Floor air conditioner
The vertical air conditioner, with its triangular arc shell structure and multi-duct design, solves the limitations of traditional vertical air conditioners in terms of space utilization and airflow distribution, achieving more efficient space utilization and airflow optimization, and improving user comfort and cooling/heating performance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2026-04-03
AI Technical Summary
The shape of the casing of traditional vertical air conditioners has limitations in terms of space utilization and airflow distribution, making it difficult to make full use of indoor space and the airflow guidance is not flexible enough.
The vertical air conditioner design adopts a triangular arc shell structure, including a side shell and an end shell. The air inlet is located on the side shell, and the air outlet is located on the end shell and/or the side shell. The air outlet is adjusted by a lifting and rotating device. The internal impeller and baffle form multiple air ducts. The Reuleaux triangle is used to achieve flexible placement and airflow optimization.
It improves space utilization, reduces floor space, optimizes airflow efficiency, enhances cooling or heating effects, provides more uniform airflow distribution and user comfort, reduces noise, and adapts to different indoor layouts and installation requirements.
Smart Images

Figure CN224080307U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of air conditioning technology, and in particular to a vertical air conditioner. Background Technology
[0002] Traditional floor-standing air conditioners typically use a rectangular or cylindrical shell shape, which has certain limitations in terms of space utilization and airflow distribution. For example, rectangular air conditioners take up a large area and are difficult to fully utilize space when placed in indoor corners; while cylindrical air conditioners may not be able to meet diverse needs in terms of airflow guidance and diffusion. Utility Model Content
[0003] This utility model provides a vertical air conditioner, which aims to solve the problem that the outer shell shape of existing vertical air conditioners has limitations in space utilization and airflow distribution.
[0004] This utility model provides a vertical air conditioner, including an outer shell. The outer shell includes a side shell and end shells disposed at both ends of the side shell. The side shell includes a first side shell, a second side shell, and a third side shell that are connected in sequence and enclosed to form a triangular cross-section. The first side shell, the second side shell, and the third side shell are all outwardly convex arc-shaped shells.
[0005] Specifically, the triangle in question is a Reuleaux triangle.
[0006] Specifically, the vertical air conditioner further includes an air inlet and an air outlet. At least two air inlets are provided and are respectively provided on the second side shell and the third side shell. At least one air outlet is provided and is provided on the end shell and / or the first side shell.
[0007] Specifically, the end housing includes a top housing and a bottom housing, and the air outlet is disposed on the top housing, between the top housing and the first side housing, on the first side housing, between the first side housing and the bottom housing, or on the bottom housing.
[0008] Specifically, when the air outlet is located between the top outer shell and the first side outer shell, the top outer shell includes a top outer shell body and a lifting device. The lifting device includes a lifting drive and a lifting connector with one end connected to the lifting drive. The other end of the lifting connector is connected to one end of the top outer shell body. The lifting drive can drive one end of the top outer shell body to move closer to or further away from the first side outer shell through the lifting connector to close or open the air outlet.
[0009] Specifically, when the air outlet is located on the bottom outer shell, the bottom outer shell includes a bottom outer shell body and a rotating device. One side of the bottom outer shell body is connected to the first side outer shell. The air outlet is located on one side of the bottom outer shell body. The rotating device includes a rotating drive component located on the bottom outer shell body and a rotating plate connected to the rotating drive component. The rotating plate is located at the air outlet. The rotating drive component drives the rotating plate to rotate, thereby opening or closing the air outlet.
[0010] Specifically, the air outlets are located on both sides of the first side shell, and air guide plates are provided on the air outlets.
[0011] Specifically, the vertical air conditioner also includes a fan wheel and multiple baffles disposed inside the outer casing. The multiple baffles are distributed on both sides and the front end of the air outlet side of the fan wheel to form at least two air ducts.
[0012] Specifically, the plurality of baffles includes a first baffle, a second baffle, and a third baffle. The first baffle and the second baffle are respectively disposed on both sides of the air outlet side of the impeller, the third baffle is disposed at the front end of the air outlet side of the impeller, and the air outlet is disposed between the first baffle and the third baffle and between the second baffle and the third baffle.
[0013] Specifically, the first baffle is disposed near the second side housing, and the second baffle is disposed near the third side housing;
[0014] A first diverter is provided between the first baffle and the second side housing, and / or a second diverter is provided between the second baffle and the third side housing.
[0015] This utility model provides a vertical air conditioner, including a housing. The housing includes side housings and end housings disposed at both ends of the side housings. The side housings include a first side housing, a second side housing, and a third side housing connected sequentially and forming a triangular cross-section. The first, second, and third side housings are all outwardly convex arc-shaped shells. This embodiment uses a triangular structure for the housing of the vertical air conditioner. Compared to traditional cuboids or cylinders, this structure is more flexible in terms of space utilization and can be placed in different locations indoors, such as corners, reducing the floor space required. Furthermore, the arc-shaped shell design helps guide airflow, reduces airflow resistance on the housing surface, and improves airflow efficiency. Attached Figure Description
[0016] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 A schematic diagram of the structure of a vertical air conditioner provided for an embodiment of this utility model;
[0018] Figure 2 A front view of a vertical air conditioner provided for an embodiment of this utility model;
[0019] Figure 3 A side view of a vertical air conditioner provided for an embodiment of this utility model;
[0020] Figure 4 A rear view of a vertical air conditioner provided for an embodiment of this utility model;
[0021] Figure 5 for Figure 2 Cross-sectional structural diagram of AA;
[0022] Figure 6 This is a schematic diagram of the air outlet of a vertical air conditioner provided for an embodiment of this utility model.
[0023] Explanation of the markings in the image:
[0024] 10. Outer shell; 11. First side outer shell; 12. Second side outer shell; 13. Third side outer shell; 14. Top outer shell; 141. Top outer shell body; 15. Bottom outer shell; 151. Rotating plate; 16. Air inlet; 17. Air outlet; 18. Air guide plate; 19. Fan wheel; 20. First baffle; 21. Second baffle; 22. Third baffle; 23. Second distributor. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0026] It should be understood that, when used in this specification and the appended claims, the terms "comprising" and "including" indicate the presence of the described features, integrals, steps, operations, elements and / or components, but do not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components and / or collections thereof.
[0027] It should also be understood that the terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of the invention. As used in this specification and the appended claims, the singular forms “a,” “an,” and “the” are intended to include the plural forms unless the context clearly indicates otherwise.
[0028] It should also be further understood that the term "and / or" as used in this specification and the appended claims refers to any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.
[0029] Please see Figure 1-4 This utility model provides a vertical air conditioner, including a housing 10. The housing 10 includes a side housing and end housings disposed at both ends of the side housing. The side housing includes a first side housing 11, a second side housing 12 and a third side housing 13 connected in sequence and forming a triangular cross-section. The first side housing 11, the second side housing 12 and the third side housing 13 are all outwardly convex arc-shaped shells.
[0030] In this embodiment, the side shells can be manufactured using high-strength plastic material through injection molding. The connection points of the first side shell 11, the second side shell 12, and the third side shell 13 can be connected using a hot-melt welding process to ensure the strength and sealing of the connection. For example, one end of the first side shell 11 is tightly connected to one end of the second side shell 12 by hot-melt welding, the other end of the second side shell 12 is similarly connected to one end of the third side shell 13 by hot-melt welding, and the other end of the third side shell 13 is then welded to the other end of the first side shell 11, forming a complete triangular side shell structure. In specific implementations, the side shells can also be made of metal materials such as aluminum alloy and manufactured using an extrusion molding process. In terms of connection methods, in addition to hot-melt welding, bolt connections can also be used. Corresponding bolt holes are provided at the connection points between adjacent side shells, and the first side shell 11, the second side shell 12, and the third side shell 13 are fastened together by bolts. The casing 10 of the vertical air conditioner in this embodiment adopts a unique structural design. The side casings include a first side casing 11, a second side casing 12, and a third side casing 13, which are connected in sequence and form a triangular cross-section. All three side casings are outwardly convex arc-shaped shells. Compared with the traditional cuboid or cylinder, setting the casing 10 of the vertical air conditioner as a triangular structure is more flexible in terms of space utilization. It can be placed in a corner or other locations, reducing the floor space occupied. Moreover, the arc-shaped shell design helps to guide airflow, reduce airflow resistance on the surface of the casing 10, and improve airflow efficiency.
[0031] When the air conditioner is running, air enters from the outside and flows more smoothly to the internal air inlet 16, guided by the curved side shell. Due to the special shape of the curved shell, the airflow on the surface of the shell 10 is more stable, reducing turbulence. This shell 10 structural design not only optimizes space utilization, allowing placement in narrow spaces such as corners, effectively saving indoor space, but also improves the air intake efficiency of the air conditioner by guiding airflow through the curved side shell, thereby enhancing the overall cooling or heating performance.
[0032] Specifically, the triangle is the Reuleaux triangle.
[0033] In this embodiment, the Reuleaux triangle is a special type of triangle. It is formed by drawing arcs with the vertices of an equilateral triangle as centers and the sides of the equilateral triangle as radii. The curvilinear triangle formed by these three arcs is called the Reuleaux triangle. The Reuleaux triangle has the property of equal width, meaning it has the same height in all directions, allowing it to rotate freely between two parallel lines at a distance equal to the radius of its arcs (i.e., the side length of the equilateral triangle). These characteristics of the Reuleaux triangle make the vertical air conditioner more unique in appearance and provide better stability during rotation and other operations. Because the Reuleaux triangle has the same width in all directions, floor-standing air conditioners can be placed more flexibly in different locations indoors, such as in corners or against walls, freeing up more living space. They can also be placed at multiple angles to adapt to different indoor layouts and installation needs. Furthermore, the symmetry and streamlined design of the Reuleaux triangle helps optimize the internal air duct layout, improving air circulation efficiency and thus enhancing cooling or heating effects. It also achieves a more uniform airflow distribution, reducing indoor temperature differences and improving user comfort. In addition, the Reuleaux triangle's structural design effectively disperses and absorbs vibrations, reducing operating noise and providing a quieter operating environment. At the same time, this design is easy to install, reducing installation time and costs.
[0034] In practical use, if the vertical air conditioner has a rotation function, the Reuleaux triangle shell 10 can ensure that its spatial relationship with the surrounding environment remains relatively stable during the rotation process, and will not interfere with surrounding objects due to changes in the rotation angle.
[0035] Specifically, such as Figure 3-6 As shown, the vertical air conditioner also includes an air inlet 16 and an air outlet 17. At least two air inlets 16 are provided and are respectively provided on the second side housing 12 and the third side housing 13. At least one air outlet 17 is provided and is provided on the end housing and / or the first side housing 11.
[0036] In this embodiment, air inlets 16 are located on the second side casing 12 and the third side casing 13, allowing at least two air inlets 16 to draw in air from different directions, increasing the air intake volume. Air outlets 17 are located at different positions on the end casing and / or the first side casing 11, enabling the regulated air to be delivered to suitable locations according to the indoor space layout and user needs, improving the uniformity of indoor air conditioning. In specific implementation, the vertical air conditioner operates as follows: when the vertical air conditioner is running in cooling or heating mode, indoor air is drawn into the unit through the air inlets 16 located on the second side casing 12 and the third side casing 13. After internal heat exchange, the air is discharged from the air outlets 17 located on the end casing and / or the first side casing 11, achieving indoor air circulation and regulation. This embodiment, by setting air inlets 16 on both sides and air outlets 17 at different positions, improves the air intake volume and circulation efficiency, allowing the indoor air to be regulated to a suitable temperature and humidity more quickly.
[0037] In practical implementation, in order to ensure that the airflow enters the interior of the vertical air conditioner evenly and smoothly, a grille can be installed at the air inlet 16. The grille structure can play a preliminary guiding role in the incoming airflow and assist the curved side shell in further optimizing the airflow direction, thereby improving air intake efficiency and stability.
[0038] Specifically, such as Figure 6 As shown, the end housing includes a top housing 14 and a bottom housing 15. The air outlet 17 is disposed on the top housing 14, between the top housing 14 and the first side housing 11, on the first side housing 11, between the first side housing 11 and the bottom housing 15, or on the bottom housing 15.
[0039] In this embodiment, to adjust the air outlet pattern of the vertical air conditioner and meet the usage habits of different users, the air outlet 17 is positioned in different locations to achieve airflow in different directions and angles, thereby improving the flexibility of air conditioning. When the air outlet 17 is located on the top outer casing 14, air is discharged upwards, suitable for regulating the air in the upper part of the room; when the air outlet 17 is located between the top outer casing 14 and the first side outer casing 11, air is discharged at a certain angle; when the air outlet 17 is located on the first side outer casing 11, air is discharged to the side; when the air outlet 17 is located between the first side outer casing 11 and the bottom outer casing 15, air is discharged diagonally downwards or upwards; when located on the bottom outer casing 15, air is discharged downwards or upwards. Users can select different positions of the air outlet 17 to achieve the best air conditioning effect according to actual needs. This embodiment increases the diversity of air outlet patterns, allowing users to flexibly select the air outlet 17 according to the indoor space layout, their own location, and actual needs, enabling the vertical air conditioner to better adapt to different usage scenarios and improving user comfort.
[0040] Specifically, such as Figure 6 As shown, when the air outlet 17 is located between the top housing 14 and the first side housing 11, the top housing 14 includes a top housing body 141 and a lifting device. The lifting device includes a lifting drive and a lifting connector with one end connected to the lifting drive. The other end of the lifting connector is connected to one end of the top housing body 141. The lifting drive can drive one end of the top housing body 141 to move closer to or further away from the first side housing 11 through the lifting connector to close or open the air outlet 17.
[0041] In this embodiment, when the air outlet 17 is located between the top outer shell 14 and the first side outer shell 11, the top outer shell 14 adopts a structural design including the top outer shell body 141 and a lifting device. Specifically, one end of the top outer shell 14 and the first side outer shell 11 are openable and closable. When one end of the top outer shell 14 and the first side outer shell 11 are closed, the air outlet 17 is closed. When one end of the top outer shell 14 and the first side outer shell 11 are opened, the air outlet 17 is formed. To achieve the above structural design, the other end of the top outer shell 14 and the second side outer shell 12 and / or the third side outer shell 13 can be set as a hinged structure, so that one end of the top outer shell 14 can be opened or closed relative to the first side outer shell 11.
[0042] The lifting drive component in the lifting device drives one end of the top outer casing 141 to move closer to or further away from the first side casing 11 via the lifting connector, thereby closing or opening the air outlet 17. This design allows the air outlet 17 to be closed when the vertical air conditioner does not need to output air, thus preventing dust and other impurities from entering the interior of the vertical air conditioner. Simultaneously, it allows for flexible control of the opening of the air outlet 17 when air output is required. In specific implementations, the lifting drive component can be a small DC motor, fixed inside the top outer casing 141 with bolts. The lifting connector uses a stainless steel connecting rod, with one end connected to the output shaft of the lifting drive component via a pin, and the other end connected to one end of the top outer casing 141 via a pin. A sealing rubber strip is provided at the connection between the top outer casing 141 and the first side casing 11 to ensure the airtightness when the air outlet 17 is closed. The implementation process of this embodiment is as follows: when the air outlet 17 needs to be opened, the lifting drive component is activated, driving the top outer casing 141 to move via the lifting connector, causing one end of the top outer casing 141 to move away from the first side casing 11, thereby opening the air outlet 17. When it is necessary to close the air outlet 17, the lifting drive rotates in reverse, causing one end of the top outer shell 141 to approach the first side outer shell 11, thereby closing the air outlet 17.
[0043] Specifically, such as Figure 6As shown, when the air outlet 17 is disposed on the bottom housing 15, the bottom housing 15 includes a bottom housing body and a rotating device. One side of the bottom housing body is connected to the first side housing 11. The air outlet 17 is disposed on one side of the bottom housing body. The rotating device includes a rotating drive component disposed on the bottom housing body and a rotating plate 151 connected to the rotating drive component. The rotating plate 151 is located at the air outlet 17. The rotating drive component drives the rotating plate 151 to rotate, so as to open or close the air outlet 17.
[0044] In this embodiment, when the air outlet 17 is located on the bottom housing 15, the bottom housing 15 adopts a structural design including a bottom housing body and a rotating device. The rotating drive in the rotating device drives the rotating plate 151 to rotate, thereby opening or closing the air outlet 17. This design also prevents dust and other impurities from entering when the vertical air conditioner is not in use, and adjusts the size and direction of the airflow by controlling the rotation angle of the rotating plate 151 when airflow is needed. In specific implementation, when the air outlet 17 needs to be opened, the rotating drive (such as a stepper motor) starts, driving the rotating plate 151 to rotate around the connecting shaft with the bottom housing body, thereby opening the air outlet 17. By controlling the rotation angle of the rotating drive, the rotation angle of the rotating plate 151 can be adjusted, thereby controlling the size of the airflow. When the air outlet 17 needs to be closed, the rotating drive reverses its rotation, driving the rotating plate 151 back to its original position, closing the air outlet 17. Furthermore, when controlling the rotation angle of the rotating plate 151, the rotating plate 151 can be controlled to rotate towards the inside or outside of the outer casing 10. Preferably, the rotating plate 151 is controlled to rotate towards the inside of the outer casing 10 to achieve the effect of the rotating plate 151 folding inward (see reference). Figure 6 (b) of the above describes a design that allows the air outlet 17 to be opened without taking up indoor space. In implementation, the bottom outer casing consists of two parts: a base plate and a side plate, forming an L-shaped structure. The side plate is connected to the first side casing 11 and is on the same plane. The rotating plate 151 and the air outlet 17 are both located on the side plate. From the perspective of the vertical air conditioner as a whole, if the side plate is considered part of the first side casing 11, then the air outlet 17 can also be considered to be located on the first side casing 11 and / or between the first side casing 11 and the bottom outer casing 15.
[0045] Specifically, such as Figure 2 As shown, air outlets 17 are located on both sides of the first side housing 11, and air guide plates 18 are provided on the air outlets 17.
[0046] In this embodiment, in order to better control the air outlet direction of the vertical air conditioner, air outlets 17 can be provided on both sides of the first side outer casing 11, and air guide plates 18 can be provided on the air outlets 17. Figure 2 When the air guide plate 18 is in the closed state, it covers the air outlet 17, so Figure 2(Air outlet 17 is not marked). The air guide plate 18 can be adjusted according to user needs to guide air in a specific direction. When air needs to be guided to the left, adjust the air guide plate 18 to tilt to the left, so that the air discharged from the air outlet 17 flows to the left; when air needs to be guided to the right, adjust the air guide plate 18 to tilt to the right, so that the air flows to the right. By controlling the air outlet direction through the air guide plate 18, users can accurately deliver the adjusted air to the required location according to their own needs, improving the air conditioning effect and user comfort.
[0047] Specifically, such as Figure 5 As shown, the vertical air conditioner also includes a fan wheel 19 disposed inside the housing 10 and multiple baffles. The multiple baffles are distributed on both sides and the front end of the air outlet side of the fan wheel 19 to form at least two air ducts.
[0048] In this embodiment, to optimize the airflow distribution inside the vertical air conditioner, multiple baffles are arranged on both sides and the front end of the air outlet side of the impeller 19 to form at least two different air ducts. Air is then transported to different air outlets 17 through these ducts, improving the efficiency and uniformity of air conditioning. During implementation, the impeller 19 rotates, generating airflow. Driven by the impeller 19, the airflow passes through the different air ducts formed by the baffles and flows to the corresponding air outlets 17. For example, with… Figure 5 Taking (c) as an example, the airflow enters the interior of the vertical air conditioner from the air outlets 16 of the second side shell 12 and the third side shell 13. Under the action of the impeller 19, part of the airflow flows to the left air outlet 17 through the air duct located on the left side of the air outlet side of the impeller 19, and the other part of the airflow flows to the right air outlet 17 through the air duct located on the right side of the air outlet side of the impeller 19, thus achieving multi-directional airflow.
[0049] In practical implementation, a wind turbine 19 can be set up, as shown in the reference. Figure 5 Alternatively, two wind turbines 19 can be installed in (a) as shown in the reference. Figure 5 In (b), this can achieve the form of air outlet at the top and bottom. In order to ensure that the airflow direction of the top and bottom air outlets is consistent, the two impellers 19 are placed upside down to minimize the internal airflow turbulence. In order to better manage the airflow and fix the impellers 19, an isolation plate can be added between the two impellers 19 to further ensure that the airflow generated by the two impellers 19 will not affect each other.
[0050] Specifically, such as Figure 5 As shown, the multiple baffles include a first baffle 20, a second baffle 21, and a third baffle 22. The first baffle 20 and the second baffle 21 are respectively disposed on both sides of the air outlet side of the impeller 19, and the third baffle 22 is disposed at the front end of the air outlet side of the impeller 19. The air outlet 17 is disposed between the first baffle 20 and the third baffle 22 and between the second baffle 21 and the third baffle 22.
[0051] In this embodiment, the first baffle 20 and the second baffle 21 are respectively disposed on both sides of the air outlet side of the impeller 19, and the third baffle 22 is disposed at the front end of the air outlet side of the impeller 19, so that a first air duct is formed between the first baffle 20 and the third baffle 22, and a second air duct is formed between the second baffle 21 and the third baffle 22. Since the internal space of the Reuleaux triangle is not conducive to airflow, the first and second air ducts need to be separated to optimize the airflow path. Air outlets 17 are respectively disposed at the front end of the air outlet direction of the first and second air ducts, thereby controlling the airflow direction and distribution, allowing air to be discharged more effectively from different air outlets 17. In specific implementation, the position and angle of the baffles can also be adjusted to adjust the airflow distribution in the two air ducts, thereby addressing the air outlet needs of different areas indoors. The baffles can be curved to improve airflow efficiency.
[0052] Specifically, such as Figure 5 As shown, the first baffle 20 is disposed near the second side housing 12, and the second baffle 21 is disposed near the third side housing 13;
[0053] A first diverter is provided between the first baffle 20 and the second side housing 12, and / or a second diverter 23 is provided between the second baffle 21 and the third side housing 13.
[0054] In this embodiment, the inclusion of a flow divider further optimizes the airflow distribution within the duct, ensuring a more uniform flow towards the air outlet 17 and improving the stability and uniformity of the airflow. As the airflow moves within the duct, it is dispersed into multiple smaller streams by the first and / or second flow divider 23. Guided by the flow dividers, these smaller streams flow more evenly towards the air outlet 17. For example, the second flow divider 23 disperses the airflow, ensuring it is evenly discharged from the air outlet 17 between the second baffle 21 and the third baffle 22. This embodiment effectively improves the airflow distribution within the duct, enhances the stability and uniformity of the airflow, reduces turbulence, and makes the airflow from the air conditioner gentler and more comfortable, thus improving the user experience. Figure 5 In this embodiment, the second diverter 23 is only provided between the second baffle 21 and the third side housing 13. In specific implementation, the first diverter can also be provided only between the first baffle 20 and the second side housing 12, or two diverters can be provided at the same time, depending on the actual application scenario.
[0055] In a specific embodiment, if multiple air inlets 16 or multiple air outlets 17 are provided, the distributor can also control any one of the air inlets 16 and air outlets 17 to work or control multiple air inlets 16 and multiple air outlets 17 to work at the same time, so that the vertical air conditioner can achieve different air volume cooling or heating modes.
[0056] The vertical air conditioner of this embodiment has Reuleaux triangles in both its upper and lower sections. The curved design of the Reuleaux triangle allows the vertical air conditioner to fit more closely to walls and corners, reducing its footprint. Compared to traditional rectangular air conditioners, its streamlined shape better adapts to confined spaces. Air outlets 17 can be provided on both sides of the first outer casing 11, or adjustable or foldable air outlets 17 can be provided on the top and bottom outer casings 14 and 15 as needed, thereby achieving multi-angle and different air delivery modes. In this embodiment of the vertical air conditioner, combined with... Figure 2 As shown, its straight length K can be 350mm, 400mm, or 420mm, and the specific length can be adjusted according to the model specifications; its height H can be 1.6m, 1.7m, or 1.8m, and the specific height can also be adjusted according to the model specifications; the distance L between the bottom of the air guide plate 18 on the air outlet 17 of the first side casing 11 and the bottom of the vertical air conditioner is generally not less than 400mm, which facilitates the installation of the water tray, electrical box, humidifier, and fresh air components in the space below. The vertical air conditioner is also equipped with a display module, which can be set on the first side casing 11. The display module adopts a touch screen display with large numbers, making the displayed information larger and clearer, and is equipped with a voice prompt function, which can inform the user of the current operating status or fault information through voice, so that the user can understand the current working status of the air conditioner.
[0057] Furthermore, air inlets 16 are designed on the second side casing 12 and the third side casing 13, resulting in a larger air intake volume, more airflow through the evaporator, better cooling and heating effects, smoother airflow, and reduced turbulence within the unit. A light strip can also be installed on the vertical air conditioner to display blue during cooling, warm orange during heating, and green during fresh air and dehumidification modes. The vertical air conditioner can also connect to an app, where users can customize colors, brightness, or display effects, such as breathing, flowing, or constant light modes, enhancing user comfort. A child lock function can also be installed on the vertical air conditioner, requiring a specific button combination (e.g., pressing two buttons simultaneously for a predetermined time) to activate or deactivate the child lock, preventing accidental operation by children.
[0058] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this utility model, and these modifications or substitutions should all be covered within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the scope of the claims.
Claims
1. A standing type air conditioner comprising a housing, characterized in that, The shell comprises side shells and end shells arranged at both ends of the side shells, the side shells comprise a first side shell, a second side shell and a third side shell connected in sequence and enclosed to form a triangle in cross section, and the first side shell, the second side shell and the third side shell are all outwardly convex arc-shaped shells.
2. The vertical air conditioner according to claim 1, wherein The triangle is a Lull triangle.
3. The vertical air conditioner according to claim 1, wherein The vertical air conditioner further comprises air inlets and an air outlet, the air inlets are arranged on the second side shell and the third side shell respectively, and the air outlet is arranged on the end shell and / or the first side shell.
4. The vertical type air conditioner according to claim 3, wherein The end shell comprises a top end shell and a bottom end shell, and the air outlet is arranged between the top end shell and the first side shell, on the top end shell, on the first side shell, between the first side shell and the bottom end shell, or on the bottom end shell.
5. The vertical air conditioner according to claim 4, wherein When the air outlet is arranged between the top end shell and the first side shell, the top end shell comprises a top end shell body and a lifting device, the lifting device comprises a lifting driving member and a lifting connecting member connected to one end of the lifting driving member, the other end of the lifting connecting member is connected to one end of the top end shell body, and the lifting driving member can drive one end of the top end shell body to move close to or away from the first side shell through the lifting connecting member to close or open the air outlet.
6. The vertical air conditioner according to claim 4, wherein When the air outlet is arranged on the bottom end shell, the bottom end shell comprises a bottom end shell body and a rotating device, one side of the bottom end shell body is connected to the first side shell, the air outlet is arranged on one side of the bottom end shell body, and the rotating device comprises a rotating driving member arranged on the bottom end shell body and a rotating plate connected to the rotating driving member, the rotating plate is located at the air outlet, and the rotating plate is driven to rotate by the rotating driving member to open or close the air outlet.
7. The vertical air conditioner according to claim 4, wherein The air outlet is arranged on both sides of the first side shell, and a wind deflector is arranged on the air outlet.
8. The vertical type air conditioner according to claim 4, wherein The vertical air conditioner further comprises a wind wheel arranged inside the shell and a plurality of baffles, the plurality of baffles are arranged on both sides and the front end of the air outlet side of the wind wheel to form at least two air ducts.
9. The vertical air conditioner according to claim 8, wherein The plurality of baffles comprise a first baffle, a second baffle and a third baffle, the first baffle and the second baffle are arranged on both sides of the air outlet side of the wind wheel respectively, and the third baffle is arranged at the front end of the air outlet side of the wind wheel, and the air outlet is arranged between the first baffle and the third baffle and between the second baffle and the third baffle.
10. The vertical air conditioner according to claim 9, wherein The first baffle is arranged close to the second side shell, and the second baffle is arranged close to the third side shell. A first flow divider is arranged between the first baffle and the second side shell, and / or a second flow divider is arranged between the second baffle and the third side shell.