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Microstructure Evolution and Mechanical Stability of Retained Austenite in Thermomechanically Processed Medium-Mn Steel

机译:热加工中锰钢中残余奥氏体的组织演变和力学稳定性

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摘要

A microstructure evolution of the thermomechanically processed 3Mn-1.5Al type steel and mechanical stability of retained austenite were investigated during interrupted tensile tests. The microstructural details were revealed using scanning electron microscopy (SEM), electron backscatter diffraction (EBSD), and transmission electron microscopy (TEM) techniques. It was found that the strain-induced martensitic transformation began in central regions of the largest blocky-type grains of retained austenite and propagated to outer areas of the grains as the deformation level increased. At rupture, the mechanical stability showed only boundaries of fine blocky grains of γ phase and austenitic layers located between bainitic ferrite laths. The effects of various carbon enrichment, grain size, and location in the microstructure were considered. The martensitic transformation progress was the highest at the initial stage of deformation and gradually decreased as the deformation level increased.
机译:在间断拉伸试验中研究了热机械加工的3Mn-1.5Al型钢的组织演变和残余奥氏体的机械稳定性。使用扫描电子显微镜(SEM),电子反向散射衍射(EBSD)和透射电子显微镜(TEM)技术揭示了微观结构细节。发现应变诱发的马氏体转变开始于残余奥氏体的最大块状晶粒的中心区域,并随着形变水平的增加而传播到晶粒的外部区域。在断裂时,机械稳定性仅显示出γ相细块状晶粒和位于贝氏体铁素体板条之间的奥氏体层的边界。考虑了各种碳富集,晶粒尺寸和在微结构中的位置的影响。马氏体相变进展在变形初期最高,随着变形程度的增加而逐渐降低。

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