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Twin tubular pinch effect in curving confined flows

机译:双管收缩效应在有限流中的弯曲

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摘要

Colloidal suspensions of buoyancy neutral particles flowing in circular pipes focus into narrow distributions near the wall due to lateral migration effects associated with fluid inertia. In curving flows, these distributions are altered by Dean currents and the interplay between Reynolds and Dean numbers is used to predict equilibrium positions. Here, we propose a new description of inertial lateral migration in curving flows that expands current understanding of both focusing dynamics and equilibrium distributions. We find that at low Reynolds numbers, the ratio δ between lateral inertial migration and Dean forces scales simply with the particle radius, coil curvature and pipe radius as . A critical value δc = 0.148 of this parameter is identified along with two related inertial focusing mechanisms. In the regime below δc, coined subcritical, Dean forces generate permanently circulating, twinned annuli, each with intricate equilibrium particle distributions including eyes and trailing arms. At δ > δc (supercritical regime) inertial lateral migration forces are dominant and particles focus to a single stable equilibrium position.
机译:由于与流体惯性有关的横向迁移效应,在圆形管道中流动的中性浮力颗粒的胶体悬浮液会集中在壁附近的狭窄分布中。在弯曲流中,这些分布会被迪安电流改变,并且雷诺数和迪安数之间的相互作用被用来预测平衡位置。在这里,我们提出了弯曲流中的惯性横向迁移的新描述,该描述扩展了当前对聚焦动力学和平衡分布的理解。我们发现,在低雷诺数下,横向惯性迁移与Dean力之比δ随颗粒半径,线圈曲率和管半径简单地按比例缩放。确定该参数的临界值δc= 0.148以及两个相关的惯性聚焦机构。在低于δc的状态下,精铸亚临界,迪安力产生永久循环的孪生环,每个环都有复杂的平衡粒子分布,包括眼睛和后臂。在δ>δc(超临界状态)下,惯性横向迁移力占主导地位,粒子集中在单个稳定的平衡位置。

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