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Original Articles

Development of functionally graded Cu–Sn–Ni/Al2O3 composite for bearing applications and investigation of its mechanical and wear behavior

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References

  • Aleksandar, V. 2010. Structural, mechanical and tribological properties of A356 aluminium alloy reinforced with Al₂O₃, SiC and SiC graphite particles. Journal of Alloys and Compounds 506:631–39. doi:10.1016/j.jallcom.2010.07.028
  • Bares, J. A., N. Argibay, N. Mauntler, G. J. Dudder, S. S. Perry, G. R. Bourne, and W. G. Sawyer. 2009. High current density copper-on-copper sliding electrical contacts at low sliding velocities. Wear 267:417–24. doi:10.1016/j.wear.2008.12.062
  • Barmouz, M., P. Asadi, M. K. B. Givi, and M. Taherishargh. 2011. Investigation of mechanical properties of Cu/SiC composite fabricated by FSP: Effect of SiC particles size and volume fraction. Material Science Engineering A 528 (3):1740–49. doi:10.1016/j.msea.2010.11.006
  • Dhokey, N. B., and R. K. Paretkar. 2008. Effect of ceramic particulate type on microstructure and properties of copper matrix composites synthesized by friction stir processing. Wear 265 (1–2):117–33. doi:10.1016/j.wear.2007.09.001
  • Ferhat, G., and M. Acilar. 2004. Effect of the reinforcement volume fraction on the dry sliding wear behaviour of Al-10Si/SiCp composites produced by vacuum infiltration technique. Composites Science and Technology 19:59–66.
  • Fukui, Y. 1991. Fundamental investigation of functionally gradient materials manufacturing system using centrifugal force. JSME International Journal Series III 34:144–48.
  • Ipek, R. 2005. Adhesive wear behaviour of B4C and SiC reinforced 4147 Al matrix composites (Al/B4C–Al/SiC). Journal of Materials Processing and Technology 162:71–75. doi:10.1016/j.jmatprotec.2005.02.207
  • Jedamzik, R., A. Neubrand, and J. Rödel. 2000. Functionally graded materials by electrochemical processing and infiltration: application to tungsten/copper composites. Journal of Materials Science 35:477–86.
  • Kaczmar, J. W., and K. Pietrzak. 2000. Investigation of cutting force, surface roughness and flank wear in turning of in-situ Al6061-TiC metal matrix composite. Journal of Material Processing Technology 106:58–67. doi:10.1016/s0924-0136(00)00639-7
  • Kennedy, F. E., A. C. Balbahadur, and D. S. Lashmore. 1997. The friction and wear of cu-based basal short fiber carbide particulate metal matrix composites for brake applications. Wear 203/204:715–21. doi:10.1016/s0043-1648(96)07451-0
  • Kieback, B., A. Neubrand, and H. Riedel. 2003. Processing techniques for functionally graded materials. Materials Science and Engineering: A, 362 (1):81–106.
  • Maleque, M. A., and S. Sugrib. 2016. The tribological behaviour of Fe‐C‐Al cast iron – Effect of temperature. Journal of Industrial Lubrication and Tribology 65:320–27. doi:10.1108/ilt-03-2011-0019
  • Nicolas, A. 2011. Copper–beryllium metal fiber brushes in high current density sliding electrical contacts. Wear 268:03–09.
  • Radhika, N., and R. Raghu. 2015. Evaluation of dry sliding wear characteristics of LM 13 Al/B4C composites. Tribology in Industry 37:20–28.
  • Radhika, N., P. Shivaram, and K. T. Vijaykarthik. 2015. Adhesive wear behaviour of aluminium hybrid metal matrix composites using genetic algorithm. Journal of Engineering Science and Technology 10:258–68.
  • Radhika, N., R. Subramanian, B. Devasenapathi, R. Subramany, and K. Vishnu. 2013. Pattern recognition based surface roughness prediction in turning hybrid metal matrix composite using random forest algorithm. Journal of Industrial Lubrication and Tribology 65:311–19. doi:10.1108/ilt-02-2011-0015
  • Rajkumar, K., and S. Aravindan. 2011. Tribological performance of microwave sintered copper–TiC–graphite hybrid composites. Tribology International 44(4):347–58. doi:10.1016/j.triboint.2010.11.008
  • Sequeira, P. D., Y. Watanabe, and L. A. Rocha. 2005. Particle distribution and orientation in Al/Al3Zr and Al/Al3Ti FGMs produced by the centrifugal method. Material Science Forum 493:609–14. doi:10.4028/0-87849-970-9.609
  • Surekha, K., and B. A. Els. 2011. Development of high strength, high conductivity copper by friction stir processing. Materials and Design 32 (2):911–16. doi:10.1016/j.matdes.2010.08.028
  • Swaminathan, K., and D. M. Sangeetha. 2016. Thermal analysis of FGM plates – A critical review of various modelling techniques and solution methods. Journal of Composite Structures 160:43–60. doi:10.1016/j.compstruct.2016.10.047
  • Tjong, S. C., and K. C. Lau. 2000a. Abrasive behaviour of TiB2 particle-reinforced copper matrix composites. Journal of Materials Science Letters 43:274–80.
  • Tjong, S. C., and K. C. Lau. 2000b. Tribological behaviour of SiC particle-reinforced copper matrix composites. Materials Letters 43:274–80. doi:10.1016/s0167-577x(99)00273-6
  • Uthayakumar, M., S. Aravindan, and K. Rajkumar. 2013. Wear performance of Al–SiC–B4C hybrid composites under dry sliding conditions. Materials and Design 47:456–64. doi:10.1016/j.matdes.2012.11.059
  • Venkat Prasad, S., R. Subramanian, N. Radhika, and B. Anandavel. 2011. Dry sliding wear and friction studies on AlSi10Mg‐fly ash‐graphite hybrid metal matrix composites using Taguchi method. Tribology Materials, Surfaces and Interfaces 5 (2):72–81. doi:10.1179/1751584x11y.0000000009
  • Watanabe, Y., and Y. Fukui. 2000. Microstructures and mechanical properties of functionally graded materials fabricated by a centrifugal method. Material Science and Technology 4:51–93.
  • Watanabe, Y., N. Yamanaka, and Y. Fukui. 2002. Particle size distributions in functionally graded materials fabricated by the centrifugal solid-particle method. Composites Science and Technology 62:717–21.
  • Zhang, G., and A. K. Schlarb. 2004. Morphologies of the wear debris of polyetherketone produced under dry sliding conditions: Correlation with wear mechanisms. Wear 266:745–52. doi:10.1016/j.wear.2008.08.015
  • Zhang, L., X. B. He, X. H. Qu, B. H. Duan, X. Lu, and M. L. Qin. 2008. Dry sliding wear properties of high volume fraction SiCp/Cu composites produced by pressureless infiltration. Wear 265:1848–56. doi:10.1016/j.wear.2008.04.029

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