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Shock resistance capability of multi-principal elemental alloys as a function of lattice distortion and grain size

机译:多主元素合金的抗冲击能力随晶格畸变和晶粒尺寸的变化

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摘要

This article aims to study the shock resistance capability of multi-element alloys. In this study, we utilized nonequilibrium molecular dynamics-based simulations with an embedded atom method potential to predict the deformation governing mechanism in a multi-elemental alloy system subjected to shock loading. The evolution of shock front width, longitudinal stress, shear stress, and dislocation density were investigated for different polycrystalline multi-element systems containing different mean grain sizes of 5, 10, and 18 nm, respectively. In order to quantify the effect of lattice distortion, average atom (A-atom) potential for quinary (high entropy) and ternary (medium entropy) configurations was also developed in this work. The random composition of multi-element alloys was replaced with single atom-based A-atom arrangements to study the effect of lattice distortion on shock resistance capabilities of high entropy alloy and medium entropy alloy. It was predicted from simulations that a higher value of lattice distortion component in the CoCrCuFeNi alloy leads to provide superior resistance against shock wave propagation as compared to the ternary alloy CrFeNi. In nanocrystalline configurations, dislocations, and stacking faults, only dislocations governed the deformation mechanics in monocrystalline configurations. The simulations indicate that grain size significantly affects the rates of generation of secondary/partial dislocations, hence affecting the stresses and the deformation mechanism of the structures.
机译:本文旨在研究多元素合金的抗冲击能力。在这项研究中,我们利用基于非平衡分子动力学的模拟和嵌入原子法势来预测多元素合金体系在冲击载荷作用下的变形控制机制。研究了不同平均晶粒尺寸(5、10和18 nm)的不同多晶多晶体系的冲击前沿宽度、纵向应力、剪切应力和位错密度的演变。为了量化晶格畸变的影响,本文还开发了五元(高熵)和三元(中熵)构型的平均原子(A原子)势。将多元素合金的随机组成替换为单原子A原子排列,研究了晶格畸变对高熵合金和中熵合金抗冲击能力的影响。仿真结果表明,与三元合金CrFeNi相比,CoCrCuFeNi合金中较高的晶格畸变分量值可提供优异的抗冲击波传播能力。在纳米晶构型、位错和堆叠断层中,只有位错控制着单晶构型中的变形力学。模拟结果表明,晶粒尺寸显著影响二次/局部位错的产生速率,从而影响结构的应力和变形机理。

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