Micro-macroscopic coupling in the cellular automaton model of solidification

A cellular automaton (CA) model to predict the formation of grain macrostructure during solidification has been implemented and the coupling between the microscopic and the macroscopic submodels has been investigated. The microscopic submodel simulates the nucleation and growth of grains, whereas th...

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Main Authors: Vinicius Bertolazzi Biscuola, Marcelo Aquino Martorano
Format: Article
Language:English
Published: Associação Brasileira de Metalurgia e Materiais (ABM); Associação Brasileira de Cerâmica (ABC); Associação Brasileira de Polímeros (ABPol) 2010-12-01
Series:Materials Research
Subjects:
Online Access:http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392010000400010
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spelling doaj-fce8da081a154951b483eca3cc2f948b2020-11-24T23:33:16ZengAssociação Brasileira de Metalurgia e Materiais (ABM); Associação Brasileira de Cerâmica (ABC); Associação Brasileira de Polímeros (ABPol)Materials Research1516-14392010-12-0113447948410.1590/S1516-14392010000400010Micro-macroscopic coupling in the cellular automaton model of solidificationVinicius Bertolazzi BiscuolaMarcelo Aquino MartoranoA cellular automaton (CA) model to predict the formation of grain macrostructure during solidification has been implemented and the coupling between the microscopic and the macroscopic submodels has been investigated. The microscopic submodel simulates the nucleation and growth of grains, whereas the macroscopic solves the heat conduction equation. The directional solidification of an Al-7 wt. (%) Si alloy was simulated, enabling the calculation of the temperature and solid fraction profiles. The calculated temperature was used to obtain the solid fraction profile by an application of Scheil equation. This solid fraction disagrees with that calculated in the micro-macro coupling of the model, although this coupling is completely based on Scheil equation. Careful examination of the discrepancies shows that it is a result of the undercoolings for nucleation and growth of grains and also of the interpolations of enthalpy change and temperature from the finite volume mesh to the CA cell mesh.http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392010000400010mathematical modelingcellular automatonsolidificationcoupling
collection DOAJ
language English
format Article
sources DOAJ
author Vinicius Bertolazzi Biscuola
Marcelo Aquino Martorano
spellingShingle Vinicius Bertolazzi Biscuola
Marcelo Aquino Martorano
Micro-macroscopic coupling in the cellular automaton model of solidification
Materials Research
mathematical modeling
cellular automaton
solidification
coupling
author_facet Vinicius Bertolazzi Biscuola
Marcelo Aquino Martorano
author_sort Vinicius Bertolazzi Biscuola
title Micro-macroscopic coupling in the cellular automaton model of solidification
title_short Micro-macroscopic coupling in the cellular automaton model of solidification
title_full Micro-macroscopic coupling in the cellular automaton model of solidification
title_fullStr Micro-macroscopic coupling in the cellular automaton model of solidification
title_full_unstemmed Micro-macroscopic coupling in the cellular automaton model of solidification
title_sort micro-macroscopic coupling in the cellular automaton model of solidification
publisher Associação Brasileira de Metalurgia e Materiais (ABM); Associação Brasileira de Cerâmica (ABC); Associação Brasileira de Polímeros (ABPol)
series Materials Research
issn 1516-1439
publishDate 2010-12-01
description A cellular automaton (CA) model to predict the formation of grain macrostructure during solidification has been implemented and the coupling between the microscopic and the macroscopic submodels has been investigated. The microscopic submodel simulates the nucleation and growth of grains, whereas the macroscopic solves the heat conduction equation. The directional solidification of an Al-7 wt. (%) Si alloy was simulated, enabling the calculation of the temperature and solid fraction profiles. The calculated temperature was used to obtain the solid fraction profile by an application of Scheil equation. This solid fraction disagrees with that calculated in the micro-macro coupling of the model, although this coupling is completely based on Scheil equation. Careful examination of the discrepancies shows that it is a result of the undercoolings for nucleation and growth of grains and also of the interpolations of enthalpy change and temperature from the finite volume mesh to the CA cell mesh.
topic mathematical modeling
cellular automaton
solidification
coupling
url http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392010000400010
work_keys_str_mv AT viniciusbertolazzibiscuola micromacroscopiccouplinginthecellularautomatonmodelofsolidification
AT marceloaquinomartorano micromacroscopiccouplinginthecellularautomatonmodelofsolidification
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