Air guide structure, indoor unit and air treatment equipment
By utilizing the first and second adjustment components in the air guide structure and the multi-output shaft drive method of the drive motor, the problem of limited air supply area of air handling equipment is solved, achieving a wider range and more flexible air supply effect, reducing blind spots, and improving user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-10
- Publication Date
- 2026-06-16
AI Technical Summary
Existing air handling equipment has a limited air delivery area, restricted air delivery angle, and is prone to blind spots, affecting comfort.
The system employs an air guide structure comprising a first adjustment component, a second adjustment component, and a drive motor. The first and second output shafts of the drive motor drive the two sets of adjustment components respectively, thereby enabling flexible adjustment of the air delivery area, reducing the number of parts and simplifying the structure.
It expands the air supply range, improves the flexibility and coverage of the air supply area, reduces blind spots, and enhances user comfort.
Smart Images

Figure CN224365048U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of air guiding structures, and more particularly to air guiding structures, indoor units, and air handling equipment. Background Technology
[0002] The air handling unit includes an indoor unit, and the air outlet of the indoor unit is equipped with an air guide plate. The air guide plate is rotatably connected to the air outlet, so that the airflow direction of the air outlet can be changed by changing the opening angle of the air guide plate relative to the air outlet.
[0003] The air outlet is also equipped with air guide vanes, which can move relative to the air outlet to change the air outlet direction of the air handling equipment. However, this method of adjusting the air supply direction results in a relatively limited air supply area for the air handling equipment. Utility Model Content
[0004] This application provides an air guide structure, an indoor unit, and an air handling equipment to solve the problem of limited air delivery area of the air handling equipment.
[0005] The air guiding structure provided in this application embodiment includes a first adjusting component, a second adjusting component, and a drive motor;
[0006] The first adjustment component and the second adjustment component are configured to be mounted on the housing;
[0007] The drive motor includes a main body, a first output shaft, and a second output shaft. The main body is disposed on the housing, and the first output shaft and the second output shaft are disposed on opposite sides of the main body.
[0008] The first output shaft can drive the first adjustment component to rotate relative to the housing, and the second output shaft can drive the second adjustment component to rotate relative to the housing.
[0009] By adopting the above technical solution, the air guide structure includes a first adjustment component, a second adjustment component, and a drive motor. The first and second adjustment components are disposed in the housing, and the first and second adjustment components can rotate relative to the housing to change their positions, thereby enabling the air supply area of the air handling equipment including the air guide structure to be more flexible and the air outlet range to be larger.
[0010] Furthermore, the first output shaft and the second output shaft are positioned on opposite sides of the main body, enabling the same drive motor to simultaneously drive the first adjustment component and the second adjustment component located on opposite sides of the drive motor. Compared to the traditional method that requires separate drive components, this allows for multiple uses of a single component and improves the working efficiency of the drive motor.
[0011] The drive motor includes a main body, a first output shaft, and a second output shaft. The main body can be mounted on a housing. The first output shaft and the second output shaft are disposed on opposite sides of the main body, such that the first output shaft and the second output shaft are located on opposite sides of the main body. The first output shaft can drive the first adjustment component to rotate relative to the housing, and the second output shaft can drive the second adjustment component to rotate relative to the housing.
[0012] By setting the drive motor to have a first output shaft and a second output shaft, the first adjustment component and the second adjustment component can be driven by a single drive motor. This makes the control process of the first adjustment component and the second adjustment component more convenient, makes the air delivery area of the air handling equipment including the air guide structure more flexible, simplifies the overall structure of the air guide structure, and reduces the number of parts in the air guide structure.
[0013] In some possible implementations, the first adjustment component and the second adjustment component are arranged side by side along a first direction; in the first direction, the drive motor is located between the first adjustment component and the second adjustment component;
[0014] Both the first output shaft and the second output shaft extend along the first direction;
[0015] Along the second direction, at least a portion of the projection of the first output shaft overlaps with the projection of the first adjustment component, and at least a portion of the projection of the second output shaft overlaps with the projection of the second adjustment component, wherein the second direction is perpendicular to the first direction.
[0016] In some possible implementations, the air guiding structure further includes a first transmission assembly and a second transmission assembly;
[0017] The input end of the first transmission component is connected to the first output shaft, and the output end of the first transmission component is connected to the first adjustment component;
[0018] The input end of the second transmission component is connected to the second output shaft, and the output end of the second transmission component is connected to the second adjustment component.
[0019] In some possible implementations, the first transmission assembly includes a cooperating first gear and a first rack;
[0020] The first gear is coaxially arranged with the first output shaft, and the first rack is arranged on the first adjusting component, extending around the rotation axis of the first adjusting component;
[0021] The second transmission component includes a cooperating second gear and a second rack;
[0022] The second gear is coaxially arranged with the second output shaft, and the second rack is arranged on the second adjusting component, extending around the rotation axis of the second adjusting component.
[0023] In some possible implementations, the bottom surface of the first adjustment component is provided with a first mounting groove, and the first rack is disposed in the first mounting groove;
[0024] The bottom surface of the second adjustment component is provided with a second mounting groove, and the second rack is disposed in the second mounting groove.
[0025] In some possible implementations, the first transmission component and the second transmission component are symmetrically arranged about the central axis of the body.
[0026] In some possible implementations, the air guide structure includes a mounting bracket for mounting on the housing;
[0027] Both the first adjustment component and the second adjustment component are rotatably mounted on the mounting bracket.
[0028] In some possible implementations, the first adjustment assembly includes a first support member and a plurality of first guide vanes, wherein the first support member is rotatably mounted on the mounting bracket and the first guide vanes are movably mounted on the first support member;
[0029] The second adjustment component includes a second support member and a plurality of second guide vanes. The second support member is rotatably mounted on the mounting bracket, and the second guide vanes are movably mounted on the second support member.
[0030] In some possible implementations, the air guide structure further includes a first motor and a second motor, the first motor and the second motor being disposed on the mounting bracket;
[0031] The output shaft of the first motor is used to drive the first guide vane to rotate relative to the first carrier. The rotation axis of the first adjustment component is located at the end of the first adjustment component away from the second adjustment component, and the rotation axis of the first adjustment component coincides with the output shaft of the first motor.
[0032] The output shaft of the second motor is used to drive the second guide vane to rotate relative to the second carrier. The rotation axis of the second adjustment component is located at the end of the second adjustment component away from the first adjustment component, and the rotation axis of the second adjustment component coincides with the output shaft of the second motor.
[0033] In some possible implementations, the first output shaft is provided with a first connecting rod, the first connecting rod is rotatably mounted on the mounting bracket, and the end of the first connecting rod away from the first output shaft is connected to the first adjusting component;
[0034] The second output shaft is provided with a second connecting rod, which is rotatably mounted on the mounting bracket, and the end of the second connecting rod away from the second output shaft is connected to the second adjusting component.
[0035] In some possible implementations, both the first adjustment component and the second adjustment component include a carrier and a guide vane, wherein the carrier is movably disposed on the housing and the guide vane is movably disposed on the carrier.
[0036] In some possible implementations, at least one of the first regulating component and the second regulating component further includes a regulating motor;
[0037] The regulating motor is mounted on the support member, and the output end of the regulating motor is connected to the air guide blade. The regulating motor can drive the air guide blade to rotate relative to the support member.
[0038] This application provides an indoor unit, including the air guide structure described in any of the above claims, and a heat exchanger, wherein the air guide structure is disposed on the air outlet side of the heat exchanger.
[0039] This application provides an air handling device, including the indoor unit described above. Attached Figure Description
[0040] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.
[0041] Figure 1 This is a schematic diagram of the structure of the indoor unit provided in an embodiment of this application;
[0042] Figure 2 for Figure 1 A schematic diagram showing the indoor unit in another state;
[0043] Figure 3 This is a schematic diagram of the air guide structure provided in the embodiments of this application;
[0044] Figure 4 for Figure 3 A schematic diagram of the air guiding structure in another state;
[0045] Figure 5 for Figure 3 A schematic diagram of the air guiding structure from another perspective;
[0046] Figure 6 for Figure 5 A schematic diagram of the air guiding structure in another state;
[0047] Figure 7 A schematic diagram of the air guide structure excluding the mounting bracket provided in an embodiment of this application;
[0048] Figure 8 An exploded view of the air guide structure provided in the embodiments of this application;
[0049] Figure 9 This is a schematic diagram of the structure of the first transmission assembly provided in an embodiment of this application;
[0050] Figure 10 This is a schematic diagram of the structure of the indoor unit provided in an embodiment of this application.
[0051] Explanation of reference numerals in the attached figures:
[0052] 10. Indoor unit;
[0053] 20. Air guide structure;
[0054] 30. Heat exchanger;
[0055] 100. Install the bracket;
[0056] 200, Adjustment component; 200a, First adjustment component; 200b, Second adjustment component;
[0057] 210, Supporting component; 211, First mounting slot; 212, Second mounting slot; 210a, First supporting component; 210b, Second supporting component; 220, Air guide vane; 220a, First air guide vane; 220b, Second air guide vane; 230, First motor; 240, Second motor;
[0058] 300. Drive motor;
[0059] 310. Main body; 320. First output shaft; 321. First connecting rod; 330. Second output shaft; 331. Second connecting rod;
[0060] 400. First transmission assembly;
[0061] 410. First rack; 420. First gear;
[0062] 500. Second transmission assembly;
[0063] 510, Second rack; 520, Second gear.
[0064] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation
[0065] As described in the background section, air handling equipment, taking air conditioning equipment as an example, typically has an air deflector at the air outlet. The air deflector is rotatably connected to the air outlet, and the airflow direction is adjusted by changing its opening angle relative to the air outlet. The airflow angle adjustment mainly relies on blades, which are generally fixed in a local area of the air outlet and rotated one-dimensionally by a lever, thereby achieving left-right sweeping or up-down oscillation.
[0066] However, the aforementioned adjustments to the air supply direction and angle have several drawbacks. Firstly, the area of the air supply zone is directly proportional to the area of the air outlet, limiting the adjustable air supply angle and resulting in a smaller air supply coverage area for the air conditioning unit, making it difficult to meet the air supply needs of large areas. Secondly, because the blades are located within the air duct and can only deflect at the same angle, blind spots can easily appear when adjusting the air supply angle, leading to significant indoor temperature differences and greatly affecting comfort.
[0067] As described in the background section, the air guide plate is rotatably connected to the air outlet of the indoor unit, thereby changing the airflow direction of the air outlet by altering the opening angle of the air guide plate relative to the air outlet. Air guide vanes may also be installed at the air outlet, and these vanes can move relative to the air outlet, thereby changing the airflow direction of the air handling equipment.
[0068] However, since the air guide vanes are usually rotated and installed at the air outlet, and the rotation angle of the air guide vanes relative to the air outlet is small, the change in the angle of the air guide vanes with respect to the air outlet direction is small, resulting in poor air guiding effect of the air guide vanes. This method of adjusting the air supply direction leads to a relatively limited air supply area of the air handling equipment.
[0069] To address the aforementioned technical problems, embodiments of this application provide an air guiding structure, an indoor unit, and an air handling device. The air guiding structure includes a first adjusting component, a second adjusting component, and a drive motor. The first and second adjusting components are disposed within a housing and are rotatable relative to the housing to change their positions. This allows the air handling device, including the air guiding structure, to have a more flexible air delivery area and a larger air outlet range.
[0070] The drive motor includes a main body, a first output shaft, and a second output shaft. The main body can be mounted on a housing. The first output shaft and the second output shaft are disposed on opposite sides of the main body, such that the first output shaft and the second output shaft are located on opposite sides of the main body. The first output shaft can drive the first adjustment component to rotate relative to the housing, and the second output shaft can drive the second adjustment component to rotate relative to the housing.
[0071] By setting the drive motor to have a first output shaft and a second output shaft, the first adjustment component and the second adjustment component can be driven by a single drive motor. This makes the control process of the first adjustment component and the second adjustment component more convenient, makes the air delivery area of the air handling equipment including the air guide structure more flexible, simplifies the overall structure of the air guide structure, and reduces the number of parts in the air guide structure.
[0072] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the appended claims.
[0073] The technical solution of this application and how the technical solution of this application solves the above-mentioned technical problems are described in detail below with specific embodiments. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments. The embodiments of this application will now be described with reference to the accompanying drawings.
[0074] Reference Figure 1 and Figure 2 and combined Figure 10 This application provides an air handling device, which includes, but is not limited to, air conditioning equipment, 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-type air conditioners, and central air conditioning systems.
[0075] For ease of explanation, this application describes the air handling unit as a split-type air conditioner. The air handling unit includes an indoor unit 10, which has an air outlet through which the air handling unit supplies air. Taking a wall-mounted air conditioner as an example, the indoor unit 10 of the air handling unit can be installed on a wall indoors, and the air outlet can be located on the front (the side facing away from the wall) of the indoor unit 10 and near its lower part. For example, the air outlet can be angled downwards, making the air delivery area of the air handling unit more suitable.
[0076] In the indoor unit 10, the air guide plate is a plate-like structure installed at the air outlet that covers the air outlet. In addition, at least one air guide structure 20 is also provided at the air outlet of the indoor unit 10. Specifically, the air delivery direction and angle of the indoor unit 10 can be adjusted by the air guide plate and the air guide structure 20 to achieve flexible air delivery by the air handling equipment.
[0077] Of course, the indoor unit 10 provided in this embodiment includes a heat exchanger 30, a compressor, and an air guide structure 20. The air guide structure 20 is disposed on the air outlet side of the heat exchanger 30. The indoor unit 10 guides the airflow direction through the air guide structure 20, adapting to different room layouts and user needs, helping to reduce blind spots in air supply and optimize airflow distribution. The heat exchanger 30 can be an evaporator or a condenser.
[0078] Reference Figure 3 and Figure 4 In some possible implementations, the air guide structure 20 may include an adjustment assembly 200. The adjustment assembly 200 may include a support member 210 and air guide blades 220, the air guide blades 220 being movably disposed on the support member 210.
[0079] The adjustment component 200 can be installed inside 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 closest to the wall as the basic air duct wall. Based on the above, the adjustment component 200 can be installed on the basic air duct wall. Correspondingly, the support member 210 can be installed on the basic air duct wall.
[0080] The surface of the support member 210 can be parallel to the wall surface of the basic air duct. Furthermore, the support member 210 can extend along the length of the air outlet to allow the adjustment assembly 200 to cover the air outlet. Each guide vane 220 is sequentially arranged along the surface of the support member 210, and each guide vane 220 is 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 equipment. This embodiment does not impose specific limitations on the structure of the air handling equipment.
[0081] In this application, the support member 210 is located close to the base duct wall to facilitate the installation of the adjustment assembly 200 onto the base duct wall. The guide vane 220 can be located on the side of the support member 210 facing away from the base duct wall, with the guide vane 220 facing the air outlet and extending towards the air outlet. In this way, the airflow within the duct can pass through the guide vane 220 before being blown out from the air outlet, thus guiding the airflow through the guide vane 220.
[0082] Reference Figures 5-8In some possible implementations, the air guide structure 20 also includes a drive motor 300. The output end of the drive motor 300 can drive the carrier 210 to move. At this time, the position of the carrier 210 relative to the air outlet changes, and the distance between the carrier 210 and the basic air duct wall changes.
[0083] Furthermore, since the air guide blades 220 are mounted on the support member 210, each air guide blade 220 on the support member 210 moves together with the support member 210. At this time, even if the air guide blades 220 do not change position relative to the support member 210, the position of the air guide blades 220 relative to the air outlet is changed, which can also achieve the effect of adjusting the air delivery angle of the air guide structure 20.
[0084] For example, at least one adjusting component 200 may also be provided with an adjusting motor. The adjusting motor is disposed on the carrier, and the output end of the adjusting motor is connected to the guide vanes. The adjusting motor can drive each guide vane 220 on the carrier 210 to move, so that each guide vane 220 relative to the carrier 210 can change position.
[0085] At this time, the angle between each guide vane 220 and the plate surface of the support member 210 changes in a certain direction, causing each guide vane 220 to deflect uniformly toward one side of the air outlet, thereby achieving the effect of adjusting the air delivery angle of the guide structure 20.
[0086] The number of air guiding structures 20 in the main body of the equipment can be one or more, for example, the number of air guiding structures 20 can be two or more.
[0087] As an optional implementation, the number of air guide structures 20 can be two, and the two air guide structures 20 can be arranged side by side and spaced apart along the length direction of the air outlet. The number of drive motors 300 can be one. The drive motor 300 can have two output terminals, and the two output terminals of the drive motor 300 are respectively connected to two adjustment components 200. Each output terminal of the drive motor 300 can drive the corresponding adjustment component 200 to move.
[0088] In this way, the two regulating components 200 can deliver air to different areas respectively, and the two regulating components 200 have different air delivery areas, which can expand the air delivery area of the air guide structure 20 and expand the air delivery coverage area of the indoor unit 10 of the air handling equipment.
[0089] The two output shafts of the drive motor 300 independently drive the two adjustment components 200, allowing the air delivery areas of the two components to be adjusted independently without any linkage between them. This makes the air handling unit suitable for different indoor layouts and usage needs. Users can flexibly adjust the air delivery areas of the two adjustment components 200 according to actual conditions to meet the needs of different environments for different air delivery areas. This ensures that the airflow blown by the air handling unit is fully and effectively utilized, avoiding waste and achieving multi-purpose functionality while improving the working efficiency of the drive motor 300.
[0090] Reference Figures 5-8 For example, the plurality of adjustment components 200 may include a first adjustment component 200a and a second adjustment component 200b. The first adjustment component 200a and the second adjustment component 200b may be arranged side-by-side along a first direction, which may be parallel to the length direction of the air outlet. (Refer to...) Figure 6 and Figure 7 The direction indicated by the X arrow.
[0091] Both the first adjustment component 200a and the second adjustment component 200b can rotate relative to the housing, so as to play a certain role in guiding airflow through the first adjustment component 200a and the second adjustment component 200b.
[0092] In some possible implementations, the drive motor 300 may be disposed within the housing.
[0093] For example, the drive motor 300 can be directly installed on the housing of the indoor unit 10, or the drive motor 300 can be installed on a mounting structure such as the mounting bracket 100. The drive motor 300 is at least used to drive the carrier 210 to move relative to the housing and drive the air guide blade 220 to move relative to the carrier 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.
[0094] It should be noted that the air guide structure 20 may include a mounting bracket 100, which allows the mounting bracket 100 to be used to mount the carrier 210 and the drive motor 300, etc. Alternatively, the air guide structure 20 may not include the mounting bracket 100, and the carrier 210 and the drive motor 300 may be directly mounted on 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.
[0095] The following embodiments use the air guide structure 20 including the mounting bracket 100 as an example to describe the specific components of the air guide structure 20. It should be noted that the housing of the indoor unit 10 can be reused as the mounting bracket 100, so that the carrier 210 and the drive motor 300 can be directly installed on the housing of the indoor unit 10.
[0096] Reference Figures 5-7 In some possible implementations, the mounting bracket 100 can be used to mount the housing. Both the first adjustment component 200a and the second adjustment component 200b are rotatably mounted on the mounting bracket 100, allowing them to rotate relative to the mounting bracket 100 and extend beyond the air outlet of the housing. By providing the mounting bracket 100, support points can be provided for the first adjustment component 200a and the second adjustment component 200b, thus improving their stability.
[0097] For example, in the first direction, the rotation axis of the first adjustment component 200a may be located at the end of the first adjustment component 200a away from the second adjustment component 200b, and the rotation axis of the second adjustment component 200b may be located at the end of the second adjustment component 200b away from the first adjustment component 200a.
[0098] For example, in the first direction, the first end of the first adjusting component 200a is away from the second adjusting component 200b, and the second end of the first adjusting component 200a is close to the second adjusting component 200b. The first end of the first adjusting component 200a can be used to connect to the output terminal of the drive motor 300. The first end of the second adjusting component 200b is away from the first adjusting component 200a, and the second end of the second adjusting component 200b is close to the first adjusting component 200a. The first end of the second adjusting component 200b can be used to connect to the output terminal of the drive motor 300.
[0099] When the drive motor 300 drives the first adjustment component 200a and the second adjustment component 200b to rotate relative to the mounting bracket 100, the drive motor 300 drives the first adjustment component 200a to rotate around the first end of the first adjustment component 200a, so that the second end of the first adjustment component 200a can extend through the air outlet, thereby realizing the adjustment of the position of the first adjustment component 200a.
[0100] The drive motor 300 drives the second adjustment component 200b to rotate around the first end of the second adjustment component 200b, so that the second end of the second adjustment component 200b can extend through the air outlet, thereby realizing the adjustment of the position of the second adjustment component 200b.
[0101] Reference Figures 5-7 In some possible implementations, the first adjustment assembly 200a may include a first support member 210a and a plurality of first guide vanes 220a. The first support member 210a is movably disposed on the housing, and the first guide vanes 220a are movably disposed on the first support member 210a.
[0102] The second adjustment assembly 200b may include a second support member 210b and a plurality of second guide vanes 220b. The second support member 210b is movably disposed on the housing, and the second guide vanes 220b are movably disposed on the second support member 210b.
[0103] In some possible implementations, the air guide structure 20 may also include a first motor 230 and a second motor 240, which may be mounted on the mounting bracket 100.
[0104] For example, the first motor 230 can be disposed on the first support member 210a. The first guide vane 220a can be disposed on the top of the first support member 210a, and the first motor 230 can be disposed on the bottom of the first support member 210a. The output shaft of the first motor 230 is used to drive the first guide vane 220a to rotate relative to the first support member 210a. The rotation axis of the first adjusting component 200a is located at the end of the first adjusting component 200a away from the second adjusting component 200b, and the rotation axis of the first adjusting component 200a coincides with the output shaft of the first motor 230. Through the above arrangement, the force transmission path of the first motor 230 can be shortened, stress concentration on the output shaft can be avoided, and the output stability of the first motor 230 can be improved.
[0105] The second motor 240 can be disposed on the second support member 210b. For example, the second guide vane 220b can be disposed on the top of the second support member 210b, and the second motor 240 can be disposed on the bottom of the second support member 210b. The output shaft of the second motor 240 can be connected to the second guide vane 220b, so that the output shaft of the second motor 240 can be used to drive the second guide vane 220b to rotate relative to the second support member 210b, and the output shaft of the second motor 240 can coincide with the rotation axis of the second adjusting component 200b. Through the above arrangement, the force transmission path of the second motor 240 is shortened, stress concentration on its output shaft is avoided, and the output stability of the second motor 240 is improved.
[0106] In other words, the first guide vane 220a of the first adjustment component 200a is driven independently by the first motor 230, and the second guide vane 220b of the second adjustment component 200b is driven independently by the second motor 240, so that the first guide vane 220a and the second guide vane 220b can rotate independently, and the orientation of the first guide vane 220a and the orientation of the second guide vane 220b can be controlled independently, so that the air supply area of the first adjustment component 200a and the second adjustment component 200b can be adjusted independently, and there is no linkage between the two.
[0107] Reference Figures 5-7In some possible implementations, the drive motor 300 includes a main body 310, a first output shaft 320, and a second output shaft 330. The main body 310 includes a housing, and a stator and a rotor that cooperate with each other. The stator and rotor can be disposed within the housing, thereby driving the output shaft to rotate through the stator and rotor.
[0108] For example, the number of stators and rotors can be set to multiple, such as two sets of stators and rotors. These two sets of stators and rotors can be arranged along a first direction and can be set independently to reduce the possibility of mutual interference between them. Of the two sets of stators and rotors, one set can output power through the first output shaft 320, and the other set can output power through the second output shaft 330.
[0109] The main body 310 can be disposed on the housing. In a first direction, the first output shaft 320 and the second output shaft 330 are disposed on opposite sides of the main body 310, such that the first output shaft 320 and the second output shaft 330 are respectively located on both sides of the main body 310. The first output shaft 320 can drive the first adjustment component 200a to rotate relative to the housing, and the second output shaft 330 can drive the second adjustment component 200b to rotate relative to the housing.
[0110] The first output shaft 320 and the second output shaft 330 are arranged on opposite sides of the main body 310, which enables the same drive motor 300 to simultaneously drive the first adjustment component 200a and the second adjustment component 200b located on opposite sides of the drive motor 300. Compared with the traditional method that requires separate drive components, this method can achieve multiple uses with one component and improve the working efficiency of the drive motor 300.
[0111] For example, in the first direction, the drive motor 300 can be located between the first adjustment component 200a and the second adjustment component 200b. The main body 310 of the drive motor 300 can be disposed on the mounting bracket 100. In the first direction, the first output shaft 320 can extend toward the first adjustment component 200a, and the extension direction of the first output shaft 320 can be parallel to the first direction. The second output shaft 330 can extend toward the second adjustment component 200b, and the extension direction of the second output shaft 330 can be parallel to the first direction.
[0112] The drive motor 300 can be located between the first adjustment component 200a and the second adjustment component 200b, which can reduce the distance between the first output shaft 320 and the first adjustment component 200a, and reduce the distance between the second output shaft 330 and the second adjustment component 200b. The distance between the drive motor 300 and the first drive component and the second drive component is the same or approximately the same, so that the transmission distance of the first output shaft 320 and the second output shaft 330 of the drive motor 300 is the same or approximately the same, thereby improving the output stability of the drive motor 300.
[0113] For example, the first output shaft 320 of the drive motor 300 may be provided with a first connecting rod 321. The first connecting rod 321 is rotatably mounted on the mounting bracket 100 about a first direction, and the end of the first connecting rod 321 away from the first output shaft 320 may be connected to the first adjusting component 200a, so that the first output shaft 320 of the drive motor 300 can drive the first support member 210a of the first adjusting component 200a to move relative to the housing through the first connecting rod 321.
[0114] The second output shaft 330 of the drive motor 300 may be provided with a second connecting rod 331. The second connecting rod 331 is rotatably mounted on the mounting bracket 100 about a first direction. The end of the second connecting rod 331 away from the second output shaft 330 may be connected to the second adjustment component 200b, so that the second output shaft 330 of the drive motor 300 can drive the second support member 210b of the second adjustment component 200b to move relative to the housing through the second connecting rod 331.
[0115] By adopting the above technical solution, the first connecting rod 321 can be used to connect the first output shaft 320 and the first carrier 210a, thereby transmitting power from the first output shaft 320 to the first carrier 210a through the first connecting rod 321. The second connecting rod 331 can be used to connect the second output shaft 330 and the second carrier 210b, thereby transmitting power from the second output shaft 330 to the second carrier 210b through the second connecting rod 331.
[0116] Furthermore, the mounting bracket 100 can provide a certain degree of support and fixation for the first link 321 and the second link 331, reducing the possibility of deformation of the first link 321 and the second link 331, and further ensuring the stability of the drive motor 300 in driving the first carrier 210a and the second carrier 210b to rotate relative to the housing.
[0117] Reference Figure 7In some possible implementations, the air guide structure 20 may further include a first transmission assembly 400. The input end of the first transmission assembly 400 may be connected to the first output shaft 320, and the output end of the first transmission assembly 400 may be connected to the first adjustment assembly 200a, so that the first output shaft 320 of the drive motor 300 can drive the first adjustment assembly 200a to rotate relative to the housing through the first transmission assembly 400.
[0118] For example, the first output shaft 320 may be provided with a first connecting rod 321, which may be connected to the input end of the first transmission assembly 400, and the output end of the first transmission assembly 400 may be connected to the first carrier 210a, so that the first connecting rod 321 drives the first carrier 210a to move through the first transmission assembly 400.
[0119] In some possible implementations, the air guide structure 20 may further include a second transmission assembly 500. The input end of the second transmission assembly 500 may be connected to the second output shaft 330, and the output end of the second transmission assembly 500 may be connected to the second adjustment assembly 200b, so that the second output shaft 330 of the drive motor 300 can drive the second adjustment assembly 200b to rotate relative to the housing via the second transmission assembly 500.
[0120] The first transmission assembly 400 and the second transmission assembly 500 are symmetrically arranged about the central axis of the main body 310, which simplifies the structure and facilitates later maintenance. Furthermore, the symmetrical arrangement of the first transmission assembly 400 and the second transmission assembly 500 can prevent the main body 310 from generating concentrated stress during operation.
[0121] For example, the second output shaft 330 may be provided with a second connecting rod 331, which may be connected to the input end of the second transmission assembly 500, and the output end of the second transmission assembly 500 may be connected to the second carrier 210b, so that the second connecting rod 331 drives the second carrier 210b to move through the second transmission assembly 500.
[0122] The first transmission assembly 400 and the second transmission assembly 500 can be configured with various transmission structures. For example, the first transmission assembly 400 and the second transmission assembly 500 can be configured as a mating gear and a rack. Alternatively, the first transmission assembly 400 and the second transmission assembly 500 can be configured as a mating worm gear and a worm. Alternatively, the first transmission assembly 400 and the second transmission assembly 500 can be configured as multiple mating gears.
[0123] It is easy to understand that the first transmission component 400 and the second transmission component 500 can also be configured with other structures to ensure the stability of the transmission process. The specific structure of the first transmission component 400 and the second transmission component 500 is not limited in the embodiments of this application.
[0124] Reference Figure 7 and Figure 9 In some possible implementations, the first transmission assembly 400 includes a cooperating first gear 420 and a first rack 410. The first gear 420 is coaxially disposed with the first output shaft 320, and the first rack 410 is disposed on the first adjustment assembly 200a and extends about the rotation axis of the first adjustment assembly 200a.
[0125] For example, the first gear 420 can be coaxially and fixedly connected to the first connecting rod 321, and the first gear 420 can rotate relative to the mounting bracket 100 about a first direction. The bottom surface of the first adjusting component 200a is provided with a first mounting groove 211, which can be located on the first support member 210a. The first rack 410 can be disposed in the first mounting groove 211, and the first rack 410 can cooperate with the first gear 420, so that the first adjusting component 200a can be driven to rotate about the housing through the cooperating first gear 420 and the first rack 410.
[0126] The first rack 410 can be disposed in the first mounting groove 211 of the first support member 210a. The tooth structure of the first rack 410 can face downwards, and the tooth structure of the first rack 410 can be flush with or protrude from the bottom surface of the first support member 210a to ensure that the first rack 410 can be used in conjunction with the first gear 420.
[0127] In some possible implementations, the second transmission assembly 500 includes a cooperating second gear 520 and a second rack 510. The second gear 520 is coaxially disposed with the second output shaft 330, and the second rack 510 is disposed on the second adjustment assembly 200b and extends about the rotation axis of the second adjustment assembly 200b.
[0128] For example, the second gear 520 can be coaxially and fixedly connected to the second connecting rod 331, and the second gear 520 can rotate relative to the mounting bracket 100 about a second direction. The bottom surface of the second adjusting component 200b is provided with a second mounting groove 212, which can be located on the second support member 210b. The second rack 510 can be disposed in the second mounting groove 212, and the second rack 510 can cooperate with the second gear 520, so that the second adjusting component 200b can be driven to rotate about the housing through the cooperating second gear 520 and the second rack 510.
[0129] The second rack 510 can be disposed in the second mounting groove 212 of the second support member 210b. The tooth structure of the second rack 510 can face downwards, and the tooth structure of the second rack 510 can be flush with or protrude from the bottom surface of the second support member 210b to ensure that the second rack 510 can be used in conjunction with the second gear 520.
[0130] This application provides an air handling device, including an indoor unit 10 and a compressor, with a heat exchanger 30 connected to the compressor.
[0131] In summary, the air guide structure 20 includes a first adjusting component 200a, a second adjusting component 200b, and a drive motor 300. The first adjusting component 200a and the second adjusting component 200b are disposed on the housing of the indoor unit 10. The first adjusting component 200a and the second adjusting component 200b can rotate relative to the housing of the indoor unit 10 to change their positions, thereby enabling the air supply area of the air handling equipment including the air guide structure 20 to be more flexible and the air outlet range to be larger.
[0132] The drive motor 300 includes a main body 310, a first output shaft 320 and a second output shaft 330. The main body 310 can be disposed on the housing. The first output shaft 320 and the second output shaft 330 are disposed on opposite sides of the main body 310, such that the first output shaft 320 and the second output shaft 330 are respectively located on both sides of the main body 310. The first output shaft 320 can drive the first adjustment component 200a to rotate relative to the housing, and the second output shaft 330 can drive the second adjustment component 200b to rotate relative to the housing.
[0133] By configuring the drive motor 300 to have a first output shaft 320 and a second output shaft 330, the first adjustment component 200a and the second adjustment component 200b can be driven by a single drive motor 300. This makes the control process of the first adjustment component 200a and the second adjustment component 200b more convenient, makes the air delivery area of the air handling equipment including the air guide structure 20 more flexible, simplifies the overall structure of the air guide structure 20, and reduces the number of parts in the air guide structure 20.
[0134] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0135] In the description of this utility model, it should be understood that the terms "comprising" and "having" as used herein, and any variations thereof, are intended to cover non-exclusive inclusion, for example, a process, method, system, product, or device that includes a series of steps or units is not necessarily limited to those steps or units that are explicitly listed, but may include other steps or units that are not explicitly listed or that are inherent to such process, method, product, or device.
[0136] Unless otherwise expressly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features.
[0137] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model.
Claims
1. An air guiding structure, characterized in that, It includes a first adjustment component (200a), a second adjustment component (200b), and a drive motor (300); The first adjustment component (200a) and the second adjustment component (200b) are disposed on the housing; The drive motor (300) includes a main body (310), a first output shaft (320) and a second output shaft (330). The main body (310) is disposed on the housing, and the first output shaft (320) and the second output shaft (330) are disposed on opposite sides of the main body (310). The first output shaft (320) can drive the first adjustment component (200a) to rotate relative to the housing, and the second output shaft (330) can drive the second adjustment component (200b) to rotate relative to the housing.
2. The air guiding structure according to claim 1, characterized in that, The first adjustment component (200a) and the second adjustment component (200b) are arranged side by side along a first direction; in the first direction, the drive motor (300) is located between the first adjustment component (200a) and the second adjustment component (200b); Both the first output shaft (320) and the second output shaft (330) extend along the first direction; Along the second direction, at least a portion of the projection of the first output shaft (320) overlaps with the projection of the first adjustment component (200a), and at least a portion of the projection of the second output shaft (330) overlaps with the projection of the second adjustment component (200b), the second direction being perpendicular to the first direction.
3. The air guiding structure according to claim 1, characterized in that, The air guide structure (20) also includes a first transmission assembly (400) and a second transmission assembly (500); The input end of the first transmission assembly (400) is connected to the first output shaft (320), and the output end of the first transmission assembly (400) is connected to the first adjustment assembly (200a); The input end of the second transmission component (500) is connected to the second output shaft (330), and the output end of the second transmission component (500) is connected to the second adjustment component (200b).
4. The air guiding structure according to claim 3, characterized in that, The first transmission assembly (400) includes a first gear (420) and a first rack (410) that cooperate with each other; The first gear (420) is coaxially arranged with the first output shaft (320), and the first rack (410) is disposed on the first adjusting component (200a). The first rack (410) extends around the rotation axis of the first adjusting component (200a). The second transmission assembly (500) includes a cooperating second gear (520) and a second rack (510); The second gear (520) is coaxially arranged with the second output shaft (330), and the second rack (510) is disposed on the second adjustment assembly (200b). The second rack (510) extends around the rotation axis of the second adjustment assembly (200b).
5. The air guiding structure according to claim 4, characterized in that, The bottom surface of the first adjustment component (200a) is provided with a first mounting groove (211), and the first rack (410) is disposed in the first mounting groove (211); The bottom surface of the second adjustment component (200b) is provided with a second mounting groove (212), and the second rack (510) is disposed in the second mounting groove (212).
6. The air guiding structure according to claim 3, characterized in that, The first transmission component (400) and the second transmission component (500) are symmetrically arranged about the central axis of the main body (310).
7. The air guiding structure according to any one of claims 1-6, characterized in that, The air guide structure (20) includes a mounting bracket (100) for mounting on the housing; Both the first adjustment component (200a) and the second adjustment component (200b) are rotatably mounted on the mounting bracket (100).
8. The air guiding structure according to claim 7, characterized in that, The first adjustment component (200a) includes a first support member (210a) and a plurality of first guide vanes (220a). The first support member (210a) is rotatably mounted on the mounting bracket (100), and the first guide vanes (220a) are movably mounted on the first support member (210a). The second adjustment component (200b) includes a second support member (210b) and a plurality of second guide vanes (220b). The second support member (210b) is rotatably mounted on the mounting bracket (100), and the second guide vanes (220b) are movably mounted on the second support member (210b).
9. The air guiding structure according to claim 8, characterized in that, The air guide structure (20) further includes a first motor (230) and a second motor (240), the first motor (230) and the second motor (240) being disposed on the mounting bracket (100); The output shaft of the first motor (230) is used to drive the first guide vane (220a) to rotate relative to the first carrier (210a); the rotation axis of the first adjustment component (200a) is located at the end of the first adjustment component (200a) away from the second adjustment component (200b), and the rotation axis of the first adjustment component (200a) coincides with the output shaft of the first motor (230); The output shaft of the second motor (240) is used to drive the second guide vane (220b) to rotate relative to the second carrier (210b); the rotation axis of the second adjustment component (200b) is located at the end of the second adjustment component (200b) away from the first adjustment component (200a), and the rotation axis of the second adjustment component (200b) coincides with the output shaft of the second motor (240).
10. The air guiding structure according to claim 7, characterized in that, The first output shaft (320) is provided with a first connecting rod (321), the first connecting rod (321) is rotatably mounted on the mounting bracket (100), and the end of the first connecting rod (321) away from the first output shaft (320) is connected to the first adjusting component (200a); The second output shaft (330) is provided with a second connecting rod (331), which is rotatably mounted on the mounting bracket (100). The end of the second connecting rod (331) away from the second output shaft (330) is connected to the second adjusting component (200b).
11. An indoor unit, characterized in that, Includes an air guide structure (20) as described in any one of claims 1-10, and a heat exchanger (30), wherein the air guide structure (20) is disposed on the air outlet side of the heat exchanger (30).
12. An air handling device, characterized in that, Including the indoor unit (10) as described in claim 11.