深部开采条件下区域化多尺度微震特征及岩石破坏机制识别

IF 13.7 1区 工程技术 Q1 MINING & MINERAL PROCESSING
Yihan Zhang , Chenliang Hao , Longjun Dong , Zhongwei Pei , Fangzhen Fan , Marc Bascompta
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引用次数: 0

摘要

深部开采诱发岩体破坏表现出明显的空间异质性和机制多样性,其微震响应是区域破坏演化和失稳机制的有效指标。以金川二矿区六级采场子层为研究对象,构建了包含时域特征、频域特征和多重分形特征的24参数指标体系。通过流形学习、聚类分析和混合特征选择,提取出15个关键指标,构建故障响应分类框架。结合震源机制反演和数值模拟,进一步识别了不同构造带的破坏模式和失稳机制。结果表明,多尺度微地震特征具有明显的区域相似性。基于15个指标的雷达图形态特征,将声响应划分为4种典型类型,每种类型都反映了不同的局部破坏机制、应力条件和塑性区演化。在考虑主要失稳因素和破坏模式的基础上,针对采场内典型破坏区提出了4种具有代表性的岩体失稳模型。研究结果为深部金属矿区灾害预测、结构优化和扰动控制提供了理论指导和方法支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identification of regionalized multiscale microseismic characteristics and rock failure mechanisms under deep mining conditions
The rock mass failure induced by deep mining exhibits pronounced spatial heterogeneity and diverse mechanisms, with its microseismic responses serving as effective indicators of regional failure evolution and instability mechanisms. Focusing on the Level VI stope sublayers in the Jinchuan #2 mining area, this study constructs a 24-parameter index system encompassing time-domain features, frequency-domain features, and multifractal characteristics. Through manifold learning, clustering analysis, and hybrid feature selection, 15 key indicators were extracted to construct a classification framework for failure responses. Integrated with focal mechanism inversion and numerical simulation, the failure patterns and corresponding instability mechanisms across different structural zones were further identified. The results reveal that multiscale microseismic characteristics exhibit clear regional similarities. Based on the morphological features of radar plots derived from the 15 indicators, acoustic responses were classified into four typical types, each reflecting distinct local failure mechanisms, stress conditions, and plastic zone evolution. Moreover, considering dominant instability factors and rupture modes, four representative rock mass instability models were proposed for typical failure zones within the stope. These findings provide theoretical guidance and methodological support for hazard prediction, structural optimization, and disturbance control in deep metal mining areas.
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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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