首页> 外文期刊>Journal of Sound and Vibration >Effects of high-amplitude low-frequency structural vibrations and machinery sound waves on ultrasonic guided wave propagation for health monitoring of composite aircraft primary structures
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Effects of high-amplitude low-frequency structural vibrations and machinery sound waves on ultrasonic guided wave propagation for health monitoring of composite aircraft primary structures

机译:高幅度低频结构振动和机械声波对复合飞机初级结构健康监测超声波导波传播的影响

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A reliable damage diagnostic by ultrasonic guided wave (GW) based structural health monitoring (SHM) can only be achieved if the physical interactions between wave propagation, the SHM system and environmental factors are fully understood. The purpose of this research was to gain knowledge about the effects of high-amplitude low-frequency structural vibrations (HA-LFV) and audible sound waves (SW) on ultrasonic GW propagation. Measurements were performed on a stiffened panel of a full-scale composite torsion box containing barely visible impact damage. Time-domain analysis of the filtered GW signals revealed that the main effect of HA-LFV was the presence of coherent noise. This was interpreted as the consequence of superposition of multiple dispersive wave groups produced by mode conversion at the moment of reflection on the corrugated panel surfaces during propagation. It was also observed that the coherent noise amplitude depends on the amplitude of the HA-LFV, and on the ratio between the HA-LFV frequency and the ultrasonic excitation frequency. These relationships can potentially be explored for the development of a HA-LFV compensation mechanism to enable in-service GW based damage diagnostics. In contrast, GW signals in the cases with audible SW present were almost unaffected. It was concluded that there is strong evidence supporting the hypothesis that ultrasonic GW propagation with HA-LFV effects can be analysed under the assumption of a permanently corrugated structure. (C) 2020 The Authors. Published by Elsevier Ltd.
机译:仅基于超声波引导波(GW)的结构健康监测(SHM)诊断的可靠损坏,只有在波传播,SHM系统和环境因素之间的物理相互作用。本研究的目的是获得关于高幅度低频结构振动(HA-LFV)和可听声波(SW)对超声波GW传播的影响的知识。在包含几乎没有可见的冲击损伤的全尺寸复合扭转箱的加强面板上进行测量。过滤的GW信号的时域分析表明,HA-LFV的主要效果是存在相干噪声。这被解释为在传播期间瓦楞纸板表面的反射时叠加通过模式转换产生的多个分散波组的后果。还观察到,相干噪声幅度取决于HA-LFV的幅度,并且在HA-LFV频率与超声波激发频率之间的比率。可以探讨这些关系,用于开发HA-LFV补偿机制,以实现基于GW的损伤诊断。相比之下,具有可听SW的情况下的GW信号几乎不受影响。得出结论是,存在强有力的证据,支持具有HA-LFV效应的超声波GW繁殖的假设,可以在防止瓦楞结构的假设下进行分析。 (c)2020作者。 elsevier有限公司出版

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