Interaction between a transient plane wave and a conductive half-space.

A method which allows for the analytical evaluation of the interaction between a transient plane wave and a conductive half-space is presented. We assume that an electromagnetic plane wave is obliquely incident on a conducting half-space, which is modeled by a frequency independent permittivity and...

Full description

Bibliographic Details
Main Author: Pao, Hsueh-Yuan.
Other Authors: Dvorak, Steven
Language:en
Published: The University of Arizona. 1995
Online Access:http://hdl.handle.net/10150/187405
id ndltd-arizona.edu-oai-arizona.openrepository.com-10150-187405
record_format oai_dc
spelling ndltd-arizona.edu-oai-arizona.openrepository.com-10150-1874052015-10-23T04:34:19Z Interaction between a transient plane wave and a conductive half-space. Pao, Hsueh-Yuan. Dvorak, Steven Dudley, Donald Cangellaris, Andreas A method which allows for the analytical evaluation of the interaction between a transient plane wave and a conductive half-space is presented. We assume that an electromagnetic plane wave is obliquely incident on a conducting half-space, which is modeled by a frequency independent permittivity and conductivity. The general case of the electromagnetic plane wave is divided into two polarizations: transverse electric (TE) and transverse magnetic (TM). The time-domain expressions for the reflected and transmitted waves are first represented as inverse Laplace transforms. The transient fields are then shown to consist of two canonical integrals, f(β) and e(β)The canonical integrals, in turn, are solved analytically, thereby yielding closed-form solutions involving incomplete Lipschitz-Hankel integrals (ILHIs). The ILHIs are computed numerically using efficient convergent and asymptotic series expansions, thus enabling the efficient computation of the transient fields. The exact, closed-form expressions are verified by comparing with previously published results and with results obtained using standard numerical integration and fast Fourier transform algorithms. An asymptotic series representation for the ILHIs is then employed to obtain a relatively simple late-time approximation for the transient fields. This approximate late-time expression is shown to accurately model the fields over a large portion of their time history. The closed-form transient field expressions are used to investigate the effects of neglecting displacement currents when studying transient wave propagation in the conductive half-space. The diffusion fields are found to yield accurate results at late times. 1995 text Dissertation-Reproduction (electronic) http://hdl.handle.net/10150/187405 9622980 en Copyright © is held by the author. Digital access to this material is made possible by the University Libraries, University of Arizona. Further transmission, reproduction or presentation (such as public display or performance) of protected items is prohibited except with permission of the author. The University of Arizona.
collection NDLTD
language en
sources NDLTD
description A method which allows for the analytical evaluation of the interaction between a transient plane wave and a conductive half-space is presented. We assume that an electromagnetic plane wave is obliquely incident on a conducting half-space, which is modeled by a frequency independent permittivity and conductivity. The general case of the electromagnetic plane wave is divided into two polarizations: transverse electric (TE) and transverse magnetic (TM). The time-domain expressions for the reflected and transmitted waves are first represented as inverse Laplace transforms. The transient fields are then shown to consist of two canonical integrals, f(β) and e(β)The canonical integrals, in turn, are solved analytically, thereby yielding closed-form solutions involving incomplete Lipschitz-Hankel integrals (ILHIs). The ILHIs are computed numerically using efficient convergent and asymptotic series expansions, thus enabling the efficient computation of the transient fields. The exact, closed-form expressions are verified by comparing with previously published results and with results obtained using standard numerical integration and fast Fourier transform algorithms. An asymptotic series representation for the ILHIs is then employed to obtain a relatively simple late-time approximation for the transient fields. This approximate late-time expression is shown to accurately model the fields over a large portion of their time history. The closed-form transient field expressions are used to investigate the effects of neglecting displacement currents when studying transient wave propagation in the conductive half-space. The diffusion fields are found to yield accurate results at late times.
author2 Dvorak, Steven
author_facet Dvorak, Steven
Pao, Hsueh-Yuan.
author Pao, Hsueh-Yuan.
spellingShingle Pao, Hsueh-Yuan.
Interaction between a transient plane wave and a conductive half-space.
author_sort Pao, Hsueh-Yuan.
title Interaction between a transient plane wave and a conductive half-space.
title_short Interaction between a transient plane wave and a conductive half-space.
title_full Interaction between a transient plane wave and a conductive half-space.
title_fullStr Interaction between a transient plane wave and a conductive half-space.
title_full_unstemmed Interaction between a transient plane wave and a conductive half-space.
title_sort interaction between a transient plane wave and a conductive half-space.
publisher The University of Arizona.
publishDate 1995
url http://hdl.handle.net/10150/187405
work_keys_str_mv AT paohsuehyuan interactionbetweenatransientplanewaveandaconductivehalfspace
_version_ 1718098169034702848