Combined athermal and isothermal martensite to austenite reversion kinetics, experiment and modelling

A novel laser heat treatment setup is presented and used to characterize the reverse transformation of martensite to austenite resulting from highly dynamic laser heat treatments of stainless steel. During laser heat treatments the irradiated spot and its surroundings can experience completely diffe...

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Main Authors: H. Kooiker, E.S. Perdahcıoğlu, A.H. van den Boogaard
Format: Article
Language:English
Published: Elsevier 2020-11-01
Series:Materials & Design
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127520306596
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spelling doaj-f14000658378457cb5dce2e782a04e152020-11-25T04:07:38ZengElsevierMaterials & Design0264-12752020-11-01196109124Combined athermal and isothermal martensite to austenite reversion kinetics, experiment and modellingH. Kooiker0E.S. Perdahcıoğlu1A.H. van den Boogaard2Philips HealthTech, Amstelplein 2, 1096 BC Amsterdam, the Netherlands; University of Twente, Department of Nonlinear Solid Mechanics, Drienerlolaan 5, 7522 NB Enschede, the Netherlands; Corresponding author at: Philips HealthTech, Amstelplein 2, 1096 BC, Amsterdam, the Netherlands.University of Twente, Department of Nonlinear Solid Mechanics, Drienerlolaan 5, 7522 NB Enschede, the NetherlandsUniversity of Twente, Department of Nonlinear Solid Mechanics, Drienerlolaan 5, 7522 NB Enschede, the NetherlandsA novel laser heat treatment setup is presented and used to characterize the reverse transformation of martensite to austenite resulting from highly dynamic laser heat treatments of stainless steel. During laser heat treatments the irradiated spot and its surroundings can experience completely different thermal loads, yet both experience reverse transformation. The experiments are conducted such to reflect these diverse conditions. Next to experiments, a new kinetic model is reported which combines both athermal and isothermal transformation mechanisms to cope with the diversity in conditions in a unified framework. The experimental results show that reverse transformation can proceed extremely fast, yet saturates at intermediate temperatures. Additionally, it is shown that there is good agreement between experiment and model and it is essential to embed both the athermal and isothermal transformation mechanism in the model for achieving this performance. Initial steps towards model validation are performed showing good predictability of a non-isothermal heat treatment with conditions realistic and relevant for industrial laser heat treatments.http://www.sciencedirect.com/science/article/pii/S0264127520306596Phase reversalAthermal transformationThermally activated transformationLaser heat treatmentAustenitic stainless steelKinetic modelling
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
Combined athermal and isothermal martensite to austenite reversion kinetics, experiment and modelling
Materials & Design
Phase reversal
Athermal transformation
Thermally activated transformation
Laser heat treatment
Austenitic stainless steel
Kinetic modelling
author_facet H. Kooiker
E.S. Perdahcıoğlu
A.H. van den Boogaard
author_sort H. Kooiker
title Combined athermal and isothermal martensite to austenite reversion kinetics, experiment and modelling
title_short Combined athermal and isothermal martensite to austenite reversion kinetics, experiment and modelling
title_full Combined athermal and isothermal martensite to austenite reversion kinetics, experiment and modelling
title_fullStr Combined athermal and isothermal martensite to austenite reversion kinetics, experiment and modelling
title_full_unstemmed Combined athermal and isothermal martensite to austenite reversion kinetics, experiment and modelling
title_sort combined athermal and isothermal martensite to austenite reversion kinetics, experiment and modelling
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2020-11-01
description A novel laser heat treatment setup is presented and used to characterize the reverse transformation of martensite to austenite resulting from highly dynamic laser heat treatments of stainless steel. During laser heat treatments the irradiated spot and its surroundings can experience completely different thermal loads, yet both experience reverse transformation. The experiments are conducted such to reflect these diverse conditions. Next to experiments, a new kinetic model is reported which combines both athermal and isothermal transformation mechanisms to cope with the diversity in conditions in a unified framework. The experimental results show that reverse transformation can proceed extremely fast, yet saturates at intermediate temperatures. Additionally, it is shown that there is good agreement between experiment and model and it is essential to embed both the athermal and isothermal transformation mechanism in the model for achieving this performance. Initial steps towards model validation are performed showing good predictability of a non-isothermal heat treatment with conditions realistic and relevant for industrial laser heat treatments.
topic Phase reversal
Athermal transformation
Thermally activated transformation
Laser heat treatment
Austenitic stainless steel
Kinetic modelling
url http://www.sciencedirect.com/science/article/pii/S0264127520306596
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AT esperdahcıoglu combinedathermalandisothermalmartensitetoaustenitereversionkineticsexperimentandmodelling
AT ahvandenboogaard combinedathermalandisothermalmartensitetoaustenitereversionkineticsexperimentandmodelling
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