Incorporation of a Probabilistic Monotonic Strain Energy Analysis to a Lifting Method

Author:

Scott-Emuakpor Onome,George Tommy,Letcher Todd,Shen M.-H. Herman,Cross Charles

Publisher

Springer Science and Business Media LLC

Subject

Mechanical Engineering,Mechanics of Materials,Safety, Risk, Reliability and Quality,General Materials Science

Reference21 articles.

1. Goodman, J.: Mechanics Applied to Engineering. Longmans, Green, and Co, London (1899)

2. Wöhler, A.: Wöhler’s experiments on the strength of metals. Eng. Paris Expo. 4, 160–161 (1867)

3. Jasper, T.M.: The value of the energy relation in the testing of ferrous metals at varying ranges of stress and at intermediate and high temperatures. Philo. Mag., Series 6, vol. 46, pp. 609–627, Oct (1923)

4. Enomoto, N.: On fatigue tests under progressive stress. Proc. ASTM 55, 903–917 (1955)

5. Morrow, J.: Cyclic plastic energy and fatigue of metals. In: Internal Friction, Damping and Cyclic Plasticity, ASTM STP 378, pp. 45–87. ASTM International, West Conshohocken (1964)

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1. Improved Measurement for High-Cycle Fatigue Examination;Challenges in Mechanics of Time Dependent Materials, Fracture, Fatigue, Failure and Damage Evolution, Volume 2;2019-12-06

2. A unified criterion for fatigue–creep life prediction of high temperature components;Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering;2016-08-06

3. Contact Stress Analysis and Fatigue Life Prediction of a Turbine Fan Disc;International Journal of Turbo & Jet-Engines;2016-01-01

4. A New Ductility Criterion for Fatigue-Creep Life Prediction of High Temperature Components;55th AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics, and Materials Conference;2014-01-10

5. Erratum to: Incorporation of a Probabilistic Monotonic Strain Energy Analysis to a Lifing Method;Journal of Failure Analysis and Prevention;2012-01-19

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