DocumentCode
844075
Title
On the Relationship Between the Signature of Close Electric Field and the Equivalent Corona Current in Lightning Return Stroke Models
Author
Cooray, Vernon ; Rakov, Vladimir A. ; Rachidi, Farhad ; Monta, Raul ; Nucci, Carlo Alberto
Author_Institution
Div. for Electr. & Lightning Res., Uppsala Univ., Uppsala
Volume
50
Issue
4
fYear
2008
Firstpage
921
Lastpage
927
Abstract
Engineering return stroke models can be categorized either as current generation (traveling current source type) models or current propagation (transmission line type) models. The current generation models are described among other parameters by a corona current distributed along the channel. Recent studies show that there is equivalence between the models of current generation and current propagation types. Due to this equivalence, any engineering return stroke model of current propagation type can be described in terms of an equivalent corona current per unit channel length. The measurements conducted within 10-500 m from triggered lightning flashes show that the electric field of subsequent return strokes at these distances flattens within 15 mus or so. In this paper, the constraints imposed by this feature on the temporal and spatial variation of the equivalent corona current are investigated. The results show that in order for the close fields to flatten within 15 mus or so, the equivalent corona current, should be bipolar and the corona current wave shape at late times should be identical to that of the longitudinal current time derivative. This is in contrast to most of the engineering models of current generation type, in which the corona current is assumed to be unipolar.
Keywords
corona; electric fields; lightning; transmission lines; close electric field; corona current wave shape; current generation; current propagation; equivalent corona current; lightning flashes; lightning return stroke models; transmission line type; traveling current source type; Corona; Current measurement; Distributed power generation; Electric variables measurement; Electromagnetic compatibility; Laboratories; Lightning; Optical propagation; Power transmission lines; Predictive models; Shape; Transmission lines; Voltage; Equivalent corona current; lightning electric field; return stroke models;
fLanguage
English
Journal_Title
Electromagnetic Compatibility, IEEE Transactions on
Publisher
ieee
ISSN
0018-9375
Type
jour
DOI
10.1109/TEMC.2008.926918
Filename
4607164
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