倾斜异质基底上的凝结动力学

Q1 Chemical Engineering
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引用次数: 0

摘要

本研究介绍了在纯水蒸气环境中,倾斜的化学异质基底上液滴凝结的数值模拟。为了捕捉这一过程的动力学特征,我们采用了一个单侧凝结模型,该模型包含重力和化学异质性的影响,并有一个不相连的压力。我们考虑了表面装饰有方形斑块阵列的情况,这些斑块与表面的其他部分相比亲水性更强,可作为成核、萌发区域,液滴在这些区域上形成和生长,一旦液滴的尺寸变得足够大,就会最终沉降。我们考虑了萌发区的大小和倾角对动力学的影响,发现不同情况下在质量和数量上存在显著差异。对于纯结构基底的情况,可以观察到随着萌发区数量的增加,凝结过程从稳定过渡到不稳定,临界萌发区数量随着倾角的增加而增加。通过分析基底上液相的快照,可以进一步了解液相条纹或薄膜的形成情况,这些条纹或薄膜对基底上的流动动态和总液体体积都有影响。在结构化基底上加入随机杂质会极大地影响冷凝动力学,从而阻碍液膜的形成,导致基底上产生的总液体体积减少。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Condensation dynamics on inclined heterogeneous substrates

This study presents numerical simulations of dropwise condensation on inclined chemically heterogeneous substrates in pure vapor atmosphere. To capture the dynamics of this process, a one-sided condensation model with a disjoining pressure is employed that incorporates the effects of gravity and chemical heterogeneities. We consider surfaces decorated with an array of square patches which are more hydrophilic compared to the rest of the surface, which act as nucleation, inception regions over which droplets form and grow and ultimately depin once their size becomes sufficiently large. The impact of the size and of the inception regions and the angle of inclination on the dynamics is considered, revealing significant qualitative and quantitative differences between the cases. For cases with purely structured substrates, it is observed that, as the number of inception regions increases, the condensation process transitions from steady to unsteady, with the critical number of inception regions increasing with the inclination angle increases. Further insight is provided by analyzing the snapshots of the liquid phase on the substrate, revealing the formation of liquid streaks or films, which influence both the dynamics of the flow and the total liquid volume on the substrate. The inclusion of random impurities on the structured substrate dramatically impacts the condensation dynamics, which is found to hinder the formation of liquid film, leading to a decrease in the total liquid volume generated on the substrate.

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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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