4.7 Article

Synchronous improvement in mechanical properties and corrosion resistance of Mg-Gd-Ag-Zr alloy through nanoprecipitates

Journal

JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T
Volume 26, Issue -, Pages 1445-1458

Publisher

ELSEVIER
DOI: 10.1016/j.jmrt.2023.07.274

Keywords

Mg alloy; Corrosion; Nanoprecipitate; Microstructure; Heat treatment

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It is still challenging to simultaneously improve the mechanical properties and corrosion resistance of Mg alloys through one strategy. In this paper, high-density nanoprecipitates are introduced in a Mg alloy to enhance its strength and corrosion resistance.
It is still challenging to synchronously improve mechanical properties and corrosion resistance through one strategy during developing Mg alloys. Introducing high-density precipitates is an effective and popular approach to strengthen Mg alloys, while these precipitates generally degrade the corrosion resistance. In this paper, the nanoprecipitates are developed in Mg-13.4Gd-2.2Ag-0.4Zr wt.% cast alloy through the solution and aging treatment for evading this dilemma. Compared with its as-cast counterpart, the peak-aged alloy with high-density nanoprecipitates exhibits enhanced strength, comparable ductility, and improved corrosion resistance. The nanoprecipitates in the peak-aged alloy are composed of b nanoparticles at grain boundaries, and intragranular g00 and b0 nanoplates. These nanoprecipitates are contributed to the improved strength through the Orowan mechanism. The b nanoparticles induce weak galvanic corrosion, and the g00 nanoplates have not induced visible galvanic corrosion, thus contributing to the enhanced corrosion resistance of the peak-aged alloy. This result suggests that developing nanoprecipitate is a feasible route to collaboratively optimize the mechanical and corrosion properties of the Mg alloys.& COPY; 2023 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).

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