HR: 0800h
AN: H51B-1119 [Abstracts]
TI: Hillslope-Riparian-Streamflow Interactions in a Discontinuous Permafrost Alpine Environment
AU: * Carey, S K
EM: sean_carey@carleton.ca
AF: Carleton University, Department of Geography and Environmental Studies
Carleton University, Ottawa, ON K1S 5B6
Canada
AB:
Hillslope-riparian-streamflow interactions are poorly characterized in mountainous discontinuous permafrost environments.
Permafrost underlain soils have a distinct soil profile, characterized by thick near-surface organic horizons atop ice-rich
mineral substrates, whereas slopes without permafrost have thinner or absent organic soils overlying well drained mineral
horizons. Riparian areas occur at the base of both seasonally frozen and permafrost slopes, yet a stronger hydrologic and
soil transition occurs at slope bases with only seasonal frost. In a subarctic alpine catchment within the Wolf Creek
Research Basin, Yukon, Canada, experiments were conducted between 2001 and 2003 to evaluate linkages along the
slope-riparian-stream continuum during melt and post-melt periods. Water table, hydraulic head, stable isotope (d2H, d18O)
and simple geochemical (pH, SpC, DOC) data were collected along transects during melt and summer periods. In soils with only
seasonal frost, there was a downward piezometric gradient in slopes and upward gradient in riparian areas during melt. In
contrast, permafrost soils did not show a recharge/discharge gradient between the slope and riparian zone. DOC declined and
SpC increased with depth at all sites during melt. DOC was lower in riparian zones and areas without organic soils. SpC
declined in soils as dilute meltwater entered the soil, yet it was difficult to establish spatial relations due to
differences in melt timing. The similarity in stable isotope composition among sites indicated that the slopes were well
flushed with snowmelt water to depth. DOC in streamflow was greatest on the ascending freshet hydrograph, and declined
rapidly following melt. Streamflow SpC declined dramatically in response to dilute meltwater inputs and a decline in stream
pH indicates flowpaths through organic horizons. Following melt, DOC concentrations declined rapidly in both slopes and
riparian areas. In summer, water tables lowered in seasonally frozen slopes, yet an upward hydraulic gradient and
near-surface water table was maintained in the riparian area. In permafrost slopes, water tables fell into mineral soils,
increasing SpC and reducing DOC. Riparian water tables remained high and DOC was greater than the seasonally frozen soils,
yet riparian zone hydraulic gradient reversed suggesting a small recharge gradient. In permafrost soil, riparian zone DOC was
an order of magnitude higher than seasonally frozen riparian zones, which had DOC concentrations similar to streamflow. The
similarity in stable isotope ratios among sites throughout the summer indicated that soil waters were dominated by water
supplied during melt period. Rainfall waters had little long-term effect on slope and riparian isotopic ratios. Mixing
analysis of geochemical and isotopic parameters indicates that during melt, most water was supplied via near surface organic
layers, whereas later in the year, subsurface pathways predominated. Permafrost slope-riparian zones have a different
hydraulic and geochemical interaction than seasonally frozen ones, yet their respective contribution to streamflow during
different times of the year remains unclear at this time.
DE: 1800 HYDROLOGY
DE: 1806 Chemistry of fresh water
DE: 1823 Frozen ground
DE: 1860 Runoff and streamflow
DE: 1863 Snow and ice (1827)
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting