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Full Length Article | Open Access

Enhanced high-temperature strength of a Mg-4Sn-3Al-1 Zn alloy with good thermal stability via Mg2Sn precipitation

Wei SunaYangchao Denga,cYuhan HuaHongyi Zhanb( )Kun YancSansan ShuaidEnyu GuoeZebang ZhengfGuang Zenga( )
School of Materials Science and Engineering, Central South University, Changsha, 410083, China
China Science Lab, General Motors Global Research and Development, Shanghai, 201206, China
Department of Materials, The University of Manchester, Manchester, M13 9PL, UK
State Key Laboratory of Advanced Special Steels, School of Materials Science and Engineering, Shanghai University, Shanghai, 200444, China
Key Laboratory of Solidification Control and Digital Preparation Technology (Liaoning Province), School of Materials Science and Engineering, Dalian University of Technology, Dalian, 116024, China
State Key Laboratory of Solidification Processing, Shaanxi Key Laboratory of High-Performance Precision Forming Technology and Equipment, School of Materials Science and Engineering, Northwestern Polytechnical University, P.O.Box 542, Xi'an 710072, China

Peer review under the responsibility of Chongqing University

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Abstract

With the growing demand for rapid and cost-effective solutions for lightweight magnesium alloys with excellent high-temperature mechanical properties, we investigated a heat-treatable RE-free magnesium alloy, Mg-4Sn-3Al-1Zn (TAZ431, wt.%), with remarkable thermal stability. The peak-aged TAZ431 alloy exhibits a 15 % increase in high-temperature (230 ℃) yield strength, compared to the traditional commercial magnesium alloy, Mg-3Al-1Zn (AZ31, wt.%). In this work, we demonstrate that the basal Mg2Sn precipitates have a more pronounced hindrance effect on the non-basal slip systems, as evidenced by a combination of experiments (in-situ EBSD and dual beam TEM) and numerical simulations (Orowan model and VPSC). The distribution and morphology of Mg2Sn precipitates and cracks are quantitatively analyzed using a range of techniques including in-situ SEM and synchrotron X-ray tomography. Our results reveal that the decohension of grain boundary precipitates significantly promotes the formation of intergranular cracks, leading to ultimate fracture. The research comprehensively explains the impact of particle morphology, orientation, and distribution on precipitation strengthening and fracture modes at elevated temperatures, which is vital for the future development of high-temperature performance magnesium alloys.

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Journal of Magnesium and Alloys

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Cite this article:
Sun W, Deng Y, Hu Y, et al. Enhanced high-temperature strength of a Mg-4Sn-3Al-1 Zn alloy with good thermal stability via Mg2Sn precipitation. Journal of Magnesium and Alloys, 2026, 15(C). https://doi.org/10.1016/j.jma.2024.12.024

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Received: 26 August 2024
Revised: 07 October 2024
Accepted: 17 December 2024
Published: 14 January 2025
© 2025 Chongqing University.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/)