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Investigating the micromechanical evolutions within inherently anisotropic granular materials using discrete element method

机译:使用离散元方法研究固有各向异性粒状材料内的微机械演化

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This paper investigates the mechanical behavior of inherently-anisotropic granular materials from macroscopic and microscopic points of view. The study is achieved by simulating biaxial compression tests performed on granular assemblies by using numerical discrete element method. In the same category of numerical studies found in the literature, the simulations were performed by considering elliptical/oval particles. In the present study, however, the shape of particles is considered as convex polygons, which mostly resembles real sand grains. Particle assemblies with four different bedding angles were tested. Similar to what observed in experiment, inherent anisotropy has a significant effect on macroscopic mechanical behavior of granular materials. The shear strength and dilative behavior of assemblies were found to decrease as the bedding angle increases. Evolution of the microstructure of all samples and the influence of bedding angle on the fabric and force anisotropy during loading process were investigated. It is seen that the microscopic evolutions in the fabric can justify well the macroscopic behavior of granular assemblies. It is found that the long axis of particles tend to be inclined perpendicular to the loading axis, which results in generating more stable column-like micro-structures in order to transfer the applied load. Moreover, the number of contacts as well as the magnitude of forces among particles varies in different directions during the loading process and the initial anisotropy condition totally evolves due to the induced anisotropy within samples.
机译:本文从宏观和微观的角度研究了固有各向异性颗粒材料的力学行为。该研究是通过使用数值离散元素方法模拟对颗粒组件进行的双轴压缩试验来完成的。在文献中发现的同一类数值研究中,通过考虑椭圆形/椭圆形颗粒来进行模拟。然而,在本研究中,颗粒的形状被认为是凸多边形,其大部分类似于真实的沙粒。测试了具有四个不同层理角度的粒子组件。与实验中观察到的相似,固有各向异性对颗粒材料的宏观力学行为具有重要影响。研究发现,随着层理角的增加,组件的抗剪强度和膨胀性能会降低。研究了所有样品的微观结构演变以及垫料角度对织物在加载过程中力各向异性的影响。可以看出,织物中的微观演变可以很好地证明粒状组件的宏观行为。发现颗粒的长轴倾向于垂直于加载轴倾斜,这导致产生更稳定的柱状微结构以转移施加的载荷。此外,在加载过程中,粒子之间的接触数量以及作用力的大小在不同的方向上会发生变化,并且由于样品中的各向异性,初始各向异性条件会完全演变。

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