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Ultrahigh Flux Thin Film Boiling Heat Transfer Through Nanoporous Membranes

机译:超高通量薄膜沸腾热传递通过纳米多孔膜

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Phase change heat transfer is fundamentally important for thermal energy conversion and management, such as in electronics with power density over 1 kW/cm(2). The critical heat flux (CHF) of phase change heat transfer, either evaporation or boiling, is limited by vapor flux from the liquid-vapor interface, known as the upper limit of heat flux. This limit could in theory be greater than 1 kW/cm(2) on a planar surface, but its experimental realization has remained elusive. Here, we utilized nanoporous membranes to realize a new "thin film boiling" regime that resulted in an unprecedentedly high CHF of over 1.2 kW/cm(2) on a planar surface, which is within a factor of 4 of the theoretical limit, and can be increased to a higher value if mechanical strength of the membranes can be improved (demonstrated with 1.85 kW/cm(2) CHF in this work). The liquid supply is achieved through a simple nanoporous membrane that supports the liquid film where its thickness automatically decreases as heat flux increases. The thin film configuration reduces the conductive thermal resistance, leads to high frequency bubble departure, and provides separate liquid-vapor pathways, therefore significantly enhances the heat transfer. Our work provides a new nanostructuring approach to achieve ultrahigh heat flux in phase change heat transfer and will benefit both theoretical understanding and application in thermal management of high power devices of boiling heat transfer.
机译:相变热传递对热能转换和管理具有根本重要的是重要的,例如在功率密度超过1kW / cm(2)的电子器件中。相变传热,蒸发或沸腾的临界热通量(CHF)受液体 - 蒸汽界面的蒸气通量的限制,称为热通量的上限。在平面表面上理论上可以大于1千瓦/厘米(2),但其实验实现仍然难以捉摸。在这里,我们利用纳米多孔膜来实现新的“薄膜沸腾”的方案,其在平面表面上是前所未有的高CHF,其在理论极限的4个因素范围内,并且如果可以改善膜的机械强度(在这项工作中用1.85kW / cm(2)CHF,则可以增加到较高的值。液体供应通过简单的纳米多孔膜实现,该膜支撑其厚度随着热通量增加而自动降低的液体膜。薄膜配置降低了导电热阻,导致高频气泡脱落,并提供单独的液态蒸气途径,因此显着增强了传热。我们的作品提供了一种新的纳米结构方法来实现相变热传热中的超高热通量,并将有利于沸腾热传递高功率器件热管理的理论认识和应用。

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