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Research on single frequency component based MUSIC algorithm for impact localization

机译:影响本地化单频分量基于频率分量的音乐算法研究

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Composite materials have been widely used in many aircraft structures due to their high specific strength, light weight, resistance to fatigue and flexibility in design. The susceptibility of composite materials to incur impact damage is well known and creates a major concern related to structural integrity. Since the MUSIC algorithm could successfully detect the source signal under low signal-to-noise ratio without transfer functions and material properties, it has been applied to the structural health monitoring area gradually. However, the impact induced Lamb waves exhibit a wide band performance, which gives rise to the difficulty of obtaining the phase velocity directly. This paper first analyzes the influence of the phase velocity precision to the accuracy of the MUSIC based impact localization method. In order to deal with the phase velocity obtaining problem, the Shannon wavelet is used to extract single frequency components from the impact induced Lamb waves. Based on the obtained phase velocity, the precision of MUSIC algorithm for impact localization is improved. This method is verified on the stiffened structure of an UAV wing box. Experimental results show that the method could realize impact localization on stiffened aircraft structures and has a relatively small error.
机译:由于其高比强度,重量轻,疲劳,疲劳和柔韧性,复合材料已广泛应用于许多飞机结构。复合材料对冲击损伤的敏感性是众所周知的,并且创造了与结构完整性有关的主要问题。由于音乐算法可以在不转移功能和材料特性的情况下成功地检测到源信号,因此它已经逐渐应用于结构健康监测区域。然而,冲击诱导的羔羊波具有宽带性能,这导致直接获得相速度的难度。本文首先分析了相位速度精度对音乐的影响定位方法的准确性的影响。为了处理阶段速度获得问题,Shannon小波用于从冲击诱导的羊波中提取单频分量。基于所获得的阶段速度,改善了用于影响定位的音乐算法的精度。在UAV翼盒的加强结构上验证了该方法。实验结果表明,该方法可以实现对加强飞机结构的影响,误差相对较小。

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