DocumentCode :
939063
Title :
Arc effect on single-phase reclosing time of a UHV power transmission line
Author :
Dudurych, Ivan M. ; Gallagher, T.J. ; Rosolowski, Eugeniusz
Author_Institution :
Power Syst. Oper. Dept., ES13 Nat. Grid/EirGrid, Dublin, Ireland
Volume :
19
Issue :
2
fYear :
2004
fDate :
4/1/2004 12:00:00 AM
Firstpage :
854
Lastpage :
860
Abstract :
One of the important operational conditions of a single-circuit ultra-high-voltage transmission line is the power transmission by two phases during the clearance of a temporary single-phase short circuit. Such a condition may be sustained for an interval of 1 s without losing the dynamic stability of the system. The influence of the arc on the single-phase reclosing time of an ultra-high-voltage power transmission line is investigated on the basis of the primary and the secondary arc models incorporated into the transient program EMTP. The validity of the models used is proven by comparison with field test results on an actual 1150-kV power transmission line from Ekibastuz to Kokchetav in Northern Kazakhstan. The processes of this power transmission in the "dead time" of the single-phase reclosing cycle are simulated. It is shown in the paper that simplified short-circuit simulation without the incorporation of the dynamic arc model leads to erroneous results. Mathematical analysis and field experiments show that natural secondary arc extinguishing in a highly compensated 1150-kV power transmission line cannot be reached in a reasonable time (e.g., less than 1 s). It is shown in the paper that this problem can be solved by automatic phase shunting (APS) of the faulted phase.
Keywords :
EMTP; power overhead lines; power system dynamic stability; power system simulation; power system transient stability; transient analysis; 1150 kV; UHV power transmission line; arc effect; automatic phase shunting; dynamic stability; faulted phase; reclosing devices; secondary arc model; single-phase reclosing time; single-phase short circuit; transient analysis; transient program EMTP; ultrahigh voltage; Circuit faults; Circuit stability; Distributed parameter circuits; EMTP; Mathematical analysis; Power system modeling; Power system transients; Power transmission; Power transmission lines; Testing;
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2004.824404
Filename :
1278450
Link To Document :
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