Discrete Element Study of Particle Size Distribution Shape Governing Critical State Behavior of Granular Material

Granular soil is a porous medium composed of particles with different sizes and self-similar structures, exhibiting fractal characteristics. It is well established that variations in these fractal properties, such as particle size distribution (PSD), significantly influence the mechanical behavior o...

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Main Authors: Mingdong Jiang, Daniel Barreto, Zhi Ding, Kaifang Yang
Format: Article
Language:English
Published: MDPI AG 2025-01-01
Series:Fractal and Fractional
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Online Access:https://www.mdpi.com/2504-3110/9/1/26
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author Mingdong Jiang
Daniel Barreto
Zhi Ding
Kaifang Yang
author_facet Mingdong Jiang
Daniel Barreto
Zhi Ding
Kaifang Yang
author_sort Mingdong Jiang
collection DOAJ
description Granular soil is a porous medium composed of particles with different sizes and self-similar structures, exhibiting fractal characteristics. It is well established that variations in these fractal properties, such as particle size distribution (PSD), significantly influence the mechanical behavior of the soil. In this paper, a three-dimensional (3D) Discrete Element Method (DEM) is applied to study the mechanical and critical-state behavior of the idealized granular assemblages, in which various PSD shape parameters are considered, including the coefficient of uniformity (C<sub>u</sub>), the coefficient of curvature (C<sub>c</sub>), and the coefficient of size span (C<sub>s</sub>). In addition, the same PSDs but with different mean particle sizes (D<sub>50</sub>) are also employed in the numerical simulations to examine the particle size effect on the mechanical behavior of the granular media. Numerical triaxial tests are carried out by imposing axial compression under constant mean effective pressure conditions. A unique critical-state stress ratio in <i>p</i>′<i>-q</i> space is observed, indicating that the critical friction angle is independent of the shape of the PSD. However, in the <i>e-p</i>′ plane, the critical state line (CSL) shifts downward and rotates counterclockwise, as the grading becomes more widely distributed, i.e., the increasing coefficient of span (C<sub>s</sub>). Additionally, a decrease in the coefficient of curvature (C<sub>c</sub>) would also move the CSL downward but with negligible rotation. However, it is found that the variations in the mean particle size (D<sub>50</sub>) and coefficient of uniformity (C<sub>u</sub>) do not affect the position of the CSL in the <i>e-p</i>′ plane. The numerical findings may shed some light on the development of constitutive models of sand that undergo variations in the grading due to crushing and erosion, and address fractal problems related to micro-mechanics in soils.
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spelling doaj-art-39b1204fe75049a4b5b6705b1bc96b8b2025-01-24T13:33:25ZengMDPI AGFractal and Fractional2504-31102025-01-01912610.3390/fractalfract9010026Discrete Element Study of Particle Size Distribution Shape Governing Critical State Behavior of Granular MaterialMingdong Jiang0Daniel Barreto1Zhi Ding2Kaifang Yang3Department of Civil Engineering, Hangzhou City University, Hangzhou 310015, ChinaSchool of Computing, Engineering and the Built Environment, Edinburgh Napier University, Edinburgh EH10 5DT, UKDepartment of Civil Engineering, Hangzhou City University, Hangzhou 310015, ChinaDepartment of Civil Engineering, Hangzhou City University, Hangzhou 310015, ChinaGranular soil is a porous medium composed of particles with different sizes and self-similar structures, exhibiting fractal characteristics. It is well established that variations in these fractal properties, such as particle size distribution (PSD), significantly influence the mechanical behavior of the soil. In this paper, a three-dimensional (3D) Discrete Element Method (DEM) is applied to study the mechanical and critical-state behavior of the idealized granular assemblages, in which various PSD shape parameters are considered, including the coefficient of uniformity (C<sub>u</sub>), the coefficient of curvature (C<sub>c</sub>), and the coefficient of size span (C<sub>s</sub>). In addition, the same PSDs but with different mean particle sizes (D<sub>50</sub>) are also employed in the numerical simulations to examine the particle size effect on the mechanical behavior of the granular media. Numerical triaxial tests are carried out by imposing axial compression under constant mean effective pressure conditions. A unique critical-state stress ratio in <i>p</i>′<i>-q</i> space is observed, indicating that the critical friction angle is independent of the shape of the PSD. However, in the <i>e-p</i>′ plane, the critical state line (CSL) shifts downward and rotates counterclockwise, as the grading becomes more widely distributed, i.e., the increasing coefficient of span (C<sub>s</sub>). Additionally, a decrease in the coefficient of curvature (C<sub>c</sub>) would also move the CSL downward but with negligible rotation. However, it is found that the variations in the mean particle size (D<sub>50</sub>) and coefficient of uniformity (C<sub>u</sub>) do not affect the position of the CSL in the <i>e-p</i>′ plane. The numerical findings may shed some light on the development of constitutive models of sand that undergo variations in the grading due to crushing and erosion, and address fractal problems related to micro-mechanics in soils.https://www.mdpi.com/2504-3110/9/1/26particle size distributiongranular materialdiscrete element methodcritical state theory
spellingShingle Mingdong Jiang
Daniel Barreto
Zhi Ding
Kaifang Yang
Discrete Element Study of Particle Size Distribution Shape Governing Critical State Behavior of Granular Material
Fractal and Fractional
particle size distribution
granular material
discrete element method
critical state theory
title Discrete Element Study of Particle Size Distribution Shape Governing Critical State Behavior of Granular Material
title_full Discrete Element Study of Particle Size Distribution Shape Governing Critical State Behavior of Granular Material
title_fullStr Discrete Element Study of Particle Size Distribution Shape Governing Critical State Behavior of Granular Material
title_full_unstemmed Discrete Element Study of Particle Size Distribution Shape Governing Critical State Behavior of Granular Material
title_short Discrete Element Study of Particle Size Distribution Shape Governing Critical State Behavior of Granular Material
title_sort discrete element study of particle size distribution shape governing critical state behavior of granular material
topic particle size distribution
granular material
discrete element method
critical state theory
url https://www.mdpi.com/2504-3110/9/1/26
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