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Optimization of short micro pin fins in minichannels

机译:优化微通道中的短微针鳍

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摘要

Finned minichannels are modeled in order to optimize microstructure geometry and maximize heat transfer dissipation through convection from a heated surface. Six pin fin shapes - circle, square, triangle, ellipse, diamond and hexagon - are used in a staggered array and attached to the bottom heated surface of a rectangular minichannel and analyzed. Also, using square pin fins, different channel clearance over fins are investigated to optimize the fin height of the fins with respect to that of the channel. Fin width and spacing are investigated using a ratio of fin width area to the channel width. Fin material is then varied to investigate the heat dissipation effects. Triangular fins with larger fin height, smaller fin width, and spacing double the fin width maximizes the number of fins in each row and yields better performance. Correlations describing the Nusselt number and the Darcy friction factor are obtained and compared to previous ones from recent studies. These correlations only apply to short fins in the laminar regime. Completely understanding the effects of micro pin fins in a minichannel is essential to maximizing the performance in small scale cooling apparatuses to keep up with future electronic advancements.
机译:对翅片式微通道进行建模,以优化微结构的几何形状,并通过与受热表面的对流来最大化传热。六种针状翅片形状-圆形,正方形,三角形,椭圆形,菱形和六边形-以交错阵列的形式使用,并附接到矩形微型通道的底部加热表面并进行分析。另外,使用方形销状鳍片,研究了鳍片上不同的通道间隙,以相对于通道的高度优化鳍片的鳍片高度。鳍片宽度和间距是通过鳍片宽度面积与通道宽度之比来研究的。然后改变散热片材料以研究散热效果。三角形鳍片具有较大的鳍片高度,较小的鳍片宽度以及间距为鳍片宽度的两倍,从而使每排鳍片的数量最大化,并产生更好的性能。获得了描述Nusselt数和Darcy摩擦因数的相关性,并将其与最近研究中的先前相关性进行了比较。这些相关仅适用于层流状态中的短鳍。完全了解微型通道中的微型针状鳍片的影响对于最大化小型冷却设备的性能以跟上未来的电子发展至关重要。

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