Stacking Fault Energy Analyses of Additively Manufactured Stainless Steel 316L and CrCoNi Medium Entropy Alloy Using In Situ Neutron Diffraction

材料科学 晶体孪晶 层错能 电子背散射衍射 衍射 中子衍射 叠加断层 合金 结晶学 堆积 复合材料 位错 光学 微观结构 化学 核磁共振 物理
作者
Wanchuck Woo,J.S. Jeong,D.-K. Kim,C. M. Lee,Sun Choi,Jin‐Yoo Suh,Sun-Young Lee,Stefanus Harjo,Takuro Kawasaki
出处
期刊:Scientific Reports [Nature Portfolio]
卷期号:10 (1): 1350-1350 被引量:125
标识
DOI:10.1038/s41598-020-58273-3
摘要

Abstract Stacking fault energies (SFE) were determined in additively manufactured (AM) stainless steel (SS 316 L) and equiatomic CrCoNi medium-entropy alloys. AM specimens were fabricated via directed energy deposition and tensile loaded at room temperature. In situ neutron diffraction was performed to obtain a number of faulting-embedded diffraction peaks simultaneously from a set of (hkl) grains during deformation. The peak profiles diffracted from imperfect crystal structures were analyzed to correlate stacking fault probabilities and mean-square lattice strains to the SFE. The result shows that averaged SFEs are 32.8 mJ/m 2 for the AM SS 316 L and 15.1 mJ/m 2 for the AM CrCoNi alloys. Meanwhile, during deformation, the SFE varies from 46 to 21 mJ/m 2 (AM SS 316 L) and 24 to 11 mJ/m 2 (AM CrCoNi) from initial to stabilized stages, respectively. The transient SFEs are attributed to the deformation activity changes from dislocation slip to twinning as straining. The twinning deformation substructure and atomic stacking faults were confirmed by electron backscatter diffraction (EBSD) and transmission electron microscopy (TEM). The significant variance of the SFE suggests the critical twinning stress as 830 ± 25 MPa for the AM SS 316 L and 790 ± 40 MPa for AM CrCoNi, respectively.
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