32
Views
5
CrossRef citations to date
0
Altmetric
Original Articles

Cyclic crack growth properties of service-exposed ferritic steels for use in thermal fatigue assessments

Pages 129-146 | Published online: 02 Jan 2014

References

  • Proc. Internat. Seminar: Cyclic Operation of Power Plant (eds I. A. Shibli et al.), London, 2001, EPRI Report No. 1004655, ISBN1-900814-45-5
  • Materials at High Temperatures, 2001,18, 193-270 (various papers).
  • R5: Assessment procedure for the high temperature response of struc-tures, Issue 3, British Energy Generation Ltd, Barnwood, UK, 2003.
  • R. P. Skelton, Cyclic stress-strain properties of service-exposed ferritic steels for use in thermal fatigue assessments. Mater. High Temp., 2002,19, 193–213.
  • M. Okazaki, M. Hashimoto and T. Mochizuki, Creep-fatigue strength of long term post service 2NCr 1Mo steel and remaining life estimation. Trans ASME J. Pressure Vessel Technol.,1991, 113, 549–555.
  • Shinya, N., Kyono, J., Kushima, H. and Yokoi, S., Effect of creep damage on fatigue life of Cr-Mo-V steel. Trans. Nat. Res. Inst. for Metals, 1987, 29, No.2, 115–123.
  • R. P. Skelton, Introduction to thermal shock. High Temp. Technol., 1990,8, 75–88.
  • R. P. Skelton, Growth of short cracks during high strain fatigue and thermal cycling. In: Low Cycle Fatigue and Life Prediction (ed. C. Amzallag et al.), ASTM STP 770, Amer. Soc. Testing Mater., Philadelphia, 1982, pp. 337-381.
  • G. A. Webster and F. Djavanroodi, Determination of the crack growth behaviour and failure mode of pre-exposed material, COST 505, Group 2, Remanant Life, Project UK 26, Imperial College, London, January 1989.
  • V. Bicego, P. Bontempi and D. D'Angelo, High temperature charac-terisation of ex-service material. In: Materials for Advanced Power Engineering, Part I, Kluwer Academic Publishers, Dordrecht, 1994, pp. 191-198.
  • Keienburg, K. H. and Hajdu, T., 1988, Materials examination on steam turbine components for lifetime predictions, COST 505-D13 Final Report.
  • R. H. Priest, D. A. Miller, D. H. Gladwin, and J. Maguire, The creep-fatigue crack growth behaviour of a 1CrMoV rotor steel. In Fossil Power Plant Rehabilitation, ASM, Ohio, 1989, pp. 31-37.
  • S. J. Brett, Service experience of weld cracking in CrMoV steam pipework systems. In: 2nd Int Conf. Integrity of High Temperature Welds, IOM Communications Ltd, London, 2003, pp. 3-19.
  • S. T. Fenton, A. Morris and P. Mulvihill, Investigation and analysis of CrMoV bore cracking. In: 2nd Int Conf. Integrity of High Temperature Welds, IOM Communications Ltd, London, 2003, pp. 31-44.
  • R. P. Skelton, S. M. Beech, S. R. Holdsworth, G. J. Neate, D. A. Miller and R. H. Priest, Round robin tests on creep-fatigue crack growth in a ferritic steel at 550. In: Behaviour of Defects at High Temperatures (eds R. A. Ainsworth and R. P. Skelton), ESIS 15, Mechanical Engineering Publications Ltd., London, 1993, pp. 299-325.
  • S. R. Holdsworth, Factors influencing high temperature HSF crack growth rates in turbine casting steels. In: Behaviour of Defects at High Temperatures (eds R. A. Ainsworth and R. P. Skelton), ESIS 15, Mechanical Engineering Publications Ltd., London, 1993, pp. 327-349.
  • R. P. Skelton, Cyclic crack growth and closure effects in low alloy ferritic steels during creep-fatigue at 550°C. High Temp. Technol., 1989,7, 115–128
  • R. P. Skelton, R. H. Priest, D. A. Miller and C. J. Rees, Validation and background of crack opening and closing relation for use in high temperature assessment. In: Engineering Against Fatigue (eds J. H. Beynon et al.), A. A. Balkema, Rotterdam, 1999, pp. 683-692.
  • R. P. Skelton, Application of small specimen crack growth data to engineering components at high temperature: A review. In: Low Cycle Fatigue (eds H. D. Solomon et al.), ASTM STP 942, Amer. Soc. Testing Mater., Philadelphia, 1988, pp. 209-235.
  • R. P. Skelton, Damage factors during high temperature fatigue crack growth. In: Behaviour of Defects at High Temperatures (eds R. A. Ainsworth and R. P. Skelton), ESIS 15, Mechanical Engineering Publications Ltd., London, 1993, pp. 191-218.
  • R. P. Skelton, Creep-fatigue interactions (Crack initiation). In: Comprehensive Structural Integrity, Vol. 5: Creep and High Temperature Failure (ed A. Saxena), Elsevier Pergamon, London, 2003, pp. 25-112.
  • R. P. Skelton, High strain fatigue of 20Cr/25Ni/Nb steel at 1025K Part BI: Crack propagation. Mater. Sci. Eng., 1975, 19, 193–200.
  • R. P. Skelton, Crack growth during high strain fatigue of 0.5Cr-Mo-V steel at 825K. Mater. Sci. Eng., 1978, 32, 211–219.
  • R. P. Skelton, Fatigue crack growth. In: Characterisation of High Temperature Materials: Mechanical Testing, Institute of Metals, London, 1988, pp. 108-172.
  • R. D. Townsend, Historical perspective: a review of service problems. In: Rupture Ductility of Creep Resistant Steels, (ed. A. Strang), Institute of Metals, London, 1991, pp. 1-16.
  • R. Viswanathan and H. Bernstein, Creep fatigue problems in the power generation industry. In: Creep & Fracture of Engineering Materials and Structures (ed. J. D. Parker), Book No. 0769, The Institute of Materials, London, 2001, pp. 545-565.
  • D. J. Gooch, Creep crack growth in cold worked C-Mn steel at 320°C to 380°C. In: Creep and Fracture of Engineering Materials and Structures, Part II (eds B. Wilshire and D. R. J. Owen), Pineridge Press Swansea, 1984, pp. 889-900.
  • J. R. Haigh, The growth of fatigue cracks at high temperatures under predominantly elastic loading. Eng. Fract. Mech., 1975, 7, 271–284.
  • B. L. King, Intergranular embrittlement in CrMoV steels: an assess-ment of the effects of residual impurity elements on high temperature ductility and crack growth. Phil. Trans. Roy. Soc. London, 1980, A295, 235–251.
  • D. J. Gooch, Remnant creep life prediction in ferritic materials. In: Comprehensive Structural Integrity, Vol. 5: Creep and High Temperature Failure (ed A. Saxena), Elsevier Pergamon, London, 2003, pp.309–359.
  • G. J. Neate, Crack growth in a CrMoV steel under cyclic loading at 873 K. High Temperature Technol., 1985, 3, 195–202.
  • R. P. Skelton, Crack initiation and growth during thermal transients. In: Component Reliability under Creep-Fatigue Conditions (eds J. Ginzstler and R. P. Skelton), Springer Verlag, Wien, New York, 1998, pp. 17–86 ( CISM Courses & Lectures No. 39).
  • R. Viswanathan, Damage Mechanisms and Life Assessments of High Temperature Components, ASM International, Ohio, 1989.
  • R. Viswanathan and J. Stringer, Failure mechanisms of high temperature components in power plants. Trans. ASME J. Eng. Mater. Technol., 2000, 122, 246–255.
  • D. Charman and A. Croker, Monitoring of boiler life during cycling operation. In: Cyclic Operation of Power Plant (eds I. A. Shibli et al.), ETD/EPRI Publication (ISBN 1-900814-45-5, EPRI Product No. 1004655, Science Reviews, St Albans, 2001, pp. S4 3 1 S4 3 11.
  • B. J. Cane, Surveillance and control of damage in elevated temperature pressure parts in power and process plants. In: 6th Int. Conf. Creep and Fatigue, Mechanical Engineering Publications Ltd., London, 1996, pp. 473-489.
  • C. J. Rees, R. P. Skelton and E. Metcalfe, Materials comparisons between NF616, HCM12A and TB12M — II, Thermal fatigue proper-ties. In: New Steels for Advanced Plant up to 620°C, (ed. E. Metcalfe), EPRI/National Power Conference, 1995, EPRI, pp. 135-151.
  • H. Tada, P. Paris and C. Irwin, The Stress Analysis of Cracks Handbook, Del Research Corporation, Hellertown, PA, 1973.
  • T. V. Duggan, M. W. Procter and L. J. Spence. Stress intensity calibrations and compliance functions for fracture toughness and crack propagation specimens. Int. J. Fatigue, 1979, 1, 37–47.
  • F. I. Baratta, Stress intensity factors for internal multiple cracks in thick-walled cylinders stressed by internal pressure using load relief factors. Eng. Fract. Mech., 1978, 10, 691–697.
  • O. E. K. Daoud, D. J. Cartwright and M. Carney, Strain energy release rate for a single edged cracked circular bar in tension. J. Strain Anal., 1978, 13, 83–89.
  • D. N. Gladwin, D. A. Miller and R. H. Priest, The high temperature crack growth response of a 0.5%CrMoV steel. In: Creep Fracture & Fracture of Engineering Materials and Structures, Inst. Metals, London, 1990, pp. 765-778.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.