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One-dimensional time-domain finite-element modelling of nonlinear wave propagation for non-destructive evaluation

机译:无损评估的非线性波传播的一维时域有限元建模

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摘要

This one-dimensional time-domain finite-element model achieves accurate quantitative modelling of ultrasonic wave propagation in multi-layered structures. First, a sinusoidal wave toneburst is sent into a single layer of material exhibiting inherent material nonlinearity characterised by the nonlinear parameter β and thick enough for the toneburst received in through transmission to be resolved. The signal processing protocol that yields the theoretically correct quantitative value of β involves measuring the received toneburst for several propagation distances as well as the use of scaling factors taking into account the fast Fourier transform implementation, input signal windowing and material damping. Using that model configuration, model parameters (element size, time step, frequency step, input pressure, etc.) are then optimised and chosen quantitatively to generate accurate results. Finally, these model parameters are used for cases of interest where the configuration is not such that the exact β value can be obtained - e.g. thinner sample, pulse-echo etc. but where confidence in the results remains. This quantitative model that can be used for multi-layered structures provides a tangible resource useful to NDE engineers: a new prediction tool expected to enable them to choose the experimental set-up, driving frequency and post-processing method that would optimise kissing bond detection capability.
机译:这种一维时域有限元模型可以实现对超声波在多层结构中传播的精确定量建模。首先,将正弦波音频突发发送到单层材料,该材料表现出固有的材料非线性,其特征在于非线性参数β,并且其厚度足以解决通过传输接收的音频突发。产生理论上正确的β定量值的信号处理协议,包括在几个传播距离上测量接收到的音频突发,并考虑到快速傅里叶变换的实现,输入信号窗口化和材料阻尼,使用缩放因子。然后使用该模型配置优化模型参数(元素大小,时间步长,频率步长,输入压力等),并进行定量选择以生成准确的结果。最后,这些模型参数用于配置不理想的情况下,无法获得确切的β值-例如较薄的样品,脉冲回波等,但仍对结果充满信心。这种可用于多层结构的定量模型为NDE工程师提供了切实的资源:一种新的预测工具,有望使他们能够选择实验设置,驱动频率和后处理方法,从而优化接吻键的检测能力。

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