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Electromechanical impedance-based damage identification enhancement using bistable and adaptive piezoelectric circuitry

机译:基于机电阻抗的损伤识别增强使用双稳态和自适应压电电路

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摘要

The electromechanical impedance-based damage identification approaches have shown excellent potential in identifying small-sized structural defects, while maintaining simplicity in implementation. The available independent impedance measurement data sets, however, are generally far fewer than the number of required system parameters. As a result, the inverse problem for damage identification is seriously underdetermined, which undermines the reliability of damage prediction since the inverse solution becomes extremely sensitive to even small amount of error in the measurement, especially in practical applications with unavoidable noise and damping influences. This research aims to advance the state of the art by developing a novel approach that (a) enables highly accurate measurement of damage-induced impedance variations against noise and (b) fundamentally improves the underdetermined inverse problem to reliably identify the location and severity of small damages. This new approach utilizes the strongly non-linear bifurcation phenomena in bistable electrical circuits that may exhibit dramatic changes in the response due to small input variations. In this study, an array of bistable circuits is strategically integrated with the structure and piezoelectric transducer so that small damage-induced changes in the piezoelectric impedance can be accurately determined by monitoring whether each circuit exhibits intra- or inter-well responses. This measurement data set is greatly enriched by utilizing an adaptive piezoelectric circuitry with tunable inductor integrated with the monitored structure, which introduces more degrees of freedom into the system. By selectively tuning the inductance values, the dynamic characteristic of the electromechanically coupled system can be altered, thereby one can significantly increase the number of impedance variation measurements for the same damage profile. The enriched data set is utilized to fundamentally improve the underdetermined inverse problem for damage identification. A series of numerical and experimental damage identification studies verify that the proposed methodology can significantly enhance the accuracy and reliability of impedance-based damage identification.
机译:基于机电阻抗的损伤识别方法在识别小尺寸的结构缺陷的同时,在实施方面存在卓越的潜力。但是,可用的独立阻抗测量数据集通常少于所需系统参数的数量。结果,损坏识别的逆问题被认定为下列,这使得损坏预测的可靠性,因为逆溶液对测量中的少量误差变得非常敏感,尤其是在具有不可避免的噪声和阻尼影响的实际应用中。本研究旨在通过开发一种新的方法来推进现有技术,即(a)能够高精度地测量对噪声和(b)的损伤诱导的阻抗变化,从根本上改善了未确定的逆问题,以可靠地识别小的位置和严重程度赔偿。这种新方法利用了体弱电路中的强烈非线性分岔现象,其由于小的输入变化而可能表现出响应的显着变化。在该研究中,与结构和压电换能器策略性地集成了一系列双稳态电路,使得可以通过监测每个电路是否呈现间或间井间响应来精确地确定压电阻抗的小损伤引起的变化。通过利用具有与受监控结构集成的可调谐电感器的自适应压电电路大大富集了该测量数据集,这将更多程度的自由度引入系统中。通过选择性地调谐电感值,可以改变机电耦合系统的动态特性,从而可以显着增加相同损坏轮廓的阻抗变化测量的数量。富集的数据集用于从根本上改善有没有确定的损伤识别的反问题。一系列数值和实验损伤识别研究证实,所提出的方法可以显着提高基于阻抗的损伤识别的准确性和可靠性。

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