A novel finite-difference time-domain wave propagator

被引:43
作者
Akleman, F [1 ]
Sevgi, L
机构
[1] ITU Elect, Dept Commun Engn, TR-80626 Istanbul, Turkey
[2] TUBITAK, MRC, Informat Technol Res Inst, TR-41470 Gebze Kocaeli, Turkey
关键词
FDTD methods; propagators;
D O I
10.1109/8.855505
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this letter, a novel time-domain wave propagator is introduced. A two-dimensional (2-D) finite-difference time-domain (FDTD) algorithm is used to analyze ground wave propagation characteristics. Assuming an azimuthal symmetry, surface, and/or elevated ducts are represented via transverse and/or longitudinal refractivity and boundary perturbations in 2-D space. The 2-D FDTD space extends from x = 0 (bottom) to x --> infinity (top), vertically and from z --> -infinity (left) to z --> infinity (right), horizontally. Perfectly matched layer (PML) blocks on the left, right, and top terminate the FDTD computation space to simulate semi-open propagation region. The ground at the bottom is simulated either as a perfectly electrical conductor (PEC) or as a lossy second medium. A desired, initial vertical field profile, which has a pulse character in time, is injected into the FDTD computation space. The PML blocks absorb field components that propagate towards left and top. The ground wave components (i.e., the direct, ground-reflected and surface waves) are traced longitudinally toward the right. The longitudinal propagation region is covered by a finite-sized FDTD computation space as if the space slides from left to right until the pulse propagates to a desired range. Transverse or longitudinal field profiles are obtained by accumulating the time-domain response at each altitude or range and by applying discrete Fourier transformation (DFT) at various frequencies.
引用
收藏
页码:839 / 841
页数:3
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