Abstract:
It is well known that α-Al
2O
3 phase has stablility performance, high permeation reduction factor and good resistance performance in liquid LiPb, which is considered as the reference tritium barrier coating in future fusion reactor. In order to study the formation mechanism of stable α-Al
2O
3 scales on fusion structure material, the oxidation behavior of Fe-Al aluminized coating on China Low Activated Martensitic (CLAM) steel was investigated under the oxygen partial pressure from 1 Pa to 20 kPa at the temperature of 940-980 ℃. The Al
2O
3 scales were analyzed by thermogravimetric analysis meter, grazing angle X-ray diffractometer, glow discharge spectrometer, focused ion beam and transmission electron microscope. A single continuous Al
2O
3 scales with the maximum thickness of about 2 000 nm was formed on the diffusion Fe-Al aluminized layer. Thermogravimetric analysis results show that the higher oxidation rate constant is achieved while increasing the oxygen partial pressure, and then oxidation rate constant decreases. The phase transformation of Al
2O
3 scales on the surface of Fe-Al aluminized coating was studied during different oxidation time ranges from 3 min to 180 min. The metastable γ-Al
2O
3 and α-(Al0.948Cr0.052)
2O
3 phases is formed in the earlier oxidation process and finally transformed to stable α-Al
2O
3 phase. The features of the transient α-(Al0.948Cr0.052)
2O
3(113) and α-Al
2O
3(113) were detected by GXRD and then confirmed by focused ion beam and transmission electron microscope.