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New signal processing approach for structural health monitoring in noisy environments based on impedance measurements

机译:基于阻抗测量的嘈杂环境中结构健康监测的新信号处理方法

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摘要

The electro-mechanical impedance (EMI) technique is one of the most promising structural health monitoring (SHM) approaches for material damage detection, which is based on impedance measurements of low-cost piezoelectric transducers. However, numerous practical issues such as signal noise effects caused by environmental conditions can alter signal measurements and limit the capabilities of the EMI technique when the characterization of damage is performed using conventional basic indices. Therefore, this paper proposes a new index for structure feature extraction based on the cross-correlation signal processing technique that can be applied in real noisy environment. The proposed index was evaluated in the frequency domain, where the damage detection is performed directly on the electrical impedance measurements of the transducer, as well as on the time domain, which is based on the wavelet transform applied to the transducer response signal. Experimental tests were carried out on a damaged aluminium structure subject to various signal noise levels. Experimental results revealed that the proposed approach for material feature extraction under noisy environments proved to be effective for detecting damage, thus enhancing the reliability and expanding the applicability of the EMI technique. (C) 2019 Elsevier Ltd. All rights reserved.
机译:机电阻抗(EMI)技术是最有前途的结构健康监测(SHM)方法之一,用于材料损伤检测,这是基于低成本压电换能器的阻抗测量。然而,诸如由环境条件引起的信号噪声效应的许多实际问题可以改变信号测量并限制EMI技术的能力,当使用传统的基本指数执行损坏的表征时。因此,本文提出了基于可以在真正嘈杂环境中应用的互相关信号处理技术的结构特征提取的新索引。在频域中评估所提出的索引,其中损坏检测直接执行换能器的电阻抗测量,以及在基于施加到换能器响应信号的小波变换的时域。实验测试在受到各种信号噪声水平的受损铝结构上进行。实验结果表明,噪声环境下的材料特征提取方法证明是有效的检测损坏,从而提高了EMI技术的可靠性和扩大适用性。 (c)2019年elestvier有限公司保留所有权利。

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