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Application of continuous wavelet transform to the impact location estimation of the Loose Parts Monitoring System (LPMS)

机译:连续小波变换在松动零件监测系统(LPMS)冲击位置估计中的应用

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The Loose Parts Monitoring System (LPMS) provides information on the location of a loosened or detached metal impacted onto the inner surface of a primary pressure boundary and on a mass or energy of the impact signal. For the conventional system, it is popular to employ the group delay among the sensors installed within 3 ft range from the impact source in a collection zone as stated in the Reg. Guide 1.133. However, there exist inherent errors for the estimation of the true location of the impact since it is highly dependent on the plant personnel's decision to determine the arrival time differences of the generated wave group among the neighbouring sensors. To overcome this problem in this study, the two-dimensional 'approach has been proposed and applied to effectively estimate the arrival time differences of the impact signal by using continuous wavelet transform which is one of the linear time-frequency analysis methqds. The experiment has been implemented on the plate model and the steam generator's lower part in a real plant using steel balls. It is expected that the reliability of the location estimation could be enhanced when the proposed time-frequency method is introduced into the LPMS system.
机译:松散零件监控系统(LPMS)提供有关撞击到主压力边界内表面上的松动或分离金属的位置以及撞击信号的质量或能量的信息。对于常规系统,如Reg中所述,在距撞击源3英尺范围内安装的传感器中,在收集区中采用群延迟是很普遍的。指南1.133。然而,由于其高度依赖于工厂人员确定相邻传感器之间所产生的波群的到达时间差的决定,因此存在用于估计冲击的真实位置的固有误差。为了克服本研究中的这一问题,提出了一种二维“方法”,并将其用于通过使用连续小波变换(它是线性时频分析方法之一)有效地估计碰撞信号的到达时间差。该实验已在使用钢球的真实工厂中的平板模型和蒸汽发生器的下部进行。预期将所提出的时频方法引入LPMS系统可以提高位置估计的可靠性。

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