Title :
A Quasistatic Antenna Design Approach for Minimum-Q Antennas
Author_Institution :
SPAWAR SYSCEN Pacific 55380, US Navy, San Diego, CA, USA
fDate :
6/1/2011 12:00:00 AM
Abstract :
The quasistatic antenna-design algorithm uses electrostatic methods to calculate the antenna´s shape. The asymptotic conical dipole is a classic quasistatic design. A charged disk is added to the asymptotic conical dipole to model a thick top-loaded monopole. The antenna´s shape is an equipotential surface. The disk height and radius control the width and height of the top load. The minimum Q for this design is lower than the ideal thin-disk-loaded monopole. A Computer Simulation Technology model confirmed the predicted Q value of twice Chu´s limit. Measurements on a 16-wire, 0.5 m physical antenna agreed with the NEC 4 model. The tradeoff in Q and radiation resistance is illustrated with detailed examples. Several designs have a lower Q than the ideal thin-disk-loaded monopole. This design approach gives a very good design with only two degrees of freedom. The computational time for the algorithm is a small fraction of one NEC 4 modeling run. The algorithm can be extended to design antennas with a cylindrical, elliptical, or conical form factor.
Keywords :
conical antennas; dipole antennas; electrostatics; monopole antennas; Computer Simulation Technology model; NEC 4 model; antenna shape; asymptotic conical dipole; charged disk; disk height; electrostatic analysis; minimum-Q antennas; quasistatic antenna design; radiation resistance; radius control; size 0.5 mum; top-loaded monopole; Capacitance; Load modeling; Monopole antennas; Q factor; Antenna; Q factor; algorithms; dipole antenna; electrically small antenna; electrostatic analysis; loaded antenna; monopole antenna; quasistatic; small antenna;
Journal_Title :
Antennas and Propagation Magazine, IEEE
DOI :
10.1109/MAP.2011.6028424