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An automatic optimal excitation frequency tracking method based on digital tracking filters for sandwiched piezoelectric transducers used in broken rail detection

机译:基于轨道检测中使用的夹层压电传感器的数字跟踪滤波器自动励磁频率跟踪方法

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摘要

Based on digital tracking filters and wireless communication technology, an automatic optimal excitation frequency tracking method for sandwiched piezoelectric ultrasonic transducers (SPUTs) is proposed. The proposed frequency tracking method uses a variable-step frequency search strategy and the optimal excitation frequency is determined by analyzing the receiving signals in time and frequency domains. Then the field test is carried out by the pitch-catch setup under different test distances: 50 m, 100 m, and 150 m. It is proved that compared with SPUTs excited at series resonance frequency, the FFT (Fast Fourier Transformation) amplitude, power spectrum density and Peak-to-Peak value are greatly improved and the maximum time-frequency energy becomes more concentrated when SPUTs are actuated at the optimal excitation frequency. Specially, the FFT amplitude, power spectrum density and Peak-to-Peak value can achieve the largest increase by 104.42%, 31.54%, 71.36%, respectively when the test distance is equal to 50 m. It can be concluded that the proposed frequency tracking method can efficiently track the optimal excitation frequency and be easy to achieve integration and automation. (C) 2018 Elsevier Ltd. All rights reserved.
机译:基于数字跟踪滤波器和无线通信技术,提出了一种自动最佳激励频率跟踪方法,用于夹层压电超声换能器(Sputs)。所提出的频率跟踪方法使用可变步进频率搜索策略,并且通过在时间和频域中分析接收信号来确定最佳激励频率。然后,现场测试是通过在不同的测试距离下的间距设置进行:50米,100米和150米。据证明,与串联共振频率激发的丝状物相比,FFT(快速傅里叶变换)幅度,功率谱密度和峰值到峰值大大提高,并且当Sputs致动时,最大时频能量变得更加集中最佳励磁频率。特别地,当测试距离等于50μm时,FFT幅度,功率谱密度和峰值峰值值分别达到最大104.42%,31.54%,71.36%。可以得出结论,所提出的频率跟踪方法可以有效地跟踪最佳励磁频率,易于实现集成和自动化。 (c)2018年elestvier有限公司保留所有权利。

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