4.7 Article

Coupled segregation mechanisms of Sc, Zr and Mn at θ′ interfaces enhances the strength and thermal stability of Al-Cu alloys

期刊

ACTA MATERIALIA
卷 206, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.actamat.2021.116634

关键词

Micro-alloying elements; Theta-prime; Mechanical properties; Thermal stability; Al-Cu alloys

资金

  1. Australian Research Council Australian Discovery Early Career Award by the Australian Government [DE190100614]
  2. Australian Research Council [DE190100614] Funding Source: Australian Research Council

向作者/读者索取更多资源

This study demonstrates that the addition of trace amounts of Sc, Zr, and Mn in Al-Cu alloys refines and stabilizes theta' precipitates, resulting in increased hardness and improved thermal stability of the alloy. The enhanced properties are attributed to the unique segregation mechanisms of Mn, Sc, and Zr at the interfaces of the theta' precipitates.
The refinement and thermal stability of intermediate theta-prime (theta') precipitates are critical in the development of new high strength 2xxx series aluminium-copper (Al-Cu) alloys for high temperature applications. In this work, we use trace additions of Sc, Zr and Mn in an Al-6.5 wt.% Cu alloy to refine and stabilise the theta' precipitates. The formation of Al-3(Sc, Zr) core/shell dispersoids significantly refine the theta' precipitates by acting as preferential nucleation sites during artificial ageing. Adding Mn results in a significant increase of hardness during ageing at 190 degrees C. Hardness is maintained during thermal exposure at 280 degrees C for up to 24 h. Transmission electron microscopy (TEM) reveals that the addition of Mn leads to a finer and denser distribution of theta' precipitates, and greatly slows the growth and coarsening of the theta' precipitates at elevated temperatures. Differential scanning calorimetry (DSC) shows that this can be attributed to an enhanced nucleation and improved coarsening resistance of the theta' precipitates in the presence of Mn. Atom probe tomography (APT) reveals that the enhanced age-hardening kinetics and thermal stability arise from the independent segregation mechanisms of Mn, Sc and Zr at the semi-coherent and coherent interfaces of the theta' precipitates. The segregation is quantified by calculating the Gibbsian interfacial excess and corresponding reduction in interfacial energy. These calculations reveal that while Sc and Zr play a significant role in the refinement of the theta' precipitates, Mn not only refines the theta' precipitates, but also greatly enhances their coarsening resistance and corresponding alloy's thermal stability. (C) 2021 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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