• DocumentCode
    2193239
  • Title

    Error in propagation velocity due to staircase approximation of an inclined thin wire in FDTD surge simulation

  • Author

    Noda, Toshio ; Yonezawa, R. ; Yokoyama, Shiyoshi ; Takahashi, Y.

  • Author_Institution
    CRIEPI, Japan
  • fYear
    2004
  • fDate
    6-10 June 2004
  • Abstract
    Summary form only given. This paper presents the result of a study on the error in propagation velocity introduced by the staircase approximation of a thin wire in the FDTD surge simulation. The FDTD method directly solves Maxwell´s equations by discretizing the space of interest into cubic cells. Thus, it is suitable for solving very-fast surge phenomena, which cannot be dealt with by conventional techniques based on the circuit theories. However, FDTD has a limitation that the shape of a conductive object must be modeled by a combination of sides of cells with forced zero electric fields. This indicates that a thin wire, one of the most important components in the surge simulation, results in a staircase approximation, if it is not parallel to any of the coordinate axes used for the discretization. A staircase approximation gives a slower propagation velocity due to the zigzag path, which is longer than the actual length of the wire. For precise simulations, the error in propagation velocity has to be clarified quantitatively. In this paper, extensive simulations are carried out to obtain the velocity versus inclination characteristic, and it is deduced that the maximum error in propagation velocity is less than 14 %.
  • Keywords
    Maxwell equations; finite difference time-domain analysis; surge protection; wires (electric); FDTD method; FDTD surge simulation; Maxwell equation; discretization; inclined thin wire; propagation velocity; staircase approximation; Agriculture; Circuit simulation; Circuit theory; Finite difference methods; Maxwell equations; Shape; Space technology; Surges; Time domain analysis; Wire;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Power Engineering Society General Meeting, 2004. IEEE
  • Conference_Location
    Denver, CO
  • Print_ISBN
    0-7803-8465-2
  • Type

    conf

  • DOI
    10.1109/PES.2004.1372822
  • Filename
    1372822