Journal ArticleParallel publicationPublished versionDOI: 10.48548/pubdata-2780

A multi-component phase-field model for T1 precipitates in Al–Cu–Li alloys

Chronological data

Date of first publication2025-08-07
Date of publication in PubData 2026-01-05

Language of the resource

English

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Variant form of DOI: 10.1088/1361-651X/adf3d2
Reza Safi, A., Mathew, E., Chafle, R., & Klusemann, B. (2025). A multi-component phase-field model for T1 precipitates in Al–Cu–Li alloys. Modelling and Simulation in Materials Science and Engineering, 33(6), Article 065009.
Published in ISSN: 0965-0393
Modelling and Simulation in Materials Science and Engineering

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Abstract

In this study, the role of elastic and interfacial energies in the shape evolution of T1 precipitates in Al–Cu–Li alloys is investigated using phase-field modeling. We employ a formulation considering the stoichiometric nature of the precipitate phase explicitly, including coupled equation systems for various order parameters. Inputs such as elastic properties are derived from density functional theory calculations, while chemical potentials are obtained from CALPHAD databases. This methodology provides a framework that is consistent with the derived chemical potentials to study the interplay of thermodynamic, kinetic, and elastic effects on T1 precipitate evolution in Al–Cu–Li alloys. It is shown that diffusion-controlled lengthening and interface-controlled thickening are important mechanisms to describe the growth of T1 precipitates. Furthermore, the study illustrates that the precipitate shape is significantly influenced by the anisotropy in interfacial energy and linear reaction rate, however, elastic effects are only of secondary importance.

Keywords

Phase-field Model; Al–Cu–Li Alloys; Precipitates

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European Research Council (ERC)

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