1,400
Views
3
CrossRef citations to date
0
Altmetric
Report

Effects of TCP and creep cavity on creep life in the rafting regime for Ru-containing Nickel-based single crystal superalloys

, , ORCID Icon, , ORCID Icon, , & show all
Pages 623-629 | Received 07 Mar 2023, Published online: 04 May 2023

References

  • Han L, Li P, Yu S, et al. Creep/fatigue accelerated failure of Ni-based superalloy turbine blade: microscopic characteristics and void migration mechanism. Int J Fatigue. 2022;154:106558.
  • Williams JC, Starke EA. Progress in structural materials for aerospace systems11 the golden jubilee issue—selected topics in materials science and engineering: past, present and future, edited by S. Suresh. Acta Mater. 2003;51(19):5775–5799.
  • Caron P, Khan T. Evolution of Ni-based superalloys for single crystal gas turbine blade applications. Aerosp Sci Technol. 1999;3(8):513–523.
  • Singer R. Advanced materials and processes for land-based gas turbines. Proc Mater Adv Power Eng. 1994: 1707–1729.
  • Reed RC. The superalloys fundamentals and applications. Cambridge: Cambridge University; 2006.
  • Gaag T, Ritter N, Peters A, et al. Improving the effectiveness of the solid-solution-strengthening elements Mo, Re, Ru and W in single-crystalline nickel-based superalloys. Metals. 2021;11(11):1707.
  • Wang Y, Zhao M, Li Z, et al. The synergistic effect of Re and W on the evolution of TCP phases in nickel-based superalloys. J Alloys Compd. 2022;900:163286.
  • Guoqi Z, Sugui T, Delong S, et al. Influence of Ru on creep behaviour and concentration distribution of Re-containing Ni-based single crystal superalloy at high temperature. Mater Res Express. 2020;7(6):066507.
  • Sato A, Harada H, Yokokawa T, et al. The effects of ruthenium on the phase stability of fourth generation Ni-base single crystal superalloys. Scr Mater. 2006;54(9):1679–1684.
  • Belan J. GCP and TCP phases presented in Nickel-base superalloys. Mater Today Proc. 2016;3(4):936–941.
  • Zhang Z, Yue Z. TCP phases growth and crack initiation and propagation in nickel-based single crystal superalloys containing Re. J Alloys Compd. 2018;746:84–92.
  • Heckl A, Neumeier S, Cenanovic S, et al. Reasons for the enhanced phase stability of Ru-containing nickel-based superalloys. Acta Mater. 2011;59(17):6563–6573.
  • Yeh AC, Tin S. Effects of Ru and Re additions on the high temperature flow stresses of Ni-base single crystal superalloys. Scr Mater. 2005;52(6):519–524.
  • Peng Z, Povstugar I, Matuszewski K, et al. Effects of Ru on elemental partitioning and precipitation of topologically close-packed phases in Ni-based superalloys. Scr Mater. 2015;101:44–47.
  • Singer RRaRF. Influence of ruthenium on topologically close packed phase precipitation in single-crystal ni-based superalloys: numerical experiments and validation. Superalloys. 2012;2012:205–214.
  • El-Bagoury N. Ni base superalloy: casting technology, metallurgy, development, properties and applications. Int J Eng Sci Res Technol. 2016;5(2):108–152.
  • Zhao Y, Luo Y, Zhang M, et al. On the effect of Ru upon creep behaviour and dislocation evolution in Ni-based single crystal superalloys. Mater Today Commun. 2022;30:103220.
  • Song W, Wang XG, Li JG, et al. Effect of ruthenium on microstructure and high-temperature creep properties of fourth generation Ni-based single-crystal superalloys. Mater Sci Eng A. 2020;772:138646.
  • Wang T, Wang X, Zhao Z, et al. Dissolution behaviour of the γ′ precipitates in two kinds of Ni-based superalloys. Mater High Temp. 2016;33(1):51–57.
  • Kawagishi K, Harada H, Sato A, et al. The oxidation properties of fourth generation single-crystal nickel-based superalloys. JOM. 2006;58(1):43–46.
  • Kawagishi K, Sato A, Sato A, et al. Oxidation behavior of Ru-containing Ni-base single-crystal superalloys. Mater Sci Forum. 2006;522-523:317–322.
  • Hu Y, Cao T, Cheng C, et al. Oxidation behavior of a single-crystal Ni-based superalloy over the temperature range of 850 °C–950 °C in air. Appl Surf Sci. 2019;484:209–218.
  • Hu Y, Cheng C, Zhang L, et al. Microstructural evolution of oxidation film on a single crystal nickel-based superalloy at 980 °C. Oxid Met. 2018;89(3):303–317.
  • Sun J, Liu J, Li J, et al. Dual effects of Ru on the microstructural stability of a single crystal superalloy. Scr Mater. 2021;205:114209.
  • Edmonds IM, Evans HE, Jones CN, et al. The kinetics of oxidation of Ru-bearing nickel-based superalloys. Mater Sci Forum. 2008;595:59–67.
  • Zhang J, Murakumo T, Koizumi Y, et al. Interfacial dislocation networks strengthening a fourth-generation single-crystal TMS-138 superalloy. Metall Mat Trans A. 2002;33(12):3741–3746.
  • Zhang J, Murakumo T, Harada H, et al. Creep deformation mechanisms in some modern single-crystal superalloys. Superalloys. 2004;2004:189–195.
  • McHugh RMPE. Modelling of creep in a Ni base superalloy using a single crystal plasticity model. Comput Mater Sci. 1997;9:134–140.
  • Zhang Y, Yang C, Xu Q. Numerical simulation of microstructure evolution in Ni-based superalloys during P-type rafting using multiphase-field model and crystal plasticity. Comput Mater Sci. 2020;172:109331.
  • Jogi T, Bhattacharya S. Interfacial dislocation network in precipitation strengthened alloys during creep: a discrete dislocation dynamics (DDD) study in three dimensions. Modell Simul Mater Sci Eng. 2021;29(3):035010.
  • Sugui T, Huihua Z, Jinghua Z, et al. Formation and role of dislocation networks during high temperature creep of a single crystal nickel–base superalloy. Mater Sci Eng A. 2000;279(1):160–165.