A new constitutive model for sand is formulated by incorporating two new constitutive ingredients into the platform of a reference critical state compatible bounding surface plasticity model with kinematic hardening, in order to address primarily the undrained cyclic response. The first ingredient is a memory surface for more precisely controlling stiffness affecting the plastic deviatoric and volumetric strains and ensuing excess pore pressure development in the pre-liquefaction stage. The second ingredient is the concept of a semifluidised state and the related formulation of stiffness and dilatancy degradation, aiming at modelling large shear strain development in the post-liquefaction stage. In parallel, a modified flow rule aimed at providing a better description of non-proportional monotonic and cyclic loading is introduced. With a single set of constants, for which a detailed calibration procedure is provided, this new model successfully simulates undrained cyclic torsional and triaxial tests with different cyclic stress ratios, separately for the pre- and post-liquefaction stages, as well as liquefaction strength curves based on and shear strain criteria for initial liquefaction. The successful reproduction of the sand element response under undrained cyclic shearing contributes to future applications in realistic and thorough seismic site response analysis.
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March 2022
Research Article|
November 05 2020
SANISAND-MSf: a sand plasticity model with memory surface and semifluidised state
Ming Yang
;
Ming Yang
*Department of Civil Engineering, University of British Columbia, Vancouver, BC, Canada.
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Mahdi Taiebat
;
Mahdi Taiebat
†Department of Civil Engineering, University of British Columbia, Vancouver, BC, Canada.
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Yannis F. Dafalias
Yannis F. Dafalias
‡Department of Civil and Environmental Engineering, University of California, Davis, CA, USA; Department of Mechanics, Faculty of Applied Mathematical and Physical Sciences, National Technical University of Athens, Athens, Greece; Institute of Thermomechanics, Czech Academy of Sciences, Prague, Czech Republic.
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Publisher: Emerald Publishing
Received:
December 03 2019
Accepted:
September 25 2020
Online ISSN: 1751-7656
Print ISSN: 0016-8505
© 2020 Thomas Telford Ltd
2020
Geotechnique (2022) 72 (3): 227–246.
Article history
Received:
December 03 2019
Accepted:
September 25 2020
Citation
Yang M, Taiebat M, Dafalias YF (2022), "SANISAND-MSf: a sand plasticity model with memory surface and semifluidised state". Geotechnique, Vol. 72 No. 3 pp. 227–246, doi: https://doi.org/10.1680/jgeot.19.P.363
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