HR: 09:20h
AN: GP21A-04 INVITED [Abstracts]
TI: Mantle Dynamics and the Long-Term Rotational Stability of the Earth
AU: * Mitrovica, J X
EM: jxm@physics.utoronto.ca
AF: Department of Physics, University of Toronto, 60 St. George Street, Toronto, ON M5S 1A7 Canada
AU: Daradich, A L
EM: adaradich@physics.utoronto.ca
AF: Department of Physics, University of Toronto, 60 St. George Street, Toronto, ON M5S 1A7 Canada
AU: Matsuyama, I
EM: isamu@astro.utoronto.ca
AF: Department of Astronomy and Astrophysics, University of Toronto, 60 St. George Street, Toronto, ON M5S
3H8 Canada
AU: Forte, A M
EM: forte.alessandro@uquam.ca
AF: GEOTOP
Department des Sciences de la Terre et de l'Atmosphere
Universite du Quebec a Montreal, CP 8888, succursale Centre-Ville, Montreal, QC H3C 3P8 Canada
AB:
The long term (10-100 Ma) rotational stability of a dynamic, evolving Earth is a classic problem in geophysics framed by a
series of seminal studies (e.g., Gold, 1955; Goldreich and Toomre, 1969). Gold (1955), for example, considered
the stability of a hydrostatic planet subject to an imperfectly compensated
(internal or external) load. In this case, the hydrostatic bulge provides no
long-term rotational stability and the reorientation of the pole, or so-called
true polar wander (TPW), would be governed solely by the location of the load.
In particular, a mass excess of any size (indeed, as small as Gold's beetle)
would drive a TPW that would eventually reorient the load to the equator.
Gold's (1955) arguments were extended by Goldreich and Toomre (1969) who
demonstrated that a group of anomalous masses moving randomly on the surface
(the classic set of scurrying beetles) could drive rapid (relative to the speed
of the masses) reorientation of the rotation pole. This inherent instability
of the rotation axis appears to be at odds with observational evidence for a
relatively stable rotation axis over the last 200 Ma. Previous studies have
explained this stability through some combination of a high viscosity
(sluggish) lower mantle and/or a relatively fortuitous distribution of mantle
heterogeneity. In this talk we present a new set of predictions of long term
TPW based on a large suite of three-dimensional convection simulations. These
simulations, which are constrained by recent estimates of the radial profile
of mantle viscosity and initiated using seismically-inferred mantle
heterogeneity, yield a suite of simple conditions governing rotational
stability in the post-Jurassic Earth.
DE: 1213 Earth's interior--dynamics (8115, 8120)
DE: 1239 Rotational variations
SC: Geomagnetism and Paleomagnetism [GP]
MN: 2005 Joint Assembly