TY - JOUR
T1 - High-temperature oxidation behavior of Y-doped CoAl1.5NiCrFe high-entropy powder at 1000–1100 °C
AU - Liu, Kangcheng
AU - Lou, Liyan
AU - Cai, Zhihai
AU - Wang, Haidou
AU - Li, Changjiu
AU - Liu, Yi
AU - Li, Chengxin
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/2/15
Y1 - 2025/2/15
N2 - To develop a novel high-temperature servicing material, CoAl1.5NiCrFe high-entropy powder with Y-doping is prepared by gas atomization, and its high-temperature oxidation behavior at 1000 °C, 1050 °C, and 1100 °C is investigated. In this study, the establishment of thermally grown oxide (TGO), oxidation kinetics, phase components, and TGO stress evolution of this powder were investigated to evaluate its high-temperature oxidation resistance. Results indicate that the CoAlNiCrFeY high-entropy powder exhibits a dual-BCC structure with Y segregating at its grain boundaries. During the initial oxidation, a low temperature and Y3+ synergistically suppress the phase transition from θ-Al2O3 to α-Al2O3, triggering a high θ-Al2O3 fraction in TGO. After long-term oxidation, its TGO at all three temperatures mainly consists of α-Al2O3, without spinel. Furthermore, the TGO exhibits a low growth rate (only 3.02 ± 0.32 μm/200 h at 1100 °C) primarily because of the Y-doping and the sluggish diffusion of the high-entropy composition. TGO stress tests show that the sample at 1000 °C exhibits tensile stress, whereas those at 1050 °C and 1100 °C demonstrate compressive stress. Meanwhile, TGO at three temperatures display excellent spallation resistance. These results indicate that the CoAlNiCrFeY high-entropy powder has great application potential for high-temperature protection.
AB - To develop a novel high-temperature servicing material, CoAl1.5NiCrFe high-entropy powder with Y-doping is prepared by gas atomization, and its high-temperature oxidation behavior at 1000 °C, 1050 °C, and 1100 °C is investigated. In this study, the establishment of thermally grown oxide (TGO), oxidation kinetics, phase components, and TGO stress evolution of this powder were investigated to evaluate its high-temperature oxidation resistance. Results indicate that the CoAlNiCrFeY high-entropy powder exhibits a dual-BCC structure with Y segregating at its grain boundaries. During the initial oxidation, a low temperature and Y3+ synergistically suppress the phase transition from θ-Al2O3 to α-Al2O3, triggering a high θ-Al2O3 fraction in TGO. After long-term oxidation, its TGO at all three temperatures mainly consists of α-Al2O3, without spinel. Furthermore, the TGO exhibits a low growth rate (only 3.02 ± 0.32 μm/200 h at 1100 °C) primarily because of the Y-doping and the sluggish diffusion of the high-entropy composition. TGO stress tests show that the sample at 1000 °C exhibits tensile stress, whereas those at 1050 °C and 1100 °C demonstrate compressive stress. Meanwhile, TGO at three temperatures display excellent spallation resistance. These results indicate that the CoAlNiCrFeY high-entropy powder has great application potential for high-temperature protection.
KW - High-entropy alloy
KW - High-temperature oxidation
KW - Powder
KW - Reactive elements
UR - https://www.scopus.com/pages/publications/85216921434
U2 - 10.1016/j.jallcom.2025.178927
DO - 10.1016/j.jallcom.2025.178927
M3 - 文章
AN - SCOPUS:85216921434
SN - 0925-8388
VL - 1016
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 178927
ER -