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In-situ Characterization of Microstructural Damage in QP980 Steel

机译:QP980钢微观结构损伤的原位特征

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During deformation of a steel, retained austenite can transform to martensite through transformation induced plasticity, thereby enhancing elongation to failure. However, obtaining high amounts of retained austenite in the final microstructure is challenging. The quench and partitioning (Q&P) heat treatment has been proposed as a cost-effective solution for stabilization of austenite at ambient temperatures. In this paper, a commercial QP980 steel was investigated by SEM-based in-situ tensile testing to determine micromechanisms of damage during plastic deformation. Results show that ferrite and martensite deform simultaneously and cracks are initiated at both phases. The martensite phase in QP980 steel shows a considerable amount of deformation. However, cracking of the blocky retained austenite happens from a very early stage of necking. X-ray computed tomography shows that most of the damage is found very close to the fracture surface.
机译:在钢的变形过程中,保留的奥氏体可以通过转化诱导的可塑性转化为马氏体,从而提高失败的伸长率。然而,在最终微观结构中获得高量的保留奥氏体是具有挑战性的。已经提出了淬火和分配(Q&P)热处理作为在环境温度下稳定奥氏体的成本有效的解决方案。本文采用SEM的原位拉伸试验研究了一种商业QP980钢,以确定塑性变形过程中损坏的微观机制。结果表明,铁素体和马氏体同时变形,并在两个阶段开始裂缝。 QP980钢中的马氏体相显示出相当大的变形。然而,块状保留的奥氏体的破裂发生在颈缩的早期阶段。 X射线计算机断层扫描表明,大部分损坏都发现非常靠近裂缝表面。

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