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Toward Smart Aerospace Structures: Design of a Piezoelectric Sensor and Its Analog Interface for Flaw Detection

机译:迈向智能航空航天结构:压电传感器及其缺陷检测模拟接口的设计

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摘要

Structural health monitoring using noninvasive methods is one of the major challenges that aerospace manufacturers face in this decade. Our work in this field focuses on the development and the system integration of millimetric piezoelectric sensors/ actuators to generate and measure specific guided waves. The aim of the application is to detect mechanical flaws on complex composite and alloy structures to quantify efficiently the global structures' reliability. The study begins by a physical and analytical analysis of a piezoelectric patch. To preserve the structure's integrity, the transducers are directly pasted onto the surface which leads to a critical issue concerning the interfacing layer. In order to improve the reliability and mitigate the influence of the interfacing layer, the global equations of piezoelectricity are coupled with a load transfer model. Thus we can determine precisely the shear strain developed on the surface of the structure. To exploit the generated signal, a high precision analog charge amplifier coupled to a double T notch filter were designed and scaled. Finally, a novel joined time-frequency analysis based on a wavelet decomposition algorithm is used to extract relevant structures signatures. Finally, this paper provides examples of application on aircraft structure specimens and the feasibility of the system is thus demonstrated.
机译:使用无创方法进行结构健康监控是航空制造商在此十年中面临的主要挑战之一。我们在该领域的工作重点是毫米波压电传感器/执行器的开发和系统集成,以生成和测量特定的导波。该应用程序的目的是检测复杂的复合材料和合金结构上的机械缺陷,以有效地量化整体结构的可靠性。该研究从对压电贴片的物理和分析分析开始。为了保持结构的完整性,将换能器直接粘贴到表面上,这会导致涉及接口层的关键问题。为了提高可靠性并减轻接口层的影响,将压电性的全局方程式与载荷传递模型耦合。因此,我们可以精确地确定在结构表面上产生的剪切应变。为了利用产生的信号,设计并缩放了与双T陷波滤波器耦合的高精度模拟电荷放大器。最后,基于小波分解算法的新型时频分析方法用于提取相关结构特征。最后,本文提供了在飞机结构标本上的应用实例,从而证明了该系统的可行性。

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