Title :
Circuit modeling methodology for UWB omnidirectional small antennas
Author :
Wang, Stanley B T ; Niknejad, Ali M. ; Brodersen, Robert W.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Univ. of California, Berkeley, CA, USA
fDate :
4/1/2006 12:00:00 AM
Abstract :
In ultra-wideband (UWB) systems, antennas act as filters that introduce a frequency dependent response from the transmitter to receiver. To capture the waveform dispersion so that one can equalize/compensate at the transmitter/receiver, a new circuit modeling methodology that handles omnidirectional small antennas is proposed. By transforming the antennas into the degenerated Foster canonical forms and utilizing the waveform-omnidirectional property, it is shown that the transmitted far field waveform is a scaled version of the voltage across the radiation resistor in the model. Extended Thevenin/Norton equivalent circuits with dependent sources tracking the frequency dependence of the antenna effective length are also built for UWB receiving antennas. Simulation and experimental results show that this methodology is effective over a wide bandwidth and suitable for modeling most UWB antennas.
Keywords :
equivalent circuits; receiving antennas; transmitting antennas; ultra wideband antennas; ultra wideband communication; Thevenin-Norton equivalent circuit; UWB omnidirectional small antenna; antenna effective length; circuit modeling methodology; degenerated Foster canonical form; frequency dependent response; radio transmitter; receiving antenna; source tracking; ultra-wideband system; waveform dispersion; Circuits; Filters; Frequency dependence; Receiving antennas; Resistors; Transmitters; Transmitting antennas; Ultra wideband antennas; Ultra wideband technology; Voltage; Antenna transfer function; Foster canonical form; equivalent circuit; small antenna; ultra-wideband (UWB);
Journal_Title :
Selected Areas in Communications, IEEE Journal on
DOI :
10.1109/JSAC.2005.863873