• DocumentCode
    1430718
  • Title

    Ray-density normalization for ray-optical wave propagation modeling in arbitrarily shaped tunnels

  • Author

    Didascalou, Dirk ; Schäfer, Thomas M. ; Weinmann, Frank ; Wiesbeck, Werner

  • Author_Institution
    Inst. fur Hochstfrequenztech. und Elektronik, Karlsruhe Univ., Germany
  • Volume
    48
  • Issue
    9
  • fYear
    2000
  • fDate
    9/1/2000 12:00:00 AM
  • Firstpage
    1316
  • Lastpage
    1325
  • Abstract
    This work is concerned with the calculation of natural electromagnetic (EM) wave propagation and the determination of the propagation channel characteristics in highway or railway tunnels in the ultrahigh-frequency (UHF) range and above (>300 MHz). A novel ray-tracing technique based on geometrical optics (GO) is presented. Contrary to classical ray tracing, where the one ray representing a locally plane wave front is searched, the new method requires multiple representatives of each physical EM wave at a time. The contribution of each ray to the total field at the receiver is determined by the proposed ray-density normalization (RBN). This technique has the further advantage of overcoming one of the major disadvantages of GO, the failure at caustics. In contrast to existing techniques, the new approach does not use ray tubes or adaptive reception spheres. Consequently, it does not suffer their restrictions to planar geometries. Therefore, it allows one to predict the propagation of high-frequency EM waves in confined spaces with curved boundaries, like tunnels, with an adequate precision. The approach is verified theoretically with canonical examples and by various measurements at 120 GHz in scaled tunnel models
  • Keywords
    UHF radio propagation; geometrical optics; land mobile radio; ray tracing; 120 GHz; EHF; HF EM wave propagation; UHF range; arbitrarily shaped tunnels; curved boundaries; dielectric boundaries; electromagnetic wave propagation; geometrical optics; high-frequency EM wave propagation; highway; image theory; measurements; mobile communications; perfectly conducting corrugated circular waveguide; plane wave front; propagation channel characteristics; railway tunnels; ray-density normalization; ray-optical wave propagation modeling; ray-tracing technique; receiver; scaled tunnel models; total field; ultrahigh-frequency; Electromagnetic propagation; Electromagnetic scattering; Geometrical optics; Geometry; Optical propagation; Optical receivers; Rail transportation; Ray tracing; Road transportation; UHF propagation;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-926X
  • Type

    jour

  • DOI
    10.1109/8.898764
  • Filename
    898764