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Influence of surface topography in the boiling mechanisms

机译:表面形貌对沸腾机理的影响

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The present paper addresses the qualitative and quantitative analysis of the pool boiling heat transfer over micro-structured surfaces. The surfaces are made from silicon chips, in the context of pool boiling heat transfer enhancement of immersion liquid cooling schemes for electronic components. The first part of the analysis deals with the effect of the liquid properties. Then the effect of surface micro-structuring is discussed, covering different configurations, from cavities to pillars being the latter used to infer on the potential profit of a fin-like configuration. The use of rough surfaces to enhance pool boiling mainly stands on the arguments that the surface roughness will increase the liquid-solid contact area, thus enhancing the convection heat transfer coefficient and will promote the generation of nucleation sites. However, one should not disregard bubble dynamics. Indeed, the results show a strong effect of bubble dynamics and particularly of the interaction mechanisms in the overall cooling performance of the pair liquid-surface. The inaccurate control of these mechanisms leads to the formation of large bubbles and strong vertical and horizontal coalescence effects promote the very fast formation of a vapor blanket, which causes a steep decrease of the heat transfer coefficient. This effect can be strong enough to prevail over the benefit of increasing the contact area by roughening the surface. For the micro-patterns used in the present work, the results evidence that one can reasonably determine guiding pattern characteristics to evaluate the intensity of the interaction mechanisms and take out the most of the patterning to enhance pool boiling heat transfer, when using micro-cavities. Instead, it is far more difficult to control the appearance of active nucleation sites and the optimization of the patterns allowing a reasonable control of the interaction mechanisms and in particular of horizontal coalescence, when dealing with the patterns based on micro-pillars. Hence, providing an increase of the liquid contact area by an effective increase of the roughness ratio is not enough to assure a good performance of the micro-structured surface. Despite it was not possible to clearly evidence a pin-fin effect or of an additional cooling effect due to liquid circulation between the pillars, the results show a significant increase of the heat transfer coefficient of about 10 times for water and 8 times for the dielectric fluid, in comparison to the smooth surface, when the micro-patterning based on pillars is used. (C) 2014 Elsevier Inc. All rights reserved.
机译:本文研究了微结构表面上池沸腾传热的定性和定量分析。在增强电子元件浸没液体冷却方案的池沸腾传热的背景下,这些表面由硅芯片制成。分析的第一部分处理液体性质的影响。然后讨论了表面微观结构的影响,涵盖了不同的构造,从空腔到柱子,后者被用来推断鳍状结构的潜在收益。使用粗糙表面来增加池沸腾的主要理由是表面粗糙度会增加液固接触面积,从而提高对流传热系数并促进成核位点的产生。但是,不应忽视泡沫动力学。实际上,结果显示了气泡动力学,特别是相互作用机理对液体表面整体冷却性能的强烈影响。对这些机制的不正确控制会导致形成大气泡,并且强烈的垂直和水平聚结效应会促进蒸汽覆盖层的快速形成,从而导致传热系数急剧下降。这种效果可能足够强大,足以胜过通过使表面变粗糙来增加接触面积的好处。对于当前工作中使用的微模式,结果证明,使用微腔时,可以合理地确定引导模式特征,以评估相互作用机制的强度,并去除大部分模式以增强池沸腾热传递。 。相反,在处理基于微柱的图案时,要控制主动形核位点的外观和图案的优化以合理控制相互作用机理,尤其是水平合并,要困难得多。因此,通过有效地增加粗糙度比来提供液体接触面积的增加不足以确保微结构化表面的良好性能。尽管由于柱之间的液体循环而无法清楚地证明针翅效应或附加的冷却效应,但结果表明,水的传热系数显着提高了约10倍,电介质的传热系数显着提高了8倍与光滑表面相比,当使用基于支柱的微图案时,流体更光滑。 (C)2014 Elsevier Inc.保留所有权利。

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