HR: 0800h
AN: H31D-0438 [Abstracts]
TI: Water and Solute Mass Transport in Soils Developed on glacial Drift: A Br Tracer Investigation Using
Instrumented Soil Monoliths at an Agricultural Long Term Ecological Research Site (Kellogg Biological
Station, Hickory Corners, Southern Michigan)
AU: * Jin, L
EM: ljin@umich.edu
AF: Dept. of Geological Sciences,
University of Michigan, 2534 CC Little Building,
425 E University St., Ann Arbor, MI 48109
United States
AU: Hamilton, S K
EM: hamilton@kbs.msu.edu
AF: W. K. Kellogg Biological Station, Michigan State University, 3700 E Gull Lake Drive, Hickory Corners,
MI 49060
United States
AU: Walter, L M
EM: lmwalter@umich.edu
AF: Dept. of Geological Sciences,
University of Michigan, 2534 CC Little Building,
425 E University St., Ann Arbor, MI 48109
United States
AB:
Hydrologic processes control the residence time of water in the soil column. This is of central importance in understanding
mineral weathering rates in terms of reaction kinetics and solute transport. In order to better quantify the coupling between
water and solute mass transport and to better define controls on carbonate and aluminosilicates weathering rates, we have
conducted bromide-tracer introduction experiments at four replicate soil monoliths (4 m$^{3}$ volume) instrumented and
managed by the KBS-LTER.
Monolith soils are developed on the pitted outwash plain of the morainic system left by the last retreat of the Wisconsin
glaciation, around 12,000 years ago. Soil profiles from the monolith sections extend to 200 cm and they were sampled and
characterized texturally and mineralogically. Quartz and feldspar are dominant throughout the soil profile, while carbonates
and hornblende occur only in deeper soil horizons. The four replicate monoliths are instrumented with gas and soil water
sampling devices (Prenart tension lysimeters) at various depths. The monoliths also have a large capacity tray at the bottom,
which permits collection of water for weight and chemical determinations.
A bromide tracer solution (as lithium bromide) was applied to coincide as closely as possible with a major snowmelt event
(2/27/04). The saturated and unsaturated transport of bromide through the four monoliths was followed as a function of time
and soil profile depth for the duration of the snowmelt as well as intermittent rain events. Because the soil was saturated
at the time of bromide application, the bromide solution is expected to move rapidly through macropores, followed by slower
movement into micropores. The unsaturated transport of bromide is largely controlled by the intensity and duration of the
rains if it is dominated by piston flow as opposed to preferential channel flow.
In general, the tracer moved through the shallow soils very quickly, which is shown by early sharp peaks in bromide
concentrations. Transport of bromide into deeper soil horizons, however, differs markedly among the four monoliths. Even
within a given monolith, waters sampled at the same depth by different tension lysimeters show a very different pattern of
bromide transport over time with some lyimeters suggesting piston flow, while others in the same monolith suggest
preferential channel flow. These differences are likely driven by heterogeneous soil textures.
The water recovered from the monolith trays over the first three months of the study period is between 80 and 90 percent of
the total precipitation recorded at the LTER site. This recovery is reasonable given the fact that temperature was low and
crops were not yet actively growing. The recovery of bromide is different among the monoliths and in general is less than 50
percent, which means more than 50 percent of tracer is still in the soils even after three months. Residence time of water
has been calculated after some assumptions on the breakthrough curve. The water mass transport constraints imposed by the
bromide tracer study will be utilized in concert with additional data on soil water geochemistry.
DE: 1899 General or miscellaneous
DE: 1818 Evapotranspiration
DE: 1866 Soil moisture
DE: 1875 Unsaturated zone
DE: 1894 Instruments and techniques
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting