Aluminium Matrix Composites Reinforced with Si3N4, AlN and ZrB2, Produced by Conventional Powder Metallurgy and Mechanical Alloying

The homogeneous distribution of the reinforcement phase is a prime requisite for a composite material to present its superior performance. Powder metallurgy can produce composite materials in the whole range of matrix reinforcement composition...

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Main Authors: João Batista Fogagnolo, Maria Helena Robert, Francisco Velasco, José M. Torralba
Format: Article
Language:English
Published: Hosokawa Powder Technology Foundation 2014-03-01
Series:KONA Powder and Particle Journal
Subjects:
Online Access:https://www.jstage.jst.go.jp/article/kona/22/0/22_2004017/_pdf/-char/en
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spelling doaj-4b05bb4a539846c4b0305f82b3ebb07e2021-02-03T01:08:15ZengHosokawa Powder Technology FoundationKONA Powder and Particle Journal0288-45342187-55372014-03-0122014315010.14356/kona.2004017konaAluminium Matrix Composites Reinforced with Si3N4, AlN and ZrB2, Produced by Conventional Powder Metallurgy and Mechanical AlloyingJoão Batista Fogagnolo0Maria Helena Robert1Francisco Velasco2José M. Torralba3Department of Materials Engineering, Mechanical Engineering Faculty, State University of CampinasDepartment of Materials Engineering, Mechanical Engineering Faculty, State University of CampinasMaterials Science and Engineering Dept. Universidad Carlos III de MadridMaterials Science and Engineering Dept. Universidad Carlos III de MadridThe homogeneous distribution of the reinforcement phase is a prime requisite for a composite material to present its superior performance. Powder metallurgy can produce composite materials in the whole range of matrix reinforcement composition, without the segregation typical of the casting process, and mechanical alloying serves to optimise the particle mixing stage, enhancing the reinforcement distribution. This work investigates the use of mechanical alloying plus hot extrusion to obtain Al6061 matrix composites reinforced with Si3N4, AlN and ZrB2, and compares the result with the same composite materials obtained by more conventional powder metallurgy techniques. The incorporation of the reinforcement does not suffice to produce a significant improvement of the mechanical properties of the conventional powder metallurgy composites. Mechanical alloying breaks the reinforcement particle clusters, eliminates most of the defects present in these particles, decreases their size and enhances their distribution, which together with the metallurgical phenomena that change the metallic matrix, such as work hardening and oxide and carbide dispersion, produces an increase of about 150% in the hardness of the powder, when compared with the hardness of the as-received, non-reinforced aluminium powder alloy; and of 100% in the hardness and ultimate tensile strength of the consolidated materials, when compared with material of same composition processed by conventional powder metallurgy.https://www.jstage.jst.go.jp/article/kona/22/0/22_2004017/_pdf/-char/enaluminiumpowder metallurgymechanical alloyinghot extrusion
collection DOAJ
language English
format Article
sources DOAJ
author João Batista Fogagnolo
Maria Helena Robert
Francisco Velasco
José M. Torralba
spellingShingle João Batista Fogagnolo
Maria Helena Robert
Francisco Velasco
José M. Torralba
Aluminium Matrix Composites Reinforced with Si3N4, AlN and ZrB2, Produced by Conventional Powder Metallurgy and Mechanical Alloying
KONA Powder and Particle Journal
aluminium
powder metallurgy
mechanical alloying
hot extrusion
author_facet João Batista Fogagnolo
Maria Helena Robert
Francisco Velasco
José M. Torralba
author_sort João Batista Fogagnolo
title Aluminium Matrix Composites Reinforced with Si3N4, AlN and ZrB2, Produced by Conventional Powder Metallurgy and Mechanical Alloying
title_short Aluminium Matrix Composites Reinforced with Si3N4, AlN and ZrB2, Produced by Conventional Powder Metallurgy and Mechanical Alloying
title_full Aluminium Matrix Composites Reinforced with Si3N4, AlN and ZrB2, Produced by Conventional Powder Metallurgy and Mechanical Alloying
title_fullStr Aluminium Matrix Composites Reinforced with Si3N4, AlN and ZrB2, Produced by Conventional Powder Metallurgy and Mechanical Alloying
title_full_unstemmed Aluminium Matrix Composites Reinforced with Si3N4, AlN and ZrB2, Produced by Conventional Powder Metallurgy and Mechanical Alloying
title_sort aluminium matrix composites reinforced with si3n4, aln and zrb2, produced by conventional powder metallurgy and mechanical alloying
publisher Hosokawa Powder Technology Foundation
series KONA Powder and Particle Journal
issn 0288-4534
2187-5537
publishDate 2014-03-01
description The homogeneous distribution of the reinforcement phase is a prime requisite for a composite material to present its superior performance. Powder metallurgy can produce composite materials in the whole range of matrix reinforcement composition, without the segregation typical of the casting process, and mechanical alloying serves to optimise the particle mixing stage, enhancing the reinforcement distribution. This work investigates the use of mechanical alloying plus hot extrusion to obtain Al6061 matrix composites reinforced with Si3N4, AlN and ZrB2, and compares the result with the same composite materials obtained by more conventional powder metallurgy techniques. The incorporation of the reinforcement does not suffice to produce a significant improvement of the mechanical properties of the conventional powder metallurgy composites. Mechanical alloying breaks the reinforcement particle clusters, eliminates most of the defects present in these particles, decreases their size and enhances their distribution, which together with the metallurgical phenomena that change the metallic matrix, such as work hardening and oxide and carbide dispersion, produces an increase of about 150% in the hardness of the powder, when compared with the hardness of the as-received, non-reinforced aluminium powder alloy; and of 100% in the hardness and ultimate tensile strength of the consolidated materials, when compared with material of same composition processed by conventional powder metallurgy.
topic aluminium
powder metallurgy
mechanical alloying
hot extrusion
url https://www.jstage.jst.go.jp/article/kona/22/0/22_2004017/_pdf/-char/en
work_keys_str_mv AT joaobatistafogagnolo aluminiummatrixcompositesreinforcedwithsi3n4alnandzrb2producedbyconventionalpowdermetallurgyandmechanicalalloying
AT mariahelenarobert aluminiummatrixcompositesreinforcedwithsi3n4alnandzrb2producedbyconventionalpowdermetallurgyandmechanicalalloying
AT franciscovelasco aluminiummatrixcompositesreinforcedwithsi3n4alnandzrb2producedbyconventionalpowdermetallurgyandmechanicalalloying
AT josemtorralba aluminiummatrixcompositesreinforcedwithsi3n4alnandzrb2producedbyconventionalpowdermetallurgyandmechanicalalloying
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