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Synthesis of metal matrix composites through stir casting process - a review

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Metal is the one of the important material in engineering materials because of their high strength to weight ratio. However the pure metals cannot be used as engineering materials due to their ductile property. So, to improve their mechanical properties, some of the high strength materials (not metals) were added as reinforcement to improve the mechanical properties of pure metals and the newly developed material is called as metal matrix composites. At present, Aluminium, Copper, Magnesium, Titanium and Iron have been used as matrix materials and materials like TiC, SiC, B4C, WC, Cr3C, TiO2, ZrO2, Gr, MoS2 and Si3N4 have been used as reinforcements. There are many processing techniques to fabricate metal matrix composites namely stir casting, ultra-sonic assisted casting, compo-casting, rheo casting, powder metallurgy technique, etc,. Among these, stir casting process is the most suitable and economical method to fabricate the metal matrix composites. In this article, an effort has been made to review the work of various researchers to fabricate metal matrix composites through stir casting process.
Rocznik
Strony
357--369
Opis fizyczny
Bibliogr. 30 poz.
Twórcy
  • Department of Mechanical Engineering, M. Kumarasamy College of Engineering, Karur, India
  • Department of Mechanical Engineering, M. Kumarasamy College of Engineering, Karur, India
  • Department of Mechanical Engineering, Mother Terasa College of Engineering and Technology, Pudukkottai, India
  • Department of Mechanical Engineering, Chendhuran College of Engineering and Technology, Pudukkottai, India
Bibliografia
  • [1] Hashim, J., Looney, L., Hashmi, M. S. J.: Metal matrix composites: production by the stir casting method, Journal of Materials Processing Technology, 92, 1–7, 1999.
  • [2] Rana, R. S., Purohit, R., Das, S.: Tribological behaviour of AA 5083/Micron and Nano SiC composites fabricated by ultrasonic assisted stir casting process, International Journal of Scientific and Research Publications, 3, 9, 1–7, 2013.
  • [3] Narasimha Murthy, I., Arun Babu, N.,Babu Rao, J.: Comparative studies on microstructure and mechanical properties of granulated blast furnace slag and fly ash reinforced AA 2024 composites, Journal of Minerals and Materials Characterization and Engineering, 2, 319–333, 2014.
  • [4] Rajmohan, T., Ranganathan, S., Suryakumari, T. S. A.: Experimental Study on fabrication of hybrid (Al+TiO2+Gr) metal matrix composites, International Journal of Advanced Engineering Applications, 7, 11–14, 2014.
  • [5] Parthiban, P., Harimaheswaran, R.: Al-Mg based hybrid metal matrix composite reinforced with graphite and sic- preparation, Mechanical Behaviours Test and Microstructure Analysis, International Journal of Innovative Research in Engineering Science and Technology, 4, 107–111, 2016.
  • [6] Ravichandran. M., Dineshkumar, S.: Synthesis of Al-TiO2 composites through liquid powder metallurgy route, International Journal of Mechanical Engineering, 1, 12–17, 2014.
  • [7] Rajmohan, T., Palanikumar, K., Ranganathan, S.: Evaluation of mechanical and wear properties of hybrid aluminium matrix composites, Trans. Nonferrous Met. Soc. China, 23, 2509–2517, 2013.
  • [8] Shivaprakash, Y. M., Prasad, S. K. V., Basavaraj, Y.: Dry sliding wear characteristics of fly ash reinforced AA2024 based stir cast composite, International Journal of Current Engineering and Technology, 3, 911–921, 2013.
  • [9] Nanda Kumar, N., Kanagaraj, P.: Study of mechanical properties of aluminium based hybrid metal matrix composites, International Journal of Modern Engineering Research, 166–172, 2014.
  • [10] Ghanaraja, S., Ramanuja, C., Ravikumar, K. S., Madhusudan, B. M.: Study on mechanical properties of hot extruded Al(Mg)-TiO2 composites, American Journal of Materials Science, 5, 188–193, 2015.
  • [11] Nagara, M., Auradi, V., Ravishankar, M. K.: Mechanical Behaviour of Aluminium 6061 Alloy Reinforced With Al2O3 and graphite particulate hybrid metal matrix composites, International Journal of Research in Engineering and Technology, 1, 193–198, 2013.
  • [12] Hajizamani, M., Baharvandi, H.: Fabrication and studying the mechanical properties of A356 alloy reinforced with Al2O3-10% Vol. ZrO2 nanoparticles through stir casting, Advances in Materials Physics and Chemistry, 1, 26–30, 2011.
  • [13] Rajmohan, T., Ranganathan, S., Suryakumari, T.S.A.: Experimental study on fabrication of hybrid Al+TiO2+Gr) metal matrix composites, International Journal of Advanced Engineering Applications, 7, 11–14, 2014.
  • [14] Sozhamannan, G. G., Balasivanandha Prabu, S., Venkatagalapathy, V. S. K.: Effect of processing parameters on metal matrix composites: stir casting process, Journal of Surface Engineered Materials and Advanced Technology, 2, 1, 2012.
  • [15] Alaneme, K. K., Bodunrin, M. O.: Corrosion behavior of alumina reinforced aluminium (6063) metal matrix composites, Journal of Minerals & Materials Characterization & Engineering, 10, 12, 1153–1165, 2011.
  • [16] Antony Arul Prakash, M. D., Arockia Jaswin, M.: Microstructural analysis of aluminium hybrid metal matrix composites developed using stir casting process, International Journal of Advances in Engineering, 1, 3, 333 – 339, 2015.
  • [17] Mathur, S., Barnawal, A.: Effect of process parameter of stir casting on metal matrix composites, International Journal of Science and Research, 2, 12, 395–398, 2013.
  • [18] Madhusudana, S., Sarcar, M. M. M., Rao, N. B. R. M.: Mechanical properties of aluminum-copper (p) composite metallic materials, Journal of Applied Research and Technology, 14, 293–299, 2016.
  • [19] Koti, S., Halesh, S. B., Nagaral, M., Auradi, V.: Microstructure and tensile behavior of AA 7475-B4C composites, International Journal of Engineering Research, 5, 6, 1129–1254, textbf2016.
  • [20] Rajeshkumar Gangaram Bhandare, Parshuram and M. Sonawane: Preparation of aluminium matrix composite by using stir casting method, International Journal of Engineering and Advanced Technology, 3, 2, 2013.
  • [21] Raghavendra, N., Ramamurthy, V. S.: Development and wear characterization of Al7075/Al2O3/SiC hybrid particulate metal matrix composite developed by stir casting, International Journal of Research in Engineering and Technology, 4, 8, 2015.
  • [22] Nair, S., Joshi, N.: Preparation of Al6061/SiC metal matrix composite (mmc) using stir casting technique, International Journal of Advance Research and Innovative Ideas in Education, 1, 3, 76–82, 2015.
  • [23] Lim, C. Y. H., Lim, S. C., Gupta, M.: Wear behaviour of sicp-reinforced magnesium matrix composites, Wear, 255, 629, 2003.
  • [24] Jayalakshmi, S., Kailas, S. V., Seshan, S.: Tensile behaviour of squeeze cast AM100 magnesium alloy and its Al2O3 fibre reinforced composites, Composites: Part A, 33, 1135, 2002.
  • [25] Wang, X. J., Wang, N. Z., Wang, L. Y., Hu, X. S., Wu, K., Wang, Y. Q., Huang, Y. D.: Processing, microstructure and mechanical properties of micro-SiC particles reinforced magnesium matrix composites fabricated by stir casting assisted by ultrasonic treatment processing, Materials and Design, 57, 638, 2014.
  • [26] Kandil, A.: Microstructure and mechanical properties of sicp/az91 magnesium matrix composites processed by stir casting, Journal of Engineering Sciences, 40, 1, 255–270, 2012.
  • [27] Lianxi, H. and Erde, W.: Processing, microstructure and properties of ultrasonically processed in situ MgO–Al2O3–MgAl2O4 dispersed magnesium alloy composites, Materials Science and Engineering, A, 267–278, 2000.
  • [28] Rzychon, T., Dybowski, B., Gryc, A., Dudek, M.: Mechanical properties and microstructure of WE43 magnesium matrix composite reinforced SiC particles, Archieves of Foundry Engineering, 15, 1, 99–102, 2015.
  • [29] Kumar, J., Kumar, V., Kumar, S., Sandeep,: Development and investigations of copper metal matrix composites reinforced with graphite, International Research Journal of Engineering and Technology, 3, 5, 2016.
  • [30] Kanayo Alaneme, K., Ufuoma Odoni, B.: Mechanical properties, wear and corrosion behavior of copper matrix composites reinforced with steel machining chips, Engineering Science and Technology, 19, 1593–1599, 2016.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-efd08735-9d4c-4d28-b611-ba73a94ab892
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