Surface mechanical attrition-induced hierarchical gradient nanostructuring enables ultrahigh strength and moderate ductility in Mg-Sn-Zn-Zr alloys

The engineering application of lightweight structural magnesium (Mg) alloys is usually impeded by the challenge of achieving high strength together with useful tensile ductility. In this study, rare-earth-free Mg-6Sn-3Zn-0.3Zr alloys with ultimate tensile strengths (UTS) of 385–405 MPa, tensile yield strengths (TYS) of 320–365 MPa and elongations (Els.) of approximately 13% were developed by constructing gradient nanostructures via surface mechanical attrition treatment (SMAT). Microstructural results revealed a hierarchical gradient architecture consisting of a nanograined surface layer, an ultrafine substructured transition layer and a coarse-grained core. The surface nanograins were formed through dislocation accumulation, twinning-assisted grain subdivision, subgrain rotation and in-situ dynamic recrystallization, accompanied by second-phase fragmentation and redistribution. The enhanced strength was mainly attributed to nanocrystalline strengthening, particle-assisted hardening, dislocation/substructure hardening and gradient-structure-induced hetero-deformation-induced (HDI) strengthening, while the retained ductility was enabled by HDI hardening and strain accommodation in the defect-rich transition layer and coarse core. This work demonstrates an effective SMAT-based gradient-design strategy for overcoming the strength-ductility trade-off in rare-earth-free Mg alloys.

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Publication Details

Journal
Journal of Magnesium and Alloys
Published
2026-09-17
DOI
https://doi.org/10.1016/j.jma.2026.102304
Primary Topic
Surface Treatment and Residual Stress
Type
article
Field-Weighted Citation Impact
0.00

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article

Surface mechanical attrition-induced hierarchical gradient nanostructuring enables ultrahigh strength and moderate ductility in Mg-Sn-Zn-Zr alloys

Tianshui Zhou, Bing Wang, Liang Liu, Beibei Wei et al.
Journal of Magnesium and Alloys
Surface Treatment and Residual Stress
article

Surface mechanical attrition-induced hierarchical gradient nanostructuring enables ultrahigh strength and moderate ductility in Mg-Sn-Zn-Zr alloys

Tianshui Zhou, Bing Wang, Liang Liu, Beibei Wei, Yarong Wang, Yujie Zhong, Kun Feng, Jiacheng Xu, Dexue Liu, Shunong Li, Lin Zhou, Lei Zheng
article en

Abstract

The engineering application of lightweight structural magnesium (Mg) alloys is usually impeded by the challenge of achieving high strength together with useful tensile ductility. In this study, rare-earth-free Mg-6Sn-3Zn-0.3Zr alloys with ultimate tensile strengths (UTS) of 385–405 MPa, tensile yield strengths (TYS) of 320–365 MPa and elongations (Els.) of approximately 13% were developed by constructing gradient nanostructures via surface mechanical attrition treatment (SMAT). Microstructural results revealed a hierarchical gradient architecture consisting of a nanograined surface layer, an ultrafine substructured transition layer and a coarse-grained core. The surface nanograins were formed through dislocation accumulation, twinning-assisted grain subdivision, subgrain rotation and in-situ dynamic recrystallization, accompanied by second-phase fragmentation and redistribution. The enhanced strength was mainly attributed to nanocrystalline strengthening, particle-assisted hardening, dislocation/substructure hardening and gradient-structure-induced hetero-deformation-induced (HDI) strengthening, while the retained ductility was enabled by HDI hardening and strain accommodation in the defect-rich transition layer and coarse core. This work demonstrates an effective SMAT-based gradient-design strategy for overcoming the strength-ductility trade-off in rare-earth-free Mg alloys.

Journal of Magnesium and AlloysVol. 24
City University of Hong Kong (HK), Xi'an Shiyou University (CN), Xi’an University (CN)
National Natural Science Foundation of China, Education Department of Shaanxi Province, Foundation for Innovation Groups of Basic Research in Gansu Province
Zero hunger
Openalex Percentile: Top 21%
Surface Treatment and Residual Stress
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