Influence of Fe and Mn on the Microstructure Formation in 5xxx Alloys—Part I: Evolution of Primary and Secondary Phases

The increasing demands for Al sheets with superior mechanical properties and excellent formability require a profound knowledge of the microstructure and texture evolution in the course of their production. The present study gives a comprehensive overview on the primary- and secondary phase formatio...

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Main Authors: Jakob Grasserbauer, Irmgard Weißensteiner, Georg Falkinger, Thomas M. Kremmer, Peter J. Uggowitzer, Stefan Pogatscher
Format: Article
Language:English
Published: MDPI AG 2021-06-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/12/3204
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spelling doaj-ed690e2c68104f79a9a9eec4a62c71fd2021-06-30T23:51:08ZengMDPI AGMaterials1996-19442021-06-01143204320410.3390/ma14123204Influence of Fe and Mn on the Microstructure Formation in 5xxx Alloys—Part I: Evolution of Primary and Secondary PhasesJakob Grasserbauer0Irmgard Weißensteiner1Georg Falkinger2Thomas M. Kremmer3Peter J. Uggowitzer4Stefan Pogatscher5Christian Doppler Laboratory for Advanced Aluminum Alloys, Chair of Nonferrous Metallurgy, Montanuniversitaet Leoben, Franz-Josef Straße 18, 8700 Leoben, AustriaChristian Doppler Laboratory for Advanced Aluminum Alloys, Chair of Nonferrous Metallurgy, Montanuniversitaet Leoben, Franz-Josef Straße 18, 8700 Leoben, AustriaAMAG Rolling GmbH, 5282 Ranshofen, AustriaChair of Nonferrous Metallurgy, Department Metallurgy, Montanuniversitaet Leoben, Franz-Josef Straße 18, 8700 Leoben, AustriaChair of Nonferrous Metallurgy, Department Metallurgy, Montanuniversitaet Leoben, Franz-Josef Straße 18, 8700 Leoben, AustriaChristian Doppler Laboratory for Advanced Aluminum Alloys, Chair of Nonferrous Metallurgy, Montanuniversitaet Leoben, Franz-Josef Straße 18, 8700 Leoben, AustriaThe increasing demands for Al sheets with superior mechanical properties and excellent formability require a profound knowledge of the microstructure and texture evolution in the course of their production. The present study gives a comprehensive overview on the primary- and secondary phase formation in AlMg(Mn) alloys with varying Fe and Mn additions, including variations in processing parameters such as solidification conditions, homogenization temperature, and degree of cold rolling. Higher Fe alloying levels increase the primary phase fraction and favor the needle-shaped morphology of the constituent phases. Increasing Mn additions alter both the shape and composition of the primary phase particles, but also promote the formation of dispersoids as secondary phases. The size, morphology, and composition of primary and secondary phases is further affected by the processing parameters. The average dispersoid size increases significantly with higher homogenization temperature and large primary particles tend to fragment during cold rolling. The microstructures of the final soft annealed states reflect the important effects of the primary and secondary phase particles on their evolution. The results presented in this paper regarding the relevant secondary phases provide the basis for an in-depth discussion of the mechanisms underlying the microstructure formation, such as Zener pinning, particle stimulated nucleation, and texture evolution, which is presented in Part II of this study.https://www.mdpi.com/1996-1944/14/12/3204aluminum alloysAlMg(Mn)solidificationconstituentsdispersoidscold rolling
collection DOAJ
language English
format Article
sources DOAJ
author Jakob Grasserbauer
Irmgard Weißensteiner
Georg Falkinger
Thomas M. Kremmer
Peter J. Uggowitzer
Stefan Pogatscher
spellingShingle Jakob Grasserbauer
Irmgard Weißensteiner
Georg Falkinger
Thomas M. Kremmer
Peter J. Uggowitzer
Stefan Pogatscher
Influence of Fe and Mn on the Microstructure Formation in 5xxx Alloys—Part I: Evolution of Primary and Secondary Phases
Materials
aluminum alloys
AlMg(Mn)
solidification
constituents
dispersoids
cold rolling
author_facet Jakob Grasserbauer
Irmgard Weißensteiner
Georg Falkinger
Thomas M. Kremmer
Peter J. Uggowitzer
Stefan Pogatscher
author_sort Jakob Grasserbauer
title Influence of Fe and Mn on the Microstructure Formation in 5xxx Alloys—Part I: Evolution of Primary and Secondary Phases
title_short Influence of Fe and Mn on the Microstructure Formation in 5xxx Alloys—Part I: Evolution of Primary and Secondary Phases
title_full Influence of Fe and Mn on the Microstructure Formation in 5xxx Alloys—Part I: Evolution of Primary and Secondary Phases
title_fullStr Influence of Fe and Mn on the Microstructure Formation in 5xxx Alloys—Part I: Evolution of Primary and Secondary Phases
title_full_unstemmed Influence of Fe and Mn on the Microstructure Formation in 5xxx Alloys—Part I: Evolution of Primary and Secondary Phases
title_sort influence of fe and mn on the microstructure formation in 5xxx alloys—part i: evolution of primary and secondary phases
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-06-01
description The increasing demands for Al sheets with superior mechanical properties and excellent formability require a profound knowledge of the microstructure and texture evolution in the course of their production. The present study gives a comprehensive overview on the primary- and secondary phase formation in AlMg(Mn) alloys with varying Fe and Mn additions, including variations in processing parameters such as solidification conditions, homogenization temperature, and degree of cold rolling. Higher Fe alloying levels increase the primary phase fraction and favor the needle-shaped morphology of the constituent phases. Increasing Mn additions alter both the shape and composition of the primary phase particles, but also promote the formation of dispersoids as secondary phases. The size, morphology, and composition of primary and secondary phases is further affected by the processing parameters. The average dispersoid size increases significantly with higher homogenization temperature and large primary particles tend to fragment during cold rolling. The microstructures of the final soft annealed states reflect the important effects of the primary and secondary phase particles on their evolution. The results presented in this paper regarding the relevant secondary phases provide the basis for an in-depth discussion of the mechanisms underlying the microstructure formation, such as Zener pinning, particle stimulated nucleation, and texture evolution, which is presented in Part II of this study.
topic aluminum alloys
AlMg(Mn)
solidification
constituents
dispersoids
cold rolling
url https://www.mdpi.com/1996-1944/14/12/3204
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