Oxidation behavior and condition-specific (Nb, X)Si2 depletion-time estimation of silicide-coated Nb–16Si–22Ti–5Cr–3Al (at.%) alloy at 1500 °C

In this study, the oxidation behavior and (Nb, X)Si 2 depletion behavior under isothermal oxidation at 1500 °C in ambient air were investigated for a silicide-coated Nb–16Si–22Ti–5Cr–3Al (at.%) alloy using separate specimens for each oxidation duration. Pack cementation produced an (Nb, X)Si 2 layer (X = Ti, Cr, Al) with an average thickness of approximately 104 μm on the alloy surface. During oxidation, the coating evolved into a SiO 2 /TiO 2 -rich surface scale, an intermediate (Nb, X)Si 2 + (Nb, X) 5 Si 3 region, and an inner (Nb, X) 5 Si 3 layer. The uncoated alloy suffered severe degradation, showing a mass change of −350.5 mg/cm 2 after 20 h. By contrast, the silicide-coated alloy maintained a low mass change of 2.7 mg/cm 2 after 20 h, confirming effective surface protection within the stable regime. A phase-fraction-based analysis of cross-sectional BSE images showed that the retained (Nb, X)Si 2 area fraction decreased linearly with oxidation time, giving an estimated (Nb, X)Si 2 depletion time of ∼22.4 h under the present oxidation condition. After 23 h, the coated alloy showed rapid mass loss (−238.8 mg/cm 2 ) and substrate oxidation, which occurred near the estimated depletion time of the protective (Nb, X)Si 2 phase. These findings demonstrate that the silicide coating can provide short-term oxidation protection for the Nb–16Si–22Ti–5Cr–3Al alloy under the specific 1500 °C condition investigated here, and the phase-fraction analysis provides a condition-specific (Nb, X)Si 2 depletion-time estimate under the present oxidation condition.

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Journal
Applied Surface Science Advances
Published
2026-09-14
DOI
https://doi.org/10.1016/j.apsadv.2026.101066
Primary Topic
Intermetallics and Advanced Alloy Properties
Type
article
Field-Weighted Citation Impact
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article

Oxidation behavior and condition-specific (Nb, X)Si2 depletion-time estimation of silicide-coated Nb–16Si–22Ti–5Cr–3Al (at.%) alloy at 1500 °C

Joon Sik Park, Sangyeob Lee, Choong‐Heui Chung, Jeong-Muk Choi et al.
Applied Surface Science Advances
Intermetallics and Advanced Alloy Properties
article

Oxidation behavior and condition-specific (Nb, X)Si2 depletion-time estimation of silicide-coated Nb–16Si–22Ti–5Cr–3Al (at.%) alloy at 1500 °C

Joon Sik Park, Sangyeob Lee, Choong‐Heui Chung, Jeong-Muk Choi, Hayeong Yang, Sunjin Kim, Jini Park, Jungseok Oh
article en

Abstract

In this study, the oxidation behavior and (Nb, X)Si 2 depletion behavior under isothermal oxidation at 1500 °C in ambient air were investigated for a silicide-coated Nb–16Si–22Ti–5Cr–3Al (at.%) alloy using separate specimens for each oxidation duration. Pack cementation produced an (Nb, X)Si 2 layer (X = Ti, Cr, Al) with an average thickness of approximately 104 μm on the alloy surface. During oxidation, the coating evolved into a SiO 2 /TiO 2 -rich surface scale, an intermediate (Nb, X)Si 2 + (Nb, X) 5 Si 3 region, and an inner (Nb, X) 5 Si 3 layer. The uncoated alloy suffered severe degradation, showing a mass change of −350.5 mg/cm 2 after 20 h. By contrast, the silicide-coated alloy maintained a low mass change of 2.7 mg/cm 2 after 20 h, confirming effective surface protection within the stable regime. A phase-fraction-based analysis of cross-sectional BSE images showed that the retained (Nb, X)Si 2 area fraction decreased linearly with oxidation time, giving an estimated (Nb, X)Si 2 depletion time of ∼22.4 h under the present oxidation condition. After 23 h, the coated alloy showed rapid mass loss (−238.8 mg/cm 2 ) and substrate oxidation, which occurred near the estimated depletion time of the protective (Nb, X)Si 2 phase. These findings demonstrate that the silicide coating can provide short-term oxidation protection for the Nb–16Si–22Ti–5Cr–3Al alloy under the specific 1500 °C condition investigated here, and the phase-fraction analysis provides a condition-specific (Nb, X)Si 2 depletion-time estimate under the present oxidation condition.

Applied Surface Science AdvancesVol. 35
Hanbat National University (KR), Hanwha Solutions (South Korea) (KR)
Ministry of Education, Korea Institute for Advancement of Technology, Korea Evaluation Institute of Industrial Technology
Openalex Percentile: Top 20%
Intermetallics and Advanced Alloy Properties
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