Slope reliability assessment using an innovative critical failure path approach

Xiyang Tang, Chen Chen, Dan Shan, Pengtao Zhang, Jianghan Xue
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Abstract

Slope instability, driven by factors such as rainfall, seismic activity, and human influence, presents a pervasive hazard worldwide. Timely assessment of slope stability and accurate identification of its most critical slip surface are important for slope safety early warning and management. Currently, for the slope reliability analysis by the strength reduction method (SRM), the critical failure path is approximately determined through visualization techniques, which is not sufficiently precise. Therefore, this study proposes a critical failure search method based on SRM for slope reliability analysis, aiming to accurately identify the critical slip surface. The critical failure path is considered as the path with the maximum plastic dissipative energy density (PDED) and is searched in the constructed weighted graph based on the dissipated energy of the slope. This proposed method is further applied with an engineering slope to find the critical failure path and assess its reliability during and after construction. The searched critical failure path lies within the approximate range obtained through conventional visualization methods. Finally, a reliability prediction model consisting of time, rainfall, and deformation component is further constructed, which allows rapid estimation of the slope reliability through available monitor data. The results of reliability analysis indicate that construction disturbances have a significant impact on slope stability, along with other factors such as rainfall and creep.
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采用创新的关键故障路径法评估斜坡可靠性
受降雨、地震活动和人为影响等因素的影响,斜坡不稳定性在全球范围内普遍存在。及时评估斜坡稳定性并准确识别其最关键的滑动面对于斜坡安全预警和管理非常重要。目前,采用强度降低法(SRM)进行边坡可靠性分析时,临界破坏路径是通过可视化技术近似确定的,不够精确。因此,本研究提出了一种基于 SRM 的边坡可靠性分析临界破坏搜索方法,旨在精确确定临界滑移面。临界破坏路径被认为是塑性耗散能量密度(PDED)最大的路径,并根据斜坡的耗散能量在构建的加权图中进行搜索。该方法进一步应用于工程边坡,以找到临界失效路径,并评估其在施工期间和施工后的可靠性。搜索到的临界失效路径在传统可视化方法得到的近似范围内。最后,进一步构建了一个由时间、降雨量和变形成分组成的可靠性预测模型,该模型可通过现有的监测数据快速估算斜坡的可靠性。可靠性分析结果表明,施工干扰以及降雨和蠕变等其他因素对斜坡稳定性有重大影响。
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