HR: 17:00h
AN: H12K-05 [PDF]
TI: A Laboratory Study of Heterogeneity and Scaling in Geologic Media
AU: * Brown, S
EM: sbrown@ner.com
AF: New England Research, 331 Olcott Drive, Ste L1, White River Junction, VT 05001 United States
AU: Boitnott, G
EM: boitnott@ner.com
AF: New England Research, 331 Olcott Drive, Ste L1, White River Junction, VT 05001 United States
AU: Smith, M
EM: martin@ner.com
AF: New England Research, 331 Olcott Drive, Ste L1, White River Junction, VT 05001 United States
AB:
In rocks and soils, the bulk geophysical and transport properties of
the matrix and of fracture systems are determined by the juxtaposition
of geometric features at many length scales. For sedimentary
materials the length scales are: the pore scale (irregularities in
grain surface roughness and cementation), the scale of grain packing
faults (and the resulting correlated porosity structures), the scale
dominated by sorting or winnowing due to depositional processes, and
the scale of geomorphology at the time of deposition.
We are studying the heterogeneity and anisotropy in geometry,
permeability, and geophysical response from the pore (microscopic),
laboratory (mesoscopic), and backyard field (macroscopic) scales. In
turn these data are being described and synthesized for development of
mathematical models. Eventually, we will perform parameter studies to
explore these models in the context of transport in the vadose and
saturated zones.
We have developed a multi-probe physical properties scanner which
allows for the mapping of geophysical properties on a slabbed sample
or core. This device allows for detailed study of heterogeneity at
those length scales most difficult to quantify using standard field
and laboratory practices. The measurement head consists of a variety
of probes designed to make local measurements of various properties,
including: gas permeability, acoustic velocities (compressional and
shear), complex electrical impedance (4 electrode, wide frequency
coverage), and ultrasonic reflection (ultrasonic impedance and
permeability). We can thus routinely generate detailed geophysical
maps of a particular sample. With the exception of the acoustic
velocity, we are testing and modifying these probes as necessary for
use on soil samples.
As a baseline study we have been characterizing the heterogeneity of a
bench-size Berea sandstone block. Berea Sandstone has long been
regarded as a laboratory standard in rock properties studies, owing to
its uniformity and ``typical'' physical properties. We find that both
permeability and velocity exhibit complex heterogeneity at the
centimeter scale. While some correlation with the outcropping of the
bedding is apparent, much of the heterogeneity is not clearly
associated with visual features.
For the study of soil heterogeneity at a wide range of scales, we are
focusing on a local glacial deposit. This deposit is a glacial kame
terrace of fluvial origin with multi-scale sedimentary structures
comprised of unconsolidated sands, clays, and gravels. There are also
many joints and faults in the unconsolidated sediments, allowing study
of these as potential fluid flow conduits or barriers. We have
obtained undisturbed soil samples from this site, allowing detailed
laboratory study using similar methods to those described for the
sandstone block.
DE: 1869 Stochastic processes
DE: 1894 Instruments and techniques
DE: 3250 Fractals and multifractals
DE: 5114 Permeability and porosity
DE: 5139 Transport properties
SC: Hydrology [H]
MN: 2003 Fall Meeting