Mismatched Circulation Conditions and Evaluation of Single-core Submarine Cables

被引:0
|
作者
Li Y. [1 ]
Wang M. [1 ]
Qiao J. [1 ]
Liu X. [1 ]
Song H. [1 ]
机构
[1] School of Electric and Electronic Engineering, North China Electric Power University, Hebei Province, Baoding
来源
关键词
circulation; distributed impedance matrix; submarine cable; submarine cable defects;
D O I
10.13335/j.1000-3673.pst.2023.0248
中图分类号
学科分类号
摘要
The submarine cable is an important component of offshore wind power system and the grounding circulation is a key factor to restrict the designing and operating of the submarine cable. Practical operating experiences show that there is a serious imbalance of the grounding currents in the onshore and offshore sections in the offshore wind field, but the cause of this mismatching is unknown, let alone a clear judgment on the operating state of the offshore cables with this phenomenon. In this paper, based on the actual structure of the submarine cable, we establish a distribution parameter model. For both the armor grounding and the armor/sheath grounding, the submarine cable grounding circulating currents are analyzed. The reason for the extremely mismatching grounding circulating current of the armor grounding cable is the existence of a short circuit resistance between the armor and the sheath of the offshore section; the reason for the extremely mismatching grounding circulating current of the armor/sheath grounding cable is the existence of a short circuit resistance between the armor and sheath or mismatched grounding resistance at both the ends of the cable. On this basis, an evaluation system of the submarine cable operating condition based on the circulation is proposed, which may provide a reference for the judgment of the actual submarine cable operating condition. © 2024 Power System Technology Press. All rights reserved.
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页码:1770 / 1778
页数:8
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共 23 条
  • [1] LUO Kui, GUO Jianbo, MA Shicong, Review of key technologies of reliability analysis and improvement for offshore wind power grid integration[J], Power System Technology, 46, 10, pp. 3691-3702, (2022)
  • [2] KANG Chongqing, DU Ershun, GUO Hongye, Primary exploration of six essential factors in new power system[J], Power System Technology, 47, 5, pp. 1741-1750, (2023)
  • [3] ZHANG Zheren, CHEN Qing, JIN Yanqiu, Optimal operation frequency for medium frequency grid-following offshore wind farm integrated by MMC-HVDC[J], Power System Technology, 46, 8, pp. 2881-2888, (2022)
  • [4] LV Anqiang, KOU Xin, YIN Chengqun, Modeling of temperature relation between optical Fiber and conductor in 3-core submarine power cable[J], Transactions of China Electrotechnical Society, 31, 18, pp. 59-65, (2016)
  • [5] Xing XU, Xiangrong CHEN, MENG Fanbo, Performance of different grounding systems of 500kV XLPE long submarine cables based on improved multiconductor analysis method[J], Electric Power Systems Research, 202, (2022)
  • [6] YUAN Kai, CHEN Xuejun, Analysis of long cable transmission model based on mathCAD[J], Journal of Shanghai University of Engineering Science, 29, 4, pp. 331-336, (2015)
  • [7] HASHEMINEZHAD M, VAKILIAN M, BLACKBURN T R, Direct introduction of semicon layers in XLPE cable model[C], Proceedings of the 2006 International Conference on Power System Technology, pp. 1-7, (2006)
  • [8] LIU Shili, LUO Yingnan, LIU Zongye, Study on loss characteristics of three core armored cable under low-frequency transmission mode based on electromagnetic , thermal coupling principle[J], Transactions of China Electrotechnical Society, 36, 22, pp. 4829-4836, (2021)
  • [9] DEL-PINO-LOPEZ J C, CRUZ-ROMERO P, Experimental validation of ultra-shortened 3D finite element electromagnetic modeling of three-core armored cables at power frequency[J], Electric Power Systems Research, 203, (2022)
  • [10] BENATO R, SESSA S D., A new multiconductor cell three-dimension matrix-based analysis applied to a three-core armoured cable[J], IEEE Transactions on Power Delivery, 33, 4, pp. 1636-1646, (2018)