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Tytuł pozycji:

A Parallel Coupled Lattice Boltzmann-Volume of Fluid Framework for Modeling Porous Media Evolution

Tytuł:
A Parallel Coupled Lattice Boltzmann-Volume of Fluid Framework for Modeling Porous Media Evolution
Autorzy:
Hussein Alihussein
Martin Geier
Manfred Krafczyk
Temat:
lattice Boltzmann method
volume of fluid
dissolution
hydrated cement paste microstructures
Technology
Electrical engineering. Electronics. Nuclear engineering
TK1-9971
Engineering (General). Civil engineering (General)
TA1-2040
Microscopy
QH201-278.5
Descriptive and experimental mechanics
QC120-168.85
Źródło:
Materials, Vol 14, Iss 10, p 2510 (2021)
Wydawca:
MDPI AG, 2021.
Rok publikacji:
2021
Kolekcja:
LCC:Technology
LCC:Electrical engineering. Electronics. Nuclear engineering
LCC:Engineering (General). Civil engineering (General)
LCC:Microscopy
LCC:Descriptive and experimental mechanics
Typ dokumentu:
article
Opis pliku:
electronic resource
Język:
English
ISSN:
1996-1944
Relacje:
https://www.mdpi.com/1996-1944/14/10/2510; https://doaj.org/toc/1996-1944
DOI:
10.3390/ma14102510
Dostęp URL:
https://doaj.org/article/5829e43472b8471685468f6fe26c3c12  Link otwiera się w nowym oknie
Numer akcesji:
edsdoj.5829e43472b8471685468f6fe26c3c12
Czasopismo naukowe
In this paper, we present a framework for the modeling and simulation of a subset of physical/chemical processes occurring on different spatial and temporal scales in porous materials. In order to improve our understanding of such processes on multiple spatio-temporal scales, small-scale simulations of transport and reaction are of vital importance. Due to the geometric complexity of the pore space and the need to consider a representative elementary volume, such simulations require substantial numerical resolutions, leading to potentially huge computation times. An efficient parallelization of such numerical methods is thus vital to obtain results in acceptable wall-clock time. The goal of this paper was to improve available approaches based on lattice Boltzmann methods (LBMs) to reliably and accurately predict the combined effects of mass transport and reaction in porous media. To this end, we relied on the factorized central moment LBM as a second-order accurate approach for modeling transport. In order to include morphological changes due to the dissolution of the solid phase, the volume of fluid method with the piece-wise linear interface construction algorithm was employed. These developments are being integrated into the LBM research code VirtualFluids. After the validation of the analytic test cases, we present an application of diffusion-controlled dissolution for a pore space obtained from computer tomography (CT) scans.

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