Ultrathin main machine and ultrathin clothes airing machine
By placing the power source on the outside of the impeller and using belt drive, the problem of excessive thickness in smart clothes drying racks has been solved, achieving an ultra-thin main unit design that meets airflow requirements, reduces noise, and extends impeller life.
Patent Information
- Application Number
- CN202422099307.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-28
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2034-08-28
AI Technical Summary
The coaxial design of the impeller and motor in existing smart clothes drying racks results in an excessively thick main unit, making them unsuitable for ultra-thin clothes drying racks.
The power source is located outside the rotation range of the wind turbine, and the power source and the wind turbine are connected by a transmission component such as a belt. The height of the power source and the wind turbine overlaps, and a volute design and bearing housing are used to reduce thickness and noise.
This achieves a reduction in the thickness of the ultra-thin main unit, meeting airflow requirements while reducing noise and extending the lifespan of the impeller.
Smart Images

Figure CN223633663U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of clothes airing support, especially relates to a super -thin host computer, super -thin clothes airing machine. BACKGROUND
[0002] The centrifugal fan is selected to meet the air volume required by the current intelligent clothes airing machine, the air wheel and motor of the centrifugal fan are coaxially arranged in one axial direction, the axial thickness is large, which leads to large thickness of the clothes airing machine host computer, and the clothes airing machine host computer is not suitable for application to the super -thin clothes airing machine.
[0003] Further, the current market clothes airing machine is improved, the wheel disc of the air wheel has a certain recessed part, a part of the motor is assembled in the wheel disc of the air wheel, the overall height can be appropriately reduced, but the axial assembly length of the motor and the air wheel still exists, and it is still impossible to achieve thinner. UTILITY MODEL CONTENTS
[0004] The utility model aims at providing a super -thin host computer, which has the advantages of thin assembly thickness.
[0005] The above technical purpose of the utility model is realized by the following technical scheme:
[0006] A super -thin host computer comprises:
[0007] A shell is provided with a blowing port;
[0008] A wind channel is arranged in the shell, at least an air wheel is arranged in the wind channel, and the air wheel is adapted to convey airflow into the wind channel through rotation, and the super -thin host computer further comprises:
[0009] A power source is adapted to output rotary motion, the power source is arranged outside the rotation range of the air wheel, and the height of the power source and the air wheel at least partially overlaps;
[0010] A transmission member is connected between the power source and the air wheel.
[0011] Further arrangement: the power source is located outside the wind channel.
[0012] Further arrangement: the wind channel comprises a volute, and the transmission member is arranged above the volute.
[0013] Further arrangement: the transmission member is one of a conveyor belt synchronous belt or a belt.
[0014] Further arrangement: a rotating shaft is further arranged, the rotating shaft is rotationally connected to the shell, the air wheel is arranged on the rotating shaft, and the transmission member is rotationally connected to the rotating shaft.
[0015] Further arrangement: the shell is provided with a bearing seat for rotationally connecting the rotating shaft.
[0016] Further arrangement: the shell is further provided with an air inlet communicated with the air duct, and the air inlet and the air outlet are located on the same side.
[0017] Further arrangement: the power source comprises an output shaft, and the transmission member is drivingly connected to the output shaft.
[0018] Further arrangement: a limiting member is arranged on the output shaft outside the transmission member.
[0019] Another object of the present application is to provide an ultra-thin clothes drying machine with the above ultra-thin main machine.
[0020] In summary, the present application has the following advantages:
[0021] First, in the present application, the power source is located outside the rotation range of the wind wheel and partially overlaps the height of the wind wheel, which reduces the assembly space on the shell, reduces the space occupation in the thickness direction of the shell, and thus reduces the thickness of the main machine.
[0022] Second, in the present application, the belt drive is preferably used to drive the power source and the wind wheel, which effectively reduces noise and reduces the thickness of the shell. The width of the belt is much lower than the assembly length of the power source shaft rotating to the wind wheel, which can effectively reduce the overall height. In addition, when the output shaft of the power source and the rotating shaft have the same diameter, the transmission ratio is 1:1, which meets the air volume requirement of the ultra-thin clothes drying machine.
[0023] Third, in the present application, the shell has two bearing seats connected by the rotating shaft, which can effectively reduce the jumping of the wind wheel during high-speed rotation, improve the service life and reduce noise. BRIEF DESCRIPTION OF DRAWINGS
[0024] Figure 1 is a structural schematic view of the ultra-thin main machine;
[0025] Figure 2 is a partial perspective view of the ultra-thin main machine;
[0026] Figure 3 is a side cross-sectional view of the ultra-thin main machine.
[0027] In the drawings, 101 is a shell; 102 is an air outlet;
[0028] 200 is an air duct; 201 is a volute; 300 is a power source; 301 is a limiting member; 400 is a wind wheel; 401 is a rotating shaft; 402 is a bearing seat; 500 is a transmission member. DETAILED DESCRIPTION
[0029] The present application will be further described in detail below with reference to the drawings.
[0030] In the description of this utility model, 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", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0031] An ultra-thin host, such as Figure 1 As shown, it includes a housing 101 and an air duct 200. The structure of the housing 101 is not specifically limited; in this embodiment, reference is made to... Figure 3 The housing 101 has a thickness direction and is hollow inside for mounting mechanisms and components. (Reference) Figure 1 The cross-sectional shape of the housing 101 is preferably rectangular. As an alternative embodiment, the cross-sectional shape of the housing 101 is one of a circle, an ellipse, or an annular shape.
[0032] The housing 101 is provided with an air outlet 102. The structure of the air duct 200 is not specifically limited. In this embodiment, the air duct 200 includes a volute 201 and a connecting air duct 200 adapted between the volute 201 and the air outlet 102. The air duct 200 is disposed inside the housing 101. At least one impeller 400 is provided inside the air duct 200. The impeller 400 is located inside the volute portion and is adapted to deliver airflow into the air duct 200 by rotation. The airflow is delivered from the extension portion to the air outlet 102 and blown out.
[0033] refer to Figure 1 and Figure 2 The ultra-thin main unit also includes a power source 300, which is suitable for outputting rotary motion.
[0034] The power source 300 is located outside the rotation range of the wind turbine 400, where "outer" refers to the area occupied by the rotation of the wind turbine 400 itself. The height of the power source 300 and the wind turbine 400 at least partially overlaps, specifically the height of the wind turbine 400 along its axial direction. In one embodiment, preferably, the axis of the wind turbine 400's rotation center is perpendicular to the bottom wall of the housing 101. Alternatively, the axis of the wind turbine 400's rotation center is inclined to the bottom wall of the housing 101. Alternatively, the axis of the wind turbine 400's rotation center is parallel to the bottom wall of the housing 101.
[0035] refer to Figure 2The ultra-thin host further comprises a transmission member 500, which is transmissionally connected between the power source 300 and the wind wheel 400. The wind wheel 400 is driven to rotate by the rotary motion output by the power source 300. The structure of the power source 300 is not specifically limited. In the embodiment, the power source 300 is an electric motor. The power source 300 comprises an output shaft, which is preferably perpendicular to the bottom wall of the shell 101. As an alternative embodiment, the output shaft is inclined to the bottom wall of the shell 101. As an alternative embodiment, the output shaft is parallel to the bottom wall of the shell 101. As an alternative embodiment, the power source 300 can also be one of a rotary cylinder and a motor.
[0036] The structure of the wind wheel 400 is not specifically limited. In the embodiment, the wind wheel 400 is preferably a unidirectional impeller.
[0037] The structure of the transmission member 500 is not specifically limited. In the embodiment, the transmission member 500 is a belt. As an alternative embodiment, the transmission member 500 is one of a conveyor belt and a synchronous belt.
[0038] The setting position of the transmission member 500 is not specifically limited. In the embodiment, the transmission member 500 is arranged above the volute 201. As an alternative embodiment, the transmission member 500 is arranged below the volute 201. Here, the above and below specifically refer to the two sides of the body of the volute 201 along the central axis of the wind wheel 400.
[0039] Reference is made to Figure 3 The ultra-thin host further comprises a rotating shaft 401, which is rotationally connected to the shell 101. The wind wheel 400 is arranged on the rotating shaft 401. The shell 101 is provided with a bearing seat 402 for rotationally connecting the rotating shaft 401. Through the bearing seat 402, the jumping of the wind wheel 400 during high-speed rotation can be effectively reduced, and the service life and noise can be effectively improved.
[0040] In the embodiment, one part of the transmission member 500 is transmissionally connected to the rotating shaft 401, and the other part is transmissionally connected to the output shaft. The rotating shaft 401 is directly driven to rotate, thereby driving the wind wheel 400 to rotate. Further, a limiting member 301 is arranged on the output shaft of the power source 300 outside the transmission member 500. The belt is prevented from coming off. The specific structure of the limiting member 301 is not limited. In the embodiment, the limiting member 301 is a nut. As an alternative embodiment, the limiting member 301 is a protrusion with a radial width greater than that of the output shaft of the power source 300. The protrusion is integrally arranged with or detachably connected to the output shaft.
[0041] On the basis of the above-mentioned embodiment, as a further defined embodiment, as Figure 1As shown, the shell 101 is further provided with an air inlet communicated with the air duct 200, and the shell 101 is further provided with an air inlet communicated with the air duct 200, and the air inlet and the air outlet 102 are located on the same side. Preferably, the air inlet is located on the air outlet direction side of the air outlet 102. As an alternative embodiment, the air inlet is arranged opposite to the air outlet direction side of the air outlet 102. As an alternative embodiment, the air inlet is arranged inclined or perpendicular to the air outlet direction side of the air outlet 102.
[0042] The specific application scene and application mode of the ultra-thin host in the above embodiment are not specifically limited, and the embodiment further provides an ultra-thin clothes drying machine with the above ultra-thin host.
[0043] The above embodiment is only an explanation of the present application, and is not a limitation of the present application. Those skilled in the art can make modifications to the embodiment without creative contribution after reading the specification, but as long as it is within the scope of the claims of the present application, it is protected by the patent law.
Claims
1. An ultra-thin host, comprising: a housing (101) provided with a blowing port (102); an air duct (200) arranged in the housing (101), wherein at least a fan wheel (400) is arranged in the air duct (200) and adapted to deliver air flow into the air duct (200) by rotation, characterized in that it further comprises: a power source (300) adapted to output rotary motion, wherein the power source (300) is arranged outside the rotation range of the fan wheel (400) and at least partially overlaps the fan wheel (400) in height; a transmission member (500) transmissionally connected between the power source (300) and the fan wheel (400).
2. The ultra-thin host computer according to claim 1, wherein: The power source (300) is located outside the air duct (200).
3. The ultra-thin host computer according to claim 1, wherein: The air duct (200) comprises a volute (201), and the transmission member (500) is arranged above the volute (201).
4. The ultra-thin host computer according to any of the claims 1-3, wherein: The transmission member (500) is one of a conveyor belt synchronous belt or a belt.
5. The ultra-thin host computer according to any of claims 1-3, wherein: Further comprising a rotating shaft (401) rotationally connected to the housing (101), wherein the fan wheel (400) is arranged on the rotating shaft (401), and the transmission member (500) is transmissionally connected to the rotating shaft (401).
6. The ultra-thin host computer according to claim 5, wherein: The housing (101) is provided with a bearing seat (402) for rotationally connecting the rotating shaft (401).
7. The ultra-thin host machine of any of claims 1-3, 6, wherein: The housing (101) is further provided with an air inlet communicated with the air duct (200), and the air inlet and the blowing port (102) are located on the same side.
8. The ultra-thin host machine of any of claims 1-3, 6, wherein: The power source (300) comprises an output shaft, and the transmission member (500) is transmissionally connected to the output shaft.
9. The ultra-thin host computer according to claim 8, wherein: A limiting member (301) is arranged on the output shaft outside the transmission member (500).
10. An ultra-thin clothes horse, characterised in that: An ultra-thin host as claimed in any one of claims 1 to 9.