Cargando…

Direct Current Electrical Performances of Cable Accessory Insulation EPDM Modified by Grafting Polar-Group Compound

In order to improve electrical matching between ethylene-propylene-diene misch-polymere (EPDM) reinforce insulation and crosslinked polyethylene (XLPE) main insulation in direct current (DC) cable accessories, the glyceryl monooleate (GMO) organic compound composed of several polar-groups and one lo...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Zhong-Yuan, Sun, Wei-Feng, Zhang, Jian, Liang, Jian-Quan, Wang, Lei, Zhang, Ke-Xin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9655382/
https://www.ncbi.nlm.nih.gov/pubmed/36365621
http://dx.doi.org/10.3390/polym14214625
_version_ 1784829172106919936
author Li, Zhong-Yuan
Sun, Wei-Feng
Zhang, Jian
Liang, Jian-Quan
Wang, Lei
Zhang, Ke-Xin
author_facet Li, Zhong-Yuan
Sun, Wei-Feng
Zhang, Jian
Liang, Jian-Quan
Wang, Lei
Zhang, Ke-Xin
author_sort Li, Zhong-Yuan
collection PubMed
description In order to improve electrical matching between ethylene-propylene-diene misch-polymere (EPDM) reinforce insulation and crosslinked polyethylene (XLPE) main insulation in direct current (DC) cable accessories, the glyceryl monooleate (GMO) organic compound composed of several polar-groups and one long carbon chain is employed for chemical graft modification on EPDM to ameliorate DC electrical performances. Charge trap characteristics are analyzed by testing thermal stimulation current (TSC) and verified by calculating first-principles electronic properties to elucidate the GMO-graft-modified charge trapping mechanism accounting for DC electric conductance and dielectric breakdown. The grafted GMO molecules introduce substantial shallow charge traps that lead to nonlinear profiles of electric conduction versus electric field and cause hopping transports of percolation conductance. Electric conductance of EPDM is significantly improved by GMO graft for electrical matching with XLPE, while a high level of dielectric breakdown strength is retained sufficiently for reinforce insulation in cable accessories. Shallow charge traps introduced by GMO graft are capable of capturing charge carriers to form homocharge layers near electrodes which can scatter the transporting charge carriers and exclude further charge injections, thus to mitigate the dielectric breakdown strength reduction caused by electric conductivity improvement. Electric field finite-element simulations demonstrate that the electric field in DC cable terminals can be evidently homogenized by using GMO-grafted EPDM as reinforce insulation.
format Online
Article
Text
id pubmed-9655382
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96553822022-11-15 Direct Current Electrical Performances of Cable Accessory Insulation EPDM Modified by Grafting Polar-Group Compound Li, Zhong-Yuan Sun, Wei-Feng Zhang, Jian Liang, Jian-Quan Wang, Lei Zhang, Ke-Xin Polymers (Basel) Article In order to improve electrical matching between ethylene-propylene-diene misch-polymere (EPDM) reinforce insulation and crosslinked polyethylene (XLPE) main insulation in direct current (DC) cable accessories, the glyceryl monooleate (GMO) organic compound composed of several polar-groups and one long carbon chain is employed for chemical graft modification on EPDM to ameliorate DC electrical performances. Charge trap characteristics are analyzed by testing thermal stimulation current (TSC) and verified by calculating first-principles electronic properties to elucidate the GMO-graft-modified charge trapping mechanism accounting for DC electric conductance and dielectric breakdown. The grafted GMO molecules introduce substantial shallow charge traps that lead to nonlinear profiles of electric conduction versus electric field and cause hopping transports of percolation conductance. Electric conductance of EPDM is significantly improved by GMO graft for electrical matching with XLPE, while a high level of dielectric breakdown strength is retained sufficiently for reinforce insulation in cable accessories. Shallow charge traps introduced by GMO graft are capable of capturing charge carriers to form homocharge layers near electrodes which can scatter the transporting charge carriers and exclude further charge injections, thus to mitigate the dielectric breakdown strength reduction caused by electric conductivity improvement. Electric field finite-element simulations demonstrate that the electric field in DC cable terminals can be evidently homogenized by using GMO-grafted EPDM as reinforce insulation. MDPI 2022-10-31 /pmc/articles/PMC9655382/ /pubmed/36365621 http://dx.doi.org/10.3390/polym14214625 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Zhong-Yuan
Sun, Wei-Feng
Zhang, Jian
Liang, Jian-Quan
Wang, Lei
Zhang, Ke-Xin
Direct Current Electrical Performances of Cable Accessory Insulation EPDM Modified by Grafting Polar-Group Compound
title Direct Current Electrical Performances of Cable Accessory Insulation EPDM Modified by Grafting Polar-Group Compound
title_full Direct Current Electrical Performances of Cable Accessory Insulation EPDM Modified by Grafting Polar-Group Compound
title_fullStr Direct Current Electrical Performances of Cable Accessory Insulation EPDM Modified by Grafting Polar-Group Compound
title_full_unstemmed Direct Current Electrical Performances of Cable Accessory Insulation EPDM Modified by Grafting Polar-Group Compound
title_short Direct Current Electrical Performances of Cable Accessory Insulation EPDM Modified by Grafting Polar-Group Compound
title_sort direct current electrical performances of cable accessory insulation epdm modified by grafting polar-group compound
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9655382/
https://www.ncbi.nlm.nih.gov/pubmed/36365621
http://dx.doi.org/10.3390/polym14214625
work_keys_str_mv AT lizhongyuan directcurrentelectricalperformancesofcableaccessoryinsulationepdmmodifiedbygraftingpolargroupcompound
AT sunweifeng directcurrentelectricalperformancesofcableaccessoryinsulationepdmmodifiedbygraftingpolargroupcompound
AT zhangjian directcurrentelectricalperformancesofcableaccessoryinsulationepdmmodifiedbygraftingpolargroupcompound
AT liangjianquan directcurrentelectricalperformancesofcableaccessoryinsulationepdmmodifiedbygraftingpolargroupcompound
AT wanglei directcurrentelectricalperformancesofcableaccessoryinsulationepdmmodifiedbygraftingpolargroupcompound
AT zhangkexin directcurrentelectricalperformancesofcableaccessoryinsulationepdmmodifiedbygraftingpolargroupcompound