DOE OSTI · 2998248
A stress-sensitive precipitate nucleation model beyond classical nucleation theory
Abstract
The dynamic evolution of precipitates and second phases dictates the strength and stability of most engineering alloys. By design, or as a consequence of thermo-mechanical aging, engineering metals and alloys often form precipitates of second phases when subjecting to diverse thermal and mechanical loads. Precipitation is governed by several factors, including the alloy’s composition, processing/operating temperature, and stresses — either as a result of external loads or from residual stresses. However, state-of-the-art models for precipitate nucleation (i.e., classical nucleation theory) typically lacks consistent method to capture the effects of externally applied and/or internal stresses on nucleation; thereby severely limiting the applicability of these models to complex materials systems and to representative loading scenarios. Here, in this work, we extend upon classical nucleation theory to account for the effect of stresses on precipitation kinetics and thermodynamics. This is achieved via the use of an Eshelbian micromechanics framework keeping track of (i) the stress build up resulting from second phase formation as a function of mechanical load and, (ii) the effects of dislocations on precipitate formation. This new model is applied to σ precipitate in Fe–Cr binary alloys and M 23 C 6 precipitate in 316H stainless steel (SS). Simulations demonstrate the important role of both the remotely applied loads and dislocation pile ups on precipitate nucleation.
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Dang, Khanh Quoc [Los Alamos National Laboratory (LANL), Los Alamos, NM (United States)] (ORCID:0000000296864270), Capolungo, Laurent [Los Alamos National Laboratory (LANL), Los Alamos, NM (United States)] (ORCID:0000000180797790). 2025-10-08. A stress-sensitive precipitate nucleation model beyond classical nucleation theory. https://doi.org/10.1016/j.jmps.2025.106374
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