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An ultrasonic guided wave excitation method at constant phase velocity using ultrasonic phased array probes

机译:超声波相位阵列探针恒相速度的超声波引导波激励方法

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High-order ultrasonic guided wave modes have recently been attracting interest in a variety of nondestructive testing applications, ranging from thickness gauging to bond characterization. Accurate control of the transmitted ultrasonic guided wave mode is paramount when working at frequencies above the cutoff of the first high-order mode. The high number of modes available makes this range of frequency-thickness products difficult to exploit in practice. Many papers and textbooks have showed that multielement probes, such as comb transducers, are able to target a specific wavelength which depends on the elementary pitch. This method can be enhanced by adding an elementary delay law. However, this method of excitation has major drawbacks as the areas of excitation in a dispersion curves depends on the frequency and the technique is not unidirectional. This paper demonstrate that a conventional phased array transducer for which the elementary pitch is small relative to the targeted wavelength is able to excite high order guided wave modes at a constant phase velocity (independently of the frequency). The aim is to excite different regions of the dispersion curves by controlling the input signal bandwidth and the angle of the generated beam. The paper describes the theoretical background and details the differences between the various methods of excitation of ultrasonic guided waves, especially with the comb transducer method. Finite element simulations are presented to verify the analytical predictions and quantify the unidirectional and diffraction properties of the transmitted beam. Experiments conducted on an aluminum plate show striking agreement with finite element simulations, including the possibility of exciting a single mode in a narrow region at high frequency-thickness products. Experiments conducted on a CFRP plate demonstrates that the method can be adapted to other materials.
机译:高阶超声波引导波模式最近引起了各种非破坏性测试应用的兴趣,从厚度测量到结合表征。当在高于第一高阶模式的截止值上工作时,对传输超声引导波模式的精确控制是至关重要的。可用的大量模式使得该范围的频率厚度产品难以在实践中开发。许多论文和教科书已经表明,诸如梳子换能器的多元素探针能够瞄准取决于基本间距的特定波长。通过添加基本延迟法可以增强这种方法。然而,这种激励方法具有主要缺点,因为在色散曲线中的激发区域取决于频率,并且该技术不是单向的。本文证明,传统的相控阵换能器相对于目标波长小的基本间距很小,能够以恒定的相速(独立于频率)激发高阶导向波模式。目的是通过控制所产生的光束的输入信号带宽和角度来激发色散曲线的不同区域。本文介绍了理论背景和细节超声波引导波激励的各种激发方法之间的差异,尤其是梳形换能器方法。提出有限元模拟以验证分析预测并量化透射光束的单向和衍射特性。在铝板上进行的实验显示了与有限元模拟的引人注目的协议,包括在高频厚度产品的窄区域中激发单一模式的可能性。在CFRP板上进行的实验表明该方法可以适应其他材料。

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