1. Technical Field
The present disclosure relates to heat dissipation devices, and particularly to a heat dissipation device incorporating a centrifugal fan.
2. Description of Related Art
Heat dissipation devices are often applied to dissipate heat from heat generating components, such as central procession units (CPUs).
During operation of the heat dissipation device 200, the fin assembly 90 absorbs heat from the heat generating component and dissipates the heat to the ambient environment. The impeller 84 of the blower 80 rotates clockwise and drives air to the fin assembly 90 to evacuate heat from the fin assembly 90. However, as shown in
Thus, it is desired to overcome the described limitations.
The top cover 122 defines an air inlet 121 at a center thereof. The impeller 14 is mounted to the bottom plate 124 and aligned with the air inlet 121 of the top cover 122. The sidewall 126 extends perpendicular to a circumference of the bottom plate 124, and an air outlet 120 is defined between two ends of the sidewall 126. The impeller 14 is spaced from the sidewall 126, with an air channel 13 defined between the sidewall 126 and outermost free ends of the blades 144 of the impeller 14. A width of the air channel 13 gradually increases along a rotation direction of the impeller 14, such that the air channel 13 defines a narrow portion 131 at an upstream end of the air channel 13 and a wide portion 132 at a downstream end of the air channel 13.
The sidewall 126 includes a first plate 127, and a second plate 128 facing and parallel to the first plate 127. The first plate 127 and the second plate 128 are spaced from each other and located at opposite sides of the air outlet 120, with the air outlet 120 defined therebetween. The first plate 127 is located adjacent to the narrow portion 131 of the air channel 13, while the second plate 128 is located adjacent to the wide portion 132 of the air channel 13. The air outlet 120 defines a first area 17 near the second plate 128 of the sidewall 126, and a second area 18 at a central portion of the air outlet 120. The first area 17 is located at a right-hand side of the air outlet 120, and communicates with the wide portion 132 of the air channel 13. The first area 17 is located between the second area 18 and the second plate 128 of the sidewall 126.
The bottom plate 124 of the casing 12 forms a plurality of slim air guide plates 125 at the wide portion 132 of the air channel 13 near the air outlet 120 and at the first area 17 of the air outlet 120. The air guide plates 125 are integrally formed with and extend upwardly from the bottom plate 124. That is, the air guide plates 125 and the bottom plate 124 are portions of a single, one-piece, monolithic body of the one same material. Alternatively, the air guide plates 125 can be fixed on the bottom plate 124 after the bottom plate 124 and the air guide plates 125 have been separately formed.
Each air guide plate 125 is rectangular and includes an inner end and an opposite outer end. The outer end is located closer to the air outlet 120 than the inner end. The outer end is farther from the second plate 128 than the inner end. Thus, the air guide plates 125 are obliquely angled with respect to the second plate 128 of the sidewall 126. An angle with respect to the second plate 128 of the air guide plates 125 nearer the second plate 128 is less than that of the air guide plates 125 distant from the second plate 128.
The air guide plates 125 are arranged in a generally streamlined pattern from the wide portion 132 of the air channel 13 towards the first area 17 of the air outlet 120. The air guide plates 125 are arranged with air passages defined between each two neighboring lines of one or more air guide plates 125. The number of air guide plates 125 increases from the wide portion 132 of the air channel 13 to the air outlet 120, and an area occupied by the air guide plates 125 gradually increases from the wide portion 132 of the air channel 13 to the air outlet 120. Thus a portion of the air guide plates 125 nearest to the second area 18 of the air outlet 120 is those air guide plates 125 in a portion of the first area 17 of the air outlet 120 that is nearest to the second area 18. Put another way, said portion of the air guide plates 125 can be considered to be arranged to generally extend towards the second area 18 of the air outlet 120.
Referring also to
Due to the presence of the air guide plates 125, a portion of the airflow heading to the first area 17 is guided by the air guide plates 125 towards the second area 18, where airflow is increased accordingly. As a result, the heat dissipation efficiency of the fins of the fin assembly 20 located at the second area 18 is improved. In addition, the air guide plates 125 are structured and arranged in a streamlined manner and pattern, which can minimize or avoid airflow resistance through the air guide plates 125.
It is to be understood, however, that even though numerous characteristics and advantages of the exemplary embodiments have been set forth in the foregoing description, together with details of the structures and functions 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 |
---|---|---|---|
201010140938.5 | Apr 2010 | CN | national |