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Microstructure and partitioning behavior characteristics in low carbon steels treated by hot-rolling direct quenching and dynamical partitioning processes

机译:热轧直接淬火和动力分配过程处理低碳钢中的微观结构和分区行为特性

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In this work, a new process and composition design are proposed for "quenching and partitioning" or Q&P treatment. Three low carbon steels were treated by hot-rolling direct quenching and dynamical partitioning processes (DQ&P). The effects of proeutectoid ferrite and carbon concentration on microstructure evolution and mechanical properties were investigated. The present work obtained DQ&P prototype steels with good mechanical properties and established a new notion on compositions for Q&P processing. Microstructures were characterized by means of electro probe microanalyzer (EPMA), scanning electron microscopy (SEM), electron backscatter diffraction (EBSD), transmission electron microscopy (TEM) and X-ray diffraction (XRD), especially the morphology and size of retained austenite. Mechanical properties were measured by uniaxial tensile tests. The results indicated that introducing proeutectoid ferrite can increase the volume fraction of retained austenite and thus improve mechanical properties. TEM observation showed that retained austenite included the film-like inter-lath austenite and blocky austenite located in martensite/ferrite interfaces or surrounded by ferrites. It was interesting that when the carbon concentration is as low as -0.078%, the film-like inter-lath untransformed austenite cannot be stabilized to room temperature and almost all of them transformed into twin martensite. The blocky retained austenite strengthened the interfaces and transformed into twin martensite during the tensile deformation process. The PSEs of specimens all exceeded 20 GPa.%. (C) 2016 Elsevier Inc. All rights reserved.
机译:在这项工作中,提出了一种新的工艺和组合设计,用于“淬火和分配”或Q&P处理。通过热轧直接淬火和动态分配过程(DQ&P)处理三个低碳钢。研究了基础外胶石铁氧体和碳浓度对微观结构演化和机械性能的影响。本工作获得了具有良好机械性能的DQ&P原型钢,并在Q&P处理的组合物中建立了新的观念。通过电探针微分析仪(EPMA),扫描电子显微镜(SEM),电子反向散射衍射(EBSD),透射电子显微镜(TEM)和X射线衍射(XRD),尤其是保留奥氏体的形态和尺寸的微观结构。通过单轴拉伸试验测量机械性能。结果表明,引入的前嵌体铁氧体可以增加保留奥氏体的体积分数,从而提高机械性能。 TEM观察表明,保留的奥氏体包括位于马氏体/铁氧体接口中的膜状奥氏体和嵌段奥氏体或由铁氧体包围。有趣的是,当碳浓度低至-0.078%时,薄膜状间不合置的奥氏体不能稳定到室温,并且几乎所有它们转化为双马氏体。嵌段保留的奥氏体强化了界面并在拉伸变形过程中转化为双马氏体。标本的PSES全部超过20 GPA。%。 (c)2016年Elsevier Inc.保留所有权利。

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