Model:AquaTellUs: Difference between revisions
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| | |ModelDomain=Terrestrial, Coastal | ||
|Spatial dimensions=2D | |Spatial dimensions=2D | ||
|Spatialscale=Regional-Scale | |||
|One-line model description=Fluvial-dominated delta sedimentation model | |One-line model description=Fluvial-dominated delta sedimentation model | ||
|Extended model description=AquaTellUs models fluvial-dominated delta sedimentation. AquaTellUS uses a nested model approach; a 2D longitudinal profiles, embedded as a dynamical flowpath in a 3D grid-based space. A main channel belt is modeled as a 2D longitudinal profile that responds dynamically to changes in discharge, sediment load and sea level. Sediment flux is described by separate erosion and sedimentation components. Multiple grain-size classes are independently tracked. Erosion flux depends on discharge and slope, similar to process descriptions used in hill-slope models and is independent of grain-size. Offshore, where we assume unconfined flow, the erosion capacity decreases with increasing water depth. The erosion flux is a proxy for gravity flows in submarine channels close to the coast and for down-slope diffusion over the entire slope due to waves, tides and creep. Erosion is restricted to the main flowpath. This appears to be valid for the river-channel belt, but underestimates the spatial extent and variability of marine erosion processes. | |Extended model description=AquaTellUs models fluvial-dominated delta sedimentation. AquaTellUS uses a nested model approach; a 2D longitudinal profiles, embedded as a dynamical flowpath in a 3D grid-based space. A main channel belt is modeled as a 2D longitudinal profile that responds dynamically to changes in discharge, sediment load and sea level. Sediment flux is described by separate erosion and sedimentation components. Multiple grain-size classes are independently tracked. Erosion flux depends on discharge and slope, similar to process descriptions used in hill-slope models and is independent of grain-size. Offshore, where we assume unconfined flow, the erosion capacity decreases with increasing water depth. The erosion flux is a proxy for gravity flows in submarine channels close to the coast and for down-slope diffusion over the entire slope due to waves, tides and creep. Erosion is restricted to the main flowpath. This appears to be valid for the river-channel belt, but underestimates the spatial extent and variability of marine erosion processes. | ||
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|Town / City=Boulder | |Town / City=Boulder | ||
|Postal code=80305 | |Postal code=80305 | ||
|Country=United States | |||
|State=Colorado | |State=Colorado | ||
|Email address=irina.overeem@colorado.edu | |Email address=irina.overeem@colorado.edu | ||
|Phone=303-492-6631 | |Phone=303-492-6631 | ||
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|Start year development=1997 | |Start year development=1997 | ||
|Does model development still take place?=Yes | |Does model development still take place?=Yes | ||
|DevelopmentCode=As is, no updates are provided | |||
|DevelopmentCodeYearChecked=2020 | |||
|Model availability=As code | |Model availability=As code | ||
|Source code availability=Through CSDMS repository | |Source code availability=Through CSDMS repository | ||
|Source csdms web address=https://github.com/csdms-contrib/aquatellus | |Source csdms web address=https://github.com/csdms-contrib/aquatellus | ||
|Program license type=Other | |Program license type=Other | ||
|Program license type other=-- | |Program license type other=-- | ||
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|DOI assigned to model version=1.0 | |DOI assigned to model version=1.0 | ||
|DOI-year assigned to model version=2011 | |DOI-year assigned to model version=2011 | ||
|DOI-filelink=https://csdms.colorado.edu/pub/models/doi-source-code/aquatellus-10.1594.IEDA.100089-1.0.tar.gz | |||
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==Introduction== | ==Introduction== | ||
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== References == | == References == | ||
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== Issues == | == Issues == | ||
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== Output Files == | == Output Files == | ||
Latest revision as of 20:15, 16 September 2020
AquaTellUs
Metadata
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Introduction
History
References
Nr. of publications: | 5 |
Total citations: | 129 |
h-index: | 4 |
m-quotient: | 0.17 |
Featured publication(s) | Year | Model described | Type of Reference | Citations |
---|---|---|---|---|
Overeem, I.; Veldkamp, A.; Tebbens, L.; Kroonenberg, S.B.; 2003. Modelling Holocene stratigraphy and depocentre migration of the Volga delta due to Caspian Sea-level change. Sedimentary Geology, 159, 159–175. 10.1016/S0037-0738(02)00257-9 (View/edit entry) | 2003 | AquaTellUs DeltaSIM |
Model overview | 26 |
Overeem, I.; Syvitski, J.P.M.; Hutton, E.W.H.; 2005. Three-dimensional numerical modeling of deltas.. River Deltas: concepts, models and examples. Volume 83. (View/edit entry) | 2005 | AquaTellUs Sedflux |
Model overview | 60 |
Overeem, I.; 2011. AquaTellUs, version 1.0.. , , https://csdms.colorado.edu/pub/models/doi-source-code/aquatellus-10.1594.IEDA.100089-1.0.tar.gz. 10.1594/IEDA/100089 (View/edit entry) | 2011 | AquaTellUs |
Source code ref. | 0 |
See more publications of AquaTellUs |