Heat transfer enhancement in micro-scale air flows

M. Rosenfeld
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Abstract

The aim of the present study is to extend air-cooling capabilities. A method of generating an unsteady vortical flow within small annular channels is introduced and studied numerically. The addition of an orifice at the entrance to the channel generates a propagating train of vortex rings that induces the continuous eruption of hot air from the wall region into the core flow. The overall effect is significant transverse convection even in laminar flows and enhancement of heat transfer. The effect of the orifice diameter is studied in detail. The method is very appealing for extending cooling capabilities of heat-sinks based on air, but it works similarly well for single phase flow of liquid. An increase of almost two-fold in the heat dissipation relative to a standard microchannel can be obtained. Heat dissipation of 8watt/cm2 per contact area can be anticipated using a single layer of the proposed air-based orificed-microchannel.
微尺度气流中的传热增强
本研究的目的是扩展空气冷却能力。介绍了一种在小环形通道内产生非定常流动的方法,并对其进行了数值研究。在通道入口处增加一个孔口,产生一串涡环,诱导热空气从壁面区域持续喷发到核心流中。整体效果是显著的横向对流,即使在层流和强化传热。详细研究了节流孔直径的影响。这种方法对扩展空气热沉的冷却能力非常有吸引力,但它对单相液体流的效果也很好。相对于标准微通道,可以获得几乎两倍的散热增加。使用所提出的基于空气的孔状微通道的单层,可以预计每个接触面积的散热为8w /cm2。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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