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Viscosity Effect on regular bubble entrapment during drop impact into a deep pool

机译:液滴撞击深池期间粘度对规则气泡截留的影响

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Viscosity plays an important role in regular bubble entrapment during drop impact into a deep pool. In this paper, the volume of fluid (VOF) model in conjunction with the continuum surface force (CSF) model is used to investigate the dynamics of regular bubble entrapment in fluids with a range of viscosities (η=0.1-10.0 × 10~(-3) Pa s). Time evolutions of the crater profiles and crater depths in different viscous fluids are compared. Numerical results show that the damping effect of the viscosity on capillary wave propagation leads to an increase in the lower limit of the regular bubble entrapment region, whereas the damping effect on crater cusp reversal dynamics leads to an increase in the upper limit. Based on the timing estimate, a scaling model for the effect of viscosity on the limits of the regular bubble entrapment region is provided. Finally, the distribution of bubble size as a function of the capillary number is investigated.
机译:在跌落到深池中时,粘度在规则的气泡截留中起着重要作用。本文使用流体体积(VOF)模型和连续表面力(CSF)模型来研究粘度范围为(η= 0.1-10.0×10〜( -3)Pa s)。比较了不同粘性流体中的弹坑轮廓和弹坑深度的时间演化。数值结果表明,黏度对毛细管波传播的阻尼作用导致规则气泡截留区域的下限增大,而对弹坑尖端逆向动力学的阻尼作用导致上限增大。基于该时间估计,提供了粘度对规则气泡截留区域的极限的影响的缩放模型。最后,研究了气泡尺寸随毛细管数的变化。

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