HR: 08:35h
AN: H21F-03 INVITED [Abstracts]
TI: Investigating the influence of topography and landscape organization on scaling of small catchment
storm runoff generation
AU: * James, A L
EM: april.james@mail.mcgill.ca
AF: Forest Engineering, Oregon State University, 204 Peavy Hall, Corvallis, OR 97331-5706
United States
AU: Roulet, N T
EM: nigel.roulet@mcgill.ca
AF: Department of Geography, McGill School of Environment and McGill Global Environment and Climate Change
Centre, 805 Sherbrooke Street West, Montreal, QC H3A 2K6
Canada
AB:
Inter-catchment comparison of hydrologic behaviour is challenging in part because of the spatial variability in topography
and landscape organization. At the hillslope scale, the influence of surface and subsurface topography on runoff generation
is well documented. Both surface and subsurface topography can influence flow on hillslopes delivering water to the stream.
At the catchment scale, studies have defined landscape organization as how the stream collects upslope area, in some
instances, distinguishing hillslope from riparian or valley-bottom area. Few studies have combined detailed inter-comparison
of multiple catchment storm response (e.g. new/old water contributions) with a detailed characterization of topography and
landscape organization. In this study, we examine storm runoff generation from 8 small, forested catchments in an attempt to
evaluate the influence of catchment topography and landscape organization on scaling of storm response. The term scaling is
used here to refer to how storm response changes with catchment area. The 8 nested catchments exhibit significant and
varying relief and catchment area. A 1 m x 1 m airborne laser altimetry LIDAR (light detecting and ranging) digital
elevation model (DEM) is used to calculate mean slope and topographic wetness index, total catchment area, and distributions
of sub-catchment area as collected by the stream channel for each of the 8 nested catchments. Storm runoff generation is
quantified by hydrometric, isotopic and hydrochemical methods. Catchment mean residence time (MRT), another measure of
hydrologic function by which catchments can be compared, is estimated by baseflow recessional analysis and hydrochemistry.
Our analysis shows the three largest and most downstream catchments distinguish themselves with larger MRT and larger valley
bottom areas. These three catchments dominate the scaling of storm response, showing significantly larger amounts of new
water delivery to the stream channel and suggesting a significant change in dominant runoff mechanisms related to topography
and landscape organization.
DE: 1804 Catchment
DE: 1839 Hydrologic scaling
DE: 1860 Streamflow
DE: 1879 Watershed
SC: Hydrology [H]
MN: Fall Meeting 2005