Understanding the Atomic-Scale Deformation in CoNiCrFeMn Nanocrystalline High Entropy Alloy with Gradient Structure

R. Mohammadzadeh
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Abstract

Gradient high entropy alloys have attained great attention due to their exceptional mechanical properties. Here, molecular dynamic simulations are reported to introduce CoNiCrFeMn high entropy alloy with gradient structure and understand the relation between structural gradient and mechanical performance. The effect of gradient structure on the mechanical properties was studied by characterizing the structural evolution and dislocation substructures during tension loading. The gradient distributions of deformation faults and dislocations from the surface to the center of samples were explored in detail. Quantitative analysis shows that simultaneous improvement of ductility and strength is afford by high densities of dislocations in the grain interior. Moreover, the results revealed that the energy barrier for nucleation of deformation faults in the deformed layer of gradient high entropy alloy is higher than in uniform sample. The high strength and work hardening of gradient high entropy alloy attributed to the geometrically necessary dislocations distributed in grain interiors and having a form of bundles of concentrated dislocations. Based on the simulation results, the synergy between high strength and high ductility in high entropy alloys can be achieved through the gradient structure. The present study gives a method to better understanding the deformation mechanisms and mechanical properties of high entropy alloys with gradient structure.
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梯度结构CoNiCrFeMn纳米高熵合金原子尺度形变的研究
梯度高熵合金因其优异的力学性能而受到广泛关注。本文通过分子动力学模拟,引入具有梯度结构的CoNiCrFeMn高熵合金,了解结构梯度与力学性能的关系。通过对拉伸加载过程中组织演化和位错亚结构的表征,研究了梯度结构对材料力学性能的影响。详细探讨了变形断层和位错从试样表面到中心的梯度分布。定量分析表明,晶粒内部的高密度位错可以同时提高塑性和强度。结果表明,梯度高熵合金变形层中变形断层成核的能垒高于均匀试样。梯度高熵合金的高强度和加工硬化是由于几何上必需的位错分布在晶粒内部,并以集中的位错束的形式存在。仿真结果表明,高熵合金的高强度和高塑性可以通过梯度结构实现协同作用。本研究为更好地理解梯度结构高熵合金的变形机理和力学性能提供了一种方法。
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