利用基于 Voronoi 晶粒的可破块模型研究应力诱发的矿柱渐进式破坏

IF 11.7 1区 工程技术 Q1 MINING & MINERAL PROCESSING
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引用次数: 0

摘要

提出了基于有限元-离散元组合法(FDEM)的 Voronoi 晶粒可破碎块体模型(VGBBM),以明确描述硬岩矿柱的破坏机制并预测其变形行为。利用实验室尺度模型研究了微观参数对宏观力学行为的影响。根据克雷顿矿柱的经验预测应力-应变曲线,校准了野外规模矿柱模型(宽度-高度,W/H=1、2 和 3)。结果表明,随着 W/H 比的增加,VGBBM 有效地预测了矿柱从应变软化到假韧性行为的转变,并明确捕捉到了分离的岩板和矿柱两侧的 V 型破坏带以及矿柱核心区的共轭剪切带。体积应变场显示了岩柱核心区的显著压缩变形。虽然 W/H=1 和 2 柱的峰值应变相对一致,但应变能的存储和释放机制存在显著差异。W/H 是影响柱心变形和应变能的主要因素。结构平面的摩擦系数也是影响支柱强度和最弱不连续角的重要因素。断裂面受不连续角和摩擦系数的控制。这项研究证明了 VGBBM 在预测深部矿山设计中硬岩柱的强度和变形行为方面的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of stress-induced progressive failure of mine pillars using a Voronoi grain-based breakable block model

The Voronoi grain-based breakable block model (VGBBM) based on the combined finite-discrete element method (FDEM) was proposed to explicitly characterize the failure mechanism and predict the deformation behavior of hard-rock mine pillars. The influence of the microscopic parameters on the macroscopic mechanical behavior was investigated using laboratory-scale models. The field-scale pillar models (width-to-height, W/H=1, 2 and 3) were calibrated based on the empirically predicted stress-strain curves of Creighton mine pillars. The results indicated that as the W/H ratios increased, the VGBBM effectively predicted the transition from strain-softening to pseudo-ductile behavior in pillars, and explicitly captured the separated rock slabs and the V-shaped damage zones on both sides of pillars and conjugate shear bands in core zones of pillars. The volumetric strain field revealed significant compressional deformation in core zones of pillars. While the peak strains of W/H=1 and 2 pillars were relatively consistent, there were significant differences in the strain energy storage and release mechanism. W/H was the primary factor influencing the deformation and strain energy in the pillar core. The friction coefficient of the structural plane was also an important factor affecting the pillar strength and the weakest discontinuity angle. The fracture surface was controlled by the discontinuity angle and the friction coefficient. This study demonstrated the capability of the VGBBM in predicting the strengths and deformation behavior of hard-rock pillars in deep mine design.

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来源期刊
International Journal of Mining Science and Technology
International Journal of Mining Science and Technology Earth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
19.10
自引率
11.90%
发文量
2541
审稿时长
44 days
期刊介绍: The International Journal of Mining Science and Technology, founded in 1990 as the Journal of China University of Mining and Technology, is a monthly English-language journal. It publishes original research papers and high-quality reviews that explore the latest advancements in theories, methodologies, and applications within the realm of mining sciences and technologies. The journal serves as an international exchange forum for readers and authors worldwide involved in mining sciences and technologies. All papers undergo a peer-review process and meticulous editing by specialists and authorities, with the entire submission-to-publication process conducted electronically.
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