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On the applicability of Drop Profile Analysis Tensiometry at high flow rates using an interface tracking method

机译:使用接口跟踪方法的高流速下液滴分布分析张力测定法的适用性

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In this work studies of growing water droplets in air are presented, with the aim to assess the applicability limit of the Droplet Profile Analysis Tensiometry (PAT). High inflow rates are applied for systems containing surfactants with high adsorption rates. However, under dynamic formation conditions, the measured surface tension values deviate from the theoretical values even for pure systems. Therefore, Computational Fluid Dynamics (CFD) is applied to gain detailed insight into the hydrodynamics of the growing drop. Since the flow is dominated by surface tension forces, an interface tracking approach is applied, which is able to capture the flow in a physically correct way. At high flow rates the inflow jet is not fully dissipated before approaching the free surface. Therefore, the pressure profile inside the drop is not uniform as is required in the derivation of the Gauss Laplace equation. The shape of the drop no longer represents the Gauss Laplace profile corresponding to the theoretical surface tension coefficient. As result we can confirm that the evaluation of surface tension by fitting to the Gauss Laplace Equation is not valid for dynamic droplet formations. Indications for future improvements of the evaluation procedure are provided.
机译:在这项工作中,提出了在空气中生长水滴的研究,目的是评估水滴轮廓分析张力测定法(PAT)的适用范围。高流速适用于含有高吸附率表面活性剂的系统。但是,在动态地层条件下,即使对于纯系统,测得的表面张力值也会偏离理论值。因此,应用计算流体动力学(CFD)可以深入了解不断下降的液滴的流体动力学。由于流量受表面张力的支配,因此应用了界面跟踪方法,该方法能够以物理正确的方式捕获流量。在高流速下,流入的射流在接近自由表面之前没有完全消散。因此,液滴内部的压力分布并不像推导高斯拉普拉斯方程式所要求的那样均匀。液滴的形状不再代表与理论表面张力系数相对应的高斯拉普拉斯轮廓。结果,我们可以确认,通过拟合高斯拉普拉斯方程进行的表面张力评估对于动态液滴形成无效。提供了评估程序未来改进的指示。

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