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Microstructure, Tensile, and Fatigue Properties of Large-Scale Austenitic Lightweight Steel

High-Mn lightweight steel, Fe-0.9C-29Mn-8Al, was manufactured using steelmaking, ingot-making, forging, and rolling processes. After the final rolling process, a typical austenite single phase was observed on all sides of the thick plate. The microstructural changes after annealing and aging heat-tr...

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Autores principales: Shin, Jong-Ho, Song, Jeon-Young, Kim, Sung-Dae, Park, Seong-Jun, Ma, Young-Wha, Lee, Jong-Wook
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9785371/
https://www.ncbi.nlm.nih.gov/pubmed/36556714
http://dx.doi.org/10.3390/ma15248909
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author Shin, Jong-Ho
Song, Jeon-Young
Kim, Sung-Dae
Park, Seong-Jun
Ma, Young-Wha
Lee, Jong-Wook
author_facet Shin, Jong-Ho
Song, Jeon-Young
Kim, Sung-Dae
Park, Seong-Jun
Ma, Young-Wha
Lee, Jong-Wook
author_sort Shin, Jong-Ho
collection PubMed
description High-Mn lightweight steel, Fe-0.9C-29Mn-8Al, was manufactured using steelmaking, ingot-making, forging, and rolling processes. After the final rolling process, a typical austenite single phase was observed on all sides of the thick plate. The microstructural changes after annealing and aging heat-treatments were observed, using optical and transmission electron microscopy. The annealed coupon exhibited a typical austenite single phase, including annealing twins in several grains; the average grain size was 153 μm. After aging heat treatment, κ-carbide was observed within the grains and on the grain boundaries. Additionally, the effect of aging heat treatment on the mechanical properties was analyzed, using a tensile test. The fine κ-carbide that precipitated within the grains in the aged coupon improved the 0.2% offset yield and the tensile stresses, as compared to the as-annealed coupon. To estimate the applicability of high-Mn lightweight steel for low-pressure (LP) steam turbine blades, a low-cycle fatigue (LCF) test was carried out at room temperature. At a total strain amplitude of 0.5 to 1.2%, the LCF life of high-Mn lightweight steel was approximately three times that of 12% Cr steel, which is used in commercial LP steam turbine blades. The LCF behavior of high-Mn lightweight steel followed the Coffin–Manson equation. The LCF life enhancement in the high-Mn lightweight steel results from the planar dislocation gliding behavior.
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spelling pubmed-97853712022-12-24 Microstructure, Tensile, and Fatigue Properties of Large-Scale Austenitic Lightweight Steel Shin, Jong-Ho Song, Jeon-Young Kim, Sung-Dae Park, Seong-Jun Ma, Young-Wha Lee, Jong-Wook Materials (Basel) Article High-Mn lightweight steel, Fe-0.9C-29Mn-8Al, was manufactured using steelmaking, ingot-making, forging, and rolling processes. After the final rolling process, a typical austenite single phase was observed on all sides of the thick plate. The microstructural changes after annealing and aging heat-treatments were observed, using optical and transmission electron microscopy. The annealed coupon exhibited a typical austenite single phase, including annealing twins in several grains; the average grain size was 153 μm. After aging heat treatment, κ-carbide was observed within the grains and on the grain boundaries. Additionally, the effect of aging heat treatment on the mechanical properties was analyzed, using a tensile test. The fine κ-carbide that precipitated within the grains in the aged coupon improved the 0.2% offset yield and the tensile stresses, as compared to the as-annealed coupon. To estimate the applicability of high-Mn lightweight steel for low-pressure (LP) steam turbine blades, a low-cycle fatigue (LCF) test was carried out at room temperature. At a total strain amplitude of 0.5 to 1.2%, the LCF life of high-Mn lightweight steel was approximately three times that of 12% Cr steel, which is used in commercial LP steam turbine blades. The LCF behavior of high-Mn lightweight steel followed the Coffin–Manson equation. The LCF life enhancement in the high-Mn lightweight steel results from the planar dislocation gliding behavior. MDPI 2022-12-13 /pmc/articles/PMC9785371/ /pubmed/36556714 http://dx.doi.org/10.3390/ma15248909 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shin, Jong-Ho
Song, Jeon-Young
Kim, Sung-Dae
Park, Seong-Jun
Ma, Young-Wha
Lee, Jong-Wook
Microstructure, Tensile, and Fatigue Properties of Large-Scale Austenitic Lightweight Steel
title Microstructure, Tensile, and Fatigue Properties of Large-Scale Austenitic Lightweight Steel
title_full Microstructure, Tensile, and Fatigue Properties of Large-Scale Austenitic Lightweight Steel
title_fullStr Microstructure, Tensile, and Fatigue Properties of Large-Scale Austenitic Lightweight Steel
title_full_unstemmed Microstructure, Tensile, and Fatigue Properties of Large-Scale Austenitic Lightweight Steel
title_short Microstructure, Tensile, and Fatigue Properties of Large-Scale Austenitic Lightweight Steel
title_sort microstructure, tensile, and fatigue properties of large-scale austenitic lightweight steel
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9785371/
https://www.ncbi.nlm.nih.gov/pubmed/36556714
http://dx.doi.org/10.3390/ma15248909
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