Abstract All you need is shape: Predicting shear banding in sand with LS-DEM
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All you need is shape: Predicting shear banding in sand with LS-DEM

机译:您所需要的只是形状:使用LS-DEM预测沙子中的剪切带

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AbstractThis paper presents discrete element method (DEM) simulations with experimental comparisons at multiple length scales—underscoring the crucial role of particle shape. The simulations build on technological advances in the DEM furnished by level sets (LS-DEM), which enable the mathematical representation of the surface of arbitrarily-shaped particles such as grains of sand. We show that this ability to model shape enables unprecedented capture of the mechanics of granular materials across scales ranging from macroscopic behavior to local behavior to particle behavior. Specifically, the model is able to predict the onset and evolution of shear banding in sands, replicating the most advanced high-fidelity experiments in triaxial compression equipped with sequential X-ray tomography imaging. We present comparisons of the model and experiment at an unprecedented level of quantitative agreement—building a one-to-one model where every particle in the more than 53,000-particle array has its own avatar or numerical twin. Furthermore, the boundary conditions of the experiment are faithfully captured by modeling the membrane effect as well as the platen displacement and tilting. The results show a computational tool that can give insight into the physics and mechanics of granular materials undergoing shear deformation and failure, with computational times comparable to those of the experiment. One quantitative measure that is extracted from the LS-DEM simulations that is currently not available experimentally is the evolution of three dimensional force chains inside and outside of the shear band. We show that the rotations on the force chains are correlated to the rotations in stress principal directions.
机译: 摘要 本文介绍了离散元素方法(DEM)模拟,并在多个长度尺度上进行了实验比较,强调了颗粒形状的关键作用。这些模拟建立在水平集(LS-DEM)提供的DEM的技术进步的基础上,该技术可以对砂粒等任意形状的颗粒的表面进行数学表示。我们证明了这种对形状建模的能力实现了从宏观行为到局部行为再到粒子行为的各个尺度上粒状材料力学的空前捕获。具体而言,该模型能够预测砂土中剪切带的发生和演变,从而复制了装备有连续X射线断层扫描成像技术的三轴压缩中最先进的高保真实验。我们以前所未有的定量协议水平对模型和实验进行了比较-建立了一对一的模型,其中超过53,000个粒子阵列中的每个粒子都有自己的化身或数字孪生体。此外,通过对膜效应以及压板位移和倾斜进行建模,可以忠实地捕获实验的边界条件。结果显示了一种计算工具,该工具可以洞悉经历剪切变形和破坏的粒状材料的物理和力学,计算时间与实验时间相当。从LS-DEM模拟中提取的一种定量方法(目前尚无法通过实验获得)是剪切带内部和外部的三维力链的演变。我们显示力链上的旋转与应力主方向上的旋转相关。

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