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Ringing Suppression for Ultrasonic Nondestructive Testing using Iterative Learning Control and H-infinity Synthesis

机译:迭代学习控制和H-无穷大合成的超声无损检测的振铃抑制

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In this work, the use of iterative learning control (ILC) in ringing suppression is assessed with the intention of generating precise ultrasonic wave pulses for nondestructive testing (NDT) purposes. The premise of ILC is that the performance of a system, which is repetitively executing the same task, can be improved by learning from previous attempts. In order to develop a systematic approach to the design of the L- and Q-filters for the ILC, a previously proposed H∞-synthesis method is employed. To this end, an experimental frequency analysis is conducted for commonly used ultrasound transducers, and a low-order model is fitted to the resulting data near the transducer's peak frequency. Based on this model, appropriate L- and Q-filters are synthesized and the ILC is trained to generate the desired wave packet. The simulation results indicate convergence of the proposed ILC algorithm, and thus generate the necessary driving trajectory. By taking the generated signal from simulation and using it as the driving signal in laboratory experiments, it is shown that ringing effects, i.e. distortions of the induced wave packets, are significantly reduced. The impact of such an improvement in the context of guided ultrasonic NDT is demonstrated through a time-of-flight experiment for edge detection, showing promising results and a positive starting point for future work.
机译:在这项工作中,评估了迭代学习控制(ILC)在振铃抑制中的使用,目的是生成用于无损检测(NDT)的精确超声波脉冲。 ILC的前提是,可以通过学习以前的尝试来提高重复执行同一任务的系统的性能。为了开发用于ILC的L和Q滤波器设计的系统方法,采用了先前提出的H∞合成方法。为此,对常用的超声换能器进行了实验频率分析,并将低阶模型拟合到换能器峰值频率附近的结果数据。基于此模型,可以合成适当的L和Q滤波器,并训练ILC以生成所需的波包。仿真结果表明了所提出的ILC算法的收敛性,从而产生了必要的驾驶轨迹。通过将模拟产生的信号用作实验室实验中的驱动信号,可以证明振铃效应,即感应波包的畸变被大大降低了。通过飞行时间边缘检测的飞行实验证明了这种改进对引导式超声NDT的影响,显示出令人鼓舞的结果和未来工作的积极起点。

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