WO2024169201A1 - 窗式空调器 - Google Patents

窗式空调器 Download PDF

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Publication number
WO2024169201A1
WO2024169201A1 PCT/CN2023/123223 CN2023123223W WO2024169201A1 WO 2024169201 A1 WO2024169201 A1 WO 2024169201A1 CN 2023123223 W CN2023123223 W CN 2023123223W WO 2024169201 A1 WO2024169201 A1 WO 2024169201A1
Authority
WO
WIPO (PCT)
Prior art keywords
fan
air conditioner
reactor
electrical component
disposed
Prior art date
Application number
PCT/CN2023/123223
Other languages
English (en)
French (fr)
Inventor
陈宏杰
莫拔巧
黄民柱
梁智文
袁德创
梁炳祥
Original Assignee
海信(广东)空调有限公司
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 CN202320255707.1U external-priority patent/CN219913258U/zh
Priority claimed from CN202320967702.1U external-priority patent/CN219934125U/zh
Priority claimed from CN202320967772.7U external-priority patent/CN219934126U/zh
Priority claimed from CN202320967793.9U external-priority patent/CN219913260U/zh
Application filed by 海信(广东)空调有限公司 filed Critical 海信(广东)空调有限公司
Publication of WO2024169201A1 publication Critical patent/WO2024169201A1/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
    • F24F1/028Self-contained room units for air-conditioning, i.e. with all apparatus for treatment installed in a common casing characterised by air supply means, e.g. fan casings, internal dampers or ducts
    • 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
    • F24F1/029Self-contained room units for air-conditioning, i.e. with all apparatus for treatment installed in a common casing characterised by the layout or mutual arrangement of components, e.g. of compressors or fans
    • 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
    • F24F1/032Self-contained room units for air-conditioning, i.e. with all apparatus for treatment installed in a common casing characterised by heat exchangers
    • F24F1/0323Self-contained room units for air-conditioning, i.e. with all apparatus for treatment installed in a common casing characterised by heat exchangers by the mounting or arrangement of the heat exchangers

Definitions

  • the present disclosure relates to the technical field of household appliances, and in particular to a window air conditioner.
  • window air conditioners are small air conditioners that can be installed on windows. They have the advantages of less materials and low cost. In addition, as an all-in-one machine, window air conditioners have lower installation and technical requirements and are often used in bedrooms, offices and other places.
  • a window air conditioner is provided.
  • the window air conditioner includes a housing, an indoor heat exchanger, an outdoor heat exchanger, a compressor, a fan assembly, and a reactor.
  • the housing is provided with an indoor air inlet, an indoor air outlet, an outdoor air inlet, and an outdoor air outlet.
  • the indoor heat exchanger is arranged in the housing, and the outdoor heat exchanger is arranged in the housing.
  • the first part of the window air conditioner is located indoors, and the first part of the window air conditioner at least includes the indoor heat exchanger, the indoor air inlet, and the indoor air outlet.
  • the second part of the window air conditioner is located outdoors, and the second part of the window air conditioner at least includes the outdoor heat exchanger, the outdoor air inlet, and the outdoor air outlet.
  • the compressor is arranged in the housing, and the compressor is respectively connected to the indoor heat exchanger and the outdoor heat exchanger to form a refrigerant circulation loop.
  • the fan assembly is arranged in the housing.
  • the fan assembly is configured to introduce indoor air and outdoor air, and discharge indoor air and outdoor air after heat exchange.
  • the reactor is arranged in the shell, and includes a reactor body and a reactor box, and the reactor box covers the reactor body.
  • the reactor box includes a box body, a first air inlet, at least one first air outlet and at least one second air outlet.
  • the bottom of the box body is open to form the first air inlet.
  • the at least one first air outlet is connected to the first air inlet.
  • the at least one second air outlet is connected to the first air inlet.
  • the second air outlet is arranged on a side of the box body away from the side wall of the shell in the first direction, and the first air outlet is arranged on a side of the box body away from part of the fan assembly.
  • FIG. 1 is a structural diagram of a window air conditioner according to some embodiments
  • FIG2 is a structural diagram of the window air conditioner in FIG1 from another perspective
  • FIG. 3 is a partial structural diagram of a window air conditioner according to some embodiments.
  • FIG4 is a partial structural diagram of a window air conditioner according to some embodiments at another viewing angle
  • FIG5 is another partial structural diagram of a window air conditioner according to some embodiments.
  • FIG. 6 is a structural diagram of an electrical component in a window air conditioner according to some embodiments.
  • FIG7 is a cross-sectional view along line EE in FIG6;
  • FIG8 is an exploded view of an electrical component in a window air conditioner according to some embodiments.
  • FIG. 9 is a partial exploded view of an electrical component in a window air conditioner according to some embodiments.
  • FIG10 is an exploded view of a first housing and a box body in an electrical component according to some embodiments
  • FIG11 is an exploded view of a second housing and a cover in an electrical component according to some embodiments.
  • FIG. 12 is another partial structural diagram of a window type air conditioner according to some embodiments.
  • FIG. 13 is an exploded view of an electrical component, a connection plate, and an indoor heat exchanger according to some embodiments
  • FIG14 is a partial enlarged view of circle A in FIG13 ;
  • FIG15 is a partial enlarged view of circle B in FIG13;
  • FIG. 16 is a structural diagram of a connection plate in a window air conditioner according to some embodiments.
  • FIG. 17 is a structural diagram of a connection plate in a window air conditioner according to some embodiments at another viewing angle
  • FIG. 18 is another partial structural diagram of a window type air conditioner according to some embodiments.
  • FIG19 is a partial enlarged view of circle C in FIG18;
  • FIG20 is a partial enlarged view of circle D in FIG18;
  • FIG. 21 is a structural diagram of a second bracket in a window air conditioner according to some embodiments.
  • FIG. 22 is a top view of a second bracket in a window air conditioner according to some embodiments.
  • FIG. 23 is a structural diagram of a second bracket in a window air conditioner according to some embodiments at another viewing angle
  • FIG. 24 is another partial structural diagram of a window type air conditioner according to some embodiments.
  • FIG25 is a partial structural diagram of the window air conditioner in FIG24 from another viewing angle
  • FIG. 26 is a structural diagram of a reactor in a window air conditioner according to some embodiments.
  • FIG. 27 is an exploded view of a reactor in a window air conditioner according to some embodiments.
  • FIG28 is a structural diagram of a second fan in a fan assembly according to some embodiments.
  • FIG. 29 is another partial structural diagram of a window air conditioner according to some embodiments.
  • FIG30 is a partial enlarged view of circle F in FIG29;
  • FIG. 31 is a structural diagram of a first bracket in a window air conditioner according to some embodiments.
  • FIG. 32 is a structural diagram of a mounting bracket in a window air conditioner according to some embodiments.
  • first and second are used for descriptive purposes only and are not to be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features.
  • a feature defined as “first” or “second” may explicitly or implicitly include one or more of the features.
  • plural means two or more.
  • connection and its derivatives may be used.
  • connection should be understood in a broad sense.
  • connection can be a fixed connection, a detachable connection, or an integral connection; it can be directly connected or indirectly connected through an intermediate medium.
  • connection can be a fixed connection, a detachable connection, or an integral connection; it can be directly connected or indirectly connected through an intermediate medium.
  • connection can be a fixed connection, a detachable connection, or an integral connection; it can be directly connected or indirectly connected through an intermediate medium.
  • At least one of A, B, and C has the same meaning as “at least one of A, B, or C” and both include the following combinations of A, B, and C: A only, B only, C only, the combination of A and B, the combination of A and C, the combination of B and C, and the combination of A, B, and C.
  • parallel As used herein, “parallel,” “perpendicular,” and “equal” include the stated conditions and conditions approximate to the stated conditions, the range of which is within an acceptable range of deviation as determined by one of ordinary skill in the art taking into account the measurement in question and the errors associated with the measurement of the particular quantity (i.e., the limitations of the measurement system).
  • the directions of up, down, left, right, front, and back in this disclosure are all based on the state of the window air conditioner when in use.
  • the side of the window air conditioner facing the user when in use is the front side, and the side opposite thereto is the back side.
  • the height direction of the window air conditioner is the up and down direction.
  • the left and right direction of the window air conditioner is opposite to the left and right direction of the user.
  • the left side of the window air conditioner is the right side of the user
  • the right side of the window air conditioner is the left side of the user.
  • the window air conditioner As a small air conditioner that can be installed on a window, the window air conditioner is an integrated unit. One part of the window air conditioner is located indoors, and the other part is located outdoors. The condenser and evaporator of the window air conditioner are arranged horizontally to achieve temperature regulation of the indoor environment.
  • the window air conditioner usually dissipates heat from its internal components by introducing outdoor air.
  • the reactor In order to facilitate the heat dissipation of the reactor in the window air conditioner, the reactor is usually placed close to the outdoor air inlet and outlet of the window air conditioner. Since the outdoor air inlet and outlet are located outdoors, when there is heavy rain, rainwater can easily enter the window air conditioner through the outdoor air inlet and outlet and splash onto the reactor.
  • some embodiments of the present disclosure provide a window air conditioner 100 to improve the waterproof effect of the reactor while ensuring the heat dissipation effect of the reactor.
  • FIG. 1 is a structural diagram of a window air conditioner according to some embodiments.
  • FIG. 2 is a structural diagram of the window air conditioner in FIG. 1 from another perspective.
  • the window air conditioner 100 includes a housing 10.
  • the housing 10 can cover the components in the window air conditioner 100 to prevent foreign objects from corroding the components and to avoid damage to the components caused by external impact, thereby improving the structural reliability of the components in the housing 10, thereby improving the structural reliability of the window air conditioner 100 and avoiding affecting the operation of the window air conditioner 100.
  • the housing 10 includes an indoor air inlet 101, an indoor air outlet 102, an outdoor air inlet 103, and an outdoor air outlet 104.
  • Indoor air can enter the window air conditioner 100 through the indoor air inlet 101, and flow into the indoor environment through the indoor air outlet 102 after heat exchange.
  • Outdoor air can enter the window air conditioner 100 through the outdoor air inlet 103, and flow into the outdoor environment through the outdoor air outlet 104 after heat exchange. It should be noted that the position of the outdoor air outlet 104 of the housing 10 in FIG. 2 is opposite to the indoor air inlet 101 and the indoor air outlet 102.
  • Fig. 3 is a partial structural diagram of a window type air conditioner according to some embodiments.
  • Fig. 4 is a partial structural diagram of a window type air conditioner according to some embodiments from another perspective.
  • the window air conditioner 100 further includes an indoor air duct assembly 20, an indoor heat exchanger 30, and an outdoor heat exchanger 40.
  • the indoor air duct assembly 20, the indoor heat exchanger 30, and the outdoor heat exchanger 40 are respectively arranged in the housing 10.
  • One of the outdoor heat exchanger 40 and the indoor heat exchanger 30 may be an evaporator, and the other may be a condenser.
  • the indoor heat exchanger 30 works as an evaporator
  • the outdoor heat exchanger 40 works as a condenser
  • the indoor heat exchanger 30 works as a condenser
  • the outdoor heat exchanger 40 works as an evaporator.
  • the indoor heat exchanger 30 and the outdoor heat exchanger 40 are arranged in a horizontal direction.
  • the indoor heat exchanger 30 and the outdoor heat exchanger 40 are arranged in a second direction (such as a front-to-back direction).
  • the indoor air duct assembly 20 includes an indoor air passage 21, which is connected to the indoor air inlet 101 and the indoor air outlet 102.
  • Indoor air can enter the window air conditioner 100 from the indoor air inlet 101 and flow to the indoor air outlet 102 along the indoor air passage 21, so that the indoor air can flow along a set route after entering the window air conditioner 100.
  • the indoor air can flow to the indoor heat exchanger 30 and perform heat exchange with the indoor heat exchanger 30.
  • the indoor air after heat exchange flows into the indoor environment, thereby adjusting the indoor environment temperature and improving the working reliability of the window air conditioner 100.
  • the window air conditioner 100 further includes a fan assembly 60, which is disposed in the housing 10.
  • the fan assembly 60 includes a motor 61, a first fan 62, and a second fan 63, and the first fan 62 is disposed in the indoor air passage 21.
  • the first fan 62 and the second fan 63 are disposed at both ends of the motor 61 in the second direction, and are respectively connected to the rotating shafts at both ends of the motor 61.
  • the motor 61 is configured to drive the first fan 62 and the second fan 63 to rotate.
  • one motor 61 can drive the first fan 62 and the second fan 63 to rotate, thereby reducing the number of structural components in the window air conditioner 100, which is conducive to improving the structural compactness of the window air conditioner 100 and reducing the size of the window air conditioner 100.
  • the second direction can be understood as the length direction of the window air conditioner 100.
  • the first fan 62 and the second fan 63 rotate under the drive of the motor 61.
  • the first fan 62 introduces indoor air into the housing 10 through the indoor air inlet 101. After the introduced indoor air exchanges heat with the refrigerant in the indoor heat exchanger 30, it flows into the room through the indoor air outlet 102 driven by the first fan 62, thereby adjusting the indoor environmental temperature to meet the user's use needs.
  • the second fan 63 introduces outdoor air in the outdoor environment into the housing 10 through the outdoor air inlet 103. After the introduced outdoor air exchanges heat with the refrigerant in the outdoor heat exchanger 40, it flows into the outside through the outdoor air outlet 104 driven by the second fan 63, thereby realizing heat exchange between the outdoor heat exchanger 40 and the outdoor air.
  • the flow rate of the air flow passing through the indoor heat exchanger 30 and the outdoor heat exchanger 40 can be accelerated, thereby improving the heat exchange efficiency of the indoor heat exchanger 30 and the outdoor heat exchanger 40 and improving the working efficiency of the window air conditioner 100.
  • the window air conditioner 100 further includes a compressor 50.
  • the compressor 50 is disposed in the housing 10 and is configured to compress the refrigerant so that the low-pressure refrigerant is compressed to form a high-pressure refrigerant.
  • the compressor 50 is respectively connected to the indoor heat exchanger 30 and the outdoor heat exchanger 40, and the compressor 50, the indoor heat exchanger 30 and the outdoor heat exchanger 40 form a refrigerant circulation loop.
  • the window air conditioner 100 performs a cooling or heating cycle by using a compressor 50, an expansion valve, a condenser, and an evaporator to achieve a cooling or heating effect.
  • the compressor 50 compresses the gaseous refrigerant into a high-temperature and high-pressure gaseous refrigerant and discharges it.
  • the discharged gaseous refrigerant flows into the condenser, and the condenser condenses the gaseous refrigerant into a liquid phase, and the heat in the refrigerant is released to the surrounding environment through the condensation process.
  • the expansion valve can expand the high-temperature and high-pressure liquid phase refrigerant condensed in the condenser into a low-pressure liquid phase refrigerant, and the liquid phase refrigerant expanded by the expansion valve flows into the evaporator.
  • the evaporator evaporates the expanded refrigerant, and during the evaporation process, the refrigerant absorbs heat from the surrounding environment, so that the refrigerant can become a low-temperature and low-pressure gaseous refrigerant.
  • the low-temperature and low-pressure gaseous refrigerant returns to the compressor 50, thereby completing a refrigerant cycle. In this way, through the above refrigerant cycle, the window air conditioner 100 can adjust the indoor environment temperature.
  • FIG. 5 is another partial structural diagram of a window air conditioner according to some embodiments.
  • the window air conditioner 100 further includes a first bracket 90.
  • the first bracket 90 is disposed in the housing 10 and includes a bracket body 91 and an air guide portion 92.
  • the bracket body 91 is connected to the air guide portion 92, and the motor 61 is disposed on the bracket body 91.
  • the bracket body 91 is configured to support the motor 61 so that the motor 61 can be stably disposed and meet the strength requirements of the structural components of the window air conditioner 100.
  • the bracket body 91 can protect the motor 61 and prevent the motor 61 from shaking in the window air conditioner 100, so that the motor 61 can operate normally, thereby improving the reliability of the operation of the first fan 62 and the second fan 63.
  • the second fan 63 is disposed in the air guide 92, and the air guide 92 is configured to collect and guide the airflow.
  • the outdoor air after heat exchange in the outdoor heat exchanger 40 can be quickly gathered through the air guide 92, and guided to the outside through the air guide 92, so that the flow of the heat exchange airflow in the window air conditioner 100 can be accelerated, thereby improving the working efficiency of the outdoor heat exchanger 40.
  • the structural stability and reliability of the air guide 92 in the window air conditioner 100 can be improved.
  • the window air conditioner 100 further includes an electrical component 70.
  • the electrical component 70 is located in the housing 10 and is disposed at the bottom of the housing 10 to be fixedly connected to the bottom of the housing 10.
  • the bottom of the housing 10 may also be referred to as a base.
  • the electrical component 70 is located on one side (right side) of the indoor heat exchanger 30 in a first direction (such as a left-right direction) and is spaced apart from the indoor heat exchanger 30.
  • the electrical component 70 and the air guide 92 are spaced apart in the second direction.
  • the first direction is perpendicular to the second direction, and the first direction can be understood as the width direction of the window air conditioner 100.
  • the indoor heat exchanger 30, the electrical component 70, and the air guide 92 can be easily installed in the window air conditioner 100, the compactness of the structure in the window air conditioner 100 can be improved, the size of the window air conditioner 100 can be reduced, and the production and transportation of the window air conditioner 100 can be facilitated.
  • the electrical component 70 and the indoor heat exchanger 30 at a distance, the mutual interference between the electrical component 70 and the indoor heat exchanger 30 during operation can be avoided, thereby improving the working reliability of the window air conditioner 100.
  • the electrical component 70 is electrically connected to the fan component 60 and outputs an electrical signal to the fan component 60 to control the rotation of the first fan 62 and the second fan 63 in the fan component 60, so that indoor air can enter the window air conditioner 100 to exchange heat with the indoor heat exchanger 30, and outdoor air can enter the window air conditioner 100 to exchange heat with the outdoor heat exchanger 40.
  • the window air conditioner 100 further includes a first wire 111, which is connected to the electrical component 70 and the motor 61 respectively, thereby realizing electrical connection between the electrical component 70 and the motor 61.
  • the first wire 111 may be referred to as a motor wire.
  • the electrical component 70 can output an electrical signal to the motor 61 to control the motor 61 to drive the first fan 62 and the second fan 63 to rotate, thereby enabling indoor air to enter the window air conditioner 100 and exchange heat with the indoor heat exchanger 30, and enabling outdoor air to enter the window air conditioner 100 and exchange heat with the outdoor heat exchanger 40.
  • the electrical component 70 can be used for power distribution and circuit protection of the window air conditioner 100, which can simplify the wiring harness installation and assembly of the window air conditioner 100, help simplify the internal structure of the window air conditioner 100, reduce wiring harness costs, and avoid scattered wiring harnesses.
  • FIG. 6 is a structural diagram of an electrical component in a window air conditioner according to some embodiments.
  • FIG. 7 is a cross-sectional view along line EE in FIG. 6.
  • FIG. 8 is an exploded view of an electrical component in a window air conditioner according to some embodiments.
  • FIG. 9 is a partial exploded view of an electrical component in a window air conditioner according to some embodiments.
  • the electrical component 70 includes a box body 71 and a cover body 72.
  • the cover body 72 is covered on the box body 71, and the box body 71 and the cover body 72 are detachably connected.
  • the electrical component 70 also includes a first connection portion 711 and a second connection portion 712.
  • the first connection portion 711 and the second connection portion 712 are respectively arranged on both sides of the box body 71 in the second direction (such as the length direction of the box body 71), and are connected to the box body 71.
  • the electrical component 70 also includes a third connection portion 721 and a fourth connection portion 722.
  • the third connection portion 721 and the fourth connection portion 722 are respectively arranged on both sides of the cover body 72 in the second direction (such as the length direction of the cover body 72), and are connected to the cover body 72.
  • the first connection portion 711 and the third connection portion 721 are connected (such as snap-fitted), and the second connection portion 712 and the fourth connection portion 722 are connected (such as snap-fitted).
  • the first connection portion 711 includes a first snap-in groove
  • the third connection portion 721 includes a first snap-in block.
  • the first snap-in block is located on the inner side of the cover 72, and the first snap-in block is snap-in with the first snap-in groove.
  • the second connection part 712 includes a first buckle
  • the fourth connection part 722 includes a second buckle.
  • the first buckle is located on the outside of the box body 71
  • the second buckle is located on the outside of the cover body 72
  • the first buckle is engaged with the second buckle.
  • the electrical component 70 includes a plurality of first connection parts 711 and a plurality of third connection parts 721.
  • the plurality of first connection parts 711 are arranged at intervals in a third direction (such as the up and down direction), and the plurality of third connection parts 721 are arranged at intervals in the third direction, and the plurality of first connection parts 711 correspond to the plurality of third connection parts 721 respectively.
  • the third direction is perpendicular to the first direction and the second direction. It should be noted that the third direction can be understood as the height direction of the box body 71, the cover body 72, the indoor heat exchanger 30, or the electrical component 70.
  • the electrical component 70 includes a plurality of second connection parts 712 and a plurality of fourth connection parts 722.
  • the plurality of second connection parts 712 are arranged at intervals in the third direction
  • the plurality of fourth connection parts 722 are arranged at intervals in the third direction
  • the plurality of second connection parts 712 correspond to the plurality of fourth connection parts 722, respectively.
  • connection position between the box body 71 and the cover body 72 in the third direction can be increased, and the connection strength between the box body 71 and the cover body 72 in the third direction can be enhanced, thereby improving the structural reliability of the electrical component 70.
  • the plurality of first connection parts 711 and a plurality of third connection parts 721, a plurality of second connection parts 712 and a plurality of fourth connection parts 722 can be correspondingly engaged at the same time, which facilitates the assembly of the box body 71 and the cover body 72, thereby improving the assembly efficiency of the electrical component 70, and further improving the production efficiency of the window air conditioner 100.
  • the box body 71 and the cover body 72 can provide a storage space for multiple electrical components in the electrical component 70, and protect multiple electrical components in the electrical component 70, thereby improving the working reliability of the electrical component 70.
  • the structures of the first connection part 711, the second connection part 712, the third connection part 721 and the fourth connection part 722 are simple, which is convenient for the production and processing of the electrical component 70.
  • the connection between the first connection part 711 and the third connection part 721, the second connection part 712 and the fourth connection part 722 is simple and fast, which is convenient for the production of the electrical component 70 and effectively improves the assembly efficiency of the electrical component 70.
  • the connection between the first connection part 711 and the third connection part 721, the second connection part 712 and the fourth connection part 722 is reliable, and the overall structure of the electrical component 70 is stable and not easy to fall apart.
  • the electrical component 70 further includes a fifth connection portion 713 and a sixth connection portion 723.
  • the fifth connection portion 713 is disposed on one side (such as the rear side) of the box body 71 in the second direction, and is close to one side (such as the upper side) of the box body 71 in the third direction, and the fifth connection portion 713 is connected to the box body 71.
  • the sixth connection portion 723 is disposed on one side (such as the rear side) of the cover body 72 in the second direction, and is close to one side (such as the upper side) of the cover body 72 in the third direction, and the sixth connection portion 723 is connected to the cover body 72.
  • the fifth connection portion 713 and the sixth connection portion 723 are connected to achieve pre-installation of the box body 71 and the cover body 72.
  • one of the fifth connection portion 713 and the sixth connection portion 723 is a first protrusion, and the other is a through hole, and the first protrusion and the through hole are engaged with each other.
  • the fifth connection portion 713 and the sixth connection portion 723 it is easy to position the box body 71 and the cover body 72 before assembly, and it is easy for the installer to quickly confirm the installation direction of the box body 71 and the cover body 72, and prevent the box body 71 and the cover body 72 from being reversely installed in the third direction, which affects the assembly efficiency of the electrical component 70. In addition, it is also easy for the installer to connect other structures of the box body 71 and the cover body 72 in the third direction. In addition, the fifth connection portion 713 and the sixth connection portion 723 have simple structures, which facilitates the positioning of the box body 71 and the cover body 72 during installation.
  • the electrical component 70 further includes a seventh connection portion 715 and an eighth connection portion 725.
  • the seventh connection portion 715 is disposed on one side (such as the upper side) of the box body 71 in the third direction and is connected to the box body 71.
  • the eighth connection portion 725 is disposed at one end (such as the upper end) of the cover body 72 in the third direction, and the eighth connection portion 725 is connected to the cover body 72 and is located on the inner side of the cover body 72.
  • the eighth connection portion 725 is slidably connected to the seventh connection portion 715.
  • connection portion 715 is a groove extending along the first direction.
  • the eighth connection portion 725 is a second protrusion extending along the first direction. The seventh connection portion 715 is engaged with the eighth connection portion 725.
  • the seventh connection part 715 can guide the sliding of the eighth connection part 725 on the upper side of the box body 71, thereby improving the reliability of the sliding of the eighth connection part 725 on the upper side of the box body 71, thereby achieving rapid alignment of the position of the box body 71 and the cover body 72, and facilitating the connection between the fifth connection part 713 and the sixth connection part 723.
  • the electrical component 70 may include a plurality of seventh connection portions 715 and a plurality of eighth connection portions 725 , and the plurality of seventh connection portions 715 correspond to the plurality of eighth connection portions 725 , respectively.
  • FIG. 10 is an exploded view of a first housing and a box body in an electrical component according to some embodiments.
  • the electrical component 70 further includes a first housing 73, which is disposed on the outer surface of the box body 71.
  • the first housing 73 is configured to protect the box body 71 , isolate the noise and electromagnetic interference between the electrical components in the electrical assembly 70 and the external environment, and avoid affecting the work and operation efficiency of the electrical components in the electrical assembly 70 .
  • the first housing 73 includes a first body 730 and a first mounting portion 731, and the first mounting portion 731 is disposed on one side of the first body 730 in the second direction.
  • the electrical component 70 also includes a second mounting portion 714.
  • the second mounting portion 714 is disposed on the box body 71 and is located on the one side of the box body 71 in the second direction.
  • the second mounting portion 714 is connected to the first mounting portion 731 (such as snap-fitting) to achieve a fixed connection between the first housing 73 and the box body 71.
  • the first mounting portion 731 includes a second snap-fitting groove
  • the second mounting portion 714 includes a second snap-fitting block, which is snap-fitted to the second snap-fitting groove.
  • the first mounting portion 731 and the second mounting portion 714 have a simple structure, reliable connection, and are easy to produce and process. They can also improve the connection reliability between the first housing 73 and the box body 71, prevent the first housing 73 from falling off the box body 71, and further improve the reliability of the first housing 73 protecting the box body 71.
  • the first housing 73 may include a plurality of first mounting portions 731
  • the electrical component 70 may include a plurality of second mounting portions 714.
  • the plurality of first mounting portions 731 are respectively connected to the plurality of second mounting portions 714.
  • FIG. 11 is an exploded view of a second housing and a cover in an electrical component according to some embodiments.
  • the electrical component 70 further includes a second housing 74, which is disposed on the outside of the cover 72.
  • the second housing 74 is configured to protect the cover 72, isolate the noise and electromagnetic interference between the electrical components in the electrical component 70 and the external environment, and avoid affecting the work and operation efficiency of the electrical components in the electrical component 70.
  • the second housing 74 includes a second body 740 and a third mounting portion 741, and the third mounting portion 741 is disposed on the second body 740.
  • the electrical component 70 also includes a fourth mounting portion 724, which is disposed on the cover 72 and connected (e.g., snap-fitted) to the third mounting portion 741 to achieve a fixed connection between the second housing 74 and the cover 72.
  • the third mounting portion 741 includes a third snap-fitting groove
  • the fourth mounting portion 724 includes a third snap-fitting block, which is snap-fitted to the third snap-fitting groove.
  • the third mounting portion 741 and the fourth mounting portion 724 have simple structures, reliable connections, and are easy to produce and process. They can also improve the connection reliability between the second housing 74 and the cover 72, prevent the second housing 74 from falling off the cover 72, and further improve the reliability of the second housing 74 protecting the cover 72.
  • the second housing 74 may include a plurality of third mounting portions 741, and the plurality of third mounting portions 741 are respectively arranged on both sides of the second housing 74 in the second direction.
  • the electrical component 70 may include a plurality of fourth mounting portions 724, and the plurality of fourth mounting portions 724 are respectively arranged on both sides of the cover 72 in the second direction.
  • the plurality of third mounting portions 741 are respectively connected to the plurality of fourth mounting portions 724.
  • the electrical component 70 further includes an electric control board 75, which is configured to control the operation of components within the window air conditioner 100.
  • the electric control board 75 is disposed in a receiving space 700 surrounded by the box body 71 and the cover body 72, so that the box body 71 and the cover body 72 can protect the electric control board 75.
  • the electrical component 70 further includes a heat sink 76.
  • the heat sink 76 is disposed on a side (such as the left side) of the electrical control board 75 away from the cover 72, and is configured to conduct heat generated when the electrical control board 75 is working, thereby improving the working efficiency of the electrical control board 75.
  • the box body 71 includes a receiving portion 716 and a supporting portion 717.
  • the radiator 76 is disposed in the receiving portion 716, and a side of the receiving portion 716 away from the cover body 72 is open to expose a portion of the radiator 76, so that the heat derived from the radiator 76 can be heat exchanged with the heat exchange airflow in the window air conditioner 100, thereby improving the heat dissipation effect of the electrical component 70.
  • the receiving portion 716 includes a groove or a through hole.
  • the supporting portion 717 is disposed in the receiving portion 716 to support the radiator 76, thereby improving the structural reliability of the radiator 76 in the electrical component 70.
  • the supporting portion 717 includes a reinforcing rib.
  • the electrical component 70 further includes a sealing portion 760, which is disposed around the outer edge of the radiator 76.
  • the sealing portion 760 is located between the electric control board 75 and the box body 71, and abuts against the electric control board 75 and the box body 71 to close the gap between the electric control board 75 and the box body 71, thereby preventing external water from entering the electric control board 75 from the radiator 76, causing a short circuit of the electric control board 75, avoiding affecting the operation of the electrical component 70, and improving the working reliability of the window air conditioner 100.
  • the sealing portion 760 includes a sealing ring or a sealing strip.
  • FIG. 12 is another partial structural diagram of a window air conditioner according to some embodiments.
  • FIG. 13 is an exploded view of an electrical component, a connection plate, and an indoor heat exchanger according to some embodiments.
  • FIG. 14 is a partial enlarged view of circle A in FIG. 13.
  • FIG. 15 is a partial enlarged view of circle B in FIG. 13.
  • FIG. 16 is a structural diagram of a connection plate in a window air conditioner according to some embodiments.
  • the window air conditioner 100 further includes a connecting plate 80.
  • the connecting plate 80 is disposed between the electrical component 70 and the indoor heat exchanger 30, and is connected to the electrical component 70 and the indoor heat exchanger 30, respectively.
  • the connecting plate 80 is configured to enhance the connection strength between the electrical component 70 and the indoor heat exchanger 30 in the first direction. In this way, when the indoor heat exchanger 30 and the electrical component 70 are spaced apart, the connecting plate 80 can prevent the indoor heat exchanger 30 and the electrical component 70 from being separated during transportation and installation of the window air conditioner 100. During the installation process, they collide with each other, affecting the structure and function of the indoor heat exchanger 30 and the electrical component 70.
  • the connecting plate 80 By providing the connecting plate 80, the structure of the window air conditioner 100 can be integrated, thereby improving the structural compactness of the window air conditioner 100.
  • the connecting plate 80 can provide a stable and reliable supporting force for the electrical component 70, preventing the electrical component 70 from shaking in the first direction, thereby improving the structural stability and working reliability of the electrical component 70.
  • the connecting plate 80 includes a plate body 800 and a third hole 811.
  • the third hole 811 is disposed at one end (such as the left end) of the plate body 800 close to the indoor heat exchanger 30.
  • the indoor heat exchanger 30 is provided with a fifth hole 311, the third hole 811 corresponds to the fifth hole 311, and is fixedly connected by a first fastener 85 (such as a screw).
  • the third hole 811 and the fifth hole 311 may be through holes.
  • the window air conditioner 100 also includes a fixing plate 31.
  • the fixing plate 31 is arranged at one end (such as the right end) of the indoor heat exchanger 30 close to the electrical component 70.
  • the fixing plate 31 includes a plate body 310 and a fifth hole 311.
  • the fifth hole 311 is arranged on the plate body 310 and penetrates the plate body 310 along the thickness direction (such as the front-to-back direction) of the plate body 310.
  • the indoor heat exchanger 30 can be conveniently connected to the connecting plate 80 while the function and structure of the indoor heat exchanger 30 are intact.
  • the fifth hole 311 can be conveniently arranged for easy processing.
  • the window air conditioner 100 includes a plurality of fixing plates 31, and the plurality of fixing plates 31 are arranged at intervals in the third direction.
  • the connecting plate 80 may include a plurality of third holes 811, and the plurality of third holes 811 correspond to the plurality of fixing plates 31, respectively.
  • the third hole 811 and the fifth hole 311 have simple structures and are easy to produce and process, and the connection method between the third hole 811 and the fifth hole 311 is simple, which is conducive to improving the assembly efficiency of the connecting plate 80 and the indoor heat exchanger 30.
  • the connection reliability between the connecting plate 80 and the indoor heat exchanger 30 can be improved, thereby improving the support reliability of the connecting plate 80 for the indoor heat exchanger 30.
  • the connecting plate 80 further includes a fourth hole 831.
  • the fourth hole 831 is disposed at one end (such as the right end) of the plate body 800 close to the electrical component 70.
  • the electrical component 70 is provided with a sixth hole 771.
  • the fourth hole 831 corresponds to the sixth hole 771 and is fixedly connected by a second fastener 86 (such as a screw).
  • the fourth hole 831 and the sixth hole 771 may be through holes.
  • the window air conditioner 100 also includes a connection seat 77.
  • the connection seat 77 is arranged on a side (such as the left side) of the electrical component 70 close to the indoor heat exchanger 30, and is connected to the electrical component 70.
  • the connection seat 77 includes a seat body 770, a sixth hole 771 and a plurality of third positioning portions 772.
  • the sixth hole 771 is arranged on the seat body 770, and can penetrate the seat body 770 along the thickness direction (such as the front-to-back direction) of the seat body 770.
  • a plurality of third positioning portions 772 are respectively arranged on both sides of the sixth hole 771 in the third direction.
  • the connecting plate 80 also includes a plurality of fourth positioning portions 832, and the plurality of third positioning portions 772 are respectively connected to the plurality of fourth positioning portions 832 to achieve positioning between the connection seat 77 and the connecting plate 80.
  • the third positioning portion 772 includes a pin
  • the fourth positioning portion 832 includes a through hole, and the pin is plugged into the through hole.
  • connection seat 77 on the electrical component 70 the electrical component 70 can be conveniently connected to the connection plate 80 while the function and structure of the electrical component 70 are complete.
  • the structures of the fourth hole 831, the sixth hole 771, the third positioning portion 772 and the fourth positioning portion 832 are simple and convenient for production and processing.
  • the positioning between the third positioning portion 772 and the fourth positioning portion 832 is reliable, which is convenient for pre-installation of the connection plate 80, and is conducive to improving the installation efficiency of the connection plate 80 and the electrical component 70.
  • connection between the fourth hole 831 and the sixth hole 771 is simple, which can improve the assembly efficiency of the connecting plate 80 and the electrical component 70.
  • connection reliability between the connecting plate 80 and the electrical component 70 can be improved, thereby improving the support reliability of the connecting plate 80 for the electrical component 70.
  • connection plate 80 further includes a grounding portion 812.
  • the window air conditioner 100 further includes a grounding wire 84 (as shown in Figure 12), one end of the grounding wire 84 is connected to the electrical component 70, and the other end is connected to the grounding portion 812.
  • the grounding portion 812 includes a screw hole, and the screw hole is screwed to the other end of the grounding wire 84.
  • the grounding wire 84 can prevent the electric shock of the maintenance personnel due to the short circuit of the current when the window air conditioner 100 has a circuit fault and needs to be repaired.
  • the grounding wire 84 can transfer the charge to the connecting plate 80, and the connecting plate 80 can transfer the charge to the indoor heat exchanger 30, and then transfer it to the outside of the window air conditioner 100 through the housing 10, thereby preventing the electrical component 70 from accumulating charge and causing damage to the electrical component 70.
  • the grounding portion 812 the length of the grounding wire 84 corresponding to the electrical component 70 can be shortened, which facilitates the installation of components in the window air conditioner 100.
  • the connection plate 80 includes a plurality of grounding portions 812.
  • the third hole 811 and the fourth hole 831 are arranged at intervals in the third direction and are located between the third hole 811 and the fourth hole 831.
  • the window air conditioner 100 may include a plurality of grounding wires 84.
  • connection plate 80 further includes a grounding mark 813, which is disposed on the plate body 800 and is spaced apart on one side of the grounding portion 812 close to the third hole 811 or the fourth hole 831.
  • the connection plate 80 may include a plurality of grounding marks 813, and the plurality of grounding marks 813 correspond to the plurality of grounding portions 812, respectively.
  • FIG. 17 is a structural diagram of a connection plate in a window air conditioner according to some embodiments from another perspective.
  • the board body 800 includes a first board portion 81, a second board portion 82 and a third board portion 83.
  • the first board portion 81, the second board portion 82 and the third board portion 83 are connected in sequence, and the second board portion 82 is disposed between the first board portion 81 and the third board portion 83.
  • the first plate portion 81 is connected to the indoor heat exchanger 30.
  • the third hole 811, the grounding portion 812 and the grounding mark 813 are respectively arranged on the first plate portion 81, and the first plate portion 81 is fixedly connected to the indoor heat exchanger 30 through the third hole 811.
  • the third plate portion 83 is located on one side (such as the rear side) of the first plate portion 81 in the second direction, and is spaced apart from the first plate portion 81 in the second direction, and the third plate portion 83 is closer to the electrical component 70 than the first plate portion 81.
  • the third plate portion 83 is connected to the electrical component 70.
  • the fourth hole 831 and the fourth positioning portion 832 are respectively arranged on the third plate portion 83, and the third plate portion 83 is fixedly connected to the electrical component 70 through the fourth hole 831, the fourth positioning portion 832 and the connecting seat 77.
  • the first plate portion 81, the second plate portion 82 and the third plate portion 83 it is possible to avoid affecting the structural strength of the connecting plate 80 while facilitating the connection of the connecting plate 80 to the electrical component 70 and the indoor heat exchanger 30, thereby improving the connection reliability of the connecting plate 80 between the electrical component 70 and the indoor heat exchanger 30.
  • improving the structural stability of the electrical component 70 is not limited to this, and the structural stability of the electrical component 70 can also be improved through other structures.
  • Fig. 18 is another partial structural diagram of a window type air conditioner according to some embodiments.
  • Fig. 19 is a partial enlarged diagram of circle C in Fig. 18.
  • Fig. 20 is a partial enlarged diagram of circle D in Fig. 18.
  • the window air conditioner 100 further includes a second bracket 110.
  • the second bracket 110 is disposed in the housing 10 and is located on one side (such as the right side) of the motor 61 in the first direction, and is connected between the electrical component 70 and the air guide 92 to achieve structural integration of the window air conditioner 100.
  • the second bracket 110 can provide a stable and reliable supporting force for the electrical component 70 in the second direction to enhance the structural stability of the electrical component 70 in the window air conditioner 100 and prevent the electrical component 70 from shaking in the second direction during transportation of the window air conditioner 100.
  • the electrical component 70 may shake, thereby affecting the structural stability of the electrical component 70 in the window air conditioner 100. If the electrical component 70 collides with surrounding components and is damaged during shaking, it is difficult to detect the damage of the electrical component 70 in time, resulting in the failure of the window air conditioner 100 to work normally.
  • the electrical component 70 by connecting the second bracket 110 between the air guide 92 and the electrical component 70, the electrical component 70 can be prevented from shaking during transportation, thereby avoiding affecting the structure and function of the electrical component 70 and improving the reliability of the window air conditioner 100 after installation.
  • the second bracket 110 includes a support body 1100 and a seventh hole 1101.
  • the seventh hole 1101 is disposed at one end (such as the rear end) of the support body 1100 close to the air guide 92.
  • the air guide 92 includes a ninth hole 921.
  • the seventh hole 1101 corresponds to the ninth hole 921 and is fixedly connected by a third fastener 922 (such as a screw).
  • the seventh hole 1101 and the ninth hole 921 may be through holes.
  • the second bracket 110 further includes an eighth hole 1102.
  • the eighth hole 1102 is disposed at one end (such as the front end) of the support body 1100 close to the electrical component 70.
  • the electrical component 70 further includes a tenth hole 78, the eighth hole 1102 corresponds to the tenth hole 78, and is fixedly connected by a fourth fastener 79 (such as a screw).
  • the eighth hole 1102 and the tenth hole 78 may be through holes.
  • the seventh hole 1101, the ninth hole 921, the eighth hole 1102 and the tenth hole 78 have simple structures and are easy to produce and process.
  • the connection between the seventh hole 1101, the ninth hole 921 and the third fastener 922, and the connection between the eighth hole 1102, the tenth hole 78 and the fourth fastener 79 are simple, fast and highly reliable, which is convenient for improving the assembly efficiency of the second bracket 110 and the electrical component 70, and the connection reliability between the second bracket 110 and the air guide 92 and the electrical component 70, thereby improving the support reliability of the second bracket 110 for the electrical component 70.
  • 21 is a structural diagram of a second bracket in a window air conditioner according to some embodiments.
  • the second bracket 110 further includes a wire passing portion 1103.
  • the wire passing portion 1103 is disposed on a side (upper side) of the support body 1100 that is away from the electrical component 70 and is recessed toward the electrical component 70. Wires between multiple components in the window air conditioner 100 can be arranged in the wire passing portion 1103 to facilitate wiring.
  • the first wire 111 can pass through the wire passing portion 1103.
  • the routing of the first wire 111 between the electrical component 70 and the motor 61 can be facilitated, the first wire 111 can be prevented from sliding on the surface of the second bracket 110, and the first wire 111 can be prevented from being damaged due to friction on the second bracket 110, thereby improving the structural reliability of the first wire 111.
  • the second bracket 110 also includes a wire blocking portion 1104 and a wire blocking area 1105.
  • the wire blocking portion 1104 is arranged on a side (such as the right side) of the support body 1100 away from the motor 61.
  • the wire blocking portion 1104 and a side (such as the right side) of the support body 1100 away from the motor 61 together form the wire blocking area 1105, and the wire blocking area 1105 is connected to the wire passing portion 1103.
  • the first wire 111 can extend into the wire passing portion 1103 after passing through the wire blocking area 1105, and then extend from the wire passing portion 1103 to be connected to the motor 61.
  • the wire blocking area 1105 can arrange the first wire 111 neatly, improve the neatness of the routing of the first wire 111 in the window air conditioner 100 , facilitate the assembly of the window air conditioner 100 , and help improve the integrity of the circuit in the window air conditioner 100 .
  • the wire stop portion 1104 is integrated with the support body 1100 to improve the structural stability and reliability of the wire stop area 1105 .
  • the stop line portion 1104 includes a first sub-stop line portion 1106 and a second sub-stop line portion 1107 .
  • the first sub-line blocking portion 1106 corresponds to one end of the line passing portion 1103 in the second direction and extends along the third direction.
  • the first sub-line blocking portion 1106 is substantially aligned with one end (such as the rear end) of the line passing portion 1103 in the second direction.
  • the second sub-blocking wire portion 1107 includes a first block line segment 11071 and a second block line segment 11072.
  • the first block line segment 11071 corresponds to the other end of the wire-passing portion 1103 in the second direction, and extends along the third direction.
  • the first block line segment 11071 is roughly aligned with the other end (such as the front end) of the wire-passing portion 1103 in the second direction.
  • the second block line segment 11072 is connected to an end (such as the bottom end) of the first block line segment 11071 away from the wire-passing portion 1103, and extends toward the first sub-blocking wire portion 1106 in the second direction. In this way, the first sub-blocking wire portion 1106, the second sub-blocking wire portion 1107 and the support body 1100 can form a block line area 1105 together.
  • the wire blocking area 1105 can limit the first wire 111 in the second direction, thereby preventing the first wire 111 from shaking back and forth on the side of the support body 1100 away from the motor 61.
  • the first wire blocking segment 11071 extends in the third direction, which can increase the guiding length of the first wire 111 in the wire blocking area 1105 by the wire blocking portion 1104, enhance the structural stability of the wire blocking area 1105, and improve the guiding effect of the wire blocking area 1105 on the first wire 111, thereby improving the neatness of the routing of the first wire 111 under the action of the wire blocking area 1105.
  • FIG. 23 is a structural diagram of a second bracket in a window air conditioner according to some embodiments from another perspective.
  • the first sub-wire blocking portion 1106 is located on the side (such as the upper side) of the second wire blocking segment 11072 away from the electrical component 70, and is spaced apart from the end (such as the rear end) of the second wire blocking segment 11072 away from the first wire blocking segment 11071.
  • the guiding length of the wire blocking portion 1104 for the first wire 111 in the third direction can be increased, and the wire bundling effect of the wire blocking portion 1104 on the first wire 111 can be further improved, thereby improving the neatness of the routing of the first wire 111 on one side of the support body 1100.
  • the second bracket 110 further includes a first pressing plate 1108.
  • the first pressing plate 1108 is disposed on a side (such as the left side) of the support body 1100 close to the motor 61, and a side (such as the upper surface) of the first pressing plate 1108 facing away from the electrical component 70 is substantially flush with a side (such as the upper surface) of the support body 1100 facing away from the electrical component 70.
  • the first pressing plate 1108 is configured to limit the movement of the first wire 111 away from the electrical component 70 along the third direction, so as to prevent the first wire 111 located on a side of the support body 1100 close to the motor 61 from being positioned in the third direction, and to prevent part of the first wire 111 from being higher than the second bracket 110, thereby affecting the installation and operation of other components in the window air conditioner 100. In this way, the neatness of the routing of the first wire 111 on the second bracket 110 can be improved, so as to facilitate the connection of the first wire 111 to the electrical component 70 and the motor 61.
  • the second bracket 110 further includes a first stopper 1109.
  • the first stopper 1109 is disposed on a side of the support body 1100 close to the motor 61 and is spaced apart from the first pressing plate 1108.
  • the first stopper 1109 is located on a side (such as the rear side) of the first pressing plate 1108 close to the air guide 92.
  • the first stopper 1109 is configured to fix the pressure reducing pipe 113 (as shown in FIG. 3 ) so that the pressure reducing pipe 113 located on a side of the support body 1100 close to the motor 61 is arranged neatly and prevents the pressure reducing pipe 113 from falling off.
  • the first stopper 1109 includes a hook.
  • the window air conditioner 100 further includes a pressure reducing pipe 113, which is disposed in a refrigerant circulation loop and is configured to reduce the refrigerant pressure flowing through the pressure reducing pipe 113.
  • the pressure reducing pipe 113 may also be referred to as a capillary tube, and the pressure reducing pipe 113 may be a thin and long copper tube.
  • the first limiting portion 1109 has a simple structure and can make the pressure reducing pipe 113 located on the side of the supporting body 1100 close to the motor 61 fit with the supporting body 1100 to prevent the pressure reducing pipe 113 from being entangled with other pipes or wires in the window air conditioner 100.
  • first position-limiting portion 1109 is not limited to fixing the pressure-reducing tube 113. In some embodiments, the first position-limiting portion 1109 may also be configured to fix the first wire 111 to further improve the neatness of the routing of the first wire 111.
  • the second bracket 110 further includes a second pressing plate 1110.
  • the second pressing plate 1110 is disposed on a side (such as the right side) of the support body 1100 away from the motor 61, and is spaced apart from the wire blocking portion 1104.
  • the second pressing plate 1110 is located on a side (such as the rear side) of the wire blocking portion 1104 close to the air guide portion 92, and a side (such as the upper surface) of the second pressing plate 1110 facing away from the electrical component 70 is substantially flush with the upper surface of the support body 1100.
  • the second pressure plate 1110 is configured to limit the movement of the second wire 112 (as shown in FIG.
  • the window air conditioner 100 includes a second wire 112, and the second wire 112 can be configured to detect the temperature of the coil 401 (as shown in FIG. 3 ) of the outdoor heat exchanger 40.
  • the second wire 112 can also be referred to as an outdoor pipe temperature line.
  • the second bracket 110 further includes a second limiting portion 1111.
  • the second limiting portion 1111 is disposed on a side of the support body 1100 away from the motor 61, and is spaced apart from the second pressing plate 1110, and is located on a side (such as the rear side) of the second pressing plate 1110 away from the wire blocking portion 1104.
  • the second limiting portion 1111 is configured to fix the second wire 112 to prevent the second wire 112 from shaking in the window air conditioner 100, and can also make the second wire 112 avoid the motor 61 to prevent the motor 61 from heating and affecting the temperature measurement of the second wire 112.
  • the second limiting portion 1111 may include a buckle.
  • the second limiting portion 1111 and the second pressing plate 1110 are arranged at intervals from each other, so that the second wire 112 can be routed in contact with the second bracket 110 on the side of the supporting body 1100 away from the motor 61, thereby improving the neatness of the routing of the second wire 112 in the window air conditioner 100.
  • the second limiting portion 1111 can also make the second wire 112 avoid the first wire 111, preventing the second wire 112 from being entangled with the first wire 111, thereby facilitating the arrangement and maintenance of the circuit in the window air conditioner 100.
  • wires limiting the second bracket 110 are not limited to the first wires 111 and the second wires 112, and may also be wires or pipes between other components in the window air conditioner 100, and the present disclosure does not limit this.
  • the reactor 120 with waterproof effect in some embodiments of the present disclosure is described in detail below.
  • Fig. 24 is another partial structural diagram of a window type air conditioner according to some embodiments.
  • Fig. 25 is a partial structural diagram of the window type air conditioner in Fig. 24 from another perspective.
  • the window air conditioner 100 further includes a reactor 120.
  • the reactor 120 is disposed in the housing 10 and is close to the first bracket 90.
  • the reactor 120 is electrically connected to the electrical component 70.
  • the reactor 120 is configured to filter out the higher harmonics generated by the frequency conversion circuit and the higher harmonics flowing through the power grid to avoid affecting the frequency conversion circuit and the power grid, so that the reactor 120 can play a double filtering role. Through the filtering effect of the reactor 120, the stability of the circuit in the window air conditioner 100 can be improved, thereby improving the reliability of the operation of the window air conditioner 100.
  • Fig. 26 is a structural diagram of a reactor in a window type air conditioner according to some embodiments.
  • Fig. 27 is an exploded diagram of a reactor in a window type air conditioner according to some embodiments.
  • the reactor 120 includes a reactor body 121 and a reactor box 122.
  • the reactor box 122 covers the reactor body 121 so that the reactor body 121 is located inside the reactor box 122, thereby preventing water vapor from corroding the reactor body 121, improving the structural reliability of the reactor body 121, and improving the waterproof effect of the reactor 120.
  • FIG. 28 is a structural diagram of a second fan in a fan assembly according to some embodiments.
  • the second fan 63 includes a fan body 630 and a rotating ring 631.
  • the fan body 630 rotates under the drive of the motor 61 to disturb the airflow.
  • the rotating ring 631 is arranged around the fan body 630 and is connected to the fan body 630.
  • the rotating ring 631 is configured to sprinkle part of the condensed water in the housing 10 toward the reactor box 122 as the fan body 630 rotates.
  • the reactor 120 can be close to the second fan 63, so that the condensed water sprinkled by the rotating ring 631 can fall on the reactor box 122.
  • the rotating circle 631 can spray the condensed water inside the shell 10 to the surrounding areas in a direction away from the second fan 63, and at least part of the scattered condensed water can be sprinkled on the reactor box 122 and contact with the reactor box 122, thereby realizing the heat dissipation of the reactor box 122, thereby accelerating the heat dissipation efficiency of the reactor box 122 and improving the working performance of the window air conditioner 100.
  • the reactor box 122 includes a box body 1220, a first air inlet 1221 and a first
  • the bottom of the box body 1220 is open to form a first air inlet 1221
  • the first air outlet 1222 is arranged on a side (such as the front side) of the box body 1220 away from the second fan 63 and close to the bottom of the box body 1220.
  • the first air outlet 1222 is connected to the first air inlet 1221.
  • the airflow in the housing 10 can enter the reactor box 122 from the first air inlet 1221 and flow out from the first air outlet 1222.
  • the airflow can take away the heat of the reactor body 121, thereby accelerating the heat dissipation efficiency of the reactor body 121 and improving the working performance of the window air conditioner 100.
  • the first air inlet 1221 is simply arranged, which can simplify the structural design of the reactor box 122.
  • the outdoor air inlet 103 is located on a side wall (such as the left side wall) of the housing 10 in the first direction.
  • the reactor 120 is disposed adjacent to the side wall of the housing 10 in the first direction. In this way, the heat of the reactor 120 can be taken away by the airflow at the outdoor air inlet 103, and the heat of the reactor 120 can be prevented from being transferred in the window air conditioner 100, thereby improving the heat dissipation efficiency of the reactor 120.
  • the reactor box 122 further includes a second air outlet 1223.
  • the second air outlet 1223 is disposed on one side (such as the right side) of the box body 1220 away from the side wall of the housing 10 in the first direction, and is communicated with the first air inlet 1221.
  • the airflow entering the reactor box 122 through the first air inlet 1221 can also flow out through the second air outlet 1223, thereby improving the air outlet efficiency of the reactor box 122 and improving the heat dissipation efficiency of the reactor 120.
  • the second air outlet 1223 can be staggered with the spraying position of the condensed water sprayed by the second fan 63, thereby preventing the condensed water sprayed by the rotating circle 631 from entering the reactor box 122 through the second air outlet 1223, thereby improving the waterproof effect of the reactor 120 while improving the heat dissipation efficiency of the reactor 120.
  • the reactor box 122 includes a plurality of first air outlets 1222 and a plurality of second air outlets 1223.
  • the plurality of first air outlets 1222 are arranged at intervals along the third direction (such as the height direction of the reactor 120), and the plurality of second air outlets 1223 are arranged at intervals along the third direction.
  • the plurality of first air outlets 1222 and the plurality of second air outlets 1223 can discharge air respectively, thereby further improving the air outlet efficiency of the reactor box 122 and improving the heat dissipation efficiency of the reactor 120.
  • the number of the plurality of second air outlets 1223 is greater than the number of the plurality of first air outlets 1222. Since the distance between the second air outlet 1223 and the outdoor air inlet 103 is greater than the distance between the first air outlet 1222 and the outdoor air inlet 103, by setting the number of the plurality of second air outlets 1223 to be greater than the number of the plurality of first air outlets 1222, the number of the first air outlet 1222 and the second air outlet 1223 can be matched with the distance between the first air outlet 1222 and the second air outlet 1223 and the outdoor air inlet 103, thereby improving the heat dissipation uniformity of the reactor body 121, and further improving the working performance of the reactor 120.
  • the reactor 120 also includes a plurality of water retaining portions 123, which are respectively covered on the first air outlet 1222 and the second air outlet 1223, and one side of the water retaining portion 123 close to the bottom of the shell 10 (such as the lower side) is open so that the airflow from the first air outlet 1222 and the second air outlet 1223 can flow toward the bottom of the shell 10 (such as flowing downward).
  • the condensed water partly splashed by the rotating circle 631 may fall to the first air outlet 1222 and the second air outlet 1223, therefore, by setting the water retaining part 123 to cover the first air outlet 1222 and the second air outlet 1223, and making the bottom of the water retaining part 123 open, the first air outlet 1222 and the second air outlet 1223 can be discharged toward the bottom of the housing 10, so that when the first air outlet 1222 and the second air outlet 1223 can discharge air normally, the water retaining part 123 can block the condensed water, and prevent the condensed water from entering the inside of the reactor box 122 through the first air outlet 1222 and the second air outlet 1223, causing damage to the reactor body 121. In this way, the waterproof effect of the reactor 120 can be improved, and the reliability of the operation of the reactor 120 can be improved.
  • the box body 1220 includes a first sub-body 1224 and a second sub-body 1225.
  • the first sub-body 1224 and the second sub-body 1225 are an integral piece.
  • the box body 1220 is integrally formed by a stretching process to avoid a splicing gap between the first sub-body 1224 and the second sub-body 1225.
  • the second sub-body 1225 is covered on an end (such as the top) of the first sub-body 1224 away from the first air inlet 1221 and is fixedly connected to the first sub-body 1224.
  • the end (such as the bottom) of the first sub-body 1224 away from the second sub-body 1225 is open to form the first air inlet 1221.
  • the second sub-body 1225 is welded to the first sub-body 1224.
  • the connection strength between the second sub-body 1225 and the first sub-body 1224 can be improved
  • the structural reliability of the reactor box 122 can be improved
  • the tightness of the connection between the first sub-body 1224 and the second sub-body 1225 can be improved to prevent water vapor from entering through the connection between the first sub-body 1224 and the second sub-body 1225.
  • the inside of the reactor box 122 is provided, thereby improving the waterproof performance of the reactor 120.
  • Fig. 29 is another partial structural diagram of a window type air conditioner according to some embodiments.
  • Fig. 30 is a partial enlarged diagram of circle F in Fig. 29.
  • Fig. 31 is a structural diagram of a first bracket in a window type air conditioner according to some embodiments.
  • a portion of the reactor box 122 is connected to the first bracket 90.
  • the first bracket 90 also includes a first fixing portion 923.
  • the first fixing portion 923 is disposed on the air guide portion 92 and is close to the reactor 120.
  • the first fixing portion 923 is disposed at the bottom of the air guide portion 92 and is adjacent to the reactor 120.
  • the reactor box 122 also includes a second fixing portion 1226.
  • the second fixing portion 1226 is disposed on the box body 1220 and is connected to the first fixing portion 923 (e.g., snap-fitted).
  • first fixing portion 923 and the second fixing portion 1226 By providing the first fixing portion 923 and the second fixing portion 1226, the connection between the air guide portion 92 and the reactor 120 can be facilitated.
  • first fixing portion 923 and the second fixing portion 1226 have a simple structure and reliable connection, which can improve the installation efficiency of the reactor 120 and improve the stability and reliability of the connection between the reactor 120 and the air guide portion 92 in the window air conditioner 100, thereby improving the structural reliability of the window air conditioner 100.
  • FIG. 32 is a structural diagram of a mounting bracket in a window air conditioner according to some embodiments.
  • the window air conditioner 100 further includes a mounting frame 130.
  • the mounting frame 130 is disposed at the bottom of the housing 10, and the reactor 120 is disposed on the mounting frame 130.
  • the mounting frame 130 includes a frame body 1300 and a vent 131, the vent 131 being disposed on the frame body 1300 and penetrating the frame body 1300 along the thickness direction (such as the up-down direction) of the frame body 1300.
  • the vent 131 is spaced apart from the bottom of the housing 10, and the vent 131 and the first air inlet 1221 are disposed opposite to each other in the third direction and are connected to each other.
  • the structural strength of the bottom of the housing 10 can be enhanced, and the supporting capacity of the bottom of the housing 10 can be enhanced, thereby increasing the supporting strength of the housing 10 for the reactor 120, and improving the structural reliability of the window air conditioner 100.
  • the vent 131 spaced apart from the bottom of the housing 10 it is convenient for airflow to enter the reactor box 122 through the vent 131 and the first air inlet 1221 in sequence, preventing the mounting frame 130 from affecting the air intake of the reactor box 122, thereby improving the heat dissipation effect of the reactor 120.
  • the mounting frame 130 further includes a first hole 132, which is disposed on the frame body 1300.
  • the reactor box 122 further includes a second hole 1227, which is disposed at one end (such as the bottom end) of the box body 1220 close to the mounting frame 130.
  • the first hole 132 and the second hole 1227 correspond to each other and are fixedly connected by a fifth fastener (such as a screw), thereby achieving a fixed connection between the mounting frame 130 and the reactor box 122.
  • the mounting frame 130 further includes a first positioning portion 133, which is disposed on the frame body 1300
  • the reactor 120 further includes a second positioning portion 1228, which is disposed on a side (such as the bottom side) of the reactor body 121 close to the mounting frame 130.
  • the first positioning portion 133 and the second positioning portion 1228 are connected to achieve positioning of the reactor 120 when it is mounted on the mounting frame 130.
  • one of the first positioning portion 133 and the second positioning portion 1228 is a third protrusion, and the other is a through hole, and the third protrusion and the through hole are plugged together to achieve positioning. In this way, it is convenient to correctly install the reactor 120 on the mounting frame 130, and the assembly efficiency of the reactor 120 on the mounting frame 130 is improved.
  • the mounting frame 130 further includes an eleventh hole 134, which is disposed on the frame body 1300.
  • the reactor 120 further includes a twelfth hole 1229, which is disposed on a side of the reactor body 121 close to the mounting frame 130.
  • the eleventh hole 134 and the twelfth hole 1229 can be connected by a sixth fastener 135 (such as a screw) to achieve a fixed connection between the reactor body 121 and the mounting frame 130.

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  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
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  • Air Filters, Heat-Exchange Apparatuses, And Housings Of Air-Conditioning Units (AREA)

Abstract

一种窗式空调器(100)包括壳体(10)、室内换热器(30)、室外换热器(40)、压缩机(50)、风机组件(60)、和电抗器(120)。所述电抗器(120)设置于所述壳体(10)内,且包括电抗器主体(121)和电抗器盒(122),所述电抗器盒(122)罩设所述电抗器主体(121)。所述电抗器盒(122)包括盒本体(1220)、第一进风口(1221)、第一出风口(1222)和第二出风口(1223)。所述盒本体(1220)的底部敞开以形成所述第一进风口(1221)。所述第一出风口(1222)和所述第二出风口(1223)与所述第一进风口(1221)相连通。所述第二出风口(1223)设置在所述盒本体(1220)的远离所述壳体(10)在第一方向的侧壁的一侧,所述第一出风口(1222)设置在所述盒本体(1220)的远离部分风机组件(60)的一侧。

Description

窗式空调器
本申请要求于2023年02月17日提交的、申请号为202320255707.1的中国专利申请的优先权,2023年04月25日提交的、申请号为202320967793.9的中国专利申请的优先权;2023年04月25日提交的、申请号为202320967702.1的中国专利申请的优先权;2023年04月25日提交的、申请号为202320967772.7的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
本公开涉及家用电器技术领域,尤其涉及一种窗式空调器。
背景技术
随着科技的发展和人们生活水平的提高,窗式空调器越来越受到人们的欢迎。窗式空调器是一种可以安装在窗口上的小型空调器,具有制造用材少,成本低的优点。另外,窗式空调器作为一体机,安装要求和技术要求较低,常用于卧室、办公室等场所。
发明内容
提供一种窗式空调器。所述窗式空调器包括壳体、室内换热器、室外换热器、压缩机、风机组件、和电抗器。所述壳体设置有室内进风口、室内出风口、室外进风口和室外出风口。所述室内换热器设置在所述壳体内,所述室外换热器设置在所述壳体内。所述窗式空调器的第一部分位于室内,所述窗式空调器的第一部分至少包括所述室内换热器、所述室内进风口和所述室内出风口。所述窗式空调器的第二部分位于室外,所述窗式空调器的第二部分至少包括所述室外换热器、所述室外进风口和所述室外出风口。所述压缩机设置于所述壳体内,所述压缩机分别与所述室内换热器以及所述室外换热器相连通,以形成冷媒循环回路。所述风机组件设置在所述壳体内。所述风机组件被配置为引入室内空气和室外空气,并排出热交换后的室内空气和室外空气。所述电抗器设置于所述壳体内,且包括电抗器主体和电抗器盒,所述电抗器盒罩设所述电抗器主体。所述电抗器盒包括盒本体、第一进风口、至少一个第一出风口和至少一个第二出风口。所述盒本体的底部敞开以形成所述第一进风口。所述至少一个第一出风口与所述第一进风口相连通。所述至少一个第二出风口与所述第一进风口相连通。所述第二出风口设置在所述盒本体的远离所述壳体在第一方向的侧壁的一侧,所述第一出风口设置在所述盒本体的远离部分风机组件的一侧。
附图说明
图1为根据一些实施例的一种窗式空调器的结构图;
图2为图1中窗式空调器在另一视角下的结构图;
图3为根据一些实施例的窗式空调器的局部结构图;
图4为根据一些实施例的窗式空调器在另一视角下的局部结构图;
图5为根据一些实施例的窗式空调器的另一种局部结构图;
图6为根据一些实施例的窗式空调器中电器组件的结构图;
图7为图6中沿EE线的剖视图;
图8为根据一些实施例的窗式空调器中电器组件的爆炸图;
图9为根据一些实施例的窗式空调器中电器组件的局部爆炸图;
图10为根据一些实施例的电器组件中第一壳体与盒体的爆炸图;
图11为根据一些实施例的电器组件中第二壳体与盖体的爆炸图;
图12为根据一些实施例的窗式空调器的另一种局部结构图;
图13为根据一些实施例的电器组件、连接板和室内换热器的爆炸图;
图14为图13中圈A的局部放大图;
图15为图13中圈B的局部放大图;
图16为根据一些实施例的窗式空调器中连接板的结构图;
图17为根据一些实施例的窗式空调器中连接板在另一视角下的结构图;
图18为根据一些实施例的窗式空调器的又一种局部结构图;
图19为图18中圈C的局部放大图;
图20为图18中圈D的局部放大图;
图21为根据一些实施例的窗式空调器中第二支架的结构图;
图22为根据一些实施例的窗式空调器中第二支架的俯视图;
图23为根据一些实施例的窗式空调器中第二支架在另一视角下的结构图;
图24为根据一些实施例的窗式空调器的又一种局部结构图;
图25为图24中窗式空调器在另一视角下的局部结构图;
图26为根据一些实施例的窗式空调器中电抗器的结构图;
图27为根据一些实施例的窗式空调器中电抗器的爆炸图;
图28为根据一些实施例的风机组件中第二风扇的结构图;
图29为根据一些实施例的窗式空调器的又一种局部结构图;
图30为图29中圈F的局部放大图;
图31为根据一些实施例的窗式空调器中第一支架的结构图;
图32为根据一些实施例的窗式空调器中安装架的结构图。
具体实施方式
下面将结合附图,对本公开一些实施例进行清楚、完整地描述。然而,所描述的实施例仅仅是本公开一部分实施例,而不是全部的实施例。基于本公开所提供的实施例,本领域普通技术人员所获得的所有其他实施例,都属于本公开保护的范围。
除非上下文另有要求,否则,在整个说明书和权利要求书中,术语“包括(comprise)”及其其他形式例如第三人称单数形式“包括(comprises)”和现在分词形式“包括(comprising)”被解释为开放、包含的意思,即为“包含,但不限于”。在说明书的描述中,术语“一个实施例(one embodiment)”、“一些实施例(some embodiments)”、“示例性实施例(exemplary embodiments)”、“示例(example)”、“特定示例(specific example)”或“一些示例(some examples)”等旨在表明与该实施例或示例相关的特定特征、结构、材料或特性包括在本公开的至少一个实施例或示例中。上述术语的示意性表示不一定是指同一实施例或示例。此外,所述的特定特征、结构、材料或特点可以以任何适当方式包括在任何一个或多个实施例或示例中。
以下,术语“第一”、“第二”仅用于描述目的,而不能理解为指示或暗示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一个或者更多个该特征。在本公开实施例的描述中,除非另有说明,“多个”的含义是两个或两个以上。
在描述一些实施例时,可能使用了“连接”及其衍伸的表达。术语“连接”应做广义理解,例如,“连接”可以是固定连接,也可以是可拆卸连接,或成一体;可以是直接相连,也可以通过中间媒介间接相连。这里所公开的实施例并不必然限制于本文内容。
“A、B和C中的至少一个”与“A、B或C中的至少一个”具有相同含义,均包括以下A、B和C的组合:仅A,仅B,仅C,A和B的组合,A和C的组合,B和C的组合,及A、B和C的组合。
本文中“适用于”或“被配置为”的使用意味着开放和包容性的语言,其不排除适用于或被配置为执行额外任务或步骤的设备。
如本文所使用的那样,“约”、“大致”或“近似”包括所阐述的值以及处于特定值的可接受偏差范围内的平均值,其中所述可接受偏差范围如由本领域普通技术人员考虑到正在讨论的测量以及与特定量的测量相关的误差(即,测量系统的局限性)所确定。
如本文所使用的那样,“平行”、“垂直”、“相等”包括所阐述的情况以及与所阐述的情况相近似的情况,该相近似的情况的范围处于可接受偏差范围内,其中所述可接受偏差范围如由本领域普通技术人员考虑到正在讨论的测量以及与特定量的测量相关的误差(即,测量系统的局限性)所确定。
为便于描述,如无特殊说明,本公开对于上、下、左、右、前、后的方位表述均以窗式空调器使用时的状态为参考。窗式空调器使用时面向用户的一侧为前侧,与之相反的一侧为后侧。窗式空调器的高度方向为上、下方向。窗式空调器的左右方向与用户的左右方向相反。例如,窗式空调器的左侧为用户的右侧、窗式空调器的右侧为用户的左侧。
作为一种可以安装在窗口上的小型空调器,窗式空调器为一体件。窗式空调器的一部分位于室内,另一部分位于室外,且窗式空调器的冷凝器和蒸发器沿水平方向排布,从而实现对室内环境的温度调节。并且,窗式空调器通常通过引入室外空气对其内部部件进行散热。而为了便于窗式空调器中电抗器的散热,通常电抗器靠近窗式空调器的室外进、出风口设置。由于室外进、出风口位于室外,当遇到暴雨天气时,雨水容易通过室外进、出风口进入窗式空调器内,并飞洒在电抗器上。由于电抗器上用于散热的 进风口和出风口靠近室外进、出风口,雨水容易通过电抗器的进风口和出风口进入电抗器内部,导致电抗器损坏,从而电抗器的防水效果较差,无法实现电抗器散热效果和防水效果之间的平衡。
为了解决上述问题,本公开一些实施例提供了一种窗式空调器100,以在保证电抗器散热效果的基础上,提高电抗器的防水效果。
图1为根据一些实施例的一种窗式空调器的结构图。图2为图1中窗式空调器在另一视角下的结构图。如图1至图2所示,窗式空调器100包括壳体10。壳体10可以罩设窗式空调器100中的部件,防止外界异物侵蚀该部件,以及避免外力撞击导致部件损坏,从而可以提高壳体10内的部件的结构可靠性,进而提高窗式空调器100的结构可靠性,避免影响窗式空调器100的工作。
如图2所示,壳体10包括室内进风口101、室内出风口102、室外进风口103和室外出风口104。室内空气可以通过室内进风口101进入窗式空调器100内,并在经过热交换后通过室内出风口102流入室内环境。室外空气可以通过室外进风口103进入窗式空调器100内,并在经过热交换后通过室外出风口104流入室外环境。需要说明的是,图2中壳体10的室外出风口104的位置与室内进风口101以及室内出风口102相对。
图3为根据一些实施例的窗式空调器的局部结构图。图4为根据一些实施例的窗式空调器在另一视角下的局部结构图。
如图3和图4所示,窗式空调器100还包括室内风道组件20、室内换热器30、和室外换热器40。室内风道组件20、室内换热器30、和室外换热器40分别设置于壳体10内。室外换热器40和室内换热器30中的一个可以为蒸发器,另一个可以为冷凝器。例如,在窗式空调器100的制冷模式下,室内换热器30作为蒸发器进行工作,室外换热器40作为冷凝器进行工作;在窗式空调器100的制热模式下,室内换热器30作为冷凝器进行工作,室外换热器40作为蒸发器进行工作。需要说明的是,在窗式空调器100中,室内换热器30和室外换热器40沿水平方向排布。例如,如图3所示,室内换热器30和室外换热器40沿第二方向(如前后方向)排布。
室内风道组件20包括室内空气通道21,室内空气通道21连通室内进风口101和室内出风口102。室内空气可以由室内进风口101进入窗式空调器100内,并沿着室内空气通道21流向室内出风口102,从而室内空气可以在进入窗式空调器100后按照设定路线流动。这样,室内空气可以流向室内换热器30,并与室内换热器30进行热交换,热交换后的室内空气流入室内环境,从而实现对室内环境温度的调节,提高窗式空调器100的工作可靠性。
如图3和图4所示,窗式空调器100还包括风机组件60,风机组件60设置在壳体10内。风机组件60包括电机61、第一风扇62和第二风扇63,且第一风扇62设置于室内空气通道21内。第一风扇62和第二风扇63设置于电机61的在第二方向上的两端,且分别与电机61的两端的转轴相连。电机61被配置为驱动第一风扇62和第二风扇63转动。这样,一个电机61可以带动第一风扇62和第二风扇63转动,从而减少窗式空调器100中的结构件数量,有利于提升窗式空调器100的结构紧凑性和缩小窗式空调器100的尺寸。这里,第二方向可以理解为窗式空调器100的长度方向。
窗式空调器100工作时,第一风扇62和第二风扇63在电机61的驱动下转动。第一风扇62将室内空气通过室内进风口101引入壳体10内。引入的室内空气与室内换热器30中的冷媒换热后,在第一风扇62的驱动下,通过室内出风口102流入室内,从而调节室内环境温度,满足用户的使用需求。第二风扇63将室外环境中的室外空气通过室外进风口103引入壳体10内。引入的室外空气与室外换热器40中的冷媒换热后,在第二风扇63的驱动下,通过室外出风口104流入室外,从而实现室外换热器40与室外空气的热交换。
这样,通过设置风机组件60,可以加速流过室内换热器30和室外换热器40的气流的流速,从而可以提升室内换热器30和室外换热器40的换热效率,提升窗式空调器100的工作效率。
如图3和图4所示,窗式空调器100还包括压缩机50。压缩机50设置在壳体10内,且被配置为压缩冷媒以使低压冷媒受压缩形成高压冷媒。压缩机50分别与室内换热器30和室外换热器40相连通,压缩机50、室内换热器30和室外换热器40形成冷媒循环回路。
窗式空调器100通过使用压缩机50、膨胀阀、冷凝器和蒸发器执行制冷或制热循环,从而实现制冷或制热效果。压缩机50将气态冷媒压缩成高温高压的气体冷媒并排出。排出的气态冷媒流入冷凝器,冷凝器将气态冷媒冷凝成液相,并且冷媒中的热量通过冷凝过程释放到周围环境。膨胀阀可以使在冷凝器中冷凝的高温高压的液相冷媒膨胀为低压的液相冷媒,且经过膨胀阀膨胀后的液相冷媒流入蒸发器。 蒸发器蒸发膨胀的冷媒,并且在蒸发过程中冷媒吸收周围环境的热量,从而冷媒可以变为低温低压的气态冷媒。该低温低压的气态冷媒返回到压缩机50,从而实现一次冷媒循环。这样,通过上述冷媒循环,窗式空调器100可以调节室内环境温度。
图5为根据一些实施例的窗式空调器的另一种局部结构图。在一些实施例中,如图5所示,窗式空调器100还包括第一支架90。第一支架90设置在壳体10内,且包括架主体91和导风部92。架主体91和导风部92相连,且电机61设置于架主体91上。架主体91被配置为支撑电机61,以使电机61可以稳定设置,并满足窗式空调器100对结构部件的强度要求。并且,架主体91可以保护电机61,防止电机61在窗式空调器100中发生晃动,使电机61可以正常运转,从而提高第一风扇62和第二风扇63工作的可靠性。
第二风扇63设置于导风部92内,导风部92被配置为对气流进行收集和导向。这样,在第二风扇63的驱动下,经过室外换热器40换热后的室外空气可以通过导风部92快速聚集,并且通过导风部92被引向室外,从而可以加速窗式空调器100中换热气流的流动,进而提高室外换热器40的工作效率。另外,通过将导风部92与架主体91相连,可以提高导风部92在窗式空调器100中的结构的稳定性和可靠性。
在一些实施例中,如图3至图5所示,窗式空调器100还包括电器组件70。电器组件70位于壳体10内,且设置在壳体10的底部,以与壳体10的底部固定连接。这里,壳体10的底部也可称为底座。电器组件70位于室内换热器30在第一方向(如左右方向)上的一侧(右侧),且与室内换热器30间隔设置。并且,电器组件70和导风部92在所述第二方向上间隔设置。所述第一方向垂直于所述第二方向,第一方向可以理解为窗式空调器100的宽度方向。
这样,可以便于室内换热器30、电器组件70、和导风部92在窗式空调器100中的安装,提高窗式空调器100内的结构的紧凑性,有利于缩小窗式空调器100的尺寸,便于窗式空调器100的生产和运输。另外,通过将电器组件70与室内换热器30间隔设置,可以避免电器组件70与室内换热器30工作时的互相干扰,从而提升窗式空调器100的工作可靠性。
电器组件70与风机组件60电连接,并输出电信号至风机组件60,以控制风机组件60中的第一风扇62和第二风扇63转动,从而室内空气可以进入窗式空调器100与室内换热器30换热,室外空气可以进入窗式空调器100与室外换热器40换热。
例如,如图3所示,窗式空调器100还包括第一导线111,第一导线111分别与电器组件70和电机61连接,从而实现电器组件70与电机61的电连接。这里,第一导线111可以被称为电机导线。
电器组件70可以输出电信号至电机61,以控制电机61带动第一风扇62和第二风扇63转动,从而实现室内空气进入窗式空调器100与室内换热器30换热,实现室外空气进入窗式空调器100与室外换热器40换热。
电器组件70可以用于窗式空调器100的电源分配和回路保护,可以简化窗式空调器100中的线束安装和窗式空调器100的装配,有利于简化窗式空调器100内部结构,降低线束成本,避免线束散乱。
图6为根据一些实施例的窗式空调器中电器组件的结构图。图7为图6中沿EE线的剖视图。图8为根据一些实施例的窗式空调器中电器组件的爆炸图。图9为根据一些实施例的窗式空调器中电器组件的局部爆炸图。
在一些实施例中,如图6至图8所示,电器组件70包括盒体71和盖体72。盖体72盖设于盒体71上,且盒体71与盖体72可拆卸连接。
在一些示例中,如图7至图9所示,电器组件70还包括第一连接部711和第二连接部712。第一连接部711和第二连接部712分别设置在盒体71在所述第二方向(如盒体71的长度方向)上的两侧,且与盒体71相连。对应地,电器组件70还包括第三连接部721和第四连接部722。第三连接部721和第四连接部722分别设置在盖体72在所述第二方向(如盖体72的长度方向)上的两侧,且与盖体72相连。第一连接部711和第三连接部721相连接(如卡接),第二连接部712和第四连接部722相连接(如卡接)。
例如,如图8和图9所示,第一连接部711包括第一卡接槽,第三连接部721包括第一卡接块。第一卡接块位于盖体72的内侧,且第一卡接块与第一卡接槽相卡接。这样,通过将第一连接部711与第三连接部721内置于电器组件70,可以提高电器组件70表面的平整度,从而防止第一连接部711与第三连接部721因暴露在电器组件70表面而磨损,影响电器组件70的结构可靠性。
如图6和图8所示,第二连接部712包括第一卡扣,第四连接部722包括第二卡扣。第一卡扣位于盒体71的外侧,第二卡扣位于盖体72的外侧,且第一卡扣与第二卡扣相卡接。通过将第二连接部712设置在盒体71的外侧,以及将第四连接部722为设置在盖体72的外侧,可以便于安装人员观察第二连接部712与第四连接部722的位置,便于安装。
在一些实施例中,如图7至图9所示,电器组件70包括多个第一连接部711和多个第三连接部721。多个第一连接部711在第三方向(如上下方向)上间隔设置,多个第三连接部721在所述第三方向上间隔设置,且多个第一连接部711分别与多个第三连接部721对应。所述第三方向垂直于所述第一方向和所述第二方向。需要说明的是,所述第三方向可以理解为盒体71、盖体72、室内换热器30、或电器组件70的高度方向。
在一些实施例中,如图6和图8所示,电器组件70包括多个第二连接部712和多个第四连接部722。多个第二连接部712在所述第三方向上间隔设置,多个第四连接部722在所述第三方向上间隔设置,且多个第二连接部712分别与多个第四连接部722对应。
通过设置多个第一连接部711和多个第三连接部721、多个第二连接部712和多个第四连接部722,可以增加盒体71与盖体72在所述第三方向上的连接位置,增强盒体71与盖体72在所述第三方向上的连接强度,从而提升电器组件70的结构可靠性。并且,多个第一连接部711和多个第三连接部721、多个第二连接部712和多个第四连接部722可以同时对应卡接,便于盒体71与盖体72的装配,从而提高电器组件70的装配效率,进而提高窗式空调器100的生产效率。
在本公开一些实施例中,盒体71与盖体72可以为电器组件70中的多个电器元件提供容纳空间,并保护电器组件70中的多个电器元件,从而提高电器组件70的工作可靠性。并且,第一连接部711、第二连接部712、第三连接部721和第四连接部722的结构简单,便于电器组件70的生产加工。第一连接部711与第三连接部721、第二连接部712与第四连接部722之间的连接简单、快捷,便于电器组件70的生产,以及有效提高电器组件70的装配效率。另外,第一连接部711与第三连接部721、第二连接部712与第四连接部722之间的连接可靠,电器组件70的整体结构稳定,不易散开。
在一些实施例中,如图8所示,电器组件70还包括第五连接部713和第六连接部723。第五连接部713设置在盒体71在所述第二方向上的一侧(如后侧),且靠近盒体71在所述第三方向上的一侧(如上侧),第五连接部713与盒体71相连。第六连接部723设置在盖体72在所述第二方向的一侧(如后侧),且靠近盖体72在所述第三方向上的一侧(如上侧),第六连接部723与盖体72相连。第五连接部713和第六连接部723相连,以实现盒体71与盖体72的预安装。
例如,如图8所示,第五连接部713和第六连接部723中的一个为第一凸起,另一个为通孔,该第一凸起和通孔相卡接。
通过设置第五连接部713和第六连接部723,可以便于盒体71与盖体72在装配前的定位,便于安装人员快速确认盒体71与盖体72的安装方向,防止盒体71与盖体72在所述第三方向上反向安装,影响电器组件70的装配效率。并且,还可以便于安装人员进行盒体71与盖体72在所述第三方向上的其他结构的连接。并且,第五连接部713和第六连接部723结构简单,方便盒体71与盖体72的安装时的定位。
在一些实施例中,如图8所示,电器组件70还包括第七连接部715和第八连接部725。第七连接部715设置在盒体71在所述第三方向上的一侧(如上侧),且与盒体71相连。第八连接部725设置在盖体72在所述第三方向上的一端(如上端),且第八连接部725与盖体72相连并位于盖体72的内侧。第八连接部725与第七连接部715可滑动地连接。
例如,第七连接部715为凹槽,该凹槽沿所述第一方向延伸。第八连接部725为第二凸起,且该第二凸起沿所述第一方向延伸。第七连接部715与第八连接部725相卡接。
第七连接部715可以对第八连接部725在盒体71上侧上的滑动起到导向作用,提高第八连接部725在盒体71上侧滑动的可靠性,从而实现盒体71与盖体72的位置快速对准,便于第五连接部713和第六连接部723的连接。
在一些实施例中,电器组件70可以包括多个第七连接部715和多个第八连接部725,该多个第七连接部715分别与多个第八连接部725对应。
图10为根据一些实施例的电器组件中第一壳体与盒体的爆炸图。
在一些实施例中,如图10所示,电器组件70还包括第一壳体73,第一壳体73罩设于盒体71的 外侧。第一壳体73被配置为保护盒体71,隔离电器组件70中电器元件与外部环境之间的噪音和电磁干扰,避免影响电器组件70中电器元件的工作和运行效率。
在一些示例中,如图10所示,第一壳体73包括第一本体730和第一安装部731,第一安装部731设置在第一本体730在所述第二方向上的一侧。电器组件70还包括第二安装部714。第二安装部714设置在盒体71上,且位于盒体71在所述第二方向上的所述一侧。第二安装部714与第一安装部731相连(如卡接),以实现第一壳体73与盒体71之间的固定连接。例如,如图10所示,第一安装部731包括第二卡接槽,第二安装部714包括第二卡接块,该第二卡接块与第二卡接槽卡接。
第一安装部731和第二安装部714的结构简单,连接可靠,便于生产加工,且可以提高第一壳体73与盒体71的连接可靠性,避免第一壳体73从盒体71上脱落,进而提高第一壳体73对盒体71保护作用的可靠性。当然,在一些实施例中,第一壳体73可以包括多个第一安装部731,电器组件70可以包括多个第二安装部714。多个第一安装部731分别与多个第二安装部714相连。
图11为根据一些实施例的电器组件中第二壳体与盖体的爆炸图。
在一些实施例中,如图11所示,电器组件70还包括第二壳体74,第二壳体74罩设于盖体72的外侧。第二壳体74被配置为保护盖体72,隔离电器组件70中电器元件与外部环境之间的噪音和电磁干扰,避免影响电器组件70中电器元件的工作和运行效率。
在一些示例中,如图11所示,第二壳体74包括第二本体740和第三安装部741,第三安装部741设置在第二本体740上。电器组件70还包括第四安装部724,第四安装部724设置在盖体72上,且与第三安装部741相连(如卡接),以实现第二壳体74与盖体72之间的固定连接。例如,第三安装部741包括第三卡接槽,第四安装部724包括第三卡接块,该第三卡接块与第三卡接槽卡接。
第三安装部741和第四安装部724的结构简单,连接可靠,便于生产加工,而且还可以提高第二壳体74与盖体72的连接可靠性,避免第二壳体74从盖体72上脱落,进而提高第二壳体74对盖体72保护作用的可靠性。当然,在一些实施例中,第二壳体74可以包括多个第三安装部741,多个第三安装部741分别设置在第二壳体74在第二方向上的两侧。电器组件70可以包括多个第四安装部724,多个第四安装部724分别设置在盖体72在第二方向上的两侧。多个第三安装部741分别与多个第四安装部724相连。
在一些实施例中,如图7和图8所示,电器组件70还包括电控板75,电控板75被配置为控制窗式空调器100内部件的运行。电控板75设置于盒体71和盖体72围成的容纳空间700中,从而盒体71和盖体72可以保护电控板75。
在一些实施例中,如图8和图9所示,电器组件70还包括散热器76。散热器76设置在电控板75的远离盖体72的一侧(如左侧),且被配置为导出电控板75工作时产生的热量,从而提高电控板75的工作效率。
在此情况下,盒体71包括容纳部716和支撑部717。散热器76设置于容纳部716中,且容纳部716的远离盖体72的一侧敞开,以露出部分散热器76,从而散热器76导出的热量可以与窗式空调器100中的换热气流进行热交换,进而提高电器组件70的散热效果。例如,容纳部716包括凹槽或通孔等。支撑部717设置在容纳部716中,以支撑散热器76,从而提高散热器76在电器组件70中的结构可靠性。例如,支撑部717包括加强筋。
在一些实施例中,如图8所示,电器组件70还包括密封部760,密封部760环绕设置于散热器76的外边缘。密封部760位于电控板75和盒体71之间,且与电控板75和盒体71抵接,以封闭电控板75和盒体71之间的缝隙,从而防止外界的水从散热器76进入电控板75,导致电控板75的短路,可以避免影响电器组件70的运行,提高窗式空调器100的工作可靠性。例如,密封部760包括密封圈或密封条等。
图12为根据一些实施例的窗式空调器的另一种局部结构图。图13为根据一些实施例的电器组件、连接板和室内换热器的爆炸图。图14为图13中圈A的局部放大图。图15为图13中圈B的局部放大图。图16为根据一些实施例的窗式空调器中连接板的结构图。
在一些实施例中,如图4、图12和图13所示,窗式空调器100还包括连接板80。连接板80设置在电器组件70和室内换热器30之间,且分别与电器组件70和室内换热器30相连。连接板80被配置为增强电器组件70与室内换热器30在所述第一方向上的连接强度。这样,在室内换热器30与电器组件70间隔设置的情况下,连接板80可以防止室内换热器30与电器组件70在窗式空调器100运输和 安装过程中互相碰撞,影响室内换热器30和电器组件70的结构和功能。
并且,通过设置连接板80,可以使窗式空调器100的结构一体化,提高窗式空调器100的结构紧凑性。另外,连接板80可以对电器组件70提供稳定可靠的支撑力,防止电器组件70在所述第一方向上发生晃动,从而提升电器组件70的结构稳定性和工作可靠性。
在一些实施例中,如图13、图15和图16所示,连接板80包括板本体800和第三孔811。第三孔811设置在板本体800的靠近室内换热器30的一端(如左端)。室内换热器30上设置有第五孔311,第三孔811和第五孔311相对应,并且通过第一紧固件85(如螺钉)固定连接。第三孔811和第五孔311可以为通孔。
例如,如图13和图15所示,窗式空调器100还包括固定片31。固定片31设置在室内换热器30的靠近电器组件70的一端(如右端)。固定片31包括片本体310和第五孔311。第五孔311设置于片本体310上,且沿片本体310的厚度方向(如前后方向)贯穿片本体310。通过在室内换热器30上设置具有第五孔311的固定片31,可以在室内换热器30的功能和结构完整的情况下,便于室内换热器30与连接板80连接。并且,可以便于设置第五孔311,便于加工。
在一些示例中,如图13所示,窗式空调器100包括多个固定片31,多个固定片31在所述第三方向上间隔设置。对应地,连接板80可以包括多个第三孔811,多个第三孔811分别和多个固定片31对应。通过设置多个固定片31,可以增加连接板80与室内换热器30连接位置的数量,从而增强连接板80与室内换热器30的连接强度,提高连接板80与室内换热器30的连接可靠性与安装稳定性。
第三孔811和第五孔311结构简单,便于生产加工,且第三孔811和第五孔311之间的连接方式简单,利于提高连接板80与室内换热器30的装配效率。另外,通过第一紧固件85固定连接第三孔811和第五孔311,可以提高连接板80和室内换热器30之间的连接可靠性,从而提高连接板80对室内换热器30的支撑可靠性。
在一些实施例中,如图13和图16所示,连接板80还包括第四孔831。第四孔831设置在板本体800的靠近电器组件70的一端(如右端)。如图14所示,电器组件70上设置有第六孔771。第四孔831和第六孔771相对应,并且通过第二紧固件86(如螺钉)固定连接。第四孔831和第六孔771可以为通孔。
例如,如图13和图14所示,窗式空调器100还包括连接座77。连接座77设置在电器组件70的靠近室内换热器30的一侧(如左侧),且与电器组件70相连。连接座77包括座本体770、第六孔771和多个第三定位部772。第六孔771设置于座本体770上,且可以沿座本体770的厚度方向(如前后方向)贯穿座本体770。多个第三定位部772分别设置在第六孔771在所述第三方向上的两侧。对应地,连接板80还包括多个第四定位部832,多个第三定位部772分别与多个第四定位部832相连,以实现连接座77与连接板80之间的定位。例如,第三定位部772包括销钉,第四定位部832包括通孔,该销钉与通孔相插接。
这样,通过在电器组件70上设置连接座77,可以在电器组件70的功能和结构完整的情况下,便于电器组件70与连接板80连接。并且,第四孔831、第六孔771、第三定位部772以及第四定位部832的结构简单,便于生成加工。且第三定位部772以及第四定位部832之间的定位可靠,便于连接板80的预安装,有利于提高连接板80与电器组件70的安装效率。
另外,第四孔831和第六孔771之间的连接方式简单,可以提高连接板80与电器组件70的装配效率。通过第二紧固件86固定连接第四孔831和第六孔771,可以提高连接板80和电器组件70之间的连接可靠性,从而提高连接板80对电器组件70的支撑可靠性。
在一些实施例中,如图13和图16所示,连接板80还包括接地部812。窗式空调器100还包括接地线84(如图12所示),接地线84的一端与电器组件70相连,另一端与接地部812相连。例如,接地部812包括螺孔,该螺孔与接地线84的所述另一端螺接。
接地线84作为窗式空调器100中的重要结构,可以防止窗式空调器100出现电路故障需要检修时,电流短路导致检修人员触电。并且,在电器组件70漏电时接地线84可以将电荷转移至连接板80,连接板80可以将电荷转移至室内换热器30上,然后通过壳体10中传递至窗式空调器100外部,从而防止电器组件70出现电荷积累,导致电器组件70损坏。另外,通过设置接地部812,可以缩短电器组件70对应的接地线84的长度,便于窗式空调器100中部件的安装。
在一些实施例中,如图13和图16所示,连接板80包括多个接地部812。多个接地部812在所述 第三方向上间隔设置,并且位于第三孔811和第四孔831之间。对应地,窗式空调器100可以包括多个接地线84。通过设置多个间隔设置的接地部812,可以便于接地线84与接地部812的连接,从而防止电器组件70漏电而损坏,提高窗式空调器100的工作可靠性。
在一些实施例中,如图13和图16所示,连接板80还包括接地标识813,接地标识813设置在板本体800上,且间隔设置于接地部812的靠近第三孔811或第四孔831的一侧。连接板80可以包括多个接地标识813,且多个接地标识813分别与多个接地部812对应。通过设置靠近接地部812的接地标识813,可以方便检修人员确定接地部812的位置,防止检修人员误连接接地线84和接地部812。
图17为根据一些实施例的窗式空调器中连接板在另一视角下的结构图。
在一些实施例中,如图16和图17所示,板本体800包括第一板部81、第二板部82和第三板部83。第一板部81、第二板部82和第三板部83依次相连,且第二板部82设置在第一板部81和第三板部83之间。
第一板部81与室内换热器30相连。例如,第三孔811、接地部812以及接地标识813分别设置于第一板部81上,第一板部81通过第三孔811与室内换热器30固定连接。第三板部83位于第一板部81在所述第二方向上的一侧(如后侧),且在所述第二方向上与第一板部81间隔设置,第三板部83比第一板部81更靠近电器组件70。第三板部83与电器组件70相连。例如,第四孔831和第四定位部832分别设置于第三板部83上,第三板部83通过第四孔831、第四定位部832以及连接座77与电器组件70固定连接。
通过设置第一板部81、第二板部82和第三板部83,可以在避免影响连接板80的结构强度的同时,便于连接板80分别与电器组件70和室内换热器30连接,从而提高连接板80在电器组件70与室内换热器30之间的连接可靠性。
当然,提高电器组件70的结构稳定性并不局限于此,还可以通过其他结构提高电器组件70的结构稳定性。
图18为根据一些实施例的窗式空调器的又一种局部结构图。图19为图18中圈C的局部放大图。图20为图18中圈D的局部放大图。
在一些实施例中,如图5和图18所示,窗式空调器100还包括第二支架110。第二支架110设置于壳体10内,且位于电机61在所述第一方向上的一侧(如右侧),并且连接在电器组件70和导风部92之间,以实现窗式空调器100的结构一体化。第二支架110可以对电器组件70在所述第二方向上提供稳定可靠的支撑力,以提升电器组件70在窗式空调器100中的结构稳定性,避免在窗式空调器100运输过程中电器组件70在所述第二方向上晃动。
窗式空调器100在运输和安装过程中如果不慎跌落,或者受到外力撞击时,电器组件70可能发生晃动,从而影响电器组件70在窗式空调器100中的结构稳定性。如果电器组件70在发生晃动的过程中,与周边部件碰撞而损坏,难以及时发现电器组件70的损坏,导致窗式空调器100无法正常工作。而在本公开一些实施例中,通过在导风部92和电器组件70之间连接第二支架110,可以防止电器组件70在运输过程中发生晃动,从而避免影响电器组件70的结构和功能,提高窗式空调器100安装后工作的可靠性。
在一些实施例中,如图18和图19所示,第二支架110包括支撑本体1100和第七孔1101。第七孔1101设置在支撑本体1100的靠近导风部92的一端(如后端)。导风部92包括第九孔921。第七孔1101和第九孔921相对应,并且通过第三紧固件922(如螺钉)固定连接。第七孔1101和第九孔921可以为通孔。
在一些实施例中,如图18和图20所示,第二支架110还包括第八孔1102。第八孔1102设置在支撑本体1100的靠近电器组件70的一端(如前端)。电器组件70还包括第十孔78,第八孔1102和第十孔78相对应,并且通过第四紧固件79(如螺钉)固定连接。第八孔1102和第十孔78可以为通孔。
第七孔1101、第九孔921、第八孔1102和第十孔78的结构简单,便于生产加工。并且,第七孔1101、第九孔921与第三紧固件922之间的连接方式,以及第八孔1102、第十孔78与第四紧固件79之间的连接方式简单、快捷、可靠性高,便于提高第二支架110与电器组件70的装配效率,以及第二支架110与导风部92以及电器组件70之间的连接可靠性,从而提高第二支架110对电器组件70的支撑可靠性。
图21为根据一些实施例的窗式空调器中第二支架的结构图。
在一些实施例中,如图18和图21所示,第二支架110还包括过线部1103。过线部1103设置在支撑本体1100的背离电器组件70的一侧(上侧),且朝靠近电器组件70的方向凹陷。窗式空调器100中多个部件之间的导线可以布设在过线部1103中,以方便走线。例如,第一导线111可以穿过过线部1103。
通过设置过线部1103,可以便于电器组件70和电机61之间的第一导线111的走线,避免第一导线111在第二支架110的表面滑动,防止第一导线111在第二支架110上因摩擦而破损,从而提高第一导线111的结构可靠性。
在一些实施例中,如图18和图21所示,第二支架110还包括挡线部1104和挡线区1105。挡线部1104设置在支撑本体1100的远离电机61的一侧(如右侧)。挡线部1104与支撑本体1100的远离电机61的一面(如右侧面)共同形成挡线区1105,且挡线区1105与过线部1103相连通。第一导线111可以在穿过挡线区1105后伸入过线部1103中,然后从过线部1103中伸出以与电机61相连。
挡线区1105可以对第一导线111进行整齐排布,提高第一导线111在窗式空调器100中走线的整齐度,便于窗式空调器100的装配,利于提高窗式空调器100中电路的完整性。
在一些实施例中,挡线部1104与支撑本体1100为一体件,以提高挡线区1105的结构稳定性和可靠性。
图22为根据一些实施例的窗式空调器中第二支架的俯视图。在一些实施例中,如图21和图22所示,挡线部1104包括第一子挡线部1106和第二子挡线部1107。
第一子挡线部1106与过线部1103在所述第二方向上的一端相对应,并且沿所述第三方向延伸。例如,第一子挡线部1106与过线部1103在所述第二方向上的一端(如后端)大致对齐。
第二子挡线部1107包括第一挡线段11071和第二挡线段11072。第一挡线段11071与过线部1103在所述第二方向上的另一端相对应,并且沿所述第三方向延伸。例如,第一挡线段11071与过线部1103在所述第二方向上的另一端(如前端)大致对齐。第二挡线段11072与第一挡线段11071的远离过线部1103的一端(如底端)相连,并且在所述第二方向上朝向第一子挡线部1106延伸。这样,第一子挡线部1106、第二子挡线部1107和支撑本体1100可以共同形成挡线区1105。
通过设置第一子挡线部1106和第二子挡线部1107,可以使挡线区1105在所述第二方向上对第一导线111进行限位,从而防止第一导线111在支撑本体1100的远离电机61的一侧前后晃动。并且,第一挡线段11071在所述第三方向上延伸,可以增加挡线部1104对挡线区1105中的第一导线111的导向长度,并增强挡线区1105的结构稳定性,提高挡线区1105对第一导线111的导向效果,从而提高第一导线111在挡线区1105的作用下走线的整齐度。
图23为根据一些实施例的窗式空调器中第二支架在另一视角下的结构图。
在一些实施例中,如图21和图23所示,第一子挡线部1106位于第二挡线段11072的背离电器组件70的一侧(如上方),并且与第二挡线段11072的远离第一挡线段11071的一端(如后端)间隔设置。这样,可以增加挡线部1104在所述第三方向上对第一导线111的导向长度,进一步提高挡线部1104对第一导线111的束线效果,从而提高第一导线111在支撑本体1100的一侧走线的整齐度。
在一些实施例中,如图21和图22所示,第二支架110还包括第一压板1108。第一压板1108设置在支撑本体1100的靠近电机61的一侧(如左侧),且第一压板1108的背离电器组件70的一面(如上表面)与支撑本体1100的背离电器组件70的一面(如上表面)大致平齐。第一压板1108被配置为限制第一导线111沿所述第三方向远离电器组件70的移动,以防止位于支撑本体1100的靠近电机61的一侧的第一导线111在所述第三方向上的位置,避免部分第一导线111高于第二支架110,影响窗式空调器100中其他部件的安装和工作。这样,可以提高第一导线111在第二支架110上走线的整齐度,便于第一导线111连接电器组件70以及电机61。
在一些实施例中,如图21至图23所示,第二支架110还包括第一限位部1109。第一限位部1109设置在支撑本体1100的靠近电机61的一侧,且与第一压板1108间隔设置。第一限位部1109位于第一压板1108的靠近导风部92的一侧(如后侧)。第一限位部1109被配置为固定减压管113(如图3所示),以使位于支撑本体1100的靠近电机61的一侧的减压管113排布整齐,并避免减压管113脱落。例如,第一限位部1109包括挂钩。这里,窗式空调器100还包括减压管113,减压管113设置在冷媒循环回路中,且被配置为降低流经减压管113的冷媒压力。这里,减压管113也可以称为毛细管,该减压管113可以为细而长的紫铜管。
第一限位部1109的结构简单,可以使位于支撑本体1100的靠近电机61的一侧的减压管113与支撑本体1100相贴合,防止减压管113与窗式空调器100中其他管路或导线缠绕。
当然,第一限位部1109并不局限于固定减压管113。在一些实施例中,第一限位部1109也可以被配置为固定第一导线111,以进一步提高第一导线111的走线的整齐度。
在一些实施例中,如图21至图23所示,第二支架110还包括第二压板1110。第二压板1110设置在支撑本体1100的远离电机61的一侧(如右侧),且与挡线部1104间隔设置。第二压板1110位于挡线部1104的靠近导风部92的一侧(如后侧),且第二压板1110的背离电器组件70的一面(如上表面)与支撑本体1100的上表面大致平齐。第二压板1110被配置为限制第二导线112(如图3所示)沿所述第三方向远离电器组件70的移动,以限制位于支撑本体1100的远离电机61的一侧的第二导线112在所述第三方向上的位置,避免部分第二导线112高于第二支架110,影响窗式空调器100中其他部件的安装和工作,从而提高第二导线112在第二支架110上走线的整齐度,便于窗式空调器100的装配和检修。
需要说明的是,窗式空调器100包括第二导线112,第二导线112可以被配置为检测室外换热器40的盘管401(如图3所示)温度。这里,第二导线112也可以被称为室外管温线。
在一些实施例中,如图21至图23所示,第二支架110还包括第二限位部1111。第二限位部1111设置在支撑本体1100的远离电机61的一侧,且与第二压板1110间隔设置,并且位于第二压板1110的远离挡线部1104的一侧(如后侧)。第二限位部1111被配置为固定第二导线112,以防止第二导线112在窗式空调器100中晃动,还可以使第二导线112避开电机61,防止电机61发热影响第二导线112的测温工作。第二限位部1111可以包括卡扣。
第二限位部1111与第二压板1110相互间隔设置,可以使第二导线112在支撑本体1100的远离电机61的一侧贴合第二支架110走线,提高第二导线112在窗式空调器100中走线的整齐度。而且,第二限位部1111还可以使第二导线112避让第一导线111,防止第二导线112与第一导线111缠绕,便于窗式空调器100中线路的整理和检修。
需要说明的是,第二支架110限位的导线并不局限于第一导线111和第二导线112,也可以为窗式空调器100中其他部件之间的导线或管路,本公开对此不作限制。
下面详细描述本公开一些实施例中的具有防水效果的电抗器120。
图24为根据一些实施例的窗式空调器的又一种局部结构图。图25为图24中窗式空调器在另一视角下的局部结构图。
在一些实施例中,如图2、图24和图25所示,窗式空调器100还包括电抗器120。电抗器120设置于壳体10内,且靠近第一支架90。电抗器120与电器组件70电连接。电抗器120被配置为滤除变频电路产生的高次谐波、以及电网流过的高次谐波,避免影响变频电路和电网,从而电抗器120可以起到双滤波作用。通过电抗器120的滤波作用,可以提高窗式空调器100中电路的稳定性,从而提高窗式空调器100工作的可靠性。
图26为根据一些实施例的窗式空调器中电抗器的结构图。图27为根据一些实施例的窗式空调器中电抗器的爆炸图。
在一些实施例中,如图26和图27所示,电抗器120包括电抗器主体121和电抗器盒122。电抗器盒122罩设电抗器主体121,以使电抗器主体121位于电抗器盒122内,从而防止水汽侵蚀电抗器主体121,提高电抗器主体121的结构可靠性,以及电抗器120的防水效果。
图28为根据一些实施例的风机组件中第二风扇的结构图。
在一些实施例中,电抗器盒122的至少部分与第二风扇63相对应。例如,如图28所示,第二风扇63包括风扇本体630和转动圈631。风扇本体630在电机61的驱动下旋转以扰动气流。转动圈631围绕风扇本体630设置,且与风扇本体630连接。转动圈631被配置为随着风扇本体630旋转将壳体10内的部分冷凝水洒向电抗器盒122。电抗器120可以靠近第二风扇63,从而转动圈631洒起的冷凝水可以落在电抗器盒122上。
这样,在窗式空调器100工作时,转动圈631可以将壳体10内部的冷凝水沿远离第二风扇63的方向向四周喷洒,至少部分飞洒的冷凝水可以洒至电抗器盒122并与电抗器盒122接触,从而实现电抗器盒122的散热,进而加快电抗器盒122的散热效率,提高窗式空调器100的工作性能。
在一些实施例中,如图26和图27所示,电抗器盒122包括盒本体1220、第一进风口1221和第一 出风口1222。盒本体1220的底部敞开以形成第一进风口1221,第一出风口1222设置在盒本体1220的远离第二风扇63的一侧(如前侧),且靠近盒本体1220的底部。第一出风口1222和第一进风口1221相连通。
这样,在电抗器120工作时,壳体10内的气流可以从第一进风口1221进入电抗器盒122内部,并从第一出风口1222流出。在此过程中,该气流可以带走电抗器主体121的热量,从而加快电抗器主体121的散热效率,提高窗式空调器100的工作性能。并且,该第一进风口1221的设置方式简单,可以简化电抗器盒122的结构设计。
需要说明的是,通过将第一进风口1221设置于盒本体1220的底部,以及将第一出风口1222设置于盒本体1220的远离第二风扇63的一侧,可以防止转动圈631洒起的冷凝水通过第一进风口1221和第一出风口1222进入电抗器盒122内部,而导致电抗器120损坏,从而可以提升电抗器120的防水效果。
在一些实施例中,如图2所示,室外进风口103位于壳体10在所述第一方向上的一侧侧壁(如左侧壁)上。在此情况下,如图24和图25所示,电抗器120邻近壳体10在所述第一方向上的一侧的所述侧壁设置。这样,可以通过室外进风口103处的气流带走电抗器120的热量,可以防止电抗器120的热量在窗式空调器100中传递,提高电抗器120的散热效率。
如图26和图27所示,电抗器盒122还包括第二出风口1223。第二出风口1223设置在盒本体1220的远离壳体10在所述第一方向上的所述侧壁的一侧(如右侧),且第二出风口1223与第一进风口1221相连通。
这样,通过第一进风口1221进入电抗器盒122内部的气流,还可以通过第二出风口1223流出,从而提高电抗器盒122的出风效率,提高电抗器120的散热效率。并且,该第二出风口1223可以与经第二风扇63喷洒的冷凝水的喷洒位置相错开,从而避免经转动圈631洒起的冷凝水通过第二出风口1223进入电抗器盒122内部,进而在提高电抗器120的散热效率的情况下,提高电抗器120的防水效果。
在一些实施例中,如图26和图27所示,电抗器盒122包括多个第一出风口1222和多个第二出风口1223。多个第一出风口1222沿所述第三方向(如电抗器120的高度方向)间隔设置,多个第二出风口1223沿所述第三方向间隔设置。这样,多个第一出风口1222和多个第二出风口1223可以分别出风,从而进一步地提高电抗器盒122的出风效率,提高电抗器120的散热效率。
在一些实施例中,多个第二出风口1223的数量大于多个第一出风口1222的数量。由于相较于第一出风口1222,第二出风口1223与室外进风口103的距离大于第一出风口1222与室外进风口103的距离,因此,通过设置多个第二出风口1223的数量大于多个第一出风口1222的数量,可以使第一出风口1222以及第二出风口1223的数量与第一出风口1222以及第二出风口1223与室外进风口103的距离相匹配,从而可以提高电抗器主体121的散热均匀性,进而提高电抗器120的工作性能。
在一些实施例中,如图26和图27所示,电抗器120还包括多个挡水部123,多个挡水部123分别罩设于第一出风口1222和第二出风口1223,且挡水部123的靠近壳体10底部的一侧(如下侧)敞开设置,以使来自第一出风口1222和第二出风口1223的气流可以朝向壳体10底部流出(如向下流出)。
由于转动圈631洒起的冷凝水部分可能落到第一出风口1222和第二出风口1223处,因此,通过设置挡水部123罩设第一出风口1222和第二出风口1223,并使挡水部123的底部敞开设置,可以使第一出风口1222和第二出风口1223朝向壳体10底部排出,从而在第一出风口1222和第二出风口1223可以正常出风的情况下,挡水部123可以阻挡冷凝水,防止冷凝水通过第一出风口1222和第二出风口1223进入电抗器盒122内部,导致电抗器主体121损坏。这样,可以提高电抗器120的防水效果,提高电抗器120工作的可靠性。
在一些实施例中,如图27所示,盒本体1220包括第一子本体1224和第二子本体1225。第一子本体1224和第二子本体1225为一体件。例如,盒本体1220通过拉伸工艺一体成型,以避免第一子本体1224和第二子本体1225之间产生拼接缝隙。第二子本体1225盖设于第一子本体1224的远离第一进风口1221的一端(如顶部)且与第一子本体1224固定连接。第一子本体1224的远离第二子本体1225的一端(如底端)敞开,以形成第一进风口1221。
在一些示例中,第二子本体1225与第一子本体1224焊接固定。这样,可以提高第二子本体1225和第一子本体1224之间的连接强度,提高电抗器盒122的结构可靠性,而且可以提高第一子本体1224和第二子本体1225连接处的紧密性,防止水汽通过第一子本体1224和第二子本体1225的连接处进入 电抗器盒122内部,从而提高电抗器120的防水性能。
图29为根据一些实施例的窗式空调器的又一种局部结构图。图30为图29中圈F的局部放大图。图31为根据一些实施例的窗式空调器中第一支架的结构图。
在一些实施例中,电抗器盒122的一部分与第一支架90相连。在一些示例中,如图29至图31所示,第一支架90还包括第一固定部923。第一固定部923设置在导风部92上,且靠近电抗器120。例如,第一固定部923设置在导风部92的底部,且邻近电抗器120。电抗器盒122还包括第二固定部1226。第二固定部1226设置在盒本体1220上,且与第一固定部923相连(如卡接)。
通过设置第一固定部923和第二固定部1226,可以便于导风部92和电抗器120之间的连接。并且,第一固定部923和第二固定部1226的结构简单,连接可靠,可以提高电抗器120的安装效率,并提高电抗器120与导风部92在窗式空调器100中的连接的稳定性和可靠性,从而可以提高窗式空调器100的结构可靠性。
图32为根据一些实施例的窗式空调器中安装架的结构图。
在一些实施例中,如图29和图32所示,窗式空调器100还包括安装架130。安装架130设置在壳体10的底部,且电抗器120设置在安装架130上。安装架130包括架本体1300和通风口131,通风口131设置在架本体1300上,且沿架本体1300的厚度方向(如上下方向)贯穿架本体1300。通风口131与壳体10底部间隔设置,且通风口131与第一进风口1221在所述第三方向上相对设置并相互连通。
通过设置安装架130,可以增强壳体10底部的结构强度,增强壳体10底部的支撑能力,从而增加壳体10对电抗器120的支撑强度,提高窗式空调器100的结构可靠性。并且,通过设置与壳体10底部间隔设置的通风口131,可以便于气流依次通过通风口131和第一进风口1221进入电抗器盒122内,防止安装架130影响电抗器盒122的进风,从而可以提高电抗器120的散热效果。
在一些实施例中,如图26和图32所示,安装架130还包括第一孔132,第一孔132设置在架本体1300上。电抗器盒122还包括第二孔1227,第二孔1227设置在盒本体1220的靠近安装架130的一端(如底端)。第一孔132和第二孔1227相对应且通过第五紧固件(如螺钉)固定连接,从而实现安装架130和电抗器盒122之间的固定连接。通过设置第一孔132和第二孔1227,可以便于电抗器120在壳体10内的安装,并提高电抗器120在窗式空调器100中结构的稳定性和可靠性。
在一些实施例中,如图26和图32所示,安装架130还包括第一定位部133,第一定位部133设置在架本体1300上,电抗器120还包括第二定位部1228,该第二定位部1228设置在电抗器主体121的靠近安装架130的一侧(如底侧)。第一定位部133和第二定位部1228相连,以实现电抗器120安装在安装架130时的定位。例如,第一定位部133和第二定位部1228中的一个为第三凸起,另一个为通孔,该第三凸起和该通孔相插接以实现定位。这样,可以便于将电抗器120正确安装在安装架130上,提高电抗器120在安装架130上的装配效率。
在一些实施例中,如图26和图32所述,安装架130还包括第十一孔134,该第十一孔134设置在架本体1300上。电抗器120还包括第十二孔1229,该第十二孔1229设置在电抗器主体121的靠近安装架130的一侧。第十一孔134和第十二孔1229可以通过第六紧固件135(如螺钉)相连,以实现电抗器主体121与安装架130的固定连接。
在上述实施方式的描述中,具体特征、结构、材料或者特点可以在任何一个或多个实施例或示例中以合适的方式结合。
本领域的技术人员将会理解,本公开的公开范围不限于上述具体实施例,并且可以在不脱离本公开的精神的情况下对实施例的某些要素进行修改和替换。本公开的范围受所附权利要求的限制。

Claims (20)

  1. 一种窗式空调器,包括:
    壳体,设置有室内进风口、室内出风口、室外进风口和室外出风口;
    室内换热器,设置在所述壳体内;
    室外换热器,设置在所述壳体内;所述窗式空调器的第一部分位于室内,所述窗式空调器的第一部分至少包括所述室内换热器、所述室内进风口和所述室内出风口;所述窗式空调器的第二部分位于室外,所述窗式空调器的第二部分至少包括所述室外换热器、所述室外进风口和所述室外出风口;
    压缩机,设置于所述壳体内,所述压缩机分别与所述室内换热器以及所述室外换热器相连通,以形成冷媒循环回路;
    风机组件,设置在所述壳体内,所述风机组件被配置为引入室内空气和室外空气,并排出热交换后的室内空气和室外空气:
    电抗器,设置于所述壳体内,包括电抗器主体和电抗器盒,所述电抗器盒罩设所述电抗器主体;所述电抗器盒包括:
    盒本体;
    第一进风口,所述盒本体的底部敞开以形成所述第一进风口;以及
    至少一个第一出风口,与所述第一进风口相连通;
    至少一个第二出风口,与所述第一进风口相连通,所述第二出风口设置在所述盒本体的远离所述壳体在第一方向的侧壁的一侧,所述第一出风口设置在所述盒本体的远离部分风机组件的一侧。
  2. 根据权利要求1所述的窗式空调器,还包括:
    风机组件,设置在所述壳体内,所述风机组件包括:
    电机,被配置为驱动第一风扇和第二风扇转动;
    所述第一风扇,设置在所述电机的一端,所述第一风扇被配置为将所述室内空气通过所述室内进风口引入所述壳体,并将热交换后的室内空气送入室内;以及
    所述第二风扇,设置在所述电机的另一端,所述第二风扇被配置为将所述室外空气通过所述室外进风口引入所述壳体,并将热交换后的室外空气送入室外;
    其中,所述电抗器盒的至少部分与所述第二风扇相对应,所述第二风扇包括:
    风扇本体;以及
    转动圈,围绕所述风扇本体设置,且与所述风扇本体连接,所述转动圈被配置为随着所述风扇本体旋转将所述壳体内的部分冷凝水洒向所述电抗器盒。
  3. 根据权利要求2所述的窗式空调器,其中,所述第一出风口设置在所述盒本体的远离所述第二风扇的一侧,所述室外进风口设置在所述壳体在所述第一方向上的所述侧壁,且所述电抗器邻近所述壳体在所述第一方向上的所述侧壁设置。
  4. 根据权利要求1至3中任一项所述的窗式空调器,其中,所述至少一个第一出风口包括多个第一出风口,所述多个第一出风口在所述电抗器的高度方向上间隔设置,所述至少一个第二出风口包括多个第二出风口,所述多个第二出风口在所述电抗器的高度方向上间隔设置,所述多个第二出风口的数量大于所述多个第一出风口的数量;所述第一方向垂直于所述电抗器的高度方向。
  5. 根据权利要求1至4中任一项所述的窗式空调器,其中,所述电抗器还包括多个挡水部,所述多个挡水部分别罩设于所述第一出风口和所述第二出风口,且所述挡水部的靠近所述壳体底部的一侧敞开设置,以使来自所述第一出风口和所述第二出风口的气流朝向所述壳体底部排出。
  6. 根据权利要求1至5中任一项所述的窗式空调器,还包括:
    风机组件,设置在所述壳体内,所述风机组件包括:
    电机,被配置为驱动第一风扇和第二风扇转动;
    所述第一风扇,设置在所述电机的一端,所述第一风扇被配置为将所述室内空气通过所述室内进风口引入所述壳体,并将热交换后的室内空气送入室内;以及
    所述第二风扇,设置在所述电机的另一端,所述第二风扇被配置为将所述室外空气通过所述室外进风口引入所述壳体,并将热交换后的室外空气送入室外;以及
    第一支架,设置在所述壳体内,所述第一支架包括:
    架主体,所述电机设置于所述架主体上;
    导风部,与所述架主体相连,所述第二风扇设置于所述导风部内;以及
    第一固定部,设置在所述导风部上,且靠近所述电抗器;
    其中,所述电抗器盒还包括第二固定部,所述第二固定部设置在所述盒本体上,且与所述第一固定部相连。
  7. 根据权利要求1至6中任一项所述的窗式空调器,还包括安装架,所述安装架设置在所述壳体底部,所述电抗器设置在所述安装架上,其中,所述安装架包括:
    架本体;以及
    通风口,设置在所述架本体上,且沿所述架本体的厚度方向贯穿所述架本体,所述通风口与所述壳体底部间隔设置,所述第一进风口和所述通风口在所述电抗器的高度方向上相对设置且相互连通。
  8. 根据权利要求7所述的窗式空调器,其中,所述安装架还包括第一孔,所述第一孔设置在所述架本体上;
    所述电抗器盒还包括第二孔,所述第二孔设置在所述盒本体的靠近所述安装架的一端,所述第一孔和所述第二孔对应且固定连接。
  9. 根据权利要求7或8所述的窗式空调器,其中,所述安装架还包括第一定位部,所述第一定位部设置在所述架本体上;
    所述电抗器还包括第二定位部,所述第二定位部设置在所述电抗器主体的靠近所述安装架的一侧,所述第一定位部和所述第二定位部相连,以实现所述电抗器的定位。
  10. 根据权利要求1至9中任一项所述的窗式空调器,其中,所述盒本体包括第一子本体和第二子本体,所述第二子本体盖设于所述第一子本体的远离所述第一进风口的一端,且与所述第一子本体固定连接。
  11. 根据权利要求1至10中任一项所述的窗式空调器,还包括电器组件,所述电器组件设置与所述壳体内,且与所述风机组件以及所述电抗器电连接,其中,所述电器组件设置在所述壳体底部上,且位于所述室内换热器在第一方向上的一侧,且与所述室内换热器间隔设置;以及
    所述窗式空调器还包括连接板,所述连接板设置在所述电器组件和所述室内换热器之间,且分别与所述电器组件以及所述室内换热器相连,所述连接板被配置为增强所述电器组件与所述室内换热器在所述第一方向上的连接强度。
  12. 根据权利要求11所述的窗式空调器,其中,所述连接板包括板本体,所述板本体包括:
    第一板部,与所述室内换热器相连;
    第二板部;以及
    第三板部,与所述电器组件相连;
    其中,所述第一板部、所述第二板部和所述第三板部依次相连,且所述第二板部设置在所述第一板部和所述第三板部之间,所述第三板部位于所述第一板部在第二方向上的一侧,且在所述第二方向上与所述第一板部间隔设置,所述第三板部比所述第一板部更靠近所述电器组件,所述第二方向垂直于所述第一方向。
  13. 根据权利要求12所述的窗式空调器,其中,
    所述连接板还包括:
    第三孔,设置在所述第一板部,且位于所述板本体的靠近所述室内换热器的一端,所述第三孔沿所述板本体的厚度方向贯穿所述板本体;以及
    第四孔,设置在所述第三板部,且位移所述板本体的靠近所述电器组件的一端,所述第四孔沿所述板本体的厚度方向贯穿所述板本体;
    所述窗式空调器还包括:
    固定片,设置在所述室内换热器的靠近所述电器组件的一端,所述固定片包括:
    片本体;以及
    第五孔,设置在所述片本体上,且沿所述片本体的厚度方向贯穿所述片本体,所述第三孔和所述第五孔相对应,且通过第一紧固件固定连接;以及
    连接座,设置在所述电器组件的靠近所述室内换热器的一侧,且与所述电器组件相连,所述连接座包括:
    座本体;以及
    第六孔,设置于所述座本体上,且沿所述座本体的厚度方向贯穿所述座本体,所述第四孔 和所述第六孔相对应,且通过第二紧固件固定连接。
  14. 根据权利要求1至13中任一项所述的窗式空调器,还包括:
    电器组件,设置与所述壳体内,且与所述风机组件以及所述电抗器电连接;
    风机组件,设置在所述壳体内,所述风机组件包括:
    电机,被配置为驱动第一风扇和第二风扇转动;
    所述第一风扇,设置在所述电机的一端,所述第一风扇被配置为将所述室内空气通过所述室内进风口引入所述壳体,并将热交换后的室内空气送入室内;以及
    所述第二风扇,设置在所述电机的另一端,所述第二风扇被配置为将所述室外空气通过所述室外进风口引入所述壳体,并将热交换后的室外空气送入室外;
    第一支架,设置在所述壳体内,所述第一支架包括:
    架主体,所述电机设置于所述架主体上;以及
    导风部,与所述架主体相连,所述第二风扇设置于所述导风部内,所述电器组件和所述导风部在第二方向上间隔设置;以及
    第二支架,设置于所述壳体内,且位于所述电机在第一方向上的一侧,所述第二支架连接在所述电器组件和所述导风部之间,所述第一方向垂直于所述第二方向。
  15. 根据权利要求14所述的窗式空调器,其中,
    所述第二支架包括:
    支撑本体;
    第七孔,设置在所述支撑本体的靠近所述导风部的一端;以及
    第八孔,设置在所述支撑本体的靠近所述电器组件的一端;
    所述导风部包括第九孔,所述第七孔和所述第九孔相对应,且通过第三紧固件固定连接;
    所述电器组件包括第十孔,所述第八孔和所述第十孔相对应,并且通过第四紧固件固定连接。
  16. 根据权利要求15所述的窗式空调器,还包括第一导线,所述第一导线连接在所述电器组件和所述电机之间,其中,所述第二支架还包括:
    过线部,设置在所述支撑本体的背离所述电器组件的一侧,且朝靠近所述电器组件的方向凹陷,所述第一导线穿设于所述过线部;
    挡线部,设置在所述支撑本体的远离所述电机的一侧,所述挡线部包括:
    第一子挡线部,与所述过线部在所述第二方向上的一端相对应,且在第三方向上延伸,所述第三方向垂直于所述第一方向和所述第二方向;以及
    第二子挡线部,包括:
    第一挡线段,与所述过线部在所述第二方向上的另一端相对应,且在所述第三方向上延伸;以及
    第二挡线段,与所述第一挡线段的远离所述过线部的一端相连,并且在所述第二方向上朝向所述第一子挡线部延伸;以及
    挡线区,所述第一子挡线部、所述第二子挡线部和所述支撑本体共同形成所述挡线区,所述挡线区与所述过线部相连通,所述第一导线穿过所述挡线区后伸入所述过线部中。
  17. 根据权利要求1至16中任一项所述的窗式空调器,还包括电器组件,所述电器组件设置与所述壳体内,且与所述风机组件以及所述电抗器电连接,其中,所述电器组件包括:
    盒体;
    盖体,盖设于所述盒体,且与所述盒体可拆卸地连接;
    第一连接部,与所述盒体相连;
    第二连接部,与所述盒体相连,所述第一连接部和第二连接部分别设置在所述盒体在第二方向上的两侧;
    第三连接部,与所述盖体相连;以及
    第四连接部,与所述盖体相连,所述第三连接部和第四连接部分别设置在所述盖体在所述第二方向上的两侧,所述第一连接部与所述第三连接部相连,所述第二连接部与所述第四连接部相连。
  18. 根据权利要求17所述的窗式空调器,其中,所述电器组件还包括:
    第五连接部,设置在所述盒体在所述第二方向上的一侧,且靠近所述盒体在第三方向上的一侧,所 述第三方向垂直于所述第二方向;以及
    第六连接部,设置在所述盖体在所述第二方向上的一侧,且靠近所述盖体在所述第三方向上的一侧,所述第五连接部和所述第六连接部相连,以实现所述盒体与所述盖体的预安装。
  19. 根据权利要求17或18所述的窗式空调器,其中,所述电器组件还包括:
    第七连接部,设置在所述盒体在第三方向上的一侧,且与所述盒体相连;所述第三方向垂直于所述第二方向;以及
    第八连接部,设置在所述盖体在所述第三方向上的一端,且与所述盖体相连,所述第八连接部位于所述盖体的内侧,并与所述第七连接部可滑动地连接。
  20. 根据权利要求17至19中任一项所述的窗式空调器,其中,所述电器组件还包括:
    第一壳体,罩设于所述盒体的外侧,所述第一壳体被配置为保护所述盒体,并隔离噪音和电磁干扰;以及
    第二壳体,罩设于所述盖体的外侧,所述第二壳体被配置为保护所述盖体,并隔离噪音和电磁干扰。
PCT/CN2023/123223 2023-02-17 2023-10-07 窗式空调器 WO2024169201A1 (zh)

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