揭示冲击载荷下纳米晶高熵合金的霍尔萃取到反霍尔萃取转变

IF 9.4 1区 材料科学 Q1 ENGINEERING, MECHANICAL International Journal of Plasticity Pub Date : 2024-05-19 DOI:10.1016/j.ijplas.2024.104010
Wanghui Li , Meizhen Xiang , Zachary Howard Aitken , Shuai Chen , Yilun Xu , Xinyu Yang , Qingxiang Pei , Jian Wang , Xiaoyan Li , Guglielmo Vastola , Huajian Gao , Yong-Wei Zhang
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引用次数: 0

摘要

从霍尔-佩奇(HP)到与晶粒尺寸减小相关的反霍尔-佩奇(IHP)行为的转变已被公认二十多年。然而,高熵合金(HEAs)在动态加载条件下的这种转变的内在机制仍不清楚,因为在动态加载条件下,丰富的变形机制可能会先后或同时被激活。在此,我们利用大规模分子动力学(MD)模拟研究了纳米晶 CoCrFeMnNi 高熵合金在冲击载荷下的变形机制和流动应力,从而研究了高熵合金从 HP 到 IHP 的转变。研究发现,由于多种相互竞争的变形机制之间复杂的相互作用,包括位错相互作用和晶界(GB)阻塞等硬化机制,以及相形成、非晶化、GB 增厚和晶粒旋转等软化机制,这种转变在很大程度上取决于冲击压力。此外,存在一个临界冲击压力,它对应于 HP-IHP 转变的最大临界晶粒尺寸。在临界冲击压力以下,由于晶粒内部(GIs)有较强的硬化效应,临界晶粒尺寸随压力增大而增大;而在临界压力以上,由于晶粒内部(GIs)的软化效应,临界晶粒尺寸先减小,然后经历一个对压力不敏感的高原,最后进一步减小。我们首次提出了一个包含不同变形机制的理论模型,以捕捉与冲击压力相关的 HP-IHP 转变。我们的工作为优化纳米晶 HEA 的晶粒大小以适应涉及动态负载的应用提供了宝贵的指导。
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Unraveling the Hall-Petch to inverse Hall-Petch transition in nanocrystalline high entropy alloys under shock loading

The transition from Hall-Petch (HP) to inverse Hall-Petch (IHP) behaviors associated with grain size reduction has been recognized for over two decades. However, the underlying mechanisms for such transition in high entropy alloys (HEAs) under dynamic loading, in which abundant deformation mechanisms could be activated either sequentially or simultaneously, remain unclear. Here, we investigate the HP to IHP transition in nanocrystalline CoCrFeMnNi HEAs under shock loading by examining their deformation mechanisms and flow stresses using large-scale molecular dynamics (MD) simulations. It is found that this transition is strongly dependent on the shock pressure as a result of the complex interplay among multiple competing deformation mechanisms, including the hardening mechanisms such as dislocations interactions and grain boundary (GB) blocking, as well as the softening mechanisms like phase formation, amorphization, GB thickening, and grain rotation. Moreover, there exists a critical shock pressure, which corresponds to the largest critical grain size for the HP-IHP transition. Below the critical shock pressure, the critical grain size increases with pressure due to a stronger hardening effect in grain interior (GIs), while above the critical pressure, the critical grain size first decreases and then undergoes a pressure-insensitive plateau before further decrease due to softening effects in GIs. A theoretical model that includes different deformation mechanisms is proposed for the first time to capture the shock pressure-dependent HP-IHP transition. Our work provides valuable guidance for optimizing the grain size of nanocrystalline HEAs for applications involving dynamic loadings.

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来源期刊
International Journal of Plasticity
International Journal of Plasticity 工程技术-材料科学:综合
CiteScore
15.30
自引率
26.50%
发文量
256
审稿时长
46 days
期刊介绍: International Journal of Plasticity aims to present original research encompassing all facets of plastic deformation, damage, and fracture behavior in both isotropic and anisotropic solids. This includes exploring the thermodynamics of plasticity and fracture, continuum theory, and macroscopic as well as microscopic phenomena. Topics of interest span the plastic behavior of single crystals and polycrystalline metals, ceramics, rocks, soils, composites, nanocrystalline and microelectronics materials, shape memory alloys, ferroelectric ceramics, thin films, and polymers. Additionally, the journal covers plasticity aspects of failure and fracture mechanics. Contributions involving significant experimental, numerical, or theoretical advancements that enhance the understanding of the plastic behavior of solids are particularly valued. Papers addressing the modeling of finite nonlinear elastic deformation, bearing similarities to the modeling of plastic deformation, are also welcomed.
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