A Molecular Dynamics Simulation to Shed Light on the Mechanical Alloying of an Al-Zr Alloy Induced by Severe Plastic Deformation

Author:

Morkina Alina Y.12ORCID,Babicheva Rita I.3ORCID,Korznikova Elena A.4ORCID,Enikeev Nariman A.15ORCID,Edalati Kaveh67ORCID,Dmitriev Sergey V.28ORCID

Affiliation:

1. Laboratory for Metals and Alloys under Extreme Impacts, Ufa University of Science and Technology, 450076 Ufa, Russia

2. Institute for Metals Superplasticity Problems of Russian Academy of Sciences, 450001 Ufa, Russia

3. School of Mechanical and Aerospace Engineering, Nanyang Technological University, Singapore 639798, Singapore

4. Technological Machines and Equipment Department, Ufa State Petroleum Technological University, 450064 Ufa, Russia

5. Laboratory for Dynamics and Extreme Characteristics of Promising Nanostructured Materials, Saint Petersburg University, 198504 Saint Petersburg, Russia

6. WPI, International Institute for Carbon-Neutral Energy Research (WPI-I2CNER), Kyushu University, Fukuoka 819-0395, Japan

7. Mitsui Chemicals, Inc.—Carbon Neutral Research Center (MCI-CNRC), Kyushu University, Fukuoka 819-0395, Japan

8. Institute of Molecule and Crystal Physics, Ufa Federal Research Center of Russian Academy of Sciences, 450075 Ufa, Russia

Abstract

In a recent experimental work, as a result of severe plastic deformation, a non-equilibrium solid solution was obtained despite the very limited solubility of zirconium (Zr) in aluminum (Al). This opens up a new path in the development of heat-treatable alloys with improved electrical and mechanical properties, where mechanically dissolved elements can form intermetallic particles that contribute to precipitation strengthening. In the present study, molecular dynamics simulations were performed to better understand the process of mechanical dissolution of Zr within an Al model, with Zr atoms segregated along its grain boundaries. Stress–strain curves, radial distribution functions, and mechanisms of plastic deformation and dissolution of Zr in Al were analyzed. It is revealed that orientation of the grain boundary with segregation normal to the shear direction promotes more efficient mixing of alloy components compared to its parallel arrangement. This happens because in the second case, grain boundary sliding is the main deformation mechanism, and Zr tends to remain within the interfaces. In contrast, the involvement of dislocations in the case of normal orientation of grain boundaries with Zr segregation significantly contributes to deformation and facilitates better dissolution of Zr in the Al matrix. The findings obtained can provide new insights considering the role of texture during mechanical alloying of strongly dissimilar metals.

Publisher

MDPI AG

Subject

General Materials Science,Metals and Alloys

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