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首页> 外文期刊>Materials Science and Engineering >Micro and macro-mechanical behavior of a transformation-induced plasticity steel developed by thermomechanical processing followed by quenching and partitioning
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Micro and macro-mechanical behavior of a transformation-induced plasticity steel developed by thermomechanical processing followed by quenching and partitioning

机译:通过热机械加工然后淬火和分配产生的相变诱发塑性钢的微观和宏观力学行为

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摘要

A low-alloyed transformation induced plasticity steel was subjected to thermomechanical processing (TMP) followed by quenching and partitioning treatment to achieve a desired combination of the strength and ductility. The developed microstructures were precisely analyzed, and the mechanical responses of individual micro-constituents were studied by nanoindentation using a reliable scanning probe microscopy. The results indicate that the characteristics of the constituent phases (i.e., the lath martensite, blocky fresh martensite and the retained austenite) were dictated by the prior TMP. The occurrence of dynamic recrystallization and the formation of equiaxed-shape fine austenite grains during TMP would provide fast diffusion track for carbon to diffuse through the untransformed austenite. The carbon partitioning from martensite to the surrounding austenite ensures the austenite stabilization and was identified as the major factor for martensite softening at micro-scale level. The room temperature mechanical properties were studied via shear punch and tensile testing methods. The obtained superior mechanical properties, the ultimate tensile stress of -1400 MPa and shear elongation to fracture of ~ 19% were justified considering the proper work hardening behavior of the material.
机译:对低合金相变诱发塑性钢进行热机械加工(TMP),然后进行淬火和分隔处理,以实现强度和延展性的理想组合。精确地分析了开发的微观结构,并使用可靠的扫描探针显微镜通过纳米压痕研究了单个微成分的机械响应。结果表明,组成相的特征(即板条马氏体,块状新鲜马氏体和残余奥氏体)是由先前的TMP决定的。在TMP过程中动态再结晶的发生和等轴形状的奥氏体晶粒的形成,将为碳扩散通过未转变的奥氏体提供快速的扩散轨迹。碳从马氏体到周围奥氏体的分配确保了奥氏体的稳定,并被确定为微观尺度上马氏体软化的主要因素。通过剪切冲头和拉伸试验方法研究了室温机械性能。考虑到材料适当的加工硬化行为,证明了所获得的优异的机械性能,-1400 MPa的极限拉伸应力和〜19%的断裂伸长率是合理的。

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  • 来源
    《Materials Science and Engineering 》 |2016年第10期| 233-240| 共8页
  • 作者单位

    The Complex Laboratory of Hoc Deformation & Thermomechanical Processing of High Performance Engineering Materials, School of Metallurgy and Materials Engineering, College of Engineering, University of Tehran, Tehran, Iran;

    The Complex Laboratory of Hoc Deformation & Thermomechanical Processing of High Performance Engineering Materials, School of Metallurgy and Materials Engineering, College of Engineering, University of Tehran, Tehran, Iran;

    The Complex Laboratory of Hoc Deformation & Thermomechanical Processing of High Performance Engineering Materials, School of Metallurgy and Materials Engineering, College of Engineering, University of Tehran, Tehran, Iran;

    School of Metallurgy and Materials Engineering, College of Engineering, University of Tehran, Tehran, Iran;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Quenching and partitioning; Nanoindentation; Thermomechanical processing; Mechanical properties; X-ray diffraction;

    机译:淬火和分区;纳米压痕热机械加工;机械性能X射线衍射;

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