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Time-Domain Hybrid Global-Local Prediction of Guided Waves Interaction with Damage

机译:导波与损伤相互作用的时域混合全局-局部预测

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This paper presents a hybrid finite element and analytical method to predict the 1-D guided wave propagation interaction with damage for nondestructive evaluation (NDE) and structural health monitoring (SHM) application. The finite element mesh is used to describe the region around the damage (defects or flaws). In contrast to other hybrid models developed elsewhere, the interaction between Lamb waves and defects is computed in the time domain using the explicit solver of the commercial finite element method (FEM) software ABAQUS. Analytical methods can perform efficient modeling of wave propagation but are limited to simple geometries. Realistic structures with complicated geometries are usually modeled with the FEM. However, to obtain an accurate wave propagation solution at ultrasonic frequencies is computationally intensive and may become prohibitive for realistic structures. In response to today's complex cases not covered by the simulation tools available, we aim to develop an efficient and accessible tool for SHM applications. This tool will be based on a hybrid coupling between analytical solutions and time domain numerical codes. Lamb wave interaction with a notch is investigated by using this method, and the results obtained are with respect to transmission, reflection and mode conversion. Because of the symmetric mode shape, S0 is more sensitive to the shallow notch than A0. By making use of the fact that the reflection increases with increase in notch depth and mode conversion are maximized when the notch is around half through the thickness of the plate, the reflection and conversion coefficients can be used to characterize the depth of the notch.
机译:本文提出了一种混合有限元和分析方法,以预测一维导波传播与损伤的相互作用,以进行无损评估(NDE)和结构健康监测(SHM)。有限元网格用于描述损坏(缺陷或缺陷)周围的区域。与在其他地方开发的其他混合模型相反,使用商业有限元方法(FEM)软件ABAQUS的显式求解器在时域中计算了Lamb波和缺陷之间的相互作用。分析方法可以对波传播进行有效的建模,但仅限于简单的几何形状。具有复杂几何形状的现实结构通常使用FEM建模。但是,在超声波频率下获得准确的波传播解需要大量的计算,并且可能对实际结构不利。为了应对当今可用的仿真工具未涵盖的复杂情况,我们旨在为SHM应用程序开发一种高效且可访问的工具。该工具将基于分析解决方案与时域数字代码之间的混合耦合。用这种方法研究了兰姆波与一个凹口的相互作用,得到的结果是关于透射,反射和模式转换的。由于对称模式的形状,S0比A0对浅槽口更敏感。通过利用这样的事实,即反射随着凹口深度的增加而增加,并且当凹口约为板厚度的一半时,模式转换将最大化,反射和转换系数可用于表征凹口的深度。

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