Singh Aditya Pratap, Angelidakis Vasileios, Pöschel Thorsten, Roy Sudeshna
Institute for Multiscale Simulation, Friedrich-Alexander-Universität Erlangen-Nürnberg, Cauerstrasse 3, 91058 Erlangen, Germany.
School of Natural and Built Environment, Queen's University Belfast, David Keir Building, BT9 5AG Belfast, UK.
Soft Matter. 2024 Apr 3;20(14):3118-3130. doi: 10.1039/d4sm00100a.
Granular materials show inhomogeneous flows characterized by strain localization. When strain is localized in a sheared granular material, rigid regions of a nearly undeformed state are separated by shear bands, where the material yields and flows. The characteristics of the shear bands are determined by the geometry of the system, the micromechanical material properties, and the kinematics at the particle level. For a split-bottom shear cell, recent experimental work has shown that mixtures of hard, frictional and soft, nearly frictionless particles exhibit wider shear zones than samples with only one of the two components. To explain this finding, we investigate the shear zone properties and the stress response of granular mixtures using discrete element simulations. We show that both interparticle friction and elastic modulus determine the shear-band properties and packing density of granular mixtures of various mixing ratios, but their stress response depends strongly on the interparticle friction. Our study provides a fundamental understanding of the micromechanics of shear band formation in granular mixtures.
颗粒材料呈现出以应变局部化为特征的非均匀流动。当应变在剪切颗粒材料中局部化时,处于几乎未变形状态的刚性区域被剪切带分隔开,材料在剪切带处屈服并流动。剪切带的特性由系统的几何形状、微观力学材料特性以及颗粒层面的运动学决定。对于底部开裂的剪切单元,最近的实验工作表明,硬的、有摩擦的颗粒与软的、几乎无摩擦的颗粒的混合物比仅含有这两种组分之一的样品表现出更宽的剪切带。为了解释这一发现,我们使用离散元模拟研究颗粒混合物的剪切带特性和应力响应。我们表明,颗粒间摩擦和弹性模量都决定了不同混合比颗粒混合物的剪切带特性和堆积密度,但其应力响应强烈依赖于颗粒间摩擦。我们的研究为颗粒混合物中剪切带形成的微观力学提供了基本理解。