LAPSE:2023.23085
Published Article

LAPSE:2023.23085
Bulk FDTD Simulation of Distributed Corona Effects and Overvoltage Profiles for HSIL Transmission Line Design
March 27, 2023
Abstract
Power system load growth and transmission corridor constraints are driving industry activity in the area of high surge impedance loading (HSIL). Examples include compact structure design and uprating existing transmission lines. Recent research relating electric field uniformity to transmission line capacity and critical flashover voltage underscored the need for better overvoltage data to quantify insulation margins for HSIL design. To that end, this work extends the finite difference time domain (FDTD) method with distributed corona losses to transmission lines with bundled conductors. The model was adapted for practical use in high-volume statistical transient simulation and applied to an example 500 kV line. Transients included line energization and trapped charge reclosing. Overvoltage profiles and statistical distributions were generated from 9500 simulations obtained by random breaker close timing and variation in line length and altitude. Distributed corona losses reduced 98th percentile line-to-ground switching overvoltages by 4%−14% of nominal. The estimated line-to-ground switching surge flashover probability was 54%−80% lower with corona loss. Corona had less impact on line-to-line overvoltages, but the effects were still notable. Results highlight the importance of considering detailed overvoltage profiles and accounting for corona loss attenuation when seeking to carefully quantify insulation design margins.
Power system load growth and transmission corridor constraints are driving industry activity in the area of high surge impedance loading (HSIL). Examples include compact structure design and uprating existing transmission lines. Recent research relating electric field uniformity to transmission line capacity and critical flashover voltage underscored the need for better overvoltage data to quantify insulation margins for HSIL design. To that end, this work extends the finite difference time domain (FDTD) method with distributed corona losses to transmission lines with bundled conductors. The model was adapted for practical use in high-volume statistical transient simulation and applied to an example 500 kV line. Transients included line energization and trapped charge reclosing. Overvoltage profiles and statistical distributions were generated from 9500 simulations obtained by random breaker close timing and variation in line length and altitude. Distributed corona losses reduced 98th percentile line-to-ground switching overvoltages by 4%−14% of nominal. The estimated line-to-ground switching surge flashover probability was 54%−80% lower with corona loss. Corona had less impact on line-to-line overvoltages, but the effects were still notable. Results highlight the importance of considering detailed overvoltage profiles and accounting for corona loss attenuation when seeking to carefully quantify insulation design margins.
Record ID
Keywords
corona, FDTD, flashover, HSIL, insulation, overvoltage, power, switching, transients, transmission
Subject
Suggested Citation
Leman JT, Olsen RG. Bulk FDTD Simulation of Distributed Corona Effects and Overvoltage Profiles for HSIL Transmission Line Design. (2023). LAPSE:2023.23085
Author Affiliations
Leman JT: POWER Engineers, Inc., 3940 Glenbrook Drive, P.O. Box 1066, Hailey, ID 83333, USA
Olsen RG: School of Electrical Engineering & Computer Science, Washington State University, P.O. Box 642752, Pullman, WA 99164, USA [ORCID]
Olsen RG: School of Electrical Engineering & Computer Science, Washington State University, P.O. Box 642752, Pullman, WA 99164, USA [ORCID]
Journal Name
Energies
Volume
13
Issue
10
Article Number
E2474
Year
2020
Publication Date
2020-05-14
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en13102474, Publication Type: Journal Article
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LAPSE:2023.23085
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https://doi.org/10.3390/en13102474
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Mar 27, 2023
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Mar 27, 2023
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