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Effect of initial packing density, stress level and particle size ratio on the behavior of binary granular material: a micromechanical approach

机译:初始包装密度,应力水平和粒度比对二元粒状材料行为的影响:微机械方法

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摘要

The geo-mechanical behavior of granular materials rigorously depends on their initial packing density, stress level and particle size distribution. Moreover, the behavior of binary granular soil is affected by the quality and quantity of their small particles named the fines content (FC). The contribution mechanism of the FC to the load-bearing structure of the soil at various particle sizes, stress levels and densities is still pending. The present study aimed to use a micromechanical approach to simulate the behavior of binary mixtures with particle size ratios (alpha) of 2.5 to 7.1 and study the effect of stress level and initial packing density on the stress-strain behavior using discrete element method (DEM). Accordingly, the effect of FC on the internal friction angle, anisotropy parameters, coordination number and coarse-fine (C-F) contacts have been studied. The results indicate that the variation in peak shear strength versus FC is bell-shaped with a minimum for FC of 30% to 40% and this is independent of initial packing density and stress level, but depending on the value of alpha. The greater particle size ratios (alpha = 7.1) increase the tendency of fines particles to rotate during biaxial testing, reduced the shear strength in comparison with samples with small particle size ratios (alpha = 2.5). Exceeding the threshold FC (30-40%) led to formation of stronger force chains among the fines and increased the role of FC on the peak shear strength.
机译:粒状材料的地理力学行为严格地取决于它们的初始填充密度,应力水平和粒度分布。此外,二元粒状土壤的行为受到其小颗粒的质量和数量的影响,其小颗粒被称为细粒含量(Fc)。 Fc在各种颗粒尺寸,应力水平和密度下土壤承载结构的贡献机制仍在等待中。本研究旨在使用微机械方法来模拟2.5至7.1的粒度比率(α)的二元混合物的行为,并研究使用离散元素法(DEM)对应力水平和初始填充密度对应力 - 应变行为的影响(DEM )。因此,已经研究了Fc对内部摩擦角,各向异性参数,协调数和粗细(C-F)触点的影响。结果表明,峰值剪切强度与Fc的变化是钟形,最小的Fc为30%至40%,这与初始填充密度和应力水平无关,而是取决于α的值。更大的粒度比(α= 7.1)增加了在双轴试验期间旋转的细粒颗粒旋转的趋势,与具有小粒度比的样品相比,剪切强度降低(α= 2.5)。超过阈值Fc(30-40%)导致在细粒中形成更强的力链,并增加Fc对峰值剪切强度的作用。

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