TY - JOUR
T1 - Characterization and Solution of Voltage and Current Waveform Distortion Based on Operating Point Fluctuation
AU - LI, Yang
AU - SONG, Guobing
AU - ZHANG, Yuxuan
N1 - Publisher Copyright:
© 2026 Power System Technology Press. All right reserved.
PY - 2026/1
Y1 - 2026/1
N2 - Under the trend of increased power electronics integration in power equipment, waveform distortion of voltage and current exhibits time-variability and randomness. Consequently, discrete frequency-based waveform characterization methods relying on a constant power frequency period and consistent distortion shape are unsuitable for practical engineering. This paper considers the power frequency voltage and current components as operating points. At the same time, waveform distortions are viewed as fluctuations at these points and are characterized by additional amplitude and phase fluctuations of the power frequency. The feasibility of characterizing harmonics, attenuated DC components, attenuated AC components, and their combinations using fluctuations at the operating point is demonstrated. The operating point is determined using a trust-region-reflective (TRR) method, and fluctuations are resolved using a designed Hilbert filter. Simulation results demonstrate that the proposed method achieves high accuracy in estimating power frequency components and amplitude-phase fluctuation parameters, while allowing flexible data length selection. Compared to methods based on Discrete Fourier Transform (DFT) and Wavelet Packet Transform (WPT), it offers advantages such as independence from synchronized sampling of complete cycles and higher distortion representation accuracy. Moreover, the method exhibits strong noise immunity. This method holds potential applications in analyzing waveform distortion issues at different time scales, such as harmonics and oscillations in the power system.
AB - Under the trend of increased power electronics integration in power equipment, waveform distortion of voltage and current exhibits time-variability and randomness. Consequently, discrete frequency-based waveform characterization methods relying on a constant power frequency period and consistent distortion shape are unsuitable for practical engineering. This paper considers the power frequency voltage and current components as operating points. At the same time, waveform distortions are viewed as fluctuations at these points and are characterized by additional amplitude and phase fluctuations of the power frequency. The feasibility of characterizing harmonics, attenuated DC components, attenuated AC components, and their combinations using fluctuations at the operating point is demonstrated. The operating point is determined using a trust-region-reflective (TRR) method, and fluctuations are resolved using a designed Hilbert filter. Simulation results demonstrate that the proposed method achieves high accuracy in estimating power frequency components and amplitude-phase fluctuation parameters, while allowing flexible data length selection. Compared to methods based on Discrete Fourier Transform (DFT) and Wavelet Packet Transform (WPT), it offers advantages such as independence from synchronized sampling of complete cycles and higher distortion representation accuracy. Moreover, the method exhibits strong noise immunity. This method holds potential applications in analyzing waveform distortion issues at different time scales, such as harmonics and oscillations in the power system.
KW - amplitude fluctuation
KW - fluctuation
KW - operating point
KW - phase fluctuation
KW - waveform distortion
UR - https://www.scopus.com/pages/publications/105040354519
U2 - 10.13335/j.1000-3673.pst.2024.1996
DO - 10.13335/j.1000-3673.pst.2024.1996
M3 - 文章
AN - SCOPUS:105040354519
SN - 1000-3673
VL - 50
SP - 1245
EP - 1254
JO - Dianwang Jishu/Power System Technology
JF - Dianwang Jishu/Power System Technology
IS - 3
ER -