Behavior of Sheared Granular Materials at Micro-Scale during the Cyclic Loading

M. Sazzad
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Abstract

The aim of this paper is to explore the evolution of different micro-scale quantities during the cyclic loading using the discrete element method (DEM) for a granulate system such as sand. The numerical samples comprising of 9826 spheres were generated and consolidated isotropically using the periodic boundaries. These numerical samples were subjected to the cyclic loading for different maximum applied strains. The simulated stress-strain behavior was validated with the experiment and found an excellent agreement between them during loading and unloading. The evolutions of different micro-scale quantities were investigated in detail considering the variation of the maximum applied strain and the density of sample. It is noted that the evolution of the coordination number and the slip coordination number is a function of the maximum applied strain and the density of sample during the cyclic loading. The change of the slip coordination number is larger at the end of unloading than that at end of loading during the cyclic loading regardless of the values of the maximum applied strain and the density of sample. The ratio of strong contacts to all the contacts increases abruptly when the load is reversed, which is opposite to what is observed for the coordination number and the slip coordination number. The deviatoric fabric computed by the fabric tensor considering the strong contacts mimics the deviatoric stress irrespective of the values of the maximum applied strain and the density of sample during the cyclic loading. Moreover, a linear correlation between the macro and micro quantities exists regardless of the variation of the maximum applied strains or the variation of the density of the sample during the cyclic loading. The slopes of the lines of these correlations are almost same.This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium provided the original work is properly cited. 
剪切颗粒材料在循环加载过程中的微观行为
本文的目的是利用离散元法(DEM)探讨砂等颗粒系统在循环加载过程中不同微尺度量的演变。采用周期边界法生成了由9826个球组成的数值样品,并进行了各向同性固结。这些数值试样经受了不同最大外加应变的循环加载。模拟的应力-应变行为与试验结果相吻合,发现两者在加载和卸载过程中具有很好的一致性。考虑最大外加应变和试样密度的变化,详细研究了不同微尺度量的演化规律。注意到在循环加载过程中,配位数和滑移配位数的演变是最大外加应变和试样密度的函数。在循环加载过程中,无论最大外加应变和试样密度如何,卸载结束时滑移配位数的变化都大于加载结束时滑移配位数的变化。当载荷反向时,强触点占所有触点的比例急剧增加,这与配位数和滑移配位数的情况相反。考虑强接触的织物张量计算的偏织物模拟了在循环加载过程中与最大施加应变和试样密度值无关的偏应力。此外,在循环加载过程中,无论最大外加应变的变化还是试样密度的变化,宏观量与微观量之间都存在线性相关。这些相关性曲线的斜率几乎是相同的。这是一篇在知识共享署名许可(http://creativecommons.org/licenses/by/4.0/)条款下发布的开放获取文章,该许可允许在任何媒介上不受限制地使用、分发和复制,只要原始作品被适当引用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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