HR: 08:05h
AN: H51F-01 INVITED [Abstracts]
TI: An Analytical Framework for Predicting the Downstream Geomorphic Effects of Dams on Rivers
AU: * Grant, G E
EM: gordon.grant@oregonstate.edu
AF: USDA Forest Service, Pacific Northwest Research Station, Forestry Sciences Laboratory
3200 Jefferson Way, Corvallis, OR 97331
United States
AU: O'Connor, J E
EM: oconnor@usgs.gov
AF: U.S Geological Survey, Water Resources Division
10615 S.E. Cherryblossom Dr.
, Portland, OR 97216
United States
AU: Schmidt, J C
EM: jschmidt@cc.usu.edu
AF: Department of Aquatic, Watershed, and Earth Resources, Utah State University
, Logan, UT 84322-5210
United States
AU: Hattanji, T
EM: tsuyoshi.hattanji@oregonstate.edu
AF: Dept. of Geosciences, Oregon State University, Corvallis, OR 97331
United States
AB:
Despite decades of research and abundant case studies on downstream effects of dams on rivers, we have few general models
predicting how any particular river is likely to adjust following impoundment. We present a conceptual and analytical
framework for predicting geomorphic response of rivers to dams, emphasizing the role of geologic setting and history as
first-order controls on the trajectory of change. Basin geology influences watershed and channel processes through a
hierarchical set of linkages, extending from the drainage basin to the valley and channel, which determine the sediment
transport and discharge regimes. Geology also directly shapes the suite of hillslope processes, landforms, and geomorphic
disturbances impinging on the channel and valley floor. These factors, in turn, affect the "lability" or capacity for
adjustment of the downstream channel, determining the type, direction, and extent of channel adjustments that occur,
including incision, widening, and textural changes. We develop an analytical framework, based on two dimensionless variables,
which predicts geomorphic responses to dams depending on the ratio of sediment supply below to that above the dam (S*) and
the fractional change in frequency of sediment-transporting flows (T*). Drawing on examples from rivers in the western United
States and globally, we explore how trajectories of geomorphic change, as defined by these two variables, are predicted by
this analytical framework and influenced by the geological setting and history of the river. This approach holds promise for
predicting the magnitude and trend of downstream response to other dammed rivers, and can identify river systems where
geological controls are likely to dominate.
UR: http://www.fsl.orst.edu/wpg
DE: 1803 Anthropogenic effects
DE: 1824 Geomorphology (1625)
DE: 1857 Reservoirs (surface)
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting