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Thermodynamic analysis of two-stage heat treatment in TRIP steels

机译:TRIP钢两级热处理的热力学分析

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In this work, we present a detailed thermodynamic analysis of the two-stage heat treatment (intercritical annealing (IA) and banite isothermal transformation (BIT)) necessary to stabilize retained austenite in transformation-induced plasticity (TRIP) assisted steels. Through a set of experiments on alloys with nominal composition Fe-0.32C-l.42Mn-l.56Si (wt.), we monitored the evolution of the volume fraction of retained austenite at room temperature as a function of the IA and BIT temperatures. We also investigated the thermodynamic limit for the bainitic transformation during BIT under the displacive (partitionless) transformation assumption. The fraction of retained austenite at the end of the two-stage heat treatment was calculated by taking into account the corresponding start of the martensitic transformation (T_(Ms)). Comparisons with experiments suggest good qualitative agreement in the fraction of retained austenite when considering the effect of the IA temperature. On the other hand, the analysis of the effect of BIT on the amount of retained austenite showed qualitative disagreement with the observations. To further analyze this discrepancy, we utilize a modified thermodynamic analysis with empirical observations as input, and conclude that the assumption of thermodynamic equilibrium at IA is not valid at lower IA temperatures. Moreover, the unexpected high carbon enrichment in retained austenite indicates the importance of the kinetic effects. We conclude that the thermodynamic limit for the bainitic transformation can be used at least to provide a lower bound to the expected fraction of retained austenite under specific IA + BIT treatment schedules.
机译:在这项工作中,我们对稳定转化诱导塑性 (TRIP) 辅助钢中残余奥氏体所需的两阶段热处理(临界退火 (IA) 和班氏体等温转变 (BIT))进行了详细的热力学分析。通过对标称成分Fe-0.32C-l.42Mn-l.56Si(wt.%)的合金进行一系列实验,我们监测了室温下残余奥氏体体积分数随IA和BIT温度的变化。我们还研究了位移(无分区)变换假设下BIT期间贝氏体变换的热力学极限。通过考虑相应的马氏体相变开始(T_(Ms))来计算两级热处理结束时残余奥氏体的分数。与实验的比较表明,在考虑IA温度的影响时,残余奥氏体的比例具有良好的定性一致性。另一方面,对BIT对残余奥氏体量的影响的分析表明,与观察结果存在定性差异。为了进一步分析这种差异,我们利用改进的热力学分析,以经验观察为输入,并得出结论,IA热力学平衡的假设在较低的IA温度下是无效的。此外,残余奥氏体中意想不到的高碳富集表明了动力学效应的重要性。我们得出的结论是,贝氏体转变的热力学极限至少可用于在特定的 IA + BIT 处理方案下为剩余奥氏体的预期部分提供下限。

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