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Broadband signal reconstruction for SHM: An experimental and numerical time reversal methodology

机译:SHM宽带信号重建:实验性和数值逆转方法

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Structural Health Monitoring (SHM) aims to shift aircraft maintenance from a time-based to a condition-based approach. Within all the SHM techniques, Acoustic Emission (AE) allows for the monitoring of large areas by analyzing Lamb waves propagating in plate like structures. In this study, the authors proposed a Time Reversal (TR) methodology with the aim of reconstructing an original and unaltered signal from an AE event. Although the TR method has been applied in Narrow-Band (NwB) signal reconstruction, it fails when a Broad-Band (BdB) signal, such as a real AE event, is present. Therefore, a novel methodology based on the use of a Frequencies Compensation Transfer Function (FCTF), which is capable of reconstructing both NwB and real BdB signals, is presented. The study was carried out experimentally using several sensor layouts and materials with two different AE sources: (i) a Numerically Built Broadband (NBB) signal, (ii) a Pencil Lead Break (PLB). The results were validated numerically using Abaqus/CAE~(TM)with the implementation of absorbing boundaries to minimize edge reflections.
机译:结构健康监测(SHM)旨在将飞机维护转移到基于条件的方法。在所有SHM技术中,声发射(AE)允许通过分析在板状结构中传播的羊羔波来监测大面积。在这项研究中,作者提出了时间逆转(TR)方法,目的是从AE事件重建原始和未改变的信号。尽管TR方法已经应用于窄带(NWB)信号重建,但是当存在诸如真实AE事件的宽带(BDB)信号时失败。因此,呈现了一种基于使用能够重建NWB和实际BDB信号的频率补偿传递函数(FCTF)的新方法。该研究通过几种传感器布局和具有两个不同AE源的材料进行了实验进行:(i)一种数值建立的宽带(NBB)信号,(ii)铅笔铅(PLB)。使用ABAQUS / CAE〜(TM)在数值上进行数值验证,以实现吸收边界以最小化边缘反射。

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