Effect of Interplay between Parallel and Perpendicular Magnetic and Electric Fields on Partial Discharges

This paper reports on the influence of a magnetic field on the dynamics of partial discharges (PDs) in two distinct configurations with respect to the mutual orientation of electric fields. The broad application areas include electrical insulation systems of both high-voltage grids and industrial ne...

Full description

Bibliographic Details
Main Author: Marek Florkowski
Format: Article
Language:English
Published: MDPI AG 2023-06-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/16/13/4847
_version_ 1797591847902642176
author Marek Florkowski
author_facet Marek Florkowski
author_sort Marek Florkowski
collection DOAJ
description This paper reports on the influence of a magnetic field on the dynamics of partial discharges (PDs) in two distinct configurations with respect to the mutual orientation of electric fields. The broad application areas include electrical insulation systems of both high-voltage grids and industrial network devices as well as emerging segments such as electric vehicles or more electric aircraft. Traditionally, PD measurements are only carried out in an electric field. In all current-carrying power equipment, magnetic fields are also superimposed onto electric ones, thus influencing partial discharge behavior. It has been observed that the interplay between electric and magnetic fields influences the dynamics of PDs; parallel and perpendicular mutual orientations were specifically investigated. The measurement technique allowed us to quantitively detect the effect of magnetic fields on PDs in a corona point–plane arrangement. The novel element presented in this article is a detection of PD intensity modulated by a magnetic field, with both perpendicular and parallel orientations with respect to electric one, and a quantitative visualization in the form of the time-sequence diagrams. The simulation of electron trajectories in the presence of electric and magnetic fields revealed the elongation of the pathways and differentiation of the charged particle propagation times. The perpendicularly oriented magnetic field led to a twisting effect, whereas the parallel alignment reflected the propagation along a helical trajectory. A slightly stronger PD intensity amplification effect was observed in the case of a parallel alignment of electric versus magnetic fields as compared with the perpendicular orientation. The presented results may contribute to PD measurement methodology in both electric and magnetic fields as well as a better understanding of the underlying physical mechanisms. The observed effect of the modulation of the magnetically based PD dynamics may be relevant for the insulation systems of power equipment.
first_indexed 2024-03-11T01:43:13Z
format Article
id doaj.art-9fbfa82c12804757926599e4735448ca
institution Directory Open Access Journal
issn 1996-1073
language English
last_indexed 2024-03-11T01:43:13Z
publishDate 2023-06-01
publisher MDPI AG
record_format Article
series Energies
spelling doaj.art-9fbfa82c12804757926599e4735448ca2023-11-18T16:26:44ZengMDPI AGEnergies1996-10732023-06-011613484710.3390/en16134847Effect of Interplay between Parallel and Perpendicular Magnetic and Electric Fields on Partial DischargesMarek Florkowski0Department of Electrical and Power Engineering, AGH University of Science and Technology, Al. Mickiewicza 30, 30-059 Kraków, PolandThis paper reports on the influence of a magnetic field on the dynamics of partial discharges (PDs) in two distinct configurations with respect to the mutual orientation of electric fields. The broad application areas include electrical insulation systems of both high-voltage grids and industrial network devices as well as emerging segments such as electric vehicles or more electric aircraft. Traditionally, PD measurements are only carried out in an electric field. In all current-carrying power equipment, magnetic fields are also superimposed onto electric ones, thus influencing partial discharge behavior. It has been observed that the interplay between electric and magnetic fields influences the dynamics of PDs; parallel and perpendicular mutual orientations were specifically investigated. The measurement technique allowed us to quantitively detect the effect of magnetic fields on PDs in a corona point–plane arrangement. The novel element presented in this article is a detection of PD intensity modulated by a magnetic field, with both perpendicular and parallel orientations with respect to electric one, and a quantitative visualization in the form of the time-sequence diagrams. The simulation of electron trajectories in the presence of electric and magnetic fields revealed the elongation of the pathways and differentiation of the charged particle propagation times. The perpendicularly oriented magnetic field led to a twisting effect, whereas the parallel alignment reflected the propagation along a helical trajectory. A slightly stronger PD intensity amplification effect was observed in the case of a parallel alignment of electric versus magnetic fields as compared with the perpendicular orientation. The presented results may contribute to PD measurement methodology in both electric and magnetic fields as well as a better understanding of the underlying physical mechanisms. The observed effect of the modulation of the magnetically based PD dynamics may be relevant for the insulation systems of power equipment.https://www.mdpi.com/1996-1073/16/13/4847partial dischargesmagnetic fieldelectrical insulation
spellingShingle Marek Florkowski
Effect of Interplay between Parallel and Perpendicular Magnetic and Electric Fields on Partial Discharges
Energies
partial discharges
magnetic field
electrical insulation
title Effect of Interplay between Parallel and Perpendicular Magnetic and Electric Fields on Partial Discharges
title_full Effect of Interplay between Parallel and Perpendicular Magnetic and Electric Fields on Partial Discharges
title_fullStr Effect of Interplay between Parallel and Perpendicular Magnetic and Electric Fields on Partial Discharges
title_full_unstemmed Effect of Interplay between Parallel and Perpendicular Magnetic and Electric Fields on Partial Discharges
title_short Effect of Interplay between Parallel and Perpendicular Magnetic and Electric Fields on Partial Discharges
title_sort effect of interplay between parallel and perpendicular magnetic and electric fields on partial discharges
topic partial discharges
magnetic field
electrical insulation
url https://www.mdpi.com/1996-1073/16/13/4847
work_keys_str_mv AT marekflorkowski effectofinterplaybetweenparallelandperpendicularmagneticandelectricfieldsonpartialdischarges