This application claims the priority benefit of CN application serial No. 201621481042.2, filed on Dec. 30, 2016. The entirety of the above-mentioned patent applications are hereby incorporated by references herein and made a part of specification.
The disclosure relates to a centrifugal fan and, more specifically, to a centrifugal fan with an air guiding structure.
With the miniaturization trend of various electronic devices, such as notebook, the space for a heat dissipating fan is limited. Consequently, the wind drag of the heat dissipating fan in operation is obviously increased while the performance of the fan is decreased.
According to an aspect of the disclosure, a centrifugal fan is provided. The centrifugal fan comprises: a housing, including an upper cover and a lower cover; an impeller including a hub, the impeller is configured in the housing and configured to rotate around a rotation axis; a plurality of blades, connected to a peripheral surface of the hub; and at least one air guiding structure connected to the blades, an angle between the air guiding structure and the rotation axis increases along with a distance in the direction away from the hub.
The housing 10 includes an upper cover 10A and a lower cover 10B. The upper cover 10A is in a planar structure and includes an air inlet 11. The lower cover 10B includes a volute recess. An air outlet 12 is configured at a side of the housing 10. The impeller 20 is pivoted in the housing 10 via a hub 21. Blades 22 are configured at the peripheral surface of the hub 21. The blade 22 includes an air guiding structure 23. When the impeller 20 rotates in the housing 10, airflow flows into the housing 10 from the air inlet 11 and flows out of the outlet 12 through blades 22 via a centrifugal force produced by rotation of the impeller 20.
In the embodiment, the blade 22 includes a first end 221 and a second 222. The first end 221 is connected to the peripheral surface of the hub 21. The distance from the first end 221 to the center O of the hub 21 is smaller than the distance from the second end 222 to the center O of the hub 21. When the impeller 20 rotates, airflow flows into the housing 10 from the air inlet 11 of the upper cover 10A and flows out of the housing 10 from the air outlet 12 through the second ends 222.
The blade 22 includes a windward side 223 and a leeward side 224. The windward side 223 and the leeward side 224 are configured between the first end 221 and the second end 222. In the embodiment, the windward side 223 is parallel to the leeward side 224. The curvature of any point on the windward side 223 and the leeward side 224 is zero. As shown in
In an embodiment, an upper air guiding structure 23A is configured at the upper side portion 225 of the blades 22. In an embodiment, the lower air guiding structure 23B is configured at the lower side portion 226. In an embodiment, an upper air guiding structure 23A is configure at the upper side portion 225 while the lower air guiding structure 23B is configured at the lower side portion 226. An upper air guiding structure 23A or the lower air guiding structure 23B is configured adjacent to the air inlet 11 to guide airflow into the impeller 20 more fluently.
In
The air guiding structure 23 includes an inner end 231, an outer end 232, a connection side 233 and an end part 234. The inner end 231 is connected to the peripheral surface of the hub 21. The distance from the inner end 231 to the center O of the hub 21 is smaller than the distance from the outer end 232 to the center O of the hub 21. The connection side 233 and the end part 234 are between the inner end 231 and the outer end 232. The connection side 233 extends from the blade 22 to the end part 234 in the direction away from the blade 22. The distances from any points on the air guiding structure 23 to the center O of the hub 21 along the connection direction from the inner end 231 to the outer end 232 are different. The radiuses r, which are from the points to the center O of the hub 21 along the connection direction from the inner end 231 to the outer end 232, are different.
In an embodiment, the outer end 232 of the air guiding structure 23 is in the range of the outline of the air inlet 11. Then, airflow is guided by the air guiding structure 23 when the airflow flows into the housing 10 via the air inlet 11. The tangential velocity of the end part 234 of the air guiding structure 23 relates to the performance of the fan. Consequently, the larger the tangential velocity of end part 234 is, the higher the wind velocity is. The tangential velocity is in positive correlation with radius and angular velocity. The angular velocity relates to the angle at which airflow contacts the end part 234.
In the embodiment, since air deflecting angles of positions on the end part 234 are gradually changed, airflow is guided continuously and gradually. The radius r is the distance from a point on the end part 234 to the center O of the hub 21. The air deflecting angle θ is the angle between the tangential direction of any point on the end part 234 and the axial direction X. In the embodiment, the air deflecting angle θ of the upper air guiding structure 23A is the angle between the tangential direction of any point on the end part 234A and the axial direction X towards a side of the upper cover 10A. The air deflecting angle θ of the lower air guiding structure 23B is the angle between the tangential direction of any point on the end part 234B and the axial direction X towards a side of the lower cover 10B.
The radius r of a point on the end part 234 of the air guiding structure 23 is proportional to the air deflecting angle θ at the same position. Therefore, the shorter the distance from the end part 234 of the air guiding structure 23 to the center O of the hub 21 is, the smaller the air deflecting angle θ is, and vice versa. The air deflecting angle θ of the end part 234 of the air guiding structure 23 is gradually changed in proportional to the radius r.
When the impeller 20 rotates, airflow flows into the impeller 20 from the air inlet 11. Airflow is guided gradually from the inner end 231 of the air guiding structure 23 to the outer end 232 via the air guiding structure 23. In the circumstance that tangential velocities are changed, airflows are guided in different airflow inlet angles. Thus, the fluency of the airflow is increased, and the energy loss is decreased.
With the configuration of the air deflecting angle θ, the appearance of the air guiding structure 23 are various. In the embodiments in
In
The configuration of the upper air guiding structure 23A is not limited to extend from the windward side 223 in the direction having an angle with the windward side 223. In an embodiment shown in
In the embodiment shown in
Although the invention has been disclosed with reference to certain embodiments thereof, the disclosure is not for limiting the scope. Persons having ordinary skill in the art may make various modifications and changes without departing from the scope of the invention. Therefore, the scope of the appended claims should not be limited to the description of the embodiments described above.
Number | Date | Country | Kind |
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201621481042.2 | Dec 2016 | CN | national |