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DOE OSTI · 1990124

Phase-field modeling of dislocation–interstitial interactions

Abstract

The mechanical behavior of body-centered cubic (BCC) materials can be dramatically affected by the presence of interstitial solute atoms. Here we present a new phase-field dislocation dynamics formulation to include the diffusion of interstitials. Short-range interactions are accounted for by a concentration-dependent lattice energy, and long-range interactions are accounted for by modifications to the elastic energy. The interstitial diffusion law introduces gradients that require methods for minimizing Gibbs oscillations, which is done via a modified Green’s function. The formulation is general to any solute-solvent system and is applied here to Nb-O as a model system, whose interstitial parameters are obtained from ab initio calculations. The effect of O on the core structures of Nb edge and screw dislocations is calculated. The diffusion of O to form interstitial atmospheres around dislocation cores is simulated, as well as the critical stresses required for dislocations to break away or cross slip from these atmospheres. Future applications of the method to simulate complex interstitial embrittlement mechanisms are discussed.

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BibTeXRIS

Fey, Lauren T. W., Reynolds, Colleen, Hunter, Abigail, Beyerlein, Irene Jane. 2023-07-11. Phase-field modeling of dislocation–interstitial interactions. https://doi.org/10.1016/j.jmps.2023.105370

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36 MATERIALS SCIENCE↗