Design of high-performance sustainable aluminum alloy series for laser additive manufacturing.

Takata, Naoki; Minamihama, Koki; Miyawaki, Takanobu; Cheng, Yue; Xu, Yifan; Wang, Wenyuan; Kim, Dasom; Suzuki, Asuka et al. · Nat Commun · 2025

biomechanical · Level V

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Abstract

Lightweight Al alloys with enhanced mechanical properties are essential for structural applications across various industries. To promote sustainable material flow, this study introduces an Al-Fe-based multi-elemental alloy series optimized for laser-based additive manufacturing (AM) using powder bed fusion (PBF-LB), leveraging recycling-friendly Al alloys with Fe as a major impurity. The alloy design is based on the concept of elemental partitioning into either the liquid phase (forming metastable Al<sub>6</sub>Fe phase for strengthening) or the solid phase (α-Al matrix) during solidification. Investigations of PBF-LB processed Al-Fe-X ternary alloys (X: Cu, Mn, and Ti) reveal the distinct roles of these alloying elements: Cu and Mn stabilize the Al<sub>6</sub>Fe phase, while Ti enhances solid-solution strengthening, in the microstructure and associated mechanical properties. Additionally, Ti promotes grain refinement by inducing the heterogeneous nucleation of nanosized Al<sub>3</sub>Ti-phase particles, leading to improved material ductility. The combined addition of alloy elements further stabilizes and strengthens the Al<sub>6</sub>Fe phase (Cu and Mn). Moreover, Mn and Ti partition independently, enabling precise control of the α-Al/Al<sub>6</sub>Fe two-phase microstructure, enhancing high-temperature mechanical performance. This study provides new insights for controlling refined metastable phases formed via PBF-LB, facilitating the development of high-performance, sustainable Al alloys for AM technologies.