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Inverse Viscoelastic Material Characterization Using Pod Reduced-order Modeling In Acoustic-structure Interaction

机译:声学-结构相互作用中使用Pod降阶建模的逆粘弹性材料表征

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摘要

A strategy is presented for applying the proper orthogonal decomposition (POD) technique for model reduction in computational inverse solution strategies for viscoelastic material characterization. POD is used to derive a basis of optimal dimension from a selection of possible solution fields which are generated through a traditional acoustic-structure interaction finite element model for a given vibroacoustic experiment. The POD bases are applied with the Galerkin weak-form finite element method to create a reduced-order numerical model with decreased computational cost, but which still maintains accuracy close to that of the original full-order finite element model. The reduced-order model is then combined with a global optimization technique to identify estimates to the viscoelastic material properties of a fluid immersed solid from vibroacoustic tests. A strategy is also presented to select the viscoelastic parameters of the initial full-order analyses used to create the POD bases. The selection process is shown through an example to maximize the generalization capabilities of the reduced-order model over the material search space for a minimal number of full-order analyses. Two examples are then presented in which the parameters of rheological viscoelastic models are identified for solids immersed in water, which are subject to a steady-state harmonic pressure while the acoustic response is measured at a point in the surrounding fluid. The POD reduced-order models were able to generalize over the material search domains for the inverse problems. Therefore, the reduced-order solution strategy was capable of identifying accurate estimates to the viscoelastic behavior of the solids with minimal computational expense.
机译:提出了一种策略,用于在粘弹性材料表征的计算逆解策略中应用适当的正交分解(POD)技术简化模型。 POD用于从可能的解决方案选择中得出最佳尺寸的基础,这些解决方案是通过给定的振动实验通过传统的声学-结构相互作用有限元模型生成的。 POD基与Galerkin弱形式有限元方法一起使用,以创建具有降低的计算成本的降阶数值模型,但仍保持接近原始全阶有限元模型的精度。然后将降阶模型与全局优化技术结合起来,以根据振动声学测试确定对流体浸没固体的粘弹性材料特性的估计。还提出了一种策略,用于选择用于创建POD基础的初始全序分析的粘弹性参数。通过一个示例显示了选择过程,该过程可在材料搜索空间上最大化降阶模型的泛化能力,以进行最少数量的全阶分析。然后给出了两个例子,其中确定了浸没在水中的固体的流变粘弹性模型的参数,这些参数经受稳态谐波压力,同时在周围流体中的一点处测量声学响应。 POD降阶模型能够针对逆问题在物料搜索域中进行概括。因此,降阶求解策略能够以最小的计算费用确定对固体粘弹性行为的准确估计。

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