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首页> 外文期刊>European Journal of Mechanics, B. Fluids >Transport and deposition of weakly inertial particles in closed channel flows at low Reynolds number
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Transport and deposition of weakly inertial particles in closed channel flows at low Reynolds number

机译:在低雷诺数的闭合通道中运输和沉积弱惯性粒子

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An analytical approach is developed to show how particles sparsely distributed in steady and laminar channel flows can be transported for long distances or conversely deposited inside the channel due to the relative importance between the flow-induced drag and gravity forces. More precisely, we establish a rather simple particle trajectory equation which demonstrates that when particles' inertia is negligible, their behavior is characterized by the channel geometry and by a dimensionless number W that relates the ratio of the particles sedimentation terminal velocity to the flow mean velocity. The proposed particle trajectory equation is verified by comparing its predictions to particle tracking numerical simulations taking into account particle inertia and fully resolving equations. The equation is shown to be valid under the conditions that flow inertial effects are limited. Based on this trajectory equation, we build a regime diagram that can predict the behavior of particles entering closed channel flows. This diagram, by relating W to the ratio of the channel mean aperture to its total length, enables to forecast if the particles entering the flow will be either deposited or transported along the channel. The influence of the channel geometry on the particle behavior is then investigated by considering channels with straight and sinusoidal walls. In particular, the effect of the corrugation amplitude, of the asymmetry and of the phase lag between the walls on the extent of the transport and deposition zones is evaluated and verified against numerical experiments. Firstly, it is shown that the regime diagram for straight channels can be used for wavy channels with in-phase walls. Secondly, it is found that increasing the phase lag between the two walls and/or the walls corrugation amplitude leads to an increase of both the transport and sedimentation zones. Finally, it is demonstrated that increasing the lower wall corrugation amplitude relatively to the upper wall corrugation enhances particle transport. (C) 2017 Elsevier Masson SAS. All rights reserved.
机译:开发了一种分析方法,示出了如何在稳定和层状通道流中稀疏地分布的颗粒可以长距离运输,或者由于流动引起的阻力和重力力之间的相对重要性而相反地沉积在通道内。更确切地说,我们建立了一个相当简单的粒子轨迹方程,其表明,当粒子的惯性可以忽略不计时,它们的行为在于沟道几何形状,并且由无量纲数W涉及粒子沉降终端速度与流动平均速度的比率。 。通过将其预测与考虑粒子惯性和完全解析方程的粒子跟踪数值模拟进行比较来验证所提出的粒子轨迹方程。在流动惯性效应有限的条件下,等式被证明是有效的。基于该轨迹方程,我们构建了一个可以预测进入闭合通道流的粒子的行为的方案图。该图,通过将W到沟道平均光圈的比率与其总长度的比率相关联,可以预测进入流动的颗粒沿沟道沉积或运输。然后通过考虑用直线和正弦壁的通道来研究沟道几何形状对粒子行为的影响。特别地,对壁之间的瓦楞幅度和相位滞后的效果进行评估,并验证与数值实验进行验证。首先,示出了直通道的方案可以用于具有相相壁的波浪通道。其次,发现两个壁和/或壁波纹幅度之间的相位滞后导致运输和沉降区域的增加。最后,证明了相对于上壁波振的下壁波振幅度增加,增强了颗粒传输。 (c)2017年Elsevier Masson SAS。版权所有。

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