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TRIP Steels: A Multiscale Computational Simulation and Experimental Study of Heat Treatment and Mechanical Behavior

A multiscale investigation of the microstructure and the mechanical behavior of TRIP steels is presented. A multi-phase field model is employed to predict the microstructure of a low-alloy TRIP700 steel during a two-stage heat treatment. The resulting stability of retained austenite is examined thro...

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Autores principales: Papadioti, Ioanna, Bellas, Ilias, Tzini, Maria-Ioanna T., Christodoulou, Peter I., Aravas, Nikolaos
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7014159/
https://www.ncbi.nlm.nih.gov/pubmed/31963625
http://dx.doi.org/10.3390/ma13020458
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author Papadioti, Ioanna
Bellas, Ilias
Tzini, Maria-Ioanna T.
Christodoulou, Peter I.
Aravas, Nikolaos
author_facet Papadioti, Ioanna
Bellas, Ilias
Tzini, Maria-Ioanna T.
Christodoulou, Peter I.
Aravas, Nikolaos
author_sort Papadioti, Ioanna
collection PubMed
description A multiscale investigation of the microstructure and the mechanical behavior of TRIP steels is presented. A multi-phase field model is employed to predict the microstructure of a low-alloy TRIP700 steel during a two-stage heat treatment. The resulting stability of retained austenite is examined through the [Formula: see text] temperature. The phase field results are experimentally validated and implemented into a model for the kinetics of retained austenite during strain-induced transformation. The kinetics model is calibrated by using experimental data for the evolution of the martensite volume fraction in uniaxial tension. The transformation kinetics model is used together with homogenization methods for non-linear composites to develop a constitutive model for the mechanical behavior of the TRIP steel. A methodology for the numerical integration of the constitutive equations is developed and the model is implemented in a general-purpose finite element program (ABAQUS). Necking of a bar in uniaxial tension is simulated and “forming limit diagrams” (FLDs) for sheets made of TRIP steels are calculated. The models developed provide an integrated simulation toolkit for the computer-assisted design of TRIP steels and can be used to translate mechanical property requirements into optimised microstructural characteristics and to identify the appropriate processing routes.
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spelling pubmed-70141592020-03-09 TRIP Steels: A Multiscale Computational Simulation and Experimental Study of Heat Treatment and Mechanical Behavior Papadioti, Ioanna Bellas, Ilias Tzini, Maria-Ioanna T. Christodoulou, Peter I. Aravas, Nikolaos Materials (Basel) Article A multiscale investigation of the microstructure and the mechanical behavior of TRIP steels is presented. A multi-phase field model is employed to predict the microstructure of a low-alloy TRIP700 steel during a two-stage heat treatment. The resulting stability of retained austenite is examined through the [Formula: see text] temperature. The phase field results are experimentally validated and implemented into a model for the kinetics of retained austenite during strain-induced transformation. The kinetics model is calibrated by using experimental data for the evolution of the martensite volume fraction in uniaxial tension. The transformation kinetics model is used together with homogenization methods for non-linear composites to develop a constitutive model for the mechanical behavior of the TRIP steel. A methodology for the numerical integration of the constitutive equations is developed and the model is implemented in a general-purpose finite element program (ABAQUS). Necking of a bar in uniaxial tension is simulated and “forming limit diagrams” (FLDs) for sheets made of TRIP steels are calculated. The models developed provide an integrated simulation toolkit for the computer-assisted design of TRIP steels and can be used to translate mechanical property requirements into optimised microstructural characteristics and to identify the appropriate processing routes. MDPI 2020-01-18 /pmc/articles/PMC7014159/ /pubmed/31963625 http://dx.doi.org/10.3390/ma13020458 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Papadioti, Ioanna
Bellas, Ilias
Tzini, Maria-Ioanna T.
Christodoulou, Peter I.
Aravas, Nikolaos
TRIP Steels: A Multiscale Computational Simulation and Experimental Study of Heat Treatment and Mechanical Behavior
title TRIP Steels: A Multiscale Computational Simulation and Experimental Study of Heat Treatment and Mechanical Behavior
title_full TRIP Steels: A Multiscale Computational Simulation and Experimental Study of Heat Treatment and Mechanical Behavior
title_fullStr TRIP Steels: A Multiscale Computational Simulation and Experimental Study of Heat Treatment and Mechanical Behavior
title_full_unstemmed TRIP Steels: A Multiscale Computational Simulation and Experimental Study of Heat Treatment and Mechanical Behavior
title_short TRIP Steels: A Multiscale Computational Simulation and Experimental Study of Heat Treatment and Mechanical Behavior
title_sort trip steels: a multiscale computational simulation and experimental study of heat treatment and mechanical behavior
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7014159/
https://www.ncbi.nlm.nih.gov/pubmed/31963625
http://dx.doi.org/10.3390/ma13020458
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