作者
Y Morris Wang, Thomas Voisin, Joseph T McKeown, Jianchao Ye, Nicholas P Calta, Zan Li, Zhi Zeng, Yin Zhang, Wen Chen, Tien Tran Roehling, Ryan T Ott, Melissa K Santala, Philip J Depond, Manyalibo J Matthews, Alex V Hamza, Ting Zhu
发表日期
2018/1/1
期刊
Nature materials
卷号
17
期号
1
页码范围
63-71
出版商
Nature Publishing Group UK
简介
Many traditional approaches for strengthening steels typically come at the expense of useful ductility, a dilemma known as strength–ductility trade-off. New metallurgical processing might offer the possibility of overcoming this. Here we report that austenitic 316L stainless steels additively manufactured via a laser powder-bed-fusion technique exhibit a combination of yield strength and tensile ductility that surpasses that of conventional 316L steels. High strength is attributed to solidification-enabled cellular structures, low-angle grain boundaries, and dislocations formed during manufacturing, while high uniform elongation correlates to a steady and progressive work-hardening mechanism regulated by a hierarchically heterogeneous microstructure, with length scales spanning nearly six orders of magnitude. In addition, solute segregation along cellular walls and low-angle grain boundaries can enhance dislocation …
引用总数
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