• DocumentCode
    1553790
  • Title

    Radiation Characteristics of Antennas Embedded in a Medium With a Two-Temperature Electron Population

  • Author

    Mudaliar, Saba ; Sotnikov, Vladimir I.

  • Author_Institution
    Sensors Directorate, Air Force Res. Lab., Wright-Patterson AFB, OH, USA
  • Volume
    60
  • Issue
    10
  • fYear
    2012
  • Firstpage
    4545
  • Lastpage
    4555
  • Abstract
    It is well-known that low-frequency electromagnetic (EM) signals are heavily attenuated in a medium with dense electron population. All signals below the plasma frequency of the medium get cut off. If we create in this medium, a small population of relatively hot electrons the composite medium then supports low-frequency electrostatic oscillations known as electron acoustic waves (EAW) [e.g., Gary and Tokar, Phys. Fluids 28, 2439]. The dispersion relation of this composite medium shows that it supports EAW in the frequency band where EM signals are cut off. Thus, it is possible, in principle, to employ EAW to transmit signals across an overdense plasma medium. Our primary interest in this paper is to study the radiation characteristics of a source current distribution embedded in a half-space of our composite medium. To enable this, we derive the Green´s functions for our problem and, hence, study the radiation characteristics of antennas. When the source signal frequency is below the plasma frequency, only EAW exist in the composite medium, while only EM waves can exist in the free space above. We find that the far-zone radiation fields of any current distribution consist only of θ-polarized waves. Explicit expressions for the radiated fields are obtained for horizontally- and vertically-polarized Hertzian dipoles embedded in our composite medium. We, hence, find that in both cases the radiation patterns are skewed towards the horizon. In particular, we find that the radiation pattern of a horizontal dipole has two lobes as opposed to one in the underdense case.
  • Keywords
    antenna radiation patterns; EM signal; Green´s function; composite medium; dense electron population; electron acoustic waves; far zone radiation field; horizontal dipole; low frequency electromagnetic signal; low frequency electrostatic oscillation; overdense plasma medium; plasma frequency; radiation characteristics; radiation patterns; source current distribution; source signal frequency; vertically polarized Hertzian dipoles; Acoustic waves; Damping; Dispersion; Equations; Plasma sheaths; Vehicles; Communication blackout; Hertzian dipole; dispersion relation; electron acoustic waves; overdense plasma; radiation characteristics;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-926X
  • Type

    jour

  • DOI
    10.1109/TAP.2012.2207314
  • Filename
    6232448