Large-scale dynamics of Saturn's magnetopause: Observations by Cassini

The long-term statistical behavior of the large-scale structure of Saturn's magnetosphere has been investigated. Established statistical techniques for Jupiter have been applied to the kronian system, employing Cassini magnetometer data and a new empirical shape model of the magnetopause based...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autores principales: Achilleos, N., Arridge, C.S., Bertucci, C., Jackman, C.M., Dougherty, M.K., Khurana, K.K., Russell, C.T.
Formato: JOUR
Acceso en línea:http://hdl.handle.net/20.500.12110/paper_21699402_v113_n11_p_Achilleos
Aporte de:
id todo:paper_21699402_v113_n11_p_Achilleos
record_format dspace
spelling todo:paper_21699402_v113_n11_p_Achilleos2023-10-03T16:40:08Z Large-scale dynamics of Saturn's magnetopause: Observations by Cassini Achilleos, N. Arridge, C.S. Bertucci, C. Jackman, C.M. Dougherty, M.K. Khurana, K.K. Russell, C.T. The long-term statistical behavior of the large-scale structure of Saturn's magnetosphere has been investigated. Established statistical techniques for Jupiter have been applied to the kronian system, employing Cassini magnetometer data and a new empirical shape model of the magnetopause based on these data. The resulting distribution of standoff distance RMP for Saturn, covering a time interval of ∼400 days, is well described by a "dual" or "bimodal" model-the sum of two normal distributions with different means at ∼22 and ∼27 planetary radii. We have made a comparison between the dual model's prediction for the probability distribution of solar wind dynamic pressure at Saturn with a sequence of observations from the Cassini Plasma Spectrometer (CAPS) instrument. Although the solar wind dynamic pressure observations are limited to a smaller time interval than the magnetometer data, we find that their overall range is in broad agreement with the that of the modeled pressures. However, the bimodal structure exhibited by the model is not apparent in the solar wind data for the corresponding range of dynamic pressures (∼0.008 - 0.06 nPa), which suggests that other mechanisms at Saturn also influence the size distribution of the magnetopause. Considering internal processes at Saturn and their influence on magnetopause size, we conclude that the effect of internal mass loading and loss from the magnetospheric disk is plausibly able to explain the observed bimodal distribution in magnetopause standoff distance. Copyright 2008 by the American Geophysical Union. JOUR info:eu-repo/semantics/openAccess http://creativecommons.org/licenses/by/2.5/ar http://hdl.handle.net/20.500.12110/paper_21699402_v113_n11_p_Achilleos
institution Universidad de Buenos Aires
institution_str I-28
repository_str R-134
collection Biblioteca Digital - Facultad de Ciencias Exactas y Naturales (UBA)
description The long-term statistical behavior of the large-scale structure of Saturn's magnetosphere has been investigated. Established statistical techniques for Jupiter have been applied to the kronian system, employing Cassini magnetometer data and a new empirical shape model of the magnetopause based on these data. The resulting distribution of standoff distance RMP for Saturn, covering a time interval of ∼400 days, is well described by a "dual" or "bimodal" model-the sum of two normal distributions with different means at ∼22 and ∼27 planetary radii. We have made a comparison between the dual model's prediction for the probability distribution of solar wind dynamic pressure at Saturn with a sequence of observations from the Cassini Plasma Spectrometer (CAPS) instrument. Although the solar wind dynamic pressure observations are limited to a smaller time interval than the magnetometer data, we find that their overall range is in broad agreement with the that of the modeled pressures. However, the bimodal structure exhibited by the model is not apparent in the solar wind data for the corresponding range of dynamic pressures (∼0.008 - 0.06 nPa), which suggests that other mechanisms at Saturn also influence the size distribution of the magnetopause. Considering internal processes at Saturn and their influence on magnetopause size, we conclude that the effect of internal mass loading and loss from the magnetospheric disk is plausibly able to explain the observed bimodal distribution in magnetopause standoff distance. Copyright 2008 by the American Geophysical Union.
format JOUR
author Achilleos, N.
Arridge, C.S.
Bertucci, C.
Jackman, C.M.
Dougherty, M.K.
Khurana, K.K.
Russell, C.T.
spellingShingle Achilleos, N.
Arridge, C.S.
Bertucci, C.
Jackman, C.M.
Dougherty, M.K.
Khurana, K.K.
Russell, C.T.
Large-scale dynamics of Saturn's magnetopause: Observations by Cassini
author_facet Achilleos, N.
Arridge, C.S.
Bertucci, C.
Jackman, C.M.
Dougherty, M.K.
Khurana, K.K.
Russell, C.T.
author_sort Achilleos, N.
title Large-scale dynamics of Saturn's magnetopause: Observations by Cassini
title_short Large-scale dynamics of Saturn's magnetopause: Observations by Cassini
title_full Large-scale dynamics of Saturn's magnetopause: Observations by Cassini
title_fullStr Large-scale dynamics of Saturn's magnetopause: Observations by Cassini
title_full_unstemmed Large-scale dynamics of Saturn's magnetopause: Observations by Cassini
title_sort large-scale dynamics of saturn's magnetopause: observations by cassini
url http://hdl.handle.net/20.500.12110/paper_21699402_v113_n11_p_Achilleos
work_keys_str_mv AT achilleosn largescaledynamicsofsaturnsmagnetopauseobservationsbycassini
AT arridgecs largescaledynamicsofsaturnsmagnetopauseobservationsbycassini
AT bertuccic largescaledynamicsofsaturnsmagnetopauseobservationsbycassini
AT jackmancm largescaledynamicsofsaturnsmagnetopauseobservationsbycassini
AT doughertymk largescaledynamicsofsaturnsmagnetopauseobservationsbycassini
AT khuranakk largescaledynamicsofsaturnsmagnetopauseobservationsbycassini
AT russellct largescaledynamicsofsaturnsmagnetopauseobservationsbycassini
_version_ 1782028254374264832