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Hydrodynamic rainfall-runoff modeling using different approaches for runoff creation
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<p>After extreme flash floods events 2016 in Bavaria, the cooperation project HiOS (reference map for surface runoff and flash floods) was started aiming at the detailed analysis of risk generated by flash floods using GIS methods as well as hydrological and hydrodynamic models. Part of the risk analysis is done using hydrodynamic rainfall-runoff modeling (HDRRM). HDRRM gets more and more popular since hydrodynamic models are able to accept rainfall as input. But most of the known hydrodynamic models have no integrated precipitation modules and therefore cannot be used uniquely for rainfall-runoff modeling. In this study, TELEMAC-2D is used for HDRRM because it already contains the SCS-CN-method and offers the possibility to implement new precipitation modules due to its open source license. An additional advantage of TELEMAC-2D is the good scaling on HPC cluster systems.</p><p>In this study, two different approaches for runoff creation will be compared. (1) The well-proven SCS-CN method calculates effective rain. Due to its simple structure, the process of runoff generation is completely decoupled from runoff concentration. Consequently, SCS-CN cannot account for re-infiltration due to surface runoff. (2) However, the Green-Ampt infiltration (GAI) is coupled to surface runoff as long as the water depth is non-zero. GAI is implemented recently and thus will be described in more detail. Both approaches are first tested using a simple model setup. The general model performance of the enhanced hydrodynamic rainfall-runoff modeling (EHDRRM) is verified using the case study Simbach/Triftern in Bavaria. This extreme flash flood event from 1<sup>st</sup> June 2016 hit the townships Simbach am Inn and Triftern. It is well documented and all necessary data is available in good quality. The main setup for the catchment area of 47&#160;km&#178; resp. 90&#160;km&#178; is built on a 1x1&#160;m DEM, land use data, hydrological soil group data and 5&#160;min-RADOLAN precipitation data. The calculated catchment outflow can be verified by measured data at the gauging stations in Simbach am Inn resp. Triftern. All comparisons include as reference results for precipitation without losses by infiltration.</p><p>The hydrodynamic precipitation runoff modeling HDRRM has proven to be a useful method for calculating flow paths, depths and velocities with a high spatial resolution during flash flood events. If the process of runoff generation is performed by the hydrodynamic model EHDRRM then the quality of results is improved significantly while keeping the modeling procedure simple. Concerning infiltration, EHDRRM allows for a physically correct representation taking the actual local water depth into consideration.</p>
Title: Hydrodynamic rainfall-runoff modeling using different approaches for runoff creation
Description:
<p>After extreme flash floods events 2016 in Bavaria, the cooperation project HiOS (reference map for surface runoff and flash floods) was started aiming at the detailed analysis of risk generated by flash floods using GIS methods as well as hydrological and hydrodynamic models.
Part of the risk analysis is done using hydrodynamic rainfall-runoff modeling (HDRRM).
HDRRM gets more and more popular since hydrodynamic models are able to accept rainfall as input.
But most of the known hydrodynamic models have no integrated precipitation modules and therefore cannot be used uniquely for rainfall-runoff modeling.
In this study, TELEMAC-2D is used for HDRRM because it already contains the SCS-CN-method and offers the possibility to implement new precipitation modules due to its open source license.
An additional advantage of TELEMAC-2D is the good scaling on HPC cluster systems.
</p><p>In this study, two different approaches for runoff creation will be compared.
(1) The well-proven SCS-CN method calculates effective rain.
Due to its simple structure, the process of runoff generation is completely decoupled from runoff concentration.
Consequently, SCS-CN cannot account for re-infiltration due to surface runoff.
(2) However, the Green-Ampt infiltration (GAI) is coupled to surface runoff as long as the water depth is non-zero.
GAI is implemented recently and thus will be described in more detail.
Both approaches are first tested using a simple model setup.
The general model performance of the enhanced hydrodynamic rainfall-runoff modeling (EHDRRM) is verified using the case study Simbach/Triftern in Bavaria.
This extreme flash flood event from 1<sup>st</sup> June 2016 hit the townships Simbach am Inn and Triftern.
It is well documented and all necessary data is available in good quality.
The main setup for the catchment area of 47&#160;km&#178; resp.
90&#160;km&#178; is built on a 1x1&#160;m DEM, land use data, hydrological soil group data and 5&#160;min-RADOLAN precipitation data.
The calculated catchment outflow can be verified by measured data at the gauging stations in Simbach am Inn resp.
Triftern.
All comparisons include as reference results for precipitation without losses by infiltration.
</p><p>The hydrodynamic precipitation runoff modeling HDRRM has proven to be a useful method for calculating flow paths, depths and velocities with a high spatial resolution during flash flood events.
If the process of runoff generation is performed by the hydrodynamic model EHDRRM then the quality of results is improved significantly while keeping the modeling procedure simple.
Concerning infiltration, EHDRRM allows for a physically correct representation taking the actual local water depth into consideration.
</p>.
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