• DocumentCode
    843767
  • Title

    Hybrid S-Parameters for Transmission Line Networks With Linear/Nonlinear Load Terminations Subject to Arbitrary Excitations

  • Author

    Bayram, Yakup ; Volakis, John L.

  • Author_Institution
    ElectroScience Lab., Ohio State Univ., Columbus, OH
  • Volume
    55
  • Issue
    5
  • fYear
    2007
  • fDate
    5/1/2007 12:00:00 AM
  • Firstpage
    941
  • Lastpage
    950
  • Abstract
    We propose a generalized S-parameter analysis for transmission lines (TLs) with linear/nonlinear load terminations subject to arbitrary plane-wave and port excitations. S-parameters are prevalently used to model TLs such as cable bundles and interconnects on printed circuit boards (PCBs) subject to port excitations. The conventional S-parameter approach is well suited to characterize interactions among ports. However, nontraditional port excitations associated with plane-wave coupling to physical ports at TL terminals lead to forced, as well as propagating, modal waves, necessitating a modification of the standard S-parameter characterization. In this paper, we consider external plane-wave excitations, as well as port (internal) sources, and propose a hybrid S-parameter matrix for characterization of the associated microwave network and systems. A key aspect of the approach is to treat the forced waves at the ports as constant voltage sources and induced propagating modal waves as additional entries (hybrid S-parameters) in the S-parameter matrix. The resulting hybrid S-matrix and voltage sources can be subsequently exported to any circuit solver such as HSPICE and Agilent´s Advanced Design System for the analysis of combined linear and nonlinear circuit terminations at ports. The proposed method is particularly suited for susceptibility analysis of cable bundles and PCBs for electromagnetic interference evaluations. It also exploits numerical techniques for structural and circuit domain characterization and allows for circuit design optimization without a need to perform any further computational electromagnetic analysis
  • Keywords
    S-parameters; interconnections; matrix algebra; printed circuits; transmission lines; S-parameter analysis; arbitrary plane-wave excitation; cable bundles; constant voltage sources; digital simulation; electromagnetic compatibility; electromagnetic coupling; electromagnetic fields; electromagnetic interference evaluations; hybrid S-parameter matrix; hybrid S-parameters; induced propagating modal waves; linear load termination; microwave network; multiconductor transmission lines; nonlinear load termination; plane-wave coupling; port analysis; port excitations; port internal sources; printed circuit board interconnects; scattering matrix; scattering parameters; transmission line networks; Distributed parameter circuits; Electromagnetic analysis; Integrated circuit interconnections; Microwave propagation; Power cables; Printed circuits; Scattering parameters; Transmission line matrix methods; Transmission lines; Voltage; $S$-parameters; Digital simulation; electromagnetic compatibility (EMC); electromagnetic coupling; electromagnetic fields; electromagnetic interference (EMI); multiconductor transmission lines; port analysis; printed circuit board (PCB); scattering matrix; scattering parameters; transmission line theory; transmission lines (TLs);
  • fLanguage
    English
  • Journal_Title
    Microwave Theory and Techniques, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9480
  • Type

    jour

  • DOI
    10.1109/TMTT.2007.895642
  • Filename
    4195654