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Cited 47 time in webofscience Cited 51 time in scopus
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Effects of Cell Network Structure on the Strength of Additively Manufactured Stainless Steels

Authors
Kim, Jung GiSeol, Jae BokPark, Jeong MinSung, HyokyungPark, Sun HongKim, Hyoung Seop
Issue Date
Aug-2021
Publisher
KOREAN INST METALS MATERIALS
Keywords
Additive manufacturing; Strengthening; Stainless steel; Microstructure; Mechanical property
Citation
METALS AND MATERIALS INTERNATIONAL, v.27, no.8, pp 2614 - 2622
Pages
9
Indexed
SCIE
SCOPUS
KCI
Journal Title
METALS AND MATERIALS INTERNATIONAL
Volume
27
Number
8
Start Page
2614
End Page
2622
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/3394
DOI
10.1007/s12540-021-00991-y
ISSN
1598-9623
2005-4149
Abstract
The rapid melting and solidification cycle in additive manufacturing creates a non-equilibrium environment that induces metastable microstructures. These metastable microstructures include solute heterogeneity, dislocation cell structure and nano-sized precipitation, which contributes to the strength of additively manufactured alloys. Because the presence of metastable microstructure contributes to the mechanical property enhancement of additively manufactured alloy, quantification and estimation of strength by metastable microstructure becomes important issue. In this study, the role of dislocation cell structure on the mechanical property of additively manufactured stainless steels was investigated. The evolved cell networks not only interrupted dislocation gliding, but also acted as crack propagation paths during plastic deformation. The finer cell networks found in the additively manufacture 304L stainless steels induced more interactions with dislocations than those found in the additively manufacture 316L stainless steels, and that is related to the higher strength during tensile test. This result demonstrates the dislocation cell structure is a main strengthening mechanism for additively manufactured materials and the modified Hall-Petch hardening model successfully estimate the strengthening by cell boundaries.
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Kim, Jung Gi
대학원 (나노신소재융합공학과)
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