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Slope–velocity equilibrium and evolution of surface roughness on a stony hillslope
by
Li, Li
, Hernandez, Mariano
, Armendariz, Gerardo
, Polyakov, Viktor O.
, Nearing, Mark A.
, Nichols, Mary H.
, Zhao, Ying
in
Analysis
/ Coefficients
/ Computer simulation
/ Controlled conditions
/ Discharge
/ Energy
/ Environmental aspects
/ Equilibrium
/ Evolution
/ Experiments
/ Flow rates
/ Flow velocity
/ Geomorphology
/ hills
/ Hydraulic roughness
/ Hydraulics
/ Hydrologic models
/ Hypotheses
/ Hypothesis testing
/ Laboratories
/ Mathematical models
/ Morphology
/ Observations
/ Overland flow
/ Rain
/ rain intensity
/ Rainfall
/ Rainfall intensity
/ Rainfall rate
/ rainfall simulation
/ rainfall simulators
/ Rainfall-runoff relationships
/ Rainmaking
/ Rocks
/ Runoff
/ Runoff models
/ Scale (ratio)
/ Slope gradients
/ Slopes
/ Slopes (Landforms)
/ Soil erosion
/ stony soils
/ Surface roughness
/ Surface runoff
/ topographic slope
/ Velocity
2017
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Slope–velocity equilibrium and evolution of surface roughness on a stony hillslope
by
Li, Li
, Hernandez, Mariano
, Armendariz, Gerardo
, Polyakov, Viktor O.
, Nearing, Mark A.
, Nichols, Mary H.
, Zhao, Ying
in
Analysis
/ Coefficients
/ Computer simulation
/ Controlled conditions
/ Discharge
/ Energy
/ Environmental aspects
/ Equilibrium
/ Evolution
/ Experiments
/ Flow rates
/ Flow velocity
/ Geomorphology
/ hills
/ Hydraulic roughness
/ Hydraulics
/ Hydrologic models
/ Hypotheses
/ Hypothesis testing
/ Laboratories
/ Mathematical models
/ Morphology
/ Observations
/ Overland flow
/ Rain
/ rain intensity
/ Rainfall
/ Rainfall intensity
/ Rainfall rate
/ rainfall simulation
/ rainfall simulators
/ Rainfall-runoff relationships
/ Rainmaking
/ Rocks
/ Runoff
/ Runoff models
/ Scale (ratio)
/ Slope gradients
/ Slopes
/ Slopes (Landforms)
/ Soil erosion
/ stony soils
/ Surface roughness
/ Surface runoff
/ topographic slope
/ Velocity
2017
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Do you wish to request the book?
Slope–velocity equilibrium and evolution of surface roughness on a stony hillslope
by
Li, Li
, Hernandez, Mariano
, Armendariz, Gerardo
, Polyakov, Viktor O.
, Nearing, Mark A.
, Nichols, Mary H.
, Zhao, Ying
in
Analysis
/ Coefficients
/ Computer simulation
/ Controlled conditions
/ Discharge
/ Energy
/ Environmental aspects
/ Equilibrium
/ Evolution
/ Experiments
/ Flow rates
/ Flow velocity
/ Geomorphology
/ hills
/ Hydraulic roughness
/ Hydraulics
/ Hydrologic models
/ Hypotheses
/ Hypothesis testing
/ Laboratories
/ Mathematical models
/ Morphology
/ Observations
/ Overland flow
/ Rain
/ rain intensity
/ Rainfall
/ Rainfall intensity
/ Rainfall rate
/ rainfall simulation
/ rainfall simulators
/ Rainfall-runoff relationships
/ Rainmaking
/ Rocks
/ Runoff
/ Runoff models
/ Scale (ratio)
/ Slope gradients
/ Slopes
/ Slopes (Landforms)
/ Soil erosion
/ stony soils
/ Surface roughness
/ Surface runoff
/ topographic slope
/ Velocity
2017
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Slope–velocity equilibrium and evolution of surface roughness on a stony hillslope
Journal Article
Slope–velocity equilibrium and evolution of surface roughness on a stony hillslope
2017
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Overview
Slope–velocity equilibrium is hypothesized as a state that evolves naturally over time due to the interaction between overland flow and surface morphology, wherein steeper areas develop a relative increase in physical and hydraulic roughness such that flow velocity is a unique function of overland flow rate independent of slope gradient. This study tests this hypothesis under controlled conditions. Artificial rainfall was applied to 2 m by 6 m plots at 5, 12, and 20 % slope gradients. A series of simulations were made with two replications for each treatment with measurements of runoff rate, velocity, rock cover, and surface roughness. Velocities measured at the end of each experiment were a unique function of discharge rates, independent of slope gradient or rainfall intensity. Physical surface roughness was greater at steeper slopes. The data clearly showed that there was no unique hydraulic coefficient for a given slope, surface condition, or rainfall rate, with hydraulic roughness greater at steeper slopes and lower intensities. This study supports the hypothesis of slope–velocity equilibrium, implying that use of hydraulic equations, such as Chezy and Manning, in hillslope-scale runoff models is problematic because the coefficients vary with both slope and rainfall intensity.
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