Quantitative isothermal phase-field simulations of peritectic phase transformation in FeMn system
The present investigation shows quantitative results for the peritectic phase transformation of FeMn alloys utilizing phase-field simulations in 1-D and 2-D. The phase-field method used was based on an adaptation of the proposal of Folch and Plapp [Phys. Rev. E, 2005, 72, 011602] for the eutectic r...
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doaj-79f7b2b5e0894c9c9d89bf11ff7c3cd02020-11-25T03:32:26ZengElsevierJournal of Materials Research and Technology2238-78542016-01-0151849110.1016/j.jmrt.2015.11.007Quantitative isothermal phase-field simulations of peritectic phase transformation in FeMn systemCelso Luiz Moraes Alves0Joao Luiz Lopes Rezende1Dieter Senk2Julia Kundin3Department of Ferrous Metallurgy (IEHK), RWTH Aachen University, Aachen, GermanyDepartment of Ferrous Metallurgy (IEHK), RWTH Aachen University, Aachen, GermanyDepartment of Ferrous Metallurgy (IEHK), RWTH Aachen University, Aachen, GermanyMaterials and Process Simulations (MPS), Bayreuth University, Bayreuth, GermanyThe present investigation shows quantitative results for the peritectic phase transformation of FeMn alloys utilizing phase-field simulations in 1-D and 2-D. The phase-field method used was based on an adaptation of the proposal of Folch and Plapp [Phys. Rev. E, 2005, 72, 011602] for the eutectic reaction. The two stages of peritectic phase transformation, the peritectic reaction and the peritectic transformation, were investigated numerically utilizing this phase-field approach. The evolution of the phases was quantitatively analyzed during the peritectic transformation and the fractions of the phases at the end of the solidification were compared with the thermodynamic equilibrium, defined by the phase diagram, for the case of 1-D simulation with peritectic concentration. An assessment of the behavior of the concentration gradient in the γ-phase (the peritectic phase) through time was also carried out and a mathematical function which describes the γ-phase thickness evolution was defined. Finally, 2-D simulations were performed to clearly identify the two stages of the peritectic phase transformation. The obtained results show two main facts: (1) the numerical model is able to simulate quantitatively this phase transformation; and, (2) this numerical tool can be utilized for investigating quantitatively some aspects (normally determined indirectly) that are difficult to be determined by direct measurements in experimental works.http://www.sciencedirect.com/science/article/pii/S2238785415001180SolidificationPeritectic phase transformationSimulationPhase-field method |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Celso Luiz Moraes Alves Joao Luiz Lopes Rezende Dieter Senk Julia Kundin |
spellingShingle |
Celso Luiz Moraes Alves Joao Luiz Lopes Rezende Dieter Senk Julia Kundin Quantitative isothermal phase-field simulations of peritectic phase transformation in FeMn system Journal of Materials Research and Technology Solidification Peritectic phase transformation Simulation Phase-field method |
author_facet |
Celso Luiz Moraes Alves Joao Luiz Lopes Rezende Dieter Senk Julia Kundin |
author_sort |
Celso Luiz Moraes Alves |
title |
Quantitative isothermal phase-field simulations of peritectic phase transformation in FeMn system |
title_short |
Quantitative isothermal phase-field simulations of peritectic phase transformation in FeMn system |
title_full |
Quantitative isothermal phase-field simulations of peritectic phase transformation in FeMn system |
title_fullStr |
Quantitative isothermal phase-field simulations of peritectic phase transformation in FeMn system |
title_full_unstemmed |
Quantitative isothermal phase-field simulations of peritectic phase transformation in FeMn system |
title_sort |
quantitative isothermal phase-field simulations of peritectic phase transformation in femn system |
publisher |
Elsevier |
series |
Journal of Materials Research and Technology |
issn |
2238-7854 |
publishDate |
2016-01-01 |
description |
The present investigation shows quantitative results for the peritectic phase transformation of FeMn alloys utilizing phase-field simulations in 1-D and 2-D. The phase-field method used was based on an adaptation of the proposal of Folch and Plapp [Phys. Rev. E, 2005, 72, 011602] for the eutectic reaction. The two stages of peritectic phase transformation, the peritectic reaction and the peritectic transformation, were investigated numerically utilizing this phase-field approach. The evolution of the phases was quantitatively analyzed during the peritectic transformation and the fractions of the phases at the end of the solidification were compared with the thermodynamic equilibrium, defined by the phase diagram, for the case of 1-D simulation with peritectic concentration. An assessment of the behavior of the concentration gradient in the γ-phase (the peritectic phase) through time was also carried out and a mathematical function which describes the γ-phase thickness evolution was defined. Finally, 2-D simulations were performed to clearly identify the two stages of the peritectic phase transformation. The obtained results show two main facts: (1) the numerical model is able to simulate quantitatively this phase transformation; and, (2) this numerical tool can be utilized for investigating quantitatively some aspects (normally determined indirectly) that are difficult to be determined by direct measurements in experimental works. |
topic |
Solidification Peritectic phase transformation Simulation Phase-field method |
url |
http://www.sciencedirect.com/science/article/pii/S2238785415001180 |
work_keys_str_mv |
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