Reconsidering the effectiveness of quasi-static thunderstorm electric fields for whistler duct formation

被引:14
|
作者
McCormick, RJ [1 ]
Rodger, CJ [1 ]
Thomson, NR [1 ]
机构
[1] Univ Otago, Dept Phys, Dunedin, New Zealand
关键词
whistler ducts; ionospheric conductivity; thunderstorms;
D O I
10.1029/2001JA009219
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
[1] It has been suggested that E x B mixing of magnetospheric plasma can lead to geomagnetic field-aligned ionization enhancements termed whistler ducts. DC electric fields from thunderstorms have been put forward as the source of the required radial electrostatic field. Recent experimental observations have indicated that quasi-static radial thunderstorm electric fields are not responsible for whistler duct fort-nation. This evidence appears to be in contradiction to the current theoretical calculations. In this paper we reconsider whistler duct formation through quasi-static thunderstorm electric fields. Both the charge distributions and ionospheric profiles previously used are based on rather dated assumptions. We find that more realistic thunderstorm charge distributions in conjunction with the earlier ionospheric profiles produce high-altitude electric fields that are of insufficient strength, given average thunderstorm effective charge, to create dueling within a reasonable time period. This is, however, not confirmed when the same charge distributions are examined using a more modem ionospheric profile based on international standard models for the ionosphere and neutral atmosphere. In this case some charge distributions will lead to realistic whistler duct creation. Our modeling suggests that quasi-electrostatic radial fields from thunderstorms could drive whistler duct formation in some situations.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Thunderstorm and fair-weather quasi-static electric fields over land and ocean
    Wilson, Jennifer G.
    Cummins, Kenneth L.
    [J]. ATMOSPHERIC RESEARCH, 2021, 257
  • [2] THEMIS measurements of quasi-static electric fields in the inner magnetosphere
    Califf, S.
    Li, X.
    Blum, L.
    Jaynes, A.
    Schiller, Q.
    Zhao, H.
    Malaspina, D.
    Hartinger, M.
    Wolf, R. A.
    Rowland, D. E.
    Wygant, J. R.
    Bonnell, J. W.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2014, 119 (12) : 9939 - 9951
  • [3] EFFECT OF QUASI-STATIC ELECTRIC FIELDS ON VAN ALLEN PARTICLES
    DUNGEY, JW
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH, 1963, 68 (11): : 3540 - +
  • [4] Electron dynamics in the laser and quasi-static electric and magnetic fields
    Zhang, Yanzeng
    Krasheninnikov, S., I
    [J]. PHYSICS LETTERS A, 2018, 382 (27) : 1801 - 1806
  • [5] Visualizing Quasi-Static Electric Fields with Flexible and Printed Organic Transistors
    Shoji, Itsuki
    Wada, Hideki
    Uto, Kodai
    Takeda, Yasunori
    Sugimoto, Toshiyuki
    Matsui, Hiroyuki
    [J]. ADVANCED MATERIALS TECHNOLOGIES, 2021, 6 (12):
  • [6] GRADIENT ESTIMATES FOR ELECTRIC FIELDS WITH MULTISCALE INCLUSIONS IN THE QUASI-STATIC REGIME
    Deng, Youjun
    Fang, Xiaoping
    Liu, Hongyu
    [J]. MULTISCALE MODELING & SIMULATION, 2022, 20 (02): : 641 - 656
  • [7] MODULATED METER FOR STRENGTH OF WEAK QUASI-STATIC ELECTRIC-FIELDS
    MUSIN, RF
    MOROZOV, VA
    MATLASHOV, AN
    [J]. INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 1985, 28 (04) : 872 - 874
  • [8] Stochastic electron heating in the laser and quasi-static electric and magnetic fields
    Zhang, Yanzeng
    Krasheninnikov, S. I.
    Knyazev, Alexey
    [J]. PHYSICS OF PLASMAS, 2018, 25 (12)
  • [9] ELECTRIC AND MAGNETIC FREE ENERGY IN NONLINEAR MEDIA . QUASI-STATIC FIELDS
    BAROCCHI, F
    MANCINI, M
    DIFRANCI.GT
    [J]. NUOVO CIMENTO B, 1965, 40 (01): : 168 - &
  • [10] Generalized Quasi-Static Electromagnetic Fields
    Yaghjian, Arthur D.
    [J]. 2018 IEEE ANTENNAS AND PROPAGATION SOCIETY INTERNATIONAL SYMPOSIUM ON ANTENNAS AND PROPAGATION & USNC/URSI NATIONAL RADIO SCIENCE MEETING, 2018, : 1655 - 1656