Multiscale simulations of the mechanical behaviour of an ensiled granular material

S. Masson, J. Martinez
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引用次数: 19

Abstract

Discrete simulations by the distinct element method are performed for modelling an ensiled granular material. Starting from the material microstructure on a microscopic scale, two procedures are considered in order to simulate the mechanical behaviour of the material within a silo on a megascopic scale. On the one hand, a direct discrete simulation from the microscopic scale to the megascopic scale is carried out. On the other hand, a two-step simulation procedure is performed: the determination of the macroscopic behaviour from the microscopic scale, followed by a continuum analysis from the macroscopic scale to the megascopic scale. The macroscopic parameters are derived from discrete simulations of usual rheological tests. An experimental validation of the distinct element method is presented by simulating a biaxial compression test. The macroscopic parameters of the ensiled material are then identified and introduced into a finite element analysis with an elastic–plastic constitutive model using the Mohr–Coulomb criterion. The results of the two above procedures are compared and in this way the relevance of the discrete simulation is demonstrated. Copyright © 2000 John Wiley & Sons, Ltd.

敏化颗粒材料力学行为的多尺度模拟
采用离散单元法对青贮颗粒材料进行离散模拟。从微观尺度上的材料微观结构开始,考虑了两个程序,以便在宏观尺度上模拟筒仓内材料的力学行为。一方面,进行了从微观尺度到宏观尺度的直接离散模拟。另一方面,执行两步模拟程序:从微观尺度确定宏观行为,然后从宏观尺度到宏观尺度进行连续分析。宏观参数来源于通常流变试验的离散模拟。通过模拟双轴压缩试验,对不同单元法进行了实验验证。然后识别感应材料的宏观参数,并将其引入使用莫尔-库仑准则的弹塑性本构模型的有限元分析中。比较了上述两个过程的结果,并通过这种方式证明了离散模拟的相关性。版权所有©2000 John Wiley&;有限公司。
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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