Third-Body Dynamics and Tribo-Oxidation Mechanism in Fretting Degradation of an Inconel 718/304 Stainless Steel O-Ring Seal

Fretting wear at metal O-ring sealing interfaces involves the coupled processes of debris generation, entrapment, and oxidation. Existing accelerated life testing relies on similarity theory, yet it overlooks the dominant role of third-body behavior in governing wear regime transitions, so equivalence between test and service conditions lacks a physical basis. This study investigates reciprocating fretting wear of an Inconel 718/304 stainless steel pair and reinterprets wear evolution using third-body dynamics. Laser scanning confocal microscopy, energy-dispersive spectroscopy, and real-time friction monitoring reveal three distinct stages: debris generation with mild damage, oxide layer formation with steady wear, and oxide layer fracture with material spalling. The friction coefficient passes through running-in, steady-state, and sharp-rise phases, while oxygen content on the wear track rises from 2.1 wt.% to 18.3 wt.%. One-way ANOVA shows significant differences among all stages. Based on Berthier’s theory, a state-evolution model is developed that treats third-body oxidation degree and cumulative friction energy dissipation as equivalence criteria. Friction energy and wear mass correlate linearly (R2 = 0.94), giving an effective wear coefficient of 6.3 × 10−7 mg/J and acceleration exponents of m1 = 9.77 for pressure and m2 = −8.71 for frequency. Independent validation shows that the model compresses test duration by 51%, with relative errors below 18% for wear mass, fractal dimension, and fractal roughness. By shifting the focus of accelerated testing from dimensional analysis to mechanism-preserving state tracking, this work provides a failure analysis framework that identifies the root cause of seal degradation as third-body oxidative spalling and offers practical preventive actions for nuclear metal seal reliability assessment.

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Journal
Materials
Published
2026-09-28
DOI
https://doi.org/10.3390/ma19194137
Primary Topic
Mechanical stress and fatigue analysis
Type
article
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article

Third-Body Dynamics and Tribo-Oxidation Mechanism in Fretting Degradation of an Inconel 718/304 Stainless Steel O-Ring Seal

Linyuan kuang, Ying Luo, Bo Yang, Zeyuan Yu et al.
Materials
Mechanical stress and fatigue analysis
article

Third-Body Dynamics and Tribo-Oxidation Mechanism in Fretting Degradation of an Inconel 718/304 Stainless Steel O-Ring Seal

Linyuan kuang, Ying Luo, Bo Yang, Zeyuan Yu, Chaojun Deng
article en

Abstract

Fretting wear at metal O-ring sealing interfaces involves the coupled processes of debris generation, entrapment, and oxidation. Existing accelerated life testing relies on similarity theory, yet it overlooks the dominant role of third-body behavior in governing wear regime transitions, so equivalence between test and service conditions lacks a physical basis. This study investigates reciprocating fretting wear of an Inconel 718/304 stainless steel pair and reinterprets wear evolution using third-body dynamics. Laser scanning confocal microscopy, energy-dispersive spectroscopy, and real-time friction monitoring reveal three distinct stages: debris generation with mild damage, oxide layer formation with steady wear, and oxide layer fracture with material spalling. The friction coefficient passes through running-in, steady-state, and sharp-rise phases, while oxygen content on the wear track rises from 2.1 wt.% to 18.3 wt.%. One-way ANOVA shows significant differences among all stages. Based on Berthier’s theory, a state-evolution model is developed that treats third-body oxidation degree and cumulative friction energy dissipation as equivalence criteria. Friction energy and wear mass correlate linearly (R2 = 0.94), giving an effective wear coefficient of 6.3 × 10−7 mg/J and acceleration exponents of m1 = 9.77 for pressure and m2 = −8.71 for frequency. Independent validation shows that the model compresses test duration by 51%, with relative errors below 18% for wear mass, fractal dimension, and fractal roughness. By shifting the focus of accelerated testing from dimensional analysis to mechanism-preserving state tracking, this work provides a failure analysis framework that identifies the root cause of seal degradation as third-body oxidative spalling and offers practical preventive actions for nuclear metal seal reliability assessment.

MaterialsVol. 19(19)
Sichuan University (CN), Nuclear Power Institute of China (CN)
Responsible consumption and production
Openalex Percentile: Top 20%
Mechanical stress and fatigue analysis
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