DocumentCode
914999
Title
Neuristor analysis techniques for nonlinear distributed electronic systems
Author
Parmentier, Robert D.
Author_Institution
University of Wisconsin, Madison, Wis.
Volume
58
Issue
11
fYear
1970
Firstpage
1829
Lastpage
1837
Abstract
Neuristor propagation analysis techniques apply to a wide variety of nonlinear distributed electronic devices and wave propagation phenomena. This paper brings together and reviews these techniques. A specific example, the superconductive tunnel junction stripline, is modeled by a distributed equivalent circuit described by nonlinear parabolic partial differential equations. The neuristor pulse propagates at constant velocity with a fixed waveshape; mathematically, this reduces the partial differential equations to ordinary differential equations which are solved by phase-plane topology analysis. Poincaré´s index rule and Bendixson´s negative criterion prescribe the pulse velocity and waveform. Analytical results agree with experiment. Pulse waveform stability is studied using eigenfunction expansion of the perturbation equations and Lyapunov theory, but complete results are not obtained. Lyapunov theory provides estimates of excitation thresholds for launching a neuristor pulse, which are consistent with experiment. Determining the nature of pulse interactions may for some systems be accomplished using the Bäcklund transformation or perturbation series techniques, but generally requires complete computer solution of the dynamical equations.
Keywords
Cranes; Diodes; Magnetic materials; Nonlinear equations; Optical propagation; Partial differential equations; Pulse shaping methods; Stability; Stripline; Superconductivity;
fLanguage
English
Journal_Title
Proceedings of the IEEE
Publisher
ieee
ISSN
0018-9219
Type
jour
DOI
10.1109/PROC.1970.8024
Filename
1449954
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