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Variation Effect of Incident Plane Wave on Multiconductor Shielded Cables

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Published:14 November 2017Publication History

ABSTRACT

The present study examines the variation effects of incident plane wave on multiconductor shielded cables in frequency domains using Branin's method, which is referred to as the method of characteristics. The model operates in frequency and time domain, with linear and non-linear loads, respectively; which allows it to be easily inserted in circuit simulators, such as Spice, Sabar, and Esacap. Two examples are studied; a coaxial shielded cable and shielded cables with two parallel wires (i.e., twinax cables), and they are both excited by an incident plane wave. The Results obtained by this method are in good agreement with those obtained by other methods and experiments. dimensional1 arrays of bi-component structures made of cobalt and permalloy elliptical dots with thickness of 25 nm, length 1 μm and width of 225 nm, have been prepared by a self-aligned shadow deposition technique.Brillouin light scattering has been exploited to study the frequency dependence of thermally excited magnetic eigenmodes on the intensity of the external magnetic field, applied along the easy axis of the elements.

References

  1. M. Aguet, M. Ianovici, C.C. Lin. 1980. Transient electromagnetic field coupling to long shielded cables, IEEE Trans. Electromagn. Compat., 4, 276--282, (1980)Google ScholarGoogle ScholarCross RefCross Ref
  2. M. D'Amore, M. Feliziani. 1990. Induced fast transients in multiconductor shielded cable, inProc. 7th Int. Conf. Electromagn. Compat., York, U.K., 103--108,(1990)Google ScholarGoogle Scholar
  3. M. Saih, H. Rouijaa, A. Ghammaz. 2014. Coupling of electromagnetic waves with the RG58 cable, International Conference on Multimedia Computing and Systems, Marrakesh, morocco, (2014)Google ScholarGoogle Scholar
  4. A. Orlandi. 2003. Circuit model for bulk current injection test on shielded coaxial cables, IEEE Trans. Electromagn. Compat., 4, 602--615,(2003)Google ScholarGoogle ScholarCross RefCross Ref
  5. G. Antonini, A. Orlandi. 2004. Spice equivalent circuit of a two-parallel wires shielded cable for evaluation of the RF induced voltages at the terminations, IEEE Trans. Electromagn. Compat., 189--198, (2004)Google ScholarGoogle Scholar
  6. Y. Mejdoub, H. Rouijaa, A. Ghammaz. 2014. Optimization circuit model of a multiconductor transmission line, International Journal of Microwave and Wireless Technologies, 603--609, (2014)Google ScholarGoogle Scholar
  7. M. Saih, H. Rouijaa, A. Ghammaz. 2015. Circuit Models for Conducted Susceptibility Analyses of Multiconductor Shielded Cables, International Conference on Wireless Communications and Mobile Computing, Venice, Italy, (2015)Google ScholarGoogle Scholar
  8. G. Antonini, A.C. Scogna, A. Orlandi. 2004. Grounding, unbalancing and length effects on termination voltages of a twinax cable during bulk current injection, IEEE Trans. Electromagn. Compat., 302--308, (2004)Google ScholarGoogle Scholar
  9. S. Caniggia, F. Maradei. 2003 Equivalent circuit models for the analysis of coaxial cables immunity, IEEE Int. Symp. Electromagn. Compat., 881--886, (2003)Google ScholarGoogle ScholarCross RefCross Ref
  10. Jr F. H. Branin. 1967. Transient analysis of lossless transmission lines, Proc IEEE, 2012--2013, (1967)Google ScholarGoogle ScholarCross RefCross Ref
  11. L. Inzoli, H. Rouijaa. 2000. Aseris: Emcap2000 Esacap software. Applications Handbook and Users Manual, European Aeraunotic Defense and Space, (2001).Google ScholarGoogle Scholar
  12. F. Tesche, M. Ianoz and T. Karlsson. 1997. EMC Analysis Methods and Computational Models. New York: Wiley, (1997)Google ScholarGoogle Scholar
  13. M. Saih, H. Rouijaa, A. Ghammaz. 2016. Circuit models of multiconductor shielded cables: incident plane wave effect. Int. J. Numer. Modell.: Electron. Netw. Devices Fields, 29 (2016), 243--254)Google ScholarGoogle ScholarCross RefCross Ref
  14. C.D. Taylor, R.S. Satterwhite, C.W. Harrison. 1965 The response of a terminated two-wire transmission line excited by a nonuniform electromagnetic field, IEEE Trans. Antennas.Propag., 987--989, (1965)Google ScholarGoogle Scholar
  15. A. K. Agrawal, H.J. Price, S.H. GURBAXANI. 1980. Transient response of multiconductor transmission lines excited by a non-uniform electromagnetic field. IEEE Trans EMC., 22 (4), 119--129,(1980)Google ScholarGoogle Scholar
  16. F. Rachidi. 1993. Formulation of Filed to Transmission Line Coupling Equation in Terms of Magnetic Excitation Field. IEEE Trans EMC., 35(3), 404--407, (1993)Google ScholarGoogle Scholar
  17. C.R. Paul. 1994. Analysis of Multiconductor Transmission Lines, New York, Wiley, (1994) Google ScholarGoogle ScholarDigital LibraryDigital Library
  18. A. Albert, Jr. Smith. 2006. Coupling of external electromagnetic fields to transmission lines, John Wiley & Sons, 2nd Edition.Google ScholarGoogle Scholar

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  • Published in

    cover image ACM Other conferences
    ICCWCS'17: Proceedings of the 2nd International Conference on Computing and Wireless Communication Systems
    November 2017
    512 pages
    ISBN:9781450353069
    DOI:10.1145/3167486

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    Publication History

    • Published: 14 November 2017

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