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A novel three-dimensional contact model for granulates incorporating rolling and twisting resistances

机译:具有滚动阻力和扭曲阻力的新型颗粒三维接触模型

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This paper presents a new three-dimensional (3D) contact model incorporating rolling and twisting resistances at inter-particle contact, which can be introduced into the discrete element method (DEM) to simulate the mechanical behavior of particulates. In this model, two spheres were assumed to physically interact over a circular contact area, where an infinite number of normal spring-dashpot-divider elements and tangential spring-dashpot-slider elements were continuously distributed. The model consists of four interactions, in normal/tangential/rolling/twisting direction, with physically-based stiffness, peak resistance and damping coefficient in each direction. The two main features of the model are that (1) the contact behavior was physically derived and (2) only two additional parameters, shape parameter beta (linking the contact area radius and particle size) and local crushing parameter zeta(c) (describing local contact crushing resistance) were introduced when compared with the standard 3D DEM. The new model was implemented into the 3D DEM code and used to simulate conventional triaxial and plane-strain compression (CTC and PSC) tests to examine its ability to capture the quasi-static behavior of sands. The numerical results show that the strength of the DEM material obtained in CTC tests increases with the parameter beta and is within the experimentally observed typical strength range of sand (30-40 degrees). Rolling and twisting resistances can lead to increased dilation in volume. Consistent with previous studies, the high level of out-of-plane confinement observed in the PSC tests can greatly increase the strength and produce a strain-softening response. A unique critical state line (CSL) was identified in the CTC tests, where the intercept and slope on the e-lgp plane increased with beta. Comparison with previous experimental data confirms that the shape parameter beta can be well correlated to a statistical measure of real particle shape. The new model is also compared with previous DEM models. (C) 2014 Elsevier Ltd. All rights reserved.
机译:本文提出了一种新的三维(3D)接触模型,该模型在颗粒间接触中包含了滚动阻力和扭曲阻力,可以将其引入离散元素方法(DEM)中以模拟颗粒的机械行为。在此模型中,假定两个球体在圆形接触区域上进行物理交互,其中无限数量的法向弹簧-阻尼器-分隔器元素和切向弹簧-阻尼器-滑动器元素连续分布。该模型由法向/切向/滚动/扭曲方向上的四个相互作用组成,每个方向上都具有基于物理的刚度,峰值阻力和阻尼系数。该模型的两个主要特征是:(1)接触行为是物理推导的;(2)仅两个附加参数:形状参数beta(链接接触面积半径和粒径)和局部压碎参数zeta(c)(描述与标准3D DEM相比,引入了局部接触抗压强度)。新模型已实现到3D DEM代码中,并用于模拟常规三轴和平面应变压缩(CTC和PSC)测试,以检验其捕获沙子准静态行为的能力。数值结果表明,在CTC测试中获得的DEM材料的强度随参数β的增加而增加,并且在实验观察到的典型强度范围内(30-40度)。滚动阻力和扭转阻力会导致体积增大。与以前的研究一致,在PSC测试中观察到的高水平平面外约束可以大大提高强度并产生应变软化响应。在CTC测试中确定了唯一的临界状态线(CSL),其中e-lgp平面上的截距和斜率随beta增大。与先前实验数据的比较证实,形状参数β可以很好地与真实粒子形状的统计度量相关。还将新模型与以前的DEM模型进行了比较。 (C)2014 Elsevier Ltd.保留所有权利。

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