Designing a HVDC Insulation System to Endure Electrical and Thermal Stresses Under Operation. Part I: Partial Discharge Magnitude and Repetition Rate During Transients and in DC Steady State
This paper has the purpose to investigate HVDC insulation design considering real operating conditions, when DC steady-state is affected by frequent voltage transients or load variations that may be present during all life. Electrical field distribution in insulation, and in insulation defects, may...
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2021-01-01
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doaj-bb667da947ee4494bd5cf9cbc14636f62021-03-30T15:01:57ZengIEEEIEEE Access2169-35362021-01-019357303573910.1109/ACCESS.2021.30624409363895Designing a HVDC Insulation System to Endure Electrical and Thermal Stresses Under Operation. Part I: Partial Discharge Magnitude and Repetition Rate During Transients and in DC Steady StateHadi Naderiallaf0https://orcid.org/0000-0002-8241-4631Paolo Seri1https://orcid.org/0000-0002-8409-0853Gian Carlo Montanari2https://orcid.org/0000-0003-2025-8693Department of Electrical, Electronics and Information Engineering (DEI), University of Bologna, Bologna, ItalyDepartment of Electrical, Electronics and Information Engineering (DEI), University of Bologna, Bologna, ItalyDepartment of Electrical, Electronics and Information Engineering (DEI), University of Bologna, Bologna, ItalyThis paper has the purpose to investigate HVDC insulation design considering real operating conditions, when DC steady-state is affected by frequent voltage transients or load variations that may be present during all life. Electrical field distribution in insulation, and in insulation defects, may change significantly from DC steady-state when voltage and load vary with time, which can cause partial discharge activity often not been properly accounted for at the design stage. The Part I of this paper is dedicated to prove, through experiments, models and simulations, that electrical and thermal transients may incept partial discharges in defective insulations during cable energization, voltage polarity inversion at a constant nominal load, as well as during load variations at a constant nominal voltage. This can cause accelerated aging and premature breakdown even if the insulation system is designed properly to withstand DC electrothermal stress, without partial discharges in steady state, for all life, as it will be shown in Part II. Focus is on cables, but the approach described here is general for any DC insulation system.https://ieeexplore.ieee.org/document/9363895/Cable insulationDCvoltage and load transientsdesign methodologyfinite element analysispartial discharges |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Hadi Naderiallaf Paolo Seri Gian Carlo Montanari |
spellingShingle |
Hadi Naderiallaf Paolo Seri Gian Carlo Montanari Designing a HVDC Insulation System to Endure Electrical and Thermal Stresses Under Operation. Part I: Partial Discharge Magnitude and Repetition Rate During Transients and in DC Steady State IEEE Access Cable insulation DC voltage and load transients design methodology finite element analysis partial discharges |
author_facet |
Hadi Naderiallaf Paolo Seri Gian Carlo Montanari |
author_sort |
Hadi Naderiallaf |
title |
Designing a HVDC Insulation System to Endure Electrical and Thermal Stresses Under Operation. Part I: Partial Discharge Magnitude and Repetition Rate During Transients and in DC Steady State |
title_short |
Designing a HVDC Insulation System to Endure Electrical and Thermal Stresses Under Operation. Part I: Partial Discharge Magnitude and Repetition Rate During Transients and in DC Steady State |
title_full |
Designing a HVDC Insulation System to Endure Electrical and Thermal Stresses Under Operation. Part I: Partial Discharge Magnitude and Repetition Rate During Transients and in DC Steady State |
title_fullStr |
Designing a HVDC Insulation System to Endure Electrical and Thermal Stresses Under Operation. Part I: Partial Discharge Magnitude and Repetition Rate During Transients and in DC Steady State |
title_full_unstemmed |
Designing a HVDC Insulation System to Endure Electrical and Thermal Stresses Under Operation. Part I: Partial Discharge Magnitude and Repetition Rate During Transients and in DC Steady State |
title_sort |
designing a hvdc insulation system to endure electrical and thermal stresses under operation. part i: partial discharge magnitude and repetition rate during transients and in dc steady state |
publisher |
IEEE |
series |
IEEE Access |
issn |
2169-3536 |
publishDate |
2021-01-01 |
description |
This paper has the purpose to investigate HVDC insulation design considering real operating conditions, when DC steady-state is affected by frequent voltage transients or load variations that may be present during all life. Electrical field distribution in insulation, and in insulation defects, may change significantly from DC steady-state when voltage and load vary with time, which can cause partial discharge activity often not been properly accounted for at the design stage. The Part I of this paper is dedicated to prove, through experiments, models and simulations, that electrical and thermal transients may incept partial discharges in defective insulations during cable energization, voltage polarity inversion at a constant nominal load, as well as during load variations at a constant nominal voltage. This can cause accelerated aging and premature breakdown even if the insulation system is designed properly to withstand DC electrothermal stress, without partial discharges in steady state, for all life, as it will be shown in Part II. Focus is on cables, but the approach described here is general for any DC insulation system. |
topic |
Cable insulation DC voltage and load transients design methodology finite element analysis partial discharges |
url |
https://ieeexplore.ieee.org/document/9363895/ |
work_keys_str_mv |
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