Lamb waves-based technologies for structural health monitoring of composite structures for aircraft applications

Marilyne Philibert, Kui Yao, M. Gresil, Constantinos Soutis
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引用次数: 13

Abstract

Abstract The most common researched area of damage in a composite material such as carbon fibre reinforced plastics (CFRP) used currently in aircraft construction is barely visible impact damage (BVID), significantly reducing mechanical properties. Early detection and qualification would improve safety and reduce the cost of repair. In this context, structural health monitoring (SHM) techniques have been developed that could monitor a structure at any time by using a network of sensors. Widely used discrete ceramic transducers can generate and sense Lamb waves travelling in the structure. Wave propagation must then be analysed for effective damage identification. An effective SHM system is desired to meet several demands, such as minimised weight penalty, non-intrusive system not interfering with the structure performance, cost-effectiveness for implementation with targeted sensitivity and area coverage, capability of monitoring non-accessible and critical hot spot regions, robustness, and reliability. This review starts with an introduction on Lamb waves fundamentals and their use in SHM, and then particularly focuses on methods using piezoelectric transducers and mode selection. Some relevant applications on different structural configurations are discussed. Finally, recent developments on piezoelectric coating and direct-write sensor technology for tailored transducers are highlighted with some thoughts for near future research work.
基于Lamb波的飞机复合材料结构健康监测技术
碳纤维增强塑料(CFRP)等复合材料在飞机制造中最常见的损伤研究领域是几乎不可见的冲击损伤(BVID),它显著降低了机械性能。早期检测和鉴定将提高安全性并降低维修成本。在这种情况下,结构健康监测(SHM)技术已经开发出来,可以通过使用传感器网络随时监测结构。广泛使用的离散陶瓷换能器可以产生和感知在结构中传播的兰姆波。为了有效地识别损伤,必须分析波的传播。一个有效的SHM系统需要满足几个要求,例如最小的重量损失,非侵入性系统不干扰结构性能,具有目标灵敏度和区域覆盖的实施成本效益,监测不可访问和关键热点区域的能力,鲁棒性和可靠性。本文首先介绍了兰姆波的基本原理及其在SHM中的应用,然后重点介绍了使用压电换能器和模式选择的方法。讨论了在不同结构构型下的相关应用。最后,重点介绍了用于定制换能器的压电涂层和直写传感器技术的最新进展,并对今后的研究工作提出了一些想法。
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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