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首页> 外文期刊>International Journal of Solids and Structures >Theoretical modeling of guided wave propagation in a sandwich plate subjected to transient surface excitations
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Theoretical modeling of guided wave propagation in a sandwich plate subjected to transient surface excitations

机译:瞬态表面激励作用下夹层板中导波传播的理论模型

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摘要

A fast and efficient two-dimensional (2D) semi-analytical model based on global matrix method is developed to study the general characteristics of guided wave propagation in a honeycomb composite sandwich structure (HCSS) subjected to time-dependent transient surface excitations. The HCSS used in this study has an extremely lightweight and thick nomex honeycomb core, which is sandwiched between two thin graphite woven composite skins. The homogenized material properties of the skin and the core are considered to be elastic and quasi-isotropic in nature. Far-field time history of surface displacements are calculated for vertical and horizontal tone-burst surface excitations that are representative of thickness and radial mode of vibrations of piezoelectric transducers, respectively. Results are compared with those obtained from Finite element modeling (FEM) in LS-DYNA showing good agreement. Wavelet transform is then performed on the time-domain signal to obtain the group velocities of the propagating modes for their accurate identification on the basis of the theoretical dispersion curve. It is found that the response signal is dominated by the first anti-symmetric mode for a vertical excitation, whereas, the signal characteristics are multimodal in nature with dominating higher order symmetric and anti-symmetric modes for a horizontal excitation. The model is expected to be helpful for appropriate guided wave mode tuning and rapid analysis of data for experimental detection of disbonds in these novel structures.
机译:建立了基于全局矩阵方法的快速,高效的二维(2D)半解析模型,以研究导波在蜂窝复合材料夹心结构(HCSS)中的时变瞬态表面激励作用下的一般传播特性。在这项研究中使用的HCSS具有非常轻巧和厚实的nomex蜂窝芯,该芯夹在两个薄石墨编织复合表皮之间。皮肤和核心的均质材料性质被认为是弹性的和准各向同性的。针对垂直和水平音爆裂表面激励计算表面位移的远场时程,分别代表压电换能器的振动厚度和径向模式。将结果与从LS-DYNA中的有限元建模(FEM)获得的结果进行了比较,显示出很好的一致性。然后对时域信号进行小波变换,以获得传播模式的群速度,以便根据理论频散曲线对其进行准确识别。已经发现,对于垂直激励,响应信号由第一反对称模式主导,而对于水平激励,信号特性本质上是多模态,而对高阶对称和反对称模式则主导。预计该模型将有助于适当的导波模式调整和数据的快速分析,以用于实验检测这些新型结构中的胶结物。

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