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Research Articles

Additive manufacturing of WMoTaTi refractory high-entropy alloy by employing fluidised powders

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Pages 413-425 | Received 11 Nov 2021, Accepted 12 Jan 2022, Published online: 28 Jan 2022

References

  • Senkov ON, Wilks GB, Miracle DB, et al. Refractory high-entropy alloys. Intermetallics. 2010;18:1758–1765.
  • Srikanth M, Annamalai AR, Muthuchamy A, et al. A review of the latest developments in the field of refractory high-entropy alloys. Crystals. 2021;11:612–626.
  • Senkov ON, Miracle DB, Rao SI. Correlations to improve room temperature ductility of refractory complex concentrated alloys. Mater Sci Eng A. 2021;820:141512–141520.
  • George EP, Curtin WA, Tasan CC. High entropy alloys: a focused review of mechanical properties and deformation mechanisms. Acta Mater. 2020;188:435–474.
  • Gorsse S, Miracle DB, Senkov ON. Mapping the world of complex concentrated alloys. Acta Mater. 2017;135:177–187.
  • Bhandari U, Zhang CY, Guo SM, et al. First-principles study on the mechanical and thermodynamic properties of MoNbTaTiW. International Journal of minerals. Metall Mater. 2020;27:1398–1404.
  • Senkov ON, Miracle DB, Chaput KJ, et al. Development and exploration of refractory high entropy alloys—a review. J Mater Res. 2018;33:3092–3128.
  • Zhang C, Zhu JK, Zheng H, et al. A review on microstructures and properties of high entropy alloys manufactured by selective laser melting. Int J Extreme Manuf. 2020;2:67–87.
  • Arif ZU, Khalid MY, Ehtsham ur R, et al. A review on laser cladding of high-entropy alloys, their recent trends and potential applications. J Manuf Process. 2021;68:225–273.
  • Zhang TL, Liu CT. Design of titanium alloys by additive manufacturing: a critical review. Adv Powder Mater. 2021. doi:10.1016/j.apmate.2021.11.001.
  • Zhang H, Zhao Y, Huang S, et al. Manufacturing and analysis of high-performance refractory high-entropy alloy via selective laser melting (SLM). Materials. 2019;12:720–730.
  • Ishimoto T, Ozasa R, Nakano K, et al. Development of TiNbTaZrMo bio-high entropy alloy (BioHEA) super-solid solution by selective laser melting, and its improved mechanical property and biocompatibility. Scripta Mater. 2021;194:113658–113663.
  • Dobbelstein H, Thiele M, Gurevich EL, et al. Direct metal deposition of refractory high entropy alloy MoNbTaW. Phys Procedia. 2016;83:624–633.
  • Melia MA, Whetten SR, Puckett R, et al. High-throughput additive manufacturing and characterization of refractory high entropy alloys. Appl Mater Today. 2020;19:100560–100574.
  • Kunce I, Polanski M, Bystrzycki J. Microstructure and hydrogen storage properties of a TiZrNbMoV high entropy alloy synthesized using laser engineered Net shaping (LENS). Int J Hydrogen Energ. 2014;39:9904–9910.
  • Zhang H, Wang X, Xu YJ, et al. The thermal-mechanical behavior of WTaMoNb high-entropy alloy via selective laser melting (SLM): experiment and simulation. Int J Adv Manuf Technol. 2018;96:461–474.
  • Moorehead M, Bertsch K, Niezgoda M, et al. High-throughput synthesis of Mo-Nb-Ta-W high-entropy alloys via additive manufacturing. Mater Design. 2020;187:108358–108367.
  • Li QY, Zhang H, Li DC, et al. Comparative study of the microstructures and mechanical properties of laser metal deposited and vacuum arc melted refractory NbMoTa medium-entropy alloy. Int J Refract Met H. 2020;88:105195–105194.
  • Huber F, Bartels D, Schmidt M. In-Situ alloy formation of a WMoTaNbV refractory metal high entropy alloy by laser powder bed fusion (PBF-LB/M). Materials. 2021;145:3095–3106.
  • Zhang H, Zhao Y, Cai J, et al. High-strength NbMoTaX refractory high-entropy alloy with low stacking fault energy eutectic phase via laser additive manufacturing. Mater Design; 2021; 201:109462–109476.
  • Qiao YT, Tang Y, Li S, et al. Preparation of TiZrNbTa refractory high-entropy alloy powder by mechanical alloying with liquid process control agents. Intermetallics. 2020;126:106900–106907.
  • Ding WW, Chen G, Qin ML, et al. Low-cost Ti powders for additive manufacturing treated by fluidized bed. Powder Technol. 2019;350:117–122.
  • Ding WW, Wang ZW, Chen G, et al. Oxidation behavior of low-cost CP-Ti powders for additive manufacturing via fluidization. Corros Sci. 2021;178:109080–109088.
  • Zhang SZ, Lei YP, Chen Z, et al. Effect of laser energy density on the microstructure and texture evolution of hastelloy-X alloy fabricated by laser powder bed fusion. Materials2021;14:4305–4316.
  • Han ZD, Chen N, Zhao SF, et al. Effect of Ti additions on mechanical properties of NbMoTaW and VNbMoTaW refractory high entropy alloys. Intermetallics. 2017;84:153–157.
  • Zhang D, Prasad A, Bermingham MJ, et al. Grain refinement of alloys in fusion-based additive manufacturing processes. Metall Mater Trans A. 2020;51:4341–4359.
  • Prasad A, Yuan L, Lee P, et al. Towards understanding grain nucleation under additive manufacturing solidification conditions. Acta Mater. 2020;195:392–403.
  • Barclay RC. Parameter optimization for controlling aluminum loss when laser depositing Ti-6Al-4V[D]. Missouri Univ Sci Technol. 2013.
  • Zhou Q, Hayat MD, Chen G, et al. Selective electron beam melting of NiTi: microstructure, phase transformation and mechanical properties. Mater Sci Eng A. 2019;744:290–298.
  • Zhong F, Wu HJ, Jiao YL, et al. Effect of Y and Ce on the microstructure, mechanical properties and anisotropy of as-rolled Mg-8Li-1Al alloy. J Mater Sci Technol. 2020;39:124–134.
  • McAlpine SW, Logan JV, Short MP. Predicting single phase stability and segregation in the NbMoTaTi– (W. V) high entropy alloy system with the vacancy exchange potential. Scripta Mater. 2021;191:29–33.
  • Li QY, Zhang H, Li DC, et al. Wxnbmota refractory high-entropy alloys fabricated by laser cladding deposition. Materials. 2019;13:533–546.
  • Dobbelstein H, Gurevich EL, George EP, et al. Laser metal deposition of compositionally graded TiZrNbTa refractory high-entropy alloys using elemental powder blends. Addit Manuf. 2019;25:252–262.
  • Senkov ON, Wilks GB, Scott JM, et al. Mechanical properties of Nb25Mo25Ta25W25 and V20Nb20Mo20Ta20W20 refractory high entropy alloys. Intermetallics. 2011;19:698–706.
  • Yao HW, Qiao JW, Gao MC, et al. NbTaV- (Ti, W) refractory high-entropy alloys: experiments and modeling. Mater Sci Eng A. 2016;674:203–211.
  • Yang X, Zhang Y. Prediction of high-entropy stabilized solid-solution in multi-component alloys. Mater Chem Phys. 2012;132:233–238.
  • Shun TT, Chang LY, Shiu MH. Microstructures and mechanical properties of multiprincipal component CoCrFeNiTix alloys. Mater Sci Eng A. 2012;556:170–174.
  • Luo SC, Su Y, Wang ZM. Tailored microstructures and strengthening mechanisms in an additively manufactured dual-phase high-entropy alloy via selective laser melting. Sci China Mater. 2020;63:1279–1290.
  • Cordero ZC, Knight BE, Schuh CA. Six decades of the Hall–Petch effect–a survey of grain-size strengthening studies on pure metals. Int Mater Rev. 2016;61:495–512.

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