Study on compaction characteristics and discrete element simulation for rubber particle-loess mixed soil

Wen-qi Kou, Jian-guang Bai, Hai-jun Li, Qing-hong Liu
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Abstract

The rapid surge in traffic volume in China has resulted in a substantial accumulation of waste tires. By harnessing the lightweight and deformable characteristics of tire rubber particles, they are combined with soil to form rubber particle-loess mixed soil, which is progressively being embraced in civil engineering as a pivotal approach towards attaining green and sustainable development. In this study, waste tire rubber particles were integrated into loess to generate rubber particle-loess mixed soil, and compaction tests were conducted to investigate its compaction characteristics. Furthermore, PFC3D (Particle Flow Code 3D) was utilized for simulating the bearing ratio test of rubber particle-loess mixed soil, thereby validating the feasibility of numerical simulation for calculating CBR (California bearing ratio) values and exploring the relationship between micromechanical characteristics and macroscopic characteristics of such mixtures. The findings indicate that the maximum dry density of rubber particle-loess mixed soil significantly decreases with an increasing content of rubber particles. The utilization of PFC3D discrete element software proves efficacious in examining the bearing capacity of this mixture. Notably, when 20 mesh rubber particles constitute 20% by volume, the CBR value reaches its pinnacle and exhibits optimal bearing capacity. From a micromechanical perspective, the variation in internal porosity of rubber particle-loess mixed soil is positively associated with changes in macroscopic optimal water content, and negatively associated with changes in macroscopic CBR value. incorporating rubber particles enhances resistance against external forces while diminishing deformation within loess. This study provides a guidance for the efficient utilization of waste tires and the improvement of loess’s characteristics.
无橡胶颗粒混合土的压实特性和离散元模拟研究
中国交通量的急剧增长导致大量废旧轮胎堆积。利用轮胎橡胶颗粒轻质、易变形的特点,将其与土壤结合形成无胶粒混合土,作为实现绿色可持续发展的重要途径,正逐步被土木工程所接受。本研究将废弃轮胎橡胶颗粒与黄土结合,生成无橡胶颗粒混合土,并进行了压实试验,以研究其压实特性。此外,还利用 PFC3D(粒子流代码三维)模拟了无橡胶颗粒混合土的承载比试验,从而验证了数值模拟计算 CBR(加州承载比)值的可行性,并探索了此类混合物的微观力学特征与宏观特征之间的关系。研究结果表明,无橡胶颗粒混合土的最大干密度随着橡胶颗粒含量的增加而显著降低。事实证明,利用 PFC3D 离散元素软件可以有效检验这种混合物的承载能力。值得注意的是,当 20 目橡胶颗粒占体积的 20% 时,CBR 值达到顶峰,表现出最佳承载能力。从微观力学角度来看,无橡胶颗粒混合土内部孔隙率的变化与宏观最佳含水量的变化呈正相关,而与宏观 CBR 值的变化呈负相关。这项研究为有效利用废旧轮胎和改善黄土特性提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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