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Research Article

Effect of Y on microstructure and high temperature properties of wire-arc-additive-manufactured Al–Cu alloy deposits

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Pages 522-529 | Received 26 Jun 2022, Accepted 24 Jul 2022, Published online: 12 Aug 2022

References

  • Wojciechowski S. New trends in the development of mechanical engineering materials. J Mater Process Technol. 2000;106(1-3):230–235.
  • Warner T. Recently-developed aluminium solutions for aerospace applications. MSF. 2006;519-521:1271–1278.
  • Heinz A, Haszler A, Keidel C, et al. Recent development in aluminium alloys for aerospace applications. Mater Sci Eng A. 2000;280(1):102–107.
  • Williams JC, Starke EA Jr. Progress in structural materials for aerospace systems. Acta Mater. 2003;51(19):5775–5799.
  • Liu J, Kulak M. A new paradigm in the design of aluminum alloys for aerospace applications. MSF. 2000;331-337:127–142.
  • Williams SW, Martina F, Addison AC, et al. Wire + arc additive manufacturing. Mater Sci Technol. 2016;32(7):641–647.
  • Zhang X, Zhou Q, Wang K, et al. Study on microstructure and tensile properties of high nitrogen Cr-Mn steel processed by CMT wire and arc additive manufacturing. Mater Des. 2019;166:107611.
  • Lin JJ, Lv YH, Liu YX, et al. Microstructural evolution and mechanical properties of Ti-6Al-4V wall deposited by pulsed plasma arc additive manufacturing. Mater Des. 2016;102:30–40.
  • Cong B, Ding J, Williams S. Effect of arc mode in cold metal transfer process on porosity of additively manufactured Al-6.3% Cu alloy. Int J Adv Manuf Technol. 2015;76(9-12):1593–1606.
  • Gu J, Ding J, Williams SW, et al. The strengthening effect of inter-layer cold working and post-deposition heat treatment on the additively manufactured Al–6.3 Cu alloy. Mater Sci Eng A. 2016;651:18–26.
  • Shuai W, Huimin G, Wei W, et al. Microstructure and mechanical properties of ZL205A aluminum alloy wall produced by wire arc additive manufacturing. Rare Metal Mater Eng. 2019;48(9):2910–2916.
  • Wang S, Gu H, Wang W, et al. Study on microstructural and mechanical properties of an Al-Cu-Sn alloy wall deposited by double-wire arc additive manufacturing process. Materials. 2019;13(1):73.
  • Omel' chuk AA. Electrorefining of heavy nonferrous metals in molten electrolytes. Russ J Electrochem. 2010;46(6):680–690.
  • Riani P, Arrighi L, Marazza R, et al. Ternary rare-earth aluminum systems with copper: a review and a contribution to their assessment. J Phs Eqil Diff. 2004;25(1):22–52.
  • Chen YJ, Xu QY, Huang TY. Research progress of grain refiner for aluminum alloy. Mater Rev. 2006;20(12):57–61.
  • Deschamps A, Decreus B, De Geuser F, et al. The influence of precipitation on plastic deformation of Al-Cu-Li alloys. Acta Mater. 2013;61(11):4010–4021.
  • Hu Y, Wang G, Ji Y, et al. Study of θ' precipitation behavior in Al-Cu-Cd alloys by phase-field modeling. Mater Sci Eng A. 2019;746:105–114.
  • Hu Y, Wang G, Ye M, et al. A precipitation hardening model for Al-Cu-Cd alloys. Mater Des. 2018;151:123–132.
  • Banerjee S, Robi PS, Srinivasan A, et al. Effect of trace additions of Sn on microstructure and mechanical properties of Al-Cu-Mg alloys. Mater Des. 2010;31(8):4007–4015.
  • Badini C, Marino F, Verne E. Calorimetric study on precipitation path in 2024 alloy and its SiC composite. Mater Sci Eng A. 1995;191(1–2):185–191.

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