Saturn’s near-equatorial ionospheric conductivities from in situ measurements

被引:0
|
作者
O. Shebanits
L. Z. Hadid
H. Cao
M. W. Morooka
G. J. Hunt
M. K. Dougherty
J.-E. Wahlund
J. H. Waite
I. Müller-Wodarg
机构
[1] Blackett Laboratory,
[2] Imperial College London,undefined
[3] Swedish Institute of Space Physics,undefined
[4] ESA/ESTEC,undefined
[5] Department of Earth and Planetary Sciences,undefined
[6] Harvard University,undefined
[7] Division of Geological and Planetary Sciences,undefined
[8] California Institute of Technology,undefined
[9] Southwest Research Institute,undefined
[10] Space Science and Engineering Division,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Cassini’s Grand Finale orbits provided for the first time in-situ measurements of Saturn’s topside ionosphere. We present the Pedersen and Hall conductivities of the top near-equatorial dayside ionosphere, derived from the in-situ measurements by the Cassini Radio and Wave Plasma Science Langmuir Probe, the Ion and Neutral Mass Spectrometer and the fluxgate magnetometer. The Pedersen and Hall conductivities are constrained to at least 10−5–10−4 S/m at (or close to) the ionospheric peak, a factor 10–100 higher than estimated previously. We show that this is due to the presence of dusty plasma in the near-equatorial ionosphere. We also show the conductive ionospheric region to be extensive, with thickness of 300–800 km. Furthermore, our results suggest a temporal variation (decrease) of the plasma densities, mean ion masses and consequently the conductivities from orbit 288 to 292.
引用
收藏
相关论文
共 50 条
  • [31] Multiscale processes in the genesis of a near-equatorial tropical cyclone during the Dynamics of the MJO Experiment: Results from partial lateral forcing experiments
    Yang, Hongwei
    Wang, Bin
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2018, 123 (10) : 5020 - 5037
  • [32] Dust grains fall from Saturn's D-ring into its equatorial upper atmosphere
    Mitchell, D. G.
    Perry, M. E.
    Hamilton, D. C.
    Westlake, J. H.
    Kollmann, P.
    Smith, H. T.
    Carbary, J. F.
    Waite, J. H., Jr.
    Perryman, R.
    Hsu, H. -W.
    Wahlund, J. -E.
    Morooka, M. W.
    Hadid, L. Z.
    Persoon, A. M.
    Kurth, W. S.
    SCIENCE, 2018, 362 (6410) : 50 - +
  • [33] GPS based TEC measurements for a period August 2008– December 2009 near the northern crest of Indian equatorial ionospheric anomaly region
    S P KARIA
    K N PATHAK
    Journal of Earth System Science, 2011, 120 : 851 - 858
  • [34] Formation of Titan in Saturn's subnebula:: constraints from Huygens probe measurements
    Alibert, Y.
    Mousis, O.
    ASTRONOMY & ASTROPHYSICS, 2007, 465 (03) : 1051 - 1060
  • [35] Understanding Saturn's interior from the Cassini Grand Finale gravity measurements
    Ni, Dongdong
    ASTRONOMY & ASTROPHYSICS, 2020, 639
  • [36] Compositional Measurements of Saturn's Upper Atmosphere and Rings from Cassini INMS
    Serigano, J.
    Horst, S. M.
    He, C.
    Gautier, T.
    Yelle, R., V
    Koskinen, T. T.
    Trainer, M. G.
    JOURNAL OF GEOPHYSICAL RESEARCH-PLANETS, 2020, 125 (08)
  • [37] Formation of Titan in Saturn's subnebula: Constraints from Huygens probe measurements
    Alibert, Y.
    Mousis, O.
    Astronomy and Astrophysics, 2007, 465 (03): : 1051 - 1060
  • [38] Equatorial ionospheric zonal drift model and vertical drift statistics from UHF scintillation measurements in South America
    Sheehan, RE
    Valladares, CE
    ANNALES GEOPHYSICAE, 2004, 22 (09) : 3177 - 3193
  • [39] First absolute wind measurements in Saturn's stratosphere from ALMA observations
    Benmahi, B.
    Cavalie, T.
    Fouchet, T.
    Moreno, R.
    Lellouch, E.
    Bardet, D.
    Guerlet, S.
    Hue, V
    Spiga, A.
    ASTRONOMY & ASTROPHYSICS, 2022, 666
  • [40] Probing IMF using nanodust measurements from inside Saturn's magnetosphere
    Hsu, H. -W.
    Hansen, K. C.
    Horanyi, M.
    Kempf, S.
    Mocker, A.
    Moragas-Klostermeyer, G.
    Postberg, F.
    Srama, R.
    Zieger, B.
    GEOPHYSICAL RESEARCH LETTERS, 2013, 40 (12) : 2902 - 2906