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Hydrodynamic interactions suppress deformation of suspension drops in Poiseuille flow

机译:流体动力相互作用抑制了泊瓦雪流中悬浮液滴的变形

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Evolution of a suspension drop entrained by Poiseuille flow is studied numerically at a low Reynolds number. A suspension drop is modeled by a cloud of many nontouching particles, initially randomly distributed inside a spherical volume of a viscous fluid which is identical to the host fluid outside the drop. Evolution of particle positions and velocities is evaluated by the accurate multipole method corrected for lubrication, implemented in the HYDROMULTIPOLE numerical code. Deformation of the drop is shown to be smaller for a larger volume fraction. At high concentrations, hydrodynamic interactions between close particles significantly decrease elongation of the suspension drop along the flow in comparison to the corresponding elongation of the pure-fluid drop. Owing to hydrodynamic interactions, the particles inside a dense-suspension drop tend to stay for a long time together in the central part of the drop; later on, small clusters occasionally separate out from the drop, and are stabilized by quasiperiodic orbits of the constituent nontouching particles. Both effects significantly reduce the drop spreading along the flow. At large volume fractions, suspension drops destabilize by fragmentation, and at low volume fractions, by dispersing into single particles.
机译:在较低的雷诺数下,数值研究了由Poiseuille流动夹带的悬浮液滴的演变。悬浮液滴是由许多非接触粒子组成的云建模的,这些微粒最初随机分布在与液滴外部的主体流体相同的粘性流体的球形体积内。通过在HYDROMULTIPOLE数值代码中实施的经过精确校正的多极润滑方法,可以评估颗粒位置和速度的变化。对于较大的体积分数,液滴的变形显示较小。在高浓度下,与相应的纯流体滴的伸长率相比,紧密颗粒之间的流体动力相互作用显着降低了悬浮液沿流的伸长率。由于流体动力学的相互作用,致密悬浮液滴内部的颗粒往往会在液滴的中央部分停留很长时间。后来,小团簇偶尔从液滴中分离出来,并由组成的非接触粒子的准周期轨道稳定。两种效果均显着降低了液滴沿流动方向的扩散。在大体积分数下,悬浮液液滴会因破碎而不稳定,而在低体积分数下,则分散成单个颗粒。

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