• DocumentCode
    1368017
  • Title

    Wavelet Packet Transform-Based Power Quality Indices for Balanced and Unbalanced Three-Phase Systems Under Stationary or Nonstationary Operating Conditions

  • Author

    Morsi, Walid G. ; El-Hawary, M.E.

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Univ. of New Brunswick, Fredericton, NB, Canada
  • Volume
    24
  • Issue
    4
  • fYear
    2009
  • Firstpage
    2300
  • Lastpage
    2310
  • Abstract
    Three-phase power-quality indices (PQIs) can be used to quantify and hence evaluate the quality of the electric power system (EPS) waveforms. The recommended PQIs are defined based on the fast Fourier transform (FFT) which can only provide accurate results in case of stationary waveforms, however in case of nonstationary waveforms even under sinusoidal operating conditions, the FFT produces large errors due to spectral leakage phenomenon. Moreover, FFT is incapable of providing any time-related information which is a required property when dealing with time-evolving waveforms since it can provide only an amplitude-frequency spectrum. Since wavelet packet transform (WPT), which is a generalization of the wavelet transform, can represent EPS waveforms in a time-frequency domain, it is used in this study to define and formulate three-phase PQIs. In order to handle the unbalanced three-phase case, the concept of equivalent voltage and current is used to calculate those indices. The results of four numerical examples considering stationary and nonstationary, balanced and unbalanced three-phase systems in sinusoidal and nonsinusoidal situations indicate that the new WPT-based PQIs are closer to the true values. In addition, phase and overall crest factors are redefined in the time-frequency domain using WPT while a new crest factor is introduced in this paper. The redefined crest factors and the new crest factor help identifying and quantifying the waveform impact based on the time-frequency information obtained from the WPT. New crest factor can only be determined via WPT, which proves the powerful of this method and its suitability to define three-phase PQIs in nonstationary operating conditions.
  • Keywords
    fast Fourier transforms; power supply quality; wavelet transforms; amplitude-frequency spectrum; balanced three-phase system; electric power system waveform; fast Fourier transform; nonstationary operating condition; sinusoidal operating condition; spectral leakage phenomenon; stationary waveform; three-phase power-quality indices; time-frequency domain; unbalanced three-phase system; wavelet packet transform; Fast Fourier transforms; Flexible AC transmission systems; Power quality; Power system transients; Time frequency analysis; Uninterruptible power systems; Voltage; Wavelet domain; Wavelet packets; Wavelet transforms; Nonstationary waveforms; power-quality (PQ) indices (PQIS); three-phase systems; wavelet packet transform (WPT);
  • fLanguage
    English
  • Journal_Title
    Power Delivery, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8977
  • Type

    jour

  • DOI
    10.1109/TPWRD.2009.2027496
  • Filename
    5235770