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油水界面处颗粒的流体动力学

Hydrodynamics of Particles at an Oil-Water Interface.

作者信息

Dani Archit, Keiser Geoff, Yeganeh Mohsen, Maldarelli Charles

机构信息

The Benjamin Levich Institute for PhysicoChemical Hydrodynamics and Department of Chemical Engineering, The City College of New York , 140 Convent Avenue, New York, NY 10031, United States.

ExxonMobil Research and Engineering Company , Annandale, NJ 08801, United States.

出版信息

Langmuir. 2015 Dec 15;31(49):13290-302. doi: 10.1021/acs.langmuir.5b02146. Epub 2015 Nov 30.

Abstract

This study is a theoretical and experimental investigation of the hydrodynamics of the mutual approach of two floating spherical particles moving along an oil-water interface. An analytical expression is obtained for the (inertialess) Stokes drag for an isolated particle translating on a flat interface as a function of the immersion depth into the water phase for the case in which the viscosity of the oil is much larger than that of the water. An approximation for the viscous drag due to the mutual approach of identical spheres is formulated as the product of the isolated drag multiplied by the resistance of approaching spheres in an infinite medium. Experiments are undertaken on the capillary attraction of large, millimeter-sized Teflon spheres floating at the interface between a very viscous oil and water. With the use of image visualization and particle tracking, the separation distance as a function of time [Formula: see text] is measured along with the immersion depth and predicted by setting the capillary attraction force equal to the viscous drag resistance. The excellent agreement validates the approximating formula.

摘要

本研究是对沿油水界面移动的两个漂浮球形颗粒相互靠近的流体动力学进行的理论和实验研究。对于油的粘度远大于水的粘度的情况,得到了一个孤立颗粒在平坦界面上平移时(无惯性)斯托克斯阻力的解析表达式,该表达式是颗粒浸入水相深度的函数。将相同球体相互靠近时的粘性阻力近似表示为孤立阻力与无限介质中接近球体阻力的乘积。对毫米级的大型聚四氟乙烯球体在高粘性油和水的界面处漂浮时的毛细吸引力进行了实验。通过图像可视化和粒子跟踪,测量了分离距离随时间[公式:见文本]的变化以及浸入深度,并通过将毛细吸引力设定为粘性阻力来进行预测。良好的一致性验证了近似公式。

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