1. Technical Field
The present disclosure relates to heat dissipation, and particularly to a heat dissipation device having an improved cooling fan.
2. Description of Related Art
With continuing development of electronic technology, heat-generating electric components such as CPU (central processing unit) is generating more and more heat which requires immediate dissipation. Generally, a heat dissipation device provides such heat dissipation. The heat dissipation device includes a heat sink thermally attached to the CPU to absorb heat therefrom and a cooling fan mounted on the heat sink for facilitating removal of heat from the heat sink.
The cooling fan includes a housing and an impeller received in the housing. The housing defines an air inlet at one side and an air outlet at an opposite side along an axial direction thereof. The impeller includes a hub and a plurality of blades extending radially and outwardly from the hub. The hub includes a flat top wall and a cylindrical sidewall extending downwardly from an outer periphery of the top wall. The blades extend radially from the sidewall of the hub. When assembled, the impeller is received in the housing with the top wall of the hub located at the air inlet. When the cooling fan operates, the top wall prevents air from flowing into an area just under the top wall, so that the area just under the top wall lacks airflow and forms as an airflow dead area to cause heat to accumulate there. Thus, the efficiency of the cooling fan is affected accordingly.
Therefore, a heat dissipation device having an improved cooling fan is desired to overcome the above describe shortcomings.
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 heat dissipation device. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
The cooling fan 20 includes a hollow, cylindrical fan housing 22 and an impeller 24 received in the fan housing 22. An air inlet 17 is defined at a top side of the fan housing 22. An air outlet 18 opposite to the air inlet 17 is defined at a bottom side of the fan housing 22. A supporting base 21 is formed on a central portion of the fan housing 22 at the air inlet 17 for mounting the impeller 24 thereon. When the cooling fan 20 and the heat sink 10 are assembled, the air outlet 18 faces the heat sink 10 with the impeller 24 invertedly mounted between the air outlet 18 and the air inlet 17 of the fan housing 22. The air outlet 18 is located between the heat sink 10 and the air inlet 17. In other words, the air outlet 18 is located nearer to the heat sink 10 in comparison to the air inlet 17.
Referring to
Each auxiliary blade 26 extends upwardly and perpendicularly from the top surface of the top wall 232 and radially and curvedly from a center of the top wall 232 towards the outer periphery of the top wall 232. Each auxiliary blade 26 includes an inner first end 260 connected to the center of the top wall 232 and an outer second end 261 extending to the outer periphery of the top wall 232. The second ends 261 of the auxiliary blades 26 are evenly arranged along a circumferential direction of the top wall 232, while the first ends 260 of the auxiliary blades 26 are converged at the center of the top wall 232. Each auxiliary blade 26 has a constant height from the first end 260 to the second end 261. Each auxiliary blade 26 has an upper edge 262 on a top side thereof that is away from the top surface of the top wall 232. The upper edges 262 of the auxiliary blades 26 are coplanar.
During operation, the substrate 12 of the heat sink 100 absorbs heat from the electronic component and transfers it to the evaporator section of the heat pipe 16, and then to the condenser section of the heat pipe 16. The condenser section of the heat pipe 16 transfers the heat to the fins 14 which dissipate the heat to a space between each two neighboring fins 14 such that the air in the space is heated. The impeller 24 of the cooling fan 20 rotates and the main blades 25 drive outside cool air into an area between the housing 22 and the sidewall 234 of the hub 23 via the air inlet 17, and then the cool air is blown downwardly towards the fins 14 via the air outlet 18 to take the heated air in the space between the fins 14 away from the heat sink 10. At the same time, the auxiliary blades 26 on the top wall 232 of the hub 23 rotate with the impeller 24 to agitate the air just under the top wall 232 of the hub 23, wherein the air is guided from the center of the top wall 232 to the outer periphery of the top wall 232 by the auxiliary blades 26, and then the air is blown towards the fins 14 by the main blades 25. Thus, the airflow dead area existed originally under the hub 23 is eliminated in the present embodiment due to the presence of the auxiliary blades 26 on the top wall 232 of the hub 23.
Referring to
Referring to
It is to be understood, however, that even though numerous characteristics and advantages of the disclosure have been set forth in the foregoing description, together with details of the structure and function of the embodiments, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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200810304470.1 | Sep 2008 | CN | national |