Derivation of Cyclic Stiffness and Strength Degradation Curves of Sands through Discrete Element Modelling

Cyclic degradation in fully saturated sands is a liquefaction phenomenon characterized by the progressive variation of the soil strength and stiffness that occurs when the soil is subjected to cyclic loading in undrained conditions. An evaluation of the relationships between the degradation of the s...

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Main Authors: Fedor Maksimov, Alessandro Tombari
Format: Article
Language:English
Published: MDPI AG 2022-09-01
Series:Modelling
Subjects:
Online Access:https://www.mdpi.com/2673-3951/3/4/26
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author Fedor Maksimov
Alessandro Tombari
author_facet Fedor Maksimov
Alessandro Tombari
author_sort Fedor Maksimov
collection DOAJ
description Cyclic degradation in fully saturated sands is a liquefaction phenomenon characterized by the progressive variation of the soil strength and stiffness that occurs when the soil is subjected to cyclic loading in undrained conditions. An evaluation of the relationships between the degradation of the soil properties and the number of loading cycles is essential for deriving advanced cyclic constitutive soil models. Generally, the calibration of cyclic damage models can be performed through controlled laboratory tests, such as cyclic triaxial testing. However, the undrained response of soils is dependent on several factors, such as the fabric, sample preparation, initial density, initial stress state, and stress path during loading; hence, a large number of tests would be required. On the other hand, the Discrete Element Method offers an interesting approach to simulating the complex behavior of an assembly of particles, which can be used to perform simulations of geotechnical laboratory testing. In this paper, numerical triaxial analyses of sands with different consistencies, loose and medium-dense states, were performed. First, static triaxial testing was performed to characterize the sand properties and validate the results with the literature data. Then, cyclic undrained triaxial testing was performed to investigate the impact of the number of cycles on the cyclic degradation of the soil stiffness and strength. Laws that can be used in damage soil models were derived.
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spelling doaj.art-02a9cb8cf5944b67b8dfc46c3610a7d62023-11-24T16:53:22ZengMDPI AGModelling2673-39512022-09-013440041610.3390/modelling3040026Derivation of Cyclic Stiffness and Strength Degradation Curves of Sands through Discrete Element ModellingFedor Maksimov0Alessandro Tombari1School of Architecture, Technology and Engineering, University of Brighton, Brighton BN2 4GJ, UKSchool of Architecture, Technology and Engineering, University of Brighton, Brighton BN2 4GJ, UKCyclic degradation in fully saturated sands is a liquefaction phenomenon characterized by the progressive variation of the soil strength and stiffness that occurs when the soil is subjected to cyclic loading in undrained conditions. An evaluation of the relationships between the degradation of the soil properties and the number of loading cycles is essential for deriving advanced cyclic constitutive soil models. Generally, the calibration of cyclic damage models can be performed through controlled laboratory tests, such as cyclic triaxial testing. However, the undrained response of soils is dependent on several factors, such as the fabric, sample preparation, initial density, initial stress state, and stress path during loading; hence, a large number of tests would be required. On the other hand, the Discrete Element Method offers an interesting approach to simulating the complex behavior of an assembly of particles, which can be used to perform simulations of geotechnical laboratory testing. In this paper, numerical triaxial analyses of sands with different consistencies, loose and medium-dense states, were performed. First, static triaxial testing was performed to characterize the sand properties and validate the results with the literature data. Then, cyclic undrained triaxial testing was performed to investigate the impact of the number of cycles on the cyclic degradation of the soil stiffness and strength. Laws that can be used in damage soil models were derived.https://www.mdpi.com/2673-3951/3/4/26DEMliquefactioncyclic degradationdamage modelsone-way input
spellingShingle Fedor Maksimov
Alessandro Tombari
Derivation of Cyclic Stiffness and Strength Degradation Curves of Sands through Discrete Element Modelling
Modelling
DEM
liquefaction
cyclic degradation
damage models
one-way input
title Derivation of Cyclic Stiffness and Strength Degradation Curves of Sands through Discrete Element Modelling
title_full Derivation of Cyclic Stiffness and Strength Degradation Curves of Sands through Discrete Element Modelling
title_fullStr Derivation of Cyclic Stiffness and Strength Degradation Curves of Sands through Discrete Element Modelling
title_full_unstemmed Derivation of Cyclic Stiffness and Strength Degradation Curves of Sands through Discrete Element Modelling
title_short Derivation of Cyclic Stiffness and Strength Degradation Curves of Sands through Discrete Element Modelling
title_sort derivation of cyclic stiffness and strength degradation curves of sands through discrete element modelling
topic DEM
liquefaction
cyclic degradation
damage models
one-way input
url https://www.mdpi.com/2673-3951/3/4/26
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