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C~1-continuous time-domain spectral finite element for modeling guided wave propagation in laminated composite strips based on third-order theory

机译:基于三阶理论的C~1-连续时域谱有限元模拟层叠复合带材导波传播

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摘要

The model-based structural health monitoring techniques for composite structures based on guided waves demand fast and accurate computation of the wave propagation response. This article presents a computation-ally efficient and accurate time-domain spectral finite element to simulate ultrasonic guided wave propagation in laminated composite beam and infinite panel-type structures based on Levinson-Bickford-Reddy's refined third-order theory. The element has four degrees of freedom (DOFs) per node, irrespective of the number of layers in the laminate. The C1-continuity of the deflection as required by the theory is achieved by employing the generalized Hermite-type spectral Lobatto basis functions, developed recently by the authors, while the C0-continuous Lobatto basis functions interpolate the axial displacement and shear rotation. The governing equations are derived using Hamilton's principle. A detailed numerical study is performed to assess the new element's accuracy, efficiency, and convergence for free vibration, Lamb wave propagation of fundamental symmetric and anti-symmetric modes, and impact wave propagation of composite beams and infinite panels. The study reveals that the new spectral element predicts more accurate, faster converged, and efficient solutions than its conventional counterpart and other available C0-continuous spectral elements with a layer-independent number of DOFs for composite structures.
机译:基于模型的基于导波的复合材料结构健康监测技术需要快速准确地计算波传播响应。本文基于Levinson-Bickford-Reddy精细的三阶理论,提出了一种计算高效、精确的时域谱有限元,用于模拟层压复合梁和无限板式结构中的超声导波传播。该元件每个节点有四个自由度 (DOF),与层压板中的层数无关。该理论要求的挠度的C1连续性是通过采用作者最近开发的广义Hermite型谱Lobatto基函数实现的,而C0连续Lobatto基函数则插值轴向位移和剪切旋转。控制方程是使用汉密尔顿原理推导的。进行了详细的数值研究,以评估新单元在自由振动、基本对称和反对称模式的兰姆波传播以及组合梁和无限板的冲击波传播方面的精度、效率和收敛性。该研究表明,与传统的光谱元素和其他可用的 C0 连续光谱元素相比,新的光谱元素预测了更准确、更快收敛和高效的解决方案,这些元素具有与层无关的复合结构自由度数。

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