HR: 1340h
AN: H53C-1274 [Abstracts]
TI: Basin Hydrology and Substrate Controls on Mountain Stream Morphology: Highlands of Southeastern West
Virginia
AU: * Burks, T W
EM: tb356703@ohio.edu
AF: Ohio University
Department of Geological Sciences, 316 Clippinger Laboratories, Athens, OH 45701
United States
AU: Springer, G S
AF: Ohio University
Department of Geological Sciences, 316 Clippinger Laboratories, Athens, OH 45701
United States
AB:
Evolution of mountain drainage basins across a broad spectrum of geologic, tectonic, and climatic conditions is an active
area of investigation in the field of fluvial geomorphology. Mountain streams are typified by steep channel gradients
($>$0.002), high channel roughness, rapid changes in drainage area, and high spatial and low temporal variability in channel
morphology, leading to complexities in landscape modeling relative to their lowland counterparts. Factors driving this recent
investigative trend are the refinement and generation of digital topographic data and terrain analysis software, and more
importantly, the demand for a multidiscipline approach to the assessment, restoration, and management of entire watersheds.
A significant volume of research has been conducted in mountain drainage basins of the western United States, with particular
attention paid to tectonically active regions of the Pacific Northwest, which also contain federally listed threatened and
endangered salmonid populations. Brook trout (Salvelinus fontinalis), native to the highlands of the eastern margin of the
Appalachian Plateau are impacted by acid rain deposition; however, geomorphic research into landscape modeling, applicable to
restoration and management of lotic ecosystems of the eastern United States, is comparatively lacking. This current research
explores the potential for modeling channel morphology in mountain streams; specifically, how downstream trends in channel
substrate resistance and unit stream power effect the partitioning of mountain stream morphology along and downstream of the
fluvial/colluvial transition. In order to address this issue, two mountain drainage basins in the headwaters of the Gauley
River watershed on the Appalachian Plateau of southeastern West Virginia were chosen. The westerly flowing Cranberry (250
sqkm) and Cherry (429 sqkm) rivers incise gently northwestward dipping Carboniferous-aged strata (shale, minor coal,
siltstone, sandstone, and conglomerate), with a large percentage of both drainages managed as the Monongahela National
Forest. A total of 68 reach-scale (10-20 channel widths) channel surveys were completed in which reach gradient, average
bankfull channel widths, and bed surface grain size data were determined. This information was synthesized with data
extracted from 10-meter digital elevation models using both RiverTools v. 2.4 and ArcGIS Desktop 8.3 terrain analysis
software packages. Surveyed channel reach gradients range from (0.002-0.150 m/m) and are characterized by pool-riffle to
cascade and step-pool morphologies, though observed morphology succession is atypical of an equilibrated system. Partitioning
in channel morphology succession correlates with both changes in lithology (e.g. siltstone to conglomerate) and the extent
of headwater debris flow activity, which reflects a shift in the balance between driving and resisting forces as stream size
increases.
DE: 1899 General or miscellaneous
DE: 1824 Geomorphology (1625)
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting