HR: 08:00h
AN: SM11B-01 [PDF]
TI: Ionospheric Effects on the Paleomagnetosphere
AU: * Zieger, B
EM: b.zieger@iu-bremen.de
AF: International University Bremen, Campus Ring 8, Bremen, D-28759
Germany
AU: Vogt, J
EM: j.vogt@iu-bremen.de
AF: International University Bremen, Campus Ring 8, Bremen, D-28759
Germany
AU: Ridley, A J
EM: ridley@umich.edu
AF: The University of Michigan, 1411B Space Research Building, Ann Arbor, MI 48109-2143 United States
AU: Glassmeier, K
EM: kh.glassmeier@tu-bs.de
AF: Institut fuer Geophysik und Meteorologie, Mendelssohnstr. 3, Braunschweig, D-38106
Germany
AB:
Paleomagnetic studies indicate that the strength of the Earth's internal magnetic field has varied over the range 0.1 to 3 of
the present value. Consequently the paleomagnetosphere, which results from the coupled interaction of the solar wind, the
Earth's internal magnetic field and the conductive paleoionosphere, must have undergone severe changes, especially during the
so-called polarity transition epochs, when the Earth's internal dipole moment reversed. Different transition scenarios can
be conceived, none of which is excluded in the present state of our knowledge: The dipole moment could decay to zero and
quickly build up again in the opposite direction; or a much reduced dipole moment could turn around, staying close to the
equatorial plain for a significant time; or the dipole moment could completely vanish and higher order multipoles could
dominate during the transition epoch. In a paleomagnetosphere with reduced internal magnetic field the ionospheric
conductivity is expected to be higher, which implies stronger ionosphere-magnetosphere coupling, i.e. stronger ionospheric
and field aligned magnetospheric currents. Although several scaling relations have been found to scale different parameters
of a dipolar paleomagnetosphere to the dipole moment, no theoretical scaling relations exist for the
magnetospheric-ionospheric current systems that control the inner magnetospheric convection. In the first part of this paper,
we present some theoretical considerations and new scaling relations related to the current systems in the
paleomagnetosphere. In the second part, we test the effect of different ionospheric boundary conditions and conductivity
models on different types of paleomagnetospheres by means of the Michigan BATS-R-US MHD code. Namely, we study the inner
magnetospheric plasma convection patterns and the equivalent ionospheric electric potential patterns. In general, we conclude
that the ionosphere plays a more important role in the paleomagnetosphere during polarity transition epochs.
DE: 1535 Reversals (process, timescale, magnetostratigraphy)
DE: 2411 Electric fields (2712)
DE: 2708 Current systems (2409)
DE: 2736 Magnetosphere/ionosphere interactions
DE: 2760 Plasma convection
SC: SPA - Magnetospheric Physics [SM]
MN: 2003 Fall Meeting