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首页> 外文期刊>Granular matter >Density dependent macro-micro behavior of granular materials in general triaxial loading for varying intermediate principal stress using DEM
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Density dependent macro-micro behavior of granular materials in general triaxial loading for varying intermediate principal stress using DEM

机译:颗粒材料在一般三轴载荷下使用DEM改变中间主应力时与密度有关的宏观微观行为

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摘要

This study presents the density dependent behavior of granular materials for varying intermediate principal stress (σ_2) in general triaxial loading using the discrete element method (DEM). The variation of intermediate principal stress is represented by a non-dimensional parameter b[= (σ_2-σ_3)/(σ_1 - σ_3)], where σ_1 and σ_3 are the major and minor principal stresses, respectively. Isotropically compressed dense and loose samples were prepared numerically using the periodic boundaries. The numerical dense and loose samples were subjected to shear deformation under strain controlled condition for different b values ranging from 0 to 1. The simulated macro results depict that the friction angle increases with b until it reaches a peak value and beyond the peak, the friction angle decreases with b regardless of the density of sample. A unique relationship between dilatancy index and equivalent deviatoric strain exists at small strain level for different b values when dense sample is considered. By contrast, the same relationship for loose sample does not show uniqueness. The relationships among the major, intermediate and minor principal strains depict non-linear behavior. The non-linearity is dominant for loose sample. The fluctuation in the evolution of strain increment vector direction is dominant in loose sample than dense sample. The evolution of different micro results is presented as well. It is noted that a unique relationship exists between the stress ratio and the fabric measure regardless of b and the density of sample when strong contacts are considered.
机译:这项研究使用离散元方法(DEM)提出了颗粒材料在一般三轴载荷下改变中间主应力(σ_2)的密度依赖性行为。中间主应力的变化由无量纲参数b [=(σ_2-σ_3)/(σ_1-σ_3)]表示,其中σ_1和σ_3分别是主要和次要主应力。各向同性压缩的稠密和疏松样品使用周期边界进行数值制备。数值密集和疏松的样品在应变控制条件下经受不同的b值(范围从0到1)的剪切变形。模拟的宏观结果表明,摩擦角随着b的增加而增大,直到达到峰值并超过峰值为止。角度随b减小而与样品密度无关。当考虑稠密样品时,对于不同的b值,在较小的应变水平下,膨胀率指数和等效偏应变之间存在独特的关系。相比之下,松散样品的相同关系不会显示出唯一性。主要,中间和次要主应变之间的关系描述了非线性行为。对于松散的样品,非线性是主要的。应变增量矢量方向演化的波动在疏松样品中比稠密样品占主导地位。还介绍了不同微观结果的演变。注意,当考虑牢固接触时,应力比和织物尺寸之间存在唯一的关系,而与b和样品的密度无关。

著录项

  • 来源
    《Granular matter》 |2013年第5期|583-593|共11页
  • 作者单位

    Department of Civil Engineering, Rajshahi University of Engineering and Technology, Rajshahi 6204, Bangladesh;

    Department of Civil and Environmental Engineering, Saitama University, Saitama 338-8570, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Discrete element method; Density; b value Micro-response;

    机译:离散元法;密度;b值微响应;

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