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Simulated effect of soil depth and bedrock topography on near-surface hydrologic response and slope stability

机译:土壤深度和基岩地形对近地表水文响应和边坡稳定性的模拟影响

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This paper explores the effect of hillslope hydrological behavior on slope stability in the context of transient subsurface saturation development and landslide triggering. We perform a series of virtual experiments to address how subsurface topography affects the location and spatial pattern of slip surface development and pore pressure dynamics. We use a 3D Darcy-Richards equation solver (Hydrus 3-D) combined with a cellular automata slope stability model to simulate the spatial propagation of the destabilized area. Our results showed that the soil-bedrock interface and in particular, bedrock depressions, played a key role in pore pressure dynamics, acting as an impedance for the downslope drainage of perched water. Filling and spilling of depressions in the bedrock surface microtopography induced localized zones of increased pressure head such that the development of pore-pressure fields-not predictable by surface topography-lead to rapid landslide propagation. Our work suggests that landslide models should consider the subsurface topography in order to include a connectivity component in the mathematical description of hydrological processes operating at the hillslope scale.
机译:本文探讨了地下瞬态地下饱和发育和滑坡触发条件下山坡水文行为对边坡稳定性的影响。我们进行了一系列虚拟实验,以探讨地下地形如何影响滑移面发育和孔隙压力动力学的位置和空间格局。我们使用3D Darcy-Richards方程求解器(Hydrus 3-D)结合元胞自动机边坡稳定性模型来模拟不稳定区域的空间传播。我们的研究结果表明,土壤-基岩界面,尤其是基岩凹陷,在孔隙压力动态中起着关键作用,对栖息水的下坡排水起着阻抗作用。基岩表面微形貌中凹陷的填充和溢出导致压力头的局部区域增大,从而使表面形貌无法预测的孔隙压力场的发展导致了滑坡的快速传播。我们的工作表明,滑坡模型应考虑地下地形,以便在以坡度为单位的水文过程的数学描述中包括连通性成分。

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