Two-stage work-hardening of a transformable B2-enhanced metallic glass composite by molecular dynamics simulation

IF 6.5 2区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES Composites Communications Pub Date : 2024-08-17 DOI:10.1016/j.coco.2024.102045
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Abstract

The crystalline-amorphous interfaces play vital roles in affecting martensitic transformation, shear band nucleation and interface stability. Though both quasi-static and dynamic mechanical behaviors of shape memory enhanced bulk metallic glass composites have been studied via experiments, the atomic-level interactions among martensitic transformation, localized shear softening and interfacial strain concentration imposed by strain rate remain elusive. We employ molecular dynamics simulations to study strain rate effect on uniaxial compression behavior of transformable B2–CuZr enhanced bulk metallic glass composite. As strain rate increases, the proportion of martensitic transformation accelerates. During the competition among martensitic transformation induced-hardening, shear induced-softening and interface debonding, a two-stage work-hardening is observed, which is in agreement with experimental findings.

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通过分子动力学模拟实现可转化 B2 增强金属玻璃复合材料的两阶段加工硬化
结晶-非晶界面在影响马氏体转变、剪切带成核和界面稳定性方面起着至关重要的作用。虽然已通过实验研究了形状记忆增强型块状金属玻璃复合材料的准静态和动态力学行为,但马氏体转变、局部剪切软化和应变率施加的界面应变集中之间的原子级相互作用仍然难以捉摸。我们采用分子动力学模拟研究了应变速率对可转化 B2-CuZr 增强块状金属玻璃复合材料单轴压缩行为的影响。随着应变速率的增加,马氏体转变的比例加快。在马氏体转变诱导硬化、剪切诱导软化和界面脱粘之间的竞争过程中,观察到了两阶段的加工硬化,这与实验结果一致。
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来源期刊
Composites Communications
Composites Communications Materials Science-Ceramics and Composites
CiteScore
12.10
自引率
10.00%
发文量
340
审稿时长
36 days
期刊介绍: Composites Communications (Compos. Commun.) is a peer-reviewed journal publishing short communications and letters on the latest advances in composites science and technology. With a rapid review and publication process, its goal is to disseminate new knowledge promptly within the composites community. The journal welcomes manuscripts presenting creative concepts and new findings in design, state-of-the-art approaches in processing, synthesis, characterization, and mechanics modeling. In addition to traditional fiber-/particulate-reinforced engineering composites, it encourages submissions on composites with exceptional physical, mechanical, and fracture properties, as well as those with unique functions and significant application potential. This includes biomimetic and bio-inspired composites for biomedical applications, functional nano-composites for thermal management and energy applications, and composites designed for extreme service environments.
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