Javascript must be enabled to continue!
Mobility of bi-disperse sediment beds in bedload transport
View through CrossRef
Bedload transport has major consequences for public safety, water resources and environmental sustainability. In mountains, steep slopes drive an intense transport of a wide range of grain sizes implying size sorting or segregation largely responsible for our limited ability to predict sediment flux and river morphology. Size segregation can lead to very complex and varied morphologies of bed surface and subsurface, including armouring, and can drastically modify the fluvial morphology equilibrium.In this work, the mobility of bidisperse beds is studied with coupled fluid-Discrete Element Method (DEM) simulations of bedload transport. Initially, a large particle layer is deposited over a 10% slope bed made of small particles. A gravity-driven water free surface flow induces a downslope shear-driven granular flow of the erodible bed. It is observed that, for the same water flow conditions, the bedload transport rate is higher in the bidisperse configuration than in the monodisperse one. Depending on the Shields number and on the depth of the interface between small and large particles, different transport phenomenologies are observed, ranging from no influence of the small particles to small particles reaching the bed surface due to diffusive remixing. In cases where the small particles hardly mix with the overlying large particles and for the range of studied size ratios (r < 4), it is shown that the increase of mobility of the sediment bed is a granular effect, which can be explained within the mu(I) rheology framework. The buried small particles are more mobile than larger particles and play the role of a “conveyor belt” for the large particles at the surface. Based on rheological arguments, a simple predictive model is proposed for the additional transport in the bidisperse case. It reproduces quantitatively the DEM results for a large range of Shields numbers and for size ratios smaller than 4.Finally, a phenomenological map is proposed. It presents the different transport regimes of bidisperse mixtures, depending on the mechanism responsible for the mobility of the small particles.
Title: Mobility of bi-disperse sediment beds in bedload transport
Description:
Bedload transport has major consequences for public safety, water resources and environmental sustainability.
In mountains, steep slopes drive an intense transport of a wide range of grain sizes implying size sorting or segregation largely responsible for our limited ability to predict sediment flux and river morphology.
Size segregation can lead to very complex and varied morphologies of bed surface and subsurface, including armouring, and can drastically modify the fluvial morphology equilibrium.
In this work, the mobility of bidisperse beds is studied with coupled fluid-Discrete Element Method (DEM) simulations of bedload transport.
Initially, a large particle layer is deposited over a 10% slope bed made of small particles.
A gravity-driven water free surface flow induces a downslope shear-driven granular flow of the erodible bed.
It is observed that, for the same water flow conditions, the bedload transport rate is higher in the bidisperse configuration than in the monodisperse one.
Depending on the Shields number and on the depth of the interface between small and large particles, different transport phenomenologies are observed, ranging from no influence of the small particles to small particles reaching the bed surface due to diffusive remixing.
In cases where the small particles hardly mix with the overlying large particles and for the range of studied size ratios (r < 4), it is shown that the increase of mobility of the sediment bed is a granular effect, which can be explained within the mu(I) rheology framework.
The buried small particles are more mobile than larger particles and play the role of a “conveyor belt” for the large particles at the surface.
Based on rheological arguments, a simple predictive model is proposed for the additional transport in the bidisperse case.
It reproduces quantitatively the DEM results for a large range of Shields numbers and for size ratios smaller than 4.
Finally, a phenomenological map is proposed.
It presents the different transport regimes of bidisperse mixtures, depending on the mechanism responsible for the mobility of the small particles.
Related Results
Quantitative measurement of bedload transport variability with acoustic monitoring systems: Insight from controlled laboratory flume experiments
Quantitative measurement of bedload transport variability with acoustic monitoring systems: Insight from controlled laboratory flume experiments
Predicting bedload transport is a key element of water-related hazard assessment and hydraulic engineering applications. However, knowledge of bedload transport processes remains l...
Hydrological drivers of bedload transport in an Alpine watershed
Hydrological drivers of bedload transport in an Alpine watershed
<p>Understanding and predicting bedload transport is an important element of watershed management. Yet, predictions of bedload remain uncertain by up to several order...
Hydrological drivers of bedload transport in an Alpine watershed
Hydrological drivers of bedload transport in an Alpine watershed
Understanding and predicting bedload transport is an important element
of watershed management. Yet, predictions of bedload remain uncertain up
to several order(s) of magnitude. In...
The impact of snow line altitude on subglacial sediment export
The impact of snow line altitude on subglacial sediment export
Large Alpine glaciers typically export significant quantities of subglacially eroded sediment to their downstream environments via meltwater streams. The supply of this glaciogenic...
ADCP measurements of bedload due to hydropeaking versus natural floods
ADCP measurements of bedload due to hydropeaking versus natural floods
A hydropeak is a rapid increase in river discharge induced by a hydroelectric dam when optimizing energy production.  These flow fluctuations occur in many regulated river...
Sediment Transport On The River Bandon, Co. Cork, Ireland
Sediment Transport On The River Bandon, Co. Cork, Ireland
This thesis analyses sediment transport on the River Bandon, Co. Cork, Ireland. Bedload transport and suspended sediment transport were monitored on the River Bandon over an extend...
How does channel pattern generate unsteady bedload transport?
How does channel pattern generate unsteady bedload transport?
Unsteady bedload transport, whereby temporal variations in transport rate occur under constant total discharge and sediment supply, can be generated from interactions between hydra...
Trends and Drivers of Bedload and Suspended Sediment Fluxes in Global Rivers
Trends and Drivers of Bedload and Suspended Sediment Fluxes in Global Rivers
<p>Bedload flux is notoriously challenging to measure and model. The dynamics of bedload, therefore, remains largely unknown in most fluvial systems worldwide. We pre...

