An isotach elastoplastic constitutive model for natural soft clays

被引:34
|
作者
Yang, Chao [1 ]
Carter, John P. [1 ]
Sheng, Daichao [1 ]
Sloan, Scott W. [1 ]
机构
[1] Univ Newcastle, Ctr Excellence Geotech Sci & Engn, Callaghan, NSW 2308, Australia
基金
澳大利亚研究理事会;
关键词
Elastoplasticity; Strain rate; Time; Plastic anisotropy; Cementation; Constitutive relations; TIME-DEPENDENT BEHAVIOR; STRESS-STRAIN BEHAVIOR; LONG-TERM CONSOLIDATION; PLASTIC ANISOTROPY; CREEP-BEHAVIOR; SOILS; COMPRESSIBILITY; SANICLAY;
D O I
10.1016/j.compgeo.2016.04.011
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
The time and strain rate dependency observed in natural soft clays is formulated within the framework of conventional elastoplasticity. Creep of soft clays is essentially like the response of an overdamped oscillatory system, i.e., the strain rate decays in an exponential manner. A characteristic strain rate and time relationship is presented based on data from creep tests on a large number of different soft clays. The evolutionary change of strain rate is found to affect the mechanical response of soft clays in an isotach manner. Taking strain rate as another stress-like variable, a loading isotach (LI) yield curve is proposed, which describes the combined hardening mechanisms of loading and variation of strain rate. Incorporation of this LI yield curve into critical state soil mechanics results in an isotach elastoplastic (IEP) model in triaxial stress strain strain rate space, which has been dubbed 'Hunter Clay'. The effects of fabric anisotropy and inter-particle cementation, which are typical features of natural soft clays, are also introduced to produce an advanced hierarchical constitutive model for soft clay. Qualitative predictions are first described and compared with the characteristic behaviour of natural soft clays. Experimental validations using test data for two soft clays are then carried out, and comparisons of the model predictions and experimental data demonstrate the capability of the model in reproducing realistic behaviour of natural soft clays. This work confirms that the complex mechanical behaviour of natural soft clays can be reproduced satisfactorily within the general framework of classical plasticity theory. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:134 / 155
页数:22
相关论文
共 50 条
  • [21] Time integration of a constitutive law for soft clays
    Stolle, DFE
    Vermeer, PA
    Bonnier, PG
    COMMUNICATIONS IN NUMERICAL METHODS IN ENGINEERING, 1999, 15 (08): : 603 - 609
  • [22] Constitutive model for overconsolidated clays
    YangPing Yao
    Wei Hou
    AnNan Zhou
    Science in China Series E: Technological Sciences, 2008, 51
  • [23] Constitutive model for overconsolidated clays
    YAO YangPing
    Science in China(Series E:Technological Sciences), 2008, (02) : 179 - 191
  • [24] Prediction of extension test results of soft cemented clays with a simple constitutive model
    Murthy, BRS
    Vatsala, A
    Sitharam, TG
    Prasad, KN
    COMPUTER METHODS AND ADVANCES IN GEOMECHANICS, VOL 2, 1997, : 947 - 952
  • [25] A Constitutive Model for Soft Clays Incorporating Elastic and Plastic Cross-Anisotropy
    Castro, Jorge
    Sivasithamparam, Nallathamby
    MATERIALS, 2017, 10 (06):
  • [26] A simple creep constitutive model for soft clays based on volumetric strain characteristics
    Chen, G.
    Zhu, J. G.
    Chen, Z.
    Guo, W. L.
    GEOMECHANICS AND ENGINEERING, 2022, 29 (06) : 615 - 626
  • [27] Constitutive model for overconsolidated clays
    YangPing, Yao
    Wei, Hou
    Annan, Zhou
    SCIENCE IN CHINA SERIES E-TECHNOLOGICAL SCIENCES, 2008, 51 (02): : 179 - 191
  • [28] A constitutive model for structured clays
    Baudet, B
    Stallebrass, S
    GEOTECHNIQUE, 2004, 54 (04): : 269 - 278
  • [29] Application of a thermo-elastoplastic constitutive model for numerical modeling of thermal triaxial tests on saturated clays
    Ashrafi, Mohammad Sadegh
    Hamidi, Amir
    INNOVATIVE INFRASTRUCTURE SOLUTIONS, 2020, 5 (03)
  • [30] A hypoplastic constitutive model for clays
    Masín, D
    INTERNATIONAL JOURNAL FOR NUMERICAL AND ANALYTICAL METHODS IN GEOMECHANICS, 2005, 29 (04) : 311 - 336