transition portion 123, and other structures as needed.
[0067] In other embodiments, at least two of the air outlet portion 121, the transition portion 123, and the water receiving portion 122 are configured as split assembly structures. For example, the water receiving portion 122, the transition portion 123, and the air outlet portion 121 can be formed separately and then assembled together by fastener connection, snap connection, etc. Alternatively, the water receiving portion 122 and the transition portion 123 are formed as one piece, and the air outlet portion 121 is machined and formed separately, and then assembled together by fastener connection, snap connection, etc. Alternatively, the air outlet portion 121 and the transition portion 123 are formed as one piece, and the water receiving portion 122 is machined and formed separately, and then assembled together by fastener connection, snap connection, etc.
[0068] In some exemplary embodiments, Figure 9 As shown, the windshield strip 124 includes a windshield strip body 1241 and a buckle assembly provided on the leeward side surface of the windshield strip body 1241. The windshield strip body 1241 covers the partition groove 1234 to achieve a windshield function.
[0069] A partition gap 1235 is formed between the end of the wind shield body 1241 away from the air outlet portion 121 and the transition portion 123 , so as to effectively reduce the amount of cold transferred to the wind shield body 1241 .
[0070] The buckle assembly is snapped into the partition groove 1234 , so that the windshield strip 124 is snapped into the transition portion 123 , thereby achieving snap-fit assembly of the windshield strip 124 , which is beneficial to improving assembly efficiency.
[0071] In some exemplary embodiments, the buckle group includes a first buckle 1244 and a second buckle 1245 spaced apart along the length direction of the windshield strip body 1241. Figures 7 to 10 as well as Figure 12The first buckle 1244 and the second buckle 1245 work together to stably attach the windshield strip 124 to the partition portion 1231 .
[0072] like Figure 8 As shown, a first rib 1236 is provided at the end of the partition portion 1231 near the water receiving portion 122, extending along the length of the windshield body 1241. A second rib 1237 is provided at the end of the partition portion 1231 away from the water receiving portion 122, extending along the length of the windshield body 1241. A partition groove 1234 is located between the first and second ribs 1236, 1237. The spacing between the first and second ribs 1236, 1237 is smaller than the width of the windshield body 1241, thereby restricting the windshield body 1241 from passing through the partition groove 1234. The second rib 1237 may form part of the sunken platform 1239.
[0073] The first buckle 1244 is configured to pass through the partition groove 1234 and abut against the first rib 1236 to prevent the windshield 124 from separating from the partition portion 1231. The second buckle 1245 is configured to pass through the partition groove 1234 and abut against the second rib 1237 to prevent the windshield 124 from separating from the partition portion 1231.
[0074] Please refer to Figure 11 and Figure 13 As shown, during installation, the windshield strip 124 is buckled toward the partition slot 1234 from its windward side toward its leeward side. Portions of the first and second buckles 1244, 1245 can pass through the partition slot 1234 and latch onto the first and second ribs 1236, 1237, respectively, thereby preventing the windshield strip 124 from dislodging from the partition portion 1231. However, the width of the windshield strip body 1241 is greater than the width between the first and second ribs 1236, 1237. Therefore, the windshield strip body 1241 cannot pass through the partition slot 1234 and is blocked by the first and second ribs 1236, 1237. This prevents the windshield strip body 1241 from passing through the partition slot 1234 and potentially falling off the windshield strip 124. Furthermore, blocked by the first and second ribs 1236, 1237, the windshield strip 124 cannot move relative to the partition portion 1231 along its width. The end walls at both ends of the length direction of the partition groove 1234 can limit the movement of the windshield strip 124 along its length direction relative to the partition portion 1231. In this way, the windshield strip 124 can be stably stuck on the partition portion 1231.
[0075] In some exemplary embodiments, Figure 7 and Figure 8As shown, a first spacer rib 1253 is provided at one end of the first buckle 1244 near the second rib 1237. The first spacer rib 1253 is sandwiched between the windshield strip body 1241 and the second rib 1237, enabling point contact between the windshield strip 124 and the second rib 1237. Because the second rib 1237 is relatively close to the air outlet 121, a cold bridge can even be formed between the second rib 1237 and the air outlet 121. Compared to surface contact, point contact reduces the contact area, thereby minimizing heat transfer between the windshield strip 124 and the second rib 1237, thereby reducing the amount of cold transferred to the air outlet 121 and lowering the risk of condensation on the air outlet 121.
[0076] like Figure 7 and Figure 8 As shown, a second spacer rib 1254 is provided at one end of the second buckle 1245 near the first rib 1236. The second spacer rib 1254 is sandwiched between the windshield body 1241 and the first rib 1236, thereby achieving point contact between the windshield body 1241 and the partition portion 1231. Compared to surface contact, point contact reduces the contact area, thereby reducing heat transfer between the windshield 124 and the first rib 1236, thereby reducing the amount of cold transferred to the air outlet 121 and reducing the risk of condensation on the air outlet 121.
[0077] In some exemplary embodiments, Figure 7 and Figure 8 As shown, the windshield strip body 1241 includes a windshield portion 1242 and a third rib 1243 provided on the leeward side surface of the windshield portion 1242 and extending along the length direction of the windshield strip body 1241. The windshield portion 1242 covers the partition groove 1234, and a partition gap 1235 is formed between the end of the windshield portion 1242 away from the air outlet portion 121 and the transition portion 123. Figure 13 As shown, a first avoidance slope 1260 can be provided at one end of the windshield 1242 away from the air outlet 121, and a second avoidance slope 1230 can be provided at the transition portion 123. A partition gap 1235 is formed between the first avoidance slope 1260 and the second avoidance slope 1230. The first avoidance slope 1260 and the second avoidance slope 1230 can be arranged in parallel and spaced apart, and inclined relative to the thickness direction of the windshield 1242. This helps to extend the depth of the partition gap 1235, thereby helping to reduce airflow leakage through the partition gap 1235.
[0078] The third rib 1243 is located between the first rib 1236 and the second rib 1237 and inserted into the partition groove 1234 .
[0079] like Figure 7As shown, the end of the first buckle 1244 away from the second rib 1237 is located on the side of the third rib 1243 away from the second rib 1237. The first spacer rib 1253 is sandwiched between the windshield portion 1242 and the second rib 1237 and extends along the width direction of the windshield portion 1242. The end of the second buckle 1245 away from the second rib 1237 is connected to the third rib 1243. The second spacer rib 1254 is sandwiched between the third rib 1243 and the first rib 1236 and extends along the thickness direction of the windshield portion 1242.
[0080] Therefore, the first rib 1253 also serves to limit the movement of the windshield strip 124 relative to the partition portion 1231 along the thickness direction of the windshield portion 1242, and the second rib 1254 also serves to limit the movement of the windshield strip 124 relative to the partition portion 1231 along the width direction of the windshield portion 1242, thereby improving the positional stability and operational reliability of the windshield strip 124. Furthermore, the third rib 1243 also serves to block wind, preventing air from leaking through the partition gap 1235, thereby increasing the airflow rate of the air outlet space 1211.
[0081] In some exemplary embodiments, Figure 7 As shown, the buckle group also includes a third buckle 1246, which is located between the adjacent first buckle 1244 and second buckle 1245. The third buckle 1246 is also provided with a first partition rib 1253 and a second partition rib 1254, which is beneficial to further improve the position stability and use reliability of the windshield strip 124.
[0082] In some exemplary embodiments, Figure 15 As shown, the contact surface between the first barrier rib 1253 and the second convex rib 1237 is designated as first contact surface 1255. The width and length of first contact surface 1255 are less than 5 mm, thereby reducing the contact area between the first barrier rib 1253 and the second convex rib 1237 and thereby reducing the amount of cooling transfer between them. Of course, the width of first contact surface 1255 is not limited to the aforementioned range and can be set to be greater than or equal to 5 mm as needed. Similarly, the length of first contact surface 1255 is not limited to the aforementioned range and can be set to be greater than or equal to 5 mm as needed.
[0083] In some exemplary embodiments, the contact surface between the second barrier rib 1254 and the first convex rib 1236 is referred to as a second contact surface (not shown). The width and length of the second contact surface are less than 5 mm, respectively. This reduces the contact area between the second barrier rib 1254 and the first convex rib 1236, thereby reducing the amount of cooling transfer between them. Of course, the width of the second contact surface is not limited to the aforementioned range and can be set to be greater than or equal to 5 mm as needed. Similarly, the length of the second contact surface is not limited to the aforementioned range and can be set to be greater than or equal to 5 mm as needed.
[0084] In some exemplary embodiments, Figure 10 As shown, there are multiple partition grooves 1234 and multiple buckle groups. Multiple buckle groups correspond one-to-one to multiple partition grooves 1234, which can realize multi-position fixation of the windshield strip 124, which is beneficial to improving the position stability and use reliability of the windshield strip 124.
[0085] In some exemplary embodiments, Figure 15 As shown, first clip 1244 includes a first plug-in portion 1247, a first bend 1248, and a first abutment portion 1249, which are sequentially connected. First plug-in portion 1247 is connected to windshield strip body 1241 and inserted into partition slot 1234. First abutment portion 1249 is configured to abut against first rib 1236. First bend 1248 is configured as an arcuate bend to facilitate smooth insertion of first clip 1244 through partition slot 1234. First partition rib 1253 is provided on first plug-in portion 1247.
[0086] In some exemplary embodiments, Figure 15 As shown, the second clip 1245 includes a second plug-in portion 1250, a second bent portion 1251, and a second abutting portion 1252, which are sequentially connected. The second plug-in portion 1250 is connected to the windshield strip body 1241 and inserted into the partition slot 1234. The second abutting portion 1252 is configured to abut against the second rib 1237. The second bent portion 1251 is configured as an arcuate bend to facilitate smooth insertion of the second clip 1245 through the partition slot 1234. A second partition rib 1254 is provided on the second plug-in portion 1250. The second abutting portion 1252 can be provided with a guide slope 1261, and the second rib 1237 can be provided with a matching slope 1262. The guide slope 1261 and the matching slope 1262 can be abutted against each other.
[0087] In some exemplary embodiments, Figure 15As shown, the third clip 1246 includes a third plug portion 1257, a third bent portion 1258, and a fourth plug portion 1259, which are connected in sequence. The third plug portion 1257 and the fourth plug portion 1259 are both connected to the windshield strip body 1241 and inserted into the partition groove 1234. The third bent portion 1258 is configured as an arc-shaped bent portion to facilitate the third clip 1246 to smoothly pass through the partition groove 1234. The first partition rib 1253 is provided on the fourth plug portion 1259, and the second partition rib 1254 is provided on the third plug portion 1257.
[0088] In some exemplary embodiments, the air outlet 121 is located at the end of the water receiving tray 12 in the width direction. Figure 1 、 Figure 2 and Figure 5 Compared to arranging the air outlet 121 in the middle of the width of the water receiving tray 12, the water receiving tray 12 of this solution has a simpler structure and is easier to process and form. The air outlet 121, transition portion 123, and water receiving portion 122 can be arranged along the width of the water receiving tray 12.
[0089] The air outlet 121 can be located downstream of the water receiving portion 122. In this way, the distance between the air outlet 121 and the side air outlet of the air conditioner is small, which facilitates the air outlet 121 and the side air outlet to share an air guide plate (such as the first air guide plate 21 described below), thereby simplifying the air guide structure of the air conditioner.
[0090] like Figure 1 and Figure 2 As shown, the embodiment of the present application further provides an air conditioner, including a shell, the shell including the water receiving tray 12 of any one of the above embodiments, and thus has all the above beneficial effects, which will not be repeated here.
[0091] In some exemplary embodiments, Figure 1 and Figure 2 As shown, the housing further includes an outer shell 11 and an air guide support 13. The air conditioner further includes an air guide mechanism. The air guide support 13 is connected to the outer shell 11. The water receiving tray 12 is connected to the outer shell 11 and the air guide support 13. An air duct 14 is provided in the outer shell 11.
[0092] like Figure 1 and Figure 2As shown, the air outlet portion 121 and the air guide support 13 enclose a first air outlet 151 that is connected to the air outlet space 1211, and the air guide support 13 is provided with a second air outlet 152. The air outlet directions of the first air outlet 151 and the second air outlet 152 are different. The first air outlet 151 is configured to be connected to the air duct 14 to form a first air outlet channel, and the second air outlet 152 is configured to be connected to the air duct 14 to form a second air outlet channel. In other words, when the first air outlet 151 is connected to the air duct 14, the air outlet channel formed by the connection between the two is the first air outlet channel. In other words, when the second air outlet 152 is connected to the air duct 14, the air outlet channel formed by the connection between the two is the second air outlet channel.
[0093] like Figure 1 and Figure 2 As shown, an indoor heat exchanger 3 and a fan 4 may be provided in the air duct 14. The fan 4 rotates to allow indoor air to enter the air duct 14, exchange heat with the indoor heat exchanger 3, and then be discharged to the indoor space through the air outlet channel, thereby regulating the temperature of the indoor air.
[0094] like Figure 1 and Figure 2 As shown, the air guide mechanism includes a first air guide plate 21 and a second air guide plate 22 located in the housing and movably connected to the housing. The first air guide plate 21 cooperates with the second air guide plate 22 to control the opening and closing of the first air outlet 151 and the second air outlet 152, so that the air conditioner has a first air outlet mode (such as Figure 2 As shown), the second air outlet mode (as shown) in which the first air outlet channel is disconnected and the second air outlet channel is connected Figure 1 as shown), and a third air outlet mode (not shown in the figure) in which both the first air outlet channel and the second air outlet channel are connected.
[0095] The air conditioner provided in the embodiment of the present application is provided with a first air outlet 151 and a second air outlet 152 with different air outlet directions, and a first air guide plate 21 and a second air guide plate 22 that cooperate with the first air outlet 151 and the second air outlet 152, so that the air conditioner can have three air outlet modes, which is convenient for users to reasonably select the air outlet mode according to their needs, is conducive to meeting the different air outlet needs of users, and thus is conducive to improving the user experience.
[0096] Moreover, the first air outlet 151 and the second air outlet 152 can be controlled to open and close and switch between the three air outlet modes only with the cooperation of the first air guide plate 21 and the second air guide plate 22, without the need for other wind shielding parts 1242 or wind guiding parts (such as movable volutes or other deformable or movable wind shielding mechanisms), which is beneficial to simplify the structure of the air conditioner and reduce production costs.
[0097] Among them, in the embodiment of the present application, the air conditioner can be the indoor unit of a split-type air conditioner, such as a duct-type indoor unit, a wall-mounted indoor unit, etc., or it can be a split-type air conditioner including an indoor unit and an outdoor unit, or it can be an integrated air conditioner.
[0098] In some embodiments, the first air outlet 151 can be a downwind outlet, discharging air downward; the second air outlet 152 can be a side air outlet, discharging air horizontally, then the first air outlet mode is the downwind outlet mode, the second air outlet mode is the downwind outlet mode, and the third air outlet mode is the dual air outlet mode. When the user needs fast cooling or fast heating, the first air outlet mode can be selected, and the air flow is discharged downward through the first air outlet channel, such as Figure 2 As shown, it is convenient for the temperature of the lower area to drop or rise quickly. When the user wants to avoid direct blowing, he can select the second air outlet mode, and the air flow will be discharged laterally through the second air outlet channel, as shown in the figure. Figure 1 As shown, it is convenient to discharge air from a distance and avoid direct blowing on the user. When the user wants to cool or heat the entire area evenly, the third air outlet mode can be selected. The air will be blown out through the first and second air outlet channels together, which can quickly adjust the temperature of the nearby area below and also send air over a long distance, so that distant areas can also be quickly cooled and heated.
[0099] In the related art, ordinary central air-conditioning duct-type indoor units are usually embedded in the ceiling and are provided with an air inlet and an air outlet. They usually adopt the form of bottom air inlet, side air outlet and an engineering grille (fixed air outlet direction). However, this form of air supply prevents the heated air from falling to the ground, and the air supply under the indoor unit cannot reach it, resulting in a large air supply blind spot and a large temperature difference between near and far. Some products are equipped with an electric panel (adjustable air outlet direction) to adjust the air outlet direction, but they have the disadvantages of high cost, difficulty in matching with home decoration, and difficulty in installation, so the actual standardization rate is relatively low. Some products adopt the form of bottom air outlet, but there is a problem that the cooling air is easy to blow directly on the human body, and the product acceptance is relatively low.
[0100] The air conditioner provided in the embodiment of the present application is equipped with two air outlets with different air outlet directions, which can achieve three different air outlet modes. Users can reasonably choose according to their needs. The first air outlet mode solves the problem of hot air not being able to fall to the ground in heating mode. The second air outlet mode solves the problem of cold air blowing directly on the human body in cooling mode. The third air outlet mode solves the problem of large air supply blind spots and large temperature differences between near and far, effectively solving the pain points of existing ducted indoor units. In addition, the air conditioner can be used with ordinary engineering grilles, which are more coordinated with home decoration styles and are very popular with users, or with electric panels, further improving the user experience.
[0101] In some exemplary embodiments, as shown in the figure, the second air outlet 152 includes a first sub-air outlet 1521 and a second sub-air outlet 1522 that are connected to each other, and the second sub-air outlet 1522 is located between the first air outlet 151 and the first sub-air outlet 1521 .
[0102] The first air guide plate 21 is rotatably connected to the housing and is arranged to be able to move relative to the housing in a first position (such as Figure 1 ), a second position (not shown) in which the first air vent 151 and the second sub-air vent 1522 are opened, and a third position (not shown) in which the first air vent 151 and the second sub-air vent 1522 are closed is opened. Figure 2 shown).
[0103] The second air guide plate 22 is rotatably connected to the housing and is arranged to be able to close the first sub-air outlet 1521 relative to the housing in a fourth position (such as Figure 2 ) and the fifth position (as shown) of opening the first sub-air outlet 1521 Figure 1 shown).
[0104] When the first air guide plate 21 is in the third position and the second air guide plate 22 is in the fourth position, the first air outlet 151 is opened and the second air outlet 152 is closed, and the air conditioner is in the first air outlet mode. Figure 2 shown.
[0105] When the first air guide plate 21 is in the first position and the second air guide plate 22 is in the fifth position, the first air outlet 151 is closed and the second air outlet 152 is opened, and the air conditioner is in the second air outlet mode. Figure 1 shown.
[0106] When the first air guide plate 21 is in the second position and the second air guide plate 22 is in the fifth position, the first air outlet 151 is open, the second air outlet 152 is open, and the air conditioner is in the third air outlet mode.
[0107] In other words, the first air guide plate 21 is used to control the opening and closing of the first air outlet 151 and the opening and closing of the second sub-air outlet 1522 (a portion of the second air outlet 152). The second air guide plate 22 is used to control the opening and closing of the first sub-air outlet 1521 (another portion of the second air outlet 152). Therefore, the first air guide plate 21 and the second air guide plate 22 jointly control the opening and closing of the second air outlet 152. In this way, the widths of the first air outlet 151 and the second air outlet 152 can be set to different sizes, and the widths of the first air guide plate 21 and the second air guide plate 22 will not be too large, which is conducive to optimizing the structural layout of the air conditioner and reducing the size of the air conditioner.
[0108] In some exemplary embodiments, a step portion 213 is provided at one end of the first air guide plate 21 close to the water receiving tray 12. Figure 3As shown. Based on the first air guide plate 21 closing the first air port 151, a portion of the wall surface of the step portion 213 is sealed with the sealing portion 1232 of the water receiving tray 12, and a gap exists between the remaining wall surface of the step portion 213 and the transition portion of the water receiving tray 12, as shown. Figure 4 This helps reduce the risk of condensation at the air outlet 121. A step portion 213 can also be provided at the end of the second air guide plate 22. This facilitates the first and second air guide plates 21 and 22 to close the second air outlet 152 through the two step portions 213 to achieve a close seal without the sealing portion being too thick.
[0109] Of course, the first air guide plate 21 and the second air guide plate 22 can also respectively control the opening and closing of the first air outlet 151 and the second air outlet 152. Alternatively, the air conditioner can also have only one air outlet (i.e., the air outlet corresponding to the air outlet space 1211 of the air outlet portion 121).
[0110] In the description of the present application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on the present application.
[0111] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of such features. Throughout the description of this application, "plurality" means at least two, for example, two, three, etc., unless otherwise specifically defined.
[0112] In this application, unless otherwise specified or limited, the terms "installed," "connected," "connect," "fixed," etc. should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integration; mechanical connection or electrical connection; direct connection or indirect connection through an intermediate medium; internal communication between two elements or interaction between two elements, unless otherwise specified. Those skilled in the art will understand the specific meanings of the above terms in this application based on specific circumstances.
[0113] In this application, unless otherwise expressly specified or limited, when a first feature is "above" or "below" a second feature, it may mean that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Furthermore, when a first feature is "above," "above," or "above" a second feature, it may mean that the first feature is directly above or diagonally above the second feature, or simply means that the first feature is at a higher level than the second feature. When a first feature is "below," "below," or "below" a second feature, it may mean that the first feature is directly below or diagonally below the second feature, or simply means that the first feature is at a lower level than the second feature.
[0114] In the description of this specification, the description with reference to the terms "one embodiment", "some embodiments", "example", "specific example", or "some examples" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in this specification and features of different embodiments or examples without contradiction.
[0115] Although the embodiments of the present application have been shown and described above, it can be understood that the above embodiments are exemplary and cannot be understood as limitations on the present application. Ordinary technicians in this field can change, modify, replace and modify the above embodiments within the scope of the present application.
Claims
1. A water tray, used in air conditioners, characterized in that: The air conditioner is provided with an air outlet portion, the air outlet portion is provided with an air outlet space, and the water receiving tray includes: The water receiving part is provided with a water receiving trough; a transition portion connected to the water receiving portion and located between the air outlet portion and the water receiving portion, the transition portion including a partition portion having a partition groove; and A windshield strip is installed on the transition portion and covers the partition groove to limit the airflow from being discharged through the partition groove, and a partition gap is provided between the windshield strip and the transition portion.
2. The water receiving tray according to claim 1, characterized in that: The windshield strip comprises a windshield strip body and a buckle assembly provided on the leeward side surface of the windshield strip body; the windshield strip body covers the partition groove; The partition gap is formed between one end of the windshield strip body away from the air outlet portion and the transition portion; The buckle assembly is snapped into the partition groove, so that the windshield strip is snapped into the transition portion.
3. The water receiving tray according to claim 2, characterized in that: The buckle group includes a first buckle and a second buckle spaced apart along the length direction of the windshield strip body; The partition portion has an end close to the water receiving portion provided with a first convex rib extending along the length direction of the windshield strip body, and an end away from the water receiving portion provided with a second convex rib extending along the length direction of the windshield strip body, the partition groove is located between the first convex rib and the second convex rib, and the distance between the first convex rib and the second convex rib is less than the width of the windshield strip body; The first buckle is configured to penetrate the partition groove and engage with the first rib to prevent the windshield strip from separating from the partition portion; The second buckle is configured to pass through the partition groove and engage with the second rib to prevent the windshield strip from separating from the partition portion.
4. The water receiving tray according to claim 3, characterized in that: A first spacer rib is provided at one end of the first buckle close to the second rib, and the first spacer rib is sandwiched between the windshield strip body and the second rib; A second spacer rib is provided on one end of the second buckle close to the first rib, and the second spacer rib is sandwiched between the windshield strip body and the first rib.
5. The water receiving tray according to claim 4, characterized in that: The windshield strip body includes a windshield portion and a third rib provided on the leeward side surface of the windshield portion and extending along the length direction of the windshield strip body, the windshield portion covers the partition groove, and the partition gap is formed between an end of the windshield portion away from the air outlet portion and the transition portion, and the third rib is located between the first rib and the second rib and inserted into the partition groove; One end of the first clip away from the second rib is located on the side of the third rib away from the second rib, the first partition rib is clamped between the wind shield and the second rib, and extends along the width direction of the wind shield; one end of the second clip away from the second rib is connected to the third rib, the second partition rib is clamped between the third rib and the first rib, and extends along the thickness direction of the wind shield.
6. The water receiving tray according to claim 4, characterized in that: The buckle group further includes a third buckle, which is located between the adjacent first buckle and the second buckle. The third buckle is also provided with the first partition rib and the second partition rib.
7. The water receiving tray according to claim 4, characterized in that: The contact surface between the first partition rib and the second convex rib is recorded as a first contact surface, the width of the first contact surface is less than 5 mm, and the length of the first contact surface is less than 5 mm; and / or The contact surface between the second partition rib and the first convex rib is recorded as a second contact surface. The width of the second contact surface is less than 5 mm, and the length of the second contact surface is less than 5 mm.
8. The water receiving tray according to any one of claims 3 to 7, characterized in that: The first clip includes a first plug-in portion, a first bent portion, and a first abutting portion connected in sequence, the first plug-in portion is connected to the windshield strip body and inserted into the partition groove, the first abutting portion is configured to abut against the first rib, and the first bent portion is configured as an arc-shaped bent portion; and / or The second clip includes a second plug-in portion, a second bending portion and a second abutting portion connected in sequence, the second plug-in portion is connected to the windshield strip body and inserted into the partition groove, the second abutting portion is configured to abut against the second rib, and the second bending portion is configured as an arc-shaped bending portion.
9. The water receiving tray according to any one of claims 1 to 7, characterized in that: The transition portion also includes a sealing portion and a gap portion; the sealing portion is located between the gap portion and the water receiving portion, and is connected to the water receiving portion and the gap portion, and the sealing portion is configured to be able to seal with the first air guide plate of the air conditioner; the gap portion is located between the sealing portion and the partition portion, and is connected to the sealing portion and the partition portion, and the gap portion is configured to have a gap with the first air guide plate; the partition gap is located between the wind shield strip and the gap portion.
10. The water receiving tray according to claim 9, characterized in that: The width of the gap is less than 10 mm.
11. The water receiving tray according to any one of claims 1 to 7, characterized in that: The partition portion includes a plurality of connecting ribs spaced apart along the length direction of the windshield strip, and the space between any adjacent connecting ribs forms the partition groove; and / or The partition groove is provided with a sunken platform for supporting the windshield strip to limit the windward side surface of the windshield strip from protruding from the partition portion; and / or The width of the partition groove is greater than or equal to 4 mm; and / or The width of the partition gap is greater than 0.4 mm.
12. The water receiving tray according to any one of claims 1 to 7, characterized in that: The water receiving tray further comprises the air outlet portion, and the air outlet portion is connected to the transition portion; The air outlet portion, the transition portion and the water receiving portion are configured as an integrated structure; or at least two of the air outlet portion, the transition portion and the water receiving portion are configured as a split assembly structure.
13. An air conditioner, characterized in that: The invention comprises a housing, wherein the housing comprises the water receiving tray according to any one of claims 1 to 12.
14. The air conditioner according to claim 13, characterized in that The housing further comprises an outer shell and an air guide support, the air conditioner further comprises an air guide mechanism, the air guide support is connected to the outer shell, the water receiving tray is connected to the outer shell and the air guide support; an air duct is provided in the outer shell; The air outlet portion and the air guide support together form a first air outlet communicating with the air outlet space, the air guide support is provided with a second air outlet, the air outlet directions of the first air outlet and the second air outlet are different, the first air outlet is configured to communicate with the air duct to form a first air outlet channel, and the second air outlet is configured to communicate with the air duct to form a second air outlet channel; The air guide mechanism includes a first air guide plate and a second air guide plate movably connected to the air guide support; the first air guide plate cooperates with the second air guide plate and is configured to control the opening and closing of the first air outlet and the second air outlet, so that the air conditioner has: a first air outlet mode in which the first air outlet channel is connected and the second air outlet channel is disconnected, a second air outlet mode in which the first air outlet channel is disconnected and the second air outlet channel is connected, and a third air outlet mode in which both the first air outlet channel and the second air outlet channel are connected.
Citation Information
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