Window type air conditioner
Patent Information
- Application Number
- CN202380071675.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2023-04-25
- Filing Date
- 2023-10-07
- Publication Date
- 2025-05-30
AI Technical Summary
Window air conditioners are prone to rainwater entering the reactor during heavy rains, causing damage to the reactor and failing to achieve a balance between heat dissipation and waterproofing.
A window air conditioner is designed by arranging multiple air outlets in the reactor box and connecting these air outlets with the air inlet so that rainwater cannot enter the inside of the reactor. At the same time, the condensed water sprayed by the rotating circle is used to accelerate the reactor. The heat dissipation efficiency of the device.
The waterproof effect and heat dissipation efficiency of the reactor are improved, ensuring normal operation in heavy rain weather, and enhancing the reliability of the air conditioner.
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Figure CN120077230A_ABST
Abstract
Description
Window air conditioner
[0001] This application claims priority to Chinese patent application No. 202320255707.1 filed on February 17, 2023, priority to Chinese patent application No. 202320967793.9 filed on April 25, 2023; priority to Chinese patent application No. 202320967702.1 filed on April 25, 2023; priority to Chinese patent application No. 202320967772.7 filed on April 25, 2023, the entire contents of which are incorporated herein by reference. Technical Field
[0002] The present disclosure relates to the technical field of household appliances, and in particular to a window air conditioner. Background Art
[0003] With the advancement of technology and improvements in living standards, window air conditioners are becoming increasingly popular. These compact air conditioners can be installed on windows, offering advantages such as minimal manufacturing materials and low cost. Furthermore, as all-in-one units, window air conditioners require less installation and technical expertise, making them popular in bedrooms, offices, and other settings.
[0004] Summary of the Invention
[0005] 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 disposed within the housing, and the outdoor heat exchanger is disposed within the housing. A first portion of the window air conditioner is located indoors, and includes at least the indoor heat exchanger, the indoor air inlet, and the indoor air outlet. A second portion of the window air conditioner is located outdoors, and includes at least the outdoor heat exchanger, the outdoor air inlet, and the outdoor air outlet. The compressor is disposed within the housing and is connected to the indoor heat exchanger and the outdoor heat exchanger, respectively, to form a refrigerant circulation loop. The fan assembly is disposed within the housing. The fan assembly is configured to draw in indoor air and outdoor air, and to discharge the indoor 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. BRIEF DESCRIPTION OF THE DRAWINGS
[0006] FIG1 is a structural diagram of a window air conditioner according to some embodiments;
[0007] FIG2 is a structural diagram of the window air conditioner in FIG1 from another perspective;
[0008] FIG3 is a partial structural diagram of a window type air conditioner according to some embodiments;
[0009] FIG4 is a partial structural diagram of a window air conditioner according to some embodiments from another perspective;
[0010] FIG5 is another partial structural diagram of a window type air conditioner according to some embodiments;
[0011] FIG6 is a structural diagram of an electrical component in a window air conditioner according to some embodiments;
[0012] FIG7 is a cross-sectional view along line EE in FIG6;
[0013] FIG8 is an exploded view of an electrical component in a window air conditioner according to some embodiments;
[0014] FIG9 is a partial exploded view of an electrical component in a window air conditioner according to some embodiments;
[0015] FIG10 is an exploded view of a first housing and a box body in an electrical component according to some embodiments;
[0016] FIG11 is an exploded view of a second housing and a cover in an electrical component according to some embodiments;
[0017] FIG12 is another partial structural diagram of a window air conditioner according to some embodiments;
[0018] FIG13 is an exploded view of an electrical component, a connection plate, and an indoor heat exchanger according to some embodiments;
[0019] FIG14 is a partial enlarged view of circle A in FIG13;
[0020] FIG15 is a partial enlarged view of circle B in FIG13;
[0021] FIG16 is a structural diagram of a connecting plate in a window type air conditioner according to some embodiments;
[0022] FIG17 is a structural diagram of a connecting plate in a window-type air conditioner according to some embodiments from another perspective;
[0023] FIG18 is another partial structural diagram of a window-type air conditioner according to some embodiments;
[0024] FIG19 is a partial enlarged view of circle C in FIG18 ;
[0025] FIG20 is a partial enlarged view of circle D in FIG18;
[0026] FIG21 is a structural diagram of a second bracket in a window-type air conditioner according to some embodiments;
[0027] FIG22 is a top view of a second bracket in a window air conditioner according to some embodiments;
[0028] FIG23 is a structural diagram of a second bracket in a window-type air conditioner according to some embodiments from another perspective;
[0029] FIG24 is another partial structural diagram of a window type air conditioner according to some embodiments;
[0030] FIG25 is a partial structural diagram of the window air conditioner in FIG24 from another perspective;
[0031] FIG26 is a structural diagram of a reactor in a window-type air conditioner according to some embodiments;
[0032] FIG27 is an exploded view of a reactor in a window air conditioner according to some embodiments;
[0033] FIG28 is a structural diagram of a second fan in a fan assembly according to some embodiments;
[0034] FIG29 is another partial structural diagram of a window type air conditioner according to some embodiments;
[0035] FIG30 is a partial enlarged view of circle F in FIG29;
[0036] FIG31 is a structural diagram of a first bracket in a window-type air conditioner according to some embodiments;
[0037] 32 is a structural diagram of a mounting bracket in a window air conditioner according to some embodiments. DETAILED DESCRIPTION
[0038] The following will clearly and completely describe some embodiments of the present disclosure in conjunction with the accompanying drawings. However, the described embodiments are only some embodiments of the present disclosure, not all embodiments. Based on the embodiments provided by the present disclosure, all other embodiments obtained by ordinary technicians in this field are within the scope of protection of the present disclosure.
[0039] Unless the context requires otherwise, throughout the specification and claims, the term "comprise" and its other forms, such as the third person singular form "comprises" and the present participle form "comprising", are to be interpreted as open and inclusive, that is, "including, but not limited to". In the description of the specification, the terms "one embodiment", "some embodiments", "exemplary embodiments", "example", "specific example" or "some examples" are intended to indicate that the particular features, structures, materials or characteristics associated with the embodiment or example are included in at least one embodiment or example of the present disclosure. The schematic representation of the above terms does not necessarily refer to the same embodiment or example. In addition, the particular features, structures, materials or characteristics may be included in any one or more embodiments or examples in any appropriate manner.
[0040] In the following, the terms "first" and "second" are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the number of the technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the features. In the description of the embodiments of the present disclosure, unless otherwise specified, "plurality" means two or more.
[0041] When describing some embodiments, the word "connected" and its derivatives may be used. The term "connected" should be understood broadly. For example, "connected" can mean fixed, removable, or integrated; it can be directly connected or indirectly connected through an intermediary. The embodiments disclosed herein are not necessarily limited to the contents of this document.
[0042] “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.
[0043] The use of "adapted to" or "configured to" herein is intended to be open and inclusive language that does not exclude devices adapted or configured to perform additional tasks or steps.
[0044] As used herein, "about," "substantially," or "approximately" includes the stated value and an average value that is within an acceptable range of deviation from the particular value as determined by one of ordinary skill in the art taking into account the measurements in question and the errors associated with the measurement of the particular quantity (i.e., the limitations of the measurement system).
[0045] As used herein, "parallel," "perpendicular," and "equal" include the stated conditions and conditions approximating the stated conditions 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).
[0046] For ease of description, unless otherwise specified, all references to up, down, left, right, front, and back in this disclosure are based on the window air conditioner's state 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 of the window air conditioner is the up and down direction. The left and right directions of the window air conditioner are opposite to the left and right directions of the user. For example, the left side of the window air conditioner is the user's right side, and the right side of the window air conditioner is the user's left side.
[0047] A window air conditioner is a small, integrated unit that can be installed on a window. Part of the unit is located indoors, while the other is located outdoors. The condenser and evaporator are arranged horizontally, regulating the indoor temperature. Furthermore, window air conditioners typically dissipate heat from their internal components by drawing in outdoor air. To facilitate heat dissipation from the reactor in a window air conditioner, the reactor is typically located near the window air conditioner's outdoor air inlet and outlet. Because the outdoor air inlet and outlet are located outdoors, rainwater can easily enter the window air conditioner through these vents during heavy rain, splashing onto the reactor. Because the reactor's heat dissipation vents are located near the outdoor vents, rainwater can easily enter the reactor through these vents, potentially damaging it. This results in poor waterproofing and an inability to achieve a balance between heat dissipation and waterproofing.
[0048] In order to solve the above problems, 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.
[0049] Figure 1 is a structural diagram of a window air conditioner according to some embodiments. Figure 2 is a structural diagram of the window air conditioner in Figure 1 from another perspective. As shown in Figures 1 and 2, window air conditioner 100 includes a housing 10. Housing 10 can cover components within window air conditioner 100, preventing them from being eroded by foreign matter and damaging them due to external impacts. This improves the structural reliability of the components within housing 10, thereby improving the structural reliability of window air conditioner 100 and preventing any impact on its operation.
[0050] As shown in FIG2 , 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, after heat exchange, flow into the indoor environment through the indoor air outlet 102. Outdoor air can enter the window air conditioner 100 through the outdoor air inlet 103 and, after heat exchange, flow into the outdoor environment through the outdoor air outlet 104. It should be noted that in FIG2 , the outdoor air outlet 104 of the housing 10 is positioned opposite the indoor air inlet 101 and the indoor air outlet 102.
[0051] Figure 3 is a partial structural diagram of a window type air conditioner according to some embodiments. Figure 4 is a partial structural diagram of a window type air conditioner according to some embodiments from another perspective.
[0052] As shown in Figures 3 and 4, the window air conditioner 100 further includes an indoor duct assembly 20, an indoor heat exchanger 30, and an outdoor heat exchanger 40. The indoor duct assembly 20, the indoor heat exchanger 30, and the outdoor heat exchanger 40 are each disposed within 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. For example, in the cooling mode of the window air conditioner 100, the indoor heat exchanger 30 operates as an evaporator, and the outdoor heat exchanger 40 operates as a condenser; in the heating mode of the window air conditioner 100, the indoor heat exchanger 30 operates as a condenser, and the outdoor heat exchanger 40 operates as an evaporator. It should be noted that in the window air conditioner 100, the indoor heat exchanger 30 and the outdoor heat exchanger 40 are arranged horizontally. For example, as shown in Figure 3, the indoor heat exchanger 30 and the outdoor heat exchanger 40 are arranged in a second direction (e.g., a front-to-back direction).
[0053] The indoor air duct assembly 20 includes an indoor air passage 21, which connects the indoor air inlet 101 and the indoor air outlet 102. Indoor air enters the window air conditioner 100 through the indoor air inlet 101 and flows along the indoor air passage 21 toward the indoor air outlet 102. After entering the window air conditioner 100, the indoor air flows along a predetermined path. This allows the indoor air to flow toward the indoor heat exchanger 30, where it undergoes heat exchange. After heat exchange, the indoor air flows into the indoor environment, thereby regulating the indoor ambient temperature and improving the operational reliability of the window air conditioner 100.
[0054] As shown in Figures 3 and 4, the window air conditioner 100 also includes a fan assembly 60, which is disposed within the housing 10. The fan assembly 60 includes a motor 61, a first fan 62, and a second fan 63, with the first fan 62 disposed within the indoor air duct 21. The first fan 62 and the second fan 63 are disposed at opposite ends of the motor 61 in the second direction and are connected to the rotating shafts at the opposite ends of the motor 61, respectively. The motor 61 is configured to drive the first fan 62 and the second fan 63 to rotate. This allows a single motor 61 to drive both the first fan 62 and the second fan 63, thereby reducing the number of components in the window air conditioner 100 and improving the structural compactness and size of the window air conditioner 100. Here, the second direction can be understood as the longitudinal direction of the window air conditioner 100.
[0055] When the window air conditioner 100 is in operation, 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 is driven by the first fan 62 and flows into the room through the indoor air outlet 102, thereby adjusting the indoor ambient temperature to meet the user's usage needs. The second fan 63 introduces outdoor air from 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 is driven by the second fan 63 and flows into the outside through the outdoor air outlet 104, thereby achieving heat exchange between the outdoor heat exchanger 40 and the outdoor air.
[0056] In this way, by setting up the fan assembly 60, 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.
[0057] As shown in Figures 3 and 4, the window air conditioner 100 further includes a compressor 50. The compressor 50 is disposed within the housing 10 and is configured to compress the refrigerant, thereby compressing the low-pressure refrigerant into a high-pressure refrigerant. The compressor 50 is connected to the indoor heat exchanger 30 and the outdoor heat exchanger 40, respectively. The compressor 50, the indoor heat exchanger 30, and the outdoor heat exchanger 40 form a refrigerant circulation loop.
[0058] The window air conditioner 100 achieves cooling or heating by executing a cooling or heating cycle using a compressor 50, an expansion valve, a condenser, and an evaporator. The compressor 50 compresses the gaseous refrigerant into a high-temperature, high-pressure gaseous refrigerant and discharges it. The discharged gaseous refrigerant flows into the condenser, which condenses it into a liquid phase, releasing the heat in the refrigerant into the surrounding environment through the condensation process. The expansion valve expands the high-temperature, high-pressure liquid refrigerant condensed in the condenser into a low-pressure liquid refrigerant. The expanded liquid refrigerant flows into the evaporator. The evaporator evaporates the expanded refrigerant, absorbing heat from the surrounding environment during the evaporation process, converting it into a low-temperature, low-pressure gaseous refrigerant. This low-temperature, low-pressure gaseous refrigerant returns to the compressor 50, completing one refrigerant cycle. Through this refrigerant cycle, the window air conditioner 100 can regulate the indoor ambient temperature.
[0059] FIG5 is another partial structural diagram of a window air conditioner according to some embodiments. In some embodiments, as shown in FIG5 , the window air conditioner 100 further includes a first bracket 90. The first bracket 90 is disposed within the housing 10 and includes a bracket body 91 and an air guide portion 92. The bracket body 91 and the air guide portion 92 are connected, 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. In addition, 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.
[0060] The second fan 63 is disposed within the air guide 92, which is configured to collect and guide airflow. Driven by the second fan 63, the outdoor air, which has undergone heat exchange in the outdoor heat exchanger 40, is rapidly gathered by the air guide 92 and directed outdoors. This accelerates the flow of heat exchange air within the window air conditioner 100, thereby improving the operating efficiency of the outdoor heat exchanger 40. Furthermore, by connecting the air guide 92 to the frame body 91, the structural stability and reliability of the air guide 92 within the window air conditioner 100 are enhanced.
[0061] In some embodiments, as shown in Figures 3 to 5, the window air conditioner 100 further includes an electrical component 70. The electrical component 70 is located in the housing 10 and is arranged at the bottom of the housing 10 to be fixedly connected to the bottom of the housing 10. Here, 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 the left and right direction) and is spaced apart from the indoor heat exchanger 30. In addition, the electrical component 70 and the air guide portion 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.
[0062] This facilitates installation of the indoor heat exchanger 30, the electrical assembly 70, and the air guide 92 within the window air conditioner 100, improving the compactness of the structure within the window air conditioner 100. This helps reduce the size of the window air conditioner 100 and facilitates production and transportation of the window air conditioner 100. Furthermore, by spacing the electrical assembly 70 from the indoor heat exchanger 30, interference between the electrical assembly 70 and the indoor heat exchanger 30 during operation can be avoided, thereby improving the operational reliability of the window air conditioner 100.
[0063] 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 and exchange heat with the indoor heat exchanger 30, and outdoor air can enter the window air conditioner 100 and exchange heat with the outdoor heat exchanger 40.
[0064] 3 , 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 achieving electrical connection between the electrical component 70 and the motor 61. Here, the first wire 111 may be referred to as a motor wire.
[0065] 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.
[0066] 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 wiring harness disarray.
[0067] Figure 6 is a structural diagram of an electrical component in a window air conditioner according to some embodiments. Figure 7 is a cross-sectional view taken along line EE in Figure 6. Figure 8 is an exploded view of an electrical component in a window air conditioner according to some embodiments. Figure 9 is a partial exploded view of an electrical component in a window air conditioner according to some embodiments.
[0068] In some embodiments, as shown in Figures 6 to 8, 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.
[0069] In some examples, as shown in Figures 7 to 9, the electrical component 70 further 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. Correspondingly, the electrical component 70 further 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).
[0070] For example, as shown in Figures 8 and 9, the first connecting portion 711 includes a first engaging groove, and the third connecting portion 721 includes a first engaging block. The first engaging block is located on the inner side of the cover 72, and the first engaging block engages with the first engaging groove. In this way, by embedding the first connecting portion 711 and the third connecting portion 721 within the electrical component 70, the flatness of the surface of the electrical component 70 can be improved, thereby preventing the first connecting portion 711 and the third connecting portion 721 from being worn due to being exposed on the surface of the electrical component 70, which would affect the structural reliability of the electrical component 70.
[0071] As shown in Figures 6 and 8, the second connecting portion 712 includes a first snap, and the fourth connecting portion 722 includes a second snap. The first snap is located outside the box body 71, and the second snap is located outside the cover 72, with the first snap engaging the second snap. Positioning the second connecting portion 712 outside the box body 71 and the fourth connecting portion 722 outside the cover 72 makes it easier for the installer to observe the positions of the second and fourth connecting portions 712, 722, facilitating installation.
[0072] In some embodiments, as shown in Figures 7 to 9, 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 spaced apart in a third direction (such as the up and down direction), and the plurality of third connection parts 721 are spaced apart 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.
[0073] In some embodiments, as shown in Figures 6 and 8, 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 spaced apart in the third direction, and the plurality of fourth connection parts 722 are spaced apart in the third direction, and the plurality of second connection parts 712 correspond to the plurality of fourth connection parts 722, respectively.
[0074] By providing multiple first connecting portions 711 and multiple third connecting portions 721, multiple second connecting portions 712, and multiple fourth connecting portions 722, the connection positions 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. Furthermore, the multiple first connecting portions 711 and multiple third connecting portions 721, and the multiple second connecting portions 712 and multiple fourth connecting portions 722 can be simultaneously correspondingly engaged, facilitating the assembly of the box body 71 and the cover body 72, thereby improving the assembly efficiency of the electrical component 70 and, in turn, improving the production efficiency of the window air conditioner 100.
[0075] In some embodiments of the present disclosure, 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 the multiple electrical components in the electrical component 70, thereby improving the working reliability of the electrical component 70. In addition, 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 facilitates the production and processing of the electrical component 70. The connection between the first connection part 711 and the third connection part 721, and the second connection part 712 and the fourth connection part 722 is simple and fast, which facilitates the production of the electrical component 70 and effectively improves the assembly efficiency of the electrical component 70. In addition, the connection between the first connection part 711 and the third connection part 721, and 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.
[0076] In some embodiments, as shown in Figure 8, the electrical component 70 further includes a fifth connection portion 713 and a sixth connection portion 723. The fifth connection portion 713 is provided on one side of the box body 71 in the second direction (such as the rear side), and is close to one side of the box body 71 in the third direction (such as the upper side), and the fifth connection portion 713 is connected to the box body 71. The sixth connection portion 723 is provided on one side of the cover body 72 in the second direction (such as the rear side), and is close to one side of the cover body 72 in the third direction (such as the upper side), 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.
[0077] For example, as shown in FIG8 , 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.
[0078] The provision of the fifth connecting portion 713 and the sixth connecting portion 723 facilitates the positioning of the box body 71 and the cover body 72 prior to assembly, allowing the installer to quickly confirm the installation orientation of the box body 71 and the cover body 72, thereby preventing the box body 71 and the cover body 72 from being installed in the reverse direction in the third orientation, which would affect the assembly efficiency of the electrical component 70. Furthermore, it also facilitates the installer's connection of the box body 71 and the cover body 72 to other structures in the third orientation. Furthermore, the simple structure of the fifth connecting portion 713 and the sixth connecting portion 723 facilitates the positioning of the box body 71 and the cover body 72 during installation.
[0079] In some embodiments, as shown in FIG8 , 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 (e.g., 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 on one end (e.g., the upper end) of the cover body 72 in the third direction and is connected to the cover body 72 and located on the inner side of the cover body 72. The eighth connection portion 725 is slidably connected to the seventh connection portion 715.
[0080] For example, the seventh 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, and the seventh connection portion 715 and the eighth connection portion 725 are engaged with each other.
[0081] The seventh connecting part 715 can guide the sliding of the eighth connecting part 725 on the upper side of the box body 71, thereby improving the reliability of the sliding of the eighth connecting part 725 on the upper side of the box body 71, thereby realizing the rapid alignment of the position of the box body 71 and the cover body 72, and facilitating the connection between the fifth connecting part 713 and the sixth connecting part 723.
[0082] In some embodiments, the electrical component 70 may include a plurality of seventh connection parts 715 and a plurality of eighth connection parts 725 , and the plurality of seventh connection parts 715 correspond to the plurality of eighth connection parts 725 , respectively.
[0083] FIG. 10 is an exploded view of a first housing and a box body in an electrical component according to some embodiments.
[0084] In some embodiments, as shown in FIG10 , the electrical assembly 70 further includes a first housing 73, which is disposed outside the housing 71. The first housing 73 is configured to protect the housing 71, isolate noise and electromagnetic interference between the electrical components in the electrical assembly 70 and the external environment, and prevent the electrical components in the electrical assembly 70 from being affected in terms of operation and operating efficiency.
[0085] In some examples, as shown in Figure 10, the first shell 73 includes a first body 730 and a first mounting portion 731, and the first mounting portion 731 is arranged 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 arranged on the box body 71 and is located on the 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 clamping) to achieve a fixed connection between the first shell 73 and the box body 71. For example, as shown in Figure 10, the first mounting portion 731 includes a second clamping groove, and the second mounting portion 714 includes a second clamping block, which is clamped to the second clamping groove.
[0086] The first mounting portion 731 and the second mounting portion 714 have a simple structure, a reliable connection, and are easy to manufacture and process. They can also improve the reliability of the connection between the first housing 73 and the box body 71, prevent the first housing 73 from falling off the box body 71, and thereby improve the reliability of the first housing 73's protective effect on the box body 71. Of course, in some embodiments, the first housing 73 may include multiple first mounting portions 731, and the electrical component 70 may include multiple second mounting portions 714. The multiple first mounting portions 731 are respectively connected to the multiple second mounting portions 714.
[0087] FIG. 11 is an exploded view of a second housing and a cover in an electrical component according to some embodiments.
[0088] In some embodiments, as shown in FIG11 , the electrical assembly 70 further includes a second housing 74, which is disposed outside the cover 72. The second housing 74 is configured to protect the cover 72, isolating the electrical components in the electrical assembly 70 from noise and electromagnetic interference from the external environment, thereby preventing the electrical components in the electrical assembly 70 from being affected in terms of operation and operating efficiency.
[0089] In some examples, as shown in FIG11 , the second housing 74 includes a second body 740 and a third mounting portion 741, wherein the third mounting portion 741 is disposed on the second body 740. The electrical component 70 further includes a fourth mounting portion 724, which is disposed on the cover 72 and is 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. For example, the third mounting portion 741 includes a third snap-fitting groove, and the fourth mounting portion 724 includes a third snap-fitting block, which snap-fits with the third snap-fitting groove.
[0090] The third mounting portion 741 and the fourth mounting portion 724 have a simple structure, reliable connection, and are easy to produce and process. They can also improve the reliability of the connection between the second housing 74 and the cover 72, preventing the second housing 74 from falling off the cover 72, thereby improving the reliability of the second housing 74's protective effect on the cover 72. Of course, in some embodiments, the second housing 74 may include multiple third mounting portions 741, and the multiple 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 multiple fourth mounting portions 724, and the multiple fourth mounting portions 724 are respectively arranged on both sides of the cover 72 in the second direction. The multiple third mounting portions 741 are respectively connected to the multiple fourth mounting portions 724.
[0091] In some embodiments, as shown in Figures 7 and 8, the electrical assembly 70 further includes an electrical control board 75, which is configured to control the operation of components within the window air conditioner 100. The electrical control board 75 is disposed in a receiving space 700 enclosed by the box body 71 and the cover body 72, so that the box body 71 and the cover body 72 can protect the electrical control board 75.
[0092] In some embodiments, as shown in Figures 8 and 9, the electrical assembly 70 further includes a heat sink 76. The heat sink 76 is disposed on a side (e.g., the left side) of the electrical control board 75 away from the cover 72 and is configured to dissipate heat generated by the electrical control board 75 during operation, thereby improving the operating efficiency of the electrical control board 75.
[0093] In this case, the box body 71 includes a housing portion 716 and a support portion 717. The radiator 76 is disposed in the housing portion 716, and the side of the housing portion 716 away from the cover 72 is open to expose a portion of the radiator 76. Thus, the heat dissipated by 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. For example, the housing portion 716 includes a groove or a through hole. The support portion 717 is disposed in the housing portion 716 to support the radiator 76, thereby improving the structural reliability of the radiator 76 in the electrical component 70. For example, the support portion 717 includes a reinforcing rib.
[0094] In some embodiments, as shown in FIG8 , the electrical assembly 70 further includes a sealing portion 760 disposed around the outer edge of the heat sink 76 . The sealing portion 760 is located between the electrical control board 75 and the housing 71 and abuts against the electrical control board 75 and the housing 71 to seal the gap between the electrical control board 75 and the housing 71. This prevents external water from entering the electrical control board 75 through the heat sink 76 and causing a short circuit in the electrical control board 75, thereby preventing the operation of the electrical assembly 70 from being affected and improving the reliability of the window air conditioner 100. For example, the sealing portion 760 may include a sealing ring or a sealing strip.
[0095] Figure 12 is another partial structural diagram of a window air conditioner according to some embodiments. Figure 13 is an exploded view of an electrical component, a connection plate, and an indoor heat exchanger according to some embodiments. Figure 14 is an enlarged view of a portion of circle A in Figure 13. Figure 15 is an enlarged view of a portion of circle B in Figure 13. Figure 16 is a structural diagram of a connection plate in a window air conditioner according to some embodiments.
[0096] In some embodiments, as shown in Figures 4, 12 and 13, 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 colliding with each other during the transportation and installation of the window air conditioner 100, thereby affecting the structure and function of the indoor heat exchanger 30 and the electrical component 70.
[0097] Furthermore, 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. In addition, the connecting plate 80 can provide a stable and reliable support force for the electrical component 70, preventing the electrical component 70 from shaking in the first direction, thereby improving the structural stability and operating reliability of the electrical component 70.
[0098] In some embodiments, as shown in Figures 13, 15, and 16, the connecting plate 80 includes a plate body 800 and a third hole 811. The third hole 811 is provided at one end (e.g., the left end) of the plate body 800 that is adjacent 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 (e.g., a screw). The third hole 811 and the fifth hole 311 may be through holes.
[0099] For example, as shown in Figures 13 and 15, the window air conditioner 100 also includes a fixing plate 31. The fixing plate 31 is provided 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 provided on the plate body 310 and passes through the plate body 310 along the thickness direction (such as the front-to-back direction) of the plate body 310. By providing the fixing plate 31 having the fifth hole 311 on the indoor heat exchanger 30, 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. In addition, the fifth hole 311 can be conveniently provided for easy processing.
[0100] In some examples, as shown in FIG13 , the window air conditioner 100 includes multiple fixing plates 31 spaced apart in the third direction. Accordingly, the connecting plate 80 may include multiple third holes 811 , each corresponding to one of the fixing plates 31 . Providing multiple fixing plates 31 increases the number of connection points between the connecting plate 80 and the indoor heat exchanger 30 , thereby enhancing the connection strength between the connecting plate 80 and the indoor heat exchanger 30 and improving the reliability and installation stability of the connection.
[0101] The third hole 811 and the fifth hole 311 have a simple structure, making them easy to manufacture and process. Furthermore, the connection between the third hole 811 and the fifth hole 311 is simple, which improves the assembly efficiency of the connecting plate 80 and the indoor heat exchanger 30. Furthermore, the secure connection between the third hole 811 and the fifth hole 311 by the first fastener 85 improves the connection reliability between the connecting plate 80 and the indoor heat exchanger 30, thereby increasing the reliability of the connecting plate 80's support for the indoor heat exchanger 30.
[0102] In some embodiments, as shown in Figures 13 and 16, the connecting plate 80 further includes a fourth hole 831. The fourth hole 831 is disposed at one end (e.g., the right end) of the plate body 800 near the electrical component 70. As shown in Figure 14, 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 (e.g., a screw). The fourth hole 831 and the sixth hole 771 may be through holes.
[0103] For example, as shown in Figures 13 and 14, the window air conditioner 100 also includes a connecting seat 77. The connecting seat 77 is arranged on a side of the electrical component 70 close to the indoor heat exchanger 30 (such as the left side) and is connected to the electrical component 70. The connecting 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 pass through the seat body 770 along the thickness direction (such as the front-to-back direction) of the seat body 770. The plurality of third positioning portions 772 are respectively arranged on both sides of the sixth hole 771 in the third direction. Correspondingly, 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 connecting seat 77 and the connecting plate 80. For example, the third positioning portion 772 includes a pin, and the fourth positioning portion 832 includes a through hole, and the pin is plugged into the through hole.
[0104] Thus, by providing the connection base 77 on the electrical component 70, the electrical component 70 can be easily connected to the connecting plate 80 while maintaining the functional and structural integrity of the electrical component 70. Furthermore, the fourth hole 831, the sixth hole 771, the third positioning portion 772, and the fourth positioning portion 832 have a simple structure, making them easy to manufacture. Furthermore, the third positioning portion 772 and the fourth positioning portion 832 are securely positioned with each other, facilitating the pre-installation of the connecting plate 80 and improving the efficiency of the installation of the connecting plate 80 and the electrical component 70.
[0105] Furthermore, the 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. The second fastener 86 securely connects the fourth hole 831 and the sixth hole 771, thereby improving the connection reliability between the connecting plate 80 and the electrical component 70 and thereby improving the support reliability of the connecting plate 80 for the electrical component 70.
[0106] In some embodiments, as shown in Figures 13 and 16 , the 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 being connected to the electrical component 70 and the other end being connected to the grounding portion 812. For example, the grounding portion 812 includes a screw hole that is threadedly connected to the other end of the grounding wire 84.
[0107] Grounding wire 84, a key component of window air conditioner 100, prevents short circuits and electric shocks to repair personnel when a circuit malfunction occurs. Furthermore, if a leakage occurs in electrical component 70, grounding wire 84 transfers the charge to connecting plate 80. Connecting plate 80 then transfers the charge to indoor heat exchanger 30, where it is then transferred through housing 10 to the exterior of window air conditioner 100. This prevents charge accumulation in electrical component 70, which could damage it. Furthermore, the provision of grounding portion 812 shortens the length of grounding wire 84 corresponding to electrical component 70, facilitating component installation in window air conditioner 100.
[0108] In some embodiments, as shown in Figures 13 and 16, the connecting plate 80 includes multiple grounding portions 812. The multiple grounding portions 812 are spaced apart in the third direction and located between the third hole 811 and the fourth hole 831. Accordingly, the window air conditioner 100 can include multiple grounding wires 84. Providing multiple spaced apart grounding portions 812 facilitates connection between the grounding wires 84 and the grounding portions 812, thereby preventing damage to the electrical components 70 due to leakage and improving the operating reliability of the window air conditioner 100.
[0109] In some embodiments, as shown in Figures 13 and 16, the connecting plate 80 further includes a grounding mark 813, which is disposed on the plate body 800 and spaced apart on one side of the grounding portion 812 near the third hole 811 or the fourth hole 831. The connecting plate 80 may include multiple grounding marks 813, each corresponding to a plurality of grounding portions 812. Providing the grounding marks 813 near the grounding portion 812 facilitates maintenance personnel in locating the grounding portion 812, preventing maintenance personnel from mistakenly connecting the grounding wire 84 to the grounding portion 812.
[0110] FIG. 17 is a structural diagram of a connecting plate in a window-type air conditioner from another perspective according to some embodiments.
[0111] 16 and 17 , the plate body 800 includes a first plate portion 81, a second plate portion 82, and a third plate portion 83. The first plate portion 81, the second plate portion 82, and the third plate portion 83 are sequentially connected, and the second plate portion 82 is disposed between the first plate portion 81 and the third plate portion 83.
[0112] The first plate portion 81 is connected to the indoor heat exchanger 30. For example, the third hole 811, the grounding portion 812 and the grounding mark 813 are respectively provided 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. 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. For example, the fourth hole 831 and the fourth positioning portion 832 are respectively provided 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.
[0113] By providing 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.
[0114] Of course, 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.
[0115] Figure 18 is another partial structural diagram of a window air conditioner according to some embodiments. Figure 19 is a partial enlarged view of circle C in Figure 18. Figure 20 is a partial enlarged view of circle D in Figure 18.
[0116] In some embodiments, as shown in Figures 5 and 18 , the window air conditioner 100 further includes a second bracket 110. The second bracket 110 is disposed within the housing 10 and is located on one side (e.g., the right side) of the motor 61 in the first direction. The second bracket 110 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 provides stable and reliable support for the electrical component 70 in the second direction, thereby enhancing the structural stability of the electrical component 70 in the window air conditioner 100 and preventing the electrical component 70 from shaking in the second direction during transportation of the window air conditioner 100.
[0117] If the window air conditioner 100 is accidentally dropped or struck by an external force during transportation and installation, the electrical assembly 70 may wobble, thereby affecting the structural stability of the electrical assembly 70 within the window air conditioner 100. If the electrical assembly 70 collides with surrounding components during this shaking process and becomes damaged, it will be difficult to detect the damage to the electrical assembly 70 in a timely manner, causing the window air conditioner 100 to malfunction. In some embodiments of the present disclosure, a second bracket 110 is connected between the air guide 92 and the electrical assembly 70 to prevent shaking of the electrical assembly 70 during transportation, thereby avoiding any impact on the structure and function of the electrical assembly 70 and improving the reliability of the window air conditioner 100 after installation.
[0118] In some embodiments, as shown in Figures 18 and 19, the second bracket 110 includes a support body 1100 and a seventh hole 1101. The seventh hole 1101 is located at one end (e.g., the rear end) of the support body 1100 near the air guide portion 92. The air guide portion 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 (e.g., a screw). The seventh hole 1101 and the ninth hole 921 may be through holes.
[0119] In some embodiments, as shown in Figures 18 and 20, the second bracket 110 further includes an eighth hole 1102. The eighth hole 1102 is disposed at an end (e.g., the front end) of the support body 1100 that is proximal 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 (e.g., a screw). The eighth hole 1102 and the tenth hole 78 may be through holes.
[0120] 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. In addition, 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 facilitates improving the assembly efficiency of the second bracket 110 and the electrical component 70, as well as the connection reliability between the second bracket 110, the air guide 92, and the electrical component 70, thereby improving the support reliability of the second bracket 110 for the electrical component 70.
[0121] FIG. 21 is a structural diagram of a second bracket in a window-type air conditioner according to some embodiments.
[0122] In some embodiments, as shown in Figures 18 and 21 , the second bracket 110 further includes a wire guide 1103. This wire guide 1103 is located on the side (upper side) of the support body 1100 facing away from the electrical component 70 and is recessed toward the electrical component 70. Wires between various components of the window air conditioner 100 can be routed through the wire guide 1103 to facilitate routing. For example, the first wire 111 can pass through the wire guide 1103.
[0123] By providing 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.
[0124] In some embodiments, as shown in Figures 18 and 21, 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 the side (such as the right side) of the support body 1100 away from the motor 61 form the wire blocking area 1105 together, 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.
[0125] The wire blocking area 1105 can neatly arrange the first wire 111 , thereby improving the neatness of the routing of the first wire 111 in the window air conditioner 100 , facilitating the assembly of the window air conditioner 100 , and improving the integrity of the circuit in the window air conditioner 100 .
[0126] In some embodiments, the wire stop portion 1104 and the support body 1100 are integrated into one piece to improve the structural stability and reliability of the wire stop area 1105 .
[0127] 22 is a top view of a second bracket in a window-type air conditioner according to some embodiments. In some embodiments, as shown in FIG21 and FIG22 , the line-blocking portion 1104 includes a first sub-line-blocking portion 1106 and a second sub-line-blocking portion 1107 .
[0128] 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. For example, 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.
[0129] The second sub-line portion 1107 includes a first line segment 11071 and a second line segment 11072. The first line segment 11071 corresponds to the other end of the line portion 1103 in the second direction and extends along the third direction. For example, the first line segment 11071 is roughly aligned with the other end (such as the front end) of the line portion 1103 in the second direction. The second line segment 11072 is connected to the end (such as the bottom end) of the first line segment 11071 away from the line portion 1103 and extends toward the first sub-line portion 1106 in the second direction. In this way, the first sub-line portion 1106, the second sub-line portion 1107 and the support body 1100 can together form the line blocking area 1105.
[0130] By providing the first sub-wire blocking portion 1106 and the second sub-wire blocking portion 1107, the wire blocking area 1105 can limit the first wire 111 in the second direction, thereby preventing the first wire 111 from rocking back and forth on the side of the support body 1100 away from the motor 61. In addition, 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.
[0131] FIG. 23 is a structural diagram of a second bracket in a window-type air conditioner according to some embodiments from another perspective.
[0132] In some embodiments, as shown in Figures 21 and 23, the first sub-wire blocking portion 1106 is located on a side (such as the upper side) of the second wire blocking segment 11072 that is away from the electrical component 70, and is spaced apart from an end (such as the rear end) of the second wire blocking segment 11072 that is away from the first wire blocking segment 11071. In this way, the guiding length of the wire blocking portion 1104 for the first wire 111 in the third direction can be increased, further improving the bundled wire effect of the wire blocking portion 1104 on the first wire 111, thereby improving the neatness of the routing of the first wire 111 on one side of the support body 1100.
[0133] In some embodiments, as shown in Figures 21 and 22, the second bracket 110 further includes a first pressing plate 1108. The first pressing plate 1108 is disposed on a side (e.g., the left side) of the support body 1100 close to the motor 61, and a side (e.g., the upper surface) of the first pressing plate 1108 facing away from the electrical component 70 is substantially flush with a side (e.g., 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, thereby preventing the first wire 111 located on the side of the support body 1100 close to the motor 61 from being positioned in the third direction, thereby preventing a portion 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, making it easier for the first wire 111 to connect to the electrical component 70 and the motor 61.
[0134] In some embodiments, as shown in Figures 21 to 23, the second bracket 110 further includes a first stopper 1109. The first stopper 1109 is disposed on a side of the support body 1100 near the motor 61 and is spaced apart from the first pressure plate 1108. The first stopper 1109 is located on a side of the first pressure plate 1108 near the air guide 92 (e.g., the rear side). The first stopper 1109 is configured to secure the pressure-reducing tube 113 (as shown in Figure 3) to ensure that the pressure-reducing tube 113 located on the side of the support body 1100 near the motor 61 is neatly arranged and prevent the pressure-reducing tube 113 from falling off. For example, the first stopper 1109 includes a hook. Here, the window air conditioner 100 further includes a pressure-reducing tube 113, which is disposed in the refrigerant circulation loop and is configured to reduce the pressure of the refrigerant flowing through the pressure-reducing tube 113. Here, the pressure-reducing tube 113 may also be referred to as a capillary tube and may be a thin, long copper tube.
[0135] The first limiting portion 1109 has a simple structure, which allows the pressure reducing pipe 113 located on the side of the support body 1100 close to the motor 61 to fit with the support body 1100, preventing the pressure reducing pipe 113 from being entangled with other pipes or wires in the window air conditioner 100.
[0136] Of course, the first limiting portion 1109 is not limited to fixing the pressure reducing tube 113. In some embodiments, the first limiting portion 1109 can also be configured to fix the first wire 111 to further improve the alignment of the first wire 111.
[0137] In some embodiments, as shown in Figures 21 to 23, the second bracket 110 further includes a second pressing plate 1110. The second pressing plate 1110 is disposed on a side of the support body 1100 away from the motor 61 (e.g., the right side) and is spaced apart from the wire blocking portion 1104. The second pressing plate 1110 is located on a side of the wire blocking portion 1104 that is close to the air guide portion 92 (e.g., the rear side), and a side of the second pressing plate 1110 that faces away from the electrical component 70 (e.g., the upper surface) 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 Figure 3) along the third direction away from the electrical component 70, so as to limit the position of the second wire 112 located on the side of the support body 1100 away from the motor 61 in the third direction, and avoid part of the second wire 112 being higher than the second bracket 110, affecting the installation and operation of other components in the window air conditioner 100, thereby improving the neatness of the routing of the second wire 112 on the second bracket 110, and facilitating the assembly and maintenance of the window air conditioner 100.
[0138] It should be noted that the window air conditioner 100 includes a second wire 112, which can be configured to detect the temperature of the coil 401 (as shown in FIG3 ) of the outdoor heat exchanger 40. Here, the second wire 112 can also be referred to as an outdoor pipe temperature wire.
[0139] In some embodiments, as shown in Figures 21 to 23, the second bracket 110 further includes a second limiting portion 1111. The second limiting portion 1111 is arranged 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.
[0140] The second stopper 1111 and the second pressure plate 1110 are spaced apart from each other, allowing the second wire 112 to be routed along the second bracket 110 on the side of the support body 1100 away from the motor 61, thereby improving the neatness of the routing of the second wire 112 within the window air conditioner 100. Furthermore, the second stopper 1111 allows the second wire 112 to avoid the first wire 111, preventing the second wire 112 from becoming entangled with the first wire 111, thereby facilitating the organization and maintenance of the wiring within the window air conditioner 100.
[0141] It should be noted that the wires limiting the second bracket 110 are not limited to the first wire 111 and the second wire 112, and can also be wires or pipes between other components in the window air conditioner 100, and the present disclosure does not limit this.
[0142] The reactor 120 with a waterproof effect in some embodiments of the present disclosure is described in detail below.
[0143] Figure 24 is another partial structural diagram of a window type air conditioner according to some embodiments. Figure 25 is a partial structural diagram of the window type air conditioner in Figure 24 from another perspective.
[0144] In some embodiments, as shown in Figures 2, 24, and 25, the window air conditioner 100 further includes a reactor 120. The reactor 120 is disposed within the housing 10 and is adjacent 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, thereby enabling the reactor 120 to perform a dual filtering function. Through the filtering function 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.
[0145] Figure 26 is a structural diagram of a reactor in a window type air conditioner according to some embodiments. Figure 27 is an exploded view of a reactor in a window type air conditioner according to some embodiments.
[0146] In some embodiments, as shown in Figures 26 and 27, 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.
[0147] FIG28 is a structural diagram of a second fan in a blower assembly according to some embodiments.
[0148] In some embodiments, at least a portion of the reactor box 122 corresponds to the second fan 63. For example, as shown in FIG28 , 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 some 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.
[0149] In this way, when the window air conditioner 100 is working, 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 onto the reactor box 122 and contact the reactor box 122, thereby realizing the heat dissipation of the reactor box 122, and then accelerating the heat dissipation efficiency of the reactor box 122, and improving the working performance of the window air conditioner 100.
[0150] In some embodiments, as shown in Figures 26 and 27, the reactor box 122 includes a box body 1220, a first air inlet 1221, and a first air outlet 1222. The bottom of the box body 1220 is open to form the first air inlet 1221. The first air outlet 1222 is provided on a side of the box body 1220 away from the second fan 63 (e.g., the front side) and near the bottom of the box body 1220. The first air outlet 1222 is connected to the first air inlet 1221.
[0151] Thus, when reactor 120 is operating, airflow within housing 10 can enter reactor box 122 through first air inlet 1221 and exit through first air outlet 1222. During this process, this airflow removes heat from reactor body 121, thereby accelerating the heat dissipation efficiency of reactor body 121 and improving the operating performance of window air conditioner 100. Furthermore, the simple configuration of first air inlet 1221 can simplify the structural design of reactor box 122.
[0152] It should be noted that by setting the first air inlet 1221 at the bottom of the box body 1220 and setting the first air outlet 1222 on the side of the box body 1220 away from the second fan 63, the condensed water spilled by the rotating circle 631 can be prevented from entering the interior of the reactor box 122 through the first air inlet 1221 and the first air outlet 1222, thereby causing damage to the reactor 120, thereby improving the waterproof effect of the reactor 120.
[0153] In some embodiments, as shown in FIG2 , the outdoor air inlet 103 is located on a sidewall (e.g., the left sidewall) of the housing 10 in the first direction. In this case, as shown in FIG24 and FIG25 , the reactor 120 is disposed adjacent to the sidewall of the housing 10 in the first direction. This allows the airflow at the outdoor air inlet 103 to remove heat from the reactor 120, preventing heat transfer from the reactor 120 within the window air conditioner 100 and improving the heat dissipation efficiency of the reactor 120.
[0154] 26 and 27 , the reactor box 122 further includes a second air outlet 1223 . The second air outlet 1223 is disposed on one side (e.g., the right side) of the box body 1220 away from the sidewall of the housing 10 in the first direction, and is communicated with the first air inlet 1221 .
[0155] In this way, 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 the heat dissipation efficiency of the reactor 120. Furthermore, 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. This further improves the heat dissipation efficiency of the reactor 120 and enhances the waterproof effect of the reactor 120.
[0156] In some embodiments, as shown in Figures 26 and 27 , 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 spaced apart along the third direction (e.g., the height direction of the reactor 120), and the plurality of second air outlets 1223 are spaced apart along the third direction. Thus, the plurality of first air outlets 1222 and the plurality of second air outlets 1223 can discharge air separately, thereby further improving the air outlet efficiency of the reactor box 122 and the heat dissipation efficiency of the reactor 120.
[0157] In some embodiments, 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 outlets 1223 and the outdoor air inlet 103 is greater than the distance between the first air outlets 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 outlets 1222 and the second air outlets 1223 can be matched with the distance between the first air outlets 1222 and the second air outlets 1223 and the outdoor air inlet 103, thereby improving the heat dissipation uniformity of the reactor body 121 and further improving the operating performance of the reactor 120.
[0158] In some embodiments, as shown in Figures 26 and 27, 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).
[0159] Since the condensed water splashed by the rotating circle 631 may fall into the first air outlet 1222 and the second air outlet 1223, the first air outlet 1222 and the second air outlet 1223 are covered by the water retaining portion 123, and the bottom of the water retaining portion 123 is opened, the first air outlet 1222 and the second air outlet 1223 can be discharged toward the bottom of the housing 10. Therefore, when the first air outlet 1222 and the second air outlet 1223 can discharge air normally, the water retaining portion 123 can block the condensed water and prevent the condensed water from entering the interior of the reactor box 122 through the first air outlet 1222 and the second air outlet 1223, thereby damaging 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.
[0160] In some embodiments, as shown in FIG27 , 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 integral. For example, 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.
[0161] In some examples, the second sub-body 1225 is welded to the first sub-body 1224. This improves the connection strength between the second sub-body 1225 and the first sub-body 1224, thereby improving the structural reliability of the reactor box 122. Furthermore, the tightness of the connection between the first sub-body 1224 and the second sub-body 1225 can be improved, preventing moisture from entering the interior of the reactor box 122 through the connection between the first sub-body 1224 and the second sub-body 1225, thereby improving the waterproof performance of the reactor 120.
[0162] Figure 29 is another partial structural diagram of a window type air conditioner according to some embodiments. Figure 30 is a partial enlarged view of circle F in Figure 29. Figure 31 is a structural diagram of a first bracket in a window type air conditioner according to some embodiments.
[0163] In some embodiments, a portion of the reactor box 122 is connected to the first bracket 90. In some examples, as shown in Figures 29 to 31, the first bracket 90 further includes a first fixing portion 923. The first fixing portion 923 is disposed on the air guide portion 92 and is proximate to the reactor 120. For example, 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 further includes a second fixing portion 1226. The second fixing portion 1226 is disposed on the box body 1220 and is connected to (e.g., snap-fitted to) the first fixing portion 923.
[0164] The provision of first fixing portion 923 and second fixing portion 1226 facilitates the connection between air guide portion 92 and reactor 120. Furthermore, first fixing portion 923 and second fixing portion 1226 have a simple structure and a reliable connection, thereby improving the installation efficiency of reactor 120 and enhancing the stability and reliability of the connection between reactor 120 and air guide portion 92 in window air conditioner 100, thereby improving the structural reliability of window air conditioner 100.
[0165] 32 is a structural diagram of a mounting bracket in a window air conditioner according to some embodiments.
[0166] In some embodiments, as shown in Figures 29 and 32, 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 is disposed on the frame body 1300 and extends through the frame body 1300 along its thickness (e.g., vertically). The vent 131 is spaced apart from the bottom of the housing 10 and is disposed opposite and in communication with the first air inlet 1221 in the third direction.
[0167] The provision of mounting bracket 130 enhances the structural strength of the bottom of housing 10 and its supporting capacity, thereby increasing the strength of housing 10 supporting reactor 120 and improving the structural reliability of window air conditioner 100. Furthermore, the provision of vent 131 spaced apart from the bottom of housing 10 facilitates airflow into reactor box 122 through vent 131 and first air inlet 1221, preventing mounting bracket 130 from interfering with air flow into reactor box 122, thereby improving heat dissipation from reactor 120.
[0168] In some embodiments, as shown in Figures 26 and 32, the mounting bracket 130 further includes a first hole 132, which is disposed on the bracket body 1300. The reactor box 122 further includes a second hole 1227, which is disposed on an end (e.g., the bottom end) of the box body 1220 near the mounting bracket 130. The first hole 132 and the second hole 1227 correspond to each other and are fixedly connected by a fifth fastener (e.g., a screw), thereby achieving a fixed connection between the mounting bracket 130 and the reactor box 122. The provision of the first hole 132 and the second hole 1227 facilitates the installation of the reactor 120 within the housing 10 and improves the structural stability and reliability of the reactor 120 in the window air conditioner 100.
[0169] In some embodiments, as shown in Figures 26 and 32, 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. For example, 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 into each other to achieve positioning. In this way, it is easy to correctly install the reactor 120 on the mounting frame 130, thereby improving the assembly efficiency of the reactor 120 on the mounting frame 130.
[0170] In some embodiments, as shown in Figures 26 and 32, the mounting bracket 130 further includes an eleventh hole 134, which is disposed on the bracket body 1300. The reactor 120 further includes a twelfth hole 1229, which is disposed on a side of the reactor body 121 adjacent to the mounting bracket 130. The eleventh hole 134 and the twelfth hole 1229 can be connected by a sixth fastener 135 (e.g., a screw) to achieve a fixed connection between the reactor body 121 and the mounting bracket 130.
[0171] In the description of the above embodiments, specific features, structures, materials or characteristics may be combined in an appropriate manner in any one or more embodiments or examples.
[0172] Those skilled in the art will understand that the scope of the present disclosure is not limited to the above specific embodiments, and that certain elements of the embodiments may be modified and replaced without departing from the spirit of the present disclosure. The scope of the present disclosure is limited by the appended claims.
Claims
1. A window air conditioner, comprising: The housing is provided with an indoor air inlet, an indoor air outlet, an outdoor air inlet and an outdoor air outlet; an indoor heat exchanger, disposed in the shell; an outdoor heat exchanger disposed in the housing; a first portion of the window air conditioner is located indoors, and the first portion of the window air conditioner at least includes the indoor heat exchanger, the indoor air inlet, and the indoor air outlet; a second portion of the window air conditioner is located outdoors, and the second portion of the window air conditioner at least includes the outdoor heat exchanger, the outdoor air inlet, and the outdoor air outlet; A compressor is disposed 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; A fan assembly is disposed in the housing, and the fan assembly is configured to introduce indoor air and outdoor air, and discharge the indoor air and outdoor air after heat exchange: The reactor is arranged in the housing, and comprises a reactor body and a reactor box, wherein the reactor box covers the reactor body; the reactor box comprises: Box body; A first air inlet, the bottom of the box body is open to form the first air inlet; and At least one first air outlet, connected to the first air inlet; 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.
2. The window air conditioner according to claim 1, further comprising: A fan assembly is arranged in the housing, and the fan assembly includes: A motor is configured to drive the first fan and the second fan to rotate; The first fan is disposed at one end of the motor, and the first fan is configured to introduce the indoor air into the housing through the indoor air inlet, and send the indoor air after heat exchange into the room; and The second fan is arranged at the other end of the motor, and the second fan is configured to introduce the outdoor air into the housing through the outdoor air inlet, and send the outdoor air after heat exchange to the outside; Wherein, at least a portion of the reactor box corresponds to the second fan, and the second fan includes: a fan body; and The rotating ring is arranged around the fan body and connected to the fan body. The rotating ring is configured to sprinkle part of the condensed water in the shell toward the reactor box as the fan body rotates.
3. The window air conditioner according to claim 2, wherein: The first air outlet is arranged on a side of the box body away from the second fan, the outdoor air inlet is arranged on the side wall of the shell in the first direction, and the reactor is arranged adjacent to the side wall of the shell in the first direction.
4. The window type air conditioner according to any one of claims 1 to 3, wherein: The at least one first air outlet includes a plurality of first air outlets, and the plurality of first air outlets are spaced apart in the height direction of the reactor; the at least one second air outlet includes a plurality of second air outlets, and the plurality of second air outlets are spaced apart in the height direction of the reactor, and the number of the plurality of second air outlets is greater than the number of the plurality of first air outlets; the first direction is perpendicular to the height direction of the reactor.
5. The window type air conditioner according to any one of claims 1 to 4, wherein: The reactor also includes a plurality of water retaining parts, which are respectively covered at the first air outlet and the second air outlet, and one side of the water retaining part close to the bottom of the shell is open so that the airflow from the first air outlet and the second air outlet is discharged toward the bottom of the shell.
6. The window air conditioner according to any one of claims 1 to 5, further comprising: A fan assembly is arranged in the housing, and the fan assembly includes: A motor is configured to drive the first fan and the second fan to rotate; The first fan is disposed at one end of the motor, and the first fan is configured to introduce the indoor air into the housing through the indoor air inlet, and send the indoor air after heat exchange into the room; and The second fan is disposed at the other end of the motor, and the second fan is configured to introduce the outdoor air into the housing through the outdoor air inlet, and send the outdoor air after heat exchange to the outside; and A first bracket is disposed in the housing, and the first bracket includes: A frame body, wherein the motor is arranged on the frame body; an air guide portion connected to the frame body, wherein the second fan is disposed in the air guide portion; and A first fixing portion is arranged on the air guide portion and is close to the reactor; Wherein, the reactor box further includes a second fixing portion, which is arranged on the box body and connected to the first fixing portion.
7. The window-type air conditioner according to any one of claims 1 to 6, further comprising a mounting frame, the mounting frame being disposed at the bottom of the housing, the reactor being disposed on the mounting frame, wherein: The mounting frame comprises: The frame body; and A vent is arranged on the frame body and penetrates the frame body along the thickness direction of the frame body. The vent is spaced apart from the bottom of the shell. The first air inlet and the vent are relatively arranged in the height direction of the reactor and are connected to each other.
8. The window air conditioner according to claim 7, wherein: The mounting frame further includes a first hole, the first hole being disposed on the frame body; The reactor box further includes a second hole, which is disposed at one end of the box body close to the mounting frame, and the first hole corresponds to the second hole and is fixedly connected.
9. The window type air conditioner according to claim 7 or 8, wherein: The mounting frame further comprises a first positioning portion, wherein the first positioning portion is disposed on the frame body; The reactor further includes a second positioning portion, which is disposed on a side of the reactor body close to the mounting frame, and the first positioning portion and the second positioning portion are connected to achieve positioning of the reactor.
10. The window air conditioner according to any one of claims 1 to 9, wherein: The box body includes a first sub-body and a second sub-body. The second sub-body is covered on an end of the first sub-body away from the first air inlet and is fixedly connected to the first sub-body.
11. The window air conditioner according to any one of claims 1 to 10, further comprising an electrical component, wherein the electrical component is disposed in the housing and is electrically connected to the fan component and the reactor, wherein: The electrical component is disposed on the bottom of the housing and is located on one side of the indoor heat exchanger in the first direction and is spaced apart from the indoor heat exchanger; and The window air conditioner also includes a connecting plate, which is arranged between the electrical component and the indoor heat exchanger and is connected to the electrical component and the indoor heat exchanger respectively. The connecting plate is configured to enhance the connection strength between the electrical component and the indoor heat exchanger in the first direction.
12. The window air conditioner according to claim 11, wherein: The connecting plate comprises a plate body, and the plate body comprises: A first plate portion connected to the indoor heat exchanger; a second plate portion; and A third plate portion connected to the electrical component; Among them, the first plate portion, the second plate portion and the third plate portion are connected in sequence, and the second plate portion is arranged between the first plate portion and the third plate portion, the third plate portion is located on one side of the first plate portion in the second direction, and is spaced apart from the first plate portion in the second direction, the third plate portion is closer to the electrical component than the first plate portion, and the second direction is perpendicular to the first direction.
13. The window air conditioner according to claim 12, wherein: The connecting plate also includes: A third hole is provided in the first plate portion and is located at one end of the plate body close to the indoor heat exchanger, the third hole penetrating the plate body along the thickness direction of the plate body; and a fourth hole, which is arranged on the third plate portion and is displaced from an end of the plate body close to the electrical component, and the fourth hole penetrates the plate body along the thickness direction of the plate body; The window air conditioner also includes: A fixing plate is arranged at one end of the indoor heat exchanger close to the electrical component, and the fixing plate comprises: The film body; and a fifth hole, which is provided on the sheet body and penetrates the sheet body along the thickness direction of the sheet body, the third hole and the fifth hole correspond to each other and are fixedly connected by a first fastener; and A connection base is arranged on a side of the electrical component close to the indoor heat exchanger and connected to the electrical component, and the connection base includes: a seat body; and The sixth hole is provided on the seat body and penetrates the seat body along the thickness direction of the seat body. Corresponding to the sixth hole, and fixedly connected by a second fastener.
14. The window air conditioner according to any one of claims 1 to 13, further comprising: An electrical component, disposed in the housing and electrically connected to the fan component and the reactor; A fan assembly is arranged in the housing, and the fan assembly includes: A motor is configured to drive the first fan and the second fan to rotate; The first fan is disposed at one end of the motor, and the first fan is configured to introduce the indoor air into the housing through the indoor air inlet, and send the indoor air after heat exchange into the room; and The second fan is arranged at the other end of the motor, and the second fan is configured to introduce the outdoor air into the housing through the outdoor air inlet, and send the outdoor air after heat exchange to the outside; A first bracket is disposed in the housing, and the first bracket includes: a frame body, the motor being arranged on the frame body; and an air guide portion connected to the frame body, the second fan being disposed in the air guide portion, the electrical component and the air guide portion being spaced apart in the second direction; and The second bracket is arranged in the shell and is located on one side of the motor in the first direction. The second bracket is connected between the electrical component and the air guide portion. The first direction is perpendicular to the second direction.
15. The window air conditioner according to claim 14, wherein: The second bracket comprises: Supporting the body; a seventh hole, disposed at one end of the support body close to the air guide portion; and an eighth hole, disposed at one end of the support body close to the electrical component; The air guide portion includes a ninth hole, the seventh hole corresponds to the ninth hole, and is fixedly connected by a third fastener; The electrical component includes a tenth hole, the eighth hole corresponds to the tenth hole, and is fixedly connected by a fourth fastener.
16. The window air conditioner according to claim 15, further comprising a first wire connected between the electrical component and the motor, wherein: The second bracket also includes: A wire-passing portion is arranged on a side of the support body away from the electrical component and is recessed toward the electrical component, and the first wire is passed through the wire-passing portion; The wire blocking portion is arranged on a side of the support body away from the motor, and the wire blocking portion includes: a first sub-line blocking portion, corresponding to one end of the line-passing portion in the second direction and extending in a third direction, wherein the third direction is perpendicular to the first direction and the second direction; and The second sub-line blocking part comprises: A first line segment, corresponding to the other end of the line-crossing portion in the second direction and extending in the third direction; and a second blocking line segment connected to an end of the first blocking line segment away from the line-passing portion and extending in the second direction toward the first sub-blocking line portion; and The first sub-wire blocking portion, the second sub-wire blocking portion and the supporting body together form the wire blocking portion, the wire blocking portion is connected to the wire passing portion, and the first wire passes through the wire blocking portion and then extends into the wire passing portion.
17. The window air conditioner according to any one of claims 1 to 16, further comprising an electrical component, wherein the electrical component is disposed in the housing and is electrically connected to the fan component and the reactor, wherein: The electrical components include: Box body; A cover body, which is disposed on the box body and is detachably connected to the box body; A first connecting portion connected to the box body; A second connection portion connected to the box body, wherein the first connection portion and the second connection portion are respectively arranged on both sides of the box body in the second direction; A third connecting portion connected to the cover body; and The fourth connection part is connected to the cover body, the third connection part and the fourth connection part are respectively arranged on both sides of the cover body in the second direction, the first connection part is connected to the third connection part, and the second connection part is connected to the fourth connection part.
18. The window air conditioner according to claim 17, wherein: The electrical component also includes: The fifth connecting portion is arranged on one side of the box body in the second direction and close to one side of the box body in the third direction. The third direction is perpendicular to the second direction; and The sixth connection portion is arranged on one side of the cover body in the second direction and close to one side of the cover body in the third direction. The fifth connection portion is connected to the sixth connection portion to achieve pre-installation of the box body and the cover body.
19. The window type air conditioner according to claim 17 or 18, wherein: The electrical component also includes: a seventh connecting portion, disposed on one side of the box body in a third direction and connected to the box body; the third direction is perpendicular to the second direction; and The eighth connection portion is disposed at one end of the cover body in the third direction and connected to the cover body. The eighth connection portion is located on the inner side of the cover body and is slidably connected to the seventh connection portion.
20. The window air conditioner according to any one of claims 17 to 19, wherein: The electrical component also includes: A first shell, which is disposed on the outer side of the box body, and is configured to protect the box body and isolate noise and electromagnetic interference; and The second shell is disposed on the outer side of the cover body, and the second shell is configured to protect the cover body and isolate noise and electromagnetic interference.