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Characterization of the strain rate sensitivity of basal, prismatic and pyramidal slip in Zircaloy-4 using micropillar compression

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posted on 2025-02-06, 11:21 authored by Ning Fang, Yang LiuYang Liu, Finn Giuliani, Thomas Benjamin Britton

The slip strength of individual slip systems at different strain rates will control the mechanical response and strongly influence the anisotropy of plastic deformation. In this work, the slip activity and strain rate sensitivity of the basal, prismatic, and pyramidal slip systems are explored by testing at variable strain rates (from 10−4 s−1 to 125 s−1) using single crystal micropillar compression tests. These systematic experiments enable the direct fitting of the strain rate sensitivities of the different slips using a simple analytical model and this model reveals that deformation in polycrystals will be accommodated using different slip systems depending on the strain rate of deformation in addition to the stress state (i.e. Schmid's law). It was found that the engineering yield stress increases with strain rate, and this varied by slip systems. Activation of the prismatic slip system results in a high density of parallel, clearly discrete slip planes, while the activation of the pyramidal slip leads to the plastic collapse of the pillar, leading .to a ‘mushroom’ morphology of the deformed pillar. This characterization and model provide insight that helps inform metal forming and understanding of the mechanical performance of these engineering alloys in the extremes of service conditions.

Funding

MIDAS - Mechanistic understanding of Irradiation Damage in fuel Assemblies

Engineering and Physical Sciences Research Council

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Citation

Ning Fang, Yang Liu, Finn Giuliani, Thomas Benjamin Britton, Characterization of the strain rate sensitivity of basal, prismatic and pyramidal slip in Zircaloy-4 using micropillar compression, Materials Science and Engineering: A, Volume 912, 2024, 146802, ISSN 0921-5093, https://doi.org/10.1016/j.msea.2024.146802.

Author affiliation

College of Science & Engineering Engineering

Version

  • VoR (Version of Record)

Published in

Materials Science and Engineering: A

Volume

912

Pagination

146802 - 146802

Publisher

Elsevier BV

issn

0921-5093

Acceptance date

2024-06-06

Copyright date

2024

Available date

2025-02-06

Language

en

Deposited by

Dr Yang Liu

Deposit date

2024-12-02

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