围压和颗粒破碎对尾矿力学特性影响的数值模拟研究

IF 2.8 3区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Xueting Li, Chao Zhang, Qinglin Chen, Changkun Ma, Zhenkai Pan
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引用次数: 0

摘要

采用离散元法模拟常规三轴试验,研究围压和颗粒破碎对尾矿力学性能的影响。采用八面体剪切应力破坏准则和14 Apollonian碎片置换法模拟颗粒破碎。尾矿的宏观特性表明,峰值剪应力比对围压敏感,临界剪应力比对颗粒破碎不太敏感。围压和颗粒破碎影响剪切膨胀,导致剪切损伤模式的变化。定量研究表明,颗粒破碎是影响尾砂强度非线性变化的主要因素。随着围压的增大,颗粒破碎的影响比例逐渐减小。细观分析表明,整体各向异性与剪应力比呈正相关,其中法向接触力分布的各向异性贡献最大。整体各向异性的变化是由接触状态的变化引起的,其中滑动接触状态是主要的影响因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DEM investigations on the effects of confining pressure and particle breakage on the mechanical behavior of tailings

The effects of confining pressure and particle breakage on the mechanical behavior of tailings were investigated using the discrete-element method to simulate conventional triaxial tests. The particle breakage was simulated using the octahedral shear stress breakage criterion and 14 Apollonian fragments replacement method. The macroscopic behavior of tailings revealed that the peak shear stress ratio is sensitive to confining pressure and the critical shear stress ratio is less sensitive to particle breakage. Confining pressure and particle breakage affect shear expansion, leading to changes in shear damage patterns. The quantitative study shows that particle breakage is the main factor influencing the nonlinear variation of the tailing strength. However, the influence proportion of particle breakage is gradually decreasing with the increase in the confining pressure. Microscopic analysis reveals a positive correlation between the overall anisotropy and the shear stress ratio, with the anisotropy of the normal contact force distribution contributing the most. The variation of the overall anisotropy is caused by the variation of the contact state, in which the sliding contact state is the main influencing factor.

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来源期刊
Computational Particle Mechanics
Computational Particle Mechanics Mathematics-Computational Mathematics
CiteScore
5.70
自引率
9.10%
发文量
75
期刊介绍: GENERAL OBJECTIVES: Computational Particle Mechanics (CPM) is a quarterly journal with the goal of publishing full-length original articles addressing the modeling and simulation of systems involving particles and particle methods. The goal is to enhance communication among researchers in the applied sciences who use "particles'''' in one form or another in their research. SPECIFIC OBJECTIVES: Particle-based materials and numerical methods have become wide-spread in the natural and applied sciences, engineering, biology. The term "particle methods/mechanics'''' has now come to imply several different things to researchers in the 21st century, including: (a) Particles as a physical unit in granular media, particulate flows, plasmas, swarms, etc., (b) Particles representing material phases in continua at the meso-, micro-and nano-scale and (c) Particles as a discretization unit in continua and discontinua in numerical methods such as Discrete Element Methods (DEM), Particle Finite Element Methods (PFEM), Molecular Dynamics (MD), and Smoothed Particle Hydrodynamics (SPH), to name a few.
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