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Shear horizontal wave excitation and reception with shear horizontal piezoelectric wafer active sensor (SH-PWAS)

机译:剪切水平压电晶片有源传感器(SH-PWAS)的剪切水平波激励和接收

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This article discusses shear horizontal (SH) guided-waves that can be excited with shear type piezoelectric wafer active sensor (SH-PWAS). The paper starts with a review of state of the art SH waves modelling and their importance in non-destructive evaluation (NDE) and structural health monitoring (SHM). The basic piezoelectric sensing and actuation equations for the case of shear horizontal piezoelectric wafer active sensor (SH-PWAS) with electromechanical coupling coefficient d35 are reviewed. Multiphysics finite element modelling (MPFEM) was performed on a free SH-PWAS to show its resonance modeshapes. The actuation mechanism of the SH-PWAS is predicted by MP-FEM, and modeshapes of excited structure are presented. The structural resonances are compared with experimental measurements and showed good agreement. Analytical prediction of SH waves was performed. SH wave propagation experimental study was conducted between different combinations of SH-PWAS and regular in-plane PWAS transducers. Experimental results were compared with analytical predictions for aluminium plates and showed good agreement. 2D wave propagation effects were studied by MP-FEM. An analytical model was developed for SH wave power and energy. The normal mode expansion (NME) method was used to account for superpositioning multimodal SH waves. Modal participation factors were presented to show the contribution of every mode. Power and energy transfer between SH-PWAS and the structure was analyzed. Finally, we present simulations of our developed wave power and energy analytical models.
机译:本文讨论了剪切型压电晶片有源传感器(SH-PWAS)可以激发的剪切水平(SH)导波。本文首先回顾了SH波建模的最新状态及其在无损评估(NDE)和结构健康监测(SHM)中的重要性。回顾了机电耦合系数为d35的剪切水平压电晶片有源传感器(SH-PWAS)的基本压电传感和驱动方程。在免费的SH-PWAS上进行了多物理场有限元建模(MPFEM),以显示其共振模态。通过MP-FEM预测了SH-PWAS的驱动机理,并给出了受激结构的振型。将结构共振与实验测量结果进行比较,并显示出良好的一致性。对SH波进行了分析预测。在SH-PWAS和常规面内PWAS换能器的不同组合之间进行了SH波传播实验研究。实验结果与铝板的分析预测值进行了比较,并显示出良好的一致性。通过MP-FEM研究了二维波的传播效应。建立了SH波功率和能量的分析模型。普通模式扩展(NME)方法用于解释多模态SH波的叠加。提出了模态参与因子以显示每种模式的贡献。分析了SH-PWAS与结构之间的功率和能量传递。最后,我们介绍了已开发的波浪功率和能量分析模型的仿真。

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