HR: 09:15h
AN: P51E-05 [Abstracts]
TI: Cassini's View of Stress Balance in Saturn's Magnetosphere
AU: * Arridge, C S
EM: christopher.arridge@ic.ac.uk
AF: Space and Atmospheric Physics Group, Imperial College London, The Blackett Laboratory, Prince Consort
Road, South Kensington, London, SW7 2BW
United Kingdom
AU: Dougherty, M K
EM: m.dougherty@ic.ac.uk
AF: Space and Atmospheric Physics Group, Imperial College London, The Blackett Laboratory, Prince Consort
Road, South Kensington, London, SW7 2BW
United Kingdom
AU: Khurana, K K
EM: kkhurana@igpp.ucla.edu
AF: Institute of Geophysics and Planetary Physics, UCLA, Los Angeles, CA 90095
United States
AU: Russell, C T
EM: ctrussel@igpp.ucla.edu
AF: Institute of Geophysics and Planetary Physics, UCLA, Los Angeles, CA 90095
United States
AU: Andre, N
EM: Nicolas.Andre@cesr.fr
AF: CESR/CNRS, 9 avenue du Colonel Roche, Toulouse, 31028
France
AU: Coates, A J
EM: ajc@mssl.ucl.ac.uk
AF: Mullard Space Science Laboratory, University College London, Holmbury St Mary, Dorking, RH5 6NT
United Kingdom
AU: Crary, F
EM: fcrary@swri.com
AF: Southwest Research Institute, P.O. Drawer 28510, San Antonio, TX 78228-0510
United States
AU: Krimigis, S M
EM: tom.krimigis@jhuapl.edu
AF: The Johns Hopkins University Applied Physics Laboratory, Johns Hopkins Road, Laurel, MD 20723
United States
AU: Leisner, J S
EM: jleisner@igpp.ucla.edu
AF: Institute of Geophysics and Planetary Physics, UCLA, Los Angeles, CA 90095
United States
AU: Mauk, B H
EM: barry.mauk@jhuapl.edu
AF: The Johns Hopkins University Applied Physics Laboratory, Johns Hopkins Road, Laurel, MD 20723
United States
AU: Paranicas, C
EM: chris.paranicas@jhuapl.edu
AF: The Johns Hopkins University Applied Physics Laboratory, Johns Hopkins Road, Laurel, MD 20723
United States
AU: Rymer, A M
EM: amr@mssl.ucl.ac.uk
AF: Mullard Space Science Laboratory, University College London, Holmbury St Mary, Dorking, RH5 6NT
United Kingdom
AU: Rymer, A M
EM: amr@mssl.ucl.ac.uk
AF: The Johns Hopkins University Applied Physics Laboratory, Johns Hopkins Road, Laurel, MD 20723
United States
AU: Sittler, E C
EM: Edward.C.Sittler@nasa.gov
AF: Goddard Space Flight Center, Code 692, Greenbelt, MD 20771
United States
AU: Thomsen, M F
EM: mthomsen@lanl.gov
AF: Los Alamos National Laboratory, MS D466, Los Alamos, NM 87545
United States
AU: Young, D T
EM: dyoung@swri.edu
AF: Southwest Research Institute, P.O. Drawer 28510, San Antonio, TX 78228-0510
United States
AB:
Observations by Pioneer 11 and the two Voyager spacecraft indicated that the dominant source of mechanical stress in Saturn's
magnetosphere is provided by the centrifugal force of cold ions [McNutt 1983]. In order to explain a significant localised
peak in the field stress from Voyager observations, the role of hot ion pressure gradients were suggested to balance the
centrifugal and magnetic stresses [Mauk et al. 1985]. Using observations from the Cassini spacecraft in orbit around Saturn
we are revisiting these issues with a greatly expanded data set.
The magnetic force has been calculated directly from the magnetometer data in a limited spatial region [Arridge et al. 2005],
and complemented by calculations of the magnetic force implicit in new empirical magnetic field models [Khurana et al. 2005;
Arridge et al. 2005]. Using these calculations of the radial component of the magnetic stress, and assuming a particular
balance of pressure between fields and particles, the mass content in the plasma sheet can be calculated. By assuming a
steady state we can also calculate the radial plasma outflow velocity for various values of the mass-loading rate in the
inner magnetosphere.
In this paper we extend this work and explore the relative contributions of particle stresses in balancing the magnetic
stresses, as calculated from the magnetometer data and the field models. Particular attention is given to the spatial
variation of hot particle pressures and the effect of neutrals on these populations in the inner magnetosphere, and to the
radial variation in the cold ion mass at the centrifugal equator and hence the implied radial outflow rates. These rates are
compared with observed radial velocities [Sittler et al. 2005]. The possible role of neutrals in transporting plasma out of
Saturn's magnetosphere [Saur et al. 2004] is discussed in reference to the observed outflow velocities. The results of our
study are compared with stress balance investigations in the terrestrial magnetosphere [e.g. Zaharia and Cheng 2005] and at
the outer planets [e.g. McNutt 1983; Paranicas et al. 1991; Russell et al. 1999]. We comment on the implications of our study
on the global configuration of the magnetosphere, and other macroscopic observable consequences, for example the size and
shape of the magnetopause boundary [Arridge et al. 2005; Hansen et al. 2005].
DE: 2721 Field-aligned currents and current systems (2409)
DE: 2740 Magnetospheric configuration and dynamics
DE: 2756 Planetary magnetospheres (5443, 5737, 6033)
DE: 2764 Plasma sheet
DE: 6275 Saturn
SC: Planetary Sciences [P]
MN: Fall Meeting 2005