含模型降阶的碳纤维布层合板主要波传播特性的数值分析

IF 1.3 Q3 ACOUSTICS Acoustics (Basel, Switzerland) Pub Date : 2022-06-25 DOI:10.3390/acoustics4030032
A. Mikhaylenko, N. Rauter, Nanda Kishore Bellam Muralidhar, Tilmann Barth, D. Lorenz, R. Lammering
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引用次数: 4

摘要

导向超声波适用于薄壁板状结构的结构健康监测。因此,观察波浪在板中的传播可以提供结构中是否发生损坏的指示。在这项工作中,研究了由薄钢箔和碳纤维增强聚合物层组成的纤维-金属层压板中的波传播,重点研究了波的主要传播特性,如色散图和位移场。为此,首先确定从分析框架和数值模拟中导出的色散图,并相互比较。接下来,使用全局矩阵方法计算两个激励频率的位移场。从分析框架得出的结果用于验证基于2D和3D建模方法的数值确定的位移场。对于这两项研究,分析处理和数值模拟的结果显示出良好的一致性。此外,位移场揭示了薄壁结构中导波传播的典型和众所周知的特征。由于全3D模型的使用涉及非常高的计算成本,这项工作还成功地研究了模型阶数减少的可能性,以在不损失精度的情况下减少模拟的计算时间和成本。
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Numerical Analysis of the Main Wave Propagation Characteristics in a Steel-CFRP Laminate Including Model Order Reduction
Guided ultrasonic waves are suitable for use in the context of structural health monitoring of thin-walled, plate-like structures. Hence, observing the wave propagation in the plates can provide an indication of whether damage has occurred in the structure. In this work, the wave propagation in fiber metal laminate consisting of thin steel foils and layers of carbon fiber-reinforced polymer is studied, focusing on the main propagation characteristics like dispersion diagrams and displacement fields. For this purpose, the dispersion diagrams derived from the analytical framework and numerical simulations are first determined and compared to each other. Next, the displacement fields are computed using the global matrix method for two excitation frequencies. The results derived from the analytical framework is used to validate the numerically determined displacement fields based on a 2D and a 3D modeling approach. For both investigations the results of the analytical treatment and the numerical simulation show good agreement. Furthermore, the displacement field reveals the typical and well-known characteristics of the propagation of guided waves in thin-walled structures. Since the use of full 3D models involves a very high computational cost, this work also successfully investigates the possibility for model order reduction to decrease the computational time and costs of the simulation without the loss of accuracy.
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来源期刊
CiteScore
3.70
自引率
0.00%
发文量
0
审稿时长
11 weeks
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