HR: 0800h
AN: P41A-0211 [Abstracts]
TI: Planetary Cores Flows Driven by Mantle Libration
AU: * Noir, J
EM: jerome@ess.ucla.edu
AF: Earth and Space Sciences - UCLA, 595 Charles Young Drive East, Los Angeles, CA
90095-1567, United States
AU: Aurnou, J
EM: jona@ess.ucla.edu
AF: Earth and Space Sciences - UCLA, 595 Charles Young Drive East, Los Angeles, CA
90095-1567, United States
AU: Wicht, J
EM: wicht@linmpi.mpg.de
AF: Max Planck Institute for Solar System Research, Max-Planck-Str. 2, Katlenburg-Lindau,
37191, Germany
AB:
We investigate, via a set of laboratory and numerical experiments, the flow induced inside a spherical fluid cavity
by torsional oscillation of the outer shell. Our goal is to produce models of libration-driven flows within planetary
cores and subsurface oceans. Such models will improve our understanding of a number of planetary bodies
including Mercury, Europa, Io, Callisto, Ganymede and the Earth's Moon. Here we focus on the case of a spherical
shell with either a small inner core or no inner core; moderate planetary rotation rate (Ekman number E = 10-
4); and libration frequency equal to the planetary rotation frequency ("synchronous libration"). We vary only the
non-dimensional amplitude of libration α, defined as α=Δ φ (2 π flib) / Ømega, where
Δ φ is the total angular displacement, flib is the libration frequency and Ømega is the
background angular rotation rate. Different core flow regimes are observed as α is increased. For a small
amplitude of libration (α \ll 1)), the oscillatory motion of the outer boundary drives laminar flows that are
well described as inertial modes and waves. For α ~ 0.5, azimuthal roll instabilities periodically
develop and decay along the outer shell boundary during each libration cycle. These instabilities tend to develop
when the outer shell is decelerating and decay when it is accelerating. By further increasing α, the flow
pattern transitions from axisymmetric rolls (m=0) to wavy rolls (m ≠ 0), and then to turbulent flow.
Extrapolating our present results to Mercury suggests that mantle libration can drive large-scale instabilities in its
liquid metal core.
The authors wish to the thank NASA's PG&G and PME Programs for reasearch funding under grant
#NNG0697G.
DE: 1507 Core processes (1213, 8115)
DE: 5440 Magnetic fields and magnetism
DE: 5464 Remote sensing
DE: 5724 Interiors (8147)
SC: Planetary Sciences [P]
MN: 2007 Fall Meeting