Analytical expressions for determining the stability of cohesionless soil slope under generalized seismic conditions

被引:0
作者
SAHOO Pragyan Pradatta [1 ]
SHUKLA Sanjay Kumar [1 ,2 ,3 ]
MOHYEDDIN Alireza [1 ]
机构
[1] Discipline of Civil and Environmental Engineering,School of Engineering,Edith Cowan University
[2] Fiji National University
[3] Chitkara University
关键词
Factor of safety; Horizontal and vertical seismic coefficients; Soil slopes; Yield acceleration; Sliding block displacement; Seismic slope stability;
D O I
暂无
中图分类号
TU43 [土力学];
学科分类号
0801 ; 080104 ; 0815 ;
摘要
In recent major earthquakes, the researchers have found the need for consideration of vertical seismic acceleration for the stability analysis of the man-made and natural slopes. However, in most past studies, the performance of slopes has been assessed by accounting only the horizontal seismic component of the ground motion, without giving due weightage to the effect of vertical component. In the present study, analytical expressions are derived to determine the factor of safety, yield seismic coefficient and consequently the seismic displacement of cohesionless soil slope under combined horizontal and vertical components of the ground motion. The derivation uses the Newmark's sliding block approach, in which the soil slope with a planar failure surface within the framework of conventional pseudo-static analysis is assumed to follow the Mohr-Coulomb failure criterion. The effects of vertical seismic coefficient on the stability of cohesionless slope have been studied through a set of graphical presentations for a specific range of soil parameters. It is observed that overlooking the effect of the vertical component of the ground motion on factor of safety and the displacement while designing the slope may be detrimental, resulting in the slope failure. The general expressions presented in this paper may be highly useful in the field of earthquake geotechnical engineering practice for designing the cohesionless soil slopes under combined horizontal and vertical seismic loads.
引用
收藏
页码:1559 / 1571
页数:13
相关论文
共 19 条
[1]  
Analysis of Earthquake-Triggered Failure Mechanisms of Slopes and Sliding Surfaces[J]. Arshad Hussain.Journal of Mountain Science. 2010(03)
[2]  
Continuum and Discrete Element Coupling Approach to Analyzing Seismic Responses of a Slope Covered by Deposits[J]. ZHANG Hua* and LU Yang School of Civil Engineering,Southwest Jiaotong University,Chengdu 610031,P.R.China.Journal of Mountain Science. 2010(03)
[3]   坡体地震稳定性的动态分析 [J].
黄建梁 ;
王威中 ;
薛宏交 .
地震工程与工程振动, 1997, (04) :114-123
[4]  
Consistent application of horizontal and vertical earthquake components in analysis of a block sliding down an inclined plane[J] . Sujan Malla.Soil Dynamics and Earthquake Engineering . 2017
[5]  
Effects of vertical seismic force on initiation of the Daguangbao landslide induced by the 2008 Wenchuan earthquake[J] . Yingbin Zhang,Jue Zhang,Guangqi Chen,Lu Zheng,Yange Li.Soil Dynamics and Earthquake Engineering . 2015
[6]  
Methods for assessing the stability of slopes during earthquakes—A retrospective[J] . Randall W. Jibson.Engineering Geology . 2010 (1)
[7]   Effects of Near-Fault Ground Shaking on Sliding Systems [J].
Gazetas, G. ;
Garini, E. ;
Anastasopoulos, I. ;
Georgarakos, T. .
JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2009, 135 (12) :1906-1921
[8]  
Equivalent seismic coefficient in geocell retention systems[J] . Dov Leshchinsky,Hoe I. Ling,Jui-Pin Wang,Arik Rosen,Yoshiyuki Mohri.Geotextiles and Geomembranes . 2008 (1)
[9]   Empirical predictive models for earthquake-induced sliding displacements of slopes [J].
Saygili, Gokhan ;
Rathje, Ellen M. .
JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2008, 134 (06) :790-803
[10]  
Regression models for estimating coseismic landslide displacement[J] . Randall W. Jibson.Engineering Geology . 2007 (2)