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首页> 外文期刊>International Journal of Thermal Sciences >Influence of texture shape and arrangement on thermo-hydraulic performance of the textured microchannels
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Influence of texture shape and arrangement on thermo-hydraulic performance of the textured microchannels

机译:纹理形状与布置对纹理微通道热水性能的影响

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Textured superhydmphobic surfaces (TSS) are purported to reduce flow friction in microchannels due to velocity slip at liquid-gas interface. At the same time, the liquid-gas interface inhibits heat transfer in textured microchannels due to the low thermal conductivity of entrapped gas phase. Despite significant understanding on fluid flow and thermal transport on the TSS, the interplay of texture shape and arrangement on thermo-hydraulic performance has not been investigated in detail hitherto. To this end, we have numerically investigated the pressure-driven flow through textured microchannels with an aim to enhance the thermo-hydraulic performance. The effective slip length and temperature jump length were estimated as a function of flow and geometry parameters for three types of micropillar shapes viz., square, triangular and herringbone, decorated in microchannels in regular and staggered manner. Scaling relations for the effective slip length and temperature jump length have been shown to be valid for triangular and herringbone shaped micropillars at different flow and geometry related parameters. Herringbone shaped micropillars exhibit more flow friction and allow a significant heat transfer in microchannels within the parameter range investigated, followed by triangular and square shaped micmpillars. Although the arrangement of textures in microchannels was found to affect the flow friction substantially, its effect on heat transfer was found to be marginal. Subsequently, the overall thermo-hydraulic performance was observed to be superior in regularly arranged herringbone shaped micropillars, at moderate to high constriction ratios (a ratio of texture pitch to half channel height) and high Peclet numbers over the other texture shapes. The results presented in this work would serve as a useful guide to attain maximum thermohydraulic performance in textured microchannels.
机译:由于液体 - 气体界面处的速度滑移,声称纹理的超高步表面(TSS)以减少微通道中的流动摩擦。同时,由于夹带气相的低导热率,液气接口抑制纹理微通道中的热传递。尽管对TSS的流体流动和热传输有重大了解,但迄今为止,尚未详细研究了纹理形状的相互作用和对热水液性能的布置。为此,我们已经通过纹理微通道进行了数值研究了压力驱动的流量,其目的是提高热液压性能。估计有效的滑动长度和温度跳跃长度作为三种类型的微池形状Viz的流量和几何参数的函数。,方形,三角形和人字形,以微通道以规则和交错的方式装饰。已经显示出有效滑动长度和温度跳跃长度的缩放关系对于不同流动和几何形状相关参数的三角形和人字形的微米有效。人字形成型的微米略有流动摩擦,并在研究的参数范围内允许微通道的显着传热,然后是三角形和方形的麦克麻纤维素。尽管发现微通道中纹理的布置基本上影响了流动摩擦,但它发现其对热传递的影响是边缘的。随后,观察到总体热液体性能以定期排列的人形晶体形状微米,在适度至高收缩比(纹理间距与半通道高度的比率)上,以及其他纹理形状上的高分子数。本工作中提出的结果将作为在纹理微通道中获得最大热液态性能的有用指南。

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