May 8, 2017
Journal Article

Simulations of irradiated-enhanced segregation and phase separation in Fe– Cu–Mn alloys

Abstract

For reactor pressure vessel steels, the addition of Cu, Mn, and Ni has a positive effect on mechanical, corrosion and radiation resistance properties. However, experiments show that radiation-enhanced segregation and/or phase separation is one of important material property degradation processes. In this work, we developed a model integrating rate theory and phase-field approaches to investigate the effect of irradiation on solute segregation and phase separation. The rate theory is used to describe the accumulation and clustering of radiation defects while the phase-field approach describes the effect of radiation defects on phase stability and microstructure evolution. The Fe-Cu-Mn ternary alloy is taken as a model system. The free energies used in the phase-field model are from CALPHAD. Spatial dependent radiation damage from atomistic simulations is introduced into the simulation cell for a given radiation dose rate. The radiation effect on segregation and phase separation is taken into account through the defect concentration dependence of solute mobility. With the model the effect of temperatures and radiation rates on Cu and Mn segregation and Cu-rich phase nucleation are systematically investigated. The segregation and nucleation mechanisms are analyzed. The simulations demonstrated that the nucleus of Cu precipitates has a core-shell composition profile, i.e., Cu rich at center and Mn rich at the interface, in good agreement with the theoretical calculation as well as experimental observations.

Revised: February 27, 2020 | Published: May 8, 2017

Citation

Li B., S. Hu, C. Li, Q. Li, J. Chen, G. Shu, and C.H. Henager, et al. 2017. Simulations of irradiated-enhanced segregation and phase separation in Fe– Cu–Mn alloys. Modelling and Simulation in Materials Science and Engineering 25, no. 6:Article No. 065007. PNNL-SA-128919. doi:10.1088/1361-651X/aa7197