Exploring chemo-mechanics of granular material using DEM

Particle Size Distribution (PSD) is one of the prime guiding factors of granular media response. Degradation via weathering is a process, which brings about a gradual shift in the PSD. In nature, chemically sensitive material like calcite undergoes chemo-mechanical degradation bringing about variati...

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Main Authors: Viswanath P., Das Arghya
Format: Article
Language:English
Published: EDP Sciences 2021-01-01
Series:EPJ Web of Conferences
Online Access:https://www.epj-conferences.org/articles/epjconf/pdf/2021/03/epjconf_pg2021_14013.pdf
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spelling doaj-45f317b7217f424eb14654135a96c3632021-08-02T22:39:06ZengEDP SciencesEPJ Web of Conferences2100-014X2021-01-012491401310.1051/epjconf/202124914013epjconf_pg2021_14013Exploring chemo-mechanics of granular material using DEMViswanath P.0Das Arghya1Research Scholar, Civil Engineering DepartmentAssistant Professor, Civil Engineering DepartmentParticle Size Distribution (PSD) is one of the prime guiding factors of granular media response. Degradation via weathering is a process, which brings about a gradual shift in the PSD. In nature, chemically sensitive material like calcite undergoes chemo-mechanical degradation bringing about variations in their behaviour. In the present study, an experimental investigation is carried out to get insight into the mechanical response during the coupled chemo-mechanical process. The experiments were carried out at two different rates of dissolutions in a custom made 1D compression mould. From the experiments, it is clear that the higher rate of dissolution reduces the lateral earth pressure more than the lower rate. Discrete Element Method (DEM) analyses the micromechanical process behind the observed response from experiments. The results showed a reduction in lateral stress as soon as the dissolution starts. DEM analysis confirms the competing mechanism between grain size reduction and grain rearrangement as the guiding element for the granular media response.https://www.epj-conferences.org/articles/epjconf/pdf/2021/03/epjconf_pg2021_14013.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Viswanath P.
Das Arghya
spellingShingle Viswanath P.
Das Arghya
Exploring chemo-mechanics of granular material using DEM
EPJ Web of Conferences
author_facet Viswanath P.
Das Arghya
author_sort Viswanath P.
title Exploring chemo-mechanics of granular material using DEM
title_short Exploring chemo-mechanics of granular material using DEM
title_full Exploring chemo-mechanics of granular material using DEM
title_fullStr Exploring chemo-mechanics of granular material using DEM
title_full_unstemmed Exploring chemo-mechanics of granular material using DEM
title_sort exploring chemo-mechanics of granular material using dem
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2021-01-01
description Particle Size Distribution (PSD) is one of the prime guiding factors of granular media response. Degradation via weathering is a process, which brings about a gradual shift in the PSD. In nature, chemically sensitive material like calcite undergoes chemo-mechanical degradation bringing about variations in their behaviour. In the present study, an experimental investigation is carried out to get insight into the mechanical response during the coupled chemo-mechanical process. The experiments were carried out at two different rates of dissolutions in a custom made 1D compression mould. From the experiments, it is clear that the higher rate of dissolution reduces the lateral earth pressure more than the lower rate. Discrete Element Method (DEM) analyses the micromechanical process behind the observed response from experiments. The results showed a reduction in lateral stress as soon as the dissolution starts. DEM analysis confirms the competing mechanism between grain size reduction and grain rearrangement as the guiding element for the granular media response.
url https://www.epj-conferences.org/articles/epjconf/pdf/2021/03/epjconf_pg2021_14013.pdf
work_keys_str_mv AT viswanathp exploringchemomechanicsofgranularmaterialusingdem
AT dasarghya exploringchemomechanicsofgranularmaterialusingdem
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