4.7 Article

Intercritical annealing of cold-rolled ferrite-pearlite steel: Microstructure evolutions and phase transformation kinetics

期刊

ACTA MATERIALIA
卷 212, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.actamat.2021.116920

关键词

Austenite transformation; Dual-Phase steels; intercritical annealing; HEXRD; Cementite dissolution; DICTRA simulations

资金

  1. Centre National de la Recherche Scientifique (CNRS)
  2. ArcelorMittal MaiziereslesMetz (Product Research Centre)
  3. Universite de Lorraine (France) [ANR-11-LABX-0008-01]

向作者/读者索取更多资源

The manufacturing of Dual-Phase steels involves crucial steps such as annealing of cold-rolled ferritepearlite (F/P) microstructure, with various metallurgical mechanisms at play. The study focuses on austenite transformation, interactions with ferrite recrystallization, and the influence of cementite composition. Different heating rates lead to different microstructure morphologies, with slow heating resulting in necklace austenite distribution and fast heating resulting in a banded topology. Thermokinetic analysis shows that heating rates affect phase transformation kinetics, with kinetic simulations helping to understand the austenite growth process.
The manufacturing of Dual-Phase steels includes as a crucial step the annealing of a cold-rolled ferritepearlite (F/P) microstructure, which involves numerous and interacting metallurgical mechanisms, namely recovery/recrystallization of ferrite, globularization, manganese enrichment, coarsening of cementite and finally austenite transformation. Present study focuses on the austenite transformation considering its interaction with the ferrite recrystallization and the influence of the chemical composition of the cementite. The behavior of a cold-rolled F/P microstructure is studied at three heating rates to induce weak and strong interactions between the mechanisms, in particular using post mortem microstructure observations but also in situ High Energy X-Ray Diffraction experiments on a synchrotron beamline. Slow heating leads to a necklace austenite distribution whereas fast heating conducts to a banded topology. This particular microstructure morphogenesis is explained by the presence of numerous intergranular (or isolated) carbides inside the ferrite matrix, inherited from the hot-rolling. Thermokinetic analysis accounting for the cementite composition shows that the pearlite islands transformation necessarily involves the partition of substitutional elements. Conversely, the dissolving isolated carbides undergo a partition/partitionless transition on heating. After the dissolution of the cementite, a final ferrite/austenite transformation takes place. The phase transformation kinetics increases with increasing heating rates, despite the thermal-activated nature of the austenite growth process. This is interpreted thanks to kinetic simulations with DICTRA software, which allow to analyze the austenite growth regimes involving or not the partition of the alloying elements. (c) 2021 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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