Texture evolution and tension–compression yield symmetry of AZ31 magnesium alloy during cyclic extrusion and compression: Experiments and polycrystal plasticity simulations

Cyclic extrusion and compression (CEC) was selected as a representative variable-strain-path process for mitigating tension–compression yield asymmetry in extruded AZ31 magnesium alloy. A machine-learning-assisted VPSC-dDRX(CA) framework was developed to characterize the associated microstructural and texture evolution. Velocity-gradient histories for representative conditions were obtained using finite-element modeling (FEM), while a gradient-boosting tree model reconstructed histories for intermediate conditions not explicitly simulated by FEM. These inputs enabled predictions of deformation-mechanism activity, dynamic recrystallization (DRX), grain-size evolution, and texture development. A modified Hall–Petch relation then calculated tensile yield strength (TYS), compressive yield strength (CYS), and TYS/CYS. Under representative validation conditions, the maximum deviation between the predicted and experimental grain sizes was within 0.5 μm. Low extrusion ratios and limited cycles produced incomplete DRX, forming a deformation-grain-dominated structure (DGS) with mixed texture (MT). Intermediate ratios and appropriate cycles balanced DRX nucleation and grain-boundary migration, producing a fine recrystallized structure (FDRXS) with an average grain size of 5.7–5.8 μm. Basal 〈a〉 slip retained part of the fiber texture component during extrusion, whereas enhanced pyramidal 〈c+a〉 slip and {10-12} tensile twinning rotated the c-axes away from the extrusion direction during compression, promoting deviated annular texture (DAT). Higher ratios or additional cycles accelerated grain-boundary migration and the growth of recrystallized grains, resulting in an enlarged dynamically recrystallized structure (EDRXS) and reconcentration of annular components toward a compression-type texture (CT). The framework thus resolved the sequential DGS–MT, FDRXS–DAT, and EDRXS–CT transitions across the processing window and quantitatively connected them to the resulting yield response. Consequently, DGS–MT retained a tensile-yield advantage, with TYS of 142 ± 2 MPa; FDRXS–DAT combined grain-refinement strengthening and crystallographic coordination, yielding TYS/CYS of 1.00 ± 0.05; and EDRXS–CT exhibited predicted CYS of 153 ± 7 MPa. This multiscale strategy provides a mechanistic basis for coordinating microstructure, texture, and mechanical response under complex deformation paths.

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Publication Details

Journal
Journal of Magnesium and Alloys
Published
2026-10-06
DOI
https://doi.org/10.1016/j.jma.2026.102342
Primary Topic
Magnesium Alloys: Properties and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Texture evolution and tension–compression yield symmetry of AZ31 magnesium alloy during cyclic extrusion and compression: Experiments and polycrystal plasticity simulations

Liangliang Xue, 陈文振, Bohao Wan, Baolin Chen et al.
Journal of Magnesium and Alloys
Magnesium Alloys: Properties and Applications
article

Texture evolution and tension–compression yield symmetry of AZ31 magnesium alloy during cyclic extrusion and compression: Experiments and polycrystal plasticity simulations

Liangliang Xue, 陈文振, Bohao Wan, Baolin Chen, He Qin, Peike Yang, Ming Liang, Wenjie Wu, Myoung-Gyu Lee, Yanhui Liu
article en

Abstract

Cyclic extrusion and compression (CEC) was selected as a representative variable-strain-path process for mitigating tension–compression yield asymmetry in extruded AZ31 magnesium alloy. A machine-learning-assisted VPSC-dDRX(CA) framework was developed to characterize the associated microstructural and texture evolution. Velocity-gradient histories for representative conditions were obtained using finite-element modeling (FEM), while a gradient-boosting tree model reconstructed histories for intermediate conditions not explicitly simulated by FEM. These inputs enabled predictions of deformation-mechanism activity, dynamic recrystallization (DRX), grain-size evolution, and texture development. A modified Hall–Petch relation then calculated tensile yield strength (TYS), compressive yield strength (CYS), and TYS/CYS. Under representative validation conditions, the maximum deviation between the predicted and experimental grain sizes was within 0.5 μm. Low extrusion ratios and limited cycles produced incomplete DRX, forming a deformation-grain-dominated structure (DGS) with mixed texture (MT). Intermediate ratios and appropriate cycles balanced DRX nucleation and grain-boundary migration, producing a fine recrystallized structure (FDRXS) with an average grain size of 5.7–5.8 μm. Basal 〈a〉 slip retained part of the fiber texture component during extrusion, whereas enhanced pyramidal 〈c+a〉 slip and {10-12} tensile twinning rotated the c-axes away from the extrusion direction during compression, promoting deviated annular texture (DAT). Higher ratios or additional cycles accelerated grain-boundary migration and the growth of recrystallized grains, resulting in an enlarged dynamically recrystallized structure (EDRXS) and reconcentration of annular components toward a compression-type texture (CT). The framework thus resolved the sequential DGS–MT, FDRXS–DAT, and EDRXS–CT transitions across the processing window and quantitatively connected them to the resulting yield response. Consequently, DGS–MT retained a tensile-yield advantage, with TYS of 142 ± 2 MPa; FDRXS–DAT combined grain-refinement strengthening and crystallographic coordination, yielding TYS/CYS of 1.00 ± 0.05; and EDRXS–CT exhibited predicted CYS of 153 ± 7 MPa. This multiscale strategy provides a mechanistic basis for coordinating microstructure, texture, and mechanical response under complex deformation paths.

Journal of Magnesium and AlloysVol. 25
Seoul National University (KR), Harbin Institute of Technology (CN), Northwest Institute For Non-Ferrous Metal Research (CN)
National Natural Science Foundation of China, Natural Science Foundation of Shandong Province, Ministry of Science and ICT, South Korea, Korea Institute of Materials Science
Openalex Percentile: Top 28%
Magnesium Alloys: Properties and Applications
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