Annualmeeting:2017 CSDMS meeting-043: Difference between revisions

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{{CSDMS meeting abstract title temp
{{CSDMS meeting abstract title temp
|CSDMS meeting abstract title=Hillslope-derived blocks, erosion thresholds, and topographic scaling in mountain rivers
|CSDMS meeting abstract title=Hillslope-derived blocks, erosion thresholds, and topographic scaling in mountain rivers
}}
{{CSDMS meeting authors template
|CSDMS meeting coauthor first name abstract=Gregory
|CSDMS meeting coauthor last name abstract=Tucker
|CSDMS meeting coauthor institute / Organization=CSDMS, CIRES, and Department of Geological Sciences, University of Colorado
|CSDMS meeting coauthor town-city=Boulder
|CSDMS meeting coauthor country=United States
|State=Colorado
|CSDMS meeting coauthor email address=gtucker@colorado.edu
}}
{{CSDMS meeting authors template
|CSDMS meeting coauthor first name abstract=Matthew
|CSDMS meeting coauthor last name abstract=Rossi
|CSDMS meeting coauthor institute / Organization=Earth Lab, University of Colorado
|CSDMS meeting coauthor town-city=Boulder
|CSDMS meeting coauthor country=United States
|State=Colorado
|CSDMS meeting coauthor email address=matthew.rossi@colorado.edu
}}
}}
{{CSDMS meeting abstract template
{{CSDMS meeting abstract template

Latest revision as of 11:41, 18 April 2017






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Hillslope-derived blocks, erosion thresholds, and topographic scaling in mountain rivers

Charles Shobe, CU Boulder Dept of Geological Sciences Boulder Colorado, United States. charles.shobe@colorado.edu
Gregory Tucker, CSDMS, CIRES, and Department of Geological Sciences, University of Colorado Boulder Colorado, United States. gtucker@colorado.edu
Matthew Rossi, Earth Lab, University of Colorado Boulder Colorado, United States. matthew.rossi@colorado.edu


[[Image:|300px|right|link=File:]]Delivery of large blocks of rock from steepened hillslopes to incising river channels inhibits river incision and strongly influences the river longitudinal profile. We use a model of bedrock channel reach evolution to explore the implications of hillslope block delivery for erosion rate-slope scaling. We show that incorporating hillslope block delivery results in steeper channels at most erosion rates, but that blocks are ineffective at steepening channels with very high erosion rates because their residence time in the channel is too short. Our results indicate that the complex processes of block delivery, transport, degradation, and erosion inhibition may be parameterized in the simple shear stress/stream power framework with simple erosion-rate-dependent threshold rules. Finally, we investigate the effects of blocks on channel evolution for different scenarios of hydrologic variability, and compare and contrast our results with those of more common stochastic-threshold channel incision models. We show that hillslope-derived blocks have a different signature in erosion rate-slope space than the effects of constant erosion thresholds, and propose characteristic scaling that could be observed in the field to provide evidence for the influence of hillslope-channel coupling on landscape form.