HR: 0800h
AN: P11B-0118 [Abstracts]
TI: Mechanics of tidally driven fractures in Europa's ice shell
and implications for seismic and radar profiling
AU: * Lee, S
P11B-0118
AF: Department of Mechanical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Ave.,
Cambridge, MA 02139
United States
AU: Pappalardo, R T
P11B-0118
AF: Laboratory for Atmospheric and Space Physics and NASA Astrobiology Institude,
University of Colorado, Campus Box 392, Boulder, CO 80309-0392
United States
AU: Makris, N C
EM: makris@mit.edu
AF: Department of Mechanical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Ave.,
Cambridge, MA 02139
United States
AB:
Among Europa's surface features, cycloidal cracks are probably the most
important for proving the existence of a subsurface liquid ocean. This is
because (1) there is strong evidence that they are caused by tidally induced
stress [1], and (2) this stress likely only approaches the ice failure
strength if an ocean is present.
There are a number of outstanding issues, however, in quantitatively
explaining cycloidal cracks. First, current estimates of the pure diurnal
tidal stress necessary to cause cycloidal cracks even in the presence of an
ocean [1,2] is well below the typical stress known to cause tensile failure in
natural terrestrial ice [3]. Second, models of ridge formation suggest that
cycloidal cracks penetrate through the entire brittle-ice layer [1,4], but
current models limit the depth of tidally induced surface cracks to be less
than 100 m even in the presence of an ocean [1,5]. Third, the 3-km/h crack
propagation speed determined by [1] is three orders of magnitude lower than
the roughly 2-km/s speed at which cracks are known to propagate in ice.
Our goal is to quantitatively address these issues in a unified manner. To do
this, a fracture mechanics model is developed for the initiation and
propagation of a crack through an ice layer of finite thickness in the
presence of gravitational overburden and porosity.
It is shown that Europa's ice shell may be highly porous and salt-rich. This
implies that the strength of Europa's outer ice shell may be sufficiently low
to make the crack initiation strengths arrived at by current kinematic models
[1,2] highly plausible, even though they are much lower than those typically
measured for terrestrial ice.
A model is developed for the stress intensity factor at a crack tip in an ice
shell with finite thickness, gravitational overburden, and depth-dependent
porosity. This leads to the conclusion that cycloids are generated as a
sequence of discrete and near instantaneous fracture events, each of which
penetrates through the entire brittle layer with horizontal length on the
order of the brittle layer thickness. This mechanism yields an apparent
propagation speed that is consistent with the 3 km/h crack propagation speed
necessary to generate cycloids in current kinematic models [1,2].
An implication of this model is that the level of seismic activity should be
higher by orders of magnitude in the presence of an ocean. High correlation
is then expected between the level of seismic activity and the tidal period in
the presence but not in the absence of an ocean. The cracks associated with
cycloids that fully penetrate the brittle layer should be at least 106
times more energetic than the shallow, roughly 100-m deep, surface cracks. We
show that this greatly improves the signal-to-noise ratio for the type of
seismic profiling discussed in [6] if fully penetrating cracks are used as
sources of opportunity.
Although Europa's ice is likely highly porous, the size of vacuous pores is
likely on the order of a millimeter. Since the pore size is at least three
orders of magnitude smaller than the ice-penetrating radar wavelength, our
calculations show that porosity-induced scattering should not be significant.
[1] Hoppa et al. 1999, Science 285.
[2] Crawford et al. 2005, LPSC XXXVI #2042.
[3] Weeks and Cox 1984, Ocean Sci. Eng. 9.
[4] Pappalardo et al. 1999, J. Geophys. Res. 97.
[5] Crawford and Stevenson 1988, Icarus 73.
[6] Lee et al. 2003, Icarus 165.
DE: 6221 Europa
DE: 6969 Remote sensing
DE: 7200 SEISMOLOGY
DE: 8010 Fractures and faults
SC: Planetary Sciences [P]
MN: Fall Meeting 2005