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Hot Ductility Behavior in the Weld Heat-Affected Zone of Austenitic Fe-Mn-Al-C Lightweight Steels and the Effects of Alloying Elements
Joonoh Moon
JWJ. 2021;39(6):684-689.   Published online 2021 December 27    DOI: https://doi.org/10.5781/JWJ.2021.39.6.14

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Hot Ductility Behavior in the Weld Heat-Affected Zone of Austenitic Fe-Mn-Al-C Lightweight Steels and the Effects of Alloying Elements
Journal of Welding and Joining. 2021;39(6):684-689   Crossref logo
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Hot Ductility Behaviors in the Weld Heat-Affected Zone of Nitrogen-Alloyed Fe-18Cr-10Mn Austenitic Stainless Steels
Metallurgical and Materials Transactions A. 2015;46(4):1437-1442   Crossref logo
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An Investigation on the Microstructure Evolution and Tensile Property in the Weld Heat-Affected Zone of Austenitic FeMnAlC Lightweight Steels
Journal of Welding and Joining. 2017;35(1):9-15   Crossref logo
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Phase transformation and the mechanical characteristics of heat-affected zones in austenitic Fe–Mn–Al–Cr–C lightweight steel during post-weld heat treatment
Materials Characterization. 2021;177:111150   Crossref logo
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κ-Phase Formation in Fe-Mn-Al-C Austenitic Steels
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De-alloying corrosion in the heat-affected zone in Mn-Al bronze weld
Materials Chemistry and Physics. 2018;212:471-478   Crossref logo
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Roles of (Fe, Mn)3Al Precipitates and MBIP on the Hot Ductility Behavior of Fe–30Mn–9Al–0.9C Lightweight Steels
Metals and Materials International. 2019;25(4):1019-1026   Crossref logo
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Models for carbon gradient generation in the weld heat-affected zone of C-Mn steels
Scripta Metallurgica et Materialia. 1991;25(1):45-49   Crossref logo
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Effects of alloying elements Mn, Mo, Ti, Si, P and C on the incubation period of void swelling in austenitic stainless steels
Tungsten. 2021;3(1):3-19   Crossref logo
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Corrosion Behavior of High-Mn Austenitic Fe–Mn–Al–Cr–C Steels in NaCl and NaOH Solutions
Materials. 2021;14(2):425   Crossref logo
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