Enhanced strain rate sensitivity due to platelet linear complexions in Al-Cu

Fuente: arXiv
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Main Authors: Garg, Pulkit, Gianola, Daniel S., Rupert, Timothy J.
Format: Preprint
Published: 2025
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author Garg, Pulkit
Gianola, Daniel S.
Rupert, Timothy J.
author_facet Garg, Pulkit
Gianola, Daniel S.
Rupert, Timothy J.
contents Platelet array linear complexions have been predicted in Al-Cu, with notable features being dislocation faceting and climb into the precipitate, both of which should impact plasticity. In this study, we examine the strain rate dependence of strength for platelet linear complexions using atomistic simulations, with classical precipitate strengthening through particle cutting and particle bowing used as baseline comparisons. Dislocation segments with edge character must climb down from the platelet structures prior to the commencement of glide, introducing a significant time-dependent barrier to plastic deformation. Consequently, the strain rate sensitivity of strength for the platelet linear complexions system was found to be up to five times higher than that of classical precipitation strengthening mechanisms.
format Preprint
id arxiv_https___arxiv_org_abs_2506_04396
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Enhanced strain rate sensitivity due to platelet linear complexions in Al-Cu
Garg, Pulkit
Gianola, Daniel S.
Rupert, Timothy J.
Materials Science
Platelet array linear complexions have been predicted in Al-Cu, with notable features being dislocation faceting and climb into the precipitate, both of which should impact plasticity. In this study, we examine the strain rate dependence of strength for platelet linear complexions using atomistic simulations, with classical precipitate strengthening through particle cutting and particle bowing used as baseline comparisons. Dislocation segments with edge character must climb down from the platelet structures prior to the commencement of glide, introducing a significant time-dependent barrier to plastic deformation. Consequently, the strain rate sensitivity of strength for the platelet linear complexions system was found to be up to five times higher than that of classical precipitation strengthening mechanisms.
title Enhanced strain rate sensitivity due to platelet linear complexions in Al-Cu
topic Materials Science
url https://arxiv.org/abs/2506.04396