An Examination of Geomagnetic Induction in Submarine Cables

被引:4
|
作者
Boteler, David H. [1 ]
Chakraborty, Shibaji [2 ]
Shi, Xueling [2 ,3 ]
Hartinger, Michael D. [4 ]
Wang, Xuan [5 ]
机构
[1] Nat Resources Canada, Geomagnet Lab, Ottawa, ON, Canada
[2] Virginia Tech, Ctr Space Sci & Engn Res, Blacksburg, VA USA
[3] Natl Ctr Atmospher Res, High Altitude Observ, Boulder, CO USA
[4] Space Sci Inst, Boulder, CO USA
[5] Tsinghua Univ, Dept Elect Engn, Beijing, Peoples R China
基金
美国国家航空航天局; 美国国家科学基金会;
关键词
submarine cables; geomagnetic storm; geomagnetically induced currents; INDUCED CURRENTS; DISTURBANCES; SYSTEM;
D O I
10.1029/2023SW003687
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Submarine cables have experienced problems during extreme geomagnetic disturbances because of geomagnetically induced voltages adding or subtracting from the power feed to the repeaters. This is still a concern for modern fiber-optic cables because they contain a copper conductor to carry power to the repeaters. This paper provides a new examination of geomagnetic induction in submarine cables and makes calculations of the voltages experienced by the TAT-8 trans-Atlantic submarine cable during the March 1989 magnetic storm. It is shown that the cable itself experiences an induced electromotive force (emf) and that induction in the ocean also leads to changes of potential of the land at each end of the cable. The process for calculating the electric fields induced in the sea and in the cable from knowledge of the seawater depth and conductivity and subsea conductivity is explained. The cable route is divided into 9 sections and the seafloor electric field is calculated for each section. These are combined to give the total induced emf in the cable. In addition, induction in the seawater and leakage of induced currents through the underlying resistive layers are modeled using a transmission line model of the ocean and underlying layers to determine the change in Earth potentials at the cable ends. The induced emf in the cable and the end potentials are then combined to give the total voltage change experienced by the cable power feed equipment. This gives results very close to those recorded on the TAT-8 cable in March 1989. Submarine cables carry a significant amount of international internet traffic, so any disruption to their operation could have widespread consequences. In the past, trans-Atlantic phone calls have been heard alternately as shrieks and whispers as geomagnetically induced voltages added or subtracted from the power feed for the cable repeaters used to amplify the signals. Modern submarine cables transmit the signals along optical fibers but still have a copper conductor along the cable to carry power to the repeaters, so continue to be subject to voltages induced by disturbances of the Earth's magnetic field. This paper re-examines the process of geomagnetic induction in the sea and submarine cables. It is shown that this involves both the production of an induced electromotive force (emf) in the cable itself as well as induction in the seawater that leads to a change in the potential of the land at each end of the cable. Example calculations are made for the TAT-8 trans-Atlantic cable and compared to measurements made on the cable during 13 and 14 March 1989, the largest magnetic storm of the 20th century. Geomagnetic disturbances induce electric fields in both the sea and in submarine cables Earth potentials are produced by the geoelectric coast effect at each end of a cable route Voltages experienced by submarine cables are due to both the induced electric fields and earth potentials at the ends
引用
收藏
页数:16
相关论文
共 50 条
  • [41] Innovative Electrodes for HVDC Submarine Cables
    Pompili, Massimo
    Cauzillo, Bruno Antonio
    IEEE TRANSACTIONS ON POWER DELIVERY, 2016, 31 (03) : 1310 - 1316
  • [42] Electrothermal coupling analysis of submarine cables
    Yang, Junhui
    Zhang, Yuteng
    Bai, Yong
    SHIPS AND OFFSHORE STRUCTURES, 2024,
  • [43] WORLD RECORD HVDC SUBMARINE CABLES
    ILDSTAD, E
    IEEE ELECTRICAL INSULATION MAGAZINE, 1994, 10 (04) : 64 - &
  • [44] DEVELOPMENT OF MULTIFIBER OPTICAL SUBMARINE CABLES
    OHSHIRO, S
    OHBA, M
    KAWATA, O
    NTT REVIEW, 1991, 3 (06): : 45 - 50
  • [45] Submarine Cables: The Handbook of Law and Policy
    Coffen-Smout, Scott
    OCEAN YEARBOOK, 2016, 30 (01): : 583 - 587
  • [46] Submarine Cables and the Marine Environment: Bringing the First Submarine Cable to the Galapagos
    Rodriguez, Vanessa Arellano
    OCEAN DEVELOPMENT AND INTERNATIONAL LAW, 2021, 52 (03): : 274 - 296
  • [47] LOCATION FINDING OF OFFRSHORE SUBMARINE CABLES.
    Suzuki, Shizuo
    Shirasaki, Yuuichi
    Iwamoto, Yoshinao
    Proceedings of the Annual Offshore Technology Conference, 1981, 1 : 319 - 326
  • [48] Submarine Telecommunication Cables in Disputed Maritime Areas
    Van Logchem, Youri
    OCEAN DEVELOPMENT AND INTERNATIONAL LAW, 2014, 45 (01): : 107 - 122
  • [49] Autonomous underwater vehicle for inspection of submarine cables
    Kojima, Junichi
    Kato, Yoichi
    Asakawa, Kenichi
    Proceedings of the International Offshore and Polar Engineering Conference, 1999, 2 : 458 - 462
  • [50] Protection of Submarine Cables against Acts of Terrorism
    Liao, Xuexia
    OCEAN YEARBOOK, 2019, 33 (01): : 456 - 486