材料科学
奥氏体
加工硬化
延伸率
可塑性
铁氧体(磁铁)
冶金
无扩散变换
马氏体
极限抗拉强度
应变硬化指数
锰
贝氏体
复合材料
微观结构
作者
Tomohiko Hojo,Motomichi Koyama,Bakuya Kumai,Yuki Shibayama,Ayumi Shiro,Takahisa Shobu,Hiroyuki Saitoh,Saya Ajito,Eiji Akiyama
标识
DOI:10.1016/j.scriptamat.2021.114463
摘要
The origins of the superior work hardening capability of medium manganese (M-Mn) and conventional transformation-induced plasticity-aided bainitic ferrite (TBF) steels of similar tensile strength and elongation are comparatively investigated via synchrotron X-ray diffraction measurements. The M-Mn steel undergoes preferential plastic deformation in austenite; its superior work hardening capability and associated uniform elongation are attributed to the high rates of martensitic transformation and dislocation accumulation per strain in the retained austenite. By contrast, the excellent work hardening behavior and uniform elongation of the TBF steel are attributed to the sustained transformability until the occurrence of a large strain and significant stress partitioning between the face-centered cubic (FCC) and body-centered cubic (BCC) phases due to the high austenite phase stability and high resistance to slip deformation of austenite.
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