Title :
3-D Thin-Wire FDTD Approach for Resistively Loaded Cylindrical Antennas Fed by Coaxial Lines
Author :
Hyun, Seung-Yeup ; Kim, Se-Yun
Author_Institution :
Imaging Media Res. Center, Korea Inst. of Sci. & Technol., Seoul, South Korea
Abstract :
For the efficient finite-difference time-domain (FDTD) analysis of electrically thin and resistively loaded cylindrical antennas, the 2-D cylindrical thin-wire approach with circular symmetry is extended to the 3-D Cartesian FDTD with non-cubic cells for asymmetric cases. The axial geometry of the antenna is represented as a set of piecewise-linear lumped resistors. And the near fields around the antenna and the coaxial feed aperture are approximated to the quasi-static fields with the cylindrical behavior. From the cylindrical-to-Cartesian coordinate transformation of the quasi-static fields and the contour-path integration along FDTD unit cells in the vicinity of the antenna and its feed, the 3-D Cartesian FDTD equations are derived. These equations may correspond to a full coarse-grid FDTD approach with the equivalent corrections. For some numerical examples, the proposed approach provides comparable accuracy to the reference data with fine-grid resolution. Effects of the cell size and the resistive loading profile are investigated numerically.
Keywords :
antenna feeds; antenna theory; coaxial cables; finite difference time-domain analysis; resistors; 2D cylindrical thin-wire approach; 3D Cartesian FDTD equation; 3D thin-wire FDTD approach; antenna axial geometry; circular symmetry; coarse-grid FDTD approach; coaxial feed aperture; coaxial lines; contour-path integration; cylindrical behavior; cylindrical-to-Cartesian coordinate transformation; fine-grid resolution; finite-difference time-domain analysis; noncubic cells; piecewise-linear lumped resistors; quasi-static fields; resistive loaded cylindrical antenna fed; Antenna feeds; Finite difference methods; Loaded antennas; Resistors; Time domain analysis; Finite-difference time-domain (FDTD) methods; loaded antennas; resistive loadings; thin wires;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2010.2078461