Deformation mechanism in Al0.1CoCrFeNi Σ3(111)[11̄0] high entropy alloys – molecular dynamics simulations

材料科学 极限抗拉强度 变形(气象学) 变形机理 应变率 晶界 高熵合金 星团(航天器) 复合材料 分子动力学 抗压强度 微观结构 计算化学 化学 计算机科学 程序设计语言
作者
Cuixia Liu,Yu-Chia Yang,Zhaoqiang Xia
出处
期刊:RSC Advances [The Royal Society of Chemistry]
卷期号:10 (46): 27688-27696 被引量:16
标识
DOI:10.1039/d0ra01885f
摘要

High entropy alloys (HEAs), composed of multiple components with equal or near atomic proportions, have extraordinary mechanical properties and are expected to bear the impact of high-speed forces in armor protection structure materials. In order to understand the deformation behaviour of HEAs under tensile and compressive loading, molecular dynamics simulations were performed to reveal the deformation mechanism and mechanical properties of three crystal structures: Al0.1CoCrFeNi HEAs without grain boundaries (perfect HEAs), Al0.1CoCrFeNi HEAs with grain boundaries of Σ3(111)[11̄0] (GBs HEAs) and grain boundaries of Σ3(111)[11̄0] with chemical cluster HEAs (cluster-GBs HEAs). The mechanical properties of the three models at the same strain rate were discussed. Then, the mechanical properties at different strain rates were analyzed. The movement and direction of internal dislocations during the deformation process were investigated. The simulation results show that the GBs HEAs and the cluster-GBs both play an important role in the deformation and failure of the HEAs. Under tensile loading, three behaviour stages of deformation were observed. Cluster-GBs HEAs have a larger yield strength and Young's modulus than that of GBs and perfect HEAs. The higher the strain rate is, the greater the stress reduction rate. Under compressive loading, there are only two behaviour stages of deformation. Cluster-GBs HEAs also have the largest yield strength. Under tensile and compressive deformation, Shockley partial dislocations of 1/6 <112> are dominant and their moving direction and effect on mechanical properties are discussed.
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