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Guided wave excitation and propagation in damped composite plates

机译:阻尼复合板中的导波激励和传播

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Guided wave attenuation in composites due to material damping is strong, anisotropic, and cannot be neglected. Material damping is a critical parameter in selection of a particular wave mode for long-range structural health monitoring in composites. In this article, a semi-analytical finite element approach is presented to model guided wave excitation and propagation in damped composite plates. The theoretical framework is formulated using finite element method to describe the material behavior in the thickness direction while assuming analytical expressions in the wave propagation direction along the plate. In the proposed method, the Kelvin-Voigt damping model using a complex frequency-dependent stiffness matrix is utilized to account for anisotropic damping effects of composites. Thus, the existing semi-analytical finite element approach is being extended to include material damping effect. Theoretical predictions are experimentally validated using scanning laser Doppler vibrometer measurements of guided wave propagation generated by a circular piezoelectric wafer active sensor transducer in a unidirectional carbon fiber reinforced polymer composite plate. The proposed method achieves good agreement with the experimental results.
机译:复合材料由于材料的阻尼而导致的导波衰减很强,各向异性并且不能忽略。材料阻尼是选择特定波浪模式以对复合材料进行长期结构健康监测的关键参数。在本文中,提出了一种半解析有限元方法来模拟阻尼复合板中的导波激励和传播。使用有限元方法建立理论框架,以描述材料在厚度方向上的行为,同时假设沿板的波传播方向的解析表达式。在所提出的方法中,利用复杂的频率相关刚度矩阵的Kelvin-Voigt阻尼模型来解释复合材料的各向异性阻尼效应。因此,现有的半解析有限元方法正在扩展为包括材料阻尼效应。理论预测是通过使用扫描激光多普勒振动计对单向碳纤维增强聚合物复合板中的圆形压电晶片有源传感器换能器产生的导波传播进行实验验证的。该方法与实验结果吻合良好。

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