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Numerical Investigation of Droplet Impact on Smooth Surfaces with Different Wettability Characteristics: Implementation of a dynamic contact angle treatment in OpenFOAM

机译:液滴对具有不同润湿性特征的光滑表面影响的数值研究:OpenFOAM中动态接触角处理的实现

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摘要

The “Direct Numerical Simulations” (DNS) of droplet impact processes is of great interest and importance for a variety of industrial applications, where laboratory experiments might be difficult, costly and time-consuming. Furthermore, in most cases after validated against experimental data, they can be utilised to further explain the experimental measurements or to extend the experimental runs by performing “virtual” numerical experiments. In such “DNS” calculations of the dynamic topology of the interface between the liquid and gas phase, the selected dynamic contact angle treatment is a key parameter for the accurate prediction of the droplet dynamics. In the present paper, droplet impact phenomena on smooth, dry surfaces are simulated using three different contact angle treatments. For this purpose, an enhanced VOF-based model, that accounts for spurious currents reduction, which has been previously implemented in OpenFOAM CFD Toolbox, is utilised and further enhanced. Apart from the already implemented constant and dynamic contact angle treatments in OpenFOAM, the dynamic contact angle model of Kistler, that considers the maximum advancing and minimum receding contact angles, is implemented in the code. The enhanced VOF model predictions are initially compared with literature available experimental data of droplets impacting on smooth surfaces with various wettability characteristics. The constant contact angle treatment of OpenFOAM as well as the Kistler’s implementation show good qualitative and quantitative agreement with experimental results up to the point of maximum spreading, when the spreading is inertia dominated. However, only Kistler’s model succeeds to accurately predict both the advancing and the recoiling phase of the droplet impact, for a variety of surface wettability characteristics. The dynamic contact angle treatment fails to predict almost all stages of the droplet impact. The optimum version of the model is then applied for 2 additional series of parametric numerical simulations that identify and quantify the effects of surface tension and viscosity, in the droplet impact dynamics.
机译:液滴冲击过程的“直接数值模拟”(DNS)对于各种工业应用具有极大的兴趣和重要性,在这些工业应用中,实验室实验可能是困难,昂贵且费时的。此外,在大多数情况下,在根据实验数据进行验证之后,可以通过执行“虚拟”数值实验将其用于进一步解释实验测量结果或扩展实验过程。在液相和气相之间的界面的动态拓扑的这种“ DNS”计算中,选择的动态接触角处理是精确预测液滴动力学的关键参数。在本文中,使用三种不同的接触角处理来模拟在光滑干燥表面上的液滴撞击现象。为此,利用并进一步增强了一种增强的基于VOF的模型,该模型考虑了杂散电流的减少,该模型先前已在OpenFOAM CFD Toolbox中实现。除了在OpenFOAM中已经实现的恒定接触角和动态接触角处理之外,在代码中还实现了Kistler的动态接触角模型,该模型考虑了最大前进和最小后退接触角。最初,将增强的VOF模型预测与液滴撞击具有各种润湿性特征的光滑表面的文献可获得的实验数据进行比较。 OpenFOAM的恒定接触角处理以及Kistler的实现在定性为主要扩展的情况下,直到最大扩展点为止,都具有与实验结果良好的定性和定量一致性。但是,对于各种表面润湿性特征,只有奇石乐的模型能够成功地准确预测液滴撞击的推进阶段和反冲阶段。动态接触角处理无法预测液滴撞击的几乎所有阶段。然后,将模型的最佳版本应用于2个附加系列的参数数值模拟,以识别和量化液滴冲击动力学中表面张力和粘度的影响。

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