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Numerical modelling of slope damage in large, slowly moving rockslides: Insights from the Downie Slide, British Columbia, Canada

机译:大,慢慢移动岩石滑坡的数值模型:唐太幻灯片,不列颠哥伦比亚省,加拿大的洞察力

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摘要

The deformation of rock slopes is associated with the formation and accumulation of internal and external features (such as tension cracks, rock mass bulging and dilation, rockfall, etc.) that can be comprehensively referred to as "slope damage". In this paper, we use a 3D distinct element numerical modelling approach to investigate the role of shear zone morphology and groundwater pressure on the displacement and slope damage accumulation at the Downie Slide, a large, extremely slowly moving rockslide in British Columbia (Canada). First, we briefly review the external slope damage features that can be observed in an airborne laser scanner (ALS) dataset, allowing four slope damage domains (upper, central, northern, and southern domain) to be interpreted within the slide area, based on the orientation and type of features. Using the same ALS dataset we construct a 3D model of the present-day slope, explicitly including the two shear zones along which displacements occur, in order to investigate their role in the later stage of the landslide evolution. We assign a strain-softening constitutive model to the slide body, in order to account for the decrease in material properties due to damage accumulation. Virtual inclinometers are also implemented in the model, allowing for the comparison of simulated and observed displacement direction along the shear zones. The progressive deformation and failure of the slope is then simulated both assuming dry and wet conditions, in order to examine the role of pore water pressure, and the morphology of the upper and lower shear zones on the magnitude, orientation, and distribution of displacements. For each numerical model, the simulated slope damage features are recorded, by analyzing the zone volumetric strain and failure state, and compared with the type and orientation of features observed in each of the interpreted slope damage domains, thus allowing the numerical results to be better constrained and validated. It is clearly demonstrated that the orientation and distribution of slope damage and displacements observed in both the surface ALS and the subsurface borehole inclinometer data can be well reproduced in the 3D numerical models. Numerical modelling results show that the principal factor controlling the spatial distribution of slope damage at the Downie Slide is the morphology of the lower shear zone, whereas a negligible role is played by the upper shear zone morphology. We also observe that models incorporating a groundwater table display larger displacements, without significant effects on the orientation and distribution of simulated slope damage. This paper demonstrates that an analysis of slope damage is very important for understanding the mechanisms underlying the behavior of large landslides and should be a fundamental step in the comprehensive characterization of any major slope failure.
机译:岩石斜坡的变形与内部和外部特征的形成和积累(如张力裂缝,岩石质量凸出和扩张,岩石等),可以全面称为“坡损伤”。在本文中,我们使用3D独特元素数值模拟方法来研究剪切区域形态和地下水压力对羽绒服幻灯片的位移和坡度损伤积累的作用,在不列颠哥伦比亚省(加拿大)的大,极其慢地移动的岩石下。首先,我们简要介绍在空降激光扫描仪(ALS)数据集中可以观察到的外部斜坡损坏特征,允许基于的滑动区域内解释四个斜坡损坏域(上部,中央,北部和南部域)。功能的方向和类型。使用相同的ALS数据集,我们构建当天坡度的3D模型,明确地包括移动位移的两个剪切区域,以便在滑坡进化的后期阶段调查它们的作用。我们将应变软化构成模型分配给滑动体,以便由于损坏积累而降低材料性能。虚拟倾斜器也在模型中实现,允许沿着剪切区域进行模拟和观察位移方向的比较。然后假设干燥和湿润条件模拟斜率的渐进变形和失效,以检查孔隙水压力的作用,以及上下剪切区域的体形态,取向和位移的分布。对于每个数值模型,通过分析区域体积应变和故障状态,并与每个解释的斜坡损坏域中观察到的特征的类型和取向进行了记录模拟倾斜损坏特征,从而允许数值结果更好受限制和验证。清楚地证明,在表面ALS和地下钻孔仪数据中观察到的坡度损伤和位移的取向和分布可以在3D数模型中再现。数值建模结果表明,控制羽绒服幅度损伤空间分布的主要因素是下剪切区的形态,而上剪切区形态起到可忽略不计的作用。我们还观察到包括地下水台的模型显示出更大的位移,而不会对模拟斜坡损坏的方向和分布的显着影响。本文表明,坡度损坏的分析对于了解大型滑坡行为的机制非常重要,并且应该是任何主要坡度故障的综合表征的基本步骤。

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