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Original Articles

Microstructure-based creep modelling of a 9%Cr martensitic steel

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Pages 131-137 | Published online: 24 Oct 2014

References

  • Kushima, H., Kimura, K. and Abe, F. (1999) Degradation of Mod. 9Cr— 1Mo-Steel during long-term creep deformation. Tetsu-to-Hagané, 85 (11), pp. 841–847.
  • Larson, E. R. and Miller, I. (1952) A time temperature relation-ship for rupture and creep stresses. Trans. ASME, 74, pp. 765–775.
  • Dyson, B.E (2000) Use of CDM in materials modelling and component creep life prediction. J Pressure Vessel Technol., 122, pp. 281–296.
  • Evans, R. W. and Wilshire, B. (1985) Creep of Metals, The Institute of Metals, London.
  • Prager, M. (1995) Development of the MPC omega method for life assessment in the creep range. J Pressure Vessel Technol., 117, pp. 95–103.
  • Kadoya, Y, Nshimura, N., Dyson, B. F. and McLean, M. (1997) Origins of tertiary creep in high chromium steels. Creep and Fracture of Engineering Materials and Structures. Earthman, J. C. and Mohamed, EA. (eds.), TMS, USA, pp. 343-352.
  • Blum, W. (1984) On the evolution of the dislocation atructure during work hardening and creep. Scripta Metall., 18, pp. 1383–1388.
  • Polcik, P., Straub, S., Henes, D. and Blum, W. (1998) Simula-tion of the creep behaviour of 9-12% CrMoV-Steels on the basis of microstructural data. Microstructural Stability of Creep Resistant Alloys for High Temperature Plant Applica-tions, Strang, A. et al. (eds.), The Institute of Materials, London, pp. 405-429.
  • Gittus, J. H. (1975) Creep, Viscoelasticity and Creep Fracture in Solids, Halstead Press, NY.
  • Mughrabi, H. (1983) Dislocation wall and cell structures and long-range internal stresses in deformed metal crystals. Acta Metall., 31, pp. 1367–1379.
  • Ion, J. C., Barbosa, A., Ashby, M. F., Dyson, B. F. and McLean, M. (1986) NFL Report DMA A115.
  • Kocks, U. F. (1976) J Eng. Mater Tech., 98, p.76.
  • Mecking, H. and Kocks, U. F. (1981) Kinetics of flow and strain-hardening. Acta Metall., 29, pp. 1865–1875.
  • Estrin, Y. and Mecking, H. (1984) A unified phenomenologi-cal description of work hardening and creep based on one-parameter models. Acta Metall., 32, pp. 57–70.
  • Sawada, K., Takeda, M., Maruyama, K., Ishii, R., Yamada, M., Nagae, Y. and Komine, R. (1999) Effect of Won recovery of lath structure during creep of high chromium martensitic steels. Mat. Sci. Eng., A267, pp. 19–25.
  • Wert, C. and Zener, C. (1950) Interface of growing spherical precipitate particles. J AppL Phys., 21, pp. 5–8.
  • lijima, Kimura, K. and Hirano, K. (1988) Self-diffusion and isotope effect in cc-iron. Acta Metall., 36, pp. 2811–2820.
  • Dyson, B. F. and McLean, M. (2000) Micromechanism-quan-tification for creep constitutive equations. IUTAM symposium on Creep in Structures. Murakami, S. et al. (eds.), Kluwer Academic Publishers, Dordrecht, pp. 3-16.
  • Wolfram, S. (1999) The Mathematica Book, 4th ed., Wolfram media, Cambridge University Press.
  • Kadoya, Y, Dyson, B. F. and McLean, M. (2002) Microstruc-tural stability during creep of Mo- or W-bearing 12Cr steels. Met. Mat. Trans., 33A, pp. 2549–2557.

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