A hydro-morphodynamic model integrating extended sediment particle size distribution and flocculation processes for better simulating hydro-sedimentary fluxes
Many studies focusing on suspended sediment transport modelling in river systems only consider one class of sediment grain size. Rather recently, the SISYPHE sediment transport model has integrated sand-mud mixture transport processes using two classes of sediment. However, this new modelling framew...
Main Authors: | , , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
EDP Sciences
2018-01-01
|
Series: | E3S Web of Conferences |
Online Access: | https://doi.org/10.1051/e3sconf/20184005025 |
id |
doaj-efa2a14d57f445f3b19c45f6b64f158e |
---|---|
record_format |
Article |
spelling |
doaj-efa2a14d57f445f3b19c45f6b64f158e2021-04-02T14:40:15ZengEDP SciencesE3S Web of Conferences2267-12422018-01-01400502510.1051/e3sconf/20184005025e3sconf_riverflow2018_05025A hydro-morphodynamic model integrating extended sediment particle size distribution and flocculation processes for better simulating hydro-sedimentary fluxesLepesqueur JeremyHostache RenaudMartinez-Carreras NúriaManceau LucDelus ClaireLosson BenoitMontarges-Pelletier EmmanuelleHissler ChristopheMany studies focusing on suspended sediment transport modelling in river systems only consider one class of sediment grain size. Rather recently, the SISYPHE sediment transport model has integrated sand-mud mixture transport processes using two classes of sediment. However, this new modelling framework still suffers from limitations, and increasing the number of sediment classes would arguably improve sediment transport and therefore riverbed evolution simulations. Moreover, current sediment transport models do not simulate sediment particle aggregation and disaggregation processes while these can play an important role in sediment transport. Integrating these new concepts would then contribute to significant improvements to river bed morphodynamics and sediment transport modelling. In this study, we further develop the SISYPHE model by extending the sediment particle size distribution to ten classes and integrating flocculation processes (coupling with the flocculation FLOCMOD model). The preliminary results we present in this paper are based on a large-scale flood event, which occurred in river Orne, north-eastern France. We clearly show that the proposed developments of SYSIPHE improves qualitatively and quantitatively the predictions of sediment transport and riverbed morphodynamics.https://doi.org/10.1051/e3sconf/20184005025 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lepesqueur Jeremy Hostache Renaud Martinez-Carreras Núria Manceau Luc Delus Claire Losson Benoit Montarges-Pelletier Emmanuelle Hissler Christophe |
spellingShingle |
Lepesqueur Jeremy Hostache Renaud Martinez-Carreras Núria Manceau Luc Delus Claire Losson Benoit Montarges-Pelletier Emmanuelle Hissler Christophe A hydro-morphodynamic model integrating extended sediment particle size distribution and flocculation processes for better simulating hydro-sedimentary fluxes E3S Web of Conferences |
author_facet |
Lepesqueur Jeremy Hostache Renaud Martinez-Carreras Núria Manceau Luc Delus Claire Losson Benoit Montarges-Pelletier Emmanuelle Hissler Christophe |
author_sort |
Lepesqueur Jeremy |
title |
A hydro-morphodynamic model integrating extended sediment particle size distribution and flocculation processes for better simulating hydro-sedimentary fluxes |
title_short |
A hydro-morphodynamic model integrating extended sediment particle size distribution and flocculation processes for better simulating hydro-sedimentary fluxes |
title_full |
A hydro-morphodynamic model integrating extended sediment particle size distribution and flocculation processes for better simulating hydro-sedimentary fluxes |
title_fullStr |
A hydro-morphodynamic model integrating extended sediment particle size distribution and flocculation processes for better simulating hydro-sedimentary fluxes |
title_full_unstemmed |
A hydro-morphodynamic model integrating extended sediment particle size distribution and flocculation processes for better simulating hydro-sedimentary fluxes |
title_sort |
hydro-morphodynamic model integrating extended sediment particle size distribution and flocculation processes for better simulating hydro-sedimentary fluxes |
publisher |
EDP Sciences |
series |
E3S Web of Conferences |
issn |
2267-1242 |
publishDate |
2018-01-01 |
description |
Many studies focusing on suspended sediment transport modelling in river systems only consider one class of sediment grain size. Rather recently, the SISYPHE sediment transport model has integrated sand-mud mixture transport processes using two classes of sediment. However, this new modelling framework still suffers from limitations, and increasing the number of sediment classes would arguably improve sediment transport and therefore riverbed evolution simulations. Moreover, current sediment transport models do not simulate sediment particle aggregation and disaggregation processes while these can play an important role in sediment transport. Integrating these new concepts would then contribute to significant improvements to river bed morphodynamics and sediment transport modelling. In this study, we further develop the SISYPHE model by extending the sediment particle size distribution to ten classes and integrating flocculation processes (coupling with the flocculation FLOCMOD model). The preliminary results we present in this paper are based on a large-scale flood event, which occurred in river Orne, north-eastern France. We clearly show that the proposed developments of SYSIPHE improves qualitatively and quantitatively the predictions of sediment transport and riverbed morphodynamics. |
url |
https://doi.org/10.1051/e3sconf/20184005025 |
work_keys_str_mv |
AT lepesqueurjeremy ahydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT hostacherenaud ahydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT martinezcarrerasnuria ahydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT manceauluc ahydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT delusclaire ahydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT lossonbenoit ahydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT montargespelletieremmanuelle ahydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT hisslerchristophe ahydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT lepesqueurjeremy hydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT hostacherenaud hydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT martinezcarrerasnuria hydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT manceauluc hydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT delusclaire hydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT lossonbenoit hydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT montargespelletieremmanuelle hydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes AT hisslerchristophe hydromorphodynamicmodelintegratingextendedsedimentparticlesizedistributionandflocculationprocessesforbettersimulatinghydrosedimentaryfluxes |
_version_ |
1721561813595717632 |