Molecular Dynamics Simulations on the Mechanical Behavior of AlCoCrCu0.5FeNi High-Entropy Alloy Nanopillars

Author(s):  
Wei Li ◽  
Jing Tang ◽  
Qingyuan Wang ◽  
Haidong Fan
2022 ◽  
Vol 142 ◽  
pp. 107444
Author(s):  
Zhi Hui Sun ◽  
Jie Zhang ◽  
Gao Xin Xin ◽  
Lu Xie ◽  
Li Chun Yang ◽  
...  

RSC Advances ◽  
2020 ◽  
Vol 10 (24) ◽  
pp. 14353-14359
Author(s):  
Yudi Rosandi ◽  
Hoang-Thien Luu ◽  
Herbert M. Urbassek ◽  
Nina Gunkelmann

Alumina coatings increase the ductility of aluminum nanowires by reorganization of the Al–O layer and stabilization of bonds.


2012 ◽  
Vol 730-732 ◽  
pp. 543-548
Author(s):  
Alexandre Correia ◽  
S. Mohsen Valashani ◽  
Francisco Pires ◽  
Ricardo Simões

Molecular dynamics simulations were employed to analyze the mechanical properties of polymer-based nanocomposites with varying nanofiber network parameters. The study was focused on nanofiber aspect ratio, concentration and initial orientation. The reinforcing phase affects the behavior of the polymeric nanocomposite. Simulations have shown that the fiber concentration has a significant effect on the properties, with higher loadings resulting in higher stress levels and higher stiffness, matching the general behavior from experimental knowledge in this field. The results also indicate that, within the studied range, the observed effect of the aspect ratio and initial orientation is smaller than that of the concentration, and that these two parameters are interrelated.


2022 ◽  
Vol 8 ◽  
Author(s):  
Sen Hu ◽  
Tao Fu ◽  
Qihao Liang ◽  
Shayuan Weng ◽  
Xiang Chen ◽  
...  

Stacking fault tetrahedron (SFT) is a kind of detrimental three-dimensional defect in conventional face-centered cubic (FCC) structural metals; however, its formation and anisotropic mechanical behavior in a CoCrFeNiMn high-entropy alloy (HEA) remain unclear. In this work, we first performed molecular dynamics simulations to verify the applicability of the Silcox-Hirsch mechanism in the CoCrFeNiMn HEA. The mechanical responses of the SFT to shear stress in different directions and that of the pure Ni counterpart were simulated, and the evolutions of the atomic structures of the SFTs during shear were analyzed in detail. Our results revealed that the evolution of the SFT has different patterns, including the annihilation of stacking faults, the formation and expansion of new stacking faults, and insignificant changes in stacking faults. It was found that the effects of SFT on the elastic properties of Ni and HEA are negligible. However, the introduction of SFT would reduce the critical stress, while the critical stress of the CoCrFeNiMn HEA is much less sensitive to SFT than that of Ni.


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