Effects of SiC Nanoparticle Content on the Microstructure and Tensile Mechanical Properties of Ultrafine Grained AA6063-SiCnp Nanocomposites Fabricated by Powder Metallurgy

Ultrafine grained AA6063-SiCnpnanocomposites with 1, 5 and 10 vol.% SiCnphave been fabricated by a novel powder metallurgy process. This process combines high energy ball milling of a mixture of 6063 alloy granules made from machining chips and SiC nanoparticles and thermomechanical powder consolida...

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Main Authors: Yao, X., Zhang, Z., Zheng, Y., Kong, C., Quadir, Md Zakaria, Liang, J., Chen, Y., Munroe, P., Zhang, D.
Format: Journal Article
Published: Zhongguo Kexueyuan Jinshu Yanjiusuo 2017
Online Access:http://hdl.handle.net/20.500.11937/69519
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author Yao, X.
Zhang, Z.
Zheng, Y.
Kong, C.
Quadir, Md Zakaria
Liang, J.
Chen, Y.
Munroe, P.
Zhang, D.
author_facet Yao, X.
Zhang, Z.
Zheng, Y.
Kong, C.
Quadir, Md Zakaria
Liang, J.
Chen, Y.
Munroe, P.
Zhang, D.
author_sort Yao, X.
building Curtin Institutional Repository
collection Online Access
description Ultrafine grained AA6063-SiCnpnanocomposites with 1, 5 and 10 vol.% SiCnphave been fabricated by a novel powder metallurgy process. This process combines high energy ball milling of a mixture of 6063 alloy granules made from machining chips and SiC nanoparticles and thermomechanical powder consolidation by spark plasma sintering and hot extrusion. The microstructure and tensile mechanical properties of the samples were investigated in detail. Increasing the SiC nanoparticle content from 1 to 10 vol.%, the yield strength and ultimate tensile strength increased from 296 and 343 MPa to 545 and 603 MPa respectively, and the elongation to fracture decreased from 10.0%, to 2.3%. As expected, a higher SiC nanoparticle content generates a stronger inhibiting effect to grain growth during the thermomechanical powder consolidation process. Analysis of the contributions of various strengthening mechanisms shows that a higher SiC nanoparticle content leads to a higher contribution from nanoparticle strengthening, but grain boundary strengthening still makes the largest contribution to the strength of the nanocomposite. When the SiC nanoparticle content increased to 10 vol.%, the failure of the nanocomposite was initiated at weakly-bonded interparticle boundaries (IPBs), indicating that with a high flow stress during tensile deformation, the failure of the material is more sensitive to the presence of weakly-bonded IPBs.
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institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T10:41:36Z
publishDate 2017
publisher Zhongguo Kexueyuan Jinshu Yanjiusuo
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spelling curtin-20.500.11937-695192019-01-21T00:58:47Z Effects of SiC Nanoparticle Content on the Microstructure and Tensile Mechanical Properties of Ultrafine Grained AA6063-SiCnp Nanocomposites Fabricated by Powder Metallurgy Yao, X. Zhang, Z. Zheng, Y. Kong, C. Quadir, Md Zakaria Liang, J. Chen, Y. Munroe, P. Zhang, D. Ultrafine grained AA6063-SiCnpnanocomposites with 1, 5 and 10 vol.% SiCnphave been fabricated by a novel powder metallurgy process. This process combines high energy ball milling of a mixture of 6063 alloy granules made from machining chips and SiC nanoparticles and thermomechanical powder consolidation by spark plasma sintering and hot extrusion. The microstructure and tensile mechanical properties of the samples were investigated in detail. Increasing the SiC nanoparticle content from 1 to 10 vol.%, the yield strength and ultimate tensile strength increased from 296 and 343 MPa to 545 and 603 MPa respectively, and the elongation to fracture decreased from 10.0%, to 2.3%. As expected, a higher SiC nanoparticle content generates a stronger inhibiting effect to grain growth during the thermomechanical powder consolidation process. Analysis of the contributions of various strengthening mechanisms shows that a higher SiC nanoparticle content leads to a higher contribution from nanoparticle strengthening, but grain boundary strengthening still makes the largest contribution to the strength of the nanocomposite. When the SiC nanoparticle content increased to 10 vol.%, the failure of the nanocomposite was initiated at weakly-bonded interparticle boundaries (IPBs), indicating that with a high flow stress during tensile deformation, the failure of the material is more sensitive to the presence of weakly-bonded IPBs. 2017 Journal Article http://hdl.handle.net/20.500.11937/69519 10.1016/j.jmst.2016.09.022 Zhongguo Kexueyuan Jinshu Yanjiusuo restricted
spellingShingle Yao, X.
Zhang, Z.
Zheng, Y.
Kong, C.
Quadir, Md Zakaria
Liang, J.
Chen, Y.
Munroe, P.
Zhang, D.
Effects of SiC Nanoparticle Content on the Microstructure and Tensile Mechanical Properties of Ultrafine Grained AA6063-SiCnp Nanocomposites Fabricated by Powder Metallurgy
title Effects of SiC Nanoparticle Content on the Microstructure and Tensile Mechanical Properties of Ultrafine Grained AA6063-SiCnp Nanocomposites Fabricated by Powder Metallurgy
title_full Effects of SiC Nanoparticle Content on the Microstructure and Tensile Mechanical Properties of Ultrafine Grained AA6063-SiCnp Nanocomposites Fabricated by Powder Metallurgy
title_fullStr Effects of SiC Nanoparticle Content on the Microstructure and Tensile Mechanical Properties of Ultrafine Grained AA6063-SiCnp Nanocomposites Fabricated by Powder Metallurgy
title_full_unstemmed Effects of SiC Nanoparticle Content on the Microstructure and Tensile Mechanical Properties of Ultrafine Grained AA6063-SiCnp Nanocomposites Fabricated by Powder Metallurgy
title_short Effects of SiC Nanoparticle Content on the Microstructure and Tensile Mechanical Properties of Ultrafine Grained AA6063-SiCnp Nanocomposites Fabricated by Powder Metallurgy
title_sort effects of sic nanoparticle content on the microstructure and tensile mechanical properties of ultrafine grained aa6063-sicnp nanocomposites fabricated by powder metallurgy
url http://hdl.handle.net/20.500.11937/69519