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Original Articles

Fabrication of Al–Si coating on Ti–6Al–4V substrate by mechanical alloying

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Pages 186-195 | Received 18 Nov 2016, Accepted 02 Feb 2017, Published online: 09 Mar 2017

References

  • Leyens, C.; Peters, M. Titanium and Titanium Alloys; Wiley–VCH: Cologne, Germany, 2003.
  • Dudziak, T.; Du, H.L.; Datta, P.K.; Ehiasarian, A.P.; Reinhard, C.; Hovsepian, P.E. Enhanced sulphidation/oxidation resistance of Ti–45Al–8Nb alloy by multilayered coatings at 850°C for up to 675 h. Corrosion Engineering, Science and Technology 2014, 49 (7), 590–602. doi:10.1179/1743278213Y.0000000142
  • Liu, H.; Zhang, X.; Jiang, Y.; Zhou, R. Microstructure and high temperature oxidation resistance of in-situ synthesized TiN/Ti3Al intermetallic composite coatings on Ti6Al4V alloy by laser cladding process. Journal of Alloys and Compounds 2016, 670, 268–274. doi:10.1016/j.jallcom.2015.10.168
  • Xu, Y.; Liang, W.; Miao, Q.; Jiang, Q.; Ren, B.; Yao, Z.; Zhang, P.; Wei, D. High temperature oxidation behaviour of Al2O3/Al composite coating on γ-TiAl. Surface Engineering, 2015, 31 (5), 354–360. doi:10.1179/1743294414Y.0000000363
  • Liu, L.; Li, Z.; Hua, Y.; Hu, Z.; Lu, W.; Qiao, J. Reactive synthesis of oxidation-resistant coatings on pure Ti substrates via an Al/porous TiO2/Ti precursory stack. Surface and Coatings Technology 2016, 289, 219–225. doi:10.1016/j.surfcoat.2015.12.030
  • Brady, M.P.; Smialek, J.L.; Verink, E.D.; Hoelzer, Jr.D.T.; Stone, R. Modification of microstructure for improved oxidation resistance in γ-based Ti-Al-X alloys. Materials and Manufacturing Processes 1996, 11 (4), 635–653. doi:10.1080/10426919608947513
  • Szkliniarz, A.; Moskal, G.; Szkliniarz, W.; Swadźba, R. Improvement of oxidation resistance of Ti–47Al–2W–0.5Si alloy modified by aluminizing method. Surface and Coatings Technology 2015, 277, 270–277. doi:10.1016/j.surfcoat.2015.07.072
  • Kennedy, S.; Kumaran, S.; Rao, T.S. Effect of milling on sintering behavior of γ-TiAl by spark plasma sintering. Materials and Manufacturing Processes 2013, 28 (8), 928–932. doi:10.1080/10426914.2013.792423
  • Kevorkijan, V.; Škapin, S. Pressureless reaction sintering and characterization of TiAl-TiC and Ti3Al-TiC composites. Materials and Manufacturing Processes 2011, 26 (4), 573–578. doi:10.1080/10426910903124886
  • Hamzah, E.; Kanniah, M.; Harun, M. Creep behavior of as-cast Ti-48Al-2Cr intermetallic alloy for aerospace and automotive applications. Materials and Manufacturing Processes 2007, 22 (7–8), 793–797. doi:10.1080/10426910701446663
  • Moskalewicz, T.; Schaffer, B.; Manescu, A.; Rustichelli, F.; Czyrska-Filemonowicz, A. Microstructure characterisation and stress analysis of the Ti–48Al–2Ag coating on the near-α titanium alloy. Surface and Coatings Technology 2007, 201, 7635–7640. doi:10.1016/j.surfcoat.2007.02.035
  • Moskalewicz, T.; Wendler, B.; Smeacetto, F.; Salvo, M.; Manescu, A.; Czyrska-Filemonowicz, A. Microstructure, mechanical properties and oxidation behaviour of the TiAl(Si,Ag) coating on near-α titanium alloy. Surface and Coatings Technology 2008, 202, 5876–5881. doi:10.1016/j.surfcoat.2008.06.111
  • Bahadur, A. Aluminum coatings for steel. Materials and Manufacturing Processes 1996, 11 (2), 225–232. doi:10.1080/10426919608947476
  • Mansuri, M.; Hadavi, S.M.M.; Zare, E.; Nabi, M.M. Thermal fatigue behaviour of Al–Si coated Inconel 713 LC. Surface Engineering 2016, 32 (3), 201–206. doi:10.1179/1743294415Y.0000000058
  • Ebach-Stahl, A.; Eilers, C.; Laska, N.; Braun, R. Cyclic oxidation behaviour of the titanium alloys Ti-6242 and Ti-17 with Ti–Al–Cr–Y coatings at 600 and 700°C in air. Surface and Coatings Technology 2013, 223, 24–31. doi:10.1016/j.surfcoat.2013.02.021
  • Peng, X.M.; Xia, C.Q.; Dai, X.Y.; Wu, A.R.; Dong, L.J.; Li, D.F.; Tao, Y.R. Study on the interface reaction behavior of NiCrAlY coating on titanium alloy. Surface and Coatings Technology 2013, 232, 254–263. doi:10.1016/j.surfcoat.2013.05.024
  • Guo, L.; Guo, L.; Zhu, Y.; Xu, C.; Zhu, H.; Guo, T. Synthesis and characterization of SiO2 coating on cast pure titanium. Materials and Manufacturing Processes 2010, 25 (7), 696–699. doi:10.1080/10426914.2010.489594
  • Xiao, Z.; Tan, F.; Wang, W.; Lu, H.; Cai, Y.; Qiu, X.; Chen, J.; Qiao, X. Oxidation behaviour of glass–quartz and glass–quartz–aluminium composite coatings on Ti–6Al–4V alloy. Surface Engineering 2015, 31 (5), 361–367. doi:10.1179/1743294414Y.0000000375
  • Xiang, Z.D.; Rose, S.R.; Datta, P.K. Diffusion coatings resistant to oxidation for γ-TiAl by pack codeposition of Al and Si. Materials Science and Technology 2003, 19 (9), 1247–1252. doi:10.1179/026708303225005908
  • Akgun, S.; Şahin, S.; Ustel, F. Wear behavior of plasma-sprayed Al-12Si/SiC composite coatings under dry and water-lubricated sliding. Materials and Manufacturing Processes 2009, 24 (7–8), 909–912. doi:10.1080/10426910902941611
  • Ei-Mahallawy, N.A.; Taha, M.A.; Shady, M.A.; Ei-Sissi, A.R.; Attia, A.N.; Reif, W. Analysis of coating layer formedon steel strips during aluminising by hot dipping in Al-Si baths. Materials Science and Technology 1997, 13(10), 832–840. doi:10.1179/mst.1997.13.10.832
  • Wismogroho, A.S.; Widayatno, W.B.; Suryadi, Z.; Thosin, K.A.; Rochman, N.T.; Sueyoshi, H. Iron aluminide coating on Al by mechanical alloying. Surface Engineering 2011, 27, 126–133. doi:10.1179/026708410X12506873242949
  • Zuo, M.; Zhao, D.G.; Wang, Z.Q.; Geng, H.R. Investigation on WC–Al composite coatings of AZ91 alloy by mechanical alloying. Materials Science and Technology 2015, 31 (9), 1051–1057. doi:10.1179/1743284714Y.0000000664
  • Saba, F.; Kabiri, E.; Khaki, J.V.; Sabzevar, M.H. Fabrication of nanocrystalline TiC coating on AISI D2 steel substrate via high-energy mechanical alloying of Ti and C. Powder Technology 2016, 288, 76–86. doi:10.1016/j.powtec.2015.10.030
  • Romankov, S.; Park, Y.C.; Komarov, S.V. Formation of composite CuWNi layers on ceramic substrates under shot impact treatment. Journal of Alloys and Compounds 2016, 689, 777–786. doi:10.1016/j.jallcom.2016.08.018
  • Murray, J.L.; McAlister, A.J. The Al–Si (Aluminum-Silicon) system. Bulletin of Alloy Phase Diagrams 1984, 5, 74–84. doi:10.1007/BF02868729
  • Li, Z.; Liao, C.; Liu, Y.; Wang, X.; Wu, Y.; Zhao, M.; Long, Z.; Yin, F. 700°C Isothermal section of the Al–Ti–Si ternary phase diagram. Journal of Phase Equilibria and Diffusion 2014, 35, 564–574. doi:10.1007/s11669-014-0325-7
  • Bulanova, M.; Tretyachenko, L.; Golovkova, M.; Meleshevich, K. Phase equilibria in the α -Ti–Al–Si region of the Ti–Si–Al system. Journal of Phase Equilibria and Diffusion 2004, 25, 209–229. doi:10.1361/15477030419478

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