MAGNETOSPHERIC INTERACTION WITH TRITONS IONOSPHERE

被引:29
作者
STROBEL, DF
CHENG, AF
SUMMERS, ME
STRICKLAND, DJ
机构
[1] JOHNS HOPKINS UNIV,DEPT PHYS & ASTRON,BALTIMORE,MD 21218
[2] USN,RES LAB,EO HULBURT CTR SPACE RES,WASHINGTON,DC 20375
[3] JOHNS HOPKINS UNIV,APPL PHYS LAB,LAUREL,MD 20707
[4] COMPUTAT PHYS INC,ANNANDALE,VA 22003
关键词
D O I
10.1029/GL017i010p01661
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The large electron densities measured by the Voyager radio occultation experiment are attributed to the precipitation of magnetospheric electrons with energy > 10 keV. Because the ionospheric electric Pedersen conductivity of Triton is,∼ (1−2) × 104 mho and the Alfven conductance is ∼ 3.5 mho, direct connective flow of plasma into the essentially infinitely conducting ionosphere is negligible. Magnetospheric electrons are transported to Triton's ionopause by curvature drift as a result of weak magnetic field line draping in a sub‐Alfvenic plasma interaction with Triton. At the ionopause energetic electrons have a high probability of elastic and inelastic scattering and precipitate into the upper atmosphere. The average power dissipation is estimated to be ∼ (2−3) × 108 W. Copyright 1990 by the American Geophysical Union.
引用
收藏
页码:1661 / 1664
页数:4
相关论文
共 50 条
  • [21] How the Ionosphere Responds Dynamically to Magnetospheric Forcing
    Laundal, K. M.
    Hatch, S. M.
    Reistad, J. P.
    Ohma, A.
    Tenfjord, P.
    Madelaire, M.
    GEOPHYSICAL RESEARCH LETTERS, 2024, 51 (11)
  • [22] Excitation of Alfvén vortices in the ionosphere by the magnetospheric convection
    I. V. Despirak
    A. A. Lubchich
    V. Yu. Trakhtengerts
    Radiophysics and Quantum Electronics, 2008, 51 : 339 - 351
  • [23] Response of the ionosphere-thermosphere system to magnetospheric processes
    Schunk, R. W.
    Zhu, L.
    JOURNAL OF ATMOSPHERIC AND SOLAR-TERRESTRIAL PHYSICS, 2008, 70 (18) : 2358 - 2373
  • [24] Conjugate Observation of Magnetospheric Chorus Propagating to the Ionosphere by Ducting
    Shen, Yangyang
    Chen, Lunjin
    Zhang, Xiao-Jia
    Artemyev, Anton
    Angelopoulos, Vassilis
    Cully, Christopher M.
    James, H. Gordon
    Yau, Andrew W.
    Howarth, Andrew D.
    Bortnik, Jacob
    Wu, Jiashu
    Tian, Sheng
    Hartinger, Michael D.
    Connors, Martin
    Horne, Richard B.
    GEOPHYSICAL RESEARCH LETTERS, 2021, 48 (23)
  • [25] NEXT-DAY RESPONSE OF THE IONOSPHERE TO MAGNETOSPHERIC SUBSTORMS
    IVANOVKHOLODNY, GS
    GONCHAROVA, EE
    KULIKOV, VV
    SHASHUNKINA, VM
    GEOMAGNETIZM I AERONOMIYA, 1989, 29 (05): : 770 - 775
  • [26] DYNAMICS AND INTERCONNECTION OF STRUCTURES OF MAGNETOSPHERIC CONVECTION AND POLAR IONOSPHERE
    OSIPOV, NK
    MODZHAEV, AM
    GEOMAGNETIZM I AERONOMIYA, 1978, 18 (03): : 480 - 486
  • [27] THE MAGNETOSPHERIC ALFVEN RESONANCE IN THE CASE OF HORIZONTALLY INHOMOGENEOUS IONOSPHERE
    POLYAKOV, SV
    GEOMAGNETIZM I AERONOMIYA, 1988, 28 (04): : 587 - 591
  • [28] ELECTRICAL CHANGES OF THE POLAR IONOSPHERE DURING MAGNETOSPHERIC SUBSTORMS
    AHN, BH
    KAMIDE, Y
    AKASOFU, SI
    JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1986, 91 (A5) : 5737 - 5754
  • [29] COMPUTATION OF MAGNETOSPHERIC CURRENTS CAUSED BY DYNAMO ACTION IN IONOSPHERE
    VANSABBEN, D
    JOURNAL OF ATMOSPHERIC AND TERRESTRIAL PHYSICS, 1969, 31 (03): : 469 - +
  • [30] EFFECT OF ATMOSPHERE AND IONOSPHERE ON LONG PERIOD MAGNETOSPHERIC MICROPULSATIONS
    HUGHES, WJ
    PLANETARY AND SPACE SCIENCE, 1974, 22 (08) : 1157 - 1172