Influence of cooling rate on microstructure development of AlSi9MgMn alloy

Aluminum alloys are widely applied in automotive, aircraft, food, and building industries. Multicomponent technical AlSi9MgMn alloy is primarily intended for high cooling rate technology. Controlled addition of alloying elements such as iron and manganese as well as magnesium can improve mechanical...

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Main Authors: Stanić D., Zovko-Brodarac Z.
Format: Article
Language:English
Published: Technical Faculty, Bor 2020-01-01
Series:Journal of Mining and Metallurgy. Section B: Metallurgy
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/1450-5339/2020/1450-53392000036S.pdf
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spelling doaj-8b1e73027d7942b5a3d8b63497d161f12021-02-05T08:13:49ZengTechnical Faculty, BorJournal of Mining and Metallurgy. Section B: Metallurgy1450-53392217-71752020-01-0156340541310.2298/JMMB200503036S1450-53392000036SInfluence of cooling rate on microstructure development of AlSi9MgMn alloyStanić D.0Zovko-Brodarac Z.1CIMOS-TCH Group P.P.C. Buzet Ltd, Buzet, Croatia + Polytechnic Pula, College of applied sciences, Pula, CroatiaUniversity of Zagreb Faculty of Metallurgy, Sisak, CroatiaAluminum alloys are widely applied in automotive, aircraft, food, and building industries. Multicomponent technical AlSi9MgMn alloy is primarily intended for high cooling rate technology. Controlled addition of alloying elements such as iron and manganese as well as magnesium can improve mechanical and technological properties of the final casting depending on the cooling conditions during solidification. The aim of this investigation is the characterization of AlSi9MgMn alloy microstructure and mechanical properties at lower cooling rates than those for which this alloy was primarily developed. Thermodynamic calculation and thermal analyses revealed solidification sequence in correlation to the microstructure investigation as follows: development of primary dendrite network, precipitation of high temperature Al15(Mn,Fe)3Si2 and Al5FeSi phases, main eutectic reaction, precipitation of intermetallic Al8Mg3FeSi6 phase, and Mg2Si as a final solidifying phase. Influence of microstructure features investigation and cooling rate reveals significant Al15(Mn,Fe)3Si2 morphology change from Chinese script morphology at low, irregular broken Chinese script morphology at medium, and globular morphology at high cooling rate. High manganese content in AlSi9MgMn alloy together with high cooling rate enables the increase of Fe+Mn total amount in the intermetallic Al15(Mn,Fe)3Si2 phase and encourage favourable morphology development, all resulting in enhanced mechanical properties in as-cast state.http://www.doiserbia.nb.rs/img/doi/1450-5339/2020/1450-53392000036S.pdfalsi9mgmn alloythermal analysiscooling ratesolidification sequencemicrostructure developmentmechanical properties
collection DOAJ
language English
format Article
sources DOAJ
author Stanić D.
Zovko-Brodarac Z.
spellingShingle Stanić D.
Zovko-Brodarac Z.
Influence of cooling rate on microstructure development of AlSi9MgMn alloy
Journal of Mining and Metallurgy. Section B: Metallurgy
alsi9mgmn alloy
thermal analysis
cooling rate
solidification sequence
microstructure development
mechanical properties
author_facet Stanić D.
Zovko-Brodarac Z.
author_sort Stanić D.
title Influence of cooling rate on microstructure development of AlSi9MgMn alloy
title_short Influence of cooling rate on microstructure development of AlSi9MgMn alloy
title_full Influence of cooling rate on microstructure development of AlSi9MgMn alloy
title_fullStr Influence of cooling rate on microstructure development of AlSi9MgMn alloy
title_full_unstemmed Influence of cooling rate on microstructure development of AlSi9MgMn alloy
title_sort influence of cooling rate on microstructure development of alsi9mgmn alloy
publisher Technical Faculty, Bor
series Journal of Mining and Metallurgy. Section B: Metallurgy
issn 1450-5339
2217-7175
publishDate 2020-01-01
description Aluminum alloys are widely applied in automotive, aircraft, food, and building industries. Multicomponent technical AlSi9MgMn alloy is primarily intended for high cooling rate technology. Controlled addition of alloying elements such as iron and manganese as well as magnesium can improve mechanical and technological properties of the final casting depending on the cooling conditions during solidification. The aim of this investigation is the characterization of AlSi9MgMn alloy microstructure and mechanical properties at lower cooling rates than those for which this alloy was primarily developed. Thermodynamic calculation and thermal analyses revealed solidification sequence in correlation to the microstructure investigation as follows: development of primary dendrite network, precipitation of high temperature Al15(Mn,Fe)3Si2 and Al5FeSi phases, main eutectic reaction, precipitation of intermetallic Al8Mg3FeSi6 phase, and Mg2Si as a final solidifying phase. Influence of microstructure features investigation and cooling rate reveals significant Al15(Mn,Fe)3Si2 morphology change from Chinese script morphology at low, irregular broken Chinese script morphology at medium, and globular morphology at high cooling rate. High manganese content in AlSi9MgMn alloy together with high cooling rate enables the increase of Fe+Mn total amount in the intermetallic Al15(Mn,Fe)3Si2 phase and encourage favourable morphology development, all resulting in enhanced mechanical properties in as-cast state.
topic alsi9mgmn alloy
thermal analysis
cooling rate
solidification sequence
microstructure development
mechanical properties
url http://www.doiserbia.nb.rs/img/doi/1450-5339/2020/1450-53392000036S.pdf
work_keys_str_mv AT stanicd influenceofcoolingrateonmicrostructuredevelopmentofalsi9mgmnalloy
AT zovkobrodaracz influenceofcoolingrateonmicrostructuredevelopmentofalsi9mgmnalloy
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