Compression Behavior of Al-Mg Phases, Molecular Dynamics Simulation

被引:7
|
作者
Hanae, Chabba [1 ]
Driss, Dafir [2 ]
机构
[1] Fac Sci & Tech Fez, POB 2202,Imouzzer Rd, Fes, Morocco
[2] Super Sch Technol Fez, POB 2427,Imouzzer Rd, Fes, Morocco
关键词
Compression; Stress Strain curve; Molecular dynamics simulation; Embedded Atom Method potential; aluminum alloy 5000; deformation; Microstructural evolution; Deformation mechanisms; EMBEDDED-ATOM-METHOD; INTERATOMIC POTENTIALS; COMPUTER EXPERIMENTS; MECHANICAL-BEHAVIOR; CRYSTAL-STRUCTURE; CLASSICAL FLUIDS; NANOCRYSTALLINE; ALUMINUM; METALS; ALLOY;
D O I
10.4028/www.scientific.net/JERA.46.15
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Aluminum alloys development always exit in the manufacturing process. Al/Mg alloys have been attracted significant attention because of their excellent mechanical properties. The microstructural evolution and deformation mechanisms are still challenging issues, and it is hard to observe directly by experimental methods. Accordingly, in this paper atomic simulations are performed to investigate the uniaxial compressive behavior of Al/Mg phases; with different ratio of Mg ranging from 31% to 56%. The compression is at the same strain rate (3.10(10) s.(1)), at the same temperature (300K) and pressure, using embedded atom method (EAM) potential to model the interactions and the deformation behavior between Al and Mg. From these simulations, we get the radial distribution function; the stress-strain responses to describe the elastic and plastic behaviors of beta-Al3Mg2, epsilon-Al30Mg23, Al1Mg1 and gamma-Al12Mg17 phases with 31, 41, 50 and 56% of Mg added to pure aluminum, respectively. The mechanical properties, such as Young's modulus, elasticity limit and rupture pressure, are determined and presented. The engineering equation was used to plot the stress-strain curve for each phase. From the results obtained, the chemical composition has a significant effect on the properties of these phases. The stress-strain behavior comprised elastic, yield, strain softening and strain hardening regions that were qualitatively in agreement with previous simulations and experimental results. These stress-strain diagrams obtained show a rapid increase in stress up to a maximum followed by a gradual drop when the specimen fails by ductile fracture. Under compression, the deformation behavior of beta-Al3Mg2 and gamma-Al12Mg17 phases is slightly similar. From the results, it was found that epsilon-Al30Mg23 phase are brittle under uniaxial compressive loading and gamma-Al12Mg17 phase is very ductile under the same compressive loading. The engineering stress-strain relationship suggests that beta-Al3Mg2 and gamma-Al12Mg17 phases have high elasticity limit, ability to resist deformation and also have the advantage of being highly malleable. From this simulation, we also find that the mechanical properties under compressive load of epsilon-Al30Mg23 phase are evidently less than other phases, which makes it the weakest phase. The obtained results were compared with the previous experimental studies, and generally, there is a good correlation. The Al- Mg system was built and simulated using molecular dynamics (MD) software LAMMPS (Large-scale Atomic/Molecular Massively Parallel Simulator).
引用
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页码:15 / 31
页数:17
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