Air guide assembly and air treatment equipment
By designing the air guide component and combining the adjustment and drive components, the air supply coverage area of the air conditioning equipment is expanded and the air supply direction is precisely controlled, solving the problem of small air supply coverage area and improving user experience and energy efficiency.
Patent Information
- Application Number
- CN202422908643.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2024-10-28
- Filing Date
- 2024-11-27
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-11-27
AI Technical Summary
The existing air conditioning equipment has a small air supply coverage area, resulting in a poor user experience.
An air guide assembly is adopted, including an adjustment assembly and a drive assembly. The drive assembly drives the adjustment assembly to change its position relative to the mounting surface, thereby expanding the air supply coverage area. The air supply direction is precisely controlled by adjusting the angle of the air guide blades.
It improves the air supply coverage and efficiency of air conditioning equipment, reduces uneven heating and cooling, enhances user comfort, and reduces energy consumption.
Smart Images

Figure CN223512261U_ABST
Abstract
Description
[0001] The present application claims priority to the Chinese patent application No. 202411514814.7, filed on October 28, 2024, entitled "Air guide assembly and air treatment device", the whole content of which is incorporated herein by reference. TECHNICAL FIELD
[0002] The present application relates to the technical field of air treatment devices, in particular to an air guide assembly and an air treatment device. BACKGROUND
[0003] An air treatment device, such as an air conditioner, usually includes an air outlet and an air guide plate arranged outside the air outlet, one end of the air guide plate is rotatably connected to the bottom of the air outlet, and the air guide plate is used to change the air supply direction of the air outlet by changing the opening angle of the air guide plate relative to the air outlet.
[0004] However, the above-mentioned method of adjusting the air supply direction causes the air conditioner to cover a small area. UTILITY MODEL CONTENT
[0005] The present application provides an air guide assembly and an air treatment device to solve the problem of small air blowing coverage area in related art.
[0006] In order to achieve the above-mentioned purpose, the present application provides the following technical solutions:
[0007] The first aspect of the present application provides an air guide assembly installed on a mounting surface, the air guide assembly comprising:
[0008] An adjusting assembly comprising an air guide vane movably arranged;
[0009] A driving assembly in transmission connection with the adjusting assembly, the driving assembly driving at least part of the structure of the adjusting assembly to change position relative to the mounting surface.
[0010] The air guide assembly in the present application drives at least part of the structure of the adjusting assembly to change position relative to the mounting surface through the driving assembly and the adjusting assembly, so that at least part of the structure of the air guide assembly can be located outside the air outlet of the air treatment device applying the air guide assembly, and the shielding area of this part of the air guide assembly located outside the air outlet by the sidewall of the air outlet is reduced, thereby expanding the air blowing area of the air guide assembly, so that the air treatment device applying the air guide assembly can cover a larger air blowing area. Compared with the related art of adjusting the air supply angle by the air guide plate, the present application can cover a larger air blowing area, improve the efficiency of air treatment, and save energy.
[0011] The angle adjusted by the adjustment assembly relative to the mounting surface is defined as the first air supply angle. That is, by allowing the adjustment assembly to move relative to the mounting surface, the adjustment assembly can adjust the range of the first air supply angle. By changing the range of the first air supply angle, the user can adjust the air supply direction of the air guide assembly as needed, thereby meeting the different needs of customers.
[0012] In addition, by providing the air guide vane movably connected to the adjustment assembly, the air supply direction of the air guide assembly can be adjusted by adjusting the angle of the air guide vane. The angle adjusted by the air guide vane is defined as the second air supply angle. That is, the air guide vane can change the range of the second air supply angle. In this way, the air supply angle of the air guide assembly can be controlled in two dimensions, which can more accurately control the direction of the air flow. This helps to optimize air distribution according to the layout of the room and the needs of the user, to adapt to different room shapes and sizes, and to provide more uniform temperature distribution. When the air guide assembly is applied to an air conditioning device, this can avoid cold air or warm air directly blowing on the human body, reduce discomfort, and improve the user's comfort experience. By optimizing the air flow path, the running time and energy consumption of the air conditioner can be reduced, thereby improving the overall energy efficiency. This helps to reduce power consumption and operating costs.
[0013] By adjusting the air supply angle of the air outlet by the air guide assembly, the air outlet can not directly blow air to the area where people are active. That is, the air is blown away from the area where people are present, avoiding discomfort or health problems caused by cold air directly blowing on the body. In addition, by adjusting the air guide assembly, the air supply angle of the air outlet can be constantly changed, which can also avoid the air conditioner blowing in one direction for a long time, thereby preventing the air conditioner from blowing directly.
[0014] In one possible implementation, the adjustment assembly further includes a base point;
[0015] The driving assembly is at least used to drive the adjustment assembly to rotate around the base point, so that at least part of the structure of the adjustment assembly moves away from the mounting surface.
[0016] By setting the base point and taking the base point as the base point for adjusting the rotation of the adjusting assembly, the adjusting assembly can rotate around the base point, which can provide a stable reference point for the adjusting assembly, so that the movement and adjustment of the adjusting assembly can be relative to the base point, which helps to ensure that the movement of the adjusting assembly is more accurate and controllable. When the adjusting assembly rotates around the base point by a certain angle, part of the structure of the adjusting assembly can be located outside the air outlet of the air handling device using the air guide assembly, and another part of the structure can be located inside the air outlet. The area of the part of the air guide assembly that is shielded by the side wall of the air outlet outside the air outlet will be reduced, thereby expanding the blowing area of the air guide assembly. In addition, by controlling the position of the base point, the size of the part of the air guide assembly located outside the air outlet of the air handling device using the air guide assembly can be controlled, thereby controlling the blowing area of the air guide assembly, and the installation flexibility of the air guide assembly can be improved.
[0017] In a possible implementation, the driving assembly is configured to drive the adjusting assembly to move away from the mounting surface.
[0018] In this way, the adjusting assembly can translate relative to the mounting surface and move away from the mounting surface, that is, the adjusting assembly can extend outside the air outlet of the air handling device using the air guide assembly, further reducing the shielding area of the adjusting assembly by the side wall of the air outlet, thereby further expanding the blowing area of the air guide assembly, so that the air handling device using the air guide assembly can cover a larger blowing area.
[0019] In a possible implementation, the driving assembly is in transmission connection with the air guide vane.
[0020] The driving assembly is configured to drive the air guide vane to change position.
[0021] By driving the driving assembly in transmission connection with the air guide vane and controlling the change in position of the air guide vane, the air guide assembly can have a swing function, so that the air guide assembly can cover a wider area, which helps to achieve more uniform air or temperature distribution in the entire room and avoid uneven cold and hot phenomena. By adjusting the air guide assembly, the blowing angle of the air outlet can be continuously changed, which can also avoid the air conditioner blowing directly in one direction for a long time, thereby preventing direct blowing of the air conditioner. In addition, by adjusting the range of the second blowing angle of the air guide vane, direct blowing of the air flow to a fixed position can be avoided, direct stimulation to the human body can be reduced, and comfort can be improved. This design allows users to flexibly adjust the air flow direction according to the room layout and personal preferences, meeting different use scenarios and needs. By optimizing the air flow path and coverage, the cooling or heating efficiency of the air conditioner can be improved, and unnecessary energy consumption can be reduced, thereby achieving energy saving.
[0022] In a possible implementation, the driving assembly is in transmission connection with the air guide blades.
[0023] The driving assembly is configured to drive the air guide blades to rotate.
[0024] In this way, the driving difficulty of the air guide blades can be reduced, and thus the structure of the driving assembly can be simplified, and the cost can be reduced.
[0025] In a possible implementation, the adjusting assembly includes a bearing plate.
[0026] The air guide blades are in movable connection with the bearing plate.
[0027] The number of the air guide blades is multiple, and the multiple air guide blades are arranged at intervals along the extension direction of the bearing plate.
[0028] By arranging the bearing plate, a stable mounting basis can be provided for the air guide blades, so that the air guide blades can be kept stable during the adjustment process, and the vibration and noise can be reduced. The modular design of the bearing plate and the air guide blades can reduce the installation difficulty and the later maintenance difficulty. The user can replace or adjust a single air guide blade as needed, without the need to make large-scale adjustment to the entire air guide assembly.
[0029] By arranging the air guide blades in multiple and at intervals, the user can more flexibly adjust the angle of each blade to accurately control the airflow direction and intensity, so as to adapt to different room layouts and use requirements. The multiple air guide blades can also promote the mixing of indoor air, improve the air quality and comfort, and make the airflow more evenly distributed, so as to avoid local overcooling or overheating. By optimizing the airflow path, the dead angle and stagnation area in the air can be reduced, and thus the user experience can be improved.
[0030] In a possible implementation, the driving assembly includes a first driving member and a second driving member.
[0031] The first driving member is in transmission connection with the air guide blades, and the first driving member is configured to drive the position of the air guide blades to change.
[0032] The second driving member is in transmission connection with the bearing plate, and the second driving member is configured to drive the position of at least part of the structure of the bearing plate relative to the mounting surface to change.
[0033] By setting the driving assembly to include the first driving member and the second driving member, the air guide blade and the carrier plate can be controlled separately, which is beneficial to improve the accuracy of air flow adjustment, and the user can adjust the air supply angle range of the air guide blade or the carrier plate according to the needs. The combination of the first driving member and the second driving member provides a larger adjustment range and flexibility to achieve complex air flow patterns to adapt to different room layouts and use scenarios. By adjusting the angles of the air guide blade and the carrier plate respectively, more uniform and effective air flow distribution can be achieved, and precise air flow control can reduce the running time and energy consumption of the air handling equipment (such as air conditioning equipment) using the air guide assembly, thereby improving the overall energy efficiency. Since the first driving member and the second driving member are independently arranged, the individual driving member can be replaced or adjusted as needed during later maintenance without the need for large-scale adjustment of the entire system, thereby reducing maintenance costs.
[0034] In a possible implementation, the first driving member is in transmission connection with the air guide blade, and the first driving member drives the air guide blade to rotate.
[0035] In a possible implementation, the first driving member and the second driving member are arranged at intervals in the extension direction of the carrier plate.
[0036] By arranging the first driving member and the second driving member at intervals, the space of the carrier plate can be more effectively utilized, avoiding mutual interference between the driving members, thereby improving the reliability and stability of the air guide assembly. In addition, it also helps to improve the heat dissipation effect, prevent performance degradation or damage due to overheating, thereby prolonging the service life of the driving assembly and improving the overall reliability of the system.
[0037] In a possible implementation, the first driving member is movably connected with the carrier plate.
[0038] By movably connecting the first driving member and the carrier plate, the first driving member can provide certain support to the carrier plate, thereby improving the motion stability of the carrier plate. In addition, by movably connecting the first driving member and the carrier plate, at least part of the structure of the carrier plate can move relative to the mounting surface, thereby flexibly adjusting the air supply angle range. In addition, it can also reduce the mechanical stress and wear caused by fixed connection, thereby prolonging the service life of the system. The flexible movement of the carrier plate can absorb part of the impact and vibration in operation, reduce the damage risk of the first driving member and the carrier plate, and improve the safety of the system. The movable connection mode can make the user more easily disassemble and replace the assembly without the need for large-scale adjustment of the entire system, and the installation and maintenance process is more convenient.
[0039] In a possible implementation, the number of adjustment assemblies is multiple;
[0040] The number of the driving assemblies is the same as the number of the adjusting assemblies, and each adjusting assembly corresponds to one driving assembly.
[0041] In this way, each adjusting assembly has a dedicated driving assembly, allowing independent control of each adjusting assembly. This allows precise adjustment of airflow direction and intensity in each area as needed, and can adapt to different room layouts and usage requirements. Users can flexibly adjust the settings of each adjusting assembly according to specific environmental conditions to achieve more uniform and effective airflow distribution, avoiding local overcooling or overheating and improving overall comfort. This redundant design improves system reliability and stability, for example, when one driving assembly fails, the other driving assemblies can still work normally. Since each adjusting assembly and driving assembly is independent, maintenance and troubleshooting become simpler, reducing maintenance time and cost.
[0042] In one possible implementation, the number of adjusting assemblies is two; wherein,
[0043] The two adjusting assemblies are spaced apart along the extension direction of the adjusting assemblies.
[0044] By setting the number of adjusting assemblies to two, flexible airflow control and convenient maintenance experience can be provided while maintaining efficient and reliable operation, improving user experience. The structure of the air guide assembly can also be simplified, thereby reducing costs. Spacing makes each adjusting assembly easier to access, facilitating installation, maintenance, and repair. Users can more easily check, replace, or repair without having to disassemble other components.
[0045] In one possible implementation, the number of adjusting assemblies is multiple;
[0046] The number of the driving assemblies is the same as the number of the adjusting assemblies, and each adjusting assembly corresponds to one driving assembly;
[0047] The multiple adjusting assemblies are spaced apart along the extension direction of the adjusting assemblies.
[0048] At least two adjacent adjusting assemblies share one first driving member or one second driving member, and the shared first driving member or second driving member is located between the two adjacent adjusting assemblies.
[0049] In this way, the two adjacent adjustment assemblies can share one first driving member or second driving assembly, the use of one first driving member or second driving assembly can be reduced, the structure of the air guide assembly is simplified, and the cost is reduced. By arranging the shared first driving member or second driving member between the two adjustment assemblies, the assembly difficulty of the first driving member or second driving member and the two adjustment assemblies can be reduced, and the installation is convenient and fast.
[0050] In a possible implementation, the first driving member comprises a first motor and a first transmission member; wherein,
[0051] The first motor is in transmission connection with the first transmission member;
[0052] The first transmission member is in transmission connection with all the air guide blades of the adjustment assembly;
[0053] The first motor is configured to drive the first transmission member to move, so as to drive the air guide blades connected with the first transmission member to rotate.
[0054] By arranging the first motor, precise motion control capability can be provided, and the angle of the air guide blade can be accurately adjusted as needed, so that the air flow management is more efficient and accurate. By arranging the first transmission member, the first transmission member can effectively transmit the rotary motion of the first motor to the air guide blade, ensuring the flexibility, stability and efficiency of the motion. The design of the transmission member can optimize the torque transmission and reduce energy loss. The design of the first transmission member can further reduce friction and wear, and improve the reliability of the system.
[0055] In a possible implementation, the first transmission member is a transmission link; wherein,
[0056] The transmission link is arranged along the extension direction of the adjustment assembly and connected with all the air guide blades of the adjustment assembly;
[0057] The first motor is configured to drive the transmission link to move along the extension direction of the adjustment assembly, so as to drive the air guide blades connected with the transmission link to rotate.
[0058] By arranging the first transmission member as a transmission link, the structure of the first transmission member can be simplified, the processing technology is simple, the cost is low, and it is suitable for large-scale production and application. In addition, the transmission link is a simple and reliable mechanical structure, which can effectively convert the rotary motion of the motor into the linear or swinging motion of the air guide blade, and help to improve the reliability and durability of the system. Due to the geometric characteristics of the transmission link, it can provide precise motion control, so that the air guide blade can be accurately adjusted in a set range, thereby realizing more accurate air flow management.
[0059] In a possible implementation, the bearing plate is provided with a mounting hole, and the output shaft of the first motor passes through the mounting hole and is movably connected with the mounting hole.
[0060] In this way, the first motor can be conveniently connected with the bearing plate, the assembly difficulty is reduced, and the cost is further reduced.
[0061] In a possible implementation, the second driving member includes a second motor and a second transmission member; wherein,
[0062] The second motor is in transmission connection with the second transmission member, and the second transmission member is connected with the bearing plate.
[0063] The second motor is configured to drive the second transmission member to move, so as to drive at least part of the structure of the bearing plate to move relative to the mounting surface.
[0064] By providing the second motor, precise motion control capability can be provided, and the angle of the bearing plate can be accurately adjusted as needed, so that air flow management is more efficient and accurate. By providing the second transmission member, the second transmission member can effectively transmit the rotary motion of the second motor to the bearing plate, ensuring flexibility, smoothness and efficiency of the motion. The design of the transmission member can optimize torque transmission and reduce energy loss. The design of the second transmission member can further reduce friction and wear, and improve the reliability of the system.
[0065] In a possible implementation, the second transmission member includes an arc-shaped rack structure.
[0066] By providing the second transmission member with an arc-shaped rack structure, the rotary motion can be converted into precise linear or angular motion, so that the bearing plate can be accurately adjusted within a set range, thereby achieving more accurate air flow management. The arc-shaped rack provides smooth motion conversion, reduces vibration and impact that may occur during motion, and improves the smoothness and quietness of system operation. The arc-shaped rack can be customized according to specific design requirements to adapt to different space and motion requirements. This flexibility makes it well integrated into various types of air handling equipment.
[0067] In a possible implementation, the second transmission member includes a rack structure and a multi-link mechanism
[0068] By providing the second transmission member with a rack structure and a multi-link mechanism, the structure of the second transmission member can be simplified, the processing technology is simple, the cost is low, and it is suitable for large-scale production and application. In addition, the multi-link mechanism can include multiple links, so that one second transmission member can control multiple bearing plates of adjustment components, thereby simplifying the structure of the entire air guide assembly and further reducing the cost.
[0069] In a possible implementation, the air guide assembly further comprises a control device; wherein
[0070] The control device is electrically connected with the driving assembly, and is configured to control the driving assembly.
[0071] By arranging the control device, the control device can accurately control the driving assembly, allowing the user to adjust the angle of the air guide blade and the direction of the bearing plate as needed, thereby achieving more accurate airflow management. The control device can realize automatic operation, automatically adjusting the airflow setting based on the preset program or sensor input (such as temperature, humidity, personnel activity, etc.), improving the intelligent level of the system.
[0072] In a possible implementation, the number of adjustment assemblies is multiple;
[0073] The number of driving assemblies is the same as the number of adjustment assemblies, and each adjustment assembly corresponds to a driving assembly;
[0074] The control device is connected with the driving assembly corresponding to each adjustment assembly;
[0075] The control device is configured to synchronously control the driving assemblies corresponding to the multiple adjustment assemblies.
[0076] In this way, different adjustment assemblies can be controlled at the same time, and the air supply angles of different adjustment assemblies can be consistent, thereby achieving more uniform airflow distribution and helping to maintain consistent temperature and comfort throughout the room. Since the air supply angles of all adjustment assemblies are the same, the complexity of the control system is reduced, which can simplify the control algorithm and hardware design, reduce the system cost and maintenance difficulty. The uniform air supply angle provides a consistent user experience, avoiding the problem of temperature difference or uneven airflow in local areas caused by different angle settings. Since the angles of all adjustment assemblies are the same, the installation and debugging process is faster and simpler. Users or installers do not need to adjust the angle of each component individually.
[0077] In a possible implementation, the number of adjustment assemblies is multiple;
[0078] The number of driving assemblies is the same as the number of adjustment assemblies, and each adjustment assembly corresponds to a driving assembly;
[0079] The control device is connected with the driving assembly corresponding to each adjustment assembly;
[0080] The control device is configured to synchronously control the driving assemblies corresponding to the multiple adjustment assemblies.
[0081] In this way, different areas in the room can be individually adjusted, meeting the comfort needs of different users, especially in large spaces or multi-functional areas. In addition, in multi-functional spaces (such as conference rooms, open offices, etc.), different air supply angles can provide suitable air flow conditions for different activity areas, meeting the diversified use requirements. By adjusting the air supply angles of each adjustment component, the temperature unevenness in the room can be more effectively solved. For example, special adjustment can be made for areas directly exposed to sunlight or near doors and windows. By precisely controlling the air flow direction of each area, unnecessary energy consumption can be reduced, thereby improving the overall energy efficiency of the system, helping to reduce operating costs and energy consumption.
[0082] A second aspect of the embodiments of the present application provides an air handling device, comprising a device body and the air guide assembly according to any one of the first aspect.
[0083] The air handling device in the embodiments of the present application includes, but is not limited to, air conditioning devices, air purifiers, and fresh air machines, etc. By setting the air guide assembly of the first aspect, the air supply area of the air handling device can be expanded. Compared with the air guide plate in the related art, the technical solution of the present application can cover a larger air blowing area, improving the user experience. BRIEF DESCRIPTION OF DRAWINGS
[0084] In order to more clearly illustrate the technical solutions of the embodiments of the present application or the prior art, the drawings needed in the embodiments or prior art description will be briefly introduced below. Obviously, the drawings in the following description are some embodiments of the present application, and those skilled in the art can also obtain other drawings according to these drawings without creative labor.
[0085] Figure 1 A structural schematic diagram of an air handling device provided by the embodiments of the present application is shown in the figure.
[0086] Figure 2 A structural schematic diagram of an air guide assembly provided by the embodiments of the present application is shown in the figure.
[0087] Figure 3 Another angle of a structural schematic diagram of an air guide assembly provided by the embodiments of the present application is shown in the figure.
[0088] Figure 4 A use state reference of an air guide assembly provided by the embodiments of the present application is shown in the figure. Figure 1 ;
[0089] Figure 5 A use state reference of an air guide assembly provided by the embodiments of the present application is shown in the figure. Figure 2 ;
[0090] Figure 6A structural schematic view of a wind guide assembly provided by an embodiment of the present application is shown in the figure.
[0091] Figure 7 A structural schematic view of a wind guide assembly provided by an embodiment of the present application is shown in the figure.
[0092] Figure 8 A structural schematic view of a wind guide assembly provided by an embodiment of the present application is shown in the figure. Figure 1
[0093] Figure 9 A structural schematic view of a wind guide assembly provided by an embodiment of the present application is shown in the figure. Figure 2
[0094] Figure 10 A structural schematic view of a wind guide assembly provided by an embodiment of the present application is shown in the figure.
[0095] Figure 11 A structural schematic view of a wind guide assembly provided by an embodiment of the present application is shown in the figure.
[0096] Explanation of reference signs:
[0097] 200-air treatment device; 300-device body; 310-air outlet;
[0098] 100-wind guide assembly; 10-adjustment assembly; 11-bearing plate;
[0099] 12-wind guide blade; 13-base point; 20-driving assembly;
[0100] 21-first driving member; 22-second driving member; 221-second transmission member;
[0101] 222-second motor; 2211-rack structure; 2212-multi-link mechanism;
[0102] m-mounting surface. DETAILED DESCRIPTION
[0103] In order to make the purpose, technical scheme and advantages of the embodiments of the present application clearer, the technical scheme of the embodiments of the present application will be described clearly and completely below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0104] Traditional air conditioning systems typically adjust the airflow angle using blades. These blades are usually fixed to a specific area of the air outlet, and a lever pulls on the blades to rotate them one-dimensionally, thus adjusting the airflow angle. For example, left-right oscillation allows for horizontal airflow, while up-down oscillation allows for vertical adjustment. However, this method offers limited adjustment angles, resulting in a smaller coverage area and an inability to provide multi-directional zoned airflow, leading to a poor user experience.
[0105] To address the aforementioned technical problems, embodiments of this application provide an air guide component and an air handling device. The air guide component can precisely control the airflow direction, cover a larger blowing area, and improve the user experience.
[0106] The air guide assembly and air handling equipment provided in the embodiments of this application will be described in detail below with reference to the accompanying drawings.
[0107] 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 systems. In this application embodiment, an air conditioning device is used as an example for description, wherein the air conditioning equipment includes, but is not limited to, indoor air conditioning units, floor-standing air conditioners, central air conditioning systems, and ducted air conditioning systems. In this application embodiment, the type of air conditioning equipment is not further limited.
[0108] The following explanation uses an air conditioner indoor unit as an example.
[0109] Figure 1 This is a schematic diagram of the structure of an air handling device provided in an embodiment of this application. Figure 1 As shown, the air handling equipment 200 may include a device body 300, the device body 300 includes an air outlet 310, and an air guide component 100 is provided at the air outlet 310. The air guide component 100 is used to adjust the air delivery angle of the air outlet 310, thereby achieving air delivery to different angles, improving the coverage of air conditioning, and thus improving the user experience.
[0110] When the air handling unit 200 is an air conditioning unit, the air outlet 310 can be adjusted by the air guide component 100, thereby expanding the coverage angle of the air conditioning unit. In other words, it can deliver air to more areas to achieve air temperature regulation. It can also deliver air precisely at more angles, improving the accuracy of air temperature regulation and enhancing the user experience.
[0111] The air guide assembly 100 provided in the embodiments of this application will be described in detail below with reference to the accompanying drawings.
[0112] Figure 2A structural schematic diagram of a wind guide assembly 100 provided in an embodiment of the present application. Figure 3 Another angle of a structural schematic diagram of a wind guide assembly 100 provided in an embodiment of the present application.
[0113] In the present embodiment, for the convenience of description, the extension direction of the adjustment assembly 10 is taken as the x direction, and the vertical direction of the mounting surface m is taken as the y direction.
[0114] An embodiment of the present application provides a wind guide assembly 100, as shown in Figure 2 and Figure 3 The wind guide assembly 100 is mounted on a mounting surface m, and can include an adjustment assembly 10 and a driving assembly 20. The adjustment assembly 10 can include a wind guide vane 12 movably arranged. The driving assembly 20 is in transmission connection with the adjustment assembly 10, and is used to drive at least part of the structure of the adjustment assembly 10 to change the position relative to the mounting surface m (for example, move along the y direction), so as to enable the adjustment assembly 10 to adjust the range of the first air supply angle α1 (see Figure 4 ).
[0115] It should be noted that the “mounting surface m” as the mounting surface m of the wind guide assembly 100 refers to the mounting surface m of the wind guide assembly 100 when mounted on the air handling device 200, which extends along the extension direction of the adjustment assembly 10. The mounting surface m can be used as a reference for the initial position of the wind guide assembly 100 or the adjustment assembly 10.
[0116] In some embodiments, the mounting surface m can be the mounting surface of the air handling device 200 to which the wind guide assembly 100 is applied, for example, the mounting surface m can be the surface on which the air handling device 200 is mounted on the wall, and at this time, the mounting surface m can be parallel or close to parallel to the wall.
[0117] The “first air supply angle α1” refers to the angle of the adjustment assembly 10 moving relative to the initial position (that is, the mounting surface m). In addition, the direction away from the mounting surface m can be the direction perpendicular to the mounting surface m, or the direction at a certain angle to the mounting surface m. Wherein, “perpendicular” refers to the perpendicular within a certain error range, for example, the angle between the mounting surface m and the adjustment assembly 10 can be considered as perpendicular to the mounting surface m within 80°-90°. Wherein, the extension direction of the adjustment assembly 10 is the direction of the largest dimension of the adjustment assembly 10.
[0118] The air guide assembly 100 in the embodiments of the present application can change the position of at least part of the structure of the air guide assembly 100 relative to the mounting surface m by setting the adjusting assembly 10 and the driving assembly 20 and driving the adjusting assembly 10 by the driving assembly 20. In this way, at least part of the structure of the air guide assembly 100 can be located outside the air outlet 310 of the air handling device 200 to which the air guide assembly 100 is applied, and the shielding area of this part of the air guide assembly 100 located outside the air outlet 310 by the sidewall of the air outlet 310 can be reduced, so as to expand the blowing area of the air guide assembly 100, so that the air handling device 200 to which the air guide assembly 100 is applied can cover a larger blowing area. Compared with the related art of adjusting the air supply angle by the air deflector, the technical solution of the present application can cover a larger blowing area, improve the efficiency of air handling, and thus save energy.
[0119] The angle adjusted by the adjusting assembly 10 relative to the mounting surface m is defined as the first air supply angle. That is, by setting the adjusting assembly 10 to be movable relative to the mounting surface m, the adjusting assembly 10 can adjust the range of the first air supply angle, and by changing the range of the first air supply angle, the user can adjust the air supply direction of the air guide assembly 100 as needed, thereby meeting the different needs of customers.
[0120] In addition, by setting the air guide vane 12 movably connected on the adjusting assembly 10, the air supply direction of the air guide assembly 100 can be adjusted by adjusting the angle of the air guide vane 12, and the angle adjusted by the air guide vane 12 is defined as the second air supply angle. That is, the air guide vane 12 can change the range of the second air supply angle, so that the air supply angle of the air guide assembly 100 can be controlled in two dimensions, so that the direction of the air flow can be more accurately controlled, which helps to optimize air distribution according to the layout of the room and the needs of the user, to adapt to different room shapes and sizes, and to provide more uniform temperature distribution. When the air guide assembly 100 is applied to an air conditioning device, this can avoid cold air or warm air directly blowing to the human body, reduce discomfort, and improve the comfort experience of the user. By optimizing the air flow path, the running time and energy consumption of the air conditioner can be reduced, thereby improving the overall energy efficiency. This helps to reduce power consumption and operating costs.
[0121] By adjusting the air supply angle of the air outlet by the air guide assembly, the air outlet can not directly blow air to the area where people are active, that is, to avoid blowing air to the area where people are, to avoid discomfort or health problems caused by cold air directly blowing to the body. In addition, by adjusting the air guide assembly, the air supply angle of the air outlet can be continuously changed, so that the air conditioner can also be prevented from blowing directly in one direction for a long time.
[0122] In a possible implementation, the adjusting assembly 10 further includes a base point 13, and the driving assembly 20 is configured to drive the adjusting assembly 10 to rotate around the base point 13, so as to move at least part of the structure of the adjusting assembly 10 away from the mounting surface m.
[0123] By setting the base point 13 and rotating the adjusting assembly 10 around the base point 13, the adjusting assembly 10 can rotate around the base point 13, and the base point 13 can provide a stable reference point for the adjusting assembly 10, so that the movement and adjustment of the adjusting assembly 10 can be performed relative to the base point 13, thereby facilitating more accurate and controllable movement of the adjusting assembly 10.
[0124] For example, the adjusting assembly 10 rotates around the base point 13 to move at least part of the structure of the adjusting assembly 10 away from the mounting surface m (for example, in the y direction), which can be a rotational movement around the base point 13, and in this case, one end of the adjusting assembly 10 located on both ends of the base point 13 moves away from the mounting surface m, and the other end moves towards the mounting surface m.
[0125] In some other embodiments, at least part of the structure of the adjusting assembly 10 can be translated away from the mounting surface m (for example, in the y direction) relative to the mounting surface m while rotating around the base point 13. In the embodiments of the present application, the manner in which the adjusting assembly 10 rotates around the base point 13 to move at least part of the structure of the adjusting assembly 10 away from the mounting surface m is not limited as long as the adjusting assembly 10 can move relative to the mounting surface m.
[0126] When the adjusting assembly 10 rotates around the base point 13 by a certain angle, part of the structure of the adjusting assembly 10 can be located outside the air outlet 310 of the air handling device 200 to which the air guide assembly 100 is applied, and another part of the structure can be located inside the air outlet 310. The area of the part of the air guide assembly 100 located outside the air outlet 310 that is shielded by the sidewall of the air outlet 310 can be reduced, thereby expanding the blowing area of the air guide assembly 100. In addition, by controlling the position of the base point 13, the size of the part of the air guide assembly 100 located outside the air outlet 310 of the air handling device 200 to which the air guide assembly 100 is applied can be controlled, thereby controlling the blowing area of the air guide assembly 100, and the installation flexibility of the air guide assembly 100 can be improved.
[0127] It should be noted that the position of the base point 13 includes but is not limited to a fixed position, and the position of the base point 13 can be set according to actual installation requirements, and the specific position of the base point 13 is not limited in the embodiments of the present application.
[0128] In a possible implementation, the driving assembly 20 is configured to drive the adjusting assembly 10 to move away from the mounting surface m. For example, the adjusting assembly 10 is configured to move along the y direction away from the mounting surface m.
[0129] In this way, the adjusting assembly 10 can be translated relative to the mounting surface m away from the mounting surface m, that is, the adjusting assembly 10 can extend outside the air outlet 310 of the air handling device 200 to which the air guiding assembly 100 is applied, further reducing the area of the adjusting assembly 10 blocked by the sidewall of the air outlet 310, thereby further expanding the blowing area of the air guiding assembly 100, so that the air handling device 200 to which the air guiding assembly 100 is applied can cover a larger blowing area.
[0130] In a possible implementation, the driving assembly 20 is in transmission connection with the air guiding blade 12. The driving assembly 20 is configured to drive the air guiding blade 12 to change its position, for example, to drive the air guiding blade 12 to rotate and / or translate, etc. In this embodiment, the air guiding blade 12 is configured to rotate, so that the air guiding blade 12 can realize air swinging, and the air guiding blade 12 can adjust the range of the second blowing angle a2, as shown in Figure 5 In some embodiments, the range of the overall blowing angle of the adjusting assembly 10 is the sum of a1 and a2.
[0131] It should be noted that in this embodiment, “towards” refers to a general direction, and is not limited to a front surface.
[0132] It should be noted that in this embodiment, the extending direction of the air guiding blade 12 is close to perpendicular to the x direction and the y direction, and is represented as the z direction in the figure (see Figure 1 In other embodiments, the extending direction of the air guiding blade 12 can be set at an angle to the z direction, and in this embodiment, the extending direction of the air guiding blade 12 is not limited further.
[0133] In some embodiments, the air guiding blade 12 can have the same function as the blade in the prior art, that is, the air guiding blade 12 can realize left and right swinging in the extending direction of the adjusting assembly 10. In other embodiments, the air guiding blade 12 can also realize swinging in multiple directions, for example, the air guiding blade 12 can realize swinging in the x direction, or in the z direction, or in a direction at an angle to the z direction, etc.
[0134] Of course, it can be understood that when the guide vane 12 can swing relative to the air handling device 200 in the z direction or a direction at an angle with the z direction, a third driving member can also be provided in the driving assembly 20 to drive the guide vane 12 to swing relative to the air handling device 200 in the z direction or a direction at an angle with the z direction. Specifically, the third driving member can drive the carrier plate 11 to swing in the z direction or a direction at an angle with the z direction, or the third driving member can drive the guide vane 12 to swing in the z direction or a direction at an angle with the z direction. In the embodiments of the present application, the specific implementation mode for realizing the swinging of the guide vane 12 in the z direction or a direction at an angle with the z direction is not further limited.
[0135] By drivingly connecting the driving assembly 20 with the guide vane 12 and controlling the guide vane 12 to swing in the extension direction of the adjusting assembly 10, the guide vane 12 can cover a wider area, which helps to achieve more uniform air or temperature distribution in the entire room and avoid uneven cold and hot phenomena. In addition, by adjusting the range of the second air supply angle a2 of the guide vane 12, direct airflow to a fixed position can be avoided, direct stimulation to the human body can be reduced, and comfort can be improved. This design allows users to flexibly adjust the airflow direction according to the room layout and personal preferences, meeting different use scenarios and needs. By optimizing the airflow path and coverage, the cooling or heating efficiency of the air conditioner can be improved, unnecessary energy consumption can be reduced, and energy saving can be realized.
[0136] Continuing to refer to Figure 2 As shown, the adjusting assembly 10 can include a carrier plate 11. The guide vane 12 is movably connected with the carrier plate 11. For example, the guide vane 12 extends along the z direction. The number of guide vanes 12 is multiple, and the multiple guide vanes 12 are arranged at intervals along the extension direction of the carrier plate 11.
[0137] It should be noted that the extension direction of the carrier plate 11 is the direction of the largest dimension or face of the carrier plate 11. In some embodiments, the extension direction of the carrier plate 11 can be approximately parallel to the extension direction of the adjusting assembly 10.
[0138] For example, the carrier plate 11 can be a plate structure for supporting the guide vane 12 and facilitating connection with the driving assembly 20 and the like. In some embodiments, a plurality of air permeable holes can be provided on the carrier plate 11, which can facilitate air supply. In the embodiments of the present application, the specific structure of the carrier plate 11 is not further limited.
[0139] By setting the bearing plate 11, a stable installation foundation can be provided for the air guide blades 12, ensuring that the air guide blades 12 remain stable during adjustment, which helps to reduce vibration and noise. The modular design of the bearing plate 11 and the air guide blades 12 can reduce installation difficulty and post-maintenance difficulty. Users can replace or adjust individual air guide blades 12 as needed without the need for large-scale adjustment of the entire air guide assembly 100.
[0140] By setting the air guide blades 12 as multiple and spaced, users can more flexibly adjust the angle of each blade to accurately control the direction and intensity of the airflow to adapt to different room layouts and usage requirements. Multiple air guide blades 12 can also promote the mixing of indoor air, improve air quality and comfort, and make the airflow more evenly distributed to avoid local areas being too cold or too hot. By optimizing the airflow path, dead corners and stagnant areas in the air can be reduced, thereby improving user experience.
[0141] It should be noted that the number of air guide blades 12 can be determined according to the size of the bearing plate 11 in the extension direction and the setting density of the air guide blades 12, so the number of air guide blades 12 is not limited in the embodiments of the present application.
[0142] The driving assembly 20 will be described in detail below.
[0143] Continuing to refer to Figure 2 As shown, the driving assembly 20 can include a first driving member 21 and a second driving member 22. The first driving member 21 is in transmission connection with the air guide blades 12, and the first driving member 21 is used to drive the air guide blades 12 to change position. For example, the first driving member 21 is used to drive the air guide blades 12 to change position relative to the bearing plate 11, such as translation and / or rotation of the air guide blades 12 relative to the bearing plate 11, so that the air guide blades 12 can swing.
[0144] The second driving member 22 is in transmission connection with the bearing plate 11, and the second driving member 22 is used to drive at least part of the structure of the bearing plate 11 to move relative to the mounting surface m (for example, move in the direction away from the mounting surface m along the y direction).
[0145] For example, the first driving member 21 is in transmission connection with the air guide blades 12, and the first driving member 21 drives the air guide blades 12 to rotate. In this way, the driving difficulty of the air guide blades 12 can be reduced, the structure of the first driving member 21 can be simplified, and the action amplitude of the air guide blades 12 can be increased, and the air swing effect can be improved.
[0146] By setting the driving assembly 20 as the first driving member 21 and the second driving member 22, the air guide blade 12 and the carrier plate 11 can be controlled separately, which is beneficial to improve the accuracy of air flow adjustment, and the user can adjust the air supply angle range of the air guide blade 12 or the carrier plate 11 according to the needs. The combination of the first driving member 21 and the second driving member 22 provides greater adjustment range and flexibility to achieve complex air flow patterns to adapt to different room layouts and use scenarios. By adjusting the angles of the air guide blade 12 and the carrier plate 11 respectively, more uniform and effective air flow distribution can be achieved, and precise air flow control can reduce the running time and energy consumption of the air handling equipment 200 (such as air conditioning equipment) using the air guide assembly 100, thereby improving the overall energy efficiency. Since the first driving member 21 and the second driving member 22 are independently arranged, individual driving members can be replaced or adjusted as needed during later maintenance without the need for large-scale adjustment of the entire system, thereby reducing maintenance costs.
[0147] Of course, in other embodiments, the driving assembly 20 can include one driving member and a transmission mechanism, and the driving member can control the carrier plate 11 and the air guide blade 12 simultaneously through the transmission mechanism, which can simplify the structure of the driving member. In the embodiments of the present application, the specific structure of the driving assembly 20 for controlling the carrier plate 11 and the air guide blade 12 by one driving member is not further limited.
[0148] Continuing to refer to Figure 2 As shown, the first driving member 21 and the second driving member 22 can be arranged at intervals in the extension direction (x direction) of the carrier plate 11. By arranging the first driving member 21 and the second driving member 22 at intervals, the space of the carrier plate 11 can be more effectively utilized, avoiding mutual interference between the driving members, thereby improving the reliability and stability of the air guide assembly 100. In addition, it is also helpful to improve the heat dissipation effect, prevent performance degradation or damage due to overheating, thereby prolonging the service life of the driving assembly 20 and improving the overall reliability of the system.
[0149] In some embodiments, the first driving member 21 can include a first motor and a first transmission member (not shown in the figure). The first motor is in transmission connection with the first transmission member. The first transmission member is in transmission connection with all the air guide blades 12 of the adjustment assembly 10. The first motor is used to drive the first transmission member to move, so as to drive the air guide blades 12 connected with the first transmission member to rotate, so that the air guide blades 12 can adjust the second air supply angle a2.
[0150] By setting the first motor, precise motion control capability can be provided, and the angle of the air guide blade 12 can be accurately adjusted as needed, so that air flow management is more efficient and accurate. By setting the first transmission member, the first transmission member can effectively transmit the rotary motion of the first motor to the air guide blade 12, ensuring flexibility, smoothness and efficiency of the motion. The design of the transmission member can optimize torque transmission and reduce energy loss. The design of the first transmission member can further reduce friction and wear, and improve the reliability of the system.
[0151] For example, the first transmission member can be a transmission link. The transmission link is arranged along the extension direction of the adjustment assembly 10 and is connected to all air guide blades 12 of the adjustment assembly 10. The first motor is used to drive the transmission link to move along the extension direction of the adjustment assembly 10 to drive the air guide blades 12 connected to the transmission link to rotate.
[0152] By setting the first transmission member as a transmission link, the structure of the first transmission member can be simplified, the processing technology is simple, the cost is low, and it is suitable for large-scale production and application. In addition, the transmission link is a simple and reliable mechanical structure, which can effectively convert the rotary motion of the motor into linear or swinging motion of the air guide blade 12, which helps to improve the reliability and durability of the system. Due to the geometric characteristics of the transmission link, it can provide precise motion control, so that the air guide blade 12 can be accurately adjusted in a set range to achieve more accurate air flow management.
[0153] Of course, in other embodiments, the first transmission member can also be a crank link mechanism, a gear and rack mechanism, a cam mechanism, an eccentric mechanism, an electric push rod, a stepper motor or a servo motor drive, a pneumatic or hydraulic cylinder gear, a universal joint or a ball hinge, etc. In the embodiments of the present application, the specific structure of the first transmission member is not limited further.
[0154] In a possible implementation, the first driving member 21 can be movably connected with the bearing plate 11. For example, the first driving member 21 can be movably connected with the bearing plate 11 at the base point 13. For example, the bearing plate 11 is provided with a mounting hole at the base point 13, and the output shaft of the first motor is arranged in the mounting hole and movably connected with the mounting hole. In this way, the first motor can be conveniently connected with the bearing plate 11, the assembly difficulty is reduced, and the cost is further reduced.
[0155] The first driving member 21 and the carrier plate 11 are movably connected at the base point 13, so that the first driving member 21 can provide certain support for the carrier plate 11, thereby improving the movement stability of the carrier plate 11. In addition, by movably connecting the first driving member 21 and the carrier plate 11, at least part of the structure of the carrier plate 11 can move relative to the mounting surface m, thereby flexibly adjusting the air supply angle range. In addition, it can also reduce the mechanical stress and wear caused by fixed connection, thereby prolonging the service life of the system. The flexible movement of the carrier plate 11 can absorb part of the impact and vibration in operation, reduce the damage risk of the first driving member 21 and the carrier plate 11, and improve the safety of the system. The movable connection mode can make the user more easily disassemble and replace the components without the need for large-scale adjustment of the entire system, and the installation and maintenance process is more simple.
[0156] In one possible implementation, continuing to refer to Figure 3 As shown, the second driving member 22 can include a second motor 222 and a second transmission member 221. The second motor 222 is in transmission connection with the second transmission member 221, and the second transmission member 221 is connected with the carrier plate 11. The second motor 222 is used to drive the second transmission member 221 to move, so as to drive at least part of the structure of the carrier plate 11 to move relative to the mounting surface m.
[0157] By providing the second motor 222, precise motion control capability can be provided, thereby accurately adjusting the angle of the carrier plate 11 as needed, so that the air flow management is more efficient and accurate. By providing the second transmission member 221, the second transmission member 221 can effectively transmit the rotary motion of the second motor 222 to the carrier plate 11, ensuring the flexibility, stability and efficiency of the motion. The design of the transmission member can optimize the torque transmission and reduce energy loss. The design of the second transmission member 221 can further reduce friction and wear, and improve the reliability of the system.
[0158] In one possible implementation, the second transmission member 221 can include an arc-shaped rack structure. For example, the arc-shaped rack can extend along the y direction, so as to drive the carrier plate 11 to move along the y direction.
[0159] By providing the second transmission member 221 with an arc-shaped rack structure, the rotary motion can be converted into precise linear or angular motion, so that the carrier plate 11 can be accurately adjusted within a certain range, thereby realizing more accurate air flow management. The arc-shaped rack provides smooth motion conversion, reduces vibration and impact that may occur during motion, and improves the stability and quietness of system operation. The arc-shaped rack can be customized according to specific design requirements to adapt to different space and motion requirements. This flexibility makes it well integrated into various types of air handling equipment 200.
[0160] Of course, in other embodiments, the second transmission member 221 may also be a screw transmission mechanism, a gear and rack transmission mechanism, an electric push rod, a linear guide and slider, a pneumatic or hydraulic cylinder, a linear actuator driven by a stepper motor or servo motor, a cam mechanism, etc. In the embodiments of this application, the specific structure of the second transmission member 221 is not further limited.
[0161] It should be noted that, Figure 2 and Figure 3 The positions and orientations of the first driving member 21 and the second driving member 22 shown are only schematic diagrams and are not intended as a reference for actual installation. The actual installation position and orientation should be determined based on whether it can achieve its function. In this embodiment, the position and orientation of the first driving member 21 are not further limited.
[0162] The above embodiments describe an embodiment in which the adjustment component 10 is a single component. Of course, in other embodiments, multiple adjustment components 10 can be provided to increase the adjustment flexibility and adaptability of the air guide component 100.
[0163] like Figure 6 As shown, there are multiple adjustment components 10 (two adjustment components 10 are shown in the figure), wherein the number of drive components 20 is the same as the number of adjustment components 10, and each adjustment component 10 corresponds to one drive component 20.
[0164] This configuration, where each regulating component 10 has its own dedicated drive component 20, allows for independent control of each component. This enables precise adjustment of airflow direction and intensity in each area as needed, adapting to different room layouts and usage requirements. Users can flexibly adjust the settings of each regulating component 10 according to specific environmental conditions to achieve a more uniform and effective airflow distribution, preventing localized overheating or cooling and improving overall comfort. This redundancy design enhances system reliability and stability; for example, if one drive component 20 fails, the others can still function normally. Because each regulating component 10 and drive component 20 is independent, maintenance and troubleshooting become simpler, reducing maintenance time and costs.
[0165] For example, the number of adjustment components 10 can be two, wherein the two adjustment components 10 are spaced apart along the extension direction of the adjustment components 10.
[0166] By setting two adjustment assemblies 10, flexible air flow control and convenient maintenance experience can be provided while maintaining high efficiency and reliable operation, improving user experience. The structure of the air guide assembly 100 can also be simplified, thereby reducing costs. The interval arrangement makes each adjustment assembly 10 more easily accessible, facilitating installation, maintenance, and repair. Users can more easily check, replace, or repair without having to disassemble other components.
[0167] Of course, in other embodiments, the number of adjustment assemblies 10 can also be three, four, five, or more, and in the embodiments of the present application, the number of adjustment assemblies 10 in the air guide assembly 100 is not further limited.
[0168] In a possible implementation, the air guide assembly 100 can further include a control device (not shown in the figure). The control device is electrically connected with the driving assembly 20, and the control device is configured to control the driving assembly 20.
[0169] For example, the control device can be electrically or signal connected with the first motor and the second motor 222, so as to control the first motor and the second motor 222 respectively through the control device to adjust the range of the first air supply angle a1 and the range of the second air supply angle a2. In addition, when the air guide blade 12 can swing in the z direction or in a direction at an angle with the z direction, the control device can also control the air guide blade 12 to swing in the z direction or in a direction at an angle with the z direction. In the embodiments of the present application, the control mode of the control device on the driving assembly 20 is not further limited.
[0170] By setting the control device, the control device can accurately control the driving assembly 20, allowing users to adjust the angle of the air guide blade 12 and the direction of the carrier plate 11 as needed, thereby achieving more accurate air flow management. The control device can realize automatic operation, automatically adjust the air flow setting based on the preset program or sensor input (such as temperature, humidity, personnel activity, etc.), and improve the intelligent level of the system.
[0171] In a possible implementation, the control device is configured to synchronously control the driving assemblies 20 corresponding to the plurality of adjustment assemblies 10. That is, the range of the first air supply angle a1 of different adjustment assemblies 10 can be the same.
[0172] It should be noted that the control device is configured to synchronously control the driving assemblies 20 corresponding to the plurality of adjustment assemblies 10, which means that when adjusting the air guide assembly 100, the driving assemblies 20 of a plurality of air guide assemblies 100 are simultaneously controlled to make the adjustment angles of the carrier plates 11 the same, as shown in Figure 7As shown, after the different adjustment assemblies 10 adjust the first air supply angle α1 range, the extension directions of the different adjustment assemblies 10 are in a state of mutual close parallelism. Here, for the different adjustment assemblies 10, after the first air supply angle α1 range is adjusted, the adjustment of the second air supply angle α2 range is not further limited, and the second air supply angle α2 range of the different adjustment assemblies 10 can be the same or different, which can be determined according to specific needs.
[0173] In this way, the first air supply angle α1 range of the different adjustment assemblies 10 can be consistent, thereby realizing more uniform air distribution, helping to maintain consistent temperature and comfort in the entire room. Since the first air supply angle α1 range of all adjustment assemblies 10 is the same, the complexity of the control system is reduced, which can simplify the control algorithm and hardware design, reduce the system cost and maintenance difficulty. The unified first air supply angle α1 range provides a consistent user experience, avoiding the problem of local temperature difference or air flow unevenness caused by different angle settings. Since the angle settings of all adjustment assemblies 10 are the same, the installation and debugging process is faster and simpler. Users or installers do not need to adjust the angle of each component separately.
[0174] In some other embodiments, the control device is used to control the driving assemblies 20 corresponding to the plurality of adjustment assemblies 10 respectively, that is, the first air supply angle α1 range of the different adjustment assemblies 10 can also be different.
[0175] For example, referring to Figure 8 As shown, part of the plurality of adjustment assemblies 10 is rotated to the first air supply angle α1 range, and another part is in the initial unadjusted state. As shown in Figure 9 As shown, the adjustment assemblies 10 in the plurality of adjustment assemblies 10 can move in different directions respectively. Among them, when the different adjustment assemblies 10 complete the adjustment of the first air supply angle α1 range, the extension directions of the bearing plates 11 of the different adjustment assemblies 10 are arranged at an included angle. Figure 8 and Figure 9 In the above-mentioned embodiments, the air guide assembly 100 is only schematically shown as including two adjustment assemblies 10. When the number of adjustment assemblies 10 is more, there will be more adjustment modes, which will not be repeated here.
[0176] By controlling the driving assemblies 20 corresponding to the plurality of adjustment assemblies 10 through the control device, personalized air flow adjustment can be performed on different areas in the room, and the comfort needs of different users can be met, especially in large spaces or multi-functional areas. In addition, in multi-functional spaces (such as conference rooms, open offices, etc.), different first air supply angle α1 ranges can provide suitable air flow conditions for different activity areas to meet diversified use needs. By adjusting the first air supply angle α1 range of each adjustment assembly 10, the problem of temperature unevenness in the room can be more effectively solved. For example, special adjustment can be performed on areas directly exposed to sunlight or near doors and windows. By precisely controlling the air flow direction of each area, unnecessary energy consumption can be reduced, thereby improving the overall energy efficiency of the system and helping to reduce operating costs and energy consumption.
[0177] In the above embodiments, each adjustment assembly 10 is driven by a separate driving assembly 20, and in other embodiments, other driving modes can also be used. In the embodiments of the present application, further description is not given.
[0178] As shown in Figure 10 , a plurality of adjustment assemblies 10 are arranged at intervals along the extension direction of the adjustment assembly 10 (two adjustment assemblies 10 in the figure). At least part of two adjacent adjustment assemblies 10 share a first driving member 21 or a second driving member 22, and the shared first driving member 21 or second driving member 22 is located between the two adjacent adjustment assemblies 10.
[0179] For example, the number of adjustment assemblies 10 is two, and the two adjustment assemblies 10 are arranged at intervals along the extension direction of the adjustment assembly 10. The driving assembly 20 includes a first driving member 21 and a second driving member 22, and each adjustment assembly 10 corresponds to a driving assembly 20. When assembled, since the two adjustment assemblies 10 are arranged adjacent to each other, a first driving member 21 or a second driving member 22 can be arranged at the interval position between the two adjustment assemblies 10 to control the two adjacent adjustment assemblies 10, so that one first driving member 21 or second driving member 22 can be saved, thereby reducing the cost. By arranging the shared first driving member 21 or second driving member 22 between the two adjustment assemblies 10, the assembly difficulty of the first driving member 21 or second driving member 22 and the two adjustment assemblies 10 can be reduced, and the installation can be facilitated and rapid.
[0180] As shown in Figure 11 , the two first driving members 21 of the two adjustment assemblies 10 are arranged at two ends of the adjustment assembly 10 away from each other, and a second driving member 22 is arranged in the gap between the two adjustment assemblies 10. One second driving assembly 20 can drive two adjustment assemblies 10 at the same time.
[0181] For example, the second transmission member 221 can include a rack structure 2211 and a multi-link mechanism 2212. The two adjustment assemblies 10 located on both sides of the second driving member 22 are controlled by the multi-link mechanism 2212. In this embodiment, the specific mechanism of the second transmission member 221 is not limited as long as it can achieve its function.
[0182] By setting the second transmission member 221 to include a rack structure 2211 and a multi-link mechanism 2212, the structure of the second transmission member 221 can be simplified, the processing technology is simple, the cost is low, and it is suitable for mass production and application. In addition, the multi-link mechanism 2212 can include multiple links, so that one second transmission member 221 can control the load plates 11 of multiple adjustment assemblies 10, thereby simplifying the structure of the entire guide assembly 100 and reducing the cost.
[0183] For example, the second transmission member 221 can include a rack structure 2211 and two links, one end of the two links is rotatably connected to one end of the rack structure 2211, and the other end of the two links is respectively connected to the load plate 11 of one adjustment assembly 10. The second motor 222 can be in transmission connection with the rack structure 2211. The rack structure 2211 is driven to move along the y direction by the rotation of the second motor 222, thereby driving the two links to drive the load plates 11 of the two adjustment assemblies 10 to move along the y direction.
[0184] Of course, in other embodiments, the two second driving members 22 of the two adjustment assemblies 10 can be respectively arranged at the two ends of the adjustment assemblies 10 away from each other, and the first driving member 21 is arranged in the gap between the two adjustment assemblies 10. The guide vanes 12 on the two adjustment assemblies 10 can be driven simultaneously by the first driving assembly 20. For example, the first transmission member can include a multi-link mechanism 2212. The guide vanes 12 of the two adjustment assemblies 10 located on both sides of the first driving member 21 are controlled by the multi-link mechanism 2212. In this embodiment, the specific mechanism of the first transmission member is not limited as long as it can achieve its function.
[0185] The embodiments or implementations in the specification are described in a progressive manner, and each embodiment focuses on the difference from other embodiments. The same or similar parts between the embodiments can be referred to each other.
[0186] In the description of the application, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like is based on the orientation or positional relationship shown in the drawings, and is only for the purpose of facilitating the description of the application and simplifying the description, and does not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the application.
[0187] In the description of the 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 that includes a series of steps or units need not be limited to those clearly listed steps or units, but can include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices.
[0188] Unless otherwise expressly specified and limited, the terms "mount", "connect", "connection", "fixed", and the like should be interpreted broadly, for example, can be fixed connection, can also be detachable connection, or become an integral; can be directly connected, can also be indirectly connected through an intermediate medium, can make the internal connection of two elements or the interaction relationship of two elements. For those skilled in the art, the specific meaning of the above terms in the application can be understood according to the specific circumstances. In addition, the terms "first", "second" and the like are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated.
[0189] Finally, it should be pointed out that: the above embodiments are only used to illustrate the technical solutions of the application, and not to limit them; although the application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they 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 application.
Claims
1. A wind guide assembly mounted to a mounting surface (m), characterized by The application relates to an air conditioner, which comprises: an adjusting assembly (10) comprising movable air guide blades (12); a driving assembly (20) in transmission connection with the adjusting assembly (10), wherein the driving assembly (20) drives at least part of the structure of the adjusting assembly (10) to change position relative to the mounting surface (m).
2. The air deflector assembly of claim 1, wherein, The adjusting assembly (10) further comprises a base point (13); wherein the driving assembly (20) is used to drive the adjusting assembly (10) to rotate around the base point, so that at least part of the structure of the adjusting assembly (10) moves away from the mounting surface (m).
3. The air deflector assembly of claim 1, wherein, The driving assembly (20) is used to drive the adjusting assembly (10) to move away from the mounting surface (m) relative to the mounting surface (m).
4. The air deflector assembly of any one of claims 1-3, wherein, The driving assembly (20) is in transmission connection with the air guide blades (12); The driving assembly (20) is used to drive the air guide blades (12) to change position.
5. The air deflector assembly of claim 4, wherein, The driving assembly (20) is in transmission connection with the air guide blades (12); The driving assembly (20) is used to drive the air guide blades (12) to rotate.
6. The air deflector assembly of claim 4, wherein, The adjusting assembly (10) comprises a bearing plate (11); The air guide blades (12) are movably connected with the bearing plate (11); The air guide blades (12) are multiple in number and are arranged at intervals along the extension direction of the bearing plate (11).
7. The air deflector assembly of claim 6, wherein, The driving assembly (20) comprises a first driving member (21) and a second driving member (22); wherein The first driving member (21) is in transmission connection with the air guide blades (12), and the first driving member (21) drives the air guide blades (12) to change position; The second driving member (22) is in transmission connection with the bearing plate (11), and the second driving member (22) drives at least part of the structure of the bearing plate (11) to change position relative to the mounting surface (m).
8. The air deflector assembly of claim 7, wherein, The first driving member (21) is in transmission connection with the air guide blades (12), and the first driving member (21) drives the air guide blades (12) to rotate.
9. A wind deflector assembly according to claim 7 or 8, wherein, The first driving member (21) and the second driving member (22) are arranged at intervals along the extension direction of the bearing plate (11).
10. The air deflector assembly of claim 7 or 8, wherein, The first driving member (21) is movably connected with the bearing plate (11).
11. The air deflector assembly of any one of claims 1-3, wherein, The number of the adjusting assemblies (10) is multiple; The number of the driving assemblies (20) is the same as that of the adjusting assemblies (10), and each adjusting assembly (10) corresponds to one driving assembly (20).
12. The air deflector assembly of claim 11, wherein, The number of the adjusting assemblies (10) is two; wherein The two adjusting assemblies (10) are arranged at intervals along the extension direction of the adjusting assemblies (10).
13. The air deflector assembly of claim 7 or 8, wherein, The number of the adjusting assemblies (10) is multiple; The number of the driving assemblies (20) is the same as that of the adjusting assemblies (10), and each adjusting assembly (10) corresponds to one driving assembly (20); The multiple adjusting assemblies (10) are arranged at intervals along the extension direction of the adjusting assemblies (10). At least two of the adjustment assemblies (10) adjacent to each other share one of the first driving members (21) or the second driving members (22), and the shared first driving member (21) or the second driving member (22) is located between the two adjustment assemblies (10) adjacent to each other.
14. The air deflector assembly of claim 7 or 8, wherein, The first driving member (21) comprises a first motor and a first transmission member; wherein, The first motor is in transmission connection with the first transmission member; The first transmission member is in transmission connection with the guide vane (12) of the adjustment assembly (10); The first motor is used to drive the first transmission member to move, so as to drive the guide vane (12) connected with the first transmission member to rotate.
15. The air deflector assembly of claim 14, wherein, The first transmission member is a transmission connecting rod; wherein, The transmission connecting rod is arranged along the extension direction of the adjustment assembly (10) and is connected with the guide vane (12) of the adjustment assembly (10); The first motor is used to drive the transmission connecting rod to move along the extension direction of the adjustment assembly (10), so as to drive the guide vane (12) connected with the transmission connecting rod to rotate.
16. The air deflector assembly of claim 15, wherein, The bearing plate (11) is provided with a mounting hole, and the output shaft of the first motor is arranged in the mounting hole and is in movable connection with the mounting hole.
17. The air deflector assembly of claim 7 or 8, wherein, The second driving member (22) comprises a second motor (222) and a second transmission member (221); wherein, The second motor (222) is in transmission connection with the second transmission member (221), and the second transmission member (221) is connected with the bearing plate (11); The second motor (222) is used to drive the second transmission member (221) to move, so as to drive at least part of the structure of the bearing plate (11) to move relative to the mounting surface (m).
18. The air deflector assembly of claim 17, wherein, The second transmission member (221) comprises an arc-shaped rack structure; or, The second transmission member (221) comprises a rack structure (2211) and a multi-link mechanism (2212).
19. The air deflector assembly of any one of claims 1-3, wherein, Further comprising a control device; wherein, The control device is in electrical connection with the driving assembly (20), and the control device is used to control the driving assembly (20).
20. The air deflector assembly of claim 19, wherein, The number of the adjustment assemblies (10) is multiple; The number of the driving assemblies (20) is the same as the number of the adjustment assemblies (10), and each adjustment assembly (10) corresponds to one driving assembly (20); The control device is connected with the driving assemblies (20) corresponding to the multiple adjustment assemblies (10); The control device is used to synchronously control the driving assemblies (20) corresponding to the multiple adjustment assemblies (10), or the control device is used to respectively control the driving assemblies (20) corresponding to the multiple adjustment assemblies (10).
21. An air treatment device, characterised in that, The device body (300) and the air guide assembly (100) as claimed in any one of claims 1-20 are comprised.