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DEM analysis of rock bridges and the contribution to rock slope stability in the case of translational sliding failures

机译:平移滑动破坏情况下岩桥的DEM分析及其对边坡稳定性的贡献

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In the presence of joint sets sub-parallel to a slope face, the stability of the rock mass is assumed to be controlled by the shear strength along the joints. If the joints are persistent, the shear strength can be assessed according to the Mohr-Coulomb criterion with appropriate values for the cohesion and the friction angle on the associated surface. If the joints are non-persistent with their continuity being interrupted by the presence of rock bridges, their apparent strength increases considerably. In this case, the contribution of the rock bridges has to be accounted for in the stability analysis. Jennings' formulation is considered to be one of the first rock slope stability analysis that evaluates the resistance to sliding as a weighted combination of both intact rock and joint planes strengths. The present study discusses the validity of Jennings' formulation. The progressive failure of a rock slope involving a non-persistent joint is numerically investigated based upon simulations performed using a Discrete Element Method specifically enhanced to model jointed rock masses. The intact material is represented as an assembly of bonded particles. Pre-existing discontinuities are explicitly included in the model by using a modified contact logic that ensures an explicit and constitutive mechanical behaviour of the joint planes. The failure of the rock bridges is simulated through the breakage of the inter-particle bonds. In addition, rock bridges can be spatially distributed along the sliding surface following a prescribed spatial probabilistic distribution. The respective contribution of spatial distribution of rock bridges over the main sliding plane, the dip angle of that plane and the location of the centre of gravity of the likely unstable block were investigated through a series of numerical simulations and the results systematically compared to Jennings' predictions. The limit of Jennings' formulation appears as soon as tensile failure becomes predominant and an alternative formulation is proposed to assess the resulting equivalent strength. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在节理组平行于斜坡面的情况下,假定岩体的稳定性受节理的抗剪强度控制。如果关节是持久的,则可以根据Mohr-Coulomb标准评估剪切强度,并在相关表面上使用适当的内聚力和摩擦角值。如果节理是不持久的,其连续性会因存在桥而中断,则它们的视在强度会大大提高。在这种情况下,必须在稳定性分析中考虑岩桥的作用。詹宁斯的公式被认为是最早的岩石边坡稳定性分析之一,该评估以完整岩石和节理面强度的加权组合来评估抗滑性。本研究讨论了詹宁斯公式的有效性。基于使用离散元方法进行的模拟,对非连续节理的岩石边坡的渐进破坏进行了数值研究,该方法专门增强了对节理岩体的建模。完整的材料表示为键合粒子的集合。通过使用修改后的接触逻辑可确保模型中明确地包含本构平面的力学行为,从而将先前存在的不连续性明确包含在模型中。岩石桥梁的破坏是通过粒子间键的断裂来模拟的。另外,岩石桥梁可以按照规定的空间概率分布沿滑动表面在空间上分布。通过一系列数值模拟研究了岩石桥梁在主滑动平面上的空间分布,该平面的倾角和可能的不稳定块体的重心位置各自的贡献,并将结果与​​詹宁斯的系统地进行了比较。预测。詹宁斯公式的极限出现在拉伸破坏占主导地位时,因此提出了另一种公式来评估所得的等效强度。 (C)2015 Elsevier Ltd.保留所有权利。

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