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The Evolution of the Deformation Substructure in a Ni-Co-Cr Equiatomic Solid Solution AlloyThe equiatomic NiCoCr alloy exhibits an excellent combination of strength and ductility, even greater than the FeNiCrCoMn high entropy alloy, and also displays a simultaneous increase in strength and ductility with decreasing the testing temperature. To systemically investigate the origin of the exceptional properties of NiCoCr alloy, which are related to the evolution of the deformation substructure with strain, interrupted tensile testing was conducted on the equiatomic NiCoCr single-phase solid solution alloy at both cryogenic and room temperatures at five different plastic strain levels of 1.5%, 6.5%, 29%, 50% and 70%. The evolution of deformation substructure was examined using electron backscatter diffraction (EBSD), transmission Kikuchi diffraction (TKD), conventional transmission electron microscopy (CTEM), diffraction contrast imaging using STEM (DCI-STEM) and atomic resolution scanning transmission electron microscopy. While the deformation substructure mainly consisted of planar dislocation slip and the dissociation of dislocations into stacking faults at small strain levels (≤6.5%), at larger strain levels, additional substructures including nanotwins and a new phase with hexagonal close packed (HCP) lamellae also appeared. The volume fraction of the HCP lamellae increases with increasing deformation, especially at cryogenic temperature. First principles calculations at 0 K indicate that the HCP phase is indeed energetically favorable relative to FCC for this composition. The effects of the nanotwin and HCP lamellar structures on hardening rate and ductility at both cryogenic and room temperature are qualitatively discussed.
Document ID
20180007787
Acquisition Source
Glenn Research Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
J. Miao
(The Ohio State University Columbus, Ohio, United States)
C. E. Slone
(The Ohio State University Columbus, Ohio, United States)
T. M. Smith
(Glenn Research Center Cleveland, Ohio, United States)
C. Niu
(The Ohio State University Columbus, Ohio, United States)
H. Bei
(Oak Ridge National Laboratory Oak Ridge, Tennessee, United States)
M. Ghazisaeidi
(The Ohio State University Columbus, Ohio, United States)
G. M. Pharr
(Texas A&M University - College Station College Station, TX, United States)
M. J. Mills
(The Ohio State University Columbus, Ohio, United States)
Date Acquired
November 20, 2018
Publication Date
May 15, 2017
Publication Information
Publication: Acta Materialia
Publisher: Elsevier
Volume: 132
Issue Publication Date: June 15, 2017
e-ISSN: 1359-6454
Subject Category
Metals And Metallic Materials
Report/Patent Number
GRC-E-DAA-TN54282
Funding Number(s)
CONTRACT_GRANT: NSF-DMR-1553355
CONTRACT_GRANT: NSF-DMR-60050072
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
Twinning
FCC
High Entropy Alloys
HCP
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