1. Technical Field
The disclosure generally relates to heat dissipation fans, and particularly to a heat dissipation fan having an improved heat dissipation efficiency.
2. Description of Related Art
It is well known that if heat generated by electronic components such as integrated circuit chips during operation is not efficiently removed, these electronic components may suffer damage. Thus, heat dissipation apparatuses are often used to cool the electronic components.
A typical heat dissipation apparatus includes a heat sink and a fan mounted on the heat sink. The fan includes a base having a bearing tube extending upwardly therefrom, a stator mounted around the bearing tube, and an impeller rotatably attached to the bearing tube. The impeller includes a hub and a plurality of blades arranged around the hub.
During operation, heat generated by the electronic component is transferred to the heat sink, the blades of the fan drive air surrounding the hub to generate a forced airflow to cool the heat sink. Since no air pass through the hub, a portion of the heat sink under the hub can not be cooled. Thus, a non-cooled area of the heat sink is formed near the hub, which results in a low heat dissipation efficiency of the fan.
For the foregoing reasons, a heat dissipation fan which can overcome the above described limitations is desired.
Many aspects of the embodiments can be better understood with references to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
The fan housing 10 includes an annular-shaped frame 11 and a base 12 positioned in a central portion of the frame 11. The base 12 is substantially disk-shaped. Three ribs 121 extend outwardly from an outer periphery of the base 12 along a tangential direction of the base 12, respectively. The ribs 121 are evenly distributed along a circumference of the base 12, and connect the base 12 to an inner surface of the frame 11. A shaft 122 extends perpendicularly and upwardly from a central portion of the base 12. Three through holes 120 are defined in a middle portion of the base 12. The through holes 120 enable an airflow exchanging between two sides of the base 12. Each of the through holes 120 is sector-shaped. The through holes 120 are evenly arranged around the shaft 122, and spaced from each other. Outer sides of the three through holes 120 cooperatively define an imaginary circle, which is concentric with the base 12.
The stator 30 includes a printed circuit board 31 and a stator core 32 mounted on the printed circuit board 31. The printed circuit board 31 is disk-shaped and has an aperture 310 defined in a middle portion thereof. A diameter of the aperture 310 is substantially the same as that of the imaginary circle defined by the through holes 120 of the base 12. The stator core 32 is cylindrical-shaped, and defines an air passage 320 along an axial direction thereof. The stator 30 is mounted on the base 12 around the through holes 120 of the base 12, and the through holes 120 of the base 12 communicate with the aperture 310 and the air passage 320. The shaft 122 of the base 12 is received in the air passage 320 of the stator 30 (referring to
Referring to
A ventilating tube 216 surrounding the bearing tube 213 extends downwardly and perpendicularly from the top wall 211 around the ventilating holes 210. The ventilating tube 216 is substantially tubular and coaxial to the bearing tube 213. An outer diameter of the ventilating tube 216 is a little smaller than that of the air passage 320 of the stator 30. An outer surface of the ventilating tube 216 is spaced from the stator 30. There holding pates 215 are formed between the bearing tube 213 and the ventilating tube 216. The three holding plates 215 are evenly arranged around the bearing tube 213. Each of the holding plates 215 extends perpendicularly and downwardly from a portion of the top wall 211 between every two adjacent ventilating holes 210 and connects between the ventilating tube 216 and the bearing tube 213. A space between the bearing tube 213 and the ventilating tube 216 is divided by the holding plates 215 into three equal parts. The ventilating tube 216 and the holding plates 215 realize a more firm connection between the bearing tube 213 and the top wall 211.
Referring to
During operation, the impeller 20 rotates due to the interaction of the alternating magnetic field established by the stator core 32 of the stator 30 and the magnet ring 23 of the impeller 20. The rotary blades 22 generate a forced airflow around a circumference of the hub 21. An air pressure difference between the top and bottom sides of the heat dissipation fan is established due to the forced airflow generated by the blades 22. For the air pressure difference, the air at two sides of the heat dissipation fan flows continually through the ventilating holes 210, the ventilating tube 216 and the through holes 120. Thus, the airflow can reach an area under the hub 21 of the heat dissipation fan. When the heat dissipation fan is mounted on a heat sink, a portion of the heat sink under the hub 21 of the heat dissipation fan can be well cooled by the airflow flowing through the hub 21. Thus, the non-cooled area of the heat sink is reduced, which enhances the heat dissipation efficiency of the heat dissipation fan.
In addition, during operation, the stator 30 is electrified to maintain a rotation of the impeller 20. The stator 30 generates heat continuously due to the eddy current thereof. Since the bearing tube 213 is spaced from the stator 30 by the air passage 320, the heat generated by the stator core 32 can not be transferred to the bearing tube 213. At the same time, heat generated by the bearing 214 due to the friction between the bearing 214 and the shaft 122 can be taken away timely by the airflow passing through the air passage 320. Thus, the bearing tube 213 and the bearing 214 therein keeps a low temperature, which decelerates the evaporation of the lubricant in the bearing tube 213 and enables the heat dissipation fan to have an extended life.
It is understood that the invention may be embodied in other forms without departing from the spirit thereof. Thus, the present examples and embodiments are to be considered in all respects as illustrative and not restrictive, and the invention is not to be limited to the details given above.
Number | Date | Country | Kind |
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200910300841.3 | Mar 2009 | CN | national |