Microstructure and Properties of SiC Particle Reinforced Aluminum Matrix Composites by Powder Metallurgy Method

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The aim of this study is to investigate the effect of SiC particle pretreatment, aluminum matrix particle size and sintering temperature on relative density, hardness, microstructure and wear resistance to SiC particle einforced aluminum matrix composites. To this end, the amount of 16.7 wt.% SiC with average particle sizes 20μm was used along with pure aluminum of average particle size of 75 μm and 25μm. Powder metallurgy is a method used in the fabrication of this composite in which the powders were mixed using a planetary ball mill. By analyzing SEM micrograph and the Property test, it is concluded that SiC particle pretreatment has significant effect on the morphology of pecimens. pretreatment increase the interface adhesion, improve the wettability. SiC is uniformly distributed in the matrix, with good relation to the substrate, the maximum hardness is 51.1HB, the minimum wear rate is 0.1684%, while the density is 97.3%.For the same SiC content and particle size, the smaller the particle size of aluminum matrix is, the higher wear resistance of composite materials is on condition that others are same, the higher sintering temperature and the higher the wearability of composites, the wear resistance of the composite material is significantly improved after SiC pre-processing.The relative density increases with increasing aluminum matrix particle sizes under the same pressure and the holding time. The actual density of all samples reached the theoretical density over 96%, to a maximum of 98.9%.

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131-134

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October 2013

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] M. Kok, J. Mater. Process. Technol. 161 (2005) 381–387.

Google Scholar

[2] L.A. Dobrzanski, A. WEodarczyk, M. Adamiak, J. Mater. Process. Technol. 175(2006) 186–191.

Google Scholar

[3] Hang Wang,Dingpei Xie,Shiming Hao, et al. The latest development and prospect of SiC particle reinforced Al-based composite, Rarc Metals and Cemented Carbides. Vol. 41(3) pp.50-53 (2013) In Chinese.

Google Scholar

[4] J.M. Torralba, C.E. daCost, F. Velasco, J. Mater. Process. Technol. 133 (2003)203–206.

Google Scholar

[5] L.A. Dobrzanski, A. WEodarczyk, M. Adamiak, J. Mater. Process. Technol. 175(2006) 186–191.

Google Scholar

[6] B. Torres, H. Lieblich, J. Ibanez, A. Garcia-Escorial, Scripta Mater. 47 (2002)45.

Google Scholar

[7] B.G. Park, A.G. Crosky, A.K. Hellier, J. Mater. Sci. 36 (2001) 2417–2426.

Google Scholar

[8] A. Slipenyuk, V. Kuprin, Yu. Milman, V. Goncharuk, J. Eckert, Acta Mater. 54(2006) 157–166.

Google Scholar