Numerical Investigation of Ultrasonic Phased Array Reverse Time Migration Technique Considering Spatial Wave Characteristics

Shulong Zhou, Yanfeng Shen
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Abstract

This paper presents a systematic numerical research on ultrasonic phased array reverse time migration technique for damage evaluation in bulk materials. In this study, a thick aluminum bulk is used as the target structure to be tested, and an ultrasonic phased array composed of piezoelectric elements and damping blocks is prosed as the transducers for generating and receiving elastic waves. Firstly, a Finite Element Model (FEM) of a pair of transducers is established to study the wave generation and reception performance. In particular, the suppression effect of different backing material parameters (damping ratio, thickness, implementation details) on the piezo-elements to absorb excessive resonant vibrations is investigated, in order to send out and receive spatially squeezed mechanical pulses into the target medium. Then, a full-scale FEM is established with the complete probe set and typical structural damage types to understand the wave propagation and its interaction with damage. Both longitudinal (L) and shear (S) waves are studied, while they interact with a hole and cracks with different orientations with respect to the incident wave direction. Finally, the reverse time migration algorithm is further developed by considering the spatial wave characteristics. The amplitude variation along the propagation distance is taken into account to form a time/space-gain compensation function to improve the damage imaging quality and sensitivity, especially for far field damage sites. At the same time, the imaging algorithm is tested for the single L-wave, the single S-wave, and the fused LS-wave scenarios. It was found that the combination of L-mode and S-mode can significantly improve the damage imaging results. This numerical investigation may lay a solid foundation for the development of ultrasonic phased array technique for non-destructive evaluation (NDE) of bulky materials. This paper ends with a summary, concluding remarks, and suggestions for future work.
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考虑空间波特性的超声相控阵逆时偏移技术数值研究
本文对用于块状材料损伤评估的超声相控阵逆时迁移技术进行了系统的数值研究。本研究采用厚铝体作为待测目标结构,采用压电元件和阻尼块组成的超声相控阵作为产生和接收弹性波的换能器。首先,建立了一对换能器的有限元模型,研究了换能器的波形产生和接收性能。特别地,研究了不同的衬底材料参数(阻尼比、厚度、实现细节)对压电元件吸收过量共振振动的抑制作用,从而在目标介质中发送和接收空间压缩的机械脉冲。然后,利用完整的探针集和典型的结构损伤类型建立全尺寸有限元模型,了解波的传播及其与损伤的相互作用。纵波(L)和横波(S)都被研究,当它们与相对于入射波方向的不同方向的孔和裂缝相互作用时。最后,在考虑空间波特性的基础上,进一步发展了逆时偏移算法。考虑了振幅沿传播距离的变化,形成了时间/空间增益补偿函数,以提高损伤成像质量和灵敏度,特别是对于远场损伤点。同时,对该成像算法在单l波、单s波和融合ls波场景下进行了测试。结果发现,l -模和s -模结合可以显著改善损伤成像效果。本文的数值研究为超声相控阵技术在块状材料无损检测中的应用奠定了坚实的基础。最后对全文进行了总结、结束语和对今后工作的建议。
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