LAPSE:2023.6462
Published Article

LAPSE:2023.6462
Study of Discharge Inception and Propagation in Liquid−Solid Insulation System under DC−LI Superimposed Constraints
February 23, 2023
Abstract
High-voltage direct current (HVDC) links are starting to become widely implemented thanks to their interesting advantages such as reduced operation losses, the absence of reactive power, which allows energy transport via underground cables over long distances, and improved power control. The latter advantage is very essential for renewable energy resource integration into power grids. However, a thorough understanding of the behavior of insulation systems for HVDC components is critical so as to ensure a more reliable service. Indeed, the existence of the direct current (DC) voltage in HVDC components may induce surface and space charge accumulation that can stress insulation further or even promote discharge inception and propagation. As such, this work focuses on showcasing the effect of surface charge on streamers that develop on the interface of liquid−solid insulation due to the advent of lightning impulse (LI) voltage in the HVDC link. This study was performed using finite-element-based numerical simulations that include a quasi-electrostatic model for surface charge accumulation and an electrohydrodynamic fluid model for streamer initiation and propagation. The geometry used was point−plane configuration where the high voltage is applied to the needle electrode located above the liquid−solid interface. The obtained results suggest that streamer initiation is affected by both the accumulated surface charge density and polarity. For a positive streamer, an accumulation of positive surface charge increases the discharge inception voltage as a result of a weakening in the electric field, while an accumulation of negative surface charge decreases the discharge inception voltage due to an intensification in the electric field. Moreover, streamer travel distance and velocity are also both shown to be affected by surface charge accumulation.
High-voltage direct current (HVDC) links are starting to become widely implemented thanks to their interesting advantages such as reduced operation losses, the absence of reactive power, which allows energy transport via underground cables over long distances, and improved power control. The latter advantage is very essential for renewable energy resource integration into power grids. However, a thorough understanding of the behavior of insulation systems for HVDC components is critical so as to ensure a more reliable service. Indeed, the existence of the direct current (DC) voltage in HVDC components may induce surface and space charge accumulation that can stress insulation further or even promote discharge inception and propagation. As such, this work focuses on showcasing the effect of surface charge on streamers that develop on the interface of liquid−solid insulation due to the advent of lightning impulse (LI) voltage in the HVDC link. This study was performed using finite-element-based numerical simulations that include a quasi-electrostatic model for surface charge accumulation and an electrohydrodynamic fluid model for streamer initiation and propagation. The geometry used was point−plane configuration where the high voltage is applied to the needle electrode located above the liquid−solid interface. The obtained results suggest that streamer initiation is affected by both the accumulated surface charge density and polarity. For a positive streamer, an accumulation of positive surface charge increases the discharge inception voltage as a result of a weakening in the electric field, while an accumulation of negative surface charge decreases the discharge inception voltage due to an intensification in the electric field. Moreover, streamer travel distance and velocity are also both shown to be affected by surface charge accumulation.
Record ID
Keywords
converter transformer, HVDC, lightning impulse, numerical simulation, partial discharge, polarity reversal, streamer, streamer travel distance, streamer velocity, surface charge
Subject
Suggested Citation
Moufakkir Y, Zouaghi A, Vollaire C. Study of Discharge Inception and Propagation in Liquid−Solid Insulation System under DC−LI Superimposed Constraints. (2023). LAPSE:2023.6462
Author Affiliations
Moufakkir Y: Univ Lyon, Ecole Centrale de Lyon, INSA Lyon, Université Lyon 1, CNRS, Ampère, UMR5005, 69130 Ecully, France [ORCID]
Zouaghi A: Univ Lyon, Ecole Centrale de Lyon, INSA Lyon, Université Lyon 1, CNRS, Ampère, UMR5005, 69130 Ecully, France [ORCID]
Vollaire C: Univ Lyon, Ecole Centrale de Lyon, INSA Lyon, Université Lyon 1, CNRS, Ampère, UMR5005, 69130 Ecully, France [ORCID]
Zouaghi A: Univ Lyon, Ecole Centrale de Lyon, INSA Lyon, Université Lyon 1, CNRS, Ampère, UMR5005, 69130 Ecully, France [ORCID]
Vollaire C: Univ Lyon, Ecole Centrale de Lyon, INSA Lyon, Université Lyon 1, CNRS, Ampère, UMR5005, 69130 Ecully, France [ORCID]
Journal Name
Energies
Volume
16
Issue
1
First Page
172
Year
2022
Publication Date
2022-12-23
ISSN
1996-1073
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Original Submission
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PII: en16010172, Publication Type: Journal Article
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LAPSE:2023.6462
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https://doi.org/10.3390/en16010172
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Feb 23, 2023
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