HR: 13:40h
AN: T33F-01 INVITED [Abstracts]
TI: Melt transport - a personal cashing-up
AU: * Renner, J
EM: renner@geophysik.rub.de
AF: Ruhr-University Bochum, Inst. Geol. Mineral. Geophys., Bochum, 44780
Germany
AB:
The flow of fluids through rocks transports heat and material and changes bulk composition. The large-scale chemical
differentiation of the Earth is related to flow of partial melts. From the perspective of current understanding of tectonic
processes, prominent examples of such transport processes are the formation of oceanic crust from ascending basic melts at
mid-ocean ridges, melt segregation involved in the solidification of the Earth's core, and dissolution-precipitation creep in
subduction channels. Transport and deformation cannot be separated for partially molten aggregates. Permeability is only
defined as an instantaneous parameter in the sense that Darcy's law is assumed to be valid; it is not an explicit parameter
in the fundamental mechanical conservation laws but can be derived from them in certain circumstances as a result of
averaging schemes. The governing, explicit physical properties in the mechanical equations are the shear and bulk viscosities
of the solid framework and the fluid viscosity and compressibility. Constraints on the magnitude of these properties are
available today from experiments at specific loading configurations, i.e., more or less well constrained initial and boundary
conditions. The melt pressure remains the least controlled parameter. While the fluid viscosity is often much lower than the
solid's the two-phase aggregate may exhibit considerable strength owing to the difficulty of moving the fluid through the
branched pore network. The extremes in behavior depend on the time scale of loading, as known from daily live experiences
(spounge, Danish coffee-pot, human tissue between neighboring bones). Several theoretical approaches attempted to formulate
mechanical constitutive equations for two-phase aggregates. An important issue is the handling of internal variables in these
equations. At experimental conditions, grain size, melt pocket orientation and crystallographic orientation -prime
candidates for internal variables- change considerably and potentially contribute significantly to the total dissipation of
the external work. Theoretically founded evolution equations for these internal variables are lacking. In experiments, both
the kinetics of grain growth but also the resultant shape of grains is affected by the presence of melt. The latter is linked
to the alignment of melt pockets with the maximum principle stress. Thus, the melt redistribution causes direct anisotropy
but also indirect through a shape-preferred orientation of solid grains. Notably, the foliation is parallel to the maximum
principle stress in contrast to deformation controlled by crystal defects alone. Extremum principles developed for
dissipation potentials in the framework of irreversible thermodynamics may allow us to postulate evolution equations. Owing
to their significant effect on aggregate viscosities understanding the evolution of internal variables is mandatory for
substantial large-scale modeling.
DE: 3902 Creep and deformation
DE: 3939 Physical thermodynamics
DE: 8120 Dynamics of lithosphere and mantle: general (1213)
DE: 8160 Rheology: general (1236, 8032)
SC: Tectonophysics [T]
MN: Fall Meeting 2005