详细信息
Counter-directional mixing of longitudinal guided waves for fatigue damage detection in pipes ( SCI-EXPANDED收录 EI收录)
文献类型:期刊文献
英文题名:Counter-directional mixing of longitudinal guided waves for fatigue damage detection in pipes
作者:Zhu, Wujun[1];Gu, Junyu[1];Xiang, Yanxun[1];Ding, Taotao[1,2];Xuan, Fu-Zhen[1]
机构:[1]East China Univ Sci & Technol, Sch Mech & Power Engn, Shanghai Key Lab Intelligent Sensing & Detect Tech, Shanghai 200237, Peoples R China;[2]State Key Lab Intelligent Mfg Adv Construct Machin, Xuzhou 221004, Peoples R China
年份:2026
卷号:165
外文期刊名:ULTRASONICS
收录:;EI(收录号:20261220333658);WOS:【SCI-EXPANDED(收录号:WOS:001728363100001)】;
基金:This research was funded by the National Natural Science Founda-tion of China (Grant Nos. 12327807, 12004114 and 12404526) , and the Basic Research Program of Shanghai Science and Technology Innovation Action Plan (Grant No. 24TS1412200) .
语种:英文
外文关键词:Ultrasonic nonlinearity; Guided wave; Combined harmonic; Fatigue damage; Pipe
摘要:Accurate detection and localization of fatigue damage in pipes are essential for ensuring safety and reliability. Nonlinear ultrasonic guided waves offer significant advantages for material damage detection owing to their high sensitivity to microstructural evolution. Combined harmonics generated from the counter-directional mixing of guided waves are expected to guarantee a high spatial resolution in identifying multiple damage zones in pipes due to the limited interaction zone, which have been rarely reported. This study investigates the combined harmonic generation, spatial localization and discrimination of fatigue damage zones through physical analysis, numerical simulations and experimental measurements on the counter-directional mixing of two axisymmetric longitudinal guided waves in pipes. The physical mechanisms underlying counter-directional mixing and combined harmonic generation were first examined based on resonance conditions obtained from theoretical analysis. Obvious resonance phenomena of the selected mode triplet were observed in simulations and experiments. For both the cases with the damage zone longer or shorter than the wave mixing zone, fatigue damage was accurately localized with the peak nonlinearity parameter occurring at its center. Moreover, high spatial resolution was achieved in distinguishing two fatigue damage zones by optimizing the number of wave cycles in the primary waves. The findings of this study pave the way for damage detection and localization in pipes by counter-directional wave mixing in the field of nondestructive evaluation and structural health monitoring.
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