The impact of alloying elements on the precipitation stability and kinetics in iron based alloys: An atomistic study

Fuente: arXiv
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Autores principales: Bonny, Giovanni, Domain, Christophe, Castin, Nicolas, Olsson, Pär, Malerba, Lorenzo
Formato: Preprint
Publicado: 2025
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author Bonny, Giovanni
Domain, Christophe
Castin, Nicolas
Olsson, Pär
Malerba, Lorenzo
author_facet Bonny, Giovanni
Domain, Christophe
Castin, Nicolas
Olsson, Pär
Malerba, Lorenzo
contents Iron based industrial steels typically contain a large number of alloying elements, even so-called low alloyed steels. Under irradiation, these alloying elements form clusters that have a detrimental impact of the mechanical properties of the steel. The stability and formation mechanisms of such clusters are presently not fully understood. Therefore, in this work, we study the thermal stability and formation kinetics of small solute clusters in the bcc Fe matrix. We use density functional theory (DFT) to characterize the binding energy of vacancy/solute clusters containing Cr, Mn, Ni, Cu, Si and P, thereby exploring>700 different configurations. The constructed DFT data base is used to fit a cluster expansion (CE) for the vacancy-FeCrMnNiCuSiP system. In turn, the obtained CE is applied in atomistic kinetic Monte Carlo simulations to study the effect of Mn, Ni, Cr, Si and P on the precipitation formation in the FeCu alloy. We conclude that the addition of Mn and Ni delay the precipitation kinetics by an order of magnitude. The additional alloying with traces of P/Si further delays the kinetics by an additional order of magnitude. We found that Si plays an essential role in the formation of spatially mixed MnNiCuSi cluster.
format Preprint
id arxiv_https___arxiv_org_abs_2501_08078
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The impact of alloying elements on the precipitation stability and kinetics in iron based alloys: An atomistic study
Bonny, Giovanni
Domain, Christophe
Castin, Nicolas
Olsson, Pär
Malerba, Lorenzo
Materials Science
Iron based industrial steels typically contain a large number of alloying elements, even so-called low alloyed steels. Under irradiation, these alloying elements form clusters that have a detrimental impact of the mechanical properties of the steel. The stability and formation mechanisms of such clusters are presently not fully understood. Therefore, in this work, we study the thermal stability and formation kinetics of small solute clusters in the bcc Fe matrix. We use density functional theory (DFT) to characterize the binding energy of vacancy/solute clusters containing Cr, Mn, Ni, Cu, Si and P, thereby exploring>700 different configurations. The constructed DFT data base is used to fit a cluster expansion (CE) for the vacancy-FeCrMnNiCuSiP system. In turn, the obtained CE is applied in atomistic kinetic Monte Carlo simulations to study the effect of Mn, Ni, Cr, Si and P on the precipitation formation in the FeCu alloy. We conclude that the addition of Mn and Ni delay the precipitation kinetics by an order of magnitude. The additional alloying with traces of P/Si further delays the kinetics by an additional order of magnitude. We found that Si plays an essential role in the formation of spatially mixed MnNiCuSi cluster.
title The impact of alloying elements on the precipitation stability and kinetics in iron based alloys: An atomistic study
topic Materials Science
url https://arxiv.org/abs/2501.08078