A Model of Nonlinear Fatigue-Creep (Dwell) Interactions

Author:

Wu Xijia1

Affiliation:

1. Institute for Aerospace Research, National Research Council Canada, Ottawa, ON, K1A 0R6, Canada

Abstract

A nonlinear creep/dwell interaction model is derived based on nucleation and propagation of a surface fatigue crack and its coalescence with creep/dwell damages (cavities or wedge cracks) along its path inside the material, which results in the total damage accumulation rate as given by da/dN=(1+(lc+lz)/λ){(da/dN)f+(da/dN)env}, where (da/dN)f is the pure fatigue crack growth rate, (da/dN)env is the environment-assisted crack growth rate, lc/lz is the cavity/wedge crack size, and λ is the average spacing between the internal cavities or cracks. Since wedge cracks are usually present in the form of dislocation pile-ups at low temperatures and cavitation usually occurs at high temperatures, the model attempts to reconcile the creep-/dwell-fatigue phenomena over a broad temperature range of engineering concern. In particular, the model has been used to explain the dwell fatigue of titanium alloys and high temperature creep-fatigue interactions in Ni-base superalloys under tensile cyclic creep rupture, compressive cyclic creep rupture, and tension/compression-hold strain controlled cyclic test conditions.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference17 articles.

1. Accumulative Damage in Fatigue;Miner;ASME Trans. J. Appl. Mech.

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3. Halford, G. R., Saltsman, J. F., and Hirschberg, M. H., 1977, “Ductility-Normalized Strain Range Partitioning Life Relations for Creep-Fatigue Life Predictions,” NASA Report No. TM-73737.

4. A Study of the Effects of Cyclic Thermal Stresses on a Ductile Metal;Coffin;Trans. ASME

5. Manson, S. S. , 1954, “Behavior of Materials Under Conditions of Thermal Stress,” NACA Report No. TN-2933.

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1. Effect of Prior Creep Strain on High Cycle Fatigue Life of TI 834;Journal of Engineering for Gas Turbines and Power;2018-11-22

2. Creep behavior accompanying oxidation of compacted graphite cast iron;Materials Science and Engineering: A;2018-04

3. Mechanism-Based Modeling for Low Cycle Fatigue of Cast Austenitic Steel;Metallurgical and Materials Transactions A;2017-06-07

4. Creep-fatigue life prediction and interaction diagram in nickel-based GH4169 superalloy at 650 °C based on cycle-by-cycle concept;International Journal of Fatigue;2017-04

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