HR: 0800h
AN: H51C-1135 [Abstracts]
TI: Valleys and Hillslopes: A Geomorphic Foundation for Landscape Ecology
AU: * Martin, Y E
EM: ymartin@ucalgary.ca
AF: University of Calgary, Department of Geography, Calgary, AB T2N 1N4
Canada
AU: Johnson, E A
EM: johnsone@ucalgary.ca
AF: University of Calgary, Department of Biological Sciences, Calgary, AB T2N 1N4
Canada
AB:
Moisture-nutrient gradients have been found to be the most important environmental gradients determining the distribution and
composition of plant communities. Landscapes on which plant communities exist are composed of valleys and ridgelines, with
hillslopes in between them. Since water flow paths are directed down slopes, processes determining hillslope morphology and
arrangement play an essential role in plant community organization and dynamics. Hillslope morphology, substrate
characteristics and climate determine flow routing and water budgets along slopes. Wetness is a function of transmissivity,
contributing area and slope gradient. Movement of nutrients along hillslopes generally follows wetness values, and is
affected by soil type. Plant species have different tolerances to wetness and nutrients; hillslope length and slope angle
determine the moisture-nutrient gradient, and in turn the shape of plant tolerance curves.
Temporal scales required for significant topographic change along hillslopes may often be long compared to those for plant
community dynamics. When considered in landscape ecology, hillslope shape and arrangement are thus often considered
constants. Although landscape morphology may change over time and among different regions (with tectonic, geomorphic and
climatic processes leaving their imprints on landscapes), an attempt has been made in the literature to put forth robust
topographic scaling relations. This paper, using a series of examples, explores connections between landscape structure and
plant communities.
For example, Hack's law states that drainage basins become more elongate as area increases. This implies that basins should
have approximately the same proportion of landscape in each hillslope position, suggesting some constancy in contributing
area patterns for hillslopes in different-sized basins. Distributions of wetness values and plant population tolerance curves
seem to confirm this for smaller basins. Hillslope length and steepness are related to drainage density and relative relief.
Various studies have sought relations between drainage density and slope gradient; the latter is a determinant of wetness
values. Studies have found both negative and positive correlations between drainage density and slope gradient. The nature of
hillslope processes (e.g., overland flow vs. mass wasting dominated, or quickly eroding vs. slowly eroding landscapes) has
been used to explain the correlation. It has also been suggested that the degree of channelization may be important in
determining slope steepness. Plant species respond to steeper slopes by having narrower tolerance curves and less overlap
with other species. This has important implications for biodiversity and plant community organization.
DE: 1824 Geomorphology (1625)
DE: 1851 Plant ecology
DE: 1860 Runoff and streamflow
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting