估计结构构件色散关系的数据驱动建模技术

V. V. S. Malladi, M. Albakri, P. Tarazaga, S. Gugercin
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引用次数: 4

摘要

色散关系描述了弹性波在结构中传播的频率依赖性。由于材料的不均匀性、复杂的边界条件和被测结构的物理尺寸,实验确定结构部件(如建筑物的地板)的色散关系可能是一项繁琐的任务。在这项工作中,利用数据驱动的建模技术来重建预定频率范围内的色散关系。在一维光束上证明了这种方法的可行性,其中色散关系可以得到精确的解。在0-50kHz的频率范围内,用数值方法得到了波束的频响函数。然后,利用矢量拟合方法构建数据驱动的动力学模型,建立基于沿梁16个位置的模拟频响函数的状态空间模型。然后通过一系列数值模拟,利用该模型构建结构的色散关系。本文讨论的技术特别适用于既无法找到波动方程的解析解,又无法通过实验测量色散曲线的情况。在目前的工作中,实际的实验数据留给以后的工作,但这里给出了完整的框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data-Driven Modeling Techniques to Estimate Dispersion Relations of Structural Components
Dispersion relations describe the frequency-dependent nature of elastic waves propagating in structures. Experimental determination of dispersion relations of structural components, such as the floor of a building, can be a tedious task, due to material inhomogeneity, complex boundary conditions, and the physical dimensions of the structure under test. In this work, data-driven modeling techniques are utilized to reconstruct dispersion relations over a predetermined frequency range. The feasibility of this approach is demonstrated on a one-dimensional beam where an exact solution of the dispersion relations is attainable. Frequency response functions of the beam are obtained numerically over the frequency range of 0–50kHz. Data-driven dynamical model, constructed by the vector fitting approach, is then deployed to develop a state-space model based on the simulated frequency response functions at 16 locations along the beam. This model is then utilized to construct dispersion relations of the structure through a series of numerical simulations. The techniques discussed in this paper are especially beneficial to such scenarios where it is neither possible to find analytical solutions to wave equations, nor it is feasible to measure dispersion curves experimentally. In the present work, actual experimental data is left for future work, but the complete framework is presented here.
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