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DEM-aided study of shear band formation in dip-slip faulting through granular soils

机译:DEM辅助的颗粒状土壤滑滑断裂中剪切带形成的研究

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A GPU-based two-dimensional discrete element methodology allowing for grain rolling resistance is adopted to study the engineering and fundamental aspects of shear band formation in normal and reverse faulting through an initially dense sand; of course, the paper emphasizes on fundamental aspects. The employed DEM modeling methodology is verified with the experimental results and FEM prediction of the pattern of shear bands developed through a trap-door centrifuge model test. Regarding the engineering aspects, a parametric study is carried out and the obtained results from the DEM simulations are compared with the experimental results. Concerning the fundamental aspects, various micro and macro aspects of shear banding, such as void ratio and coordination number, the evolution of particle-scale energies and second order work within the localized areas along the shear bands are studied. Moreover, a link is established between the micro and macro events occurring inside the shear bands. Regarding the engineering results, the analyses show that the reverse fault ruptures may deviate toward the hanging wall or footing wall, depending on the faulting angle; however, the primary and secondary normal fault ruptures refract at the soil-bedrock interface, deviating toward the hanging wall. Regarding the fundamental results, the analyses show that the pre-failure disintegration of strong contacts whose directions are aligned between the minimum principal strain and zero-extension line directions within the localized areas plays a fundamental role in the development of shear bands at micro scale. This leads to the local rotation (buckling) of columnar chains within shear bands at failure, being associated with a softening behavior, development of large voids, generation of high particle rotation gradients, rapid decrease of internal energy and rapid increase of dissipated energy within the shear bands at macro scale. In addition, the rolling mechanism plays a significant role in energy dissipation within the shear bands even though the sliding mechanism has a dominant role. Furthermore, the second order work becomes negative within the localized areas by the occurrence of shear banding. (C) 2015 Elsevier Ltd. All rights reserved.
机译:采用基于GPU的二维离散元方法,考虑了晶粒滚动阻力,研究了通过初始致密砂土进行的正断层和反向断层中剪切带形成的工程和基本方面。当然,本文强调基本方面。通过活板门离心机模型测试,通过实验结果和剪切带模式的有限元预测,验证了所采用的DEM建模方法。在工程方面,进行了参数研究,并将DEM模拟获得的结果与实验结果进行了比较。关于基本方面,研究了剪切带的微观和宏观方面,例如空隙率和配位数,沿剪切带局部区域内的颗粒级能量的演化和二阶功。此外,在剪切带内部发生的微观和宏观事件之间建立了联系。从工程结果来看,分析表明,根据断层角度的不同,反向断层破裂可能会向悬壁或底壁偏移。然而,主要和次要的正断层破裂在土壤-基岩界面处发生折射,并向悬挂壁偏移。关于基本结果,分析表明,在局部区域内,其方向在最小主应变方向与零伸长线方向之间对齐的强接触的失效前崩解,在微观剪切带的发展中起着重要作用。这导致柱状链在断裂时在剪切带内的局部旋转(屈曲),这与软化行为,大孔隙的产生,高颗粒旋转梯度的产生,内部能量的迅速降低以及内部消散能量的迅速增加有关。宏观上的剪切带。另外,即使滑动机制起主要作用,滚动机制在剪切带内的能量耗散中也起着重要作用。此外,由于剪切带的出现,二阶功在局部区域内变为负值。 (C)2015 Elsevier Ltd.保留所有权利。

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