Micromechanical analysis of contact erosion under cyclic loads using the coupled CFD‒DEM method

Guo-qing Cai, Xian-feng Diao, Xu-zhen He, Shuai Gao, Tao Liu
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Abstract

Different layers of soil often have distinct particle sizes. When exposed to the natural environment, soil is easily affected by natural rainfall, rising groundwater levels, and human activities, leading to particle contact erosion, which reduces the safety and service performance of the soil structure. In this paper, a coupled computational fluid dynamics–discrete element method (CFD–DEM) model was employed to investigate the particle migration phenomena, mechanical response of contact interfaces, variations in flow fields, and macroscopic deformation during the contact erosion process under cyclic loads at different frequencies and amplitudes. The conclusions are presented as follows: (1) Within one cycle of cyclic loading, both compression during loading and stress relaxation during unloading are the main factors triggering the migration of fine particles. (2) The migration and loss of fine particles mainly occur in the early stages of cyclic loading, where strong contact force chains are formed within the fine particle layer, leading to significant plastic deformation of the soil at the macroscopic level. (3) Under cyclic loading, changes in the soil pore structure cause an upwards hydraulic gradient in the initial quiescent water flow field. This hydraulic gradient can rupture weak contact force chains and cause particle pumping. (4) Increasing the frequency and amplitude of cyclic loading intensifies the erosion of fine particles, causing greater axial deformation of the soil. Compared to cyclic loading frequency, the amplitude of cyclic loading has a greater impact on contact erosion.
利用 CFD-DEM 耦合方法对循环载荷下的接触侵蚀进行微观机械分析
不同土层通常具有不同的颗粒大小。当土壤暴露在自然环境中时,很容易受到自然降雨、地下水位上升和人类活动的影响,导致颗粒接触侵蚀,从而降低土壤结构的安全性和使用性能。本文采用计算流体动力学-离散元法(CFD-DEM)耦合模型,研究了在不同频率和振幅的循环载荷作用下,接触侵蚀过程中的颗粒迁移现象、接触界面的力学响应、流场变化和宏观变形。结论如下(1) 在一个循环加载周期内,加载时的压缩和卸载时的应力松弛是引发细颗粒迁移的主要因素。(2) 细颗粒的迁移和损失主要发生在循环加载的早期阶段,细颗粒层内会形成较强的接触力链,从而导致土体在宏观上产生显著的塑性变形。(3) 在循环荷载作用下,土壤孔隙结构的变化会使初始静止水流场产生向上的水力梯度。这种水力梯度会使微弱的接触力链断裂,导致颗粒泵送。(4) 增加循环加载的频率和振幅会加剧细颗粒的侵蚀,使土壤产生更大的轴向变形。与循环加载频率相比,循环加载的振幅对接触侵蚀的影响更大。
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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