WO2021134919A1 - 接水盘和窗式空调器 - Google Patents

接水盘和窗式空调器 Download PDF

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Publication number
WO2021134919A1
WO2021134919A1 PCT/CN2020/079029 CN2020079029W WO2021134919A1 WO 2021134919 A1 WO2021134919 A1 WO 2021134919A1 CN 2020079029 W CN2020079029 W CN 2020079029W WO 2021134919 A1 WO2021134919 A1 WO 2021134919A1
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WO
WIPO (PCT)
Prior art keywords
groove
air conditioner
evaporator
sealing
water receiving
Prior art date
Application number
PCT/CN2020/079029
Other languages
English (en)
French (fr)
Inventor
喻辉
邢志钢
李伟明
刘雨
张康文
雷志盛
申文军
唐宇航
Original Assignee
广东美的制冷设备有限公司
美的集团股份有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from CN201911425272.5A external-priority patent/CN110906525A/zh
Priority claimed from CN201911426036.5A external-priority patent/CN111059751A/zh
Priority claimed from CN201922499093.8U external-priority patent/CN211650698U/zh
Priority claimed from CN201922494042.6U external-priority patent/CN211261220U/zh
Priority claimed from CN201922496575.8U external-priority patent/CN211261221U/zh
Priority claimed from CN201922498995.XU external-priority patent/CN211261222U/zh
Application filed by 广东美的制冷设备有限公司, 美的集团股份有限公司 filed Critical 广东美的制冷设备有限公司
Publication of WO2021134919A1 publication Critical patent/WO2021134919A1/zh

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F1/00Room units for air-conditioning, e.g. separate or self-contained units or units receiving primary air from a central station
    • F24F1/02Self-contained room units for air-conditioning, i.e. with all apparatus for treatment installed in a common casing
    • F24F1/022Self-contained room units for air-conditioning, i.e. with all apparatus for treatment installed in a common casing comprising a compressor cycle
    • F24F1/027Self-contained room units for air-conditioning, i.e. with all apparatus for treatment installed in a common casing comprising a compressor cycle mounted in wall openings, e.g. in windows
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F1/00Room units for air-conditioning, e.g. separate or self-contained units or units receiving primary air from a central station
    • F24F1/02Self-contained room units for air-conditioning, i.e. with all apparatus for treatment installed in a common casing
    • F24F1/03Self-contained room units for air-conditioning, i.e. with all apparatus for treatment installed in a common casing characterised by mounting arrangements
    • F24F1/031Self-contained room units for air-conditioning, i.e. with all apparatus for treatment installed in a common casing characterised by mounting arrangements penetrating a wall or window
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/22Means for preventing condensation or evacuating condensate

Definitions

  • This application relates to the technical field of air conditioners, in particular to a water receiving tray and a window air conditioner using the water receiving tray.
  • Window air conditioners have indoor and outdoor sides.
  • the indoor side includes parts such as evaporator, fan and drain pan.
  • the evaporator generates a large amount of condensed water due to heat exchange.
  • the condensed water is collected by the drain pan. Accept and discharge to the outdoors. Since the end of the evaporator will have more refrigerant elbows, a large amount of condensed water will be generated during the heat exchange process.
  • the existing structure of the drain pan does not consider the large amount of condensed water in this part, so a large amount of temperature Very low condensate water directly drips from this place onto the chassis of the window air conditioner, causing the outer surface of the window air conditioner's cabinet on the indoor side to also produce condensate due to the low temperature.
  • the main purpose of this application is to provide a drain pan, which aims to reduce the generation of condensed water outside the outer surface of the part of the cabinet on the indoor side during the use of the air conditioner.
  • the water receiving tray proposed in this application is applied to an air conditioner.
  • the air conditioner includes a chassis and an evaporator located above the chassis, and the water receiving tray is located between the evaporator and the chassis ,
  • the water receiving tray includes a main tray body, a drainage groove connected with the main tray body, and a buffer tank connected with the main tray body, and the buffer tank is used for receiving the end portion of the evaporator.
  • the buffer tank is used for receiving the end portion of the evaporator.
  • a water guide groove is formed in the main plate body, and both ends of the water guide groove are respectively connected to the drainage groove and the buffer groove, and the bottom wall of the water guide groove is between the buffer groove and the drainage structure. It is arranged as an inclined surface in the direction, and the drainage groove is located at the lowest part of the inclined surface.
  • the bottom wall of the water channel is inclined downward from the indoor side to the outdoor side of the air conditioner.
  • the water receiving tray further includes a wiring portion connected to the main tray body, and the wiring portion is located between the drainage groove and the buffer groove.
  • the wiring part is provided with a plurality of wiring grooves arranged at intervals, and the wiring groove includes a high-current wiring groove and a weak-current wiring groove.
  • the wire routing groove is communicated with the drainage groove.
  • a wire buckle is protrudingly provided on the groove wall of the wire routing groove.
  • the wiring part is further provided with a water leakage hole.
  • the main plate body is further formed with a sealing structure, and the sealing structure is in sealing contact with the bottom of the evaporator.
  • the sealing structure is a sealing step, the sealing step includes a sealing top wall and a sealing side wall, the sealing top wall is in sealing contact with the bottom of the air duct volute of the air conditioner, and the sealing side wall It is in sealing contact with the bottom of the evaporator.
  • the main plate body is further connected with a mounting part for supporting the evaporator.
  • the main plate body is further provided with an air inlet, at least two installation parts are arranged at intervals, and the air inlet is located between the two installation parts.
  • a reinforcing rib is connected to the lower surface of the main plate body and/or the wire routing portion, and the reinforcing rib is supported on the chassis.
  • the main plate body is provided with a buckle for engaging with the chassis.
  • the present application also proposes a window air conditioner, including a casing, an evaporator arranged in the casing, and a water receiving tray arranged below the evaporator.
  • the water receiving tray includes a main plate body, and an evaporator.
  • the drainage groove communicated with the main plate body and the buffer groove communicated with the main plate body, and the buffer groove is used for receiving the condensed water generated at the end of the evaporator.
  • the window air conditioner is adapted to be installed in an installation port on a wall, and a movable shield is provided in the installation port;
  • the casing includes a box body and a chassis, the water receiving tray is arranged on the chassis, the outer peripheral wall of the box body is provided with a downwardly recessed receiving groove, and at least a part of the shielding member can extend into the In the containing tank, the chassis is arranged at the bottom of the box and placed on the wall;
  • the window type air conditioner further includes a sealing device, the sealing device is movably connected with the cabinet, and the sealing device is movable to switch between the storage state and the working state.
  • the sealing device In the storage state, the The sealing device is accommodated in the containing groove, and in the working state, the sealing device protrudes from the containing groove and contacts the lower end of the shield to block the gap between the shield and the installation opening Clearance.
  • the water receiving tray further includes a wiring portion connected to the main tray body, and the wiring portion is located between the drainage groove and the buffer groove.
  • a water guiding groove is formed in the main plate body, and both ends of the water guiding groove are respectively connected to the drainage groove and the buffer groove, and the bottom wall of the water guiding groove is located between the buffer groove and the drainage groove. It is arranged as an inclined surface in the direction, and the drainage groove is located at the lowest part of the inclined surface.
  • the main plate body is further formed with a sealing structure, and the sealing structure is in sealing contact with the bottom of the evaporator.
  • the sealing structure is a sealing step, the sealing step includes a sealing top wall and a sealing side wall, the sealing top wall is in sealing contact with the bottom of the air duct volute of the air conditioner, and the sealing side wall It is in sealing contact with the bottom of the evaporator.
  • the main plate body is further connected with a mounting part for supporting the evaporator.
  • the main plate body is further provided with an air inlet, at least two installation parts are arranged at intervals, and the air inlet is located between the two installation parts.
  • a buffer slot is added to the water receiving tray.
  • the buffer slot corresponds to the end of the evaporator. Therefore, when a large amount of condensed water is generated at the end of the evaporator during the operation of the window air conditioner, the buffer slot is Function, the newly generated condensed water with a lower temperature will not immediately fall on the chassis of the window air conditioner, but the condensed water will overflow from the buffer tank after the temperature rises in the buffer tank. Therefore, the window air conditioner is caused by the condensed water. The phenomenon that condensed water is also generated on the indoor side due to low temperature is greatly improved.
  • FIG. 1 is a schematic diagram of a three-dimensional structure of an embodiment of a water receiving tray according to the present application
  • FIG. 2 is a schematic diagram of the three-dimensional structure of the water receiving tray in FIG. 1 from another perspective;
  • FIG. 3 is a schematic diagram of the three-dimensional structure of the water receiving tray in FIG. 1 from another perspective;
  • Figure 4 is a cross-sectional view of an embodiment of a window air conditioner according to the present application.
  • Fig. 5 is an enlarged schematic diagram of A in Fig. 4;
  • Fig. 6 is a schematic diagram of the assembly structure of the water receiving tray and the chassis in the window air conditioner in Fig. 4;
  • Fig. 7 is a perspective view of another embodiment of the window air conditioner in Fig. 4, in which the sealing device is in a storage state;
  • Fig. 8 is a three-dimensional structural diagram of the window air conditioner in Fig. 4, in which the sealing device is in a sealed state.
  • the terms “connected”, “fixed”, etc. should be understood in a broad sense.
  • “fixed” can be a fixed connection, a detachable connection, or a whole; It is a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, and it can be the internal communication between two components or the interaction relationship between two components, unless specifically defined otherwise.
  • “fixed” can be a fixed connection, a detachable connection, or a whole; It is a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, and it can be the internal communication between two components or the interaction relationship between two components, unless specifically defined otherwise.
  • the specific meanings of the above-mentioned terms in this application can be understood according to specific circumstances.
  • the water receiving tray 100 includes a main plate body 110, a wiring portion 120, and a drainage structure 130.
  • the shape and structure of the main plate body 110 can be set according to actual needs. This is not limited.
  • the drainage structure 130 of the present application is provided at the right end of the main plate 110 to discharge the condensed water of the evaporator to the outside, where the drainage structure 130 may be a drainage hole, a drainage pipe, or a drainage groove.
  • the wiring part 120 is connected to one side of the main plate body 110.
  • the main plate body 110 and the wiring part 120 may be an integral structure or a separate structure and be fixed together by a detachable connection, such as the main plate body 110 and the wiring part.
  • the wire 120 can be detachably connected by means of screw connection or snap connection.
  • the wiring part 120 is used for fixing and positioning the wires in the air conditioner during the assembly process of the air conditioner.
  • the water receiving tray 100 of the present application can be applied to air conditioners of various structural forms, such as split or integrated air conditioners.
  • the window air conditioner 200 has a casing 210, and the window air conditioner 200 corresponds to the indoor side
  • the outdoor side is divided into an indoor side structure 200a and an outdoor side structure 200b.
  • the casing 210 has two parts corresponding to the indoor side structure 200a and the outdoor side structure 200b respectively.
  • the casing 210 includes a box body 211 and a chassis arranged at the lower part of the box body 211 212.
  • the indoor side structure 200a also includes an evaporator 220 and an indoor fan 230 arranged in the box body 211, and an indoor side air inlet 231 and an indoor side air outlet 232 arranged on the box body 211.
  • the indoor side air inlet 231 is provided With a filter, the evaporator 220 is located between the indoor air inlet 231 and the indoor fan 230.
  • the evaporator 220 can be a single-stage or multi-stage type.
  • the evaporator 220 in FIG. 4 has two stages, and the indoor air is in two stages. Driven by the indoor side fan 230, it enters from the indoor side air inlet 231 and exhausts from the indoor side air outlet 232.
  • the outdoor side structure 200b further includes an outdoor side fan, a condenser, and a compressor provided in the box body 211, and an outdoor side air inlet and an outdoor side air outlet provided on the box body 211.
  • the water receiving tray 110 is located between the evaporator 220 and the bottom plate 212, and the water receiving tray 100 is installed on the bottom plate 212 and located below the evaporator 220.
  • a buckle 117 can be protrudingly provided on the outer side of the main plate body 110, and The bottom plate 212 is correspondingly provided with a buckle hole, the water receiving tray 100 and the bottom plate 212 are snap-fitted, or the main plate body 110 and the bottom plate 212 are threadedly connected by screws and screw holes.
  • the main tray 110 corresponds to the lower position of the evaporator 220 for receiving the condensed water generated during the heat exchange process of the evaporator 220.
  • the wire connecting the indoor structure 200a and the outdoor structure 200b of the window air conditioner 200 can be positioned and fixed via the wiring portion 120 on the water receiving tray 100.
  • a wiring portion 120 is provided on one side of the main plate body 110.
  • the water receiving pan 100 is located between the chassis 212 and the evaporator 220.
  • the wires in the air conditioner can be installed through the wiring portion 120. Passing through, there is no need to set up other wiring structures, which improves the assembly efficiency of the air conditioner, reduces the production cost of the air conditioner, and solves the problem of the safety of the wire routing of the air conditioner.
  • the wiring part 120 is provided with a plurality of retaining walls, and a plurality of wiring grooves 121 arranged at intervals are defined between the retaining walls, and the wiring groove 121 includes strong current wiring.
  • the slot 1211 and the weak current wiring trough 1212 separate the multiple wiring troughs 121 and are divided into a strong current wiring trough 1211 and a weak current wiring trough 1212.
  • the weak current wiring trough 1212 can pass through, for example, the weak current routing of sensor wires.
  • the strong current wiring trough 1211 can pass through the strong current wiring such as a power cord.
  • the wiring duct 121 has a first opening 121a and a second opening 121b.
  • the second opening 121b faces the outdoor side of the window air conditioner 200.
  • the opening direction of the first opening 121a and the direction of the second opening 121b are approximately 90 degrees. Whether it is a strong current wire or a weak current wire, it passes through the second opening 121b from the outdoor side of the window-type air conditioner 200 and directly enters the wiring portion 120 in the water receiving tray 100, and then reverses the direction to pass through the first opening 121a to go around. It is electrically connected to the electronic components in the indoor side structure 200a of the window air conditioner 200 through the water receiving tray 100. Such a layout helps to improve the assembly efficiency and facilitates the EMC test of the whole air conditioner.
  • a wire buckle 122 is also protrudingly provided on the groove wall of the wire routing groove 121, wherein the wire buckle 122 may be separately provided on one groove wall of the wire routing groove 121, or the wire buckles 122 are arranged on two opposite sides.
  • the wall of the wire routing groove 121 is provided with, and the wire buckle 122 can fix the wire so that the wire is confined in the wire routing groove 121.
  • a water leakage hole 123 is also opened in the wiring part 120, wherein the water leakage hole 123 can be opened on the bottom wall of the wiring groove 121, so that the window air conditioner 200 falls into the wiring
  • the condensed water on the part 120 can also be quickly drained, which can eliminate potential safety hazards as much as possible.
  • the water receiving tray 100 also includes a buffer slot 150 connected to the main plate body 110.
  • the buffer slot 150 is located at the end of the main plate body 110 (that is, the left end in Figures 1, 2, and 3), and the main plate body 110 is provided with a connection
  • the storage tank 150 and the water guiding groove 111 of the drainage structure 130, and the wiring part 120 is located between the storage tank 150 and the drainage structure 130.
  • the buffer tank 150 is connected to the side of the main body 110 facing the outdoor side of the window air conditioner 200 and extends from the indoor side of the window air conditioner 200 to the outdoor side. After assembling the drain pan 100 to the window air conditioner 200, the buffer tank 150 corresponds to the side of the evaporator 220 with multiple pipes on the left side, where more condensed water will be generated during the heat exchange process of the evaporator 220 , The condensed water here cannot be quickly discharged through the water guide 111 and the drainage structure 130, so a buffer tank 150 is provided.
  • the condensed water that cannot be discharged quickly will flow into the buffer tank 150, that is, the buffer tank 150 is equivalent to the corresponding evaporation
  • the volume of the drain pan 100 is enlarged at the part where the device 220 produces more condensed water, so that the condensed water stays in the drain pan 100 for a longer time, and the temperature of the cold condensate that has just been generated is increased.
  • overflow from the buffer tank 150 to the lower chassis 212 so the outer wall surface of the indoor side corresponding to the chassis 212 will not produce condensate due to the low temperature of the condensed water, so the indoor side of the window air conditioner 200 is not easy to be in the process of use. There is dripping phenomenon here.
  • the bottom wall 113 of the water channel 111 is arranged on an inclined surface in the direction from the buffer tank 150 to the drainage structure 130, and the drainage structure 130 is located at the lowest point of the inclined surface. Further, the water channel The bottom wall 113 of the 111 is inclined downward in the direction from the indoor side to the outdoor side of the window type air conditioner 200.
  • the bottom wall 113 of the water guiding groove 111 is arranged on an inclined surface, which can be understood as the upper surface of the water receiving pan 100 facing the evaporator 220, and the bottom wall 113 belonging to the water guiding groove 111 is arranged on an inclined surface, and the bottom wall 113 is arranged as shown in FIG. 1
  • the left and right directions in and 2 are inclined, and the left side of the bottom wall 113 is higher than the right side.
  • the inclination angle can be set according to actual needs and is not limited here.
  • the bottom wall 113 is configured as an inclined surface, the thickness of the bottom wall 113 gradually decreases from left to right during the production process of the water tray 110, especially the upper surface of the bottom wall 113 facing the evaporator 220 gradually decreases from left to right.
  • the present application preferably uses the drainage structure 130 as a drainage groove structure, and the drainage groove extends to the outdoor side of the window type air conditioner 200.
  • the chassis 212 is provided with a drain hole 2121 (refer to FIG. 6). After the extension 132 extends to the outdoor side of the chassis 212, it is discharged to the outdoors through the drain hole 2121.
  • the above arrangement of the drainage structure 130 makes the window air conditioner 200 stop Fewer takeovers are required, and the structure is optimized and concise.
  • the main tray 110 of the water receiving tray 100 is formed with a sealing structure on the side close to the wiring part 120, and the sealing structure is used for It is in sealing contact with the bottom of the evaporator 220.
  • the sealing structure may have a sealing step 114 in contact with the bottom of the evaporator 220.
  • the sealing step 114 is formed by protruding upward from the bottom wall of the main tray 110.
  • One surface of the sealing step 114 is connected to the bottom of the evaporator 220. The bottom is in surface contact to achieve sealing.
  • the sealing structure may also be a tank structure at least partially wrapping the bottom of the evaporator 220.
  • the tank structure may be correspondingly provided at the sealing step 114, which may be formed by The bottom wall protrudes upward from two spaced baffles, the baffles and the bottom wall surround a tank structure, and the bottom side plate of the evaporator 220 is embedded in the tank structure.
  • a sealing structure is formed on the surface of the side wall 120 of the main tray 110 facing the evaporator 220, and the sealing structure contacts the bottom of the evaporator 220 to prevent air flow from flowing from the bottom of the evaporator 220 and the water receiving tray 100. Pass between. Therefore, during the use of the window type air conditioner 200, the airflow entering the air conditioner is exhausted after being fully contacted with the evaporator 220, which can greatly improve the heat exchange efficiency of the window type air conditioner 200.
  • the window air conditioner 200 further includes an air duct volute 240 that covers the air outlet side of the evaporator 220
  • the sealing step 114 includes a sealing side wall 115 and a sealing top wall 116, and the sealing top wall 116 and the air duct volute
  • the bottom of 240 is in sealing contact
  • the sealing side wall 115 is in sealing contact with the bottom of the evaporator 220.
  • the sealing top wall 116 and the sealing side wall 115 are both inclined to guide the condensed water into the water guiding groove 111.
  • the lower section of the evaporator 220 is also placed obliquely, and the inclination angle of the sealing side wall 115 is suitable for installing the evaporator 220.
  • a mounting portion 170 is further provided in the main tray 110, and the mounting portion 170 abuts against the side of the evaporator 220 to support the evaporator 220.
  • the mounting portion 170 is an upwardly protruding bracket structure to support the evaporator 220, and the mounting portion 170 is also inclined. During the assembly process, the mounting portion 170 and the sealing side wall 115 cooperate with each other to realize the alignment on both sides of the lower part of the evaporator 220. Positioning and clamping make assembly more convenient.
  • the mounting portion 170 is also provided with a clamping position 171 that is engaged with the side plate on the evaporator 220.
  • the locking position 171 is in the shape of a groove. After the side plate of the evaporator 220 is locked into the locking position 171 during the assembly process, the bottom of the evaporator 220 touches the sealing side wall 115, and the mounting part 170 bears the larger part of the evaporator 220. Gravity can reduce the impact of the evaporator 220 on the sealing side wall 115, and the entire sealing step 114 is not easily deformed due to the squeezing of the evaporator 220.
  • the main plate 110 is further provided with an air inlet 180, at least two installation parts 170 are arranged at intervals, and the air inlet 180 is located between the two installation parts 170.
  • an air inlet 180 is also opened on the water receiving tray 100, and the chassis 212 of the window air conditioner 200 is also provided with an air inlet corresponding to the air inlet 180. Then, the window air conditioner 200 is in use from the front side and Simultaneous air intake at the bottom can increase air intake and improve heat exchange efficiency.
  • a reinforcing rib 190 is connected to the lower surface of the main plate body 110 and/or the wiring portion 120, and the reinforcing rib 190 is supported on the chassis 212.
  • the ribs 190 are arranged at intervals and are arranged at intervals in the length direction of the main plate body 110.
  • the arrangement of the ribs 190 improves the overall strength of the water receiving tray 100 on the one hand, and on the other hand, the ribs 190 protect the water receiving tray 100.
  • Separate from the bottom plate 212 there is a passage between the bottom of the water receiving tray 100 and the bottom plate 212, which can make it easier for condensed water to flow along the bottom plate 212 from the indoor side to the outdoor side.
  • the window air conditioner 200 of the present application is suitable to be installed in an installation port on a wall when in use, and a movable shield is provided in the installation port; the shield may be a window, a sash, a curtain, or a window shutter.
  • the outer peripheral wall of the box body 211 of the window type air conditioner 200 of the present application is provided with a downwardly recessed In the receiving groove 213, at least a part of the shielding member can extend into the receiving groove 213 (for example, extend into the receiving groove 213 when the window is closed and moved downward), and the chassis 212 is placed on the wall surface of the installation opening of the wall; further, the window
  • the air conditioner 200 also includes a sealing device 250, which is movably connected to the casing 210. The sealing device 250 is moved to switch between the storage state and the working state. In the storage state, the sealing device 250 is stored in the containing groove 213, In the working state, the sealing device 250 protrudes relative to the receiving groove 213 and contacts the lower end of the shielding member to seal the gap between the shielding member and the installation opening.
  • the sealing device 250 can be rotatably connected or detachably connected to the bottom wall of the containing groove 213, and is provided in pairs on opposite sides of the box body 211.
  • the end of each sealing device 250 can pass through
  • the hook provided at its end and the rotating shaft provided in the receiving groove 213 are formed to be rotatably connected to the casing 210, and when the sealing device 250 is in the sealed state, the window type air conditioner is placed from the bottom wall of the receiving groove 213 to the installation port.
  • the thickness of the distance between the surfaces of the window 200, so that the sealing device 250 can move the shielding member down to the bottom wall of the accommodating groove 213, between the bottom of the shielding member and the surface of the installation port and located on the left and right sides of the window air conditioner 200 The gap is sealed, thereby reducing indoor air leakage from the window type air conditioner 200 to the installation location to the outside, thereby improving the cooling and heating effect of the window type air conditioner 200.
  • the sealing device 250 of the present application may be a retractable structure, that is, the sealing device 250 may be a structure such as a sleeve, and the end of the sealing device 250 that is not connected to the casing 210 can be extended out of the receiving groove 213 in a direction away from the casing 210, thereby The gap between the shield and the surface of the installation port is filled, and when in the storage state, it can be retracted into the receiving groove 213 without occupying space.
  • the present application is provided with a sealing layer on the outer surface of the sealing device 250 and/or the inner wall of the containing groove 213, wherein the material of the sealing layer can be a soft material such as silica gel, sponge or rubber, and the sealing layer can pass through Glue is pasted on the outer surface of the sealing device 250 and the inner wall of the receiving groove 213.
  • the sealing layer contacts the surface of the shielding member to further prevent air leakage, or when the sealing device 250 is in a sealed state At this time, the surface of the shield and the installation port contact the sealing layer to prevent air leakage, thereby improving energy efficiency.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Devices For Blowing Cold Air, Devices For Blowing Warm Air, And Means For Preventing Water Condensation In Air Conditioning Units (AREA)

Abstract

一种接水盘(100)和窗式空调器(200),空调器(200)包括底盘(212)和位于底盘(212)上方的蒸发器(220),接水盘(100)位于蒸发器(220)和底盘(212)之间,接水盘(100)包括主盘体(110)、与主盘体(110)连通的排水槽以及与主盘体(110)连通的缓存槽(150),缓存槽(150)用于承接蒸发器(220)的端部产生的冷凝水。

Description

接水盘和窗式空调器
相关申请
本申请要求2019年12月31日申请的、“申请号为201922494042.6、名称为接水盘和窗式空调器”、“申请号为201911425272.5、名称为接水盘和窗式空调器”、“申请号为201922496575.8、名称为接水盘和窗式空调器”、“申请号为201922498995.X、名称为接水盘和窗式空调器”、“申请号为201911426036.5、名称为接水盘和窗式空调器”、“申请号为201922499093.8、名称为接水盘和窗式空调器”的六个中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及空调器技术领域,特别涉及一种接水盘和应用该接水盘的窗式空调器。
背景技术
窗式空调器具有室内侧和室外侧,在室内侧部分在包括蒸发器、风机和接水盘等零件,在制冷过程中,蒸发器由于热交换会产生大量的冷凝水,冷凝水由接水盘承接并排出至室外。由于蒸发器的端部会具有较多冷媒弯管,此处在热交换过程中会产生大量的冷凝水,现有的接水盘的结构并未考虑这部分冷凝水较多的情况,因此大量温度非常低的冷凝水直接由该处滴落至窗式空调器的底盘上,导致窗式空调器的机壳在室内侧的外表面也因为温度较低而产生冷凝水。
发明概述
技术问题
问题的解决方案
技术解决方案
本申请的主要目的是提供一种接水盘,旨在减少空调器使用过程中室内侧部分机壳外表面外冷凝水的产生。
为实现上述目的,本申请提出的接水盘,应用于空调器,所述空调器包括底盘和位于所述底盘上方的蒸发器,所述接水盘位于所述蒸发器和所述底盘之间, 其中,所述接水盘包括主盘体、与所述主盘体连通的排水槽以及与所述主盘体连通的缓存槽,所述缓存槽用于承接所述蒸发器的端部产生的冷凝水。
可选地,所述主盘体内形成有导水槽,所述导水槽两端分别连通所述排水槽和所述缓存槽,所述导水槽的底壁在所述缓存槽至所述排水结构的方向上成倾斜表面设置,且所述排水槽位于所述倾斜表面的最低处。
可选地,所述导水槽的底壁由所述空调器的室内侧至室外侧方向上向下倾斜。
可选地,所述接水盘还包括走线部,所述走线部与所述主盘体连接,所述走线部位于所述排水槽和所述缓存槽之间。
可选地,所述走线部设置有多道间隔设置的走线槽,所述走线槽包括强电走线槽和弱电走线槽。
可选地,所述走线槽与所述排水槽连通。
可选地,所述走线槽的槽壁上凸设有线扣。
可选地,所述走线部还开设有漏水孔。
可选地,所述主盘体还形成有密封结构,所述密封结构与所述蒸发器的底部密封接触。
可选地,所述密封结构为密封台阶,所述密封台阶包括密封顶壁和密封侧壁,所述密封顶壁与所述空调器的风道蜗壳的底部密封接触,所述密封侧壁与所述蒸发器的底部密封接触。
可选地,所述主盘体还连接有用于支撑所述蒸发器的安装部。
可选地,所述主盘体还开设有进风口,所述安装部间隔设置有至少两个,所述进风口位于两安装部之间。
可选地,所述主盘体和/或所述走线部的下表面连接有加强筋,所述加强筋支撑在所述底盘上。
可选地,所述主盘体设置有用于与所述底盘卡接配合的卡扣。
本申请还提出一种窗式空调器,包括机壳、设置于所述机壳内的蒸发器以及设置于所述蒸发器下方的接水盘,所述接水盘包括主盘体、与所述主盘体连通的排水槽以及与所述主盘体连通的缓存槽,所述缓存槽用于承接所述蒸发器的端部产生的冷凝水。
可选地,所述窗式空调器适于安装在墙体上的安装口内,所述安装口内设有可移动的遮挡件;
所述机壳包括箱体和底盘,所述接水盘设置在所述底盘上,所述箱体的外周壁设有向下凹入的容纳槽,遮挡件的至少一部分可伸入到所述容纳槽内,所述底盘设在所述箱体的底部并放置在所述墙体上;
其中,所述窗式空调器还包括密封装置,所述密封装置与所述机壳活动连接,所述密封装置通过活动以在收纳状态和工作状态之间切换,在所述收纳状态,所述密封装置收纳在所述容纳槽内,在所述工作状态,所述密封装置从所述容纳槽伸出并与所述遮挡件的下端接触以封堵所述遮挡件与所述安装口之间的间隙。
可选地,所述接水盘还包括走线部,所述走线部与所述主盘体连接,所述走线部位于所述排水槽和所述缓存槽之间。
可选地,所述主盘体内形成有导水槽,所述导水槽两端分别连通所述排水槽和所述缓存槽,所述导水槽的底壁在所述缓存槽至所述排水槽的方向上成倾斜表面设置,且所述排水槽位于所述倾斜表面的最低处。
可选地,所述主盘体还形成有密封结构,所述密封结构与所述蒸发器的底部密封接触。
可选地,所述密封结构为密封台阶,所述密封台阶包括密封顶壁和密封侧壁,所述密封顶壁与所述空调器的风道蜗壳的底部密封接触,所述密封侧壁与所述蒸发器的底部密封接触。
可选地,所述主盘体还连接有用于支撑所述蒸发器的安装部。
可选地,所述主盘体还开设有进风口,所述安装部间隔设置有至少两个,所述进风口位于两安装部之间。
本申请通过在接水盘上增设缓存槽,缓存槽对应于蒸发器的端部,由此在窗式空调器运行过程中,蒸发器端部产生大量冷凝水的情况下,由于缓存槽的缓冲作用,刚产生的温度较低的冷凝水不会立即落入窗式空调器的底盘上,而是冷凝水在缓存槽内经过升温后才由缓存槽溢出,由此窗式空调器因冷凝水温度较低导致室内侧部分也产生冷凝水的现象大为改善。
发明的有益效果
对附图的简要说明
附图说明
为了更清楚地说明本申请实施例或现有技术中的技术方案,下面将对实施例或现有技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图示出的结构获得其他的附图。
图1为本申请接水盘一实施例的立体结构示意图;
图2为图1中接水盘另一视角的立体结构示意图;
图3为图1中接水盘另一视角的立体结构示意图;
图4为本申请窗式空调器一实施例的剖视图;
图5为图4中A处的放大示意图;
图6为图4中窗式空调器中接水盘与底盘的装配结构示意图;
图7为图4中窗式空调器另一实施例的立体图,图中密封装置处于收纳状态;
图8为图4中窗式空调器的立体结构示意图,图中密封装置处于密封状态。
发明实施例
本发明的实施方式
下面将结合本申请实施例中的附图,对本申请实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本申请的一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有作出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
需要说明,本申请实施例中所有方向性指示(诸如上、下、左、右、前、后......)仅用于解释在某一特定姿态(如附图所示)下各部件之间的相对位置关系、运动情况等,如果该特定姿态发生改变时,则该方向性指示也相应地随之改变。
在本申请中,除非另有明确的规定和限定,术语“连接”、“固定”等应做广义理解,例如,“固定”可以是固定连接,也可以是可拆卸连接,或成一体;可以是机 械连接,也可以是电连接;可以是直接相连,也可以通过中间媒介间接相连,可以是两个元件内部的连通或两个元件的相互作用关系,除非另有明确的限定。对于本领域的普通技术人员而言,可以根据具体情况理解上述术语在本申请中的具体含义。
另外,在本申请中如涉及“第一”、“第二”等的描述仅用于描述目的,而不能理解为指示或暗示其相对重要性或者隐含指明所指示的技术特征的数量。由此,限定有“第一”、“第二”的特征可以明示或者隐含地包括至少一个该特征。另外,各个实施例之间的技术方案可以相互结合,但是必须是以本领域普通技术人员能够实现为基础,当技术方案的结合出现相互矛盾或无法实现时应当认为这种技术方案的结合不存在,也不在本申请要求的保护范围之内。
本申请提出一种接水盘100和应用该接水盘100的窗式空调器200。请参照图1至图3,在本申请实施例中,接水盘100包括主盘体110、走线部120、以及排水结构130,主盘体110的形状构造可以根据实际需要设定,在此不做限定。本申请排水结构130设置在主盘体110的右端用以将蒸发器的冷凝水排出到室外,其中排水结构130可以是排水孔、排水管、或者是排水槽。走线部120连接于主盘体110的一侧,主盘体110和走线部120可以是一体结构,或者是分体结构并通过可拆卸连接方式固定在一起,例如主盘体110和走线部120通过螺钉连接或者卡扣连接等方式实现可拆卸连接。走线部120在空调器的组装过程中用于空调器内的导线进行固定定位。
本申请的接水盘100可应用于多种结构形式的空调器,例如分体式或者一体式空调器。在将接水盘100应用于一体式空调器时,请结合参照图4至图6,在本申请实施例中,该窗式空调器200具有机壳210,其中窗式空调器200对应室内侧和室外侧分为室内侧结构200a和室外侧结构200b,机壳210具有分别对应室内侧结构200a和室外侧结构200b的两部分,具体的,机壳210包括箱体211和设置在箱体211下部的底盘212,室内侧结构200a还包括设置在箱体211内的蒸发器220、室内侧风机230,以及设置在箱体211上的室内侧进风口231和室内侧出风口232,室内侧进风口231上设置有滤网,蒸发器220位于室内侧进风口231和室内侧风机230之间,蒸发器220可以是单段式也可以是多段式,其中附图4中的蒸发器220为 两段,室内空气在室内侧风机230的驱动下由室内侧进风口231进入并由室内侧出风口232排出。室外侧结构200b还包括设于箱体211内的室外侧风机、冷凝器、压缩机、以及设置在箱体211上的室外侧进风口和室外侧出风口。
其中,接水盘110位于蒸发器220和底盘212之间,接水盘100安装在底盘212上并位于蒸发器220的下方,可在主盘体110的外侧面凸设有卡扣117,而在底盘212对应设置有扣孔,接水盘100与底盘212卡接配合,或者主盘体110与底盘212通过螺钉和螺孔进行螺纹连接。主盘体110对应蒸发器220的下方位置用以承接蒸发器220换热过程中产生的冷凝水。在装配时,窗式空调器200连接室内侧结构200a和室外侧结构200b的导线可以经由接水盘100上的走线部120进行定位固定。
本申请技术方案通过主盘体110的一侧设置有走线部120,实际安装过程中接水盘100位于底盘212和蒸发器220之间,空调器中的导线可以通过走线部120进行安装穿过,无需再设置其他走线结构,提高了空调器的装配效率,降低了空调器的生产成本,解决了空调器的导线走线安全的问题。
请再次结合参照图1至图3和图6,走线部120设置有多个挡墙,挡墙之间限定出了多道间隔设置的走线槽121,走线槽121包括强电走线槽1211和弱电走线槽1212,将多道走线槽121分隔设置,并分为强电走线槽1211和弱电走线槽1212,其中弱电走线槽1212可以穿过例如传感器导线的弱电走线,强电走线槽1211可以穿过例如电源线的强电走线。走线槽121具有第一开口121a和第二开口121b,第二开口121b朝向窗式空调器200的室外侧方向,第一开口121a的开口朝向与第二开口121b的朝向大致呈90度,由此无论是强电导线还是弱电导线均由窗式空调器200的室外侧穿过第二开口121b径直进入接水盘100内的走线部120,再调转方向由第一开口121a穿出以绕过接水盘100而与窗式空调器200室内侧结构200a中的电子元器件进行电性连接,这样的布局,有利于提升装配效率,并且有利于进行空调器的整机EMC测试。
为了提升装配效率,本申请在走线槽121的槽壁上还凸设有线扣122,其中线扣122可以是单独设置在走线槽121的一个槽壁上,或者线扣122在两个相对的走线槽121的槽壁上均设置有,线扣122可以对导线进行固定使得导线被限定在走线槽121内。而为了提升空调器的安全性,在走线部120还开设有漏水孔123,其中 漏水孔123可以开设在走线槽121的槽底壁,由此窗式空调器200内掉落在走线部120上的冷凝水也可以被迅速排出,可以尽可能的消除安全隐患。
在上述内容中详细介绍了本申请接水盘100在结合导线安装的改进,除此之外,本申请的接水盘100在排出冷凝水方面也做出了改进。其中接水盘100还包括与主盘体110连接的缓存槽150,缓存槽150位于主盘体110的端部(即附图1、2、3中的左端),主盘体110设置有连通缓存槽150和排水结构130的导水槽111,走线部120位于缓存槽150和排水结构130之间。缓存槽150连接于主盘体110朝向窗式空调器200的室外侧的一侧,并由窗式空调器200的室内侧向室外侧延伸。在将接水盘100装配到窗式空调器200之后,缓存槽150对应于蒸发器220的左侧具有多个接管的边部,蒸发器220换热过程中此处会产生较多的冷凝水,此处的冷凝水无法迅速全部经由导水槽111和排水结构130排出,因此设置有缓存槽150,无法迅速排出的冷凝水将会流入到缓存槽150内,即缓存槽150相当于在对应蒸发器220产生较多冷凝水的部位进行接水盘100的容积扩大,使得该处的冷凝水滞留在接水盘100的时间得到延长,则刚产生的温度较低的冷凝水得以温度升高后再由缓存槽150溢出到下方的底盘212,因此底盘212对应的室内侧的外壁面不会因为冷凝水的温度较低而产生冷凝水现象,则窗式空调器200使用过程中室内侧不易在此处出现滴水现象。
本申请为了尽快将冷凝水排出到室外,导水槽111的底壁113在缓存槽150至排水结构130的方向上成倾斜表面设置,且排水结构130位于倾斜表面的最低处,进一步地,导水槽111的底壁113由窗式空调器200的室内侧至室外侧的方向上向下倾斜。
其中导水槽111的底壁113呈倾斜表面设置可以理解为接水盘100面向蒸发器220的上表面中属于导水槽111的底壁113呈倾斜表面设置,并且底壁113是在如附图1和2中的左右方向倾斜,并且底壁113的左侧高于右侧,倾斜角度可以根据实际需要进行设置,在此不作限制。而底壁113构造成倾斜表面可以是接水盘110生产制造过程中,底壁113的厚度由左到右逐步降低,特别是底壁113面向蒸发器220的上表面由左到右逐步向下倾斜,由此在蒸发器220换热过程中,冷凝水因为自身重力将沿着附图1、2、6中的箭头方向由设置在接水盘100右端的排水结构1 30排出到窗式空调器200的室外侧。
为了便于将冷凝水排出到窗式空调器200的室外侧,本申请将排水结构130优选为排水槽构造,并且排水槽延伸到窗式空调器200的室外侧,本申请在窗式空调器200的底盘212上开设有排水孔2121(参附图6),延伸部132延伸到底盘212的室外侧部分之后,由排水孔2121排出到室外,排水结构130的上述设置使得窗式空调器200所需要的接管较少,结构得到优化简洁。
本申请接水盘100在具有上述优点的基础上,请结合参照图1至3以及图5,接水盘100的主盘体110靠近走线部120的一侧形成有密封结构,密封结构用于与蒸发器220的底部密封接触。在一些实施例中,密封结构可以是具有与蒸发器220的底部接触的密封台阶114,密封台阶114为主盘体110的底壁向上凸出形成,密封台阶114的一个表面与蒸发器220的底部进行面接触而实现密封。如上述的内容,于其他实施例中,密封结构还可以为至少部分包裹蒸发器220的底部的槽体结构,具体而言,该槽体结构可以是对应设置在密封台阶114处,可以是由底壁向上凸出的两块间隔设置的挡板,挡板与底壁围合成槽体结构,而蒸发器220的底部边板嵌入到槽体结构内。本申请通过在主盘体110的侧壁120朝向蒸发器220的表面形成有密封结构,密封结构接触蒸发器220的底部,以阻止气流由所述蒸发器220的底部和所述接水盘100之间通过。由此,在窗式空调器200使用过程中,进入空调内的气流经过与蒸发器220的充分接触才排出,可以较大的提升窗式空调器200的热交换效率。
进一步地,窗式空调器200还包括罩盖在蒸发器220的出风侧的风道蜗壳240,密封台阶114包括密封侧壁115和密封顶壁116,密封顶壁116与风道蜗壳240的底部密封接触,密封侧壁115与蒸发器220的底部密封接触。密封顶壁116和密封侧壁115均成倾斜设置以将冷凝水导入导水槽111。其中而实际安装过程中,蒸发器220的下段也是倾斜摆放,则密封侧壁115的倾斜角度适于安装蒸发器220即可。
在一些实施例中,主盘体110中还设置有安装部170,安装部170与蒸发器220的侧部抵接用以支撑蒸发器220。
安装部170为向上突出的支架结构用来支撑蒸发器220,且安装部170也为倾斜 设置,在装配过程中,安装部170与密封侧壁115相互配合可以实现对蒸发器220下部的两侧进行定位夹持,装配更为方便。
安装部170还设置有与蒸发器220上的边板卡接配合的卡位171。卡位171为凹槽状,在装配过程蒸发器220的边板卡入卡位171内后,蒸发器220的底部即接触到密封侧壁115,由此安装部170承受蒸发器220较大的重力,可以减少密封侧壁115所受到的蒸发器220的冲击,则整个密封台阶114不易因为蒸发器220的挤压而产生变形。
在一些实施例中,主盘体110还开设有进风口180,安装部170间隔设置有至少两个,进风口180位于两安装部170之间。本申请通过在接水盘100上也开设有进风口180,其中窗式空调器200的底盘212上对应进风口180也开设有进风口,则窗式空调器200使用过程中,由前侧和底部同时进风可以提升进风量并提升换热效率。
在一些实施例中,主盘体110和/或走线部120的下表面连接有加强筋190,加强筋190支撑在底盘212上。加强筋190间隔设置有多条并且在主盘体110的长度方向间隔排列,通过加强筋190的设置,一方面提升了接水盘100的整体强度,另一方面加强筋190将接水盘100与底盘212隔开,则接水盘100下方与底盘212之间存在通道,可以使得冷凝水更容易沿着底盘212由室内侧流向室外侧。
本申请的窗式空调器200使用时适于安装在墙体上的安装口内,安装口内设有可移动的遮挡件;遮挡件可以是窗户、窗扇、窗帘、或窗百叶。
为了实现窗式空调器200使用过程中良好的密封,漏风少的目的,请结合参照图4、7、8,本申请窗式空调器200的箱体211的外周壁设有向下凹入的容纳槽213,遮挡件的至少一部分可伸入到容纳槽213内(例如窗户关闭下移过程中伸入容纳槽213内),底盘212放置在墙体的安装口的壁面上;进一步地,窗式空调器200还包括密封装置250,密封装置250与机壳210活动连接,密封装置250通过活动以在收纳状态和工作状态之间切换,在收纳状态,密封装置250收纳在容纳槽213内,在工作状态,密封装置250相对容纳槽213伸出并与遮挡件的下端接触以封堵遮挡件与安装口之间的间隙。
具体的,密封装置250可以转动连接或者可拆卸连接在容纳槽213的底壁位置, 并且成对设置在箱体211的相对两侧,转动连接时可以是每一个密封装置250的端部可以通过设置在其端部的卡勾与设置在容纳槽213内的转轴的形成转动连接于机壳210,并且密封装置250在密封状态时,具有容纳槽213的底壁至安装口放置窗式空调器200的表面之间距离的厚度,由此密封装置250可以对遮挡件下移至容纳槽213底壁以后,遮挡件底部与安装口的表面之间的并且位于窗式空调器200左右两侧的缝隙进行密封,从而减少室内由窗式空调器200向安装处向外界漏风的现象,由此可以提升窗式空调器200的制冷和制热效果。
本申请的密封装置250可以是可伸缩结构,即密封装置250可以是例如套管的结构,其未连接机壳210的一端可以朝着远离机壳210方向进行延长伸出容纳槽213,由此填充满遮挡件与安装口的表面之间的缝隙,并且在收纳状态下时则可以退回至容纳槽213内而不会占用空间。
为了进一步提升密封效果,本申请在密封装置250的外表面和/或容纳槽213的内壁上设置有密封层,其中密封层的材质可以是硅胶、海绵或者橡胶等柔软的材质,密封层可通过胶水粘贴到密封装置250的外表面和容纳槽213的内壁上,当遮挡件下移至容纳槽213内时,密封层与遮挡件的表面接触进一步实现防漏风,或者当密封装置250处于密封状态时,遮挡件以及安装口的表面接触密封层实现防漏风,以此提升能效。
以上所述仅为本申请的可选实施例,并非因此限制本申请的专利范围,凡是在本申请的发明构思下,利用本申请说明书及附图内容所作的等效结构变换,或直接/间接运用在其他相关的技术领域均包括在本申请的专利保护范围内。

Claims (22)

  1. 一种接水盘,应用于空调器,所述空调器包括底盘和位于所述底盘上方的蒸发器,所述接水盘位于所述蒸发器和所述底盘之间,其中,所述接水盘包括主盘体、与所述主盘体连通的排水槽以及与所述主盘体连通的缓存槽,所述缓存槽用于承接所述蒸发器的端部产生的冷凝水。
  2. 如权利要求1所述的接水盘,其中,所述主盘体内形成有导水槽,所述导水槽两端分别连通所述排水槽和所述缓存槽,所述导水槽的底壁在所述缓存槽至所述排水结构的方向上成倾斜表面设置,且所述排水槽位于所述倾斜表面的最低处。
  3. 如权利要求2所述的接水盘,其中,所述导水槽的底壁由所述空调器的室内侧至室外侧方向上向下倾斜。
  4. 如权利要求1所述的接水盘,其中,所述接水盘还包括走线部,所述走线部与所述主盘体连接,所述走线部位于所述排水槽和所述缓存槽之间。
  5. 如权利要求4所述的接水盘,其中,所述走线部设置有多道间隔设置的走线槽,所述走线槽包括强电走线槽和弱电走线槽。
  6. 如权利要求5所述的接水盘,其中,所述走线槽与所述排水槽连通。
  7. 如权利要求5所述的接水盘,其中,所述走线槽的槽壁上凸设有线扣。
  8. 如权利要求4所述的接水盘,其中,所述走线部还开设有漏水孔。
  9. 如权利要求1所述的接水盘,其中,所述主盘体还形成有密封结构,所述密封结构与所述蒸发器的底部密封接触。
  10. 如权利要求9所述的接水盘,其中,所述密封结构为密封台阶,所述密封台阶包括密封顶壁和密封侧壁,所述密封顶壁与所述空调器的风道蜗壳的底部密封接触,所述密封侧壁与所述蒸发器的底部密封接触。
  11. 如权利要求1所述的接水盘,其中,所述主盘体还连接有用于支撑所述蒸发器的安装部。
  12. 如权利要求11所述的接水盘,其中,所述主盘体还开设有进风口,所述安装部间隔设置有至少两个,所述进风口位于两安装部之间。
  13. 如权利要求1所述的接水盘,其中,所述主盘体和/或所述走线部的下表面连接有加强筋,所述加强筋支撑在所述底盘上。
  14. 如权利要求1所述的接水盘,其中,所述主盘体设置有用于与所述底盘卡接配合的卡扣。
  15. 一种窗式空调器,包括机壳、设置于所述机壳内的蒸发器以及设置于所述蒸发器下方的接水盘,其中,所述接水盘包括主盘体、与所述主盘体连通的排水槽以及与所述主盘体连通的缓存槽,所述缓存槽用于承接所述蒸发器的端部产生的冷凝水。
  16. 如权利要求15所述的窗式空调器,其中,所述窗式空调器适于安装在墙体上的安装口内,所述安装口内设有可移动的遮挡件;
    所述机壳包括箱体和底盘,所述接水盘设置在所述底盘上,所述箱体的外周壁设有向下凹入的容纳槽,遮挡件的至少一部分可伸入到所述容纳槽内,所述底盘设在所述箱体的底部并放置在所述墙体上;
    其中,所述窗式空调器还包括密封装置,所述密封装置与所述机壳活动连接,所述密封装置通过活动以在收纳状态和工作状态之间切换,在所述收纳状态,所述密封装置收纳在所述容纳槽内,在所述工作状态,所述密封装置从所述容纳槽伸出并与所述遮挡件的下端接触以封堵所述遮挡件与所述安装口之间的间隙。
  17. 如权利要求15所述的窗式空调器,其中,所述接水盘还包括走线部,所述走线部与所述主盘体连接,所述走线部位于所述排水槽和所述缓存槽之间。
  18. 如权利要求17所述的窗式空调器,其中,所述主盘体内形成有导 水槽,所述导水槽两端分别连通所述排水槽和所述缓存槽,所述导水槽的底壁在所述缓存槽至所述排水槽的方向上成倾斜表面设置,且所述排水槽位于所述倾斜表面的最低处。
  19. 如权利要求15所述的窗式空调器,其中,所述主盘体还形成有密封结构,所述密封结构与所述蒸发器的底部密封接触。
  20. 如权利要求19所述的窗式空调器,其中,所述密封结构为密封台阶,所述密封台阶包括密封顶壁和密封侧壁,所述密封顶壁与所述空调器的风道蜗壳的底部密封接触,所述密封侧壁与所述蒸发器的底部密封接触。
  21. 如权利要求15所述的窗式空调器,其中,所述主盘体还连接有用于支撑所述蒸发器的安装部。
  22. 如权利要求21所述的窗式空调器,其中,所述主盘体还开设有进风口,所述安装部间隔设置有至少两个,所述进风口位于两安装部之间。
PCT/CN2020/079029 2019-12-31 2020-03-12 接水盘和窗式空调器 WO2021134919A1 (zh)

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CN1346037A (zh) * 2000-08-17 2002-04-24 开利公司 具有冷凝液进入孔的空调器冷凝器节流孔构件
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GB2199936A (en) * 1986-10-30 1988-07-20 Matsushita Electric Ind Co Ltd Condensation collection in air conditioner
CN1346037A (zh) * 2000-08-17 2002-04-24 开利公司 具有冷凝液进入孔的空调器冷凝器节流孔构件
CN203605428U (zh) * 2013-10-22 2014-05-21 广东美的制冷设备有限公司 窗机空调的排水结构及窗机空调
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