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具有可调吸引力的软堵塞材料中的非均匀剪切流。

Inhomogeneous shear flows in soft jammed materials with tunable attractive forces.

作者信息

Chaudhuri Pinaki, Berthier Ludovic, Bocquet Lydéric

机构信息

Laboratoire PMCN, Université Claude Bernard Lyon 1, Villeurbanne, France.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2012 Feb;85(2 Pt 1):021503. doi: 10.1103/PhysRevE.85.021503. Epub 2012 Feb 21.

Abstract

We perform molecular dynamics simulations to characterize the occurrence of inhomogeneous shear flows in soft jammed materials. We use rough walls to impose a simple shear flow and study the athermal motion of jammed assemblies of soft particles in two spatial dimensions, both for purely repulsive interactions and in the presence of an additional short-range attraction of varying strength. In steady state, pronounced flow inhomogeneities emerge for all systems when the shear rate becomes small. Deviations from linear flow are stronger in magnitude and become very long lived when the strength of the attraction increases, but differ from permanent shear bands. Flow inhomogeneities occur in a stress window bounded by the dynamic and static yield stress values. Attractive forces enhance the flow heterogeneities because they accelerate stress relaxation, thus effectively moving the system closer to the yield stress regime where inhomogeneities are most pronounced. The present scenario for understanding the effect of particle adhesion on shear localization, which is based on detailed molecular dynamics simulations with realistic particle interactions, differs qualitatively from previous qualitative explanations and ad hoc theoretical modeling.

摘要

我们进行分子动力学模拟,以表征软堵塞材料中不均匀剪切流的出现情况。我们使用粗糙壁面来施加简单剪切流,并研究二维空间中软颗粒堵塞组件的无热运动,包括纯粹的排斥相互作用以及存在不同强度的额外短程吸引力的情况。在稳态下,当剪切速率变小时,所有系统都会出现明显的流动不均匀性。当吸引力强度增加时,与线性流动的偏差在幅度上更强且持续时间很长,但与永久剪切带不同。流动不均匀性出现在由动态和静态屈服应力值界定的应力窗口内。吸引力增强了流动不均匀性,因为它们加速了应力松弛,从而有效地使系统更接近不均匀性最明显的屈服应力状态。基于具有实际颗粒相互作用的详细分子动力学模拟来理解颗粒粘附对剪切局部化影响的当前情景,在性质上与以前的定性解释和特设理论模型不同。

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