A coupled channel network growth and hillslope evolution model: 1. Theory
Open Access
- 1 July 1991
- journal article
- Published by American Geophysical Union (AGU) in Water Resources Research
- Vol. 27 (7) , 1671-1684
- https://doi.org/10.1029/91wr00935
Abstract
This paper presents a model of the long‐term evolution of catchments, the growth of their drainage networks, and the changes in elevations within both the channels and the hillslopes. Elevation changes are determined from continuity equations for flow and sediment transport, with sediment transport being related to discharge and slope. The central feature of the model is that it explicitly differentiates between the sediment transport behavior of the channels and the hillslopes on the basis of observed physics, and the channel network extension results solely from physically based flow interactions on the hillslopes. The difference in behavior of channels and hillslopes is one of the most important properties of a catchment. The flow and sediment transport continuity equations in the channel and the hillslope are coupled and account for the long‐term interactions of the elevations in the hillslope and in the channels. Sediment transport can be due to fluvial processes, creep, and rockslides. Tectonic uplift may increase overall catchment elevations. The dynamics of channel head advance, and thus network growth, are modeled using a physically based mechanism for channel initiation and growth where a channel head advances when a channel initiation function, nonlinearly dependent on discharge and slope, exceeds a threshold. This threshold controls the drainage density of the basin. A computer implementation of the model is introduced, some simple simulations presented, and the numerics of the solution technique described.Keywords
This publication has 18 references indexed in Scilit:
- Source areas, drainage density, and channel initiationWater Resources Research, 1989
- Where do channels begin?Nature, 1988
- Dissipative systems: Implications for geomorphologyEarth Surface Processes and Landforms, 1988
- Fitting degradation of shoreline scarps by a nonlinear diffusion modelJournal of Geophysical Research, 1987
- Channel Networks: A Geomorphological PerspectiveWater Resources Research, 1984
- Formation and controls of channel networksProgress in Physical Geography: Earth and Environment, 1980
- Instability of Alluvial Valley Floors: A Method for its AssessmentTransactions of the ASAE, 1979
- Soil Creep and the Development of Hillside SlopesThe Journal of Geology, 1963
- EROSIONAL DEVELOPMENT OF STREAMS AND THEIR DRAINAGE BASINS; HYDROPHYSICAL APPROACH TO QUANTITATIVE MORPHOLOGYGSA Bulletin, 1945
- The Convexity of HilltopsThe Journal of Geology, 1909