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Influence of stress-path on pore size distribution in granular materials

机译:应力路径对粒状材料孔径分布的影响

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摘要

Pore size distribution is an important feature of granular materials in the context of filtration and erosion in soil hydraulic structures. Present study focuses on the evolution characteristics of pore size distribution for numerically simulated granular assemblies while subjected to various compression boundary constrain, namely, conventional drained triaxial compression, one-dimensional or oedometric compression and isotropic compression. We consider the effects initial packing of the granular assembly, loose or dense state. A simplified algorithm based on Delaunay tessellation is used for the estimation of pore size distribution for the deforming granular assemblies at various stress states. The analyses show that, the evolution of pore size is predominantly governed by the current porosity of the granular assembly while the stress path or loading process has minimal influence. Further it has also been observed that pore volume distribution reaches towards a critical distribution at the critical porosity during shear enhanced loading process irrespective of the deformation mechanism either compaction or dilation.
机译:在土壤水力结构的过滤和侵蚀情况下,孔径分布是粒状材料的重要特征。目前的研究集中在受到各种压缩边界约束的数值模拟颗粒组件的孔径分布的演变特征,即常规排水三轴压缩,一维或测压压缩和各向同性压缩。我们考虑了颗粒组装的初始堆积,松散或致密状态的影响。基于Delaunay细分的简化算法用于估计变形颗粒组件在各种应力​​状态下的孔径分布。分析表明,孔尺寸的变化主要受粒状组件的当前孔隙率控制,而应力路径或加载过程的影响最小。此外,还已经观察到,在剪切增强的加载过程中,孔体积分布在临界孔隙率处达到临界分布,而与变形机制(压紧或膨胀)无关。

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