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Cite this article as: Zhu Pu-Jie,Yang Long-Long,Zhang Liang,Sun Kun. Molecular dynamics study on the effect of voids on the tensile properties of FeCrNiCoCu high-entropy alloy [J]. J. At. Mol. Phys.(原子与分子物理学报), 2024, 41: 066007 (in Chinese)
Molecular dynamics study on the effect of voids on the tensile properties of FeCrNiCoCu high-entropy alloy
Hits 153  Download times 24  Received:February 20, 2023  Revised:March 07, 2023
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DOI   10.19855/j.1000-0364.2024.066007
Key Words   FeCrNiCoCu, molecular dynamic simulation, void, mechanical properties, dislacation
Author NameAffiliationE-mail
Zhu Pu-Jie State Key Laboratory for Mechanical Behavior of Materials, Xian Jiaotong University 1194400432@qq.com 
Yang Long-Long 西安交通大学金属材料强度国家重点实验室  
Zhang Liang 西安交通大学金属材料强度国家重点实验室  
Sun Kun* State Key Laboratory for Mechanical Behavior of Materials, Xian Jiaotong University sunkun@mail.xjtu.edu.cn 
Abstract
    Void is a common defect in the preparation of FeCrNiCoCu high-entropy alloy. Thus, this paper employs molecular dynamic simulation to build FeCrNiCoCu models with void for uniaxial tension simulation, and explores the effect of the voids location, void radii and deformation temperature on the mechanical properties. It is found that the void in the crystal with the Z-axis orientation of [111] and at the grain-boundary (GB) will seriously reduce the yield strain and yield stress, but have little effect on the Young’s modulus of the model. With the increase of the void radius at the grain boundary, in the elastic stage, the increase of the void radius increases the area of stress concentration, which is conducive to dislocation nucleation, and the mechanical properties of the model decrease accordingly. In the plastic deformation stage, with the increase of the void radius, the initial dislocations tend to expand to the crystal with the Z axis orientation of [001]. The model maintains good mechanical properties at medium and low temperatures; at high temperature, the mechanical properties decreased significantly. In the high temperature plastic deformation stage, the total length of dislocation in the model is low, and the average flow stress is also low.

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