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Full Length Article | Open Access

Impact of a large dominant pore and its location on ductility of thin-walled high-pressure die-cast magnesium

Kyoo Sil Choia( )Xin Sunb,**Mei Lic
Pacific Northwest National Laboratory, Richland, WA 99352, USA
Wuzhen Laboratory, Tongxiang, Zhejiang 314500, China
Ford Motor Company, Dearborn, MI 48124, USA

** Xin Sun is formerly with Pacific Northwest National Laboratory.

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Abstract

High-pressure die-cast (HPDC) magnesium (Mg) and aluminum alloys enable vehicle lightweighting while reducing manufacturing costs by simplifying part assembly. The increasing use of super-large castings in electric vehicles enhances structural reliability and cost efficiency. However, HPDC Mg alloys face challenges related to casting defects such as porosity, cold shuts, and oxides. These defects influence tensile strength and ductility, depending on their location and size. This study employs finite element (FE) modeling to investigate how a dominant large pore, its position, and the sample size affect the ductility of thin-walled HPDC Mg. Motivated by the ductility variations reported in literature and the experimental findings on AM60 castings, synthetic microstructure-based models are used to assess the effects of different pore sizes and locations. The results indicate the presence of three different regions based on the large pore size and model size: 1) a region dominated by the effects of the large pore, 2) a plateau region dominated by pore interactions, and 3) a transient region between these two effects. A threshold distance from the sample edge ( d 0.9 D L ) is proposed, within which a large pore can significantly reduce ductility. Additionally, large pores near edges contribute to ductility variations in Mg castings.

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Journal of Magnesium and Alloys
Pages 1978-1993

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Cite this article:
Choi KS, Sun X, Li M. Impact of a large dominant pore and its location on ductility of thin-walled high-pressure die-cast magnesium. Journal of Magnesium and Alloys, 2025, 13(5): 1978-1993. https://doi.org/10.1016/j.jma.2025.04.008

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Received: 08 January 2025
Revised: 21 March 2025
Accepted: 16 April 2025
Published: 13 May 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/) Peer review under responsibility of Chongqing University