Temporal stability and risk analysis of soil slopes subject to rainfall: The influence of heterogeneity

IF 8.4 1区 工程技术 Q1 ENGINEERING, GEOLOGICAL Engineering Geology Pub Date : 2025-03-13 Epub Date: 2025-01-10 DOI:10.1016/j.enggeo.2024.107895
Cheng Qian , Yajun Li , Philip J. Vardon , Wei Shao , Jiahe Song , Bin Zhang , Nengxiong Xu
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Abstract

Evaluating the temporal stability and risk of unsaturated soil slopes during rainfall is essential for early warning and emergency response to landslides. However, limited research has been conducted on the transition timing of sliding mechanisms, instability/failure time and the integration of sliding consequences into quantitative risk assessment. In order to extend the research in this field, the Random Finite Element Method (RFEM) is used in this paper to investigate the influence of spatial variability of hydraulic properties (related to the fundamental parameter porosity) on the temporal stability and risk of soil slopes subject to rainfall. The findings indicate that the advancing speed of the wetting front is more rapidly in zones with low porosity than that in zones with high porosity. As rainfall progresses, the sliding mechanism of the slope shifts from deep sliding to shallow sliding. The homogeneous case tends to underestimate the rise in groundwater levels, leading to an overestimation of slope stability. Hydraulic boundary conditions significantly affect slope stability, making it crucial to consider horizontal (or near the toe of the slope) drainage conditions in practical applications. Additionally, the time of instability/failure predicted in the homogeneous case may be delayed compared to the actual conditions. Both probability of instability/failure and risk increase with continued rainfall. Compared to scenarios where the spatial variability of internal friction angle is not considered, the probability of instability/failure and risk will be higher when the spatial variability of internal friction angle is additionally considered. Risk-based assessment can define the risk levels, reflecting the severity of sliding consequences. Furthermore, the Malin slope failure record from the Chibo region of India is used to validate the effectiveness of the proposed approach. The probabilities of slope failure align well with actual observations, and the risk-based assessment provides additional information into the Malin landslide. This paper proposes a general model for studying the performance of heterogeneous slopes subject to rainfall, providing valuable guidance for landslide early warning systems and the scope and timing of emergency measures taken.
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降雨作用下土壤边坡的时间稳定性及风险分析:异质性的影响
评估降雨过程中非饱和土边坡的时间稳定性和风险对滑坡预警和应急响应至关重要。然而,关于滑动机构的过渡时间、失稳/失效时间以及将滑动后果纳入定量风险评估的研究有限。为了进一步拓展这一领域的研究,本文采用随机有限元法(RFEM)研究了降雨作用下土壤边坡水力特性(与基本参数孔隙度相关)的空间变异性对边坡时间稳定性和风险的影响。研究结果表明,湿润锋在低孔隙度带的推进速度要快于高孔隙度带。随着降雨的增加,边坡的滑动机制由深滑向浅滑转变。均匀的情况往往低估了地下水位的上升,导致高估了边坡的稳定性。水力边界条件对边坡稳定性影响很大,因此在实际应用中考虑水平(或坡脚附近)排水条件至关重要。此外,在均匀情况下预测的失稳/失效时间可能比实际情况延迟。不稳定/失效的概率和风险都随着持续降雨而增加。与不考虑内摩擦角空间变异性的情况相比,在考虑内摩擦角空间变异性的情况下,失稳/失效的概率和风险会更高。基于风险的评估可以定义风险等级,反映滑动后果的严重程度。以印度奇波地区Malin边坡失稳记录为例,验证了该方法的有效性。边坡破坏的概率与实际观测结果一致,基于风险的评估为马林滑坡提供了额外的信息。本文提出了研究非均质边坡受降雨影响的一般模型,为滑坡预警系统以及采取应急措施的范围和时机提供了有价值的指导。
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来源期刊
Engineering Geology
Engineering Geology 地学-地球科学综合
CiteScore
13.70
自引率
12.20%
发文量
327
审稿时长
5.6 months
期刊介绍: Engineering Geology, an international interdisciplinary journal, serves as a bridge between earth sciences and engineering, focusing on geological and geotechnical engineering. It welcomes studies with relevance to engineering, environmental concerns, and safety, catering to engineering geologists with backgrounds in geology or civil/mining engineering. Topics include applied geomorphology, structural geology, geophysics, geochemistry, environmental geology, hydrogeology, land use planning, natural hazards, remote sensing, soil and rock mechanics, and applied geotechnical engineering. The journal provides a platform for research at the intersection of geology and engineering disciplines.
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