• DocumentCode
    1549870
  • Title

    Exact SLF/ELF Underground HED Field Strengths in Earth-Ionosphere Cavity and Schumann Resonance

  • Author

    Wang, Yuan-Xin ; Jin, Rong-Hong ; Geng, Jun-Ping ; Liang, Xian-Ling

  • Author_Institution
    Shanghai Jiao Tong Univ., Shanghai, China
  • Volume
    59
  • Issue
    8
  • fYear
    2011
  • Firstpage
    3031
  • Lastpage
    3039
  • Abstract
    Electromagnetic wave radiation from a SLF/ELF underground horizontal electric dipole (HED) related to seismic activity is discussed. In order to estimate the effects on the electromagnetic waves associated with the seismic activity, SLF/ELF waves radiated from a possible seismic current source modeled as a electric dipole, are precisely computed by using a speeding numerical convergence algorithm. In 1999, Barrick proposed an algorithm, which was only suitable to solve the electromagnetic problems under the ideal electric conductor condition. To solve the problems under the non-ideal electric conductor condition, we have further developed Barrick´s method and proposed a speeding numerical convergence algorithm. The variations of the electromagnetic field along the propagation distance and the altitude, as well as the frequency during day and night are analyzed and calculated. It takes 0.5 minute to calculate the sum of the series by my algorithm, while it needs 15 minutes by calculating directly the sum of the series. Our algorithm is compared with the calculation directly the sum of the series algorithm, and two algorithms agree with each other very well. Therefore, our algorithm is correct. Schumann resonance is also verified.
  • Keywords
    Earth-ionosphere waveguide; conductors (electric); electromagnetic wave propagation; seismic waves; Barrick method; Earth-Ionosphere Cavity; SLF-ELF underground HED field strength; SLF-ELF underground horizontal electric dipole field strength; Schumann Resonance; electric conductor condition; electromagnetic wave estimation; electromagnetic wave radiation; seismic activity; seismic current source; series algorithm; speeding numerical convergence algorithm; time 0.5 min; time 15 min; Cavity resonators; Earth; Electromagnetic fields; Geophysical measurement techniques; Ground penetrating radar; Ionosphere; Time domain analysis; Earth-ionosphere cavity; Schumann resonance; seismic activity; speeding numerical convergence;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-926X
  • Type

    jour

  • DOI
    10.1109/TAP.2011.2158952
  • Filename
    5871303