Detection and Quantification of Asymmetrically Located Structural Damages by Mode Converted Guided Waves Using Piezo Electric Elements

MN Murthy Patnaik, K. Renji, KV Nagendra Gopal
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Abstract

Though damage identification using guided waves generated using ultrasonics is well proven, its usage for structural health monitoring poses difficulties. Piezo electric actuation and sensing overcomes this difficulty to some extent. In this work, usage of such guided waves for damage identification is investigated. Piezo electric wafer transducers are used for generating and sensing the guided waves. Presence of multiple modes and comparatively higher speeds of the guided waves throw up difficulties in damage identification. It is shown here that this problem can be addressed by considering different sensor location with respect to the damage with suitable interpretation of the results. Usage of fundamental antisymmetric (Ao) mode is found to be more suitable in localizing the damage compared to the fundamental symmetric (So) mode. Asymmetrically located damage causes mode conversion. It is demonstrated in this work that the mode converted guided wave (So) could be advantageously used for identification, localization, and quantification of the damage. Damage identification and localization schemes are evolved based on the location of the sensors with respect to the damage. It is shown that the reduction in the magnitude of the mode converted wave can be utilized for assessing the depth of the damage. 3D finite element based numerical models incorporating a PZT sensor are developed and validated with experimental results in terms of the characteristics of the waves, mode conversion due to damage and influence of the defect size on the received signals which are necessary for quantification of the damage.
基于压电元件的模态转换导波非对称定位结构损伤检测与量化
虽然利用超声波产生的导波进行损伤识别已经得到了很好的证明,但它在结构健康监测中的应用存在困难。压电致动与传感在一定程度上克服了这一困难。在这项工作中,研究了这种导波在损伤识别中的应用。压电晶圆换能器用于产生和感应导波。多模态和较高的导波速度给损伤识别带来了困难。这表明,这个问题可以通过考虑不同的传感器位置相对于损伤与结果的适当解释来解决。与基对称模态相比,基反对称模态更适合于损伤的局部定位。不对称位置的损伤导致模式转换。研究表明,模态转换导波可以很好地用于损伤的识别、定位和量化。损伤识别和定位方案是基于传感器相对于损伤的位置而发展的。结果表明,模态转换波幅度的减小可以用来评估损伤的深度。结合PZT传感器建立了基于三维有限元的数值模型,并通过实验结果验证了波的特性、由于损伤引起的模式转换以及缺陷尺寸对接收信号的影响,这些都是量化损伤所必需的。
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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