Field Optimization and Electrostatic Stress Reduction of Proposed Conductor Scheme for Pliable Gas-Insulated Transmission Lines
The implementation of stranded conductors in flexible gas-insulated transmission lines (FGILs) requires field intensity minimization as well as field irregularity suppression in order to avoid dielectric breakdown. Moreover, the interdependence of enclosure and conductor sizes of FGILs regarding ele...
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doaj-ce73c1d44e2a4bb984ceb161c77c34b52020-11-25T01:53:24ZengMDPI AGApplied Sciences2076-34172019-07-01915298810.3390/app9152988app9152988Field Optimization and Electrostatic Stress Reduction of Proposed Conductor Scheme for Pliable Gas-Insulated Transmission LinesMuhammad Junaid Alvi0Tahir Izhar1Asif Ali Qaiser2Hafiz Shafqat Kharal3Adnan Safdar4Department of Electrical Engineering, University of Engineering and Technology, 54890 Lahore, PakistanDepartment of Electrical Engineering, University of Engineering and Technology, 54890 Lahore, PakistanDepartment of Polymer Engineering, University of Engineering and Technology, 54890 Lahore, PakistanDepartment of Electrical Engineering, University of Engineering and Technology, 54890 Lahore, PakistanDepartment of Electrical Engineering, NFC Institute of Engineering and Fertilizer Research, 38090 Faisalabad, PakistanThe implementation of stranded conductors in flexible gas-insulated transmission lines (FGILs) requires field intensity minimization as well as field irregularity suppression in order to avoid dielectric breakdown. Moreover, the interdependence of enclosure and conductor sizes of FGILs regarding electrostatic aspects necessitate critical consideration of their dimensional specifications. In this research, geometric and electrostatic field optimization for FGILs regarding stranded conductors is performed. In addition, the effect of conductor irregularity on field dispersion is analyzed, and a semiconducting film (SCF)-coated stranded conductor is proposed as a potential candidate for FGILs. Considering the performed optimized design, an 11 kV scaled-down model of a 132-kV FGIL was also fabricated in order to practically analyze its electrostatic and dielectric performances regarding simple and SCF-coated stranded conductors. Simulation and experimental investigations revealed that the SCF-coated stranded conductor significantly minimized the field irregularity of the FGIL along with improving in its dielectric breakdown characteristics.https://www.mdpi.com/2076-3417/9/15/2988dielectric strengthfield gradingfield utilization factor (FUF)gas-insulated transmission linemetropolitanstranded conductor |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Muhammad Junaid Alvi Tahir Izhar Asif Ali Qaiser Hafiz Shafqat Kharal Adnan Safdar |
spellingShingle |
Muhammad Junaid Alvi Tahir Izhar Asif Ali Qaiser Hafiz Shafqat Kharal Adnan Safdar Field Optimization and Electrostatic Stress Reduction of Proposed Conductor Scheme for Pliable Gas-Insulated Transmission Lines Applied Sciences dielectric strength field grading field utilization factor (FUF) gas-insulated transmission line metropolitan stranded conductor |
author_facet |
Muhammad Junaid Alvi Tahir Izhar Asif Ali Qaiser Hafiz Shafqat Kharal Adnan Safdar |
author_sort |
Muhammad Junaid Alvi |
title |
Field Optimization and Electrostatic Stress Reduction of Proposed Conductor Scheme for Pliable Gas-Insulated Transmission Lines |
title_short |
Field Optimization and Electrostatic Stress Reduction of Proposed Conductor Scheme for Pliable Gas-Insulated Transmission Lines |
title_full |
Field Optimization and Electrostatic Stress Reduction of Proposed Conductor Scheme for Pliable Gas-Insulated Transmission Lines |
title_fullStr |
Field Optimization and Electrostatic Stress Reduction of Proposed Conductor Scheme for Pliable Gas-Insulated Transmission Lines |
title_full_unstemmed |
Field Optimization and Electrostatic Stress Reduction of Proposed Conductor Scheme for Pliable Gas-Insulated Transmission Lines |
title_sort |
field optimization and electrostatic stress reduction of proposed conductor scheme for pliable gas-insulated transmission lines |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2019-07-01 |
description |
The implementation of stranded conductors in flexible gas-insulated transmission lines (FGILs) requires field intensity minimization as well as field irregularity suppression in order to avoid dielectric breakdown. Moreover, the interdependence of enclosure and conductor sizes of FGILs regarding electrostatic aspects necessitate critical consideration of their dimensional specifications. In this research, geometric and electrostatic field optimization for FGILs regarding stranded conductors is performed. In addition, the effect of conductor irregularity on field dispersion is analyzed, and a semiconducting film (SCF)-coated stranded conductor is proposed as a potential candidate for FGILs. Considering the performed optimized design, an 11 kV scaled-down model of a 132-kV FGIL was also fabricated in order to practically analyze its electrostatic and dielectric performances regarding simple and SCF-coated stranded conductors. Simulation and experimental investigations revealed that the SCF-coated stranded conductor significantly minimized the field irregularity of the FGIL along with improving in its dielectric breakdown characteristics. |
topic |
dielectric strength field grading field utilization factor (FUF) gas-insulated transmission line metropolitan stranded conductor |
url |
https://www.mdpi.com/2076-3417/9/15/2988 |
work_keys_str_mv |
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