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Effect of Semi-Conductive Layer Modified by Magnetic Particle SrFe(12)O(19) on Charge Injection Characteristics of HVDC Cable

For high voltage direct current (HVDC) cable, a semi-conductive layer lies between the conductor and the insulation layer; as the charge migrates the path from the conductor to the insulation material, it will affect space charge injection. In this work, the research idea of changing the injection p...

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Autores principales: Wei, Yanhui, Liu, Mingyue, Wang, Jiaxing, Li, Guochang, Hao, Chuncheng, Lei, Qingquan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6722589/
https://www.ncbi.nlm.nih.gov/pubmed/31387254
http://dx.doi.org/10.3390/polym11081309
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author Wei, Yanhui
Liu, Mingyue
Wang, Jiaxing
Li, Guochang
Hao, Chuncheng
Lei, Qingquan
author_facet Wei, Yanhui
Liu, Mingyue
Wang, Jiaxing
Li, Guochang
Hao, Chuncheng
Lei, Qingquan
author_sort Wei, Yanhui
collection PubMed
description For high voltage direct current (HVDC) cable, a semi-conductive layer lies between the conductor and the insulation layer; as the charge migrates the path from the conductor to the insulation material, it will affect space charge injection. In this work, the research idea of changing the injection path of moving charges within semi-conductive layer by magnetic particles was proposed. Semi-conductive composites with different SrFe(12)O(19) contents of 1 wt.%, 5 wt.%, 10 wt.%, 20 wt.%, and 30 wt.% were prepared, and the amount of injected charges in the insulation sample was characterized by space charge distribution, polarization current, and thermally-stimulated depolarization current. The experimental results show that a small amount of SrFe(12)O(19) can significantly reduce charge injection in the insulation sample, owing to the deflection of the charge migration path, and only part of the electrons can enter the insulation sample. When the content is 5 wt.%, the insulation sample has the smallest charge amount, 0.89 × 10(−7) C, decreasing by 37%, and the steady-state current is 6.01 × 10(−10) A, decreasing by 22%. When SrFe(12)O(19) content exceeds 10 wt.%, the charge suppression effect is not obvious and even leads to the increase of charge amount in the insulation sample, owing to the secondary injection of charges. Most moving charges will deflect towards the horizontal direction and cannot direct access to the insulation sample, resulting in a large number of charges accumulation in the semi-conductive layer. These charges will seriously enhance the interface electric field near the insulation sample, leading to the secondary injection of charges, which are easier to inject into the insulation sample.
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spelling pubmed-67225892019-09-10 Effect of Semi-Conductive Layer Modified by Magnetic Particle SrFe(12)O(19) on Charge Injection Characteristics of HVDC Cable Wei, Yanhui Liu, Mingyue Wang, Jiaxing Li, Guochang Hao, Chuncheng Lei, Qingquan Polymers (Basel) Article For high voltage direct current (HVDC) cable, a semi-conductive layer lies between the conductor and the insulation layer; as the charge migrates the path from the conductor to the insulation material, it will affect space charge injection. In this work, the research idea of changing the injection path of moving charges within semi-conductive layer by magnetic particles was proposed. Semi-conductive composites with different SrFe(12)O(19) contents of 1 wt.%, 5 wt.%, 10 wt.%, 20 wt.%, and 30 wt.% were prepared, and the amount of injected charges in the insulation sample was characterized by space charge distribution, polarization current, and thermally-stimulated depolarization current. The experimental results show that a small amount of SrFe(12)O(19) can significantly reduce charge injection in the insulation sample, owing to the deflection of the charge migration path, and only part of the electrons can enter the insulation sample. When the content is 5 wt.%, the insulation sample has the smallest charge amount, 0.89 × 10(−7) C, decreasing by 37%, and the steady-state current is 6.01 × 10(−10) A, decreasing by 22%. When SrFe(12)O(19) content exceeds 10 wt.%, the charge suppression effect is not obvious and even leads to the increase of charge amount in the insulation sample, owing to the secondary injection of charges. Most moving charges will deflect towards the horizontal direction and cannot direct access to the insulation sample, resulting in a large number of charges accumulation in the semi-conductive layer. These charges will seriously enhance the interface electric field near the insulation sample, leading to the secondary injection of charges, which are easier to inject into the insulation sample. MDPI 2019-08-05 /pmc/articles/PMC6722589/ /pubmed/31387254 http://dx.doi.org/10.3390/polym11081309 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wei, Yanhui
Liu, Mingyue
Wang, Jiaxing
Li, Guochang
Hao, Chuncheng
Lei, Qingquan
Effect of Semi-Conductive Layer Modified by Magnetic Particle SrFe(12)O(19) on Charge Injection Characteristics of HVDC Cable
title Effect of Semi-Conductive Layer Modified by Magnetic Particle SrFe(12)O(19) on Charge Injection Characteristics of HVDC Cable
title_full Effect of Semi-Conductive Layer Modified by Magnetic Particle SrFe(12)O(19) on Charge Injection Characteristics of HVDC Cable
title_fullStr Effect of Semi-Conductive Layer Modified by Magnetic Particle SrFe(12)O(19) on Charge Injection Characteristics of HVDC Cable
title_full_unstemmed Effect of Semi-Conductive Layer Modified by Magnetic Particle SrFe(12)O(19) on Charge Injection Characteristics of HVDC Cable
title_short Effect of Semi-Conductive Layer Modified by Magnetic Particle SrFe(12)O(19) on Charge Injection Characteristics of HVDC Cable
title_sort effect of semi-conductive layer modified by magnetic particle srfe(12)o(19) on charge injection characteristics of hvdc cable
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6722589/
https://www.ncbi.nlm.nih.gov/pubmed/31387254
http://dx.doi.org/10.3390/polym11081309
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