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Torsional shear flow of granular materials: shear localization and minimum energy principle

机译:颗粒材料的扭转剪切流:剪切局部化和最小能量原理

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摘要

The rheological properties of granular matter submitted to torsional shear are investigated numerically by means of discrete element method. The shear cell is made of a cylinder filled by grains which are sheared by a bumpy bottom and submitted to a vertical pressure which is applied at the top. Regimes differing by their strain localization features are observed. They originate from the competition between dissipation at the sidewalls and dissipation in the bulk of the system. The effects of the (i) the applied pressure, (ii) sidewall friction, and (iii) angular velocity are investigated. A model, based on the purely local Π(I) -rheology and a minimum energy principle is able to capture the effect of the two former quantities but unable to account the effect of the latter. Although, an ad hoc modification of the model allows to reproduce all the numerical results, our results point out the need for an alternative rheology.
机译:采用离散元法对颗粒材料的扭变流变特性进行了数值研究。剪切单元由填充有谷物的圆柱体制成,这些谷物被凹凸不平的底部剪切并承受垂直压力,该垂直压力施加在顶部。观察到因其应变定位特征而异的状态。它们源于侧壁耗散与系统整体耗散之间的竞争。研究了(i)施加压力,(ii)侧壁摩擦和(iii)角速度的影响。基于纯局部Œ(I)流变学和最小能量原理的模型能够捕获前两个量的影响,但无法解释后者的影响。尽管对该模型进行了临时修改,但可以重现所有数值结果,但我们的结果指出,需要替代流变学。

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