Use of space-resolved in-situ high energy X-ray diffraction for the characterization of the compositional dependence of the austenite-to-ferrite transformation kinetics in steels - CNRS - Centre national de la recherche scientifique Accéder directement au contenu
Article Dans Une Revue Quantum Beam Science Année : 2019

Use of space-resolved in-situ high energy X-ray diffraction for the characterization of the compositional dependence of the austenite-to-ferrite transformation kinetics in steels

Résumé

In-situ high energy X-Ray diffraction (HEXRD) was used on compositionally graded steels to study the effect of substitutional elements on ferrite growth kinetics in Fe–C–X and Fe–C–X–Y systems. Two systems were selected to illustrate the applicability of the combinatorial approach in studying such transformations, Fe–C–Mn and Fe–C–Mn–Mo. Comparison between the measured ferrite growth kinetics using HEXRD and the predicted ones using Para-Equilibrium (PE) and Local Equilibrium with Negligible Partitioning (LENP) models indicates that the fractions reached at the stasis of transformation are lower than the predicted ones. Experiments indicated a deviation of measured kinetics from both PE and LENP models when increasing Mn and decreasing Mo (in Fe–C–Mn–Mo system). The large amount of data that can be obtained using this approach can be used for validating existing models describing ferrite growth kinetics.

Domaines

Matériaux
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Dates et versions

hal-02349747 , version 1 (05-11-2019)
hal-02349747 , version 2 (10-11-2020)

Identifiants

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Imed-Eddine Benrabah, Hugo Paul van Landeghem, Frédéric Bonnet, Florence Robaut, Alexis Deschamps. Use of space-resolved in-situ high energy X-ray diffraction for the characterization of the compositional dependence of the austenite-to-ferrite transformation kinetics in steels. Quantum Beam Science, 2019, ⟨10.3390/qubs4010001⟩. ⟨hal-02349747v2⟩
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