Space Charge and Electric Field Dependent on Polarity Reversal of HVDC Cable Insulation

被引:4
作者
Li, Zhonglei [1 ]
Zheng, Zhong [1 ]
Wu, You [1 ]
Du, Boxue [1 ]
机构
[1] Tianjin Univ, Sch Elect & Informat Engn, Tianjin 300072, Peoples R China
基金
中国国家自然科学基金;
关键词
Electric field; high voltage direct current (HVDC) cable; polarity reversal voltage; space charge; temperature gradient; VOLTAGE REVERSAL; NANOCOMPOSITES; TRANSPORT; DC;
D O I
10.1109/TDEI.2023.3335189
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This article focuses on the effect of the polarity reversal on the space charge behavior and electric field evolution of +/- 500-kV HVDC cables under different temperature gradients. A modified bipolar electronic-ionic charge transport (BEICT) model of XLPE insulation considering the dissociation of impurities is established for full-sized cables. The results demonstrate that the increase in temperature gradient accelerates the injection and migration of homocharge in the vicinity of the inner semi-conductive layer under dc voltage, which leads to a higher electric field immediately after polarity reversal occurring on the interior side of the insulation. As the temperature gradient increases from 0(degrees)C to 30 C-degrees, the rate of charge variation increases more than tenfold, and the maximum electric field value increases by 15.8% during polarity reversal. Prolonging the polarity reversal period (PRP) results in the accumulation of negative space charge on the inner side of the insulation during polarity reversal, leading to a weakening of the maximum electric field. When the PRP increases from 300 ms to 120 s, the maximum electric field decreases by 9.8%. Moreover, a relaxation period of 600 s when the voltage drops to 0 kV will further reduce the maximum electric field by 16.1%. It is concluded that electron injection and carrier recombination dominate the charge behaviors on the interior side of the insulation during the polarity reversal, which are the primary factors affecting the electric field distortion.
引用
收藏
页码:58 / 65
页数:8
相关论文
共 19 条
  • [1] Testing Challenges in the Development of Innovative Extruded Insulation for HVDC Cables
    Albertini, M.
    Bononi, S. Franchi
    Giannini, S.
    Mazzanti, G.
    Guerrini, N.
    [J]. IEEE ELECTRICAL INSULATION MAGAZINE, 2021, 37 (06) : 21 - 32
  • [2] Space charge dynamics in double-layered insulation cable under polarity reversal voltage
    Chen, Jiming
    Gao, Ying
    Zhu, Mingxiao
    Li, Jiacai
    Yu, Qianyu
    [J]. IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2020, 27 (02) : 622 - 630
  • [3] Effect of Voltage Reversal on Space Charge and Transient Field in LDPE Films under Temperature Gradient
    Chen, X.
    Wang, X.
    Wu, K.
    Peng, Z. R.
    Cheng, Y. H.
    Tu, D. M.
    [J]. IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2012, 19 (01) : 140 - 149
  • [4] Electric Field in Polymeric Cable due to Space Charge Accumulation under DC and Temperature Gradient
    Choo, W.
    Chen, G.
    Swingler, S. G.
    [J]. IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2011, 18 (02) : 596 - 606
  • [5] Life-Based Geometric Design of HVDC Cables-Part 2: Effect of Electrical and Thermal Transients
    Diban, Bassel
    Mazzanti, Giovanni
    Seri, Paolo
    [J]. IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2023, 30 (01) : 97 - 105
  • [6] Du BX, 2019, IEEE T DIELECT EL IN, V26, P876, DOI [10.1109/TDEI.2019.007858, 10.1109/TDEI.2019.8726036]
  • [7] Space charge formation and its modified electric field under applied voltage reversal and temperature gradient in XLPE cable
    Fu, M.
    Dissado, L. A.
    Chen, G.
    Fothergill, J. C.
    [J]. IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2008, 15 (03) : 851 - 860
  • [8] Investigation of charge transport and breakdown properties in XLPE/GO nanocomposites part 2: Effect of polarity reversal
    Han, Chenlei
    Du, B. X.
    Li, Jin
    Li, Zhonglei
    Tanaka, Toshikatsu
    [J]. IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2020, 27 (04) : 1213 - 1221
  • [9] Huang M, 2014, IEEE T DIELECT EL IN, V21, P331, DOI [10.1109/TDEI.2014.6740757, 10.1109/TDEI.2013.004010]
  • [10] Calculation of Electric Fields in HVDC Cables: Comparison of Different Models
    Kumara, Sarath
    Serdyuk, Yuriy, V
    Jeroense, Marc
    [J]. IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2021, 28 (03) : 1070 - 1078