Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7972711 | Materials Science and Engineering: A | 2018 | 33 Pages |
Abstract
Predictive simulations of the γⲠand γⳠprecipitates in the nickel-based superalloy Alloy 718 is needed for integrated computational materials engineering of technical components. But so far, no thermo-kinetic model is published for this alloy that is capable of reproducing simultaneously the precipitation evolution during, both, short and long time aging durations for an extended range of temperatures. The thermo-kinetic modeling was performed in the software package MatCalc, which uses the classical nucleation theory, the Svoboda-Fischer-Fratzl-Kozeschnik growth model and the 'generalized broken bond theory' for the interfacial energy. A combination of atom probe tomography, electron microscopy, small angle neutron scattering and sequential tensile tests are conducted to obtain the unknown kinetic evolution and strengthening parameters at the nano-, micro- and macro-scales for the model. The role of the physical association of the γⲠand γⳠprecipitates and the effects of the precipitation strengthening are discussed. The resulting parametrized model successfully reproduces the measured local chemical composition, volume fractions, mean radii and precipitation strengthening contributions within a single set of model parameters up to 800â¯Â°C. Between 800â¯Â°C and 830â¯Â°C the model slightly over-predicts the kinetics.
Keywords
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Physical Sciences and Engineering
Materials Science
Materials Science (General)
Authors
A. Drexler, B. Oberwinkler, S. Primig, C. Turk, E. Povoden-Karadeniz, A. Heinemann, W. Ecker, M. Stockinger,