Modelling the cyclic ratcheting of sands through memory-enhanced bounding surface plasticity

Liu H.Y.; Abell, J. A.; Diambra A.; Pisanò F.

Abstract

The modelling and simulation of cyclic sand ratcheting is tackled by means of a plasticity model formulated within the well-known critical state, bounding surface SANISAND framework. For this purpose, a third locus - termed the 'memory surface' - is cast into the constitutive formulation, so as to phenomenologically capture micro-mechanical, fabric-related processes directly relevant to the cyclic response. The predictive capability of the model under numerous loading cycles ('high-cyclic' loading) is explored with focus on drained loading conditions, and validated against experimental test results from the literature - including triaxial, simple shear and cyclic loading by oedometer test. The model proves capable of reproducing the transition from ratcheting to shakedown response, in combination with a single set of soil parameters for different initial, boundary and loading conditions. This work contributes to the analysis of soil-structure interaction under high-cyclic loading events, such as those induced by environmental and/or traffic loads.

Más información

Título según WOS: Modelling the cyclic ratcheting of sands through memory-enhanced bounding surface plasticity
Título según SCOPUS: Modelling the cyclic ratcheting of sands through memory-enhanced bounding surface plasticity
Título de la Revista: GEOLOGY
Volumen: 69
Número: 9
Editorial: GSA
Fecha de publicación: 2019
Página de inicio: 783
Página final: 800
Idioma: English
DOI:

10.1680/jgeot.17.P.307

Notas: ISI, SCOPUS