Delrue Steven, Van Den Abeele Koen
Wave Propagation and Signal Processing Research Group, KU Leuven Kulak, E. Sabbelaan 53, 8500 Kortrijk, Belgium.
Ultrasonics. 2015 Dec;63:147-54. doi: 10.1016/j.ultras.2015.07.001. Epub 2015 Jul 15.
Interaction of ultrasonic guided waves with kissing bonds (closed delaminations and incipient surface breaking cracks) gives rise to nonlinear features at the defect location. This causes higher harmonic frequency ultrasonic radiation into the ambient air, often referred to as Nonlinear Air-Coupled Emission (NACE), which may serve as a nonlinear tag to detect the defects. This paper summarizes the results of a numerical implementation and simulation study of NACE. The developed model combines a 3D time domain model for the nonlinear Lamb wave propagation in delaminated samples with a spectral solution for the nonlinear air-coupled emission. A parametric study is conducted to illustrate the potential of detecting defect location, size and shape by studying the NACE acoustic radiation patterns in different orientation planes. The simulation results prove that there is a good determination potential for the defect parameters, especially when the radiated frequency matches one of the resonance frequencies of the delaminated layer, leading to a Local Defect Resonance (LDR).
超声导波与紧密结合(闭合分层和初始表面断裂裂纹)的相互作用会在缺陷位置产生非线性特征。这会导致更高谐波频率的超声辐射到周围空气中,通常称为非线性空气耦合发射(NACE),它可作为检测缺陷的非线性标记。本文总结了对NACE进行数值实现和模拟研究的结果。所开发的模型将用于分层样品中非线性兰姆波传播的三维时域模型与非线性空气耦合发射的频谱解相结合。通过研究不同取向平面中的NACE声辐射模式,进行了参数研究以说明检测缺陷位置、尺寸和形状的潜力。模拟结果证明,对于缺陷参数具有良好的确定潜力,特别是当辐射频率与分层层的共振频率之一匹配时,会导致局部缺陷共振(LDR)。