• DocumentCode
    890
  • Title

    Enhanced Fitting to Obtain an Accurate DC Response of Transmission Lines in the Analysis of Electromagnetic Transients

  • Author

    Ramirez, Adrian ; Iravani, Reza

  • Author_Institution
    CINVESTAV Campus, Guadalajara, Mexico
  • Volume
    29
  • Issue
    6
  • fYear
    2014
  • fDate
    Dec. 2014
  • Firstpage
    2614
  • Lastpage
    2621
  • Abstract
    This paper demonstrates the need for and provides an improved fitting of the line parameters when a wide range of frequencies with emphasis on the dc response is the objective. The improved fitting is based on a low-order fitting of a function error for each of the line parameters, that is, the characteristic admittance and propagation function, in the low-frequency range. The function error represents the difference between the analytical evaluation of the line parameters, that is, obtained from a frequency-dependent distributed parameters line model, and their initial rational approximation, for example, given by an electromagnetic transients software tool. The approximated function error, added to the initial rational approximation of the line parameters, provides the enhanced fitted line model. The enhanced fitting improves the dc response of the line and ensures numerical stability in time-domain simulations. This paper applies the proposed fitting approach to the universal line model for time-domain simulations. The simulation results by the enhanced fitting are validated by comparing the results with those obtained from a frequency-domain line model (FDLM). Two case studies are presented to illustrate the proposed fitting approach.
  • Keywords
    approximation theory; frequency-domain analysis; power system transients; power transmission lines; time-domain analysis; DC response; characteristic admittance; electromagnetic transients software tool; fitted line model; frequency-dependent distributed parameters line model; frequency-domain line model; function error; line parameters; low-frequency range; low-order fitting; numerical stability; propagation function; rational approximation; time-domain simulations; transmission lines; universal line model; Approximation methods; Fitting; Numerical models; PSCAD; Simulation; Software tools; Time-domain analysis; Electromagnetic transient analysis; Laplace transform; frequency-domain analysis; transmission-line model;
  • fLanguage
    English
  • Journal_Title
    Power Delivery, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8977
  • Type

    jour

  • DOI
    10.1109/TPWRD.2014.2338614
  • Filename
    6866927