Title :
Numerical Analysis of the Induced Corona Vibrations on High-Voltage Transmission Lines Affected by Rainfall
Author :
Brahami, M. ; Gourbi, A. ; Tilmatine, A. ; Dascalescu, L.
Author_Institution :
Intell. Control & Electr. Power Syst. Lab. ICEPS, Djillali Liabes Univ., Sidi Bel Abbés, Algeria
fDate :
4/1/2011 12:00:00 AM
Abstract :
Droplets formation on high-voltage transmission lines affected by rainfall amplifies the corona discharges from the conductors. The induced corona vibrations intensify the fatigue of high-voltage conductors and supporting elements. The alternating presence of space charge and the ionic wind associated with the corona discharge are the main causes of this phenomenon. The objective of this paper is to validate a numerical simulation method to investigate the effects of different parameters (electric field strength and polarity, rain intensity, transverse wind velocity) on the amplitude of the induced corona vibrations. The finite element method was used to develop the numerical model of the conductor movement under the action of mechanical and electrical forces, while time discretization was made with the finite difference method. The numerical simulation results were in good agreement with the experimental data available in the literature. The model enables better comprehension of the induced corona vibration mechanism.
Keywords :
conductors (electric); corona; finite difference methods; finite element analysis; power transmission lines; rain; corona discharges; droplets formation; electric field strength; electrical forces; finite difference method; finite element method; high-voltage conductors; high-voltage transmission lines; induced corona vibrations; ionic wind; mechanical forces; numerical analysis; rain intensity; rainfall; space charge; transverse wind velocity; Finite element method; high-voltage (HV) conductor; vibrations induced by corona;
Journal_Title :
Power Delivery, IEEE Transactions on
DOI :
10.1109/TPWRD.2010.2093606