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Dielectric response measurement of oil-paper insulation based on system identification and its time-frequency-domain conversion method

机译:基于系统辨识的油纸绝缘介电响应测量及其时频域转换方法

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摘要

Dielectric response testing is a non-destructive insulation testing method that is widely used for assessing insulation properties. Time-and frequency-domain dielectric spectra are closely dependent on insulation conditions. In comparison with the time-domain spectrum, the frequency-domain dielectric response under sweep sinusoidal excitation has a stronger anti-interference capability and a more comprehensive insulation information. However, the wide application of the measurement using the frequency-domain dielectric response under sweep sinusoidal excitation is hindered by its long testing time. A possible solution is obtaining the frequency-domain spectrum by transforming the tested time-domain spectrum, such that the time- and frequency-domain spectra can be obtained in one measurement. Polarization depolarizing current measurement under DC excitation is a common time-domain testing method for time-frequency-domain conversion. However, such conversion is valid only at extremely low frequencies (less than 0.05 Hz), indicating a slight overlap with the frequency range of the measurement using the frequency-domain dielectric response under sweep sinusoidal excitation. Moreover, the effective conversion frequency range cannot be controlled manually, and the measurement using time-domain dielectric response under DC excitation is hindered by the anti-interference capability due to micro polarization-depolarization current. In addition, scholars have found nonlinearity in a partial insulation system. As the bridge of the traditional time-frequency-domain conversion, a linear extended Debye model cannot accurately reflect insulation materials that exhibit nonlinear characteristics, thereby further limiting the application scope of time-frequency-domain conversion. This study introduces the system identification theory to demonstrate the problems existing in the traditional time-frequency-domain conversion and proposes an improved time-domain testing method based on the previous work. The improved method extends the effective frequency range of time-frequency-domain conversion and emphasizes the comprehensive analysis of the insulation by combining the measured time-domain spectrum and the frequency-domain spectrum conversed from time-domain data.
机译:介电响应测试是一种无损绝缘测试方法,已广泛用于评估绝缘性能。时域和频域介电谱与绝缘条件密切相关。与时域频谱相比,扫描正弦激励下的频域介电响应具有更强的抗干扰能力和更全面的绝缘信息。但是,由于扫描时间长,因此在扫描正弦激励下使用频域介电响应进行测量的广泛应用受到了阻碍。一种可能的解决方案是通过变换测试的时域频谱来获得频域频谱,以便可以在一次测量中获得时域频谱和频域频谱。直流激励下的极化去极化电流测量是用于时频域转换的常见时域测试方法。但是,这种转换仅在极低的频率(小于0.05 Hz)下才有效,这表明与在扫描正弦激励下使用频域介电响应的测量频率范围略有重叠。此外,有效的转换频率范围不能手动控制,并且由于微极化-去极化电流而导致的抗干扰能力阻碍了在DC激励下使用时域介电响应的测量。此外,学者们发现局部绝缘系统中存在非线性。线性扩展德拜模型作为传统时频变换的桥梁,不能准确反映具有非线性特性的绝缘材料,从而进一步限制了时频变换的应用范围。本研究介绍了系统识别理论,以证明传统时频域转换中存在的问题,并在此基础上提出了一种改进的时域测试方法。改进后的方法扩展了时频域转换的有效频率范围,并通过结合测得的时域频谱和从时域数据反过来的频域频谱,对绝缘进行了综合分析。

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