HR: 11:20h
AN: T31G-04 INVITED [PDF]
TI: Thermal and Magnetic Evolution of the Earth's Core
AU: * Labrosse, S
EM: labrosse@ipgp.jussieu.fr
AF: Institut de Physique du Globe de Paris, 4, place Jussieu, cedex 05, Paris, 75252
France
AB:
The magnetic field of the Earth is generated by convection in the liquid core and energy
necessary for this process comes from the cooling of the core which provide several
buoyancy sources. The thermodynamics of this system is used to relate the ohmic
dissipation in the core to all energy sources and to model the thermal evolution of the
core. If the same dissipation is maintained just before the onset of inner core
crystallization, and the associated compositional convection, as at present, a much larger
heat flow at the core mantle boundary (CMB) is necessary which, if extrapolated backward,
may require a very high initial temperature. Two solutions to that problem are studied:
either the ohmic dissipation was smaller then, which could be maintained with the same
heat flow as at present or an important radioactivity is present in the core. The presence
of radioactivity in the core makes the inner core only a few hundred million years
($\mathrm{Ma}$) older than non-radioactive cases with the same dissipation, because the
low efficiency of radioactive heating requires a much larger heat flow at the core mantle
boundary. Although the age of the inner core is controlled by the heat flow at the CMB,
the ohmic dissipation to be maintained is the constraint that makes it low.
DE: 1015 Composition of the core
DE: 1507 Core processes (8115)
DE: 8115 Core processes (1507)
DE: 8125 Evolution of the Earth
DE: 8130 Heat generation and transport
SC: Tectonophysics [T]
MN: 2003 Fall Meeting