NASA NTRS · 19990046065
Fatigue Analyses Under Constant- and Variable-Amplitude Loading Using Small-Crack Theory
Abstract
Studies on the growth of small cracks have led to the observation that fatigue life of many engineering materials is primarily "crack growth" from micro-structural features, such as inclusion particles, voids, slip-bands or from manufacturing defects. This paper reviews the capabilities of a plasticity-induced crack-closure model to predict fatigue lives of metallic materials using "small-crack theory" under various loading conditions. Constraint factors, to account for three-dimensional effects, were selected to correlate large-crack growth rate data as a function of the effective stress-intensity factor range (delta-Keff) under constant-amplitude loading. Modifications to the delta-Keff-rate relations in the near-threshold regime were needed to fit measured small-crack growth rate behavior. The model was then used to calculate small-and large-crack growth rates, and to predict total fatigue lives, for notched and un-notched specimens under constant-amplitude and spectrum loading. Fatigue lives were predicted using crack-growth relations and micro-structural features like those that initiated cracks in the fatigue specimens for most of the materials analyzed. Results from the tests and analyses agreed well.
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Newman, J. C., Jr., Phillips, E. P., Everett, R. A., Jr.. 1999-05-01. Fatigue Analyses Under Constant- and Variable-Amplitude Loading Using Small-Crack Theory. https://ntrs.nasa.gov/citations/19990046065
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