Breakaway oxidation of Zr-1Nb-1Sn-0.3Fe alloy in PWR primary water: Interfacial geometric thresholds and defect percolation

In this study, the oxidation behavior and degradation mechanisms of a Zr-1Nb-1Sn-0.3Fe alloy in simulated pressurized water reactor (PWR) primary water at 360℃ were systematically investigated. The macroscopic kinetics exhibited a three-stage progression: a protective parabolic regime featuring an extended plateau, a kinetic transition at ~2500 h with a critical oxide thickness of ~5.1 µm, and a subsequent linear breakaway regime. To elucidate the physical origin of this transition, a quantitative geometric probability model was established, directly correlating metal-oxide interfacial undulations with scale failure. Statistical evaluations reveal that once the local interfacial aspect ratio (amplitude-to-wavelength, A/L ) exceeds a critical threshold of ~0.3, the probability of convex crack initiation at the undulation crests abruptly surpasses 50%. Statistical results demonstrate that the macroscopic transition is triggered when the global fraction of cracked undulations breaches a 2/5 threshold; the intensification of these undulations at 1900h—prior to macroscopic kinetic deviation—confirms this cracking as a key precursor to breakaway oxidation. Furthermore, nanoscale characterizations demonstrate that these undulation-induced cracks percolate with various pre-existing isolated defects within the bulk oxide, encompassing both intrinsic lateral cracks and secondary phase particles induced crescent microcracks. The coalescence of these localized flaws into an interconnected short-circuit network dissipates the protective interfacial compressive stress. Ultimately, this stress relaxation triggers a widespread t-ZrO 2 to m-ZrO 2 martensitic transformation, finalizing the structural and crystallographic degradation of the macroscopic transport barrier.

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Publication Details

Journal
Corrosion Science
Published
2026-09-15
DOI
https://doi.org/10.1016/j.corsci.2026.114263
Primary Topic
Nuclear Materials and Properties
Type
article
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article

Breakaway oxidation of Zr-1Nb-1Sn-0.3Fe alloy in PWR primary water: Interfacial geometric thresholds and defect percolation

Yimian Chen, Zimin Li, Jiaqi Cui, Bright O. Okonkwo et al.
Corrosion Science
Nuclear Materials and Properties
article

Breakaway oxidation of Zr-1Nb-1Sn-0.3Fe alloy in PWR primary water: Interfacial geometric thresholds and defect percolation

Yimian Chen, Zimin Li, Jiaqi Cui, Bright O. Okonkwo, Jiajing Peng, En-Hou Han, Jianqiu Wang, Ruiqian Zhang
article en

Abstract

In this study, the oxidation behavior and degradation mechanisms of a Zr-1Nb-1Sn-0.3Fe alloy in simulated pressurized water reactor (PWR) primary water at 360℃ were systematically investigated. The macroscopic kinetics exhibited a three-stage progression: a protective parabolic regime featuring an extended plateau, a kinetic transition at ~2500 h with a critical oxide thickness of ~5.1 µm, and a subsequent linear breakaway regime. To elucidate the physical origin of this transition, a quantitative geometric probability model was established, directly correlating metal-oxide interfacial undulations with scale failure. Statistical evaluations reveal that once the local interfacial aspect ratio (amplitude-to-wavelength, A/L ) exceeds a critical threshold of ~0.3, the probability of convex crack initiation at the undulation crests abruptly surpasses 50%. Statistical results demonstrate that the macroscopic transition is triggered when the global fraction of cracked undulations breaches a 2/5 threshold; the intensification of these undulations at 1900h—prior to macroscopic kinetic deviation—confirms this cracking as a key precursor to breakaway oxidation. Furthermore, nanoscale characterizations demonstrate that these undulation-induced cracks percolate with various pre-existing isolated defects within the bulk oxide, encompassing both intrinsic lateral cracks and secondary phase particles induced crescent microcracks. The coalescence of these localized flaws into an interconnected short-circuit network dissipates the protective interfacial compressive stress. Ultimately, this stress relaxation triggers a widespread t-ZrO 2 to m-ZrO 2 martensitic transformation, finalizing the structural and crystallographic degradation of the macroscopic transport barrier.

Corrosion ScienceVol. 272
Chinese Academy of Sciences (CN), French Corrosion Institute (FR), South China University of Technology (CN), Northeastern University (CN)
Clean water and sanitation
Openalex Percentile: Top 24%
Nuclear Materials and Properties
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