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Full Length Article | Open Access

Heterostructure control enabling outstanding strength-crack tolerance synergy in a dilute Mg-Al-Mn-Zn-Ce-Nd alloy

An YangaCheng Wanga( )Hong NingaXin-Yu Xub( )Yipeng GaoaZhangting HuaLu XuaShunbo WangcXianke LicHui-Yuan Wanga,d
National Key Laboratory of Automotive Chassis Integration and Bionics and School of Materials Science and Engineering, Nanling Campus, Jilin University, No. 5988 Renmin Street, Changchun 130025, China
Department of Mechanical Engineering, The University of Hong Kong, Pokfulam Road, Hong Kong 999077, China
School of Mechanical and Aerospace Engineering, Jilin University, No. 5988 Renmin Street, Changchun 130025, China
School of Material Science and Engineering, Hebei University of Technology, No. 5340, Xiping Road, Beichen District, Tianjin 300130, China

Peer review under the responsibility of Chongqing University

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Abstract

There exists a severe strength-crack tolerance trade-off in dilute magnesium (Mg) alloys. Herein, a heterogeneous Mg-0.6Al-0.6Mn-0.5Zn-0.2Ce-0.2Nd (A200-10) alloy with a high density of dislocations was obtained through low-temperature extrusion and short-term annealing. The microstructure consists of recrystallized (RXed) and unrecrystallized (unRXed) regions, with a precisely controlled volume fraction ratio of 3:1. The heterogeneous A200-10 alloy exhibits a high tensile yield strength (TYS) of ~306 MPa and a superior tensile elongation (TEL) of ~18.4%. Based on quasi-in-situ electron backscattered diffraction (EBSD) and scanning electron microscope (SEM)-digital image correlation (DIC) analysis, we find that plastic deformation occurs preferentially in the RXed regions, mediated by the mobile <a> dislocations. As strain increases, strain gradient gradually accumulates at the interface between RXed and unRXed regions, generating hetero-deformation induced (HDI) strengthening and hardening. Besides, there is significant intergranular slip transfer in RXed regions, which can coordinate partial strain incompatibility. Furthermore, heterogeneous interfaces play a crucial role in enhancing crack tolerance. The heterogeneous interface functions as a bridging ligament to withstand stresses, and activates non-basal slips in the unRXed grains near the crack tip. Such activation of extra dislocations not only alleviates stress concentration but also dissipates the energy essential for microcrack propagation, thus effectively blunting the crack tip. Accordingly, the heterogeneous A200-10 alloy obtains an excellent strength and elongation combination. This work is anticipated to provide a valuable avenue for the development of Mg alloys with outstanding performance by regulating the appropriate heterostructure.

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Journal of Magnesium and Alloys
Pages 4045-4060

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Cite this article:
Yang A, Wang C, Ning H, et al. Heterostructure control enabling outstanding strength-crack tolerance synergy in a dilute Mg-Al-Mn-Zn-Ce-Nd alloy. Journal of Magnesium and Alloys, 2025, 13(8): 4045-4060. https://doi.org/10.1016/j.jma.2025.06.004

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Received: 16 February 2025
Revised: 01 May 2025
Accepted: 03 June 2025
Published: 05 July 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/)