节理岩质边坡开采引起岩层移动的数值研究

IF 1.6 Q3 ENGINEERING, GEOLOGICAL
Kunpeng Gao, Zhangxing Xu, Gershom Endelani Mwalupaso, Zhiyuan Cheng, Yitao Wang
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引用次数: 2

摘要

随着近年来矿产资源的枯竭,最终边坡下的上盘矿体需要露天开采后才能开采。由于无边坡工作面和特殊的开采位置,与传统的地下开采相比,这一过程将导致明显不同的地层运动。DEM是研究考虑节理影响的采矿引起的地层运动的常用方法。利用DEM揭示了最终边坡下开采引起的地层运动对关键节理评价参数(摩擦角φ和粘聚力c)的敏感性,得到了不同节理强度下的地层运动特征。主要结论如下:(1)地层运动对φ比c更敏感;(2) φ与地层运动角θ呈正相关,而c与地层运动角度θ无明显相关性;(3) 在不同的节理强度下,有四种主要的地层破坏模式和三种典型的地层运动过程,并进行了力学分析。这些结论有利于利用DEM对地层运动进行反分析,了解最终边坡下采矿对地层运动的共同影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A numerical study on the strata movement induced by mining under a jointed-rock slope
With the depletion of mineral resources in recent years, the hanging-wall orebody under the final slope needs to be extracted after opencast working. Because of the slope-free face and the special mining position, this process will lead to a significantly different strata movement compared to the traditional underground mining. DEM is a common approach to studying mining-induced strata movement considering the joint’s influence. Using DEM, this paper revealed the sensitivity of the strata movement induced by mining under the final slope to the key joint-evaluated parameters (friction angle φ and cohesion c), and obtained the strata movement characteristics under different joint strengths. The main conclusions are as follows: (1) the strata movement is more sensitive to the φ than c; (2) φ is positively associated with the strata movement angle θ, whereas there is no apparent correlation between c and the strata movement angle θ; (3) there are four primary strata failure modes and three typical strata movement processes under different joint strengths, and the mechanical analysis is given. These conclusions could benefit the back analysis of strata movement using DEM and understanding the joint impact on the strata movement induced by mining under the final slope.
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来源期刊
Geotechnical Research
Geotechnical Research ENGINEERING, GEOLOGICAL-
CiteScore
4.50
自引率
26.30%
发文量
22
审稿时长
12 weeks
期刊介绍: Geotechnical Research covers the full scope of geotechnics and its related disciplines including: Soil, rock and fluid mechanics; geoenvironmental engineering; geothermal engineering; geotechnical design and construction issues; analytical and numerical methods; physical modelling; micromechanics; transportation geotechnics; engineering geology; environmental geotechnology; geochemistry; geohydrology and water management.
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