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Modeling of Bainite Transformation During Partitioning Process and Atomic‐Scale Characterization of Bainite

机译:贝氏体分区过程中贝氏体转化的建模与贝氏体原子尺度特征

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>This paper presents a detailed investigation of the interaction between bainite transformation and carbon partitioning during isothermal holding of intercritical heating, quenching, and partitioning (I&Q&P) steel. The kinetics of isothermal bainite transformation is modeled based on the assumption of displacive mechanism. A systematic analysis of the autocatalytic parameters extracted from the fitting curves reveals that autocatalysis plays only a minor role in bainite transformation due to quite small size of parent austenite grains transforming into bainite, independent from each other. Atom probe tomography (APT) is used to investigate the localized composition changes at the interface between bainitic ferrite and retained austenite. The results indicate that carbon enrichment of austenite occurs and Mn atoms segregate at phase grain boundary. Furthermore, in terms of the thermodynamic analysis, bainitic ferrite forms under diffusionless growth followed by tempering, and in present work, the growth of bainitic ferrite can be divided into two parts: bainite transformation quickly (BTQ) and bainite transformation slowly (BTS).
机译: <第XML:ID =“SRIN201800482-SEC-0001”> >本文提出了对间临界加热,淬火和分配(I&amp; Q&amp; P)钢的等温举力期间贝氏体转化和碳分配相互作用的详细研究。基于位移机制的假设,建模等温贝氏体转化动力学。从拟合曲线提取的自催化参数的系统分析表明,由于彼此转化为贝氏体的母体奥氏体晶粒的尺寸尺寸,自催化在贝氏体转化中起着小的作用。原子探测断层扫描(APT)用于研究拟壳铁氧体和保留奥氏体之间界面处的局部组成变化。结果表明,奥氏体的碳富集发生,Mn原子在相晶边界处隔离。此外,就热力学分析而言,贝氏体铁氧体在扩散生长下形成,然后回火,在目前的工作中,贝氏体铁氧体的生长可分为两部分:贝氏体转化迅速(BTQ)和贝氏体转化缓慢(BTS)。

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