In-situ synchrotron diffraction study on compressive deformation behavior of Mg92Y5Ni3 alloy mostly composed of LPSO

被引:0
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作者
Wu, S.Z. [1 ]
Chi, Y.Q. [2 ]
Xie, W.C. [3 ]
Garces, G. [4 ]
Zhou, X.H. [5 ]
Brokmeier, H.G. [5 ,6 ]
Qin, S.H. [1 ]
Qiao, X.G. [1 ]
Zheng, M.Y. [1 ]
机构
[1] School of Materials Science and Engineering, Harbin Institute of Technology, Harbin,150001, China
[2] School of Electromechanical Engineering, Guangdong University of Technology, Guangzhou,510006, China
[3] Commercial Vehicle Research Institute, China FAW Group Corporation, Changchun,130011, China
[4] Department of Physical Metallurgy, CENIM-CSIC, Avenida Gregorio del Amo 8, Madrid,28040, Spain
[5] Institute of Materials Science and Engineering, Clausthal University of Technology, Agricolastrasse 6, Clausthal-Zellerfeld,D-38678, Germany
[6] Helmholtz Zentrum Hereon, Max Planck Straße 1, Geesthacht,D-21502, Germany
基金
中国国家自然科学基金;
关键词
Compressive strength - Deformation - Extrusion - Magnesium alloys - Nickel alloys - Strain hardening - Strain rate - Synchrotrons - Ternary alloys - Textures;
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摘要
The compressive deformation behavior of the as-cast and as-extruded Mg92Y5Ni3 (at.%) alloy mostly composed of long period stacking ordered (LPSO) phase was studied by in-situ synchrotron radiation combined with the analysis of deformation traces after compression at different applied stress. The as-cast alloy has random texture, while the as-extruded alloy has a typical basal texture with basal plane parallel to extrusion (compression) direction. Prior to macro-yielding, some softly oriented grains are preferentially plastically deformed, leading to micro-yielding. The micro-yielding behavior of both as-cast and as-extruded alloys is controlled by basal slip, the as-extruded alloy has higher micro-yielding strength than the as-cast alloy. The activated deformation mode near the macro-yielding point is prismatic slip in both as-cast and as-extruded alloys, and as the hard oriented grains dominate in the as-extruded alloy, the compressive yield strength of the alloy is increased from 217 MPa to 535 MPa after extrusion. The kinking activated following the prismatic slip can introduce a large number of dislocations in the as-extruded alloy, resulting in high strain-hardening rate of 3000 MPa, high ultimate compressive strength of ∼800 MPa and plastic strains above 10%. © 2022 Elsevier B.V.
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