A. Ostovari Moghaddam, R. Fereidonnejad, D. V. Mikhailov, M. Naseri, E. A. Trofimov
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引用次数: 0
摘要
摘要利用分子动力学模拟研究了 Al3(TiTaZrNbHf)高熵金属间化合物在拉伸载荷作用下的变形机制。为此,首先通过模拟近平衡熔化/结晶过程确定了构成 Al3(TiTaZrNbHf)高熵亚晶格的五个组成原子的位点占有率。结果表明,在早期塑性变形过程中,由于位错成核和滑行,形成了本征堆积断层核,进一步促进了孪晶边界的形成和生长。孪晶和 1/6<112> 肖克利部分位错是室温和高温下 Al3(TiTaZrNbHf)塑性变形的关键成分,这与 D022 结构材料的实验观察结果十分吻合。Al3(TiTaZrNbHf) 的拉伸强度在 300 K 时为 4.6 GPa,在 1000 K 时略微下降至 4.34 GPa,突出了高熵金属间化合物在高温下保持其机械性能的独特特性。推导结果为理解高熵金属间化合物变形机制的原子尺度起源提供了依据。这些结果还显示了调整金属间化合物化学成分以克服低延展性问题的潜力,为金属间化合物的工业应用铺平了道路。
Mechanical Properties of the Al3(TiTaZrNbHf) High Entropy Intermetallic Compound: A Molecular Dynamic Study
Deformation mechanisms of the Al3(TiTaZrNbHf) high entropy intermetallic compound under tensile loading were studied using molecular dynamic simulations. To this end, the site occupancy of the five constituent atoms that form the high entropy sublattice of Al3(TiTaZrNbHf) was first determined by simulating the near-equilibrium melting/crystallization process. It is shown that nuclei of intrinsic stacking faults are formed under early plastic deformation due to dislocation nucleation and glide, which further contribute to the formation and growth of twin boundaries. Twinning and 1/6<112> Shockley partial dislocations are key components in the plastic deformation of Al3(TiTaZrNbHf) at room and elevated temperatures, which is in good agreement with the experimental observations for D022-structured materials. The tensile strength of Al3(TiTaZrNbHf) is 4.6 GPa at 300 K and slightly decreases to 4.34 GPa at 1000 K, highlighting the unique properties of high entropy intermetallic compounds in retaining their mechanical properties at elevated temperatures. The derived results provide grounds for understanding the atomic-scale origin of deformation mechanisms in high entropy intermetallic compounds. They also show potentials for tailoring the chemical composition of intermetallic compounds to overcome the problem of low ductility, paving the way to their industrial applications.
期刊介绍:
The journal provides an international medium for the publication of theoretical and experimental studies and reviews related in the physical mesomechanics and also solid-state physics, mechanics, materials science, geodynamics, non-destructive testing and in a large number of other fields where the physical mesomechanics may be used extensively. Papers dealing with the processing, characterization, structure and physical properties and computational aspects of the mesomechanics of heterogeneous media, fracture mesomechanics, physical mesomechanics of materials, mesomechanics applications for geodynamics and tectonics, mesomechanics of smart materials and materials for electronics, non-destructive testing are viewed as suitable for publication.