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Spatial Integration of Baseline-free Damage Detection Algorithms Based on Dual-PZT for the Structural Health Monitoring of Anisotropic Composite Aeronautic Structures

机译:基于双PZT的基线无损伤检测算法的空间集成,用于各向异性复合航空结构的结构健康监测

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The focus is put here on the Structural Health Monitoring (SHM) of composite aeronautic structure using Lamb waves emitted and recorded with piezoelectric transducers (PZT). Conventional algorithms perform Lamb waves acquisition in the healthy state of the structure (referred to as the "baseline") and then compare incoming data from an unknown state with this one to detect, locate, classify and quantify any potential damage. The acquisition, storage, and update of the initially recorded baseline database constitute a severe drawback of such algorithms. Indeed, the structure under study as well as the environment may vary during its operational life without the appearance of any damage and thus the initial baseline may not be relevant at any instant where damage monitoring is needed. In order to circumvent this drawback, "baseline-free" method (such as the instantaneous baseline [BI] and rupture of reciprocity [RR]) have been developed. Moreover, the use of dual-PZT, i.e. concentric PZT made of a ring and a disk lying on the same ceramic, has been shown as attractive for baseline-free purposes. However, now that several algorithms based on dual-PZT are available, no study dealing with the spatial integration of the results provided by these algorithms have been reported in the literature. It is thus proposed in this paper to investigate strategies for the spatial integration of common baseline-free methods (namely BI and RR) on an experimental case of damage on a highly anisotropic composite plate. Results illustrate the decomposition of Lamb wave modes in signals measured via dual PZTs as well as the proposed spatial integration strategies for these methods.
机译:使用压电传感器(PZT)的羊毛波(PZT),将重点放在综合航空结构的结构健康监测(SHM)上。常规算法在结构的健康状态下执行LAMB波采集(称为“基线”),然后将来自未知状态的传入数据与该局部与该算法比较,以检测,定位,定位,分类和量化任何潜在的损坏。最初录制的基线数据库的采集,存储和更新构成了这种算法的严重缺点。实际上,在没有任何损坏的情况下,在其运行寿命期间,研究的结构以及环境可能会有所不同,因此初始基线可能在需要损坏监测的任何瞬间相关。为了绕过该缺点,已经开发出“无基线”方法(例如瞬时基线[BI]和互动[RR]的破裂)。此外,使用双PZT的使用,即由环的同心PZT和位于同一陶瓷上的圆盘,已经显示为基线目的具有吸引力。然而,现在,基于双PZT的几种算法可用,但在文献中没有报告这些算法提供的结果的空间集成的研究。因此,本文提出了研究常见基线方法(即Bi和RR)对高位各向异性复合板损伤的实验情况的策略。结果说明了通过双PZT测量的信号中的兰姆波模式的分解,以及这些方法的所提出的空间集成策略。

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