Metallurgical Abstracts on Light Metals and Alloys vol.56
Prediction of Fatigue Crack Initiation of 7075 Aluminum Alloy by Crystal Plasticity Simulation
Takayuki Shiraiwa*, Fabien Briffod* and Manabu Enoki*
*Department of Materials Engineering, School of Engineering, The University of Tokyo
[Published in Materials, Vol. 16 (2023), pp.1595-1606]
https://doi.org/10.3390/ma16041595
E-mail: shiraiwa[at]rme.mm.t.u-tokyo.ac.jp
Key Words: aluminum alloy; fatigue; crystal plasticity; finite element method; crack initiation
This study proposed a method for predicting fatigue crack initiation of 7075 aluminum alloy by crystal plasticity finite element analysis considering microstructures. In order to accurately predict the total fatigue life, it is necessary to calculate the number of cycles for fatigue crack initiation, small crack growth, and long crack growth. The long crack growth life can be estimated by the Paris law, but fatigue crack initiation and small crack growth are sensitive to the microstructures and have been difficult to predict. In this work, the microstructure of 7075 aluminum alloy was reconstructed based on experimental observations in the literature and crystal plasticity simulations were performed to calculate the elasto-plastic deformation behavior in the reconstructed polycrystalline model under cyclic deformation. The calculated local plastic strain was introduced into the crack initiation criterion (Tanaka and Mura, 1981) to predict fatigue crack initiation life. The predicted crack initiation life and crack morphology were in good agreement with the experimental results, indicating that the proposed method is effective in predicting fatigue crack initiation in aluminum alloys. From the obtained results, future issues regarding the prediction of fatigue crack initiation were discussed.
Distribution of cumulative plastic shear strain and predicted fatigue crack initiation life.