Air guide structure, indoor unit and air treatment equipment
Through the adjustment components and driving motor in the air guide structure, flexible activities of the carrier and air guide blades are achieved, the problem of limitations in the air supply area of the air treatment equipment is solved, the air supply range is increased and the air flow distribution is optimized.
Patent Information
- Application Number
- CN202510949553.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-10
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2045-07-10
AI Technical Summary
The air supply area of existing air treatment equipment is relatively limited, the air supply angle is limited and the air supply blind spots are prone to occur, which affects the comfort and air supply coverage area.
The air guide structure is adopted, including adjustment components and driving motor. Through the change of the state of the control parts, the driving carrier and air guide blades are activated, so as to achieve flexible adjustment of the air supply area and reduce the number of parts.
The air supply range is increased, the structure is simplified, the flexibility of the air supply area and the uniformity of air flow distribution are improved, the air supply blind spots are reduced, and the air flow distribution is optimized.
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Figure CN120444735A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of air guide structures, and in particular to air guide structures, indoor units and air handling equipment. Background Art
[0002] The air handling equipment includes an indoor unit, the air outlet of which is provided with an air guide plate. The air guide plate is rotatably connected to the air outlet, so that the air supply direction of the air outlet can be changed by changing the angle of the air guide plate relative to the air outlet.
[0003] The air outlet is also provided with an air guide blade, which can move relative to the air outlet to change the air outlet direction of the air handling device. However, the above-mentioned method of adjusting the air supply direction results in a relatively limited air supply area of the air handling device. Summary of the Invention
[0004] The embodiments of the present application provide an air guide structure, an indoor unit, and an air handling device to solve the problem of a relatively limited air supply area of the air handling device.
[0005] The wind guide structure provided in the embodiment of the present application includes an adjustment component and a drive motor;
[0006] The adjustment assembly includes a bearing member and an air guide blade, wherein the bearing member is movably arranged on the housing, and the air guide blade is movably arranged on the bearing member;
[0007] The driving motor is used to be arranged in the housing, and the output end of the driving motor is provided with a control component, and the control component has a first output part and a second output part;
[0008] When the control member is in the first state, the first output portion is connected to the carrier, and the drive motor drives the carrier to move relative to the housing through the control member;
[0009] When the control member is in the second state, the second output portion is connected to the air guide blade, and the drive motor drives the air guide blade to move relative to the bearing member through the control member.
[0010] By adopting the above technical solution, the air guide structure includes an adjustment component and a drive motor, the adjustment component includes a carrier and an air guide blade, the carrier is movably arranged on the shell or the mounting bracket, and the air guide blade is movably arranged on the carrier, so that the carrier can move relative to the shell, and the air guide blade can move relative to the carrier, so that the air supply area of the air treatment equipment including the air guide structure is more flexible and the air outlet range is larger.
[0011] The drive motor is used to be arranged in the shell, and a control component is provided at the output end of the drive motor. The control component has a first output part and a second output part. The first output part can be used to connect or disconnect with the carrier, and the second output part can be used to connect or disconnect with the air guide blade. Therefore, by changing the state of the control component, the drive motor can drive the carrier and the air guide blade to move through the control component.
[0012] When the control member is in a first state, the first output portion is connected to the carrier, and the drive motor drives the carrier relative to the housing through the control member. When the control member is in a second state, the second output portion is connected to the air guide vanes, and the drive motor drives the air guide vanes relative to the carrier through the control member. Thus, the carrier and the air guide vanes can be driven by the coordinated drive motor and control member, making the air supply area of the air handling device including the air guide structure more flexible, simplifying the overall structure of the air guide structure, and reducing the number of parts of the air guide structure.
[0013] In some possible implementations, the control member includes a fixed portion and a movable portion connected to each other;
[0014] The fixing portion is fixedly connected to the output end of the driving motor;
[0015] The movable portion is movable relative to the fixed portion, and the movable portion connects the first output portion and the second output portion.
[0016] In some possible implementations, when the control member is in the first state, the movable portion is in the first position; the first output portion is connected to the carrier, and the second output portion is disconnected from the wind guide blade;
[0017] When the control member is in the second state, the movable portion is in the second position; the first output portion is separated from the bearing member, and the second output portion is connected to the wind guide blade.
[0018] In some possible implementations, the movable portion is configured as a movable tube, which is sleeved on an outer side of the fixed portion and can move relative to the fixed portion in a direction approaching or away from the drive motor;
[0019] One of the first output portion and the second output portion is located outside the movable tube, and the other of the first output portion and the second output portion is located inside the movable tube.
[0020] In some possible implementations, the carrier is provided with a first connecting portion, and the first connecting portion is used in conjunction with the first output portion;
[0021] The wind guide blade is provided with a second connecting portion, and the second connecting portion is used in conjunction with the second output portion.
[0022] In some possible implementations, the second connection portion is disposed inside the first connection portion and is rotatable relative to the first connection portion;
[0023] The first output portion is located outside the movable tube, and the second output portion is located inside the movable tube;
[0024] When the control member is in the first state, the movable portion is in the first position; the first output portion is connected to the first connecting portion, and the second output portion is disconnected from the second connecting portion;
[0025] When the control member is in the second state, the movable portion is in the second position; the first output portion is disconnected from the first connecting portion, and the second output portion is connected to the second connecting portion.
[0026] In some possible implementations, the first output portion is configured as a first fixing slot;
[0027] The first connecting portion is movable in the first fixing groove along a preset direction;
[0028] When the movable portion is in the first position, the movable portion is away from the driving motor, and the first connecting portion is located in the first fixing groove;
[0029] When the movable portion is in the second position, the movable portion is close to the driving motor, and the first connecting portion is located outside the first fixing slot.
[0030] In some possible implementations, the second output portion is configured as a second fixing slot;
[0031] The second connecting portion is movable in the second fixing groove along a preset direction;
[0032] When the movable portion is in the first position, the movable portion is away from the driving motor, and the second connecting portion is located in the second fixing groove;
[0033] When the movable portion is in the second position, the movable portion is close to the driving motor, and the second connecting portion is located outside the second fixing groove.
[0034] In some possible implementations, the first connecting portion and the second connecting portion are coaxially arranged.
[0035] In some possible implementations, the adjustment assembly further includes a mounting bracket, and the mounting bracket is configured to be disposed on the housing;
[0036] The bearing member is rotatably arranged on the top surface of the mounting bracket, and the driving motor is arranged on the bottom surface of the mounting bracket.
[0037] In some possible implementations, the mounting bracket is provided with a mounting opening, and the first output portion and the second output portion are inserted into the mounting opening;
[0038] Alternatively, the mounting bracket is provided with a mounting opening, the bearing member is provided with a first connecting portion, the wind guide blade is provided with a second connecting portion, and the first connecting portion and the second connecting portion are passed through the mounting opening.
[0039] An embodiment of the present application provides an indoor unit, comprising the air guide structure described in any one of the above items, and a heat exchanger, wherein the air guide structure is arranged on the air outlet side of the heat exchanger.
[0040] An embodiment of the present application provides an air treatment device, including the above-mentioned indoor unit. BRIEF DESCRIPTION OF THE DRAWINGS
[0041] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.
[0042] Figure 1 A schematic diagram of the structure of the indoor unit provided in an embodiment of the present application;
[0043] Figure 2 for Figure 1 A structural diagram of the indoor unit in another state;
[0044] Figure 3 A schematic structural diagram of the air guide structure provided in an embodiment of the present application;
[0045] Figure 4 for Figure 3 A structural schematic diagram of the air guide structure in another state;
[0046] Figure 5 for Figure 3 A schematic structural diagram of the air guide structure in another perspective;
[0047] Figure 6 for Figure 5 A structural schematic diagram of the air guide structure in another state;
[0048] Figure 7 This is a structural schematic diagram of the control component in the air guide structure of an embodiment of the present application in a first state;
[0049] Figure 8 This is a structural schematic diagram of the control member in the air guide structure of an embodiment of the present application in the second state;
[0050] Figure 9 An exploded view of the air guide structure provided in an embodiment of the present application;
[0051] Figure 10 A cross-sectional exploded view of the air guide structure provided in an embodiment of the present application;
[0052] Figure 11 A cross-sectional view of a control member provided in an embodiment of the present application;
[0053] Figure 12 A schematic diagram of a second connecting portion provided in an embodiment of the present application;
[0054] Figure 13 A schematic diagram of the structure of the indoor unit provided in an embodiment of the present application.
[0055] Description of reference numerals:
[0056] 10. Indoor unit;
[0057] 20. Air guide structure;
[0058] 30. Heat exchanger;
[0059] 100. Mounting bracket; 101. Mounting port;
[0060] 200, regulating component;
[0061] 210, bearing member; 211, upper shell; 212, lower shell; 213, first connecting portion; 220, wind guide blade; 221, second connecting portion;
[0062] 300, drive motor;
[0063] 400, control components;
[0064] 410, fixed part; 420, movable part; 421, first output part; 4211, first fixed groove; 422, second output part; 4221, second fixed groove.
[0065] The above drawings illustrate specific embodiments of the present application, which will be described in more detail below. These drawings and the textual description are not intended to limit the scope of the present application in any way, but rather to illustrate the concepts of the present application to those skilled in the art by reference to specific embodiments. DETAILED DESCRIPTION
[0066] As mentioned in the background, air handling equipment, such as air conditioners, typically features an air deflector at the outlet. This deflector is connected to the outlet via a rotational connection, adjusting the airflow direction by varying its angle relative to the outlet. Adjusting the airflow angle primarily relies on blades, which are typically fixed to a specific area of the outlet and rotated in one direction by a lever, creating a left-right sweep or up-and-down swing.
[0067] However, the aforementioned adjustment of airflow direction and angle presents numerous drawbacks. For one thing, the area of the airflow zone is positively correlated with the area of the air outlet, limiting the adjustable airflow angle. This results in a smaller airflow coverage area for the air conditioner, making it difficult to meet the airflow needs of large areas. Furthermore, because the blades are located within the air duct and can only rotate at a single angle, blind spots can easily appear when adjusting the airflow angle, resulting in significant temperature differences in the room, significantly impacting comfort.
[0068] As described in the background, the air guide plate is rotatably connected to the indoor unit's air outlet. This allows the direction of airflow from the outlet to be changed by adjusting the angle of the air guide plate relative to the outlet. The outlet can also be equipped with air guide vanes that can move relative to the outlet to change the direction of airflow from the air handling unit.
[0069] However, since the air guide blades usually need to be rotated and installed at the air outlet, and the rotation angle of the air guide blades relative to the air outlet is small, the angle change of the air guide blades to the air outlet direction is small, and the air guiding effect of the air guide blades is poor. The above method of adjusting the air supply direction results in a relatively limited air supply area of the air treatment equipment.
[0070] In order to solve the above technical problems, an embodiment of the present application provides an air guide structure, an indoor unit and an air treatment equipment. The air guide structure includes an adjustment component and a drive motor. The adjustment component includes a carrier and an air guide blade. The carrier is movably arranged on a shell or a mounting bracket. The air guide blade is movably arranged on the carrier, so that the carrier can move relative to the shell of the indoor unit. The air guide blade can move relative to the carrier, so that the carrier can drive the air guide blade to move relative to the shell to change the position of the air guide blade relative to the shell. The air guide blade can move relative to the carrier to change the direction and angle of the air guide blade, thereby making the air supply area of the air treatment equipment including the air guide structure more flexible and the air outlet range larger.
[0071] The drive motor is used to be arranged in the shell, and a control component is provided at the output end of the drive motor. The control component has a first output part and a second output part. The first output part can be used to connect or disconnect with the carrier, and the second output part can be used to connect or disconnect with the air guide blade. Therefore, by changing the state of the control component, the drive motor can drive the carrier and the air guide blade to move through the control component.
[0072] When the control member is in a first state, the first output portion is connected to the carrier, and the drive motor drives the carrier relative to the housing through the control member. When the control member is in a second state, the second output portion is connected to the air guide vanes, and the drive motor drives the air guide vanes relative to the carrier through the control member. Thus, the carrier and the air guide vanes can be driven by the coordinated drive motor and control member, making the air supply area of the air handling device including the air guide structure more flexible, simplifying the overall structure of the air guide structure, and reducing the number of parts of the air guide structure.
[0073] Exemplary embodiments will be described in detail herein, with examples illustrated in the accompanying drawings. In the following description, when referring to the drawings, identical numerals in different figures represent identical or similar elements, unless otherwise indicated. The embodiments described in the following exemplary embodiments are not intended to represent all embodiments consistent with the present application. Rather, they are merely examples of apparatus and methods consistent with certain aspects of the present application, as detailed in the appended claims.
[0074] The following specific embodiments describe in detail the technical solution of the present application and how the technical solution of the present application solves the above-mentioned technical problems. The following specific embodiments can be combined with each other, and the same or similar concepts or processes may not be repeated in some embodiments. The embodiments of the present application will be described below in conjunction with the accompanying drawings.
[0075] Reference Figure 1 and Figure 2 , and combined with Figure 13 The present invention provides an air handling device, including but not limited to air conditioners, humidifiers, dehumidifiers, ventilation equipment, heat recovery ventilation systems, air purifiers, and fresh air equipment. The air conditioning equipment includes but is not limited to portable air conditioners, window air conditioners, split air conditioners, and central air conditioners.
[0076] For ease of explanation, the present embodiment assumes a split-type air conditioner as the air handling device. The air handling device includes an indoor unit 10, which has an air outlet. Air is supplied to the outside through the air outlet. For example, in a wall-mounted air conditioner, the indoor unit 10 can be mounted on a wall in a room. The air outlet can be located on the front side of the indoor unit 10 (the side facing away from the wall) and near the bottom. For example, the air outlet can be tilted downward to provide a more appropriate air supply area for the air handling device.
[0077] In the indoor unit 10, the air guide plate is a plate-like structure installed at the air outlet, covering the air outlet. Furthermore, the air outlet of the indoor unit 10 is also provided with at least one air guide structure 20. Specifically, the air guide plate and air guide structure 20 can be used to adjust the air supply direction and angle of the indoor unit 10 of the air handling equipment, thereby achieving flexible air supply from the air handling equipment.
[0078] Of course, the indoor unit 10 provided in the embodiment of the present application includes a heat exchanger 30, a compressor and an air guide structure 20. The indoor unit 10 guides the wind direction of the air through the air guide structure 20 to adapt to different room layouts and user needs, help reduce air supply blind spots, and optimize the distribution of air flow. The heat exchanger 30 can be an evaporator or a condenser. Figures 1-6 In some possible implementations, the wind guide structure 20 may include an adjustment assembly 200 . The adjustment assembly 200 may include a carrier 210 and wind guide blades 220 . The wind guide blades 220 may be movably disposed on the carrier 210 .
[0079] The regulating assembly 200 can be installed in the air duct of the indoor unit 10. Specifically, the air duct includes an air duct wall. For ease of explanation, this embodiment predefines the side of the air duct close to the wall as the basic air duct wall. Based on this, the regulating assembly 200 can be installed on the basic air duct wall. Correspondingly, the bearing member 210 can be installed on the basic air duct wall.
[0080] The surface of the support member 210 can be parallel to the surface of the base duct wall. Furthermore, the support member 210 can extend along the length of the air outlet to ensure that the adjustment assembly 200 covers the air outlet. The guide vanes 220 are arranged in sequence along the surface of the support member 210 and are movably connected to the support member 210. The support member 210 can be movably mounted on the housing or mounting bracket 100 of the air handling device. This embodiment of the present application does not impose any specific restrictions on the structure of the air handling device.
[0081] In this application, the carrier 210 is positioned close to the base duct wall, facilitating mounting the adjustment assembly 200 thereon. The guide vanes 220 can be located on a side of the carrier 210 facing away from the base duct wall, with the guide vanes 220 facing the air outlet and extending toward the air outlet. This allows the airflow within the duct to pass through the guide vanes 220 before exiting the air outlet, thus directing the airflow.
[0082] Reference Figure 7-10In some possible embodiments, the air guide structure 20 further includes a drive motor 300. The drive motor 300 is configured to be disposed in the housing. A control component 400 is provided at the output end of the drive motor 300. The output end of the drive motor 300 can be connected to the carrier 210 and the air guide blade 220 through the control component 400.
[0083] When the output end of the driving motor 300 can drive the adjustment component 200 to move through the control component 400, it can drive the support component 210 to move, and can also drive the air guide blades 220 on the support component 210 to move, so that the support component 210 and the air guide blades 220 in the adjustment component 200 can be driven to move by one motor.
[0084] For example, the control member 400 may have a first output portion 421 and a second output portion 422. The first output portion 421 can be used to connect or disconnect with the carrier 210, and the second output portion 422 can be used to connect or disconnect with the wind guide vanes 220. Thus, by changing the state of the control member 400, the drive motor 300 can drive the carrier 210 and the wind guide vanes 220 to move through the control member 400.
[0085] When the control member 400 is in a first state, the first output portion 421 is connected to the carrier 210, and the drive motor 300 drives the carrier 210 to move relative to the housing through the control member 400. When the control member 400 is in a second state, the second output portion 422 is connected to the air guide vanes 220, and the drive motor 300 drives the air guide vanes 220 to move relative to the carrier 210 through the control member 400. Thus, the carrier 210 and the air guide vanes 220 can be driven by the coordinated drive motor 300 and control member 400, making the air supply area of the air handling device including the air guide structure 20 more flexible, simplifying the overall structure of the air guide structure 20, and reducing the number of components of the air guide structure 20.
[0086] It can be understood that when the control component 400 is in the second state, the output end of the drive motor 300 can drive the movement of each air guide blade 220 on the carrier 210 through the control component 400, so that the position of each air guide blade 220 relative to the carrier 210 can change. At this time, the angle between each air guide blade 220 and a certain direction of the plate surface of the carrier 210 changes, so that each air guide blade 220 is uniformly deflected toward one side of the air outlet, thereby achieving the effect of adjusting the air supply angle of the air guide structure 20.
[0087] It is also understood that when the control member 400 is in the first state, the output end of the drive motor 300 can drive the carrier 210 to move via the control member 400. At this time, the position of the carrier 210 relative to the air outlet changes, and the distance between the carrier 210 and the base air duct wall changes. Furthermore, since the air guide blades 220 are disposed on the carrier 210, each air guide blade 220 on the carrier 210 also moves with the carrier 210. At this time, even if the position of the air guide blade 220 relative to the carrier plate does not change, the position of the air guide blade 220 relative to the air outlet is changed, thereby achieving the same effect of adjusting the air supply angle of the air guide structure 20.
[0088] As for the number of the air guide structures 20 in the device body, the number may be one or more. For example, the number of the air guide structures 20 may be two or more.
[0089] Reference Figure 3-Figure 6 As an optional embodiment, the number of air guide structures 20 can be two, and the two air guide structures 20 can be spaced apart along the length of the air outlet. To match the air guide structures 20, the number of drive motors 300 can also be two. The two drive motors 300 are respectively connected to the adjustment components 200 in the two air guide structures 20, and each drive motor 300 can drive the corresponding adjustment component 200 to move.
[0090] In this way, the two adjustment components 200 can supply air to different areas respectively. The two adjustment components 200 have different air supply areas respectively, which can expand the air supply area of the air guide structure 20 and expand the air supply coverage area of the indoor unit 10 of the air handling equipment.
[0091] Two drive motors 300 independently drive the two adjustment assemblies 200, allowing the air supply areas of the two adjustment assemblies 200 to be adjusted independently, without any linkage between them. This allows the air handling device to adapt to different indoor layouts and usage requirements. Users can flexibly adjust the air supply areas of the two adjustment assemblies 200 based on actual conditions. This allows the airflow from the air handling device to be fully and effectively utilized, thus avoiding waste, by satisfying the requirements for different air supply areas in different environments.
[0092] In some possible embodiments, the drive motor 300 can be directly installed on the housing of the indoor unit 10, or the drive motor 300 can be set on a mounting structure such as a mounting bracket 100. The drive motor 300 is at least used to drive the support 210 to move relative to the housing, and drive the air guide blade 220 to move relative to the support 210, so as to adjust the position and orientation of the air guide blade 220 by the drive motor 300, thereby increasing the movement range of the air guide blade 220.
[0093] It should be noted that the air guide structure 20 may include a mounting bracket 100, so that the mounting bracket 100 can be used to mount the bearing member 210 and the drive motor 300. Alternatively, the air guide structure 20 may not include the mounting bracket 100, and the bearing member 210 and the drive motor 300 may be directly mounted to the housing of the indoor unit 10, thereby reducing the number of components required for the air guide structure 20 and simplifying the structure of the indoor unit 10.
[0094] The following embodiments describe the specific components of the air guide structure 20, taking the air guide structure 20 including the mounting bracket 100 as an example. It should be noted that the housing of the indoor unit 10 can be reused as the mounting bracket 100, allowing the bearing 210 and the drive motor 300 to be directly mounted on the housing of the indoor unit 10.
[0095] When the air guide structure 20 is required to guide the air flow of the indoor unit 10, the control member 400 is placed in a first state, and the output end of the drive motor 300 can drive the carrier 210 to move relative to the mounting bracket 100 via the first output portion 421 of the control member 400. When the control member 400 is placed in a second state, the output end of the drive motor 300 can drive the air guide vanes 220 to move relative to the carrier 210 via the second output portion 422 of the control member 400, thereby increasing the range of movement of the air guide vanes 220 relative to the mounting bracket 100 and achieving control over the air supply angle of the indoor unit 10. This allows the air guide structure 20 to adapt to different room layouts and user needs, helping to reduce air supply blind spots and optimize airflow distribution.
[0096] The driving motor 300 can independently drive the supporting member 210 and the air guide blade 220 through different states of the control member 400, so that the air guide blade 220 can not only move to the outside of the air outlet together with the supporting member 210, but also increase the rotation angle of the air guide blade 220, thereby increasing the angular change of the air guide blade 220 to the air outlet direction, improving the air guiding effect of the air guide blade 220, and increasing the air supply area of the air treatment equipment.
[0097] The drive motor 300 independently controls the air guide vanes 220 and the carrier 210 through the different states of the control unit 400, which helps improve the accuracy of airflow regulation. Users can adjust the air supply angle range of the air guide vanes 220 or the carrier 210 as needed. The coordinated drive motor 300 and control unit 400 also provide a wider adjustment range and flexibility to achieve complex airflow patterns to suit different room layouts and usage scenarios.
[0098] By adjusting the angles of the air guide blades 220 and the carrier 210 respectively, a more uniform and effective airflow distribution can be achieved. Precise airflow control can reduce the operating time and energy consumption of air handling equipment (e.g., air conditioning equipment) using the air guide structure 20, thereby improving overall energy efficiency.
[0099] Reference Figure 7-10 In some possible embodiments, the carrier 210 may include an upper shell 211 and a lower shell 212 connected to each other, and the upper shell 211 and the lower shell 212 form a receiving cavity, which can provide an installation basis for other structures to provide certain support and protection for other structures.
[0100] It should be noted that the mounting bracket 100 can be used to be installed at the air outlet of the indoor unit 10, the mounting bracket 100 can be fixedly connected to the casing of the indoor unit 10, and the top surface of the mounting bracket 100 can be used as an installation base for the support member 210, so that the support member 210 can move relative to the mounting bracket 100, so that at least part of the support member 210 can extend out of the air outlet of the indoor unit 10.
[0101] For example, the lower housing 212 of the carrier 210 can be used to be mounted on the mounting bracket 100, so that the carrier 210 can rotate relative to the mounting bracket 100 through the lower housing 212. The upper housing 211 of the carrier 210 can be used to mount the wind guide blade 220, so that the wind guide blade 220 can rotate relative to the upper housing 211 of the carrier 210.
[0102] In some possible implementations, the control member 400 may include a fixed portion 410 and a movable portion 420. The fixed portion 410 is fixedly connected to the output end of the drive motor 300, and the output end of the drive motor 300 can drive the fixed portion 410 to rotate, and the fixed portion 410 can drive the movable portion 420 to rotate.
[0103] For example, the movable portion 420 can move relative to the fixed portion 410, and the preset direction can be set to the axis direction of the output end of the driving motor 300. Figure 7 The direction indicated by the X arrow.
[0104] The movable portion 420 can move closer to or farther from the drive motor 300 relative to the fixed portion 410. The movable portion 420 connects the first output portion 421 and the second output portion 422, so that the movable portion 420 can drive the first output portion 421 and the second output portion 422 to move relative to the fixed portion 410, thereby adjusting and changing the positions of the first output portion 421 and the second output portion 422.
[0105] When the control member 400 is in the first state, the movable portion 420 can be in the first position in a predetermined direction. The first output portion 421 can be connected to the carrier 210, and the second output portion 422 can be disconnected from the air guide vane 220, so that the control member 400 can be fixed relative to the carrier 210, thereby allowing the drive motor 300 to drive the carrier 210 to move relative to the housing through the control member 400.
[0106] When the control member 400 is in the second state, the movable portion 420 can be in the second position in the preset direction. The first output portion 421 can be detached from the carrier 210, and the second output portion 422 can be connected to the air guide vane 220, so that the control member 400 can be fixed relative to the air guide vane 220, thereby allowing the drive motor 300 to drive the air guide vane 220 to move relative to the carrier 210 through the control member 400.
[0107] It is easy to understand that the first position and the second position are used to indicate the position of the movable part 420 relative to the fixed part 410. For example, in a preset direction, the first position can be close to the fixed part 410 relative to the second position, or the second position can be close to the fixed part 410 relative to the first position.
[0108] The first position may represent a continuous distance. That is, when the first position has a distance, the movable portion 420 can move relative to the fixed portion 410 along a preset direction within the first position, and the movable portion 420 is always connected to the carrier 210 via the first output portion 421.
[0109] The first position may also represent a point. When the first position represents a point, the first position does not have a distance. Therefore, as long as the movable portion 420 at the first position moves, the movable portion 420 will move away from the first position, so that the first output portion 421 of the movable portion 420 is separated from the carrier 210.
[0110] The second position may represent a continuous distance. That is, when the second position has a distance, the movable portion 420 can move relative to the fixed portion 410 along a preset direction within the second position, and the movable portion 420 is always connected to the air guide blade 220 via the second output portion 422.
[0111] The second position may also represent a point. When the second position represents a point, the second position does not have a distance. As long as the movable portion 420 at the second position moves, the movable portion 420 will move away from the second position, so that the second output portion 422 of the movable portion 420 is separated from the air guide blade 220.
[0112] Reference Figure 7-10In some possible implementations, the movable portion 420 may be configured as a movable tube. The movable tube may be sleeved outside the fixed portion 410 and movable relative to the fixed portion 410 in a direction toward or away from the drive motor 300, such that the movable tube can move along a predetermined direction to a first position and a second position.
[0113] One of the first output part 421 and the second output part 422 can be located on the outside of the movable tube, and the other of the first output part 421 and the second output part 422 can be located on the inside of the movable tube, thereby reducing the possibility of mutual interference between the first output part 421 and the second output part 422, and making the connection process between the first output part 421 and the carrier 210, and the second output part 422 and the wind guide blade 220 smoother.
[0114] For example, the first output portion 421 may be located outside the movable tube, and the second output portion 422 may be located inside the movable tube. When the movable tube is in the first position, the first output portion 421 located outside the movable tube can be transmission-connected to the carrier 210. When the movable tube is in the second position, the second output portion 422 located inside the movable tube can be transmission-connected to the air guide vane 220.
[0115] In some possible embodiments, the carrier 210 may be provided with a first connecting portion 213, and the first connecting portion 213 may be used in conjunction with the first output portion 421, so that the first output portion 421 can be fixed relative to the first connecting portion 213, so that the drive motor 300 can drive the carrier 210 to move relative to the shell through the first connecting portion 213.
[0116] Exemplarily, the wind guide blade 220 can be provided with a second connecting portion 221, and the second connecting portion 221 can be used in conjunction with the second output portion 422, so that the second output portion 422 can be fixed relative to the second connecting portion 221, so that the drive motor 300 can drive the wind guide blade 220 to move relative to the carrier 210 through the second connecting portion 221.
[0117] By adopting the above technical solution, when the control member 400 is in the first state, the movable portion 420 is in the first position in the preset direction. The first output portion 421 can be connected to the first connecting portion 213, and the second output portion 422 can be disconnected from the second connecting portion 221, so that the control member 400 can be fixed relative to the carrier 210 via the first connecting portion 213, thereby enabling the drive motor 300 to drive the carrier 210 to move relative to the housing through the control member 400.
[0118] When the control member 400 is in the second state, the movable portion 420 can be in the second position in the preset direction. The first output portion 421 can be disconnected from the first connection portion 213, and the second output portion 422 can be connected to the second connection portion 221, so that the control member 400 can be fixed relative to the air guide vane 220 via the second connection portion 221, thereby allowing the drive motor 300 to drive the air guide vane 220 to move relative to the carrier 210 through the control member 400.
[0119] In some possible embodiments, the mounting bracket 100 is provided with a mounting opening 101, the first output portion 421 and the second output portion 422 can be inserted into the mounting opening 101, and the movable portion 420 can move in the mounting opening 101 along a preset direction, so that the first output portion 421 can be connected to the first connection portion 213 of the carrier 210 through the mounting opening 101, and the second output portion 422 can be connected to the second connection portion 221 of the wind guide blade 220 through the mounting opening 101.
[0120] Alternatively, the mounting bracket 100 is provided with a mounting port 101, the supporting member 210 is provided with a first connecting portion 213, and the wind guide blade 220 is provided with a second connecting portion 221. The first connecting portion 213 and the second connecting portion 221 are passed through the mounting port 101. The first connecting portion 213 can be connected to the first output portion 421 located at the movable portion 420 through the mounting port 101, and the second connecting portion 221 can be connected to the second output portion 422 located at the movable portion 420 through the mounting port 101.
[0121] In some possible embodiments, the second connection portion 221 is disposed inside the first connection portion 213 and can rotate relative to the first connection portion 213 , so that the first connection portion 213 and the second connection portion 221 can be respectively disposed corresponding to the first output portion 421 and the second output portion 422 .
[0122] For example, the first connecting portion 213 and the second connecting portion 221 can be coaxially arranged. The axis of the first connecting portion 213 and the axis of the second connecting portion 221 can coincide with the rotation axis of the output end of the drive motor 300, so as to make the rotation process of the first connecting portion 213 and the second connecting portion 221 more stable and reduce the possibility of the first connecting portion 213 and the second connecting portion 221 being offset.
[0123] In the preset direction, the first connection part 213 and the first output part 421 are arranged opposite to each other, and the second connection part 221 and the second output part 422 are arranged opposite to each other. The movable part 420 can drive the first output part 421 to move closer to or away from the first connection part 213, and the movable part 420 can drive the second output part 422 to move closer to or away from the second connection part 221.
[0124] When the movable portion 420 is in the first position, the first connection portion 213 and the first output portion 421 are close to and connected, and the second connection portion 221 and the second output portion 422 are separated. When the movable portion 420 is in the second position, the second connection portion 221 and the second output portion 422 are close to and connected, and the first connection portion 213 and the first output portion 421 are separated.
[0125] Reference Figure 7-10 In some possible implementations, the first output portion 421 may be provided with a first fixing groove 4211. The extension direction of the first fixing groove 4211 may be provided parallel to the preset direction. The first connecting portion 213 may be movable within the first fixing groove 4211 along the preset direction.
[0126] In other words, the first position has a certain length. When the movable portion 420 moves relative to the fixed portion 410 in a predetermined direction, the first connecting portion 213 can move within the first fixing groove 4211. When the movable portion moves away from the first position, the first connecting portion 213 disengages from the first fixing groove 4211. At this time, the first connecting portion 213 disengages from the first output portion 421, thereby preventing the control member 400 from transmitting power to the first connecting portion 213.
[0127] When the movable portion 420 is in the first position, the movable portion 420 is away from the drive motor 300, the first connecting portion 213 is located in the first fixing groove 4211, and the first output portion 421 and the first connecting portion 213 can be coaxially fixed. When the movable portion 420 is in the second position, the movable portion 420 is close to the drive motor 300, the first connecting portion 213 is located outside the first fixing groove 4211, and the first output portion 421 is separated from the first connecting portion 213.
[0128] In some possible implementations, the second output portion 422 may be provided with a second fixing slot 4221. The extension direction of the second fixing slot 4221 may be parallel to a preset direction. The second connecting portion 221 may be movable within the second fixing slot 4221 along the preset direction.
[0129] In other words, the second position has a certain length. When the movable portion 420 moves relative to the fixed portion 410 in a predetermined direction, the second connecting portion 221 can move within the second fixing groove 4221. When the movable portion moves away from the second position, the second connecting portion 221 disengages from the second fixing groove 4221. At this time, the second connecting portion 221 is disengaged from the second output portion 422, so that the control member 400 does not transmit power to the second connecting portion 221.
[0130] When the movable portion 420 is in the second position, the movable portion 420 is close to the drive motor 300, the second connecting portion 221 is located in the second fixing groove 4221, and the second output portion 422 and the second connecting portion 221 can be coaxially fixed. When the movable portion 420 is in the first position, the movable portion 420 is away from the drive motor 300, the second connecting portion 221 is located outside the second fixing groove 4221, and the second output portion 422 is separated from the second connecting portion 221.
[0131] It is easy to understand that when both the first output portion 421 and the second output portion 422 are provided with fixing grooves, the movable portion 420 can be provided as a spline sleeve. The first output portion 421 and the second output portion 422 can also be provided as other structures, and the transmission method between the first output portion 421 and the first connecting portion 213 and the transmission method between the second output portion 422 and the second connecting portion 221 can also adopt a snap-fit method or the like.
[0132] An embodiment of the present application provides an indoor unit 10 , including an air guide structure 20 and a heat exchanger 30 . The air guide structure 20 is disposed on an air outlet side of the heat exchanger 30 .
[0133] In some possible implementations, the indoor unit 10 is provided with an air outlet; the air outlet is provided with an air guide plate, and the air guide plate is movable relative to the air outlet; and the air guide structure 20 is provided on the inner side of the air guide plate.
[0134] An embodiment of the present application provides an air treatment device, including an indoor unit 10 and a compressor, and a heat exchanger 30 is connected to the compressor.
[0135] To sum up, the air guide structure 20 includes an adjustment component 200 and a drive motor 300. The adjustment component 200 includes a carrier 210 and an air guide blade 220. The carrier 210 is movably arranged on the shell of the indoor unit 10 or the mounting bracket 100. The air guide blade 220 is movably arranged on the carrier 210, so that the carrier 210 can move relative to the shell of the indoor unit 10. The air guide blade 220 can move relative to the carrier 210, so that the carrier 210 can drive the air guide blade 220 to move relative to the shell of the indoor unit 10 to change the position of the air guide blade 220 relative to the shell. The air guide blade 220 can move relative to the carrier 210 to change the direction and angle of the air guide blade 220, thereby making the air supply area of the air treatment equipment including the air guide structure 20 more flexible and the air outlet range larger.
[0136] The drive motor 300 is used to be arranged in the shell, and the output end of the drive motor 300 is provided with a control component 400. The control component 400 has a first output part 421 and a second output part 422. The first output part 421 can be used to connect or disconnect with the supporting component 210, and the second output part 422 can be used to connect or disconnect with the wind guide blade 220, so that the drive motor 300 can drive the supporting component 210 and the wind guide blade 220 to move through the control component 400 by changing the state of the control component 400.
[0137] When the control member 400 is in a first state, the first output portion 421 is connected to the carrier 210, and the drive motor 300 drives the carrier 210 to move relative to the housing through the control member 400. When the control member 400 is in a second state, the second output portion 422 is connected to the air guide vanes 220, and the drive motor 300 drives the air guide vanes 220 to move relative to the carrier 210 through the control member 400. Thus, the carrier 210 and the air guide vanes 220 can be driven by the coordinated drive motor 300 and control member 400, making the air supply area of the air handling device including the air guide structure 20 more flexible, simplifying the overall structure of the air guide structure 20, and reducing the number of components of the air guide structure 20.
[0138] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside" and the like to indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as limiting the present invention.
[0139] In the description of the present invention, it should be understood that the terms "including" and "having" and any variations thereof used herein are intended to cover non-exclusive inclusions. For example, a process, method, system, product or apparatus that includes a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to these processes, methods, products or apparatuses.
[0140] Unless otherwise expressly specified or limited, the terms "mounted," "connected," "connected," "fixed," etc. should be interpreted broadly. For example, they can refer to fixed connections, removable connections, or integration; they can refer to direct connections or indirect connections through an intermediate medium; they can refer to internal connections between two components or interactions between two components. Those skilled in the art will understand the specific meanings of these terms in this disclosure based on the specific circumstances. Furthermore, the terms "first," "second," etc., etc., are used for descriptive purposes only and should not be construed to indicate or imply relative importance or implicitly specify the quantity of the technical features indicated.
[0141] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the above embodiments, or replace some or all of the technical features therein with equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. An air guide structure, characterized in that: It includes an adjustment component (200) and a drive motor (300); The adjustment assembly (200) comprises a bearing member (210) and an air guide blade (220), wherein the bearing member (210) is movably disposed on a housing, and the air guide blade (220) is movably disposed on the bearing member (210); The driving motor (300) is used to be arranged in the housing, and a control member (400) is provided at the output end of the driving motor (300), and the control member (400) has a first output portion (421) and a second output portion (422); When the control member (400) is in a first state, the first output portion (421) is connected to the carrier (210), and the drive motor (300) drives the carrier (210) to move relative to the housing through the control member (400); When the control member (400) is in the second state, the second output portion (422) is connected to the air guide blade (220), and the drive motor (300) drives the air guide blade (220) to move relative to the carrier (210) through the control member (400).
2. The air guide structure according to claim 1, characterized in that: The control member (400) includes a fixed portion (410) and a movable portion (420) connected to each other; The fixing portion (410) is fixedly connected to the output end of the driving motor (300); The movable portion (420) is movable relative to the fixed portion (410), and the movable portion (420) connects the first output portion (421) and the second output portion (422).
3. The air guide structure according to claim 2, characterized in that: When the control member (400) is in the first state, the movable portion (420) is in the first position; the first output portion (421) is connected to the bearing member (210), and the second output portion (422) is disconnected from the wind guide blade (220); When the control member (400) is in the second state, the movable portion (420) is in the second position; the first output portion (421) is separated from the bearing member (210), and the second output portion (422) is connected to the wind guide blade (220).
4. The air guide structure according to claim 3, characterized in that: The movable portion (420) is configured as a movable tube, which is sleeved on the outside of the fixed portion (410) and can move relative to the fixed portion (410) in a direction approaching or moving away from the drive motor (300); One of the first output portion (421) and the second output portion (422) is located outside the movable tube, and the other of the first output portion (421) and the second output portion (422) is located inside the movable tube.
5. The air guide structure according to claim 4, characterized in that: The carrier (210) is provided with a first connecting portion (213), and the first connecting portion (213) is used in conjunction with the first output portion (421); The wind guide blade (220) is provided with a second connecting portion (221), and the second connecting portion (221) is used in conjunction with the second output portion (422).
6. The air guide structure according to claim 5, characterized in that: The second connecting portion (221) is disposed on the inner side of the first connecting portion (213) and is rotatable relative to the first connecting portion (213); The first output portion (421) is located outside the movable tube, and the second output portion (422) is located inside the movable tube; When the control member (400) is in the first state, the movable portion (420) is in the first position; the first output portion (421) is connected to the first connecting portion (213), and the second output portion (422) is disconnected from the second connecting portion (221); When the control member (400) is in the second state, the movable portion (420) is in the second position; the first output portion (421) is disconnected from the first connecting portion (213), and the second output portion (422) is connected to the second connecting portion (221).
7. The air guide structure according to claim 5, characterized in that: The first output portion (421) is provided with a first fixing groove (4211); The first connecting portion (213) is movable in the first fixing groove (4211) along a preset direction; When the movable portion (420) is in the first position, the movable portion (420) is away from the drive motor (300), and the first connecting portion (213) is located in the first fixing groove (4211); When the movable portion (420) is in the second position, the movable portion (420) is close to the drive motor (300), and the first connecting portion (213) is located outside the first fixing slot (4211).
8. The air guide structure according to claim 5, characterized in that: The second output portion (422) is provided with a second fixing groove (4221); The second connecting portion (221) is movable in the second fixing groove (4221) along a preset direction; When the movable portion (420) is in the first position, the movable portion (420) is away from the drive motor (300), and the second connecting portion (221) is located in the second fixing groove (4221); When the movable portion (420) is in the second position, the movable portion (420) is close to the drive motor (300), and the second connecting portion (221) is located outside the second fixing groove (4221).
9. The air guide structure according to claim 5, characterized in that: The first connecting portion (213) and the second connecting portion (221) are coaxially arranged.
10. The air guide structure according to any one of claims 1 to 9, characterized in that: The adjustment assembly (200) further includes a mounting bracket (100), wherein the mounting bracket (100) is configured to be disposed on the housing; The bearing member (210) is rotatably arranged on the top surface of the mounting bracket (100), and the driving motor (300) is arranged on the bottom surface of the mounting bracket (100).
11. The air guide structure according to claim 10, characterized in that: The mounting bracket (100) is provided with a mounting opening, and the first output portion (421) and the second output portion (422) are inserted into the mounting opening; Alternatively, the mounting bracket (100) is provided with a mounting opening (101), the bearing member (210) is provided with a first connecting portion (213), and the wind guide blade (220) is provided with a second connecting portion (221), and the first connecting portion (213) and the second connecting portion (221) are inserted into the mounting opening (101).
12. An indoor unit, characterized in that: It comprises an air guide structure (20) as claimed in any one of claims 1 to 11, and a heat exchanger (30), wherein the air guide structure (20) is arranged on the air outlet side of the heat exchanger (30).
13. An air treatment device, characterized in that: It comprises the indoor unit (10) as claimed in claim 12.
Citation Information
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