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Two-layer modeling of thermally induced Bénard convection in thin liquid films: Volume of fluid approach vs thin-film model

机译:薄液体膜中热诱导的Bénard对流的两层建模:流体方法的体积与薄膜模型

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This study focuses on a detailed analysis of thermally induced Bénard convection, thermocapillary instability, and interfacial deformation of a nanofilm. The dynamics, instability, and morphological evolution of a thin liquid film investigated using a volume of fluid (VOF) numerical scheme that incorporates the Marangoni stress to model the gas–liquid interface deformation. The results obtained from VOF are then compared with those of the “thin-film” model in many cases to find an accurate model for predicting the characteristic wavelength for the growth of instabilities. We also present a correlation to predict the relation between the characteristic wavelength found by VOF numerical results and the analytical linear stability analysis predictions. This is followed by examining the protrusion width and the distance between the protrusions on the structures’ final shape and interface evolution time. Finally, linear theoretical relations for the formation of secondary pillars are presented based on the width of protrusions, their separation distance, and the inverse filling ratio. The results show that the number of pillars increases when the width and distance between two protrusions are greater than a critical value.
机译:本研究重点介绍了对纳米丝的热诱导的Bénard对流,热量不稳定和界面变形的详细分析。使用含流体(VOF)数量的流体(VOF)数值方案研究的薄液体膜的动态,不稳定性和形态学演变,该方案包括Marangoni应力来模拟气液界面变形。然后将来自VOF获得的结果与“薄膜”模型中的那些进行比较,以找到准确的模型,用于预测可稳定性增长的特征波长。我们还提出了一种相关性,以预测VOF数值结果和分析线性稳定性分析预测所发现的特征波长之间的关系。然后通过检查结构的最终形状和界面演化时间的突起宽度和突起之间的距离。最后,基于突起,分离距离和逆填充比的宽度来提出用于形成次级柱的线性理论关系。结果表明,当两个突起之间的宽度和距离大于临界值时,柱的数量增加。

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