Title :
A novel TLM-based time-domain wave propagator
Author :
Özyalçin, M.O. ; Akleman, F. ; Sevgi, L.
Author_Institution :
Electron. & Commun. Eng. Dept., Istanbul Tech. Univ., Turkey
fDate :
7/1/2003 12:00:00 AM
Abstract :
In this letter, a novel time-domain wave propagator, based on the transmission line matrix (TLM) technique, is introduced. A two-dimensional (2-D) TLM algorithm is modified and the sliding window technique is applied to analyze ground wave propagation characteristics. The longitudinal propagation region over the Earth´s surface is covered by a finite-size TLM computation space, as if the space slides from source to observation point. A short pulse is injected into the TLM computation space as a vertical initial source distribution near the left end and is traced within an adjustable window while propagating towards the right. Perfectly matched layer (PML) blocks on the left, top and right terminate the TLM computation space to simulate the semi-open propagation region. The ground at the bottom is a perfect electrical conductor (PEC). The PML blocks absorb field components that scatter back and top. The ground wave components (i.e., the direct, ground-reflected and surface waves) are traced longitudinally towards the right. Transient propagation can be observed at any range/altitude by accumulating the time history of the desired field components and any steady-state vertical and/or horizontal field profile at a desired frequency can be extracted by applying the off-line discrete Fourier transformation (DFT).
Keywords :
discrete Fourier transforms; electromagnetic wave absorption; electromagnetic wave propagation; electromagnetic wave reflection; electromagnetic wave scattering; finite difference time-domain analysis; transmission line matrix methods; 2D TLM algorithm; Earth surface; PEC; PML blocks; direct wave; discrete Fourier transformation; field component absorption; finite-size computation space; ground wave components; ground wave propagation; ground-reflected waves; horizontal field profile; longitudinal propagation region; off-line DFT; perfect electrical conductor; perfectly matched layer; scattering; semi-open propagation region; short pulse injection; simulation; sliding window technique; steady-state vertical field profile; surface waves; time history; time-domain wave propagator; transient propagation; transmission line matrix; two-dimensional TLM algorithm; vertical initial source distribution; Algorithm design and analysis; Computational modeling; Conductors; Distributed computing; Earth; Perfectly matched layers; Scattering; Time domain analysis; Transmission line matrix methods; Two dimensional displays;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2003.813624