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Volume 25 Issue 3
Mar.  2018
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Moslem Tayyebi and Beitallah Eghbali, Microstructure and mechanical properties of SiC-particle-strengthening tri-metal Al/Cu/Ni composite produced by accumulative roll bonding process, Int. J. Miner. Metall. Mater., 25(2018), No. 3, pp. 357-364. https://doi.org/10.1007/s12613-018-1579-6
Cite this article as:
Moslem Tayyebi and Beitallah Eghbali, Microstructure and mechanical properties of SiC-particle-strengthening tri-metal Al/Cu/Ni composite produced by accumulative roll bonding process, Int. J. Miner. Metall. Mater., 25(2018), No. 3, pp. 357-364. https://doi.org/10.1007/s12613-018-1579-6
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研究论文

Microstructure and mechanical properties of SiC-particle-strengthening tri-metal Al/Cu/Ni composite produced by accumulative roll bonding process

  • In this study, a multilayer Al/Ni/Cu composite reinforced with SiC particles was produced using an accumulative roll bonding (ARB) process with different cycles. The microstructure and mechanical properties of this composite were investigated using optical and scanning microscopy and hardness and tensile testing. The results show that by increasing the applied strain, the Al/Ni/Cu multilayer composite converted from layer features to near a particle-strengthening characteristic. After the fifth ARB cycle, a composite with a uniform distribution of reinforcements (Cu, Ni, and SiC) was fabricated. The tensile strength of the composite increased from the initial sandwich structure to the first ARB cycle and then decreased from the first to the third ARB cycle. Upon reaching five ARB cycles, the tensile strength of the composite increased again. The variation in the elongation of the composite exhibited a tendency similar to that of its tensile strength. It is observed that with increasing strain, the microhardness values of the Al, Cu, and Ni layers increased, and that the dominant fracture mechanisms of Al and Cu were dimple formation and ductile fracture. In contrast, brittle fracture in specific plains was the main characteristic of Ni fractures.
  • Research Article

    Microstructure and mechanical properties of SiC-particle-strengthening tri-metal Al/Cu/Ni composite produced by accumulative roll bonding process

    + Author Affiliations
    • In this study, a multilayer Al/Ni/Cu composite reinforced with SiC particles was produced using an accumulative roll bonding (ARB) process with different cycles. The microstructure and mechanical properties of this composite were investigated using optical and scanning microscopy and hardness and tensile testing. The results show that by increasing the applied strain, the Al/Ni/Cu multilayer composite converted from layer features to near a particle-strengthening characteristic. After the fifth ARB cycle, a composite with a uniform distribution of reinforcements (Cu, Ni, and SiC) was fabricated. The tensile strength of the composite increased from the initial sandwich structure to the first ARB cycle and then decreased from the first to the third ARB cycle. Upon reaching five ARB cycles, the tensile strength of the composite increased again. The variation in the elongation of the composite exhibited a tendency similar to that of its tensile strength. It is observed that with increasing strain, the microhardness values of the Al, Cu, and Ni layers increased, and that the dominant fracture mechanisms of Al and Cu were dimple formation and ductile fracture. In contrast, brittle fracture in specific plains was the main characteristic of Ni fractures.
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    • [1]
      M. Reihanian, F.K. Hadadian, and M.H. Paydar, Fabrication of Al-2vol% Al2O3/SiC hybrid composite via accumulative roll bonding (ARB):An investigation of the microstructure and mechanical properties, Mater. Sci. Eng. A, 607(2014), p. 188.
      [2]
      M. Alizadeh and M. Samiei, Fabrication of nanostructured Al/Cu/Mn metallic multilayer composites by accumulative roll bonding process and investigation of their mechanical properties, Mater. Des., 56(2014), p. 680.
      [3]
      M. Eizadjou, A.K. Talachi, H.D. Manesh, H.S. Shahabi, and K. Janghorban, Investigation of structure and mechanical properties of multi-layered Al/Cu composite produced by accumulative roll bonding (ARB) process, Compos. Sci. Technol., 68(2008), p. 2003.
      [4]
      Y. Nishida, Introduction to Metal Matrix Composites:Fabrication and Recycling, Springer, Heidelberg, 2013, p. 113.
      [5]
      M. Alizadeh, H.A. Beni, M. Ghaffari, and R. Amini, Properties of high specific strength Al-4wt.% Al2O3/B4C nano-composite produced by accumulative roll bonding process, Mater. Des., 50(2013), p. 427.
      [6]
      S. Khoramkhorshid, M. Alizadeh, A.H. Taghvaei, and S. Scudino, Microstructure and mechanical properties of Al-based metal matrix composites reinforced with Al84Gd6Ni7Co3 glassy particles produced by accumulative roll bonding, Mater. Des., 90(2016), p. 137.
      [7]
      L.Y. Sheng, F. Yang, T.F. Xi, C. Lai, and H.Q. Ye, Influence of heat treatment on interface of Cu/Al bimetal composite fabricated by cold rolling, Composites Part B, 42(2011), No. 6, No. 1468.
      [8]
      N. Tsuji, Y. Saito, H. Utsunomiya, and S. Tanigawa, Ultra-fine grained bulk aluminum produced by accumulative roll-bonding (ARB) process, Scripta Mater., 40(1998), No. 7, p. 795.
      [9]
      R.Z. Valiev, Y. Estrin, Z. Horita, T.G. Langdon, M.J. Zechetbauer, and Y.T. Zhu, Producing bulk ultrafine-grained materials by severe plastic deformation. JOM, 58(2006), 4(2006), No. 4, p. 33.
      [10]
      M.M. Mahdavian, L. Ghalandari, and M. Reihanian, Accumulative roll bonding of multilayered Cu/Zn/Al:An evaluation of microstructure and mechanical properties, Mater. Sci. Eng. A, 579(2013), p. 99.
      [11]
      M. Reihanian and M. Naseri, An analytical approach for necking and fracture of hard layer during accumulative roll bonding (ARB) of metallic multilayer, Mater. Des., 89(2016), p. 1213.
      [12]
      A. Shabani, M.R. Toroghinejad, and A. Shafyei, Fabrication of Al/Ni/Cu composite by accumulative roll bonding and electroplating processes and investigation of its microstructure and mechanical properties, Mater. Sci. Eng. A, 558(2012), p. 386.
      [13]
      R. Jamaati, S. Amirkhanlou, M.R. Toroghinejad, and B. Niroumand, Effect of particle size on microstructure and mechanical properties of composites produced by ARB process, Mater. Sci. Eng. A, 528(2011), No. 4-5, p. 2143.
      [14]
      V.Y. Mehr, A. Rezaeian, and M.R. Toroghinejad, Application of accumulative roll bonding and anodizing process to produce Al-Cu-Al2O3 composite, Mater. Des., 70(2015), p. 53.
      [15]
      M. Alizadeh and M.H. Paydar, Fabrication of nanostructure Al/SiCP composite by accumulative roll-bonding (ARB) process, J. Alloys Compd., 492(2010), No. 1-2, p. 231.
      [16]
      A. Mozaffari, H.D. Manesh, and K. Janghorban, Evaluation of mechanical properties and structure of multilayered Al/Ni composites produced by accumulative roll bonding (ARB) process, J. Alloys Compd., 489(2010), No. 1, p. 103.
      [17]
      M. Tayyebi and B. Eghbali, Study on the microstructure and mechanical properties of multilayer Cu/Ni composite processed by accumulative roll bonding, Mater. Sci. Eng. A, 559(2013), p. 759.
      [18]
      M. Alizadeh, Comparison of nanostructured Al/B4C composite produced by ARB and Al/B4C composite produced by RRB process, Mater. Sci. Eng. A, 528(2010), No. 2, p. 528.
      [19]
      R. Jamaati and M.R. Toroghinejad, Manufacturing of high-strength aluminum/alumina composite by accumulative roll bonding, Mater. Sci. Eng. A, 527(2010), No. 16-17, p. 4146.
      [20]
      L.Y. Sheng, F. Yang, J.T. Guo, T.F. Xi, and H.Q. Ye, Investigation on NiAl-TiC-Al2O3 composite prepared by self-propagation high temperature synthesis with hot extrusion, Composites Part B, 45(2013), No. 1, p. 785.
      [21]
      L.Y. Sheng, F. Yang, T.F. Xi, J.T. Guo, and H.Q. Ye, Microstructure evolution and mechanical properties of Ni3Al/Al2O3 composite during self-propagation high-temperature synthesis and hot extrusion, Mater. Sci. Eng. A, 555(2012), p. 131.
      [22]
      G.H. Min, J.M. Lee, S.B. Kang, and H.W. Kim, Evolution of microstructure for multilayered Al/Ni composites by accumulative roll bonding process, Mater. Lett., 60(2006), No. 27, p. 3255.
      [23]
      M.Z. Quadir, M. Ferry, O. Al-Buhamad, and P.R. Munroe, Shear banding and recrystallization texture development in a multilayered Al alloy sheet produced by accumulative roll bonding, Acta Mater., 57(2009), p. 29.
      [24]
      M. Alizadeh and M. Paydar Study on the effect of presence of TiH2 particles on the roll bonding behavior of aluminum alloy strips, Mater. Des., 30(2009), p. 82.
      [25]
      Z.R. Wang, T.K. Chen, and D.J. Lloyd, Stress distribution in particulate-reinforced metal-matrix composites subjected to external load, Metall. Trans. A, 24(1993), No. 1, p. 197.
      [26]
      M. Rezayat and A. Akbarzadeh, Bonding behavior of Al-Al2O3 laminations during roll bonding process, Mater. Des., 36(2012), p. 874.
      [27]
      A. Rollett, F.J. Humphreys, G.S. Rohrer, and M. Hatherly, Recrystallization and Related Annealing Phenomena, Elsevier, Oxford, 2004, p. 55.
      [28]
      K.S. Ravichandran, S.S. Sahay, and J.G. Byrne, Strength and ductility of microscale brass-steel multilayer composites, Scripta Mater., 35(1996), No. 10, p. 1135.
      [29]
      Z.R. Wang and R.J. Zhang, Mechanical behavior of cast particulate SiC/AI (A356) metal matrix composites, Metall. Trans. A, 22(1991), No. 7, p. 1585.
      [30]
      T. Christman, A. Needleman, and S. Suresh, An experimental and numerical study of deformation in metal-ceramic composites, Acta Metall., 37(1989), No. 11, p. 3029.
      [31]
      Y. Sun, N. Tsuji, H. Fujii, and F.S. Li, Cu/Zr nanoscaled multi-stacks fabricated by accumulative roll bonding, J. Alloys Compd., 504(2010), Suppl. 1, p. S443.
      [32]
      K. Mills, Metals Handbook:Volume 12:Fractography (ASM Handbook), 9th Ed., ASM International Metals Park, Ohio, 1987.

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