Critical embedment depth of a rigid retaining wall against overturning in unsaturated soils considering intermediate principal stress and strength nonlinearity

被引:0
作者
Chang-guang Zhang
Xin-dong Chen
Wen Fan
机构
[1] Chang’an University,School of Civil Engineering
[2] Chang’an University,School of Highway
[3] Chang’an University,School of Geological Engineering and Geomatics
来源
Journal of Central South University | 2016年 / 23卷
关键词
unsaturated soils; retaining walls; overturning stability; critical embedment depth; intermediate principal stress; strength nonlinearity;
D O I
暂无
中图分类号
学科分类号
摘要
The overturning stability is vital for the retaining wall design of foundation pits, where the surrounding soils are usually unsaturated due to water draining. Moreover, the intermediate principal stress does affect the unsaturated soil strength; meanwhile, the relationship between the unsaturated soil strength and matric suction is nonlinear. This work is to present closed-form equations of critical embedment depth for a rigid retaining wall against overturning by means of moment equilibrium. Matric suction is considered to be distributed uniformly and linearly with depth. The unified shear strength formulation for unsaturated soils under the plane strain condition is adopted to characterize the intermediate principal stress effect, and strength nonlinearity is described by a hyperbolic model of suction angle. The result obtained is orderly series solutions rather than one specific answer; thus, it has wide theoretical significance and good applicability. The validity of this present work is demonstrated by comparing it with a lower bound solution. The traditional overturning designs for rigid retaining walls, in which the saturated soil mechanics neglecting matric suction or the unsaturated soil mechanics based on the Mohr-Coulomb criterion are employed, are special cases of the proposed result. Parametric studies about the intermediate principal stress, matric suction and its distributions along with two strength nonlinearity methods on a new defined critical buried coefficient are discussed.
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页码:944 / 954
页数:10
相关论文
共 45 条
[1]  
Yu M-hong(2002)Advance in strength theories of materials under the complex stress state in the 20th Century [J] Applied Mechanics Reviews 55 169-218
[2]  
Macari E J(2001)Mechanical behavior of an unsaturated soil under multi-axial stress states [J] Geotechnical Testing Journal 24 14-22
[3]  
Hoyos L R(2002)Stress-strain behaviour of unsaturated soil in true triaxial tests [J] Canadian Geotechnical Journal 39 608-619
[4]  
Matsuoka H(2012)Refined true triaxial apparatus for testing unsaturated soils under suction-controlled stress paths [J] International Journal of Geomechanics 12 281-291
[5]  
Sun D-a(1978)The shear strength of unsaturated soils [J] Canadian Geotechnical Journal 15 313-321
[6]  
Kogane A(1986)The shear strength of partly saturated soils [J] Geotechnique 36 453-456
[7]  
Fukuzawa N(2002)Predicting the shear strength envelope of unsaturated soils [J] Geotechnical Testing Journal 25 215-220
[8]  
Ichihara W(2008)Shear strength and shear-induced volume change behavior of unsaturated soils from a triaxial test program [J] Journal of Geotechnical and Geoenvironmental Engineering 134 1619-1632
[9]  
Hoyos L R(2011)Shear strength criteria for unsaturated soils [J] Geotechnical and Geological Engineering 29 145-159
[10]  
Perez-Ruiz D D(2014)Modeling the unsaturated soil zone in slope stability analysis [J] Canadian Geotechnical Journal 51 1384-1398