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首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Rupture Of Veined Granite In Polyaxial Compression: Insights From Three-Dimensional Discrete Element Method Modeling
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Rupture Of Veined Granite In Polyaxial Compression: Insights From Three-Dimensional Discrete Element Method Modeling

机译:多轴压缩中脉冲花岗岩的破裂:三维离散元素法建模见识面

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Granite formations have been frequently involved in subsurface energy-related activities such as radioactive waste disposal, oil, and gas storage. This is principally because of their mechanical stability, low permeability, and high corrosion resistance. These favorable properties, however, can be compromised by the addition of mineral veins, which tend to occur ubiquitously in upper crustal rock formations. Evaluation of the impact of veins on the integrity and rupture characteristics of granite, especially under true triaxial stresses, is therefore important yet currently underemphasized. This study examines the rupture of veined granite in polyaxial compression via a discrete element method model. In the model with soft veins, the rupture is localized along the fabricated inclined veins (45 degrees relative to the horizontal with strike running in the sigma(2) direction) under low confining stresses (sigma(2) < 67 MPa); in contrast, a combined rupture of veins and granite matrix is observed when sigma(2) is increased to 141.6 MPa. Shear sliding along the inclined veins is revealed by examining the displacement field. Shear-induced volumetric dilation is suspected in the soft-veined models in relatively low confining stresses (sigma(2) < 67 MPa) with sliding and dilation behavior apparently suppressed at sigma(2) = 141.6 MPa. Hard veins impede local rupture, resulting in conjugate shear bands. The well-recognized sigma(2) effect is observed for the hard-veined models, while no pronounced sigma(2) effect is noticed for the soft-veined models. This study also reveals that vein thickness has a negligible impact on rupture characteristics, which is however profoundly affected by vein orientation.
机译:花岗岩形成经常参与地下能源相关的活动,如放射性废物处理,油和储气。这主要是由于其机械稳定性,低渗透性和高耐腐蚀性。然而,这些有利的性质可以通过添加矿物静脉来损害,这倾向于在上层地壳岩层中普遍发生。因此,评估静脉对花岗岩完整性和破裂特性的影响,特别是在真正的三轴应力下,尚不强调。本研究通过离散元法模型检查了脉冲压缩中脉冲花岗岩的破裂。在具有软静脉的模型中,在低限制应力下沿着制造的倾斜静脉(相对于水平45度,在σ(2)方向上运行45度)定位(Sigma(2)<67MPa);相反,当Sigma(2)增加到141.6MPa时,观察到静脉和花岗岩基质的组合破裂。通过检查位移场透露沿着倾斜静脉滑动滑动。剪切诱导的体积扩张在较低的狭窄应力(Sigma(2)<67MPa)中怀疑在柔软脉冲模型中,具有滑动和扩张行为明显抑制在Sigma(2)= 141.6MPa。硬静脉阻碍了局部破裂,导致共轭剪切带。对于硬脉冲模型,观察到良好识别的Sigma(2)效果,而软脉冲模型将注意到没有明显的Sigma(2)效果。本研究还揭示了静脉厚度对破裂特性的影响可忽略不计,然而受到静脉取向的深刻影响。

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