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◆ Materials (Basel, Switzerland)2026-09-20

Damage Evolution of a Type IV Composite Pressure Vessel Based on High-Frequency Acoustic Emission Signals and Background-Energy Analysis.

Xiangdong Ma, Wenli Dong, Yanbing Zhang, Wei Zheng, Shen He, Zhongyuan Xu, Xiao Wu, Yonghua Yu, Yanlong Chen, Yan Yan

原始摘要(英文原文)· Original abstract
This study investigates damage evolution in a polymer-lined, fully wrapped Type IV composite pressure vessel containing artificial local defects under stepwise hydrostatic loading. A 70 MPa vessel was pressurized in 20 MPa increments to 160 MPa, while acoustic emission (AE) was monitored continuously. Ball-impact calibration established the relationship between input mechanical energy and AE waveform energy. Three high-frequency criteria based on waveform and band-limited energy ratios were used to identify fiber-fracture-related high-frequency signals, while ratios between adjacent background-energy characteristic points were used to identify background-energy oscillation (BEO). The calibration yielded a mechanical-to-AE energy conversion coefficient of 1.92354 × 10-6 with R2 = 0.9707. No high-frequency signals or BEOs were detected during the 20-80 MPa holds. At 100 MPa, two high-frequency signals and four BEOs occurred, with a maximum adjacent-point ratio of 4.63, suggesting the coexistence of high-frequency responses consistent with fiber-dominated damage and continuous weak AE activity. At 140 MPa, three high-frequency signals indicated the re-emergence of localized high-frequency activity after stress re-equilibration. At 160 MPa, 23 high-frequency signals, a maximum C1 of 1330.434, and six BEOs reflected pronounced damage-related AE activity in the composite overwrap. The combined approach captures staged damage evolution and supports AE-based integrity assessment of composite pressure vessels.
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Damage Evolution of a Type IV Composite Pressure Vessel Based on High-Frequency Acoustic Emission Signals and Background-Energy Analysis. — 科研速览 Science Skim