A Phase-Field Discrete Element Method to study chemo-mechanical coupling in granular materials

Fuente: arXiv
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Main Authors: Sac-Morane, Alexandre, Veveakis, Manolis, Rattez, Hadrien
Format: Preprint
Published: 2023
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author Sac-Morane, Alexandre
Veveakis, Manolis
Rattez, Hadrien
author_facet Sac-Morane, Alexandre
Veveakis, Manolis
Rattez, Hadrien
contents This paper presents an extension of the discrete element method using a phase-field formulation to incorporate grain shape and its evolution. The introduction of a phase variable enables an effective representation of grain geometry and facilitates the application of physical laws, such as chemo-mechanical couplings, for modeling shape changes. These physical laws are solved numerically using the finite element method coupled in a staggered scheme to the discrete element model. The efficacy of the proposed Phase-Field Discrete Element Model (PFDEM) is demonstrated through its ability to accurately capture the real grain shape in a material subjected to dissolution only and compute the stress evolution. It is then applied to model the phenomenon of pressure solution involving dissolution and precipitation in granular materials at the microscale and enables to reproduce the creep response observed experimentally. This framework contributes to the enhanced understanding and simulation of complex behaviors in granular materials and sedimentary rocks for many geological processes like diagenesis or earthquake nucleation.
format Preprint
id arxiv_https___arxiv_org_abs_2310_15718
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle A Phase-Field Discrete Element Method to study chemo-mechanical coupling in granular materials
Sac-Morane, Alexandre
Veveakis, Manolis
Rattez, Hadrien
Materials Science
Geophysics
This paper presents an extension of the discrete element method using a phase-field formulation to incorporate grain shape and its evolution. The introduction of a phase variable enables an effective representation of grain geometry and facilitates the application of physical laws, such as chemo-mechanical couplings, for modeling shape changes. These physical laws are solved numerically using the finite element method coupled in a staggered scheme to the discrete element model. The efficacy of the proposed Phase-Field Discrete Element Model (PFDEM) is demonstrated through its ability to accurately capture the real grain shape in a material subjected to dissolution only and compute the stress evolution. It is then applied to model the phenomenon of pressure solution involving dissolution and precipitation in granular materials at the microscale and enables to reproduce the creep response observed experimentally. This framework contributes to the enhanced understanding and simulation of complex behaviors in granular materials and sedimentary rocks for many geological processes like diagenesis or earthquake nucleation.
title A Phase-Field Discrete Element Method to study chemo-mechanical coupling in granular materials
topic Materials Science
Geophysics
url https://arxiv.org/abs/2310.15718