DocumentCode :
1435044
Title :
Monte Carlo-based harmonic-balance technique for the simulation of high-frequency TED oscillators
Author :
Kamoua, Ridha
Author_Institution :
Dept. of Electr. Eng., State Univ. of New York, Stony Brook, NY, USA
Volume :
46
Issue :
10
fYear :
1998
fDate :
10/1/1998 12:00:00 AM
Firstpage :
1376
Lastpage :
1381
Abstract :
A harmonic-balance technique for the analysis of high-frequency transferred electron device (TED) oscillators is developed. The behavior of the nonlinear TED is not obtained from a quasi-static equivalent circuit; rather, a physical transport model is used to determine its response in the time domain. This model is based on the ensemble Monte Carlo technique coupled to a heat-flow equation, which accounts for thermal effects on the device operation. It is found that the standard splitting method for updating the unknown voltage across the diode fails to converge to a steady-state solution at the fundamental frequency. A modified version is proposed, which updates the voltage at the fundamental and higher harmonics differently. This method exhibits much better convergence behavior. Simulation results obtained with the complete model are in very good agreement with experimental data from InP TED oscillators operating at 131.7 and 151 GHz in the fundamental mode and at 188 GHz in the second-harmonic mode
Keywords :
Gunn oscillators; III-V semiconductors; Monte Carlo methods; circuit analysis computing; convergence; harmonics; indium compounds; millimetre wave oscillators; nonlinear network analysis; semiconductor device models; time-domain analysis; 131.7 to 188 GHz; EHF; InP; MM-wave TED oscillators; Monte Carlo-based harmonic-balance technique; convergence behavior; ensemble Monte Carlo technique; fundamental mode; heat-flow equation; physical transport model; second-harmonic mode; simulation; splitting method; thermal effects; transferred electron device oscillators; Circuit simulation; Coupling circuits; Diodes; Equivalent circuits; Gunn devices; Harmonic analysis; Monte Carlo methods; Nonlinear equations; Oscillators; Voltage;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/22.721138
Filename :
721138
Link To Document :
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