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Enhanced elevated-temperature strength and creep resistance of dispersion-strengthened Al-Mg-Si-Mn AA6082 alloys through modified processing route

Rakhmonov Jovid, Liu Kun, Rometsch Paul, Parson Nick et Chen X-Grant. (2021). Enhanced elevated-temperature strength and creep resistance of dispersion-strengthened Al-Mg-Si-Mn AA6082 alloys through modified processing route. Materials, 14, (19), e5489.

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URL officielle: http://dx.doi.org/doi:10.3390/ma14195489

Résumé

In the present work, we investigated the possibility of introducing fine and densely distributed α-Al(MnFe)Si dispersoids into the microstructure of extruded Al-Mg-Si-Mn AA6082 alloys containing 0.5 and 1 wt % Mn through tailoring the processing route as well as their effects on room- and elevated-temperature strength and creep resistance. The results show that the fine dispersoids formed during low-temperature homogenization experienced less coarsening when subsequently extruded at 350 °C than when subjected to a more typical high-temperature extrusion at 500 °C. After aging, a significant strengthening effect was produced by β″ precipitates in all conditions studied. Fine dispersoids offered complimentary strengthening, further enhancing the room-temperature compressive yield strength by up to 72–77 MPa (≈28%) relative to the alloy with coarse dispersoids. During thermal exposure at 300 °C for 100 h, β″ precipitates transformed into undesirable β-Mg2Si, while thermally stable dispersoids provided the predominant elevated-temperature strengthening effect. Compared to the base case with coarse dispersoids, fine and densely distributed dispersoids with the new processing route more than doubled the yield strength at 300 °C. In addition, finer dispersoids obtained by extrusion at 350 °C improved the yield strength at 300 °C by 17% compared to that at 500 °C. The creep resistance at 300 °C was greatly improved by an order of magnitude from the coarse dispersoid condition to one containing fine and densely distributed dispersoids, highlighting the high efficacy of the new processing route in enhancing the elevated-temperature properties of extruded Al-Mg-Si-Mn alloys.

Type de document:Article publié dans une revue avec comité d'évaluation
ISSN:1996-1944
Volume:14
Numéro:19
Pages:e5489
Version évaluée par les pairs:Oui
Date:2021
Identifiant unique:10.3390/ma14195489
Sujets:Sciences naturelles et génie > Génie
Sciences naturelles et génie > Génie > Génie des matériaux et génie métallurgique
Sciences naturelles et génie > Sciences appliquées
Département, module, service et unité de recherche:Départements et modules > Département des sciences appliquées > Module d'ingénierie
Mots-clés:Al-Mg-Si-Mn alloy, extrusion, α-Al(MnFe)Si dispersoids, microstructure, mechanical properties, creep resistance
Déposé le:25 juill. 2023 18:43
Dernière modification:25 juill. 2023 18:43
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