Pulsed Reflection and Transmission for a Dispersive Half Space

Abstract

One-dimensional propagation of a normally incident, pulsed (finite-cycle sine), electromagnetic plane wave on an isotropic, spatially homogeneous, Lorentz half space is investigated analytically. Detailed examinations of the reflected and transmitted fields are made. The inversion integral for the time-domain reflected field is expressed in terms of pole contributions and branch-cut integrals, which are computed numerically; whereas the uniform asymptotic methodology of Oughstun and Sherman is applied to the transmitted field. Only the contributions from the distant saddle points to the transmitted field are studied thoroughly. An example is provided that shows that the reflection and transmission coefficients may not be ignored. Specifically, for Brillouin's choice of the medium's physical parameters, the reflected field has a peak value that is 21% of the incident field's amplitude and that corresponds to a 21% decrease in the main signal (pole contributions) of the transmitted field when the transmission coefficient is unity. This work generalizes past formulations by accounting for reflection from the medium and by addressing how inclusion of frequency-dependent transmission and reflection coefficients affects the fields.

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Document Details

Document Type
Technical Report
Publication Date
Jun 29, 1998
Accession Number
ADA350007

Entities

People

  • Eric L. Mokole
  • Surendra N. Samaddar

Organizations

  • United States Naval Research Laboratory

Tags

Communities of Interest

  • Air Platforms

DTIC Thesaurus Topics

  • Amplitude
  • Carrier Frequencies
  • Coefficients
  • Complex Variables
  • Frequency
  • Frequency Domain
  • Inclusions
  • Integrals
  • Inversion
  • Leading Edges
  • Military Research
  • Peak Values
  • Plane Waves
  • Refractive Index
  • Three Dimensional
  • Time Domain
  • Two Dimensional

Fields of Study

  • Physics

Readers

  • Electromagnetic Wave Scattering and Antenna Radiation Engineering

Technology Areas

  • Space