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Sedimentation of a sphere in a viscoelastic fluid: A multiscale simulation approach

机译:球在粘弹性流体中的沉积:一种多尺度模拟方法

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摘要

A long-standing problem in non-Newtonian fluid mechanics, namely the relationship between drag experienced by a sphere settling in a tube filled with a dilute polymeric solution and the sphere sedimentation velocity, is investigated via self-consistent multiscale flow simulations. Comparison with experimental measurements by Arigo et al. (J. Non-Newtonian Fluid Mech., vol. 60, 1995, pp. 225-257) have revealed that the evolution of the drag coefficient as a function of fluid elasticity can be accurately predicted when the macromolecular dynamics is described by realistic micromechanical models that closely capture the transient extensional viscosity of the experimental fluid at high extension rates. Specifically, for the first time we have computed the drag coefficient on the sphere at high Weissenberg number Wi utilizing multi-segment bead-spring chain models with appropriate molecular parameters and have demonstrated that a hi-fidelity multiscale simulation is not only capable of accurately describing the drag on the sphere as a function of Wi at various sphere-to-tube diameter ratios but also it can closely reproduce the experimentally observed velocity and stresses in the wake of the sphere.
机译:通过自洽的多尺度流模拟研究了非牛顿流体力学中的一个长期存在的问题,即球体在填充有稀聚合物溶液的管中的沉降阻力与球体沉降速度之间的关系。与Arigo等人的实验测量结果进行比较。 (J.Non-Newtonian Fluid Mech。,vol.60,1995,pp.225-257)已经揭示,当用现实的微力学描述大分子动力学时,可以精确地预测阻力系数随流体弹性的变化。可以在高扩展速率下紧密捕获实验流体的瞬态扩展粘度的模型。具体而言,我们首次使用具有适当分子参数的多段珠弹簧链模型,在高魏森伯格数Wi下计算了球的阻力系数,并证明了高保真多尺度模拟不仅能够准确地描述在不同的球管直径比下,球在Wi上的阻力是Wi的函数,但它也可以紧密地再现实验观察到的速度和在球尾随应力的变化。

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