Reliability analysis of slope with cross-correlated spatially variable soil properties using AFOSM

被引:0
作者
Zhenyu Wu
Junru Li
Kang Bian
Jiankang Chen
机构
[1] Sichuan University,State Key Laboratory of Hydraulics and Mountain River Engineering
[2] College of Hydraulic and Hydroelectric Engineering,undefined
[3] Sichuan University,undefined
来源
Environmental Earth Sciences | 2021年 / 80卷
关键词
Slope; Reliability analysis; Spatial variability; Random field; Advanced first-order second-moment method; Limit equilibrium method;
D O I
暂无
中图分类号
学科分类号
摘要
Efficient approaches for slope reliability computation with spatially variable soil properties are of great interest. In this paper, an advanced first-order second-moment method (AFOSM) combined with the limit equilibrium method (LEM) is adopted for efficient slope reliability analysis considering cross-correlated random fields of shear strength parameters. In the slope reliability analysis, random fields of the soil shear strengths are locally discretized along the slip surface. A systematic framework is presented for constructing a full correlation matrix incorporating both autocorrelation and cross correlation for the shear strength parameters in multiple soil layers, which could be useful for multi-layered slope reliability analysis involving cross-correlated spatially variable soil properties. A single-layered c–φ slope and a two-layered c–φ slope are investigated to illustrate and validate the proposed approach. As regards the examples, parametric studies show that slope reliability decreases with an increase in the autocorrelation distance and the cross-correlation coefficient between c and φ. Moreover, the effect of the vertical autocorrelation distance on the slope reliability is much more significant than that of the horizontal autocorrelation distance. The directly searched minimum reliability indices are all smaller than those computed with the deterministic critical slip surface. The slope reliability indices are affected by the number of slices, however, if a sufficient number of slices are used to represent the random field, increasing the number of slices does not significantly affect the reliability indices. The AFOSM is quite efficient for slope reliability analysis with spatially variable soil properties and its accuracy is satisfactory compared to the MCS. Although only a two-layered slope is considered in the illustrative example for convenient demonstration and easy understanding, the AFOSM is generally applicable to slopes with multiple soil layers.
引用
收藏
相关论文
共 84 条
[1]  
Al-Naqshabandy MS(2013)Effect of uncertainties of improved soil shear strength on the reliability of embankments J Geotech Geoenviron Eng 139 619-632
[2]  
Larsson S(1955)The use of slip circle in the stability analysis of slopes Geotechnique 5 7-17
[3]  
Bishop AW(2020)Barrier lake bursting and flood routing in the Yarlung Tsangpo Grand Canyon in October 2018 J Hydrol 92 97-109
[4]  
Chen C(2007)Effects of spatial variability of soil properties on slope stability Eng Geol 136 975-984
[5]  
Zhang LM(2010)Probabilistic assessment of slope stability that considers the spatial variability of soil properties J Geotech Geoenviron Eng 126 307-316
[6]  
Xiao T(2000)Factors of safety and reliability in geotechnical engineering J Geotech Geoenviron Eng 40 1-15
[7]  
He J(2002)An overview of soil heterogeneity: quantification and implications on geotechnical field problems Can Geotech J 39 665-683
[8]  
Cho SE(2002)Probabilistic slope stability analysis for practice Can Geotech J 135 1367-1378
[9]  
Cho SE(2009)Influence of spatial variability on slope reliability using 2-D random fields J Geotech Geoenviron Eng 61 198-208
[10]  
Duncan JM(2014)Influence of heterogeneity on 3D slope reliability and failure consequence Comput Geotech 14 491-498