Issue 16, 2019

Flow and clogging of particles in shaking random obstacles

Abstract

Transport of three types of particles (passive particles, active particles, and polar particles) is investigated in a random obstacle array in the presence of a dc drift force. The obstacles are static or synchronously shake along the given direction. When the obstacles are static, the average velocity is a peaked function of the dc drift force (negative differential mobility) for low particle density, while the average velocity monotonically increases with the dc drift force (positive differential mobility) for high particle density. Under the same conditions, passive particles are most likely to pass through the obstacles, while polar particles are easily trapped by the obstacles. The polar alignment can strongly reduce the overall mobility of particles. When the obstacles shake along the given direction, the optimal shaking frequency or amplitude can maximize the average velocity. It is more effective to reduce clogging for the transverse shaking than that for the longitudinal shaking.

Graphical abstract: Flow and clogging of particles in shaking random obstacles

Article information

Article type
Paper
Submitted
21 Jan 2019
Accepted
28 Mar 2019
First published
29 Mar 2019

Soft Matter, 2019,15, 3443-3450

Flow and clogging of particles in shaking random obstacles

B. Ai, F. Meng, Y. He and X. Zhang, Soft Matter, 2019, 15, 3443 DOI: 10.1039/C9SM00144A

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