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Original report

Heterogeneous microstructure of the bonding zone and its dependence on preheating in hybrid manufactured Ti-6Al-4V

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Pages 422-428 | Received 15 Mar 2021, Published online: 11 Aug 2021

References

  • Peters M, Hemptenmacher J, Kumpfert J, et al. Structure and properties of titanium and titanium alloys. Titanium and Titanium Alloys. 2005;1:1–36.
  • Banerjee D, Williams JC. Perspectives on titanium science and technology. Acta Mater. 2013;61(3):844–879.
  • Gisario A, Kazarian M, Martina F, et al. Metal additive manufacturing in the commercial aviation industry: A review. J. Manuf. Syst. 2019;53:124–149.
  • Froes FH, Dutta B. The additive manufacturing (AM) of titanium alloys. Adv Mater Res. 2014;1019:19–25.
  • Huang CJ, Yan XC, Chen CY, et al. Additive manufacturing hybrid Ni/Ti-6Al-4V structural component via selective laser melting and cold spraying. Vacuum. 2018;151:275–282.
  • Hernández-Nava E, Mahoney P, Smith CJ, et al. Additive manufacturing titanium components with isotropic or graded properties by hybrid electron beam melting/hot isostatic pressing powder processing. Sci Rep. 2019;9:4070.
  • Dharmendra C, Shakerin S, Ram GDJ, et al. Wire-arc additive manufacturing of nickel aluminum bronze/stainless steel hybrid parts – interfacial characterization, prospects, and problems. Materialia. 2020;13:100834.
  • Bermingham MJ, StJohn DH, Krynen J, et al. Promoting the columnar to equiaxed transition and grain refinement of titanium alloys during additive manufacturing. Acta Mater. 2019;168:261–274.
  • Shrestha S, Panakarajupally RP, Kannan M, et al. Analysis of microstructure and mechanical properties of additive repaired Ti–6Al–4V by direct energy deposition. Mater Sci Eng A. 2021;806:140604.
  • Shim DS, Lee H, Son Y, et al. Effects of Pre- and post-repair heat treatments on microstructure and tensile behaviors of 630 stainless steel repaired by metal additive manufacturing. J Mater Res Technol [Internet. 2021;13:980–999.
  • Shipley H, McDonnell D, Culleton M, et al. Optimisation of process parameters to address fundamental challenges during selective laser melting of Ti-6Al-4V: A review. Int J Mach Tools Manuf. 2018;128:1–20.
  • Meng W, Xiaohui Y, Zhang W, et al. Additive manufacturing of a functionally graded material from Inconel625 to Ti6Al4V by laser synchronous preheating. J Mater Process Technol. 2020;275:116368.
  • Xu W, Lui EW, Pateras A, et al. In situ tailoring microstructure in additively manufactured Ti-6Al-4V for superior mechanical performance. Acta Mater. 2017;125:390–400.
  • Vrancken B, Buls S, Kruth J-P, et al. Influence of preheating and oxygen content on Selective Laser Melting of Ti6Al4V. Proc 16th RAPDASA Conf. 2015.
  • Yang T, Xu D, Chen W, et al. Microstructure evolution and deformation resistance of heavy-thickness Ti-6Al-4V narrow-gap welded joints. Mater Lett. 2019;250:116–118.
  • Zafari A, Barati MR, Xia K. Controlling martensitic decomposition during selective laser melting to achieve best ductility in high strength Ti-6Al-4V. Mater Sci Eng A. 2019;744:445–455.
  • Lu SL, Qian M, Tang HP, et al. Massive transformation in Ti-6Al-4V additively manufactured by selective electron beam melting. Acta Mater. 2016;104:303–311.
  • Massalski TB. Massive Transformations Revisited. 2002;33:2277–2283.
  • Yang J, Yu H, Yin J, et al. Formation and control of martensite in Ti-6Al-4V alloy produced by selective laser melting. Mater Des. 2016;108:308–318.
  • Wang B, Tang B, You C, et al. Dislocation arrays, precipitate bands and free zones in forged Mg-Gd-Y-Zr alloy. Mater Sci Eng A. 2020;775:138789.
  • Hong C, Huang X, Winther G. Dislocation content of geometrically necessary boundaries aligned with slip planes in rolled aluminium. Philos Mag. 2013;93:3118–3141.
  • You C, Liu C, Wan Y, et al. Dislocations-induced precipitates and their effect on mechanical properties of Mg-Gd-Y-Zr alloy. J Magnes Alloy Internet. 2019;7:414–418.
  • Plichta MR, Williams JC, Aaronson HI. On the existence of the β→αm transformation in the alloy systems Ti-Ag, Ti-Au, and Ti-Si. Metall Trans A. 1977;8(12):1885–1892.
  • Ma J, Zhang Y, Li J, et al. Microstructure and mechanical properties of forging-additive hybrid manufactured Ti–6Al–4V alloys. Mater Sci Eng A. 2021;811:140984.
  • Zhu Y, Ameyama K, Anderson PM, et al. Heterostructured materials: superior properties from hetero-zone interaction. Mater Res Lett Internet. 2021;9:1–31.