首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Rheology, force transmission, and shear instabilities in frictional granular media from biaxial numerical tests using the contact dynamics method
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Rheology, force transmission, and shear instabilities in frictional granular media from biaxial numerical tests using the contact dynamics method

机译:使用触点动力学方法从双轴数值测试中的摩擦粒度介质中流变术,力传递和剪切稳定性

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By means of the contact dynamics discrete element method, we investigate the quasi-static behavior of granular media composed of rigid frictional particles. Eluding specific modeling of the contact rheology, this method is suitable for numerical simulation of the plastic deformations of granular materials. We studied the macroscopic stress-strain and volume-change behavior, as well as force transmission and shear instabilities, in a two-dimensional biaxial geometry for dense samples composed of 5000 rigid disks. The peak and residual strengths and shear bands were analyzed by varying the confining pressure and the coefficient of friction between particles. The results are consistent with well-known features of the plasticity of noncohesive granular media. The mechanical behavior is rigid-plastic governed by a Mohr-Coulomb yield criterion and showing strain hardening and softening. Conjugated shear bands characterize plastic failure. The volumetric strain is globally dilatant with considerable expansion observed along shear bands. The macroscopic coefficient of friction, determined from peak and residual strengths, increases nonlinearly and saturates to a constant value as a function of contact friction. The strong force chains are mostly parallel to the major principal stress axis, yet deviations are observed near the shear bands. These chains are often composed of particles that are larger than the average. The deviatoric stress shows small fluctuations often in the form of rapid falls that are correlated with tiny contractional events. This behavior is interpreted in terms of the propagation of dynamic shear instabilities along the shear bands, in close analogy with stick-slip behavior.
机译:通过接触动力学离散元素方法,我们研究了由刚性摩擦粒子组成的粒状介质的准静态行为。阐明了接触流变学的具体建模,该方法适用于粒状材料的塑性变形的数值模拟。我们研究了由5000个刚性盘组成的致密样品的二维双轴几何形状中的宏观应力 - 应变和体积变化行为,以及力传递和剪切稳定性。通过改变限制压力和颗粒之间的摩擦系数来分析峰值和残余强度和剪切带。结果与非粘性颗粒介质的可塑性的众所周知的特征一致。机械行为是由Mohr-Coulomb产率标准控制的刚性塑料,并显示出应变硬化和软化。共轭剪切带子表征塑性失效。体积菌株是全球膨胀剂,沿剪切带观察到相当大的膨胀。根据峰值和残余强度确定的宏观摩擦系数非线性增加,并随着接触摩擦的函数而饱和至恒定值。强力链大多平行于主要主应力轴,但在剪切带附近观察到偏差。这些链通常由大于平均值的粒子组成。偏离偏差的压力显示出较小的波动,其迅速下降的形式与微小的合同事件相关。在剪切带沿着剪切带沿着剪切带的动态剪切稳定性的传播,这种行为被解释为粘附行为。

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