Activity-controlled clogging and unclogging of microchannels

L. Caprini, F. Cecconi, C. Maggi, U. Marconi
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引用次数: 5

Abstract

We propose a mechanism to control the formation of stable obstructions in two-dimensional micro-channels of variable sections taking advantage of the peculiar clustering property of active systems. Under the activation of the self-propulsion by external stimuli, the system behaves as a switch according to the following principle: by turning-on the self-propulsion the particles become active and even at very low densities stick to the walls and form growing layers eventually blocking the channel bottleneck, while the obstruction dissolves when the self-propulsion is turned off. We construct the phase diagram distinguishing clogged and open states in terms of density and bottleneck width. The study of the average clogging time, as a function of density and bottleneck width, reveals the marked efficiency of the active clogging that swiftly responds to the self-propulsion turning on. The resulting picture shows a profound difference with respect to the clogging obtained through the slow diffusive dynamics of attractive passive Brownian disks. This numerical work suggests a novel method to use particles with externally tunable self-propulsion to create or destroy plugs in micro-channels.
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活动控制的微通道堵塞和疏通
我们提出了一种利用主动系统特有的聚类特性来控制变截面二维微通道中稳定障碍物形成的机制。在外部刺激激活自推进的情况下,系统的行为就像一个开关,其原理如下:通过开启自推进,粒子变得活跃,即使在非常低的密度下也会粘在壁上并形成生长层,最终堵塞通道瓶颈,而当自推进关闭时,障碍物就会溶解。我们根据密度和瓶颈宽度构造了区分阻塞状态和开放状态的相图。研究了平均堵塞时间作为密度和瓶颈宽度的函数,揭示了主动堵塞的显著效率,它能迅速响应自推进装置的开启。所得的图像显示了通过吸引被动布朗盘的缓慢扩散动力学获得的堵塞的深刻差异。这项数值工作提出了一种利用具有外部可调自推进的粒子在微通道中产生或破坏堵塞的新方法。
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