The role of silicon in carbon partitioning processes in martensite/austenite microstructures

Journal Article (2017)
Author(s)

B.N. Kim Lee (TU Delft - (OLD) MSE-3)

J. Sietsma (TU Delft - (OLD) MSE-3)

Maria Jesus Santofimia (TU Delft - (OLD) MSE-3)

Research Group
(OLD) MSE-3
Copyright
© 2017 B.N. Kim Lee, J. Sietsma, Maria Jesus Santofimia
DOI related publication
https://doi.org/10.1016/j.matdes.2017.04.080
More Info
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Publication Year
2017
Language
English
Copyright
© 2017 B.N. Kim Lee, J. Sietsma, Maria Jesus Santofimia
Research Group
(OLD) MSE-3
Volume number
127
Pages (from-to)
336-345
Reuse Rights

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Abstract

Understanding carbon redistribution in steels is crucial in developing advanced high strength steels. For instance, Quenching & Partitioning (Q&P) processes rely on the partitioning of carbon from martensite into austenite, where at the end of the heat treatment the carbon-enriched austenite shows higher stability at room temperature. Recent literature gives increasing evidence of carbide precipitation occurring during partitioning despite the addition of silicon, conventionally thought to suppress carbide precipitation. The aim of the present study is to gain insight into carbon-competing processes by applying a series of Q&P heat treatments, with particular focus on the partitioning stage, where the role of silicon in the stability of austenite is evaluated. Various characterisation techniques are combined in order to unveil the microstructural changes. While carbide precipitation does appear to occur in the presence of silicon, it is found that silicon plays an active role in the stabilisation of the austenite during the partitioning reaction.