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Tytuł artykułu

Characteristic Impedance of Power Lines with Ground Wires

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
PL
Impedancja charakterystyczna linii elektroenergetycznej z uziemieniem
Języki publikacji
EN
Abstrakty
EN
In the paper the characteristic impedance of a power line equipped with shield wires is analysed. The solution to the problem is found by means of a non-symmetric algebraic Riccati equation. Solutions are presented for practical line configurations.
PL
W artykule przedstawiono analizę impedancji charakterystycznej linii elektroenergetycznej z ekranowanymi kablami w praktycznym zastosowaniu konfiguracyjnym. W analizie wykorzystano niesymetryczne równanie Riccatiego.
Rocznik
Strony
11--14
Opis fizyczny
Bibliogr. 23 poz., rys.
Twórcy
autor
  • University of Naples “Federico II”, Italy
autor
  • University of Naples “Federico II”, Italy
autor
  • University of Naples “Federico II”, Italy
autor
  • International Telematic University of Rome “Uninettuno”, Italy
Bibliografia
  • [1] Rusck S., Induced lightning over-voltages on powertransmission lines with special reference to the over-voltage protection of low voltage networks, Transactions of the Royal Institute of Technology, 120 (1958), 1-75.
  • [2] Piantini A., Lightning protection of overhead power distribution lines, in the Proceedings of the. 29th International Conference on Lightning Protection, (2008), 1-29.
  • [3] Chowdhuri P., Lightning-induced voltages on multiconductor overhead lines, IEEE Trans. Power Delivery, 5 (1990), No. 2, 658-667.
  • [4] Rachidi F., Nucci C. A. and Ianoz M., Transient analysis of multiconductor lines above a lossy ground, IEEE Trans. Power Delivery, 14 (1999), 294-302.
  • [5] Rachidi F., Nucci C. A., Ianoz M. and Mazzetti C., Response of multiconductor power lines to nearby lightning return stroke electromagnetic fields, IEEE Trans. Power Delivery, 12 (1997), 1404-1411.
  • [6] Paolone M., Nucci C. A., Petrache E. and Rachidi F., Mitigation of lightning-induced overvoltages in medium voltage distribution lines by means of periodical grounding of shielding wires and of surge arresters, modeling and experimental validation, IEEE Trans. Power Delivery, 19 (2004 ), No. 1, 423-431.
  • [7] Borghetti A., Nucci C. A. and Paolone M., An improved procedure for the assessment of overhead line indirect lightning performance and its comparison with the IEEE Std. 1410 Method, IEEE Trans. Power Delivery, 22 (2007), No. 1, 684-692.
  • [8] Rachidi F., Nucci C. A. and Ianoz, M., Transient analysis of multiconductor lines above a lossy ground, IEEE Trans. Power Delivery, 14(1999), No. 1, 294–302.
  • [9] Høidalen H. K., Slebtak J. and Henriksen T., Ground effects on induced voltages from nearby lightning, IEEE Trans. Electromagn. Compat., 39(1997), No. 4, 269–278.
  • [10] Diendorfer G., Induced Voltage on an Overhead Line Due to Nearby Lightning, IEEE Trans. Electromagn. Compat., 32 (1990), No. 4, 292–299.
  • [11] Andreotti A., Assante D., Mottola F. and Verolino L., An exact closed-form solution for lightning-induced overvoltages calculations, IEEE Trans. Power Delivery, 24 (2009), No. 3, 1328-1343.
  • [12] Andreotti A., Petrarca C., Rakov V. A. and Verolino L., Calculation of voltages induced on overhead conductors by nonvertical lightning channels, IEEE Trans. Electromagn. Compat., 54 (2012), No. 4, 860-870.
  • [13] Andreotti A., De Martinis U., Petrarca C., Rakov V. A. and Verolino L., Lightning electromagnetic fields and induced voltages: Influence of channel tortuosity, Proceedings XXXth URSI General Assembly and Scientific Symposium, (2011), Istanbul, Turkey,1-4, DOI: 10.1109/URSIGASS.2011.6050702
  • [14] Andreotti A., Pierno A., Rakov V. A. and Verolino L., Analytical formulations for lightning-induced voltage calculations, to be published on IEEE Trans. Electromagn. Compat. (2012) (available on line, DOI: 10.1109/TEMC.2012.2205001).
  • [15] Andreotti A., Del Pizzo A., Rizzo R. and Verolino L., Lightning induced effects on lossy multiconductor power lines with ground wires and non-linear loads - Part I: model, Przeglad Elektrotechniczny (Electrical Review), R88 (2012), No. 9b/2012, 301-304.
  • [16] Andreotti A., Del Pizzo A., Rizzo R. and Verolino L., Lightning induced effects on lossy multiconductor power lines with ground wires and non-linear loads - Part II: simulation results and experimental validation, Przeglad Elektrotechniczny (Electrical Review), R88 (2012), No. 9b/2012, 305-309.
  • [17] Andreotti A., Assante D., Rakov V. A. and Verolino L., Electromagnetic coupling of lightning to power lines: Transmission-Line approximation versus Full-Wave solution, IEEE Trans. Electromagn. Compat., 53 (2011), No. 2, 421-428.
  • [18] Paul C. R., Analysis of multiconductor transmission lines, Wiley-Interscience (2008).
  • [19] Freiling G, A survey of nonsymmetric Riccati equations, Linear Algebra and its Applications, 351-352 (2002): 243-270.
  • [20] Dattoli G., Ricci P. E., Cesarano C., Special polynomials and associated differential equations from a general point of view, International Mathematical Journal, 4 (2003), 321-328.
  • [21] Lu L.-Z., Newton iterations for a non-symmetric algebraic Riccati equation, Numer. Linear Algebra Appl., 12 (2005), 191-200.
  • [22] Bini D. A., Iannazzo B. and Poloni F., A fast Newton’s method for a nonsymmetric algebraic Riccati equation, SIAM J. Matrix Anal. Appl., 30(2009), No. 1, 276-290.
  • [23] Guo X. X. and Bai Z. Z., On the minimal nonnegative solution of nonsymmetric algebraic Riccati equation, J. Comput. Math., 23 (2005), 305-320.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-3266eb98-45f4-42ab-9023-35fddf03e19e
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