Modeling the yield strength of nanocrystalline metals

IF 9.4 1区 材料科学 Q1 ENGINEERING, MECHANICAL International Journal of Plasticity Pub Date : 2024-06-16 DOI:10.1016/j.ijplas.2024.104039
Yanli Ma , Yi He , Jiabin Yang , Pan Dong , Ziyuan Li , Jianzuo Ma , Liming Chen , Weiguo Li
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Abstract

The yield strength of nanocrystalline metals is an emphasis for designing and fabricating more reliable and cost-effective devices for application in aircraft and renewable energy systems. Grain size is a major influence factor affecting the variation of yield strength. Both Hall-Petch strengthening and inverse Hall-Petch softening, which focus on the variation of grain size, have always been the main areas of interest. Determining the critical grain size between Hall-Petch strengthening and inverse Hall-Petch softening is a challenge. In this study, a yield criterion for nanocrystalline metals is proposed by considering the dominant mechanism of plasticity yielding, which encompasses both Hall-Petch strengthening and inverse Hall-Petch softening. Subsequently, a new theoretical model for the grain size effect on yield strength is established based on the proposed criterion, which considers the grain size effect on Young's modulus, grain interior energy, and grain boundary energy. Further, taking the grain boundary migration into account to modify the established inverse Hall-Petch model. The established model accurately captures the quantitative relationships between elastic deformation energy and the dominant yielding mechanism, leading to the precise determination of the yield strength of three exemplary metals (bcc, fcc, hcp) across a wide range of grain sizes. In addition, the critical grain size between Hall-Petch strengthening and inverse Hall-Petch softening can be effectively predicted by the established model. By incorporating more detailed considerations and introducing a reference point to effectively capture experimental errors, this work achieves higher prediction accuracy compared to other existing theoretical models. In light of the established model, the analysis of influencing factors is conducted, indicating that the effect of grain boundary migration energy is greater than that of grain boundary energy. This work contributes to a deeper understanding of the plastic deformation mechanism of nanocrystalline metals and provides a new avenue and theoretical guidance for designing more high-strength systems.

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纳米晶金属屈服强度建模
纳米晶金属的屈服强度是设计和制造应用于飞机和可再生能源系统的更可靠、更具成本效益的设备的重点。晶粒尺寸是影响屈服强度变化的主要影响因素。霍尔-佩奇强化和反霍尔-佩奇软化都关注晶粒尺寸的变化,一直是人们关注的主要领域。确定霍尔-佩奇强化和反霍尔-佩奇软化之间的临界晶粒大小是一项挑战。在本研究中,通过考虑塑性屈服的主导机制,提出了纳米晶金属的屈服准则,其中包括霍尔-佩奇强化和反霍尔-佩奇软化。随后,基于所提出的标准,建立了晶粒尺寸对屈服强度影响的新理论模型,该模型考虑了晶粒尺寸对杨氏模量、晶粒内部能量和晶界能量的影响。此外,考虑到晶界迁移,对已建立的反霍尔-佩奇模型进行了修正。所建立的模型准确地捕捉到了弹性变形能与主要屈服机制之间的定量关系,从而精确地确定了三种示例金属(bcc、fcc、hcp)在各种晶粒尺寸范围内的屈服强度。此外,已建立的模型还能有效预测霍尔-佩奇强化和反霍尔-佩奇软化之间的临界晶粒尺寸。通过纳入更详细的考虑因素并引入参考点以有效捕捉实验误差,与其他现有理论模型相比,这项工作实现了更高的预测精度。根据建立的模型,对影响因素进行了分析,结果表明晶界迁移能的影响大于晶界能的影响。这项工作有助于加深对纳米晶金属塑性变形机理的理解,为设计更多高强度体系提供了新的途径和理论指导。
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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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