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Aluminium Matrix Composites Reinforced by Nano Fe3O4 Doped with TiO2 by Thermomechanical Process

Part of the Conference Proceedings of the Society for Experimental Mechanics Series book series (CPSEMS)

Abstract

In this work, scrap Aluminium Matrix Composites (AMCs) reinforced with 10 wt% nano iron oxide (Fe3O4) were produced and the influence of doping Fe3O4 with TiO2 at 2.5 %, 5 %, 7.5 % and 10 % wt%, was studied. For the dispersion of the reinforcement and the study of the matrix/reinforcement, interface was evaluated by Scanning Electron Microscopy (SEM). Density and microhardness of the composites were measured and compared. Wear and creep response of the composites were evaluated by a nanoindenter, Furthermore modulus and hardness of the composites were calculated using the unloading data from the nanoindentation tests. Relatively homogenous distribution of the constituents, with a good bond between matrix and the reinforcements was observed. It was also observed that wear behaviour improved with the increase in the TiO2 content.

Keywords

  • Scrap Al matrix composites
  • Iron oxide (Fe3O4)
  • Microstructural analysis
  • Mechanical performance
  • Magnetic saturation

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Correspondence to L. F. P. Ferreira .

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Ferreira, L.F.P., Miskioglu, I., Bayraktar, E., Robert, M.H. (2017). Aluminium Matrix Composites Reinforced by Nano Fe3O4 Doped with TiO2 by Thermomechanical Process. In: Ralph, W., Singh, R., Tandon, G., Thakre, P., Zavattieri, P., Zhu, Y. (eds) Mechanics of Composite and Multi-functional Materials, Volume 7 . Conference Proceedings of the Society for Experimental Mechanics Series. Springer, Cham. https://doi.org/10.1007/978-3-319-41766-0_30

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  • DOI: https://doi.org/10.1007/978-3-319-41766-0_30

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