Air guide structure, indoor unit and air treatment equipment
By using the adjustment components and drive motor in the air guide structure, the problem of limited air delivery area in air handling equipment is solved, enabling a wider range of air delivery and more flexible airflow control, thus optimizing air delivery effect and energy efficiency.
Patent Information
- Application Number
- CN202510949553.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-10
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2045-07-10
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 and air delivery coverage.
The system employs an air-guiding structure, including an adjustment component and a drive motor. By controlling the different states of the control components, the carrier and air-guiding blades are driven to move, increasing the air delivery range and flexibility while simplifying the structure.
This increases the flexibility of the air supply area of the air handling equipment, reduces blind spots, optimizes airflow distribution, and improves energy efficiency and air supply coverage.
Smart Images

Figure CN120444735B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of air guide structure, in particular to an air guide structure, an indoor unit and an air treatment device. BACKGROUND
[0002] The air treatment device comprises an indoor unit, and an air deflector is arranged at an air outlet of the indoor unit. The air deflector is rotationally connected to the air outlet, so that the air supply direction of the air outlet can be changed by changing the opening angle of the air deflector relative to the air outlet.
[0003] An air guide vane is further arranged at the air outlet, and the air guide vane can move relative to the air outlet to change the air outlet direction of the air treatment device. However, the above-mentioned air supply direction adjusting mode causes the air supply area of the air treatment device to be relatively limited. SUMMARY
[0004] The air guide structure, the indoor unit and the air treatment device provided by the embodiments of the present application can solve the problem of limited air supply area of the air treatment device.
[0005] The air guide structure provided by the embodiments of the present application comprises an adjusting assembly and a driving motor;
[0006] The adjusting assembly comprises a bearing member and an air guide vane, the bearing member is movably arranged in a housing, and the air guide vane is movably arranged in the bearing member;
[0007] The driving motor is arranged in the housing, an output end of the driving motor is provided with a control member, and the control member has a first output part and a second output part;
[0008] When the control member is in a first state, the first output part is connected with the bearing member, and the driving motor drives the bearing member to move relative to the housing through the control member;
[0009] When the control member is in a second state, the second output part is connected with the air guide vane, and the driving motor drives the air guide vane to move relative to the bearing member through the control member.
[0010] By adopting the above technical solution, the air guide structure comprises the adjusting assembly and the driving motor, the adjusting assembly comprises the bearing member and the air guide vane, the bearing member is movably arranged in the housing or the mounting bracket, and the air guide vane is movably arranged in the bearing member, so that the bearing member can move relative to the housing, and the air guide vane can move relative to the bearing member. Therefore, the air supply area of the air treatment device comprising the air guide structure is more flexible, and the air outlet range is larger.
[0011] The driving motor is arranged in the shell, and the output end of the driving motor is provided with a control member. The control member has a first output part and a second output part. The first output part can be connected with or disconnected from the bearing member, and the second output part can be connected with or disconnected from the guide vane. Thus, by changing the state of the control member, the driving motor can drive the bearing member and the guide vane to move through the control member.
[0012] When the control member is in the first state, the first output part is connected with the bearing member, and the driving motor drives the bearing member to move relative to the shell through the control member. When the control member is in the second state, the second output part is connected with the guide vane, and the driving motor drives the guide vane to move relative to the bearing member through the control member. Thus, by cooperating the driving motor and the control member, the bearing member and the guide vane can be driven, so that the air supply area of the air handling equipment including the guide structure is more flexible, the overall structure of the guide structure is simplified, and the number of parts of the guide structure is reduced.
[0013] In some possible embodiments, the control member includes a fixed part and a movable part connected with each other.
[0014] The fixed part is fixedly connected with the output end of the driving motor.
[0015] The movable part is movable relative to the fixed part, and the movable part is connected with the first output part and the second output part.
[0016] In some possible embodiments, when the control member is in the first state, the movable part is in a first position; the first output part is connected with the bearing member, and the second output part is disconnected from the guide vane.
[0017] When the control member is in the second state, the movable part is in a second position; the first output part is disconnected from the bearing member, and the second output part is connected with the guide vane.
[0018] In some possible embodiments, the movable part is arranged as a movable tube, the movable tube is sleeved outside the fixed part, and is movable relative to the fixed part in a direction close to or away from the driving motor.
[0019] One of the first output part and the second output part is located outside the movable tube, and the other of the first output part and the second output part is located inside the movable tube.
[0020] In some possible embodiments, the bearing member is provided with a first connecting part, and the first connecting part is used in cooperation with the first output part.
[0021] The guide vane is provided with a second connecting part, and the second connecting part is used in cooperation with the second output part.
[0022] In some possible embodiments, the second connecting part is arranged inside the first connecting part and is rotatable relative to the first connecting part.
[0023] The first output part is arranged outside the movable tube, and the second output part is arranged inside the movable tube.
[0024] When the control part is in the first state, the movable part is in a first position; the first output part is connected with the first connecting part, and the second output part is disconnected with the second connecting part.
[0025] When the control part is in the second state, the movable part is in a second position; the first output part is disconnected with the first connecting part, and the second output part is connected with the second connecting part.
[0026] In some possible embodiments, the first output part is a first fixed slot.
[0027] The first connecting part is movable in the first fixed slot along a preset direction.
[0028] When the movable part is in the first position, the movable part is away from the driving motor, and the first connecting part is arranged inside the first fixed slot.
[0029] When the movable part is in the second position, the movable part is close to the driving motor, and the first connecting part is arranged outside the first fixed slot.
[0030] In some possible embodiments, the second output part is a second fixed slot.
[0031] The second connecting part is movable in the second fixed slot along a preset direction.
[0032] When the movable part is in the first position, the movable part is away from the driving motor, and the second connecting part is arranged inside the second fixed slot.
[0033] When the movable part is in the second position, the movable part is close to the driving motor, and the second connecting part is arranged outside the second fixed slot.
[0034] In some possible embodiments, the first connecting part and the second connecting part are coaxially arranged.
[0035] In some possible embodiments, the adjusting assembly further comprises a mounting bracket, which is arranged on the shell.
[0036] The bearing part is rotatably arranged on a top surface of the mounting bracket, and the driving motor is arranged on a bottom surface of the mounting bracket.
[0037] In some possible implementation manners, the mounting bracket is provided with a mounting opening, and the first output part and the second output part are arranged in the mounting opening.
[0038] Alternatively, the mounting bracket is provided with a mounting opening, the carrier is provided with a first connecting part, the air guide blade is provided with a second connecting part, and the first connecting part and the second connecting part are arranged in the mounting opening.
[0039] The embodiment of the present application provides an indoor unit, which comprises the air guide structure described in any one of the preceding items and a heat exchanger, and the air guide structure is arranged on the air outlet side of the heat exchanger.
[0040] The embodiment of the present application provides an air treatment device, which comprises the indoor unit described above. BRIEF DESCRIPTION OF DRAWINGS
[0041] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and serve to explain the principles of the present application together with the specification.
[0042] Figure 1 The structural schematic diagram of the indoor unit provided by the embodiment of the present application is shown in FIG. 1;
[0043] Figure 2 The structural schematic diagram of the indoor unit in another state in FIG. 1 is shown in FIG. 2; Figure 1
[0044] Figure 3 The structural schematic diagram of the air guide structure provided by the embodiment of the present application is shown in FIG. 3;
[0045] Figure 4 The structural schematic diagram of the air guide structure in another state in FIG. 3 is shown in FIG. 4; Figure 3
[0046] The structural schematic diagram of the air guide structure in another view in FIG. 3 is shown in FIG. 5; Figure 5 Figure 3 The structural schematic diagram of the air guide structure in another state in FIG. 3 is shown in FIG. 6;
[0047] Figure 6 Figure 5 The structural schematic diagram of the air guide structure in another state in FIG. 3 is shown in FIG. 7;
[0048] Figure 7 The structural schematic diagram of the control part in the air guide structure of the embodiment of the present application in a first state is shown in FIG. 8;
[0049] Figure 8 The structural schematic diagram of the control part in the air guide structure of the embodiment of the present application in a second state is shown in FIG. 9;
[0050] Figure 9 The exploded view of the air guide structure provided by the embodiment of the present application is shown in FIG. 10.
[0051] Figure 10 A cross-sectional exploded view of the air guide structure provided for the embodiment of the present application;
[0052] Figure 11 A cross-sectional view of the control member provided for the embodiment of the present application;
[0053] Figure 12 A schematic view of the second connecting part provided for the embodiment of the present application;
[0054] Figure 13 A structural schematic view of the indoor unit provided for the embodiment of the present application.
[0055] Explanation of reference signs:
[0056] 10, indoor unit;
[0057] 20, air guide structure;
[0058] 30, heat exchanger;
[0059] 100, mounting bracket; 101, mounting port;
[0060] 200, adjusting assembly;
[0061] 210, carrier; 211, upper housing; 212, lower housing; 213, first connecting part; 220, air guide blade; 221, second connecting part;
[0062] 300, driving motor;
[0063] 400, control member;
[0064] 410, fixed part; 420, movable part; 421, first output part; 4211, first fixed slot; 422, second output part; 4221, second fixed slot.
[0065] The above drawings have shown the specific embodiments of the present application, which will be described in more details hereinafter. These drawings and written descriptions are not intended to limit the scope of the concept of the present application by any means, but to illustrate the concept of the present application to those skilled in the art by referring to specific embodiments. DETAILED DESCRIPTION
[0066] As described in the background, air handling equipment, for example air conditioning equipment, is generally provided with an air deflector at the air outlet. The air deflector is connected to the air outlet in a rotating manner, and the air deflection direction is adjusted by changing the opening angle of the air deflector relative to the air outlet. The air deflection angle adjustment mainly relies on the air deflection blades, which are generally fixed in the local area of the air outlet and pulled by a pull rod to realize one-dimensional rotation, so as to achieve left-right air sweeping or up-down air swinging.
[0067] However, the above-mentioned air supply direction and air supply angle adjustment has many disadvantages. On the one hand, the air supply area is positively correlated with the outlet area, which limits the adjustable air supply angle, so that the air supply coverage area of the air conditioning equipment is small, and it is difficult to meet the air supply demand of a large area. On the other hand, since the blade is located in the air duct and can only be deflected at the same rotation angle, when adjusting the air supply angle, a blind area of air supply is easily generated, thereby causing a significant indoor temperature difference and greatly affecting the comfort.
[0068] As described in the background, the air deflector is rotationally connected to the outlet of the indoor unit, so that the air supply direction of the outlet can be changed by changing the angle at which the air deflector is opened relative to the outlet. The outlet can also be provided with an air deflector blade, which can move relative to the outlet to change the air supply direction of the air handling equipment.
[0069] However, since the air deflector blade usually needs to be rotationally installed at the outlet, and the rotation angle of the air deflector blade relative to the outlet is small, the air deflector blade changes the air supply direction by a small angle, and the air deflector blade has poor air deflection effect. The above-mentioned air supply direction adjustment method limits the air supply area of the air handling equipment.
[0070] To solve the above-mentioned technical problems, the embodiments of the present application provide an air deflection structure, an indoor unit and an air handling equipment. The air deflection structure comprises an adjusting assembly and a driving motor. The adjusting assembly comprises a carrier and an air deflector blade. The carrier is movably arranged in a housing or a mounting bracket. The air deflector blade is movably arranged in the carrier. The carrier can move relative to the housing of the indoor unit. The air deflector blade can move relative to the carrier. The carrier can drive the air deflector blade to move relative to the housing to change the position of the air deflector blade relative to the housing. The air deflector blade can move relative to the carrier to change the orientation and angle of the air deflector blade. Thus, the air supply area of the air handling equipment comprising the air deflection structure can be more flexible, and the air supply range can be larger.
[0071] The driving motor is arranged in the housing. The output end of the driving motor is provided with a control member. The control member has a first output part and a second output part. The first output part can be connected or disconnected with the carrier. The second output part can be connected or disconnected with the air deflector blade. Thus, the driving motor can drive the carrier and the air deflector blade to move through the control member by changing the state of the control member.
[0072] When the control member is in the first state, the first output portion is connected with the bearing member, and the driving motor drives the bearing member to move relative to the housing through the control member. When the control member is in the second state, the second output portion is connected with the guide vane, and the driving motor drives the guide vane to move relative to the bearing member through the control member. Thus, the air handling device including the guide structure can be driven by the driving motor and the control member in cooperation, the air supply area of the air handling device including the guide structure is more flexible, the overall structure of the guide structure is simplified, and the number of components of the guide structure is reduced.
[0073] The exemplary embodiments will be described in detail hereinbelow with reference to the drawings. In the following description, the same numbers refer to the same or similar elements throughout the drawings. The implementations described in the following exemplary embodiments do not represent all implementations consistent with the present application. Instead, they only describe example devices and methods consistent with some aspects of the present application, as detailed in the appended claims.
[0074] The technical solutions of the present application and how the technical solutions solve the above technical problems will be described in detail below with specific examples. The following specific examples can be combined with each other, and the same or similar concepts or processes may not be described again in some examples. The embodiments of the present application will be described below with reference to the drawings.
[0075] Referring to Figure 1 and Figure 2 , and in combination with Figure 13 , the embodiments of the present application provide an air handling device, which includes but is not limited to an air conditioning device, a humidifier, a dehumidifier, a ventilation device, a heat recovery ventilation system, an air purifier, and a fresh air device, etc. The air conditioning device includes but is not limited to a mobile air conditioner, a window air conditioner, a split air conditioner, a central air conditioner, etc.
[0076] For ease of description, the embodiments of the present application are described by taking a split air conditioner as an example. The air handling device includes an indoor unit 10, and the indoor unit 10 has an air outlet through which the air handling device supplies air outward. Taking a wall-mounted air conditioner as an example, the indoor unit 10 of the air handling device can be installed on a wall in a room, and the air outlet can be arranged on the front side (the side surface away from the wall) of the indoor unit 10 and close to the lower part. For example, the air outlet can be arranged obliquely downward, and the air supply area of the air handling device is more appropriate.
[0077] The air deflector is a plate-shaped structure installed at the air outlet of the indoor unit 10 and capable of covering the air outlet. On this basis, the air outlet of the indoor unit 10 is further provided with at least one air guide structure 20. Specifically, the air supply direction and angle of the air handling device indoor unit 10 can be adjusted by the air deflector and the air guide structure 20, so that the air handling device can flexibly supply air.
[0078] Of course, the indoor unit 10 provided by 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 air direction of the air outlet through the air guide structure 20, adapts to different room layouts and user needs, helps to reduce the air supply blind area, and optimizes the distribution of air flow. The heat exchanger 30 can be an evaporator or a condenser. For details, refer to Figures 1-6 In some possible implementation manners, the air guide structure 20 can include an adjusting assembly 200. The adjusting assembly 200 can include a carrier 210 and air guide blades 220, and the air guide blades 220 can be movably arranged on the carrier 210.
[0079] The adjusting assembly 200 can be installed in an air duct of the indoor unit 10. Specifically, the air duct includes an air duct wall, for ease of description, the embodiment defines a side wall surface of the air duct close to a wall as a basic air duct wall, and on this basis, the adjusting assembly 200 can be installed on the basic air duct wall. Correspondingly, the carrier 210 can be installed on the basic air duct wall.
[0080] The plate surface of the carrier 210 can be parallel to the wall surface of the basic air duct wall. Further, the carrier 210 can extend along the length direction of the air outlet, so that the adjusting assembly 200 can cover the air outlet. The air guide blades 220 are arranged in sequence along the plate surface of the carrier 210, and the air guide blades 220 are movably connected to the carrier 210. The carrier 210 can be movably arranged on the shell or mounting bracket 100 of the air handling device, and the structure of the air handling device is not limited in the embodiment of the present application.
[0081] In the present application, the carrier 210 is close to the basic air duct wall, so as to install the adjusting assembly 200 on the basic air duct wall through the carrier 210. The air guide blades 220 can be located on the side plate surface of the carrier 210 away from the basic air duct wall, the air guide blades 220 face the air outlet, and the air guide blades 220 extend toward the air outlet. In this way, the air flow in the air duct can be blown out from the air outlet after passing through the air guide blades 220, so as to guide the air flow through the air guide blades 220.
[0082] For details, refer to Figures 7-10In some possible implementation manners, the air guiding structure 20 further comprises a driving motor 300. The driving motor 300 is arranged in the housing, and an output end of the driving motor 300 is provided with a control member 400. The output end of the driving motor 300 can be connected to the carrier 210 and the air guiding blade 220 through the control member 400.
[0083] When the output end of the driving motor 300 can drive the adjusting assembly 200 to move through the control member 400, the carrier 210 can be driven to move, and the air guiding blade 220 on the carrier 210 can also be driven to move, so that the carrier 210 and the air guiding blade 220 in the adjusting assembly 200 can be driven to move through one motor.
[0084] For example, the control member 400 can have a first output part 421 and a second output part 422. The first output part 421 can be connected to or disconnected from the carrier 210, and the second output part 422 can be connected to or disconnected from the air guiding blade 220, so that the driving motor 300 can drive the carrier 210 and the air guiding blade 220 to move through the control member 400 by changing the state of the control member 400.
[0085] When the control member 400 is in the first state, the first output part 421 is connected to the carrier 210, and the driving 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 part 422 is connected to the air guiding blade 220, and the driving motor 300 drives the air guiding blade 220 to move relative to the carrier 210 through the control member 400, so that the carrier 210 and the air guiding blade 220 can be driven by the driving motor 300 and the control member 400 in cooperation, the air supply area of the air handling device comprising the air guiding structure 20 is more flexible, the overall structure of the air guiding structure 20 is simplified, and the number of components of the air guiding structure 20 is reduced.
[0086] It can be understood that when the control member 400 is in the second state, the output end of the driving motor 300 can drive each air guiding blade 220 on the carrier 210 to move through the control member 400, so that each air guiding blade 220 can change the position relative to the carrier 210. At this time, the included angle between each air guiding blade 220 and a certain direction of the plate surface of the carrier 210 changes, each air guiding blade 220 deflects to one side of the air outlet, and the effect of adjusting the air supply angle of the air guiding structure 20 is achieved.
[0087] It can also be 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 through 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 wall of the base air duct changes. Moreover, since the air guide blades 220 are arranged 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 changes, and the same effect of adjusting the air supply angle of the air guide structure 20 can be achieved.
[0088] As for the number of air guide structures 20 in the device body, it can be one or more, for example, the number of air guide structures 20 can be two or more.
[0089] Referring to Figures 3-6 As an optional embodiment, the number of air guide structures 20 can be two, and the two air guide structures 20 can be arranged at intervals along the length direction of the air outlet. The number of drive motors 300 matched with the air guide structure 20 can also be two. The two drive motors 300 are respectively connected with the adjustment assemblies 200 in the two air guide structures 20, and each drive motor 300 can drive the corresponding adjustment assembly 200 to move.
[0090] In this way, the two adjustment assemblies 200 can respectively supply air to different areas, and the two adjustment assemblies 200 respectively have different air supply areas, which can expand the air supply area of the air guide structure 20 and expand the air supply coverage area of the air handling device indoor unit 10.
[0091] Through independent driving of the two adjustment assemblies 200 by the two drive motors 300 respectively, the air supply areas of the two adjustment assemblies 200 can be independently adjusted, and there is no linkage relationship between them. In this way, the air handling device can be suitable for different indoor layouts and use requirements, and the user can flexibly adjust and control the air supply areas of the two adjustment assemblies 200 according to the actual conditions. In order to meet the needs of different environments for different air supply areas, so that the air flow blown by the air handling device can be fully and effectively utilized, and waste can be avoided.
[0092] In some possible embodiments, the drive motor 300 can be directly installed on the shell of the indoor unit 10, or the drive motor 300 can be arranged on the mounting bracket 100 or other mounting structure, and the drive motor 300 is at least used to drive the carrier 210 to move relative to the shell and drive the air guide blades 220 to move relative to the carrier 210, so as to adjust the position and orientation of the air guide blades 220 through the drive motor 300, thereby increasing the movement range of the air guide blades 220.
[0093] It should be noted that the air guide structure 20 can include the mounting bracket 100, so that the mounting bracket 100 can be used to mount the carrier 210, the drive motor 300 and the like. Alternatively, the air guide structure 20 can not include the mounting bracket 100, and the carrier 210 and the drive motor 300 can be directly mounted to the shell of the indoor unit 10, thereby reducing the number of components required by the air guide structure 20 and simplifying the structure of the indoor unit 10.
[0094] The following embodiments will be described with the air guide structure 20 including the mounting bracket 100. It should be noted that the shell of the indoor unit 10 can be used as the mounting bracket 100, so that the carrier 210 and the drive motor 300 can be directly mounted to the shell of the indoor unit 10.
[0095] When it is necessary to guide the air outlet process of the indoor unit 10 through the air guide structure 20, the control member 400 is in the first state, and the output end of the drive motor 300 can drive the carrier 210 to move relative to the mounting bracket 100 through the first output portion 421 of the control member 400. The control member 400 is in the second state, and the output end of the drive motor 300 can drive the air guide vane 220 to move relative to the carrier 210 through the second output portion 422 of the control member 400, thereby increasing the movement range of the air guide vane 220 relative to the mounting bracket 100, realizing the control of the air outlet angle of the indoor unit 10, so that the air guide structure 20 can adapt to different room layouts and user needs, helping to reduce the air outlet blind area and optimize the distribution of air flow.
[0096] The drive motor 300 can independently drive the carrier 210 and the air guide vane 220 through different states of the control member 400, so that the air guide vane 220 can not only move together with the carrier 210 to the outside of the air outlet, but also increase the rotation angle of the air guide vane 220, thereby increasing the angle change of the air guide vane 220 to the air outlet direction, improving the air guide effect of the air guide vane 220 and increasing the air outlet area of the air treatment equipment.
[0097] The drive motor 300 controls the air guide vane 220 and the carrier 210 through different states of the control member 400, which is beneficial to improve the accuracy of air flow adjustment, and users can individually adjust the air outlet angle range of the air guide vane 220 or the carrier 210 according to needs. The cooperating drive motor 300 and control member 400 also provide greater adjustment range and flexibility to realize complex air flow modes to adapt to different room layouts and use scenarios.
[0098] By adjusting the angles of the guide vane 220 and the carrier 210 respectively, more uniform and effective airflow distribution can be achieved, and precise airflow control can reduce the running time and energy consumption of an air handling device (e.g., an air conditioning device) using the guide structure 20, thereby improving overall energy efficiency.
[0099] With reference to Figures 7-10 In some possible embodiments, the carrier 210 can include an upper shell 211 and a lower shell 212 connected together, and the upper shell 211 and the lower shell 212 enclose a receiving cavity which can provide a mounting base for other structures to be supported and protected by the carrier 210.
[0100] It should be noted that the mounting bracket 100 can be used to be mounted at the air outlet of the indoor unit 10, and the mounting bracket 100 can be fixedly connected to the shell of the indoor unit 10. The top surface of the mounting bracket 100 can be used as a mounting base of the carrier 210, so that the carrier 210 can move relative to the mounting bracket 100, and at least part of the carrier 210 can extend out of the air outlet of the indoor unit 10.
[0101] For example, the lower shell 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 shell 212. The upper shell 211 of the carrier 210 can be used to mount the guide vane 220, so that the guide vane 220 can rotate relative to the upper shell 211 of the carrier 210.
[0102] In some possible embodiments, the control member 400 can include a fixed part 410 and a movable part 420 connected together. The fixed part 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 part 410 to rotate, and the fixed part 410 can drive the movable part 420 to rotate.
[0103] For example, the movable part 420 can move relative to the fixed part 410, and a preset direction can be set as the axis direction of the output end of the drive motor 300. The preset direction is shown by the arrow X in Figure 7 FIG. 4.
[0104] The movable part 420 can move towards or away from the drive motor 300 relative to the fixed part 410. The movable part 420 is connected to a first output part 421 and a second output part 422, so that the movable part 420 can drive the first output part 421 and the second output part 422 to move relative to the fixed part 410, thereby adjusting and changing the positions of the first output part 421 and the second output part 422.
[0105] When the control member 400 is in the first state, the movable part 420 can be in the first position in the preset direction. The first output part 421 can be connected with the bearing member 210, and the second output part 422 can be disconnected with the guide blade 220, so that the control member 400 can be relatively fixed with the bearing member 210, thereby enabling the driving motor 300 to drive the bearing member 210 to move relative to the shell through the control member 400.
[0106] When the control member 400 is in the second state, the movable part 420 can be in the second position in the preset direction. The first output part 421 can be disconnected with the bearing member 210, and the second output part 422 can be connected with the guide blade 220, so that the control member 400 can be relatively fixed with the guide blade 220, thereby enabling the driving motor 300 to drive the guide blade 220 to move relative to the bearing member 210 through the control member 400.
[0107] It is easy to understand that the first position and the second position are used to represent the position of the movable part 420 relative to the fixed part 410. For example, in the preset direction, the first position can be closer to the fixed part 410 relative to the second position, or the second position can be closer to the fixed part 410 relative to the first position.
[0108] The first position can represent a continuous distance. That is, when the first position has a distance, the movable part 420 can move relative to the fixed part 410 in the preset direction within the first position, and at this time the movable part 420 is always connected with the bearing member 210 through the first output part 421.
[0109] The first position can also represent a point. When the first position represents a point, the first position does not have a distance, and as long as the movable part 420 located in the first position moves, the movable part 420 will be disconnected from the first position, so that the first output part 421 of the movable part 420 is disconnected with the bearing member 210.
[0110] The second position can represent a continuous distance. That is, when the second position has a distance, the movable part 420 can move relative to the fixed part 410 in the preset direction within the second position, and at this time the movable part 420 is always connected with the guide blade 220 through the second output part 422.
[0111] The second position can also represent a point. When the second position represents a point, the second position does not have a distance, and as long as the movable part 420 located in the second position moves, the movable part 420 will be disconnected from the second position, so that the second output part 422 of the movable part 420 is disconnected with the guide blade 220.
[0112] Reference Figures 7-10In some possible embodiments, the movable part 420 can be configured as a movable tube. The movable tube can be sleeved outside the fixed part 410 and can move relative to the fixed part 410 in a direction close to or away from the driving motor 300, so that the movable tube can move to the first position and the second position in the preset direction.
[0113] One of the first output part 421 and the second output part 422 can be located outside the movable tube, and the other of the first output part 421 and the second output part 422 can be located inside the movable tube, so that the possibility of mutual interference between the first output part 421 and the second output part 422 can be reduced, and the connection process between the first output part 421 and the carrier 210 and the second output part 422 and the guide vane 220 can be smoother.
[0114] For example, the first output part 421 can be located outside the movable tube, and the second output part 422 can be located inside the movable tube. When the movable tube is in the first position, the first output part 421 located outside the movable tube can be in transmission connection with the carrier 210, and when the movable tube is in the second position, the second output part 422 located inside the movable tube can be in transmission connection with the guide vane 220.
[0115] In some possible embodiments, the carrier 210 can be provided with a first connecting part 213, and the first connecting part 213 can be used in cooperation with the first output part 421, so that the first output part 421 can be relatively fixed with the first connecting part 213, to enable the driving motor 300 to drive the carrier 210 to move relative to the shell through the first connecting part 213.
[0116] For example, the guide vane 220 can be provided with a second connecting part 221, and the second connecting part 221 can be used in cooperation with the second output part 422, so that the second output part 422 can be relatively fixed with the second connecting part 221, to enable the driving motor 300 to drive the guide vane 220 to move relative to the carrier 210 through the second connecting part 221.
[0117] By using the above technical solutions, when the control member 400 is in the first state, in the preset direction, the movable part 420 is in the first position. The first output part 421 can be connected with the first connecting part 213, and the second output part 422 can be disconnected with the second connecting part 221, so that the control member 400 can be relatively fixed with the carrier 210 through the first connecting part 213, thereby enabling the driving motor 300 to drive the carrier 210 to move relative to the shell through the control member 400.
[0118] When the control member 400 is in the second state, in the preset direction, the movable part 420 can be in the second position. The first output part 421 can be disengaged from the first connecting part 213, and the second output part 422 can be connected with the second connecting part 221, so that the control member 400 can be relatively fixed with the guide vane 220 through the second connecting part 221, thereby enabling the driving motor 300 to drive the guide vane 220 to move relative to the bearing part 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 part 421 and the second output part 422 can be arranged in the mounting opening 101, and the movable part 420 can move in the mounting opening 101 in the preset direction, so that the first output part 421 can be connected with the first connecting part 213 of the bearing part 210 through the mounting opening 101, and the second output part 422 can be connected with the second connecting part 221 of the guide vane 220 through the mounting opening 101.
[0120] Alternatively, the mounting bracket 100 is provided with a mounting opening 101, the bearing part 210 is provided with a first connecting part 213, the guide vane 220 is provided with a second connecting part 221, the first connecting part 213 and the second connecting part 221 are arranged in the mounting opening 101, the first connecting part 213 can be connected with the first output part 421 of the movable part 420 through the mounting opening 101, and the second connecting part 221 can be connected with the second output part 422 of the movable part 420 through the mounting opening 101.
[0121] In some possible embodiments, the second connecting part 221 is arranged inside the first connecting part 213 and can rotate relative to the first connecting part 213, so that the first connecting part 213 and the second connecting part 221 can be correspondingly arranged with the first output part 421 and the second output part 422.
[0122] For example, the first connecting part 213 and the second connecting part 221 can be coaxially arranged. The axis of the first connecting part 213 and the axis of the second connecting part 221 can coincide with the rotation axis of the output end of the driving motor 300, so as to make the rotation process of the first connecting part 213 and the second connecting part 221 more stable and reduce the possibility of deviation of the first connecting part 213 and the second connecting part 221.
[0123] In the preset direction, the first connecting part 213 is arranged opposite to the first output part 421, and the second connecting part 221 is arranged opposite to the second output part 422, the movable part 420 can drive the first output part 421 to move close to or away from the first connecting part 213, and the movable part 420 can drive the second output part 422 to move close to or away from the second connecting part 221.
[0124] When the movable part 420 is in the first position, the first connecting part 213 is close to and connected with the first output part 421, and the second connecting part 221 is away from the second output part 422. When the movable part 420 is in the second position, the second connecting part 221 is close to and connected with the second output part 422, and the first connecting part 213 is away from the first output part 421.
[0125] With reference to Figures 7-10 In some possible embodiments, the first output part 421 can be provided with a first fixing slot 4211. The extension direction of the first fixing slot 4211 can be parallel to the preset direction. The first connecting part 213 can move in the first fixing slot 4211 along the preset direction.
[0126] That is, the first position has a certain length. When the movable part 420 moves relative to the fixed part 410 along the preset direction, the first connecting part 213 can move in the first fixing slot 4211. When the movable part moves away from the first position, the first connecting part 213 is out of the first fixing slot 4211, and at this time, the first connecting part 213 is disconnected with the first output part 421, so that the control part 400 cannot transmit power to the first connecting part 213.
[0127] When the movable part 420 is in the first position, the movable part 420 is away from the driving motor 300, the first connecting part 213 is located in the first fixing slot 4211, and the first output part 421 can be coaxially fixed with the first connecting part 213. When the movable part 420 is in the second position, the movable part 420 is close to the driving motor 300, the first connecting part 213 is located outside the first fixing slot 4211, and the first output part 421 is disconnected with the first connecting part 213.
[0128] In some possible embodiments, the second output part 422 can be provided with a second fixing slot 4221. The extension direction of the second fixing slot 4221 can be parallel to the preset direction. The second connecting part 221 can move in the second fixing slot 4221 along the preset direction.
[0129] That is, the second position has a certain length. When the movable part 420 moves relative to the fixed part 410 along the preset direction, the second connecting part 221 can move in the second fixing slot 4221. When the movable part moves away from the second position, the second connecting part 221 is out of the second fixing slot 4221, and at this time, the second connecting part 221 is disconnected with the second output part 422, so that the control part 400 cannot transmit power to the second connecting part 221.
[0130] When the movable part 420 is in the second position, the movable part 420 is close to the driving motor 300, the second connecting part 221 is located in the second fixed groove 4221, and the second output part 422 and the second connecting part 221 can be coaxially fixed. When the movable part 420 is in the first position, the movable part 420 is away from the driving motor 300, the second connecting part 221 is located outside the second fixed groove 4221, and the second output part 422 and the second connecting part 221 are disengaged.
[0131] It is easy to understand that when the first output part 421 and the second output part 422 are both provided with fixed grooves, the movable part 420 can be provided as a spline sleeve. The first output part 421 and the second output part 422 can also be provided with other structures, and the transmission modes of the first output part 421 and the first connecting part 213 and the transmission modes of the second output part 422 and the second connecting part 221 can also adopt clamping and the like.
[0132] The embodiment of the application provides a kind of indoor unit 10, including air guide structure 20, and heat exchanger 30, air guide structure 20 is set to the air outlet side of heat exchanger 30.
[0133] In some possible embodiments, the indoor unit 10 is provided with an air outlet; the air outlet is provided with an air deflector, and the air deflector can move relative to the air outlet; the air guide structure 20 is arranged on the inner side of the air deflector.
[0134] The embodiment of the application provides an air treatment equipment, comprising an indoor unit 10 and a compressor, and the heat exchanger 30 is connected with the compressor.
[0135] In summary, the air guide structure 20 includes an adjusting assembly 200 and a driving motor 300, the adjusting assembly 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, and 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, 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, and the air guide blade 220 can move relative to the carrier 210 to change the orientation and angle of the air guide blade 220, so that the air supply area of the air treatment equipment including the air guide structure 20 is more flexible, and the air outlet range is larger.
[0136] The driving motor 300 is arranged in the shell, and the output end of the driving motor 300 is provided with a control member 400, the control member 400 has a first output part 421 and a second output part 422, the first output part 421 can be connected or disconnected with the bearing member 210, and the second output part 422 can be connected or disconnected with the guide vane 220, so that the bearing member 210 and the guide vane 220 can be driven by the driving motor 300 through the control member 400 by changing the state of the control member 400.
[0137] When the control member 400 is in the first state, the first output part 421 is connected with the bearing member 210, and the driving motor 300 drives the bearing member 210 to move relative to the shell through the control member 400. When the control member 400 is in the second state, the second output part 422 is connected with the guide vane 220, and the driving motor 300 drives the guide vane 220 to move relative to the bearing member 210 through the control member 400, so that the bearing member 210 and the guide vane 220 can be driven by the driving motor 300 and the control member 400 in cooperation, the air supply area of the air handling equipment including the guide structure 20 is more flexible, the overall structure of the guide structure 20 is simplified, and the number of parts of the guide structure 20 is reduced.
[0138] In the description of the present application, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, therefore cannot be understood as a limitation of the present application.
[0139] In the description of the present application, it should be understood that the terms "include" and "have" and any variations thereof used herein are intended to cover non-exclusive inclusion, for example, a process, method, system, product or device including a series of steps or units need not be limited to those clearly listed, but can include other steps or units not clearly listed or inherent to these processes, methods, products or devices.
[0140] Unless specifically stated and limited otherwise, the terms "mounting", "connected", "connecting", "fixed", "fixedly connected", "connecting", "fixedly connected", "connected", "fixed", and the like should be interpreted broadly, for example, can be fixed connection, can also be detachable connection, or become one; can be directly connected, or indirectly connected through an intermediate medium; can be connected inside two elements or the interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances. In addition, the terms "first", "second" and the like are only for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number 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 application, and not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that: it can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.
Claims
1. An air guiding structure, characterized in that, Includes an adjustment component (200) and a drive motor (300); The adjustment assembly (200) includes a support member (210) and a guide vane (220). The support member (210) is movably disposed on the housing, and the guide vane (220) is movably disposed on the support member (210). The drive motor (300) is disposed on the housing, and a control component (400) is disposed at the output end of the drive motor (300). The control component (400) has a first output part (421) and a second output part (422). When the control unit (400) is in the first state, the first output unit (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 unit (400); When the control unit (400) is in the second state, the second output unit (422) is connected to the guide vane (220), and the drive motor (300) drives the guide vane (220) to move relative to the carrier (210) through the control unit (400); The control element (400) includes a fixed part (410) and a movable part (420) connected to each other; The fixing part (410) is fixedly connected to the output end of the drive motor (300); The movable part (420) is movable relative to the fixed part (410), and the movable part (420) is connected to the first output part (421) and the second output part (422); When the control unit (400) is in the first state, the movable part (420) is in the first position; the first output part (421) is connected to the carrier (210), and the second output part (422) is disengaged from the guide vane (220); When the control unit (400) is in the second state, the movable part (420) is in the second position; the first output part (421) is disengaged from the carrier (210), and the second output part (422) is connected to the guide vane (220); The movable part (420) is configured as a movable tube, which is sleeved on the outside of the fixed part (410) and can move relative to the fixed part (410) in a direction that is close to or away from the drive motor (300). One of the first output section (421) and the second output section (422) is located on the outside of the active tube, and the other of the first output section (421) and the second output section (422) is located on the inside of the active tube.
2. The air guiding structure according to claim 1, characterized in that, The carrier (210) is provided with a first connecting part (213), which is used in conjunction with the first output part (421); The air guide blade (220) is provided with a second connecting part (221), which is used in conjunction with the second output part (422).
3. The air guiding structure according to claim 2, characterized in that, The second connecting part (221) passes through the inner side of the first connecting part (213) and can rotate relative to the first connecting part (213); The first output section (421) is located on the outside of the active tube, and the second output section (422) is located on the inside of the active tube; When the control unit (400) is in the first state, the active part (420) is in the first position; the first output part (421) is connected to the first connecting part (213), and the second output part (422) is disconnected from the second connecting part (221); When the control unit (400) is in the second state, the active part (420) is in the second position; the first output part (421) is disengaged from the first connecting part (213), and the second output part (422) is connected to the second connecting part (221).
4. The air guiding structure according to claim 2, characterized in that, The first output section (421) is provided with a first fixing slot (4211); The first connecting part (213) can move in the first fixing groove (4211) along a preset direction; When the movable part (420) is in the first position, the movable part (420) is away from the drive motor (300), and the first connecting part (213) is located in the first fixing groove (4211); When the movable part (420) is in the second position, the movable part (420) is close to the drive motor (300), and the first connecting part (213) is located outside the first fixing groove (4211).
5. The air guiding structure according to claim 2, characterized in that, The second output section (422) is provided with a second fixing slot (4221); The second connecting part (221) can move within the second fixing groove (4221) in a preset direction; When the movable part (420) is in the first position, the movable part (420) is away from the drive motor (300), and the second connecting part (221) is located in the second fixing groove (4221); When the movable part (420) is in the second position, the movable part (420) is close to the drive motor (300), and the second connecting part (221) is located outside the second fixing groove (4221).
6. The air guiding structure according to claim 2, characterized in that, The first connecting part (213) and the second connecting part (221) are coaxially arranged.
7. The air guiding structure according to any one of claims 1-6, characterized in that, The adjustment assembly (200) further includes a mounting bracket (100) for mounting on the housing; The support member (210) is rotatably disposed on the top surface of the mounting bracket (100), and the drive motor (300) is disposed on the bottom surface of the mounting bracket (100).
8. The air guiding structure according to claim 7, characterized in that, The mounting bracket (100) is provided with a mounting opening, and the first output part (421) and the second output part (422) pass through the mounting opening; Alternatively, the mounting bracket (100) is provided with a mounting port (101), the carrier (210) is provided with a first connecting part (213), and the air guide blade (220) is provided with a second connecting part (221), with the first connecting part (213) and the second connecting part (221) passing through the mounting port (101).
9. An indoor unit, characterized in that, Includes the air guide structure (20) as described in any one of claims 1-8, and the heat exchanger (30), wherein the air guide structure (20) is disposed on the air outlet side of the heat exchanger (30).
10. An air handling device, characterized in that, Including the indoor unit (10) as described in claim 9.
Citation Information
Patent Citations
Linkage driving mechanism, indoor unit and air-conditioner
CN107940722A
Air treatment equipment and control method
CN118640520A