Modeling the Effects of Damage and Microstructural Evolution on the Creep Behavior of Engineering Alloys

Author:

McLean M.1,Dyson B. F.1

Affiliation:

1. Department of Materials, Imperial College of Science, Technology and Medicine, Prince Consort Road, London SW7 2BP, UK

Abstract

A quantitative representation of the creep behavior of materials is required to determine the operating lives of high temperature plant. Although the creep performance of such materials is normally governed by the development of microstructural features that can either be associated with the normal aging phenomena or by the development of damage in the material, most previous analyses of creep data have been empirical. It has been implicitly assumed that similar forms of creep curves can be adequately represented by a single generic equation. However, it is clear that different materials are subject to different combinations of structural change during their creep lives (e.g., cavitation/cracking, particle coarsening, phase changes, dislocation accumulation) all of which can influence the creep performance. An empirical representation can always be made to fit an available database, but effective extrapolation to longer lives and more complex loading conditions requires that the differing mechanisms be integrated in the creep equations. This paper will explore the implications of the evolution of microstructure and damage on the creep performance of a range of materials and will consider the potential of a microstructure-based state-variable (or damage-mechanics) approach for improved design life prediction of new plant and remaining life assessment of geriatric plant. [S0094-4289(00)00603-4]

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference21 articles.

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3. Garafolo, F., 1965, Fundamentals of Creep and Creep Rupture in Metal, Macmillan, NY.

4. Graham, A., and Walles, K. F. A., 1955, “Relationships Between Long and Short Time Creep and Tensile Properties of a Commercial Alloy,” J. Iron Steel Inst., London, 179, pp. 105–120.

5. Evans, R. W., Parker, J. D., and Wilshire, B., 1982, “An Extrapolation Procedure for Long-Term Creep Strain and Creep Life Prediction with Special Reference to 1/2Cr1/2Mo1/4V Ferritic Steels,” Recent Advances in Creep and Fracture of Engineering Materials and Structures, Wilshire, B., and Owen, D. R. J., eds., Pineridge Press, Swansea, pp. 135–184.

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