Properties of AlSi9Cu3 metal matrix micro and nano composites produced via stir casting

The effects of micro and nano sized reinforcement particles on microstructure and mechanical properties of aluminium alloy-based metal matrix composites were investigated in this study. AlSi9Cu3 alloy was reinforced with micro and nano sized ceramic reinforcement particles at different weight fracti...

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Main Authors: Ünal Tennur Gülşen, Diler Ege Anıl
Format: Article
Language:English
Published: De Gruyter 2018-08-01
Series:Open Chemistry
Subjects:
Online Access:https://doi.org/10.1515/chem-2018-0079
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spelling doaj-fac52c8754e14501a0aff14500ce68132021-09-06T19:19:34ZengDe GruyterOpen Chemistry2391-54202018-08-0116172673110.1515/chem-2018-0079chem-2018-0079Properties of AlSi9Cu3 metal matrix micro and nano composites produced via stir castingÜnal Tennur Gülşen0Diler Ege Anıl1Ege University, Interdisciplinary Division of Materials Science and Engineering, Izmir, TurkeyEge University, Department of Mechanical Engineering, Izmir, TurkeyThe effects of micro and nano sized reinforcement particles on microstructure and mechanical properties of aluminium alloy-based metal matrix composites were investigated in this study. AlSi9Cu3 alloy was reinforced with micro and nano sized ceramic reinforcement particles at different weight fractions by using a stir casting method. The mechanical tests (hardness, three point bending) were performed to determine the mechanical properties of AlSi9Cu3 alloy-based microcomposites (AMMCs) and nanocomposites (AMMNCs). The experimental results have shown that the size and weight fraction of reinforcement particles have a strong influence on the microstructure and the mechanical properties of AlSi9Cu3 alloy-based microcomposites and nanocomposites. The relative densities of all AMMC and AMMNC samples are lower than unreinforced AlSi9Cu3 alloy due to porosity formation with the increase of weight fraction of reinforcement particles. As weight fraction increases, hardness values of AMMCs and AMMNCs increase. Maximum flexural strength can be obtained at 3.5wt.% for the AMMC sample with microsized Al2O3 particles and at 2wt.% for the AMMNC sample with nano-sized Al2O3 particles. After the weight fractions exceed these values, flexural strengths of both AMMCs and AMMNCs decrease due to clustering of Al2O3 particles.https://doi.org/10.1515/chem-2018-0079metal matrix compositesnanocompositesstir castingmicrostructuremechanical properties
collection DOAJ
language English
format Article
sources DOAJ
author Ünal Tennur Gülşen
Diler Ege Anıl
spellingShingle Ünal Tennur Gülşen
Diler Ege Anıl
Properties of AlSi9Cu3 metal matrix micro and nano composites produced via stir casting
Open Chemistry
metal matrix composites
nanocomposites
stir casting
microstructure
mechanical properties
author_facet Ünal Tennur Gülşen
Diler Ege Anıl
author_sort Ünal Tennur Gülşen
title Properties of AlSi9Cu3 metal matrix micro and nano composites produced via stir casting
title_short Properties of AlSi9Cu3 metal matrix micro and nano composites produced via stir casting
title_full Properties of AlSi9Cu3 metal matrix micro and nano composites produced via stir casting
title_fullStr Properties of AlSi9Cu3 metal matrix micro and nano composites produced via stir casting
title_full_unstemmed Properties of AlSi9Cu3 metal matrix micro and nano composites produced via stir casting
title_sort properties of alsi9cu3 metal matrix micro and nano composites produced via stir casting
publisher De Gruyter
series Open Chemistry
issn 2391-5420
publishDate 2018-08-01
description The effects of micro and nano sized reinforcement particles on microstructure and mechanical properties of aluminium alloy-based metal matrix composites were investigated in this study. AlSi9Cu3 alloy was reinforced with micro and nano sized ceramic reinforcement particles at different weight fractions by using a stir casting method. The mechanical tests (hardness, three point bending) were performed to determine the mechanical properties of AlSi9Cu3 alloy-based microcomposites (AMMCs) and nanocomposites (AMMNCs). The experimental results have shown that the size and weight fraction of reinforcement particles have a strong influence on the microstructure and the mechanical properties of AlSi9Cu3 alloy-based microcomposites and nanocomposites. The relative densities of all AMMC and AMMNC samples are lower than unreinforced AlSi9Cu3 alloy due to porosity formation with the increase of weight fraction of reinforcement particles. As weight fraction increases, hardness values of AMMCs and AMMNCs increase. Maximum flexural strength can be obtained at 3.5wt.% for the AMMC sample with microsized Al2O3 particles and at 2wt.% for the AMMNC sample with nano-sized Al2O3 particles. After the weight fractions exceed these values, flexural strengths of both AMMCs and AMMNCs decrease due to clustering of Al2O3 particles.
topic metal matrix composites
nanocomposites
stir casting
microstructure
mechanical properties
url https://doi.org/10.1515/chem-2018-0079
work_keys_str_mv AT unaltennurgulsen propertiesofalsi9cu3metalmatrixmicroandnanocompositesproducedviastircasting
AT dileregeanıl propertiesofalsi9cu3metalmatrixmicroandnanocompositesproducedviastircasting
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