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Study of Deformation Behavior and Microstructural Evolution in Multiphase Steel

机译:多相钢的变形行为和组织演变研究

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摘要

In the present work, the tensile deformation characteristics of the high performance multiphase steel with complex microstructures are investigated. A mixture of ferrite, bainite, and 14.4 vol% retained austenite (RA) with an average grain size of less than 3 μm of the matrix is obtained after specific heat treatment. Tensile tests are performed with increasing strain, i.e., 0%, 5%, 10%, 15%, and 20%. Then X-ray diffraction, transmission electron microscope and electron backscatter diffraction are utilized to analyze the deformation-transformation behaviors of the complex microstructures. Phase transformation of the RA, which is controlled by its morphology and distribution, contributes to high strain hardening capacity of the steel. The blocky-type RA that locates in ferrite grain boundaries shows less stability and transforms easily at early deformation stage, while the film-like RA that distributes between bainitic ferrite shows higher stability and transforms continuously throughout plastic deformation. Moreover, the substructure formation by dislocation configuration in ferrite grains begins with randomly distributed dislocations and ends up with cellular structures, resulting in ferrite subdivision during deformation and also grain refinement strengthening. As a result, the experimental steel is reinforced not only by the martensite transformation of RA, but also ferrite refinement.
机译:在本工作中,研究了具有复杂组织的高性能多相钢的拉伸变形特性。经过特定的热处理后,获得了铁素体,贝氏体和14.4%(体积)残留奥氏体(RA)的混合物,平均晶粒尺寸小于基体的3μm。拉伸试验是在应变增加的情况下进行的,即应变为0%,5%,10%,15%和20%。然后利用X射线衍射,透射电子显微镜和电子反向散射衍射分析了复杂微观结构的变形-转变行为。 RA的相变受其形态和分布控制,有助于钢的高应变硬化能力。位于铁素体晶界的块状RA表现出较低的稳定性,并且在变形的早期很容易转变,而分布在贝氏体铁素体之间的膜状RA表现出较高的稳定性,并且在整个塑性变形过程中都连续发生转变。此外,铁素体晶粒中由位错构型形成的亚结构以随机分布的位错开始,最终以蜂窝结构结束,从而导致形变期间铁素体的细分以及晶粒细化强化。结果,实验钢不仅通过RA的马氏体相变得到强化,而且还通过铁素体细化得到增强。

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