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Effects of confinement on rock mass modulus:A synthetic rock mass modelling(SRM) study 被引量:10
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作者 I.Vazaios K.Farahmand +1 位作者 N.Vlachopoulos M.S.Diederichs 《Journal of Rock Mechanics and Geotechnical Engineering》 CSCD 2018年第3期436-456,共21页
The main objective of this paper is to examine the influence of the applied confining stress on the rock mass modulus of moderately jointed rocks(well interlocked undisturbed rock mass with blocks formed by three or ... The main objective of this paper is to examine the influence of the applied confining stress on the rock mass modulus of moderately jointed rocks(well interlocked undisturbed rock mass with blocks formed by three or less intersecting joints). A synthetic rock mass modelling(SRM) approach is employed to determine the mechanical properties of the rock mass. In this approach, the intact body of rock is represented by the discrete element method(DEM)-Voronoi grains with the ability of simulating the initiation and propagation of microcracks within the intact part of the model. The geometry of the preexisting joints is generated by employing discrete fracture network(DFN) modelling based on field joint data collected from the Brockville Tunnel using LiDAR scanning. The geometrical characteristics of the simulated joints at a representative sample size are first validated against the field data, and then used to measure the rock quality designation(RQD), joint spacing, areal fracture intensity(P21), and block volumes. These geometrical quantities are used to quantitatively determine a representative range of the geological strength index(GSI). The results show that estimating the GSI using the RQD tends to make a closer estimate of the degree of blockiness that leads to GSI values corresponding to those obtained from direct visual observations of the rock mass conditions in the field. The use of joint spacing and block volume in order to quantify the GSI value range for the studied rock mass suggests a lower range compared to that evaluated in situ. Based on numerical modelling results and laboratory data of rock testing reported in the literature, a semi-empirical equation is proposed that relates the rock mass modulus to confinement as a function of the areal fracture intensity and joint stiffness. 展开更多
关键词 synthetic rock mass modelling srm Discrete fracture network (DFN) rock mass modulus Geological strength index (GSI) CONFINEMENT
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煤单轴压缩起裂强度确定及其关键因素影响分析 被引量:6
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作者 李文洲 司林坡 +2 位作者 卢志国 伊康 武龙云 《煤炭学报》 EI CAS CSCD 北大核心 2021年第S02期670-680,共11页
为探究煤起裂强度关键影响因素及其对各因素响应敏感度,采用裂纹体积应变法和声发射法确定煤样单轴载荷下起裂强度。基于煤样CT扫描结果,二值化得到内部结构缺陷分布状态,并进行修正建立DFN网格模型,采用合成岩体方法(SRM)重构数值岩芯... 为探究煤起裂强度关键影响因素及其对各因素响应敏感度,采用裂纹体积应变法和声发射法确定煤样单轴载荷下起裂强度。基于煤样CT扫描结果,二值化得到内部结构缺陷分布状态,并进行修正建立DFN网格模型,采用合成岩体方法(SRM)重构数值岩芯,无侧限加载再现煤样破坏过程,得到数值岩芯峰值强度、起裂强度、起裂模式及起裂位置。将起裂强度影响因素分为煤样基质骨架、基质间相互作用及原生缺陷3类,从中各选取2项指标,采用响应面法进行单因素及交互分析。采用裂纹应变法及声发射法确定煤起裂强度为10.06及9.26 MPa,分别为峰值强度的50.3%和46.7%;数值岩芯起裂强度为9.56 MPa,为峰值强度的47.2%,且均在原生缺陷尖端发生拉破坏而起裂。单因素分析结果显示,煤起裂强度对各因素响应敏感性依次为DFN网格密度>基质颗粒弹性模量=PBM模型黏聚力>SJ模型摩擦因数>PBM模型抗拉强度>基质孔隙率,表明原生缺陷对起裂强度影响最显著。多因素交互影响分析发现,颗粒弹性模量与PBM模型黏聚力交互作用响应曲线扭曲程度最高,表明2者对煤样起裂强度影响的交互作用最明显;微观力学因素与DFN网格密度交互作用响应曲面较陡,且投影等值线在DFN网格密度方向更密集,证明煤样内部结构特征对其宏观力学性质影响更显著,与单因素分析结果相互佐证。现场实测表明,巷帮浅部煤体破碎程度高,强度较低,注浆充填结构缺陷后,煤体完整性、均质性及强度得到提高。 展开更多
关键词 单轴压缩 起裂强度 CT扫描 合成岩体方法 响应面分析
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基于合成岩体方法的正交裂隙煤体围压效应研究 被引量:2
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作者 王晓卿 康红普 高富强 《煤炭学报》 EI CAS CSCD 北大核心 2021年第9期2865-2873,共9页
煤体结构面分布具有正交的特点。为阐明正交裂隙煤体的围压效应与破坏机理,基于结构面采样与参数标定试验构建正交裂隙煤体模型,采用合成岩体方法开展不同围压条件下正交裂隙煤体的常规三轴压缩试验,提出结构面活化系数的概念,分析围压... 煤体结构面分布具有正交的特点。为阐明正交裂隙煤体的围压效应与破坏机理,基于结构面采样与参数标定试验构建正交裂隙煤体模型,采用合成岩体方法开展不同围压条件下正交裂隙煤体的常规三轴压缩试验,提出结构面活化系数的概念,分析围压对正交裂隙煤体破坏特征、强度特性、变形行为与结构面活化的影响,提出并验证结构面活化机制以及围压条件下正交裂隙煤体的破坏机理。研究结果表明:①正交裂隙煤体的力学性质表现出明显的围压效应。随围压增大,煤体的抗压强度、残余强度、弹性模量增大,抵抗膨胀变形能力增强;力学性质表现出脆延转化;煤块破坏形式由拉伸转为剪切;结构面活化比例降低,结构面对正交裂隙煤体力学性质的影响减弱乃至消失。②=2\*GB3存在围压时结构面活化难度急剧增加,正交裂隙煤体的围压效应在低围压时更为显著。③=3\*GB3无围压时,正交裂隙煤体发生劈裂破坏,裂隙由结构面活化裂隙和翼裂纹组成;中、低围压时,正交裂隙煤体发生剪切破坏,形成贯穿的倾斜剪切裂隙;高围压时,正交裂隙煤体发生塑性流动破坏。④=4\*GB3无围压时,结构面控制正交裂隙煤体的破坏;中、低围压时,结构面影响正交裂隙煤体破坏裂隙的形态,但随围压增大影响程度变弱;高围压时,正交裂隙煤体的破坏不受结构面影响。 展开更多
关键词 煤体 正交裂隙 围压 结构面活化 破坏机理 合成岩体方法
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