Computational Materials Science2022,Vol.21017.DOI:10.1016/j.commatsci.2022.111439

Modeling of the tension-compression asymmetry reduction of ECAPed Mg-3Al-1Zn through grain fragmentation

Kobaissy, Ali Al-Hadi I. Ayoub, Georges Shehadeh, Mutasem
Computational Materials Science2022,Vol.21017.DOI:10.1016/j.commatsci.2022.111439

Modeling of the tension-compression asymmetry reduction of ECAPed Mg-3Al-1Zn through grain fragmentation

Kobaissy, Ali Al-Hadi I. 1Ayoub, Georges 2Shehadeh, Mutasem1
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作者信息

  • 1. Amer Univ Beirut
  • 2. Univ Michigan Dearborn
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Abstract

In this work, a physically based model accounting for grain-to-grain interaction and grain refinement mechanisms is proposed to predict the anisotropic mechanical response and the texture evolution in ECAPed Mg-3Al1Zn. The proposed model couples two approaches: crystal plasticity (CP), including twinning, and continuum dislocation dynamics (CDD). A grain refinement mechanism is also integrated into the model in order to predict the formation of refined grains during severe plastic deformation. A robust parameter identification method is proposed, in which experimentally reported process parameters are calibrated to fit the simulated mechanical behavior, texture evolution, and deformation systems-related activities. The anisotropic behavior evolution of the Mg-3Al-1Zn hot-rolled plate is examined by predicting the mechanical behavior, dislocation evolution, and slip/twin systems activities of the ECAPed material. The coupled CP-CDD model predicts grain size reduction with an average grain size which is in agreement with the experimentally measured values. Furthermore, the model generated textures are in accordance with those reported in the literature. Finally, a good agreement between the experimental and predicted true tensile stress-strain curves up to the ultimate tensile strength for both routes 4A and 4 K along extrusion and flow directions was found.

Key words

Grain fragmentation/Anisotropy/Severe plastic deformation/Twinning/Continuum dislocation dynamics (CDD)/CHANNEL ANGULAR EXTRUSION/MG ALLOY AZ31/CRYSTAL PLASTICITY MODEL/CAST MAGNESIUM ALLOY/DEFORMATION MECHANISMS/TEXTURE DEVELOPMENT/STRAIN-RATE/DYNAMIC RECRYSTALLIZATION/MICROSTRUCTURAL EVOLUTION/CRYSTALLOGRAPHIC TEXTURE

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出版年

2022
Computational Materials Science

Computational Materials Science

EISCI
ISSN:0927-0256
被引量2
参考文献量109
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