Aaron Dunn
Georgia Institute of Technology
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Publication
Featured researches published by Aaron Dunn.
Modelling and Simulation in Materials Science and Engineering | 2016
Aaron Dunn; Remi Philippe Michel Dingreville; Laurent Capolungo
A hierarchical methodology is introduced to predict the effects of radiation damage and irradiation conditions on the yield stress and internal stress heterogeneity developments in polycrystalline α-Fe. Simulations of defect accumulation under displacement cascade damage conditions are performed using spatially resolved stochastic cluster dynamics. The resulting void and dislocation loop concentrations and average sizes are then input into a crystal plasticity formulation that accounts for the change in critical resolved shear stress due to the presence of radiation induced defects. The simulated polycrystalline tensile tests show a good match to experimental hardening data over a wide range of irradiation doses. With this capability, stress heterogeneity development and the effect of dose rate on hardening is investigated. The model predicts increased hardening at higher dose rates for low total doses. By contrast, at doses above 10–2 dpa when cascade overlap becomes significant, the model does not predict significantly different hardening for different dose rates. In conclusion, the development of such a model enables simulation of radiation damage accumulation and associated hardening without relying on experimental data as an input under a wide range of irradiation conditions such as dose, dose rate, and temperature.
Materials research letters | 2016
Brittany Muntifering; Sarah J Blair; Cajer Gong; Aaron Dunn; Remi Philippe Michel Dingreville; Jianmin Qu; Khalid Mikhiel Hattar
Enhanced radiation tolerance of nanostructured metals is attributed to the high density of interfaces that can absorb radiation-induced defects. Here, cavity evolution mechanisms during cascade damage, helium implantation, and annealing of nanocrystalline nickel are characterized via in situ transmission electron microscopy (TEM). Films subjected to self-ion irradiation followed by helium implantation developed evenly distributed cavity structures, whereas films exposed in the reversed order developed cavities preferentially distributed along grain boundaries. Post-irradiation annealing and orientation mapping demonstrated uniform cavity growth in the nanocrystalline structure, and cavities spanning multiple grains. These mechanisms suggest limited ability to reduce swelling, despite the stability of the nanostructure.
Journal of Nuclear Materials | 2013
Aaron Dunn; M.G. McPhie; Laurent Capolungo; Enrique Martinez; Mohammed Cherkaoui
Computational Materials Science | 2015
Aaron Dunn; Laurent Capolungo
Journal of Nuclear Materials | 2013
Aaron Dunn; Laurent Capolungo; Enrique Martinez; Mohammed Cherkaoui
Journal of Nuclear Materials | 2013
M.G. McPhie; Laurent Capolungo; Aaron Dunn; Mohammed Cherkaoui
Acta Materialia | 2016
Aaron Dunn; Remi Philippe Michel Dingreville; Enrique Martinez; Laurent Capolungo
Computational Materials Science | 2016
Aaron Dunn; Remi Philippe Michel Dingreville; Enrique Martinez; Laurent Capolungo
Journal of Nuclear Materials | 2014
Aaron Dunn; Laura Agudo-Merida; Ignacio Martin-Bragado; M.G. McPhie; Mohammed Cherkaoui; Laurent Capolungo
Journal of Nuclear Materials | 2016
Brittany R. Muntifering; Youwu Fang; Asher C. Leff; Aaron Dunn; Jianmin Qu; Mitra L. Taheri; Remi Philippe Michel Dingreville; Khalid Mikhiel Hattar