Fe-Mn-Si-O-S系合金の固液共存状態におけるMnO-SiO2系介在物上のMnS析出挙動

With the emerging significance of creating an acicular ferrite microstructure to provide an optimum set of properties in steel, MnS precipitation behavior on a MnO-SiO2 inclusion at the solid-liquid coexistence temperature was experimentally investigated and thermodynamically elucidated in this stud...

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Main Authors: Gamutan, Jonah, Miki, Takahiro, Nagasaka, Tetsuya
Format: Journal Article
Language:Japanese
Published: Nippon Tekko Kyokai 2022
Online Access:http://hdl.handle.net/20.500.11937/90278
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author Gamutan, Jonah
Miki, Takahiro
Nagasaka, Tetsuya
author_facet Gamutan, Jonah
Miki, Takahiro
Nagasaka, Tetsuya
author_sort Gamutan, Jonah
building Curtin Institutional Repository
collection Online Access
description With the emerging significance of creating an acicular ferrite microstructure to provide an optimum set of properties in steel, MnS precipitation behavior on a MnO-SiO2 inclusion at the solid-liquid coexistence temperature was experimentally investigated and thermodynamically elucidated in this study. Using a direct method of forming inclusions, alloy samples with varying sulfur concentrations [Fe-1.1Mn-0.10Si-0.05O-S (initial mass %); 0.005 to 0.031 initial mass % S] were prepared by holding at the solid-liquid coexistence temperature for 1 hour. In samples with less than 0.011 mass % sulfur, the formation of a MnO-SiO2 inclusion with a SiO2-rich precipitate was observed. Formation of SiO2 was described as a consequence of silicon enrichment in the liquid phase, which, under appropriate thermodynamic conditions, homogeneously precipitated and later on coalesced with the primary MnO-SiO2 phase. On the other hand, in samples with more than 0.022 mass % sulfur, heterogeneous precipitation of MnS along the boundary of the primary MnO-SiO2 inclusion and the alloy matrix was observed. Also, the SiO2-rich phase was found to disappear with increasing sulfur addition. Since the likelihood of heterogeneous nucleation is higher than homogeneous nucleation, it was assumed that MnS precipitation on the surface of the primary MnO-SiO2 and prevented the secondary SiO2-rich inclusion from coalescing with the existing MnO-SiO2 inclusion. This was also further validated for solute enrichment in the liquid phase, wherein MnS precipitation temperature was found to shift to higher temperatures in alloys with higher sulfur content.
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institution Curtin University Malaysia
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language Japanese
last_indexed 2025-11-14T11:34:04Z
publishDate 2022
publisher Nippon Tekko Kyokai
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spelling curtin-20.500.11937-902782023-02-27T06:12:44Z Fe-Mn-Si-O-S系合金の固液共存状態におけるMnO-SiO2系介在物上のMnS析出挙動 Gamutan, Jonah Miki, Takahiro Nagasaka, Tetsuya With the emerging significance of creating an acicular ferrite microstructure to provide an optimum set of properties in steel, MnS precipitation behavior on a MnO-SiO2 inclusion at the solid-liquid coexistence temperature was experimentally investigated and thermodynamically elucidated in this study. Using a direct method of forming inclusions, alloy samples with varying sulfur concentrations [Fe-1.1Mn-0.10Si-0.05O-S (initial mass %); 0.005 to 0.031 initial mass % S] were prepared by holding at the solid-liquid coexistence temperature for 1 hour. In samples with less than 0.011 mass % sulfur, the formation of a MnO-SiO2 inclusion with a SiO2-rich precipitate was observed. Formation of SiO2 was described as a consequence of silicon enrichment in the liquid phase, which, under appropriate thermodynamic conditions, homogeneously precipitated and later on coalesced with the primary MnO-SiO2 phase. On the other hand, in samples with more than 0.022 mass % sulfur, heterogeneous precipitation of MnS along the boundary of the primary MnO-SiO2 inclusion and the alloy matrix was observed. Also, the SiO2-rich phase was found to disappear with increasing sulfur addition. Since the likelihood of heterogeneous nucleation is higher than homogeneous nucleation, it was assumed that MnS precipitation on the surface of the primary MnO-SiO2 and prevented the secondary SiO2-rich inclusion from coalescing with the existing MnO-SiO2 inclusion. This was also further validated for solute enrichment in the liquid phase, wherein MnS precipitation temperature was found to shift to higher temperatures in alloys with higher sulfur content. 2022 Journal Article http://hdl.handle.net/20.500.11937/90278 10.2355/tetsutohagane.TETSU-2021-074 Japanese http://creativecommons.org/licenses/by-nc-nd/4.0/ Nippon Tekko Kyokai fulltext
spellingShingle Gamutan, Jonah
Miki, Takahiro
Nagasaka, Tetsuya
Fe-Mn-Si-O-S系合金の固液共存状態におけるMnO-SiO2系介在物上のMnS析出挙動
title Fe-Mn-Si-O-S系合金の固液共存状態におけるMnO-SiO2系介在物上のMnS析出挙動
title_full Fe-Mn-Si-O-S系合金の固液共存状態におけるMnO-SiO2系介在物上のMnS析出挙動
title_fullStr Fe-Mn-Si-O-S系合金の固液共存状態におけるMnO-SiO2系介在物上のMnS析出挙動
title_full_unstemmed Fe-Mn-Si-O-S系合金の固液共存状態におけるMnO-SiO2系介在物上のMnS析出挙動
title_short Fe-Mn-Si-O-S系合金の固液共存状態におけるMnO-SiO2系介在物上のMnS析出挙動
title_sort fe-mn-si-o-s系合金の固液共存状態におけるmno-sio2系介在物上のmns析出挙動
url http://hdl.handle.net/20.500.11937/90278