饶显杰, 周凯, 谢敏, 刘力, 汪先进, 叶彬. 基于频域反射法的特征时域波形恢复技术[J]. 高电压技术, 2021, 47(4): 1420-1427. DOI: 10.13336/j.1003-6520.hve.20200507029
引用本文: 饶显杰, 周凯, 谢敏, 刘力, 汪先进, 叶彬. 基于频域反射法的特征时域波形恢复技术[J]. 高电压技术, 2021, 47(4): 1420-1427. DOI: 10.13336/j.1003-6520.hve.20200507029
RAO Xianjie, ZHOU Kai, XIE Min, LIU Li, WANG Xianjin, YE Bin. Recovery Technique of Characteristic Time Domain Waveform Based on Frequency Domain Reflection Method[J]. High Voltage Engineering, 2021, 47(4): 1420-1427. DOI: 10.13336/j.1003-6520.hve.20200507029
Citation: RAO Xianjie, ZHOU Kai, XIE Min, LIU Li, WANG Xianjin, YE Bin. Recovery Technique of Characteristic Time Domain Waveform Based on Frequency Domain Reflection Method[J]. High Voltage Engineering, 2021, 47(4): 1420-1427. DOI: 10.13336/j.1003-6520.hve.20200507029

基于频域反射法的特征时域波形恢复技术

Recovery Technique of Characteristic Time Domain Waveform Based on Frequency Domain Reflection Method

  • 摘要: 频域反射法(frequency domain reflection,FDR)是定位电缆局部缺陷和故障等阻抗不连续点的有效手段之一。为了解决传统频域反射法仅能用于阻抗不连续点的定位,而不能判断其阻抗变化情况的问题,提出了一种基于FDR的特征时域波形恢复技术,该时域波形可用于判断阻抗不连续点的阻抗变化情况。首先利用Nuttall窗的FFT插值计算方法对原有FDR的定位技术进行了改进;然后介绍了基于FDR的特征时域波形恢复技术的基本原理,并对其具体实施细节进行了研究;接着利用电缆仿真平台建立了阻抗不连续的电缆模型验证了该方法的有效性;最后将30 m的10 kV XLPE电力电缆进行了实验,利用中间接头作为1个阻抗不连续点,将该研究方法进行了测试,实测结果表明:该研究方法可以有效地定位电缆中阻抗不连续点的位置,并计算出其特征反射时域波形。

     

    Abstract: Frequency domain reflection(FDR) is one of the effective means to locate the impedance discontinuities of cable including local defects and faults. The traditional FDR method can only be used to locate the impedance discontinuity of cable but not to obtain the impedance variation state of the impedance discontinuity. Consequently, we put forward the recovery technique of characteristic time domain waveform based on FDR, and the time domain waveform can be used to obtain the impedance variation state of the impedance discontinuity. Firstly, the location algorithm of the traditional FDR method is improved through the FFT interpolation algorithm of the Nuttall window. Then, the basic principle of recovery technique of characteristic time domain waveform based on the FDR is introduced and the details are studied. Thirdly, the simulations of impedance discontinuity of cable are performed through the cable simulation platform, and the validity of the method is confirmed. Finally, a 30 m 10 kV XLPE power cable is adopted to perform experiments by the proposed technique, and the middle joint is an impedance discontinuity. The experimental results show that the proposed technique can locate the impedance discontinuity of cable and obtain the characteristic reflectometry time domain waveform.

     

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