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Research Article

An interpretation of creep rupture properties of grade 91 steel service- exposed for 100,000 hours at 600 °C

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Pages 44-54 | Received 01 Sep 2021, Accepted 06 Nov 2021, Published online: 27 Nov 2021

References

  • Electric Power Research Institute, “The benefits of improved control of composition of creep-strength-enhanced ferritic steel grade 91,” EPRI Report No. 3002003472, Electric Power Research Institute, Palo Alto, CA, 2014.
  • Yaguchi M. Remaining life assessment technologies for weldment of high chromium steel pipe. Bull Iron Steel Inst Japan. 2019;24:68–72.
  • Nonaka I, Ito T, Ohba T, et al. “Residual life estimation for long-term used power boiler tubes.” Proceedings of ECCC Creep Conference, London, 2005 September 12-14, 2005, 847–852.
  • Ray AK, Tiwari YN, Roy PK, et al. Creep rupture analysis and remaining life assessment of 2.25Cr-1Mo steel tubes from a thermal power plant. Mater Sci Eng A. 2007;454-455:679–684.
  • Izaki T, Kobayashi T, Kusumoto J, et al. A creep life assessment method for boiler pipes using small punch creep test. Int J Press Vessels Pip. 2009;86(9):637–642.
  • Roy N, Bagui S, Sahu JK, et al. Creep characterization and damage assessment of long term service exposed P-22 grade of steel. Mater Sci Eng A. 2013;560:802–810.
  • Zielinski A, Golanski G, Sroka M. Comparing the methods in determining residual life on the basis of creep tests of low-alloy Cr-Mo-V cast steels operated beyond the design service life. Int J Press Vessels Pip. 2017;152:1–6.
  • Viswanathan R. Creep. Damage Mechanisms and Life Assessment of High Temperature Components, ASM Intern., Metals Park, OH, 1989, pp. 59–110.
  • Kushima H, Kimura K, Abe F. Degradation of Mod.9Cr-1Mo steel during long-term creep deformation. Tetsu-to-Hagane. 1999;85(11):841–847.
  • Hald J. Microstructure and long-term creep properties of 9-12% Cr steels. Int J Press Vessels Pip. 2008;85(1–2):30–37.
  • Chen RP, Ghassemi Armaki H, Maruyama K, et al. Long-term microstructural degradation and creep strength in Gr. 91 Steel. Mater Sci Eng A. 2011;528(13–14):4390–4394.
  • Ghassemi-Armaki H, Chen RP, Maruyama K, et al. Contribution of recovery mechanisms of microstructure during long-term creep of Gr.91 Steels. J Nucl Mater. 2013;433(1–3):23–29.
  • Sawada K, Kushima H, Hara T, et al. Heat-to-heat variation of creep strength and long-term stability of microstructure in grade 91 steels. Mater Sci Eng A. 2014;597:164–170.
  • Xu Y, Nie Y, Wang M, et al. The effect of microstructure evolution on the mechanical properties of martensite ferritic steel during long-term aging. Acta Mater. 2017;131:110–122.
  • Yamamoto Y. Analysis on ASME grade 91 type steel creep ruptured at 600°C/233kh. CAMP-ISIJ. 2017;30:913.
  • Jin X, Zhu B, Li Y, et al. Effect of the microstructure evolution on the high-temperature strength of P92 heat-resistant steel for different service times. Int J Press Vessels Pip. 2020;186:104131.
  • Masuyama F. Hardness model for creep-life assessment of high-strength martensitic steels. Mater Sci Eng A. 2009;510-511:154–157.
  • Panait CG, Bendick W, Fuchsmann A, et al. Study of the microstructure of the Grade 91 steel after more than 100,000h of creep exposure at 600°C. Int J Press Vessels Pip. 2010;87(6):326–335.
  • Yaguchi M, Kanai M. An estimation of creep remaining life of modified 9Cr steel on basis of short-term creep test data. Proceedings of the 57th Symposium on Strength of Materials at High Temperatures, The Society of Materials Science Japan, Kyoto, Japan, 2019. 51–55.
  • Maruyama K, Sekido N, Yoshimi K, et al. A grain size-dependent equation for creep rupture life of grade 91 steel verified up to 233,000 Hours. Journal of Pressure Vessel Technology. 2020;142(6):061505.
  • Maruyama K, Dewees D, Abe F, et al., “Multi-region modeling of multi-heat creep data of grade 91 steel for prediction of long-term creep rupture life”, submitted for publication.
  • Kako K, Yamada S, Yaguchi M, et al., “Microstructures of Modified 9Cr-1Mo Steel under Long-term Creep Conditions,” Proceedings of the 55th Symposium on Strength of Materials at High Temperatures and the 18th Symposium on Fracture Mechanics, The Society of Materials Science Japan, Kyoto, Japan, 2017, pp. 52–56.
  • Maruyama K, Nakamura J, Sekido N, et al. Causes of heat-to-heat variation of creep strength in grade 91 steel. Mater Sci Eng A. 2017;696:104–112.
  • Maruyama K, Sekido N, and Yoshimi K. Changes in Monkman-Grant relation among four creep regions of modified 9Cr-1Mo steel. Mater Sci Eng A. 2019;749:223–234.
  • Maruyama K. Fracture mechanism map and fundamental aspects of creep fracture. In: Abe F, Kern T, Viswanathan R, editors. Creep-Resistant Steels. Cambridge: Woodhead Publishing; 2008. p. 350–364.
  • National Institute for Materials Science. Data sheets of the elevated-temperature properties of 9Cr-1Mo-V-Nb steel tubes for boilers and heat exchangers, 9Cr-1Mo-V-Nb steel plates for boilers and pressure vessels and 9Cr-1Mo-V-Nb seamless pipe for high temperature service. Tsukuba Japan: NIMS Creep Data Sheet No. 43A, National Institute for Materials Science; 2014.
  • National Research Institute for Metals. Data Sheets of the Elevated-temperature properties of 9Cr-1Mo Steel Tubes for Boilers and Heat Exchangers (STBA 26). Tsukuba Japan: NRIM Creep Data Sheet No. 19B, National Institute for Materials Science; 1997.
  • Oikawa H, Iijima Y. Diffusion behavior of creep-resistant steels. In: Abe F, Kern T, Viswanathan R, editors. Creep-resistant steels. Cambridge UK: Woodhead Publishing; 2008. p. 241–264.
  • Kato S, Furukawa T, Yoshida E. Material test data of Mod. 9Cr-1Mo Steel (1). JAEA-Data/Code 2008-030, Japan Atomic Energy Agency, Tokai-mura, Japan, 2009.
  • Swindeman RW, Swindeman MJ, Roberts BW, et al., “Verification of allowable stresses in ASME Section III subsection NH for Grade 91 Steel,” ASME ST LLC Report, STP-NU-019-1, ASME Standards Technology, LLC, New York, 2009.
  • Blum W, Gotz G. Evolution of dislocation substructure in martensitic steels: the subgrain size as a sensor for creep strain and residual creep life. Steel Res. 1999;70(7):274–278.
  • Maruyama K, Sawada K, Koike J. Strengthening mechanism of creep resistant tempered martensitic steel. ISIJ Int. 2001;41(6):641–653.
  • Maruyama K, Sekido N, Yoshimi K. Changes in strengthening mechanisms in creep of 9Cr-1.8W-0.5Mo-VNb steel tested over wide ranges of creep conditions. Int J Press Vessels Pip. 2021;190:104312.

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