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Parameterization of Spatial Ultrasonic Wavefront via Laser Ultrasonic Technique

机译:通过激光超声技术对空间超声波前进行参数化

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Ultrasonic wavefield imaging (UWI) provides insightful spatial information about ultrasonic wave propagation in 2D space. The guided waves propagate with unique patterns in relation to the wave speed and boundary condition for 2D (plate-like) structures. In both isotropic and anisotropic materials, the wavefronts of the incident and reflected waves propagate with unique curves that are distinguishable with UWI. These curve patterns are representable by, and similar to, parameterized polar curves in 2D geometric space. In this paper, several parametric curves (circular, hyperbolic, and cyclic-harmonic curves) were considered. The respective parameters of the parametric curve were set to obtain the closest curve pattern to the wavefront pattern. Then, the 2D laser mirror scanner performed the scanning pattern according to the Cartesian coordinates calculated by the parametric equation as coded into the laser ultrasonic interrogation system (LUIS). An aluminum plate and a cross-ply CFRP plate were used in this paper. The laser scanning patterns of circle, hyperbola, and cyclic-harmonic curve were considered on the aluminum and CFPR plates. Then, the signal responses were plotted as a UWI in angle vs. time domain. The results show that the circular and cyclic-harmonic scanning patterns can tune the incident wavefronts of the aluminum plate and the CFRP plate to arrive at the same arrival times along the scanning path respectively. The hyperbolic scanning pattern demonstrated also the ability to tune the reflected wavefronts to arrive at the same arrival times. With these parameters of the parametric curve, the proposed method may serve an alternative approach for sensing placement implementation in SUM applications. Future work will consider studying the 2D frequency response of the measured ultrasounds in angle vs. time domain to investigate the possible features for damage diagnosis strategies development.
机译:超声波波场成像(UWI)提供有关2D空间中超声波传播的深入洞察的空间信息。导波以与2D(板状)结构的波速和边界条件有关的独特模式传播。在各向同性和各向异性材料中,入射波和反射波的波阵面都以独特的曲线传播,这是UWI可以区分的。这些曲线图案可由2D几何空间中的参数化极坐标曲线表示并与之类似。在本文中,考虑了一些参数曲线(圆形,双曲线和循环谐波曲线)。设置参数曲线的各个参数以获得与波前图案最接近的曲线图案。然后,二维激光镜扫描仪根据由参数方程式计算出的笛卡尔坐标执行扫描图案,该笛卡尔坐标被编码到激光超声询问系统(LUIS)中。本文使用铝板和交叉CFRP板。在铝板和CFPR板上考虑了圆,双曲线和周期谐波曲线的激光扫描图案。然后,将信号响应绘制为角度与时域的UWI。结果表明,圆形和周期性谐波扫描图案可以调谐铝板和CFRP板的入射波前,分别沿着扫描路径到达相同的到达时间。双曲线扫描模式还展示了调节反射波前以达到相同到达时间的能力。利用参数曲线的这些参数,所提出的方法可以用作在SUM应用中感测放置实现的替代方法。未来的工作将考虑在角度与时域之间研究被测超声的2D频率响应,以研究损伤诊断策略发展的可能特征。

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