The present invention relates to a fan and its impeller, and particularly to the fans capable of reducing windage and noise.
Typically, a conventional impeller 100 with thirteen fan blades 104 is employed to balance adequate airflow efficiency without significantly increasing the windage and noise thereof. In a compact electrical device, however, heat dissipation efficiency is enormously required due to the compacted volume thereof, which exceeds the adequate airflow efficiency of the conventional fan with the impeller 100. As a result, a fan with enhanced heat dissipation efficiency and reducing windage and noise thereof is required.
In view of the problem, an object of the present invention is to provide a fan to enhance heat dissipation and reduce the windage and noise.
In an exemplary embodiment of the present invention, a fan includes a housing, an impeller and a motor. The impeller includes a hub, a ring and a plurality of flat blades. The ring surrounds the hub without substantial contact therewith and is connected to the hub by at least one connecting arm. The flat blades are disposed on the ring and each of the flat blades has an imaginary extending line tangent to a rim of the hub.
In some embodiments, the active surfaces of the flat blades have shapes of rectangles, ladder-sided polygons, tapered polygons, or polygons with taper-and-ladder sides.
In some embodiments, the ring has a rectangular cross-section, an outward tapered shape, an inward tapered shape, or a two-sided tapered shape.
In some embodiments, the connection arm has a rectangular cross-section, a teardrop shape, a polygon, or a rounded polygon.
In some embodiments, the impeller can be used to an axial-flow fan or a blower, and the flat blades do not substantially contact the hub.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The present invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
Please refer both to
In some embodiments, the hub 202 is a hat-shaped structure with a stator disposed therein. The hub 202 can be made of metal or plastic.
The ring 206 is disposed surrounding the hub 202 without substantial contact therewith, and the ring 206 is connected to the hub 202 by the connecting arms 208. In some embodiments, the cross-section of the ring 206 can be a rectangle 206a, an outward tapered shape 206b, an inward tapered shape 206c, or a two-sided tapered shape 206d, respectively shown in
The connection arms 208 connect the hub 202 and the ring 206. The number and size of the connection arms 208 are not limited. The cross-sections of the connection arms 208 can be a rectangle 208a, a teardrop shape 208b, a polygon 208c, a round-cornered polygon 208d, or a bone shape 208e with both side portions 214 thereof thicker than a middle portion 216 thereof, respectively shown in
The flat blades 204 are disposed radially on the ring 206 around the hub 202 and substantially horizontally extended outwardly, and the active surface 210 of each of the flat blades 204 has an imaginary extending line 302 which is tangent to a rim of the hub. The active surface 210 means the surface of the flat blades which meets air directly. Take an example in
The active surfaces 210 can be flat to maximize the total active area of the flat blades 204. In some embodiments, the active surfaces 210 have rectangular shapes 210a, ladder-sided polygons 210b and 210d with ladder sides 212, tapered polygons 210c, and polygons 210e and 210f with taper-and-ladder sides 212a, respectively shown in
Because the flat blades 204 are disposed on the ring 206 without substantial contact to the hub 202, and the imaginary extending lines of the active surfaces 210 of the flat blades 204 are tangent to a rim of the hub, thus when the imaginary extending lines of flat blades 204 crisscross with other, space between the flat blades 204 is maintained with desired windage. As a result, the number of the flat blades 204 can potentially be increased to more than thirteen to enhance airflow efficiency without significantly increasing the windage and noise of the impeller 200. In some embodiments, sixteen to twenty flat blades 204 can be employed.
Further, please referring to
Moreover, the impeller 200/600 may be used to an axial-flow fan or a blower, i.e. a side-blown fan. No matter the axial-flow fan or the blower, both of them include a housing, the above-mentioned impeller and a motor. The motor is for driving the impeller to rotate, and both of the motor and the impeller are accommodated within the housing.
While the invention has been described by way of example and in terms of preferred embodiment, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Date | Country | Kind |
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093112882 | May 2004 | TW | national |
This application is a continuation-in-part of U.S. application Ser. No. 11/123,118, filed on May 6, 2005, which claims priority to Taiwan Application Serial Number 93112882, filed on May 7, 2004, the disclosure of which is hereby incorporated by reference herein in its entirety.
Number | Date | Country | |
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Parent | 11123118 | May 2005 | US |
Child | 12405724 | US |