Abstract
Laser powder bed fusion (LPBF) provides high design freedom for high-strength aluminum alloys in aerospace and automotive industries. However, the rapid solidification of LPBF results in a critical microstructural challenge in aluminum alloys: coarse columnar grains with anisotropy and cracking. In this work, we employ the synergistic effect of magnesium and titanium elements in aluminum alloys for building self-assembled MgAl2O4/Al3Ti hierarchical architectures as a highly efficient nucleation agent. In-situ MgAl2O4 nanoparticles offer coherent interfaces (lattice mismatch: 0.05 %) for the nucleation of L12-structured Al3Ti phase, facilitating the formation of fully equiaxed grains with random orientations in aluminum alloys. Aberration-corrected transmission electron microscopy demonstrates atomic-scale coherence at MgAl2O4/Al3Ti interfaces, confirming MgAl2O4 as effective nucleation substrates for Al3Ti phase. Our study provides a new microstructure-design strategy for LPBF, achieving aluminum alloys with fully equiaxed grains.
Original language | English |
---|---|
Article number | 116790 |
Journal | Scripta Materialia |
Volume | 266 |
DOIs | |
State | Published - 1 Sep 2025 |
Keywords
- AlTi
- Aluminum alloy
- Hierarchical architecture
- Laser powder bed fusion
- MgAlO