DocumentCode
84723
Title
Proximity-Aware Calculation of Cable Series Impedance for Systems of Solid and Hollow Conductors
Author
Patel, Utkarsh R. ; Gustavsen, Bjorn ; Triverio, Piero
Author_Institution
Edward S. Rogers Sr. Dept. of Electr. & Comput. Eng., Univ. of Toronto, Toronto, ON, Canada
Volume
29
Issue
5
fYear
2014
fDate
Oct. 2014
Firstpage
2101
Lastpage
2109
Abstract
Wideband cable models for the prediction of electromagnetic transients in power systems require an accurate calculation of the cable series impedance as a function of frequency. A surface current approach was recently proposed for systems of round solid conductors, with the inclusion of skin and proximity effects. In this paper, we extend the approach to include tubular conductors, allowing to model realistic cables with tubular sheaths, armors, and pipes. We also include the effect of a lossy ground. A noteworthy feature of the proposed technique is the accurate prediction of proximity effects, which can be of major importance in three-phase, pipe-type, and closely packed single-core cables. The new approach is highly efficient compared to finite elements. In the case of a cross-bonded cable system featuring three-phase conductors and three screens, the proposed technique computes the required 120 frequency samples in only six seconds of CPU time.
Keywords
conductors (electric); power cables; power system transients; skin effect; armors; cable series impedance; closely packed single-core cables; cross-bonded cable system; electromagnetic transient prediction; finite elements; hollow conductor system; lossy ground effect; pipe-type cables; pipes; power systems; proximity effects; proximity-aware calculation; round solid conductor system; skin effects; surface current approach; three-phase cables; three-phase conductors; tubular conductors; tubular sheaths; wideband cable models; Admittance; Conductors; Impedance; Power cables; Proximity effects; Solids; Surface impedance; Broadband cable modeling; electromagnetic transients; proximity effect; series impedance; skin effect;
fLanguage
English
Journal_Title
Power Delivery, IEEE Transactions on
Publisher
ieee
ISSN
0885-8977
Type
jour
DOI
10.1109/TPWRD.2014.2330994
Filename
6850078
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