HR: 1340h
AN: H53E-1457 [Abstracts]
TI: Macropore Flow in Soil Columns: Investigations with Computer Tomography and Lattice Boltzmann Simulations
AU: * Schaap, M G
EM: mschaap@cals.arizona.edu
AF: Dept of Soil, Water and Environmental Science, The University of Arizona, Shantz Building,
Tucson, AZ 85721, United States
AU: Tuller, M
EM: mtuller@cals.arizona.edu
AF: Dept of Soil, Water and Environmental Science, The University of Arizona, Shantz Building,
Tucson, AZ 85721, United States
AU: Guber, A
EM: andrey.guber@aur.usda.gov
AF: U.S. Department of Agriculture, Agricultural Research Service, BARC-EAST, Beltsville, MD
20705, United States
AU: Martin, M A
EM: miguelangel.martin@upm.es
AF: E.T.S.I. Agrónomos, Technical University of Madrid (UPM), Avd de la Complutense,
Madrid, 28040, Spain
AU: Martinez, F S
EM: fernando.sanjose@upm.es
AF: E.T.S.I. Agrónomos, Technical University of Madrid (UPM), Avd de la Complutense,
Madrid, 28040, Spain
AU: Pachepsky, Y
EM: yakov.pachapsky@ars.usda.gov;
AF: U.S. Department of Agriculture, Agricultural Research Service, BARC-EAST, Beltsville, MD
20705, United States
AB:
Soil structure greatly affects the ability of soil to transmit and to retain water, chemicals, and colloidal particles
that can carry contaminants or be contaminants themselves, e.g. pathogenic microorganisms. No theory or
empirical relationships have been developed to date to quantitatively relate parameters of soil structure and
parameters of the contaminant transport in soils. The absence of theoretical advances in this area seriously
hampers the ability to address issues of public concern, e.g. spread of contaminants introduced in the
environment by agricultural activities. Recently, computer tomography of soils has become available to generate
detailed images of soil pore space with high resolution and density. Successful applications of computer
tomography in medical and material sciences show the great potential of this technique to create an exhaustive
characterization of soil structure heterogeneity.
In this presentation we investigate saturated flow through twelve undisturbed macroporous soil columns (7.62-
cm sample diameter and 18-cm length) with lattice Boltzmann simulations. Saturated flow was measured for the
complete columns, as well as on 2 cm sections for selected columns. Computed X-Ray tomography was
performed on each of the columns, using the 420 kV X-ray source of a HYTEC FlashCT high-speed industrial CT
scanner. The resolution was 116 microns per voxel, yielding a final tomography image of 656x656x1482 (~ 6.3
10E8) voxels. X-Ray CT observations typically provide "gray-scale"
representations of the imaged object that must be segmented to yield discrete pore and particle geometry. Many
segmentation algorithms are available, each yielding different final pore geometries thus potentially creating
uncertainties in subsequent flow analyses. Lattice Boltzmann (LB) simulations will be presented only for some
of the columns as the simulations are extremely computationally intensive (each simulation requires ~ 60 GB of
computer RAM at the observed resolution). The main objectives of this presentation are: 1) to define an optimal
resolution for the LB simulations in terms of simulated saturated hydraulic conductivity and computational
requirements, 2) study the effect of different types of segmentation algorithms on simulated flow, and 3) compare
simulated to observed hydraulic conductivities. Successful LB simulations may lead to improved insights into
flow patterns within macroporous structures and lead to better understanding of solute and colloid transport.
DE: 1828 Groundwater hydraulics
DE: 1832 Groundwater transport
DE: 1847 Modeling
SC: Hydrology [H]
MN: 2007 Fall Meeting