Title :
The numerical modelling and experimental validation of a partial discharge within an air-filled cavity bound in oil impregnated paper
Author :
Smith, Dante J. ; McMeekin, Scott G. ; Stewart, Brian G. ; Wallace, P.A.
Author_Institution :
Sch. of Eng. & Built Environ., Glasgow Caledonian Univ., Glasgow, UK
Abstract :
A numerical model to simulate a partial discharge within a bound cavity is presented in this paper. The partial discharge inception voltage and current pulse characteristics are established numerically and compared against experimental tests. The defect geometry used in this work is associated with a high voltage transformer bushing, namely a cavity formed between a punctured aluminium grading foil layer and the surrounding oil impregnated paper insulation. In the simulations, hydrodynamic drift-diffusion formulation is used to transport electron, positive and negative ion concentrations under the influence of an electric field; the movement of species is translated into an external current pulse. Experimentally, a high speed oscilloscope is used to capture the current pulse during a discharge. The numerical technique, defect sample preparation and high voltage laboratory setup, are discussed in detail. The results show a good agreement between numerical and experimental methods.
Keywords :
diffusion; electric fields; electrohydrodynamics; finite element analysis; oscilloscopes; paper; partial discharges; potential transformers; power transformer insulation; transformer oil; air-filled cavity bound; current pulse characteristics; defect geometry; defect sample preparation; electric field; electrohydrodynamic; experimental validation; external current pulse; finite element method; high speed oscilloscope; high voltage laboratory setup; high voltage transformer bushing; hydrodynamic drift-diffusion formulation; negative ion concentrations; numerical modelling; partial discharge inception voltage; positive ion concentrations; punctured aluminium grading foil layer; surrounding oil impregnated paper insulation; transport electron; Atmospheric modeling; Cavity resonators; Discharges (electric); Geometry; Insulation; Numerical models; Partial discharges; dielectric breakdown; electrohydrodynamic; finite element method; partial discharge; pulse measurement;
Conference_Titel :
Electrical Insulation (ISEI), Conference Record of the 2012 IEEE International Symposium on
Conference_Location :
San Juan, PR
Print_ISBN :
978-1-4673-0488-7
Electronic_ISBN :
1089-084X
DOI :
10.1109/ELINSL.2012.6251439