Effect of meniscus curvature on phase-change performance during capillary-enhanced filmwise condensation in porous media

Ruisong Wang, D. Antao
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Abstract

Sustainably enhancing condensation heat transfer performance is a major challenge in thermal management and energy systems, since typical condensation enhancement methods (i.e., dropwise condensation with low surface energy coatings) have limited lifetime/durability, restricted compatibility with working fluids, and sustainability concerns due to the coating composition (e.g., fluorinated compounds). The robust and scalable capillary-enhanced filmwise condensation mode presented in this work demonstrates high heat transfer coefficients for water and low surface tension liquids condensing in a porous wick. Thin porous wicks offer the highest enhancements in heat transfer, however such thin porous wicks have thickness-dependent permeability, and the effective liquid thickness of the wick depends on the shape of the liquid-vapor interface. In this study, we leverage a spatially-discretized porous media model to characterize the effect of the wick thickness on condensation heat transfer performance. The model uses a spatially-varying permeability that depends on the local liquid-vapor interface shape/curvature and the resulting effective wick thickness. We apply this model to investigate the correlation between the heat transfer enhancement and various geometric factors, which enables the design of optimal porous structures for relevant phase-change application. We also predict favorable enhancement in condensation performance with a few common hydrocarbon and fluorocarbon fluid refrigerants. This study provides fundamental insight into the effects of the shape of the liquid-vapor interface on the phase-change performance in the capillary-enhanced filmwise condensation mode.
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多孔介质中半月板曲率对毛细管增强膜状冷凝相变性能的影响
持续增强冷凝传热性能是热管理和能源系统中的一个主要挑战,因为典型的冷凝增强方法(即低表面能涂层的逐滴冷凝)的寿命/耐用性有限,与工作流体的兼容性有限,以及由于涂料组合物(例如氟化化合物)引起的可持续性问题。本工作中提出的稳健且可扩展的毛细管增强膜状冷凝模式证明了水和低表面张力液体在多孔芯中冷凝的高传热系数。薄多孔芯在热传递方面提供了最高的增强,然而,这种薄多孔芯具有依赖于厚度的渗透性,并且芯的有效液体厚度取决于液体-蒸汽界面的形状。在本研究中,我们利用空间离散多孔介质模型来表征芯厚度对冷凝传热性能的影响。该模型使用了空间变化的渗透率,该渗透率取决于局部液体-蒸汽界面形状/曲率和由此产生的有效芯厚度。我们应用该模型来研究传热增强与各种几何因素之间的相关性,这使得能够为相关的相变应用设计最佳的多孔结构。我们还预测,使用几种常见的碳氢化合物和氟碳化合物流体制冷剂,冷凝性能会得到有利的提高。这项研究为毛细管增强膜状冷凝模式下液-汽界面形状对相变性能的影响提供了基本的见解。
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