A Continuum Model for the Effect of Dynamic Recrystallization on the Stress–Strain Response
Austenitic Stainless Steels and High-Strength Low-Alloy (HSLA) steels show significant dynamic recovery and dynamic recrystallization (DRX) during hot forming. In order to design optimal and safe hot-formed products, a good understanding and constitutive description of the material behavior is vital...
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doaj-3385d9c9885e4cd48f5e456ff6715c4b2020-11-24T23:11:58ZengMDPI AGMaterials1996-19442018-05-0111586710.3390/ma11050867ma11050867A Continuum Model for the Effect of Dynamic Recrystallization on the Stress–Strain ResponseH. Kooiker0E. S. Perdahcıoğlu1A. H. van den Boogaard2Philips HealthTech, Amstelplein 2, 1096 BC Amsterdam, The NetherlandsDepartment of Nonlinear Solid Mechanics, University of Twente, Drienerlolaan 5, 7522 NB Enschede, The NetherlandsDepartment of Nonlinear Solid Mechanics, University of Twente, Drienerlolaan 5, 7522 NB Enschede, The NetherlandsAustenitic Stainless Steels and High-Strength Low-Alloy (HSLA) steels show significant dynamic recovery and dynamic recrystallization (DRX) during hot forming. In order to design optimal and safe hot-formed products, a good understanding and constitutive description of the material behavior is vital. A new continuum model is presented and validated on a wide range of deformation conditions including high strain rate deformation. The model is presented in rate form to allow for the prediction of material behavior in transient process conditions. The proposed model is capable of accurately describing the stress–strain behavior of AISI 316LN in hot forming conditions, also the high strain rate DRX-induced softening observed during hot torsion of HSLA is accurately predicted. It is shown that the increase in recrystallization rate at high strain rates observed in experiments can be captured by including the elastic energy due to the dynamic stress in the driving pressure for recrystallization. Furthermore, the predicted resulting grain sizes follow the power-law dependence with steady state stress that is often reported in literature and the evolution during hot deformation shows the expected trend.http://www.mdpi.com/1996-1944/11/5/867dynamic recrystallizationhot formingaustenitic stainless steelhigh-strength low-alloystrain ratedriving pressurecontinuum modelingdynamic stress |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
H. Kooiker E. S. Perdahcıoğlu A. H. van den Boogaard |
spellingShingle |
H. Kooiker E. S. Perdahcıoğlu A. H. van den Boogaard A Continuum Model for the Effect of Dynamic Recrystallization on the Stress–Strain Response Materials dynamic recrystallization hot forming austenitic stainless steel high-strength low-alloy strain rate driving pressure continuum modeling dynamic stress |
author_facet |
H. Kooiker E. S. Perdahcıoğlu A. H. van den Boogaard |
author_sort |
H. Kooiker |
title |
A Continuum Model for the Effect of Dynamic Recrystallization on the Stress–Strain Response |
title_short |
A Continuum Model for the Effect of Dynamic Recrystallization on the Stress–Strain Response |
title_full |
A Continuum Model for the Effect of Dynamic Recrystallization on the Stress–Strain Response |
title_fullStr |
A Continuum Model for the Effect of Dynamic Recrystallization on the Stress–Strain Response |
title_full_unstemmed |
A Continuum Model for the Effect of Dynamic Recrystallization on the Stress–Strain Response |
title_sort |
continuum model for the effect of dynamic recrystallization on the stress–strain response |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2018-05-01 |
description |
Austenitic Stainless Steels and High-Strength Low-Alloy (HSLA) steels show significant dynamic recovery and dynamic recrystallization (DRX) during hot forming. In order to design optimal and safe hot-formed products, a good understanding and constitutive description of the material behavior is vital. A new continuum model is presented and validated on a wide range of deformation conditions including high strain rate deformation. The model is presented in rate form to allow for the prediction of material behavior in transient process conditions. The proposed model is capable of accurately describing the stress–strain behavior of AISI 316LN in hot forming conditions, also the high strain rate DRX-induced softening observed during hot torsion of HSLA is accurately predicted. It is shown that the increase in recrystallization rate at high strain rates observed in experiments can be captured by including the elastic energy due to the dynamic stress in the driving pressure for recrystallization. Furthermore, the predicted resulting grain sizes follow the power-law dependence with steady state stress that is often reported in literature and the evolution during hot deformation shows the expected trend. |
topic |
dynamic recrystallization hot forming austenitic stainless steel high-strength low-alloy strain rate driving pressure continuum modeling dynamic stress |
url |
http://www.mdpi.com/1996-1944/11/5/867 |
work_keys_str_mv |
AT hkooiker acontinuummodelfortheeffectofdynamicrecrystallizationonthestressstrainresponse AT esperdahcıoglu acontinuummodelfortheeffectofdynamicrecrystallizationonthestressstrainresponse AT ahvandenboogaard acontinuummodelfortheeffectofdynamicrecrystallizationonthestressstrainresponse AT hkooiker continuummodelfortheeffectofdynamicrecrystallizationonthestressstrainresponse AT esperdahcıoglu continuummodelfortheeffectofdynamicrecrystallizationonthestressstrainresponse AT ahvandenboogaard continuummodelfortheeffectofdynamicrecrystallizationonthestressstrainresponse |
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1725603115083759616 |