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Part A: Materials Science

Rheological behaviour of a La-based bulk metallic glass (BMG) used in 3D printing

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Pages 1401-1416 | Received 06 Jun 2020, Accepted 01 Apr 2021, Published online: 17 Apr 2021

References

  • M.M. Trexler and N.N. Thadhani, Mechanical properties of bulk metallic glasses. Prog. Mater. Sci. 55(8) (2010), pp. 759–839.
  • C.A. Volkert, A. Donohue and F. Spaepen, Effect of sample size on deformation in amorphous metals. J. Appl. Phys. 103(8) (2008), pp. 083539.
  • G. Kumar, H.X. Tang and J. Schroers, Nanomoulding with amorphous metals. Nature 457(7231) (2009), pp. 868–872.
  • S. Pauly, L. Löber, R. Stoica, S. Scudino, U. Kühn and J. Eckert, Processing metallic glasses by selective laser melting. Mater. Today 16(1) (2013), pp. 37–41.
  • H.Y. Jung, S.J. Choi, K.G. Prashanth, et al., Fabrication of Fe-based bulk metallic glass by selective laser melting: A parameter study. Mater. Des. 86 (2015), pp. 703–708.
  • S.H. Ahn, C. Baek, S. Lee and I.S. Ahn, Anisotropic tensile failure model of rapid prototyping parts-fused deposition modeling (FDM). Int. J. Mod. Phys. B 17(8) (2003), pp. 1510–1516.
  • P.K. Gurrala and S.P. Regalla, Optimization of support material and build time in fused deposition Modeling (FDM). Appl. Mech. Mater. 110-116 (2012), pp. 2245–2251.
  • Y.B. Tian, J.G. Lin, W. Li, M. Ma, Z.C. Luo and W.J. Jiang, Deformation behavior of a Cu-based amorphous alloy under different strain rates. J. Appl. Phys. 109(8) (2011), pp. 2645.
  • Z.F. Yao, J.C. Qiao, J.M. Pelletier and Y. Yao, High temperature deformation behaviors of the Zr63.36Cu14.52Ni10.12Al12 bulk metallic glass. J. Mater. Sci. 51(8) (2016), pp. 4079–4087.
  • Y.F. Gao, B. Yang and T.G. Nieh, Thermomechanical instability analysis of inhomogeneous deformation in amorphous alloys. Acta Mater. 55(7) (2007), pp. 2319–2327.
  • A. Inoue, Y. Kawamura and Y. Saotome, High strain rate superplasticity of supercooled liquid for amorphous alloys. Mater. Sci. Forum 233-234 (1996), pp. 147–154.
  • M.F. Ashby, A first report on deformation-mechanism maps. Acta Metall. 20(7) (1972), pp. 887–897.
  • J. Cui, J.S. Li, J. Wang, H.C. Kou, J.C. Qiao, S. Gravier and J.J. Blandin, Rheological behavior of Cu–Zr-based metallic glass in the supercooled liquid region. J Alloys Compd 592(3) (2014), pp. 189–195.
  • H. Kato, Y. Kawamura, A. Inoue and H.S. Chen, Newtonian to non-Newtonian master flow curves of a bulk glass alloy Pd40Ni10Cu30P20. Appl. Phys. Lett. 73(25) (1998), pp. 3665–3667.
  • J. Lu, G. Ravichandran and W.L. Johnson, Deformation behavior of the Zr41.2Ti13.8Cu12.5Ni10Be22.5 bulk metallic glass over a wide range of strain-rates and temperatures. Acta Mater. 51(12) (2003), pp. 3429–3443.
  • W.L. Johnson, J. Lu and M.D. Demetriou, Deformation and flow in bulk metallic glasses and deeply undercooled glass forming liquids—a self-consistent dynamic free volume model. Intermetallics 10(11-12) (2002), pp. 1039–1046.
  • A. Reger-Leonhard, M. Heilmaier and J. Eckert, Newtonian flow of Zr55Cu30Al10Ni5 bulk metallic glassy alloys. Scr. Mater. 43(5) (2000), pp. 459–464.
  • K.S. Lee, T.K. Ha, S. Ahn and Y.W. Chang, High temperature deformation behavior of the Zr41.2Ti13.8Cu12.5Ni10Be22.5 bulk metallic glass. J. Non-Cryst. Solids 317(1) (2003), pp. 193–199.
  • Q. Wang, J.J. Blandin, M. Suery, and J.M. Pelletier, High temperature deformation in the amorphous or partially crystallized Zr41.2Ti13.8Cu12.5Ni10Be22.5 bulk metallic glass. MRS Proceedings 754 (2002),pp. 315–320.
  • M. Cheng, S.H. Zhang and J.A. Wert, Constitutive equation for xiscous flow behavior of Mg-based bulk metallic glass in supercooled liquid region. Chinese J. Nonferr. Metals 15(11) (2005), pp. 1682–1686.
  • Y. Kawamura, T. Nakamura and A. Inoue, T. Masumoto, High-strain-rate superplasticity due to Newtonian viscous flow in La55Al25Ni20 metallic glass. Mater. Trans. 40(8) (1999), pp. 794–803.
  • A. Inoue, Bulky La-Al-TM (TM = transition metal) amorphous alloys with high tensile strength produced by a high-pressure Die casting method. Mater. Trans. 34(4) (1993), pp. 351–358.
  • H.E. Kissinger, Reaction kinectics in differential thermal analysis. Anal. Chem. 29(11) (1957), pp. 1702–1706.
  • R.W. Wang, The crystallization kinetics and magnetic properties of FINEMET-type soft magnetic alloys. Wuhan Univ. Sci. Technol. 05 (2012), pp. 17–18.
  • C.M. Sellars and W.J. Mctegart, On the mechanism of hot deformation. Acta Metall. 14(9) (1966), pp. 1136–1138.

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