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Cited 39 time in webofscience Cited 29 time in scopus
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Fe55Co17.5Ni10Cr12.5Mo5 High-Entropy Alloy with Outstanding Cryogenic Mechanical Properties Driven by Deformation-Induced Phase Transformation BehaviorFe55Co17.5Ni10Cr12.5Mo5 High-Entropy Alloy with Outstanding Cryogenic Mechanical Properties Driven by Deformation-Induced Phase Transformation Behavior

Other Titles
Fe55Co17.5Ni10Cr12.5Mo5 High-Entropy Alloy with Outstanding Cryogenic Mechanical Properties Driven by Deformation-Induced Phase Transformation Behavior
Authors
Park, Hae DonWon, Jong WooMoon, JougunKim, Hyoung SeopSung, HyokyungSeol, Jae BokBae, Jae WungKim, Jung Gi
Issue Date
Jan-2023
Publisher
대한금속·재료학회
Keywords
High-entropy alloy; Cryogenic temperature; Mechanical properties; Microstructure; Strengthening behavior
Citation
Metals and Materials International, v.29, no.1, pp 95 - 107
Pages
13
Indexed
SCIE
SCOPUS
KCI
Journal Title
Metals and Materials International
Volume
29
Number
1
Start Page
95
End Page
107
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/2748
DOI
10.1007/s12540-022-01215-7
ISSN
1598-9623
2005-4149
Abstract
Understanding the deformation-induced transformation-induced plasticity (TRIP) in high-entropy alloys (HEAs) is critical for obtaining desired mechanical properties. In this study, the deformation-induced phase transformation behavior of Fe55Co17.5Ni10Cr12.5Mo5 HEA was investigated by microstructural characterization using scanning electron microscopy-based techniques. The results showed the initiation of body-centered cubic (BCC) variants at the intersections of hexagonal close-packed (HCP) variants. The growth of BCC variants occurred through the HCP phase with a Burgers orientation relationship. Heterogeneous strain distributions at the phase boundaries also induced additional BCC variants with unusual crystallographic characteristics, although the growth of these BCC variants was inhibited. The TRIP behavior during a cryogenic-temperature tensile test of the Fe55Co17.5Ni10Cr12.5Mo5 alloy provided an extra strain-hardening rate by absorbing plastic deformation energy to initiate BCC and HCP variants and additional strain-hardening capability of the transformed BCC phase. Because of the extra strain-hardening rate, the Fe55Co17.5Ni10Cr12.5Mo5 alloy achieved an outstanding tensile strength (1.2 GPa) and ductility (0.81) combination at cryogenic temperatures. [GRAPHICS] .
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대학원 (나노신소재융합공학과)
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