Deformation behavior of metallic glass composites reinforced with shape memory nanowires studied via molecular dynamics simulations

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Date
2015
Volume
106
Issue
21
Journal
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Publisher
Melville, NY : American Inst. of Physics
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Abstract

Molecular dynamics simulations indicate that the deformation behavior and mechanism of Cu64Zr36 composite structures reinforced with B2 CuZr nanowires are strongly influenced by the martensitic phase transformation and distribution of these crystalline precipitates. When nanowires are distributed in the glassy matrix along the deformation direction, a two-steps stress-induced martensitic phase transformation is observed. Since the martensitic transformation is driven by the elastic energy release, the strain localization behavior in the glassy matrix is strongly affected. Therefore, the composite materials reinforced with a crystalline phase, which shows stress-induced martensitic transformation, represent a route for controlling the properties of glassy materials. The authors acknowledge the financial support of the European Research Council under the ERC Advanced Grant INTELHYB (Grant No. ERC-2013-ADG-340025) and the German Science Foundation (DFG) under the Leibniz Program (Grant No. EC 111/26-1). A DAAD-PPP travel grant is also acknowledged. Computing time was made available at ZIH TU Dresden and IFW Dresden as well as by CSC Julich. The authors acknowledge Dr. Simon Pauly and Sergio Scudino for fruitful discussions.

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Keywords
Composite materials, Crystalline materials, Deformation, Glass, Linear transformations
Citation
Şopu, D., Stoica, M., & Eckert, J. (2015). Deformation behavior of metallic glass composites reinforced with shape memory nanowires studied via molecular dynamics simulations. 106(21). https://doi.org//10.1063/1.4921857
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CC BY 3.0 Unported