DocumentCode
62059
Title
Numerical Simulation Study on Jump Height of Iced Transmission Lines After Ice Shedding
Author
Yan, Bo ; Chen, Kequan ; Guo, Yueming ; Liang, Ming ; Yuan, Qi
Author_Institution
Dept. of Eng. Mech., Chongqing Univ., Chongqing, China
Volume
28
Issue
1
fYear
2013
fDate
Jan. 2013
Firstpage
216
Lastpage
225
Abstract
The numerical modeling method of ice load and ice-shedding load on a transmission line is presented. The dynamic responses of multispan transmission lines with different structural parameters, including span length, number of spans, elevation difference between two suspension ends of the ice-shedding span, length of suspension insulator strings, and number of subconductors in a bundle conductor and conductor type, after ice shedding with different rates are investigated by means of the ABAQUS software. Based on the numerical results, it is discovered that the maximum vertical jump height of a transmission line after ice shedding, which determines the phase-to-phase and phase-to-tower insulation clearances, relates linearly to the sag difference of the conductor in the two static states before and after ice shedding. A simple formula to determine the jump height of a transmission line after ice shedding is suggested for the design of transmission lines in ice zones.
Keywords
conductors (electric); dynamic response; ice; numerical analysis; power transmission lines; ABAQUS software; bundle conductor; conductor type; elevation difference; ice load; ice shedding; ice zones; iced transmission lines; multispan transmission lines; numerical simulation; phase-to-phase insulation clearance; phase-to-tower insulation clearance; sag difference; span length; suspension ends; vertical jump height; Conductors; Damping; Ice; Load modeling; Numerical models; Power cables; Dynamic response; ice shedding; jump height; numerical simulation; transmission line;
fLanguage
English
Journal_Title
Power Delivery, IEEE Transactions on
Publisher
ieee
ISSN
0885-8977
Type
jour
DOI
10.1109/TPWRD.2012.2219324
Filename
6339028
Link To Document