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

IF 5.6 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Pulkit Garg , Daniel S. Gianola , Timothy J. Rupert
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引用次数: 0

Abstract

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.

Abstract Image

由于血小板线性络合物在Al-Cu中的应变率敏感性增强
在Al-Cu中预测了血小板阵列线性络合,其显著特征是位错面化和向沉淀中攀爬,这两者都应该影响塑性。在这项研究中,我们使用原子模拟研究了血小板线性络合物强度的应变速率依赖性,通过颗粒切割和颗粒弯曲进行经典沉淀强化作为基线比较。具有边缘特征的位错段必须在滑动开始之前从血小板结构中爬下来,这对塑性变形引入了一个重要的时变屏障。结果表明,血小板线性配位体系的应变速率强度敏感性比经典沉淀强化机制高5倍。
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来源期刊
Scripta Materialia
Scripta Materialia 工程技术-材料科学:综合
CiteScore
11.40
自引率
5.00%
发文量
581
审稿时长
34 days
期刊介绍: Scripta Materialia is a LETTERS journal of Acta Materialia, providing a forum for the rapid publication of short communications on the relationship between the structure and the properties of inorganic materials. The emphasis is on originality rather than incremental research. Short reports on the development of materials with novel or substantially improved properties are also welcomed. Emphasis is on either the functional or mechanical behavior of metals, ceramics and semiconductors at all length scales.
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