Frequency warping compressive sensing for structural monitoring of aircraft wing

A. Perelli, S. Harput, L. Marchi, S. Freear
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引用次数: 6

Abstract

This work focuses on an ultrasonic guided wave structural health monitoring (SHM) system development for aircraft wing inspection. The performed work simulate small, low-cost and light-weight piezoelecric discs bonded to various parts of the aircraft wing, in a form of relatively sparse arrays, for cracks and corrosion monitoring. The piezoelectric discs take turns generating and receiving ultrasonic guided waves. The development of an in situ health monitoring system that can inspect large areas and communicate remotely to the inspector is highly computational demanding due to both the huge number of Piezoelectric sensors needed and the high sampling frequency. To address this problem, a general approach for low rate sampling is developed. Compressive Sensing (CS) has emerged as a potentially viable technique for the efficient acquisition that exploits the sparse representation of dispersive ultrasonic guided waves in the frequency warped basis. The framework is applied to lower the sampling frequency and to enhance defect localization performances of Lamb wave inspection systems. The approach is based on the inverse Warped Frequency Transform (WFT) as the sparsifying basis for the Compressive Sensing acquisition and to compensate the dispersive behaviour of Lamb waves. As a result, an automatic detection procedure to locate defect-induced reflections was demonstrated and successfully tested on simulated Lamb waves propagating in an aluminum wing specimen using PZFlex software. The proposed method is suitable for defect detection and can be easily implemened for real application to structural health monitoring.
飞机机翼结构监测的频率翘曲压缩感知
研究了一种用于飞机机翼检测的超声导波结构健康监测系统。这项工作模拟了一种小型、低成本和轻质的压电圆盘,以相对稀疏的阵列形式连接在飞机机翼的各个部分,用于裂缝和腐蚀监测。压电片轮流产生和接收超声波导波。由于需要大量的压电传感器和高采样频率,开发一种能够检测大面积并与检查员远程通信的原位健康监测系统对计算量的要求很高。为了解决这一问题,提出了一种通用的低速率采样方法。压缩感知(CS)已经成为一种潜在可行的高效采集技术,它利用了频散超声导波在频率扭曲基础上的稀疏表示。应用该框架降低了采样频率,提高了兰姆波检测系统的缺陷定位性能。该方法基于逆扭曲频率变换(WFT)作为压缩感知采集的稀疏化基础,并补偿兰姆波的色散行为。最后,利用PZFlex软件对在铝翼试件中传播的模拟Lamb波进行了测试,验证了缺陷反射的自动定位方法。该方法适用于缺陷检测,易于实际应用于结构健康监测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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