UNIFIED 3D CRITICAL-STATE BOUNDING-SURFACE PLASTICITY MODEL FOR SOILS INCORPORATING CONTINUOUS PLASTIC LOADING UNDER CYCLIC PATHS .1. CONSTITUTIVE RELATIONS

被引:25
作者
CROUCH, RS
WOLF, JP
机构
[1] Institute of Hydraulics and Energy, Department of Civil Engineering, Swiss Federal Institute of Technology, Lausanne, CH-1015, Lausanne
关键词
D O I
10.1002/nag.1610181102
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
The unified three-dimensional (3D) critical state bounding-surface plasticity model gUTS enables clays, silts and sands to be treated within a single framework. Furthermore, loose and dense states of a particular soil subjected to a wide range of confinements are viewed as a single material defined by the same set of constants. The model is able to handle both monotonic and complex cyclic paths including those involving a rotation of the principal stress directions. The model incorporates the following features: combined use of radial and deviatoric mapping rules and the use of an apparent normal consolidation line for sands; use of a non-associated flow rule where the ratio of the rates of volumetric plastic strain to deviatoric plastic strain is a function only of the ratio of deviatoric to mean effective stresses and the Lode angle; adoption of a bi-linear critical state line projected onto the plane of the void ratio versus logarithm of mean effective stress; inclusion of a sub-elliptic, or super-elliptic, segment in the plastic dilatancy surface for stress ratios less than critical; use of elliptic segments in the deviatoric planes; movement of the projection centre in the deviatoric mapping region and incorporation of a plastic stiffening effect for cyclic paths which repeatedly load in the same deviatoric direction.
引用
收藏
页码:735 / 758
页数:24
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