Vol. 20 No. 5 (2017) Cover Image
Vol. 20 No. 5 (2017)

Published: November 30, 2017

Pages: 1024-1033

Articles

Microstructure and Density Characterization for Nano and Micro Alumina-Aluminum Composites Produced by Powder Metallurgy Process

Abstract

Al2O3 is a major reinforcement in aluminum-based composites, which have been developing rapidly in recent years. The aim of this paper is to investigate the effect of alumina phases and amounts on the physical properties of fabricated Al-Al2O3 composite. Alpha micro and gamma nano of alumina with particle size of 30µm and 20 nm respectively reinforced aluminum matrix of 45 µm. The percentage of reinforcement material were in the range of (5, 10 and 15wt.%) fabricated by powder metallurgy technique. Specimens dimensions were a disc specimens with 11mm diameter and 5 mm thickness. The green density was achieved under compaction pressure of 500MPa, and then sintered under pressure less sintering at 500ºC in a vacuumed tube furnace for two hours Physical properties of the composite samples have been studied such as relative density, sintered density, porosity, microstructure characteristics, particles distribution, agglomeration, grain sizes and  granularity accumulation distribution. It has been noticed that at the micro alumina phase, its relative densities are decreased when there is an increase in amount of micro alumina addition, on the contrary in case of nano composites, where the relative density are increasing along with the increase in nano alumina addition. At micro and nano composites, the produced relative densities are less than the pure aluminum relative density. Agglomeration are increasing with the increase in amount of reinforcement, while its more obvious with nano composite. Grain size reduced with the increase in amount of alumina in micro and nano composites, while, the obtained average grain size diameter is less in nano composite than in micro composites. It is obvious from the results that the variation in physical properties and microstructure of Al-Al2O3 composite are depends on both of alumina phases (size) and percentages. At 15wt.% of nano alumina higher relative density and lower porosity will be obtained.

References

  1. K. Ulrich Kainer, "Metal matrix composites: custom-made materials for automotive and aerospace engineering," WILEY-VCH Verlag GmbH & Co., (2006).
  2. M. Kok, "Production and mechanical properties of Al2O3 particle-reinforced 2024 aluminium alloy composites," Elsevier Ltd., Journal of Materials Processing Technology, (2004).
  3. G. S. Upadhyaya, "Powder Metallurgy Technology," Cambridge International Science Publishing, ISBN 1 898326 40 1, (2002).
  4. M. Rahimian, Nader Parvin, Naser Ehsani, "Investigation of particle size and amount of alumina on microstructure and mechanical properties of Al matrix composite made by powder metallurgy," Elsevier B.V., Materials Science and Engineering, (2010).
  5. L. Filipponi and Duncan Sutherland, "Nanotechnologies: Principles, Applications, Implications and Hands on Activities," European Union, (2012).
  6. M. Rahimian, Naser Ehsani, Nader Parvin, Hamid Reza Baharvandi, "The effect of particle size, sintering temperature and sintering time on the properties of Al–Al2O3 composites, made by powder metallurgy," Elsevier Ltd., Journal of Materials Processing Technology, (2009).
  7. A. Mazen and A.Y. Ahmed, "Mechanical Behavior of Al- Al2O3 MMC Manufactured by PM Techniques Part I—Scheme I Processing Parameters," ASM International, Volume 7(3), June 1998-393, (1998).
  8. H. Mahboob, S. A. Sajjadi, S. M. Zebarjad, "Synthesis of Al-Al2O3 Nano-Composite by Mechanical Alloying and Evaluation of the Effect of Ball Milling Time on the Microstructure and Mechanical Properties," The International Conference on MEMS and Nanotechnology, ICMN'08, 13-15, Kuala Lumpur, Malaysia, (2008).
  9. M. Marigo, D.L. Cairns, M. Davies, A. Ingram, E.H. Stitt, "A numerical comparison of mixing efficiencies of solids in a cylindrical vessel subject to a range of motions," Elsevier B.V., Powder Technology, (2011).
  10. J. Hatch, "Aluminum: properties and physical metallurgy," ASM International, (1984).
  11. A. Slipenyuk, V. Kuprin, Yu. Milman, V. Goncharuk, J. Eckert, "Properties of P/M processed particle reinforced metal matrix composites specified by reinforcement concentration and matrix-to-reinforcement particle size ratio," Elsevier Ltd., Acta Materialia Inc., (2005).
  12. R. Riedel and I-Wei Chen, "Ceramics Science and Technology," Volume 2: Properties, WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim, (2010).
  13. P. Cullen, Rodolfo J. Romañach, Nicolas Abatzoglou and Chris D. Rielly, "Pharmaceutical Blending and Mixing," John Wiley & Sons, Ltd, (2015).
  14. J. Bridgwater, "Mixing of powders and granular materials by mechanical means—A perspective," Elsevier B.V., Chinese Society of Particuology and Institute of Process Engineering, (2012).
  15. Marketing, Weighing Technology, "Manual of Weighing Applications," Part 1, (1999).
  16. R. Purohit, R. S. Rana and C. S. Verma, "Fabrication of Al-SiCp composite through powder metallurgy process and testing of properties," International Journal of Engineering Research and Applications (IJERA), Vol. 2, Issue 3, (2012).