Fatigue crack initiation and growth behavior within varying notch geometries in the low‐cycle fatigue regime for FV566 turbine blade material

Author:

Cunningham Benjamin M. D.1,Leering Mitchell2,Fan Yuhui3,You Chao3,Morris Andrew4,Reed Philippa A. S.1,Hamilton Andrew R.1,Fitzpatrick Michael E.2

Affiliation:

1. Department of Mechanical Engineering University of Southampton Southampton UK

2. Faculty of Engineering, Environment, and Computing Coventry University Coventry UK

3. College of Energy and Power Engineering Nanjing University of Aeronautics and Astronautics Nanjing China

4. Coal & Gas Operations, Central Technical Organisation, EDF Gloucester UK

Abstract

AbstractPlain bend bars made from FV566 martensitic stainless steel were extracted from the root of ex‐service power plant turbine blades and several industry‐relevant notch geometries were introduced. Some of the samples were shot peened. The notched bend bars were loaded plastically in the low‐cycle fatigue regime and finite element (FE) modeling carried out to investigate the effects of changing notch geometry, combined with shot peening, on fatigue behaviors such as crack initiation, short crack growth, and coalescence. Shot peening damaged the notch surface, accelerating initiation behaviors, but had a lifetime‐extending effect by retarding short crack growth in all tested notch geometries. At a total strain range higher than 1.2%, the lifetime extension benefit from shot peening was diminished due to compressive residual stress relaxation in the notch stress field. Notch geometry (and the associated varying constraint levels and stress/strain gradients) was found to have no notable difference on fatigue life when tested at identical notch‐root strain ranges.

Funder

Engineering and Physical Sciences Research Council

Natural Science Foundation of Jiangsu Province

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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