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层流、湍流和惯性剪切增稠区在中性浮力颗粒悬浮液的通道流中。

Laminar, turbulent, and inertial shear-thickening regimes in channel flow of neutrally buoyant particle suspensions.

机构信息

Linné FLOW Centre and SeRC, KTH Mechanics, Stockholm, Sweden.

Linné FLOW Centre and SeRC, KTH Mechanics, Stockholm, Sweden and Department of Physics, Sapienza University of Rome, Rome, Italy.

出版信息

Phys Rev Lett. 2014 Dec 19;113(25):254502. doi: 10.1103/PhysRevLett.113.254502. Epub 2014 Dec 17.

Abstract

The aim of this Letter is to characterize the flow regimes of suspensions of finite-size rigid particles in a viscous fluid at finite inertia. We explore the system behavior as a function of the particle volume fraction and the Reynolds number (the ratio of flow and particle inertia to viscous forces). Unlike single-phase flows, where a clear distinction exists between the laminar and the turbulent states, three different regimes can be identified in the presence of a particulate phase, with smooth transitions between them. At low volume fractions, the flow becomes turbulent when increasing the Reynolds number, transitioning from the laminar regime dominated by viscous forces to the turbulent regime characterized by enhanced momentum transport by turbulent eddies. At larger volume fractions, we identify a new regime characterized by an even larger increase of the wall friction. The wall friction increases with the Reynolds number (inertial effects) while the turbulent transport is weakly affected, as in a state of intense inertial shear thickening. This state may prevent the transition to a fully turbulent regime at arbitrary high speed of the flow.

摘要

这封信的目的是描述在有限惯性下粘性流体中有限尺寸刚性颗粒悬浮液的流动状态。我们研究了系统行为作为颗粒体积分数和雷诺数(流动和颗粒惯性与粘性力的比)的函数。与单相流不同,单相流中存在明显的层流和湍流状态之间的区别,在存在颗粒相的情况下,可以识别出三个不同的状态,它们之间有平滑的过渡。在低体积分数下,当雷诺数增加时,流动变得湍流,从主要由粘性力控制的层流状态过渡到由湍流涡传递增强动量的湍流状态。在较大的体积分数下,我们确定了一个新的状态,其壁面摩擦甚至更大。壁面摩擦随雷诺数(惯性效应)增加而增加,而湍流输运受影响较小,处于强烈惯性剪切增稠状态。这种状态可能会阻止在任意高速流动下过渡到完全湍流状态。

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