TY - JOUR
T1 - Orientation-selected micro-pillar compression of additively manufactured 316L stainless steels
T2 - Comparison of as-manufactured, annealed, and proton-irradiated variants
AU - Shiau, Ching Heng
AU - Sun, Cheng
AU - McMurtrey, Michael
AU - O'Brien, Robert
AU - Garner, Frank A.
AU - Shao, Lin
N1 - Funding Information:
This work is partially supported by the Idaho National Laboratory Laboratory-Directed Research & Development Program under Department of Energy (DOE) Idaho Operations Office Contract DE-AC07-051D14517. This work was also partially supported by the U.S. Department of Energy, Office of Nuclear Energy under DOE Idaho Operations Office Contract DE-AC07- 051D14517 as part of a Nuclear Science User Facilities experiment. The work was also partially supported by NNSA grant DE-NA0003921.
Publisher Copyright:
© 2022
PY - 2022/8/1
Y1 - 2022/8/1
N2 - Irradiation response and deformation mechanisms of additively manufactured (AM) 316 L stainless steel were studied by atomic scale characterization and micro-pillar compression. The AM 316 L stainless steels were fabricated by direct energy deposition, a laser-based additive manufacturing process. Irradiation with 2 MeV protons at 360 °C was performed to create ∼1.8 displacements-per-atom (dpa) damage in AM 316 L. Deformation behaviors of the as-manufactured, annealed, and proton-irradiated variants were studied, focusing on the effects of manufacturing-induced pores, residual stress, and irradiation-introduced defects (dislocation loops and voids). Micro-pillars were prepared from grains of pre-selected orientation, avoiding contributions of grain boundaries and allowing determination of resolved shear stress on {111} glide planes. Transmission electron microscopy was used to characterize the pre- and post-deformation microstructure. It was found that in the as-manufactured alloy variant, moving dislocations were the major deformation carrier, with noticeable blocking by fabrication-induced pores, In the annealed variant, hardness was reduced, and deformation was also accomplished by dislocation gliding. In the proton-irradiated variant, significant twinning was observed. Comparing measured resolved shear stress and predicted critical stress for dislocation dissociation, we conclude that irradiation hardening became high enough to activate twinning. Therefore, the deformation mechanism changes from dislocation gliding to twinning. The study is important for both processing optimization and performance evaluation of AM alloys for reactor applications.
AB - Irradiation response and deformation mechanisms of additively manufactured (AM) 316 L stainless steel were studied by atomic scale characterization and micro-pillar compression. The AM 316 L stainless steels were fabricated by direct energy deposition, a laser-based additive manufacturing process. Irradiation with 2 MeV protons at 360 °C was performed to create ∼1.8 displacements-per-atom (dpa) damage in AM 316 L. Deformation behaviors of the as-manufactured, annealed, and proton-irradiated variants were studied, focusing on the effects of manufacturing-induced pores, residual stress, and irradiation-introduced defects (dislocation loops and voids). Micro-pillars were prepared from grains of pre-selected orientation, avoiding contributions of grain boundaries and allowing determination of resolved shear stress on {111} glide planes. Transmission electron microscopy was used to characterize the pre- and post-deformation microstructure. It was found that in the as-manufactured alloy variant, moving dislocations were the major deformation carrier, with noticeable blocking by fabrication-induced pores, In the annealed variant, hardness was reduced, and deformation was also accomplished by dislocation gliding. In the proton-irradiated variant, significant twinning was observed. Comparing measured resolved shear stress and predicted critical stress for dislocation dissociation, we conclude that irradiation hardening became high enough to activate twinning. Therefore, the deformation mechanism changes from dislocation gliding to twinning. The study is important for both processing optimization and performance evaluation of AM alloys for reactor applications.
KW - Compression test
KW - Deformation
KW - Deformation twinning
KW - Irradiated metals
KW - Irradiation effect
UR - https://www.scopus.com/pages/publications/85129733738
UR - https://www.mendeley.com/catalogue/83e69ce8-662a-3e4f-b079-052988c77c2e/
U2 - 10.1016/j.jnucmat.2022.153739
DO - 10.1016/j.jnucmat.2022.153739
M3 - Article
AN - SCOPUS:85129733738
SN - 0022-3115
VL - 566
JO - Journal of Nuclear Materials
JF - Journal of Nuclear Materials
M1 - 153739
ER -