TY - JOUR
T1 - Unveiling oxidation mechanism and microstructural evolution of L-DED Ni3Al-based intermetallic alloy at 800 °C via multi-scale characterization and thermodynamic calculations
AU - Ju, Jiang
AU - Yu, Huipeng
AU - Kong, Haojie
AU - Qi, Dongqing
AU - Peng, Peng
AU - Shen, Zhao
AU - Ding, Chenyang
AU - Ma, Shuo
AU - Gao, Haiyan
AU - Wang, Jun
AU - Yang, Tao
AU - Sun, Baode
N1 - Publisher Copyright:
© 2025 The Authors.
PY - 2025
Y1 - 2025
N2 - This study investigates the oxidation behavior and microstructural evolution of a Ni3Al-based IC-221 M alloy fabricated via laser-directed energy deposition (L-DED) during exposure at 800 °C in air. The alloy exhibits parabolic oxidation kinetics and significantly outperforms commercial 32Cr3Mo1V steel in oxidation resistance. Multiscale characterization reveals that a continuous Al2O3–Cr2O3 inner scale and a discontinuous outer NiO layer form rapidly, effectively inhibiting oxygen ingress. Initially, Zr-rich phases transform to ZrO2, providing a temporary diffusion barrier, but later develop cracks that accelerate oxidation. Long-term exposure leads to refinement of the L12 cellular structures and the precipitation of coherent (Ni, Cr)3(Cr, Al) phases in the face-centered cubic (FCC) matrix, which contribute to increased hardness. Thermodynamic modeling and diffusion simulations confirm the roles of phase composition and cation transport in scale formation. These insights advance the understanding of oxidation mechanisms in L-DED intermetallics and support the development of oxidation-resistant alloys for high-temperature applications.
AB - This study investigates the oxidation behavior and microstructural evolution of a Ni3Al-based IC-221 M alloy fabricated via laser-directed energy deposition (L-DED) during exposure at 800 °C in air. The alloy exhibits parabolic oxidation kinetics and significantly outperforms commercial 32Cr3Mo1V steel in oxidation resistance. Multiscale characterization reveals that a continuous Al2O3–Cr2O3 inner scale and a discontinuous outer NiO layer form rapidly, effectively inhibiting oxygen ingress. Initially, Zr-rich phases transform to ZrO2, providing a temporary diffusion barrier, but later develop cracks that accelerate oxidation. Long-term exposure leads to refinement of the L12 cellular structures and the precipitation of coherent (Ni, Cr)3(Cr, Al) phases in the face-centered cubic (FCC) matrix, which contribute to increased hardness. Thermodynamic modeling and diffusion simulations confirm the roles of phase composition and cation transport in scale formation. These insights advance the understanding of oxidation mechanisms in L-DED intermetallics and support the development of oxidation-resistant alloys for high-temperature applications.
KW - Intermetallic alloys
KW - Laser-directed energy deposition
KW - Multiscale characterization
KW - Oxidation resistance
KW - Thermodynamic calculation
UR - https://www.scopus.com/pages/publications/105024950850
U2 - 10.1016/j.nanoms.2025.09.011
DO - 10.1016/j.nanoms.2025.09.011
M3 - 文章
AN - SCOPUS:105024950850
SN - 2096-6482
JO - Nano Materials Science
JF - Nano Materials Science
ER -