Modelling undrained behaviour of sand with fines and fabric anisotropy

被引:16
作者
Rahman M.M. [1 ]
Dafalias Y.F. [2 ,3 ,4 ]
机构
[1] UniSA STEM (Science, Technology, Engineering and Mathematics), University of South Australia, Mawson Lakes, 5095, SA
[2] Department of Civil and Environmental Engineering, University of California, Davis, 95616, CA
[3] Department of Mechanics, National Technical University of Athens, Athens
[4] Institute of Thermomechanics, Czech Academy of Sciences, Prague
基金
欧洲研究理事会;
关键词
Constitutive model; Critical state; Dilatancy state parameter; Fabric anisotropy; Fines; Liquefaction; Plasticity; Sand; State parameter;
D O I
10.1007/s11440-021-01410-7
中图分类号
学科分类号
摘要
Fabric anisotropy and fines content (fc) in sands modify significantly their mechanical behaviour, particularly as related to static liquefaction under undrained conditions. The fabric anisotropy aspect, expressed by means of an evolving fabric tensor F, has been addressed in the recently developed Anisotropic Critical State Theory (ACST) that enhances the two critical state conditions on stress ratio (η) and void ratio (e) of the classical Critical State Theory by an additional condition on the critical state value of F in relation to loading direction; based on this concept it introduces the dependence of dilatancy on fabric anisotropy. Various models have been successfully developed within this framework for clean sands. The fc aspect has been addressed within the Equivalent Granular State Theory (EGST) that substitutes a properly defined equivalent granular void ratio (e*) for e in any model for clean sand in order to obtain the response of sand with fines without any other change of the model structure and constants. Along these lines, a constitutive model is constructed in this work in order to address the effect of both F and fc simultaneously, by a combination of these two powerful propositions. The idea is very simple: one takes a constitutive model developed within ACST for clean sands, hence it accounts for fabric anisotropy, and substitutes the e* for e, as well as the derivative quantities of such substitution, hence it accounts for fc. The result yields a model that can simulate data on the undrained response for a range of fc, with emphasis on static liquefaction. It is shown that the inclusion of fabric anisotropy improves previous similar simulations made within the EGST but without the framework of ACST. © 2021, The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.
引用
收藏
页码:2305 / 2324
页数:19
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