Title :
Corona effect on insulator voltages for a direct lightning strike to a phase conductor
Author :
Tran Huu Thang ; Baba, Yuya ; Nagaoka, Naoto ; Ametani, Akihiro ; Itamoto, Naoki ; Rakov, V.A.
Author_Institution :
Dept. of Electr. & Electron. Eng., Tsuruoka Nat. Coll. of Technol., Yamagata, Japan
Abstract :
In this paper, a simplified model of corona discharge for the finite-difference time-domain (FDTD) computations has been applied to analysis of transient voltages across insulators of a transmission line for direct lightning strikes to an upper phase conductor. In the simulation, three 40-m towers, separated by 300 m, with one overhead ground wire and three phase conductors are employed. Corona is assumed to occur only on the upper phase conductor struck by lightning. The progression of corona streamers from the conductor is represented as the radial expansion of cylindrical conducting region around the conductor. The reduction of insulator-voltage peak due to the corona is significant only for the upper phase conductor. For a 10-kA peak current, the upper-phase-conductor voltage peaks are reduced by 26% and 21% for a positive stroke with 1-μs- and 3-μs-risetime currents, respectively, and those for negative-stroke case are reduced by 20% and 15%, respectively. For a 20-kA peak current, the corresponding upper-phase-voltage peaks are reduced by 32% and 25% for positive-stroke case, and those for negative-stroke case are reduced by 26% and 20%.
Keywords :
corona; earthing; finite difference time-domain analysis; insulators; lightning; overhead line conductors; poles and towers; power overhead lines; power system transients; FDTD computation; corona discharge model; corona streamer; current 10 kA; current 20 kA; direct lightning strike; distance 300 m; distance 40 m; finite-difference time-domain computation; insulator voltage; insulator-voltage peak reduction; negative-stroke case; overhead ground wire; positive-stroke case; radial cylindrical conducting expansion region; time 1 mus; time 3 mus; transient voltage analysis; transmission line; upper phase conductor; Conductors; Finite difference methods; Lightning; Poles and towers; Time-domain analysis; Lightning; corona discharge; finite-difference time-domain method; insulator voltage; shielding failure;
Conference_Titel :
Lightning Protection (ICLP), 2014 International Conference o
Conference_Location :
Shanghai
DOI :
10.1109/ICLP.2014.6971986