Abstract

This paper describes a correlation of partial discharge phase-resolved patterns with an optical imaging performed in a non-uniform electric field configuration. The influence of different dielectric barrier materials, placed on the plane electrode, on the discharge propagation and surface landing was investigated. The investigations were focused on the corona at positive polarity of AC high voltage. It was found that the initial positive corona stage is similar for all cases whereas the discharge propagation and surface landing strongly depends on the barrier material properties. The observed streamer discharge modes have been described by the geometrical measures such as stem length, stretch of a discharge profile on the dielectric barrier surface and an hemispherical envelope of discharge filaments. Since various dielectrics reveal different properties of charge accumulation and surface neutralization, the charge memory effect may be visible and can be related to the ability to create and sustain of additional electric field component. It may refer to subsequent discharges as well as to conditions faced at the voltage polarity reversal. The correspondence between different forms of phase-resolved patterns have been associated with the modes of streamer discharges observed by optical imaging. Presented methodology poses huge potential for both scientific investigations on underlying discharge phenomena as well as on the application in future diagnostic systems of HV insulation.

Highlights

  • The background of this research is related to further understanding the discharge propagation mechanism

  • Air at atmospheric pressure is a very popular insulation medium in high voltage equipment, which is becoming more and more compact and operates on lower margins compared to the criteria in the past, due to our better understanding of the underlying mechanisms

  • This paper presents discharge imaging phases in a strongly non-uniform electric field, represented by a point-plane configuration

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Summary

Introduction

The background of this research is related to further understanding the discharge propagation mechanism. Air at atmospheric pressure is a very popular insulation medium in high voltage equipment, which is becoming more and more compact and operates on lower margins compared to the criteria in the past, due to our better understanding of the underlying mechanisms This refers, for example, to both overhead lines, switchgears, dry-type transformers, insulators where usually long gaps are considered with a leader discharge mechanism as well as to micro distance or inclusions where Townsend or streamer to spark discharges are observed. The surface phenomena may have different origin such as ionic drift, conduction along the barrier surface and recombination, or trapping into dielectric or bulk conduction In this context, the charge memory effect may visible and can be related to the ability to create and sustain of additional electric field component [15,16,17]. Presented methodology poses huge potential for both scientific investigations on underlying discharge phenomena as well as on the application in future diagnostic systems of HV insulation

Partial Discharge Mechanism in Strongly Non-Uniform Electric Field
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