Establishing Improved Modeling Practices of Segment-Tailored Boundary Conditions for Pluvial Urban Floods

Author:

De Vos Leon Frederik1ORCID,Rüther Nils1ORCID,Mahajan Karan1ORCID,Dallmeier Antonia1,Broich Karl2

Affiliation:

1. Chair of Hydraulic Engineering, Technical University of Munich (TUM), Arcisstraße 21, 80333 München, Germany

2. Chair of Hydrology and River Basin Management, Technical University of Munich (TUM), Arcisstraße 21, 80333 München, Germany

Abstract

Establishing appropriate boundary conditions is essential for developing high-accuracy hydrodynamic models. However, this task is particularly challenging in topographically varying urban domains without monotonous slopes due to insufficient boundary information. This study investigates five different boundary conditions and establishes modeling practices of boundary conditions in pluvial urban flood modeling. A numerical test model within the city of Berlin is used, employing the 2D hydrodynamic finite element module of the open-source TELEMAC system. It performs unsteady simulations with nodal rainfall inputs for various precipitation scenarios, excluding infiltration. The results demonstrate that the suitability of boundary conditions is critically dependent on the surrounding topography. For boundary segments with a positive slope, a stage–discharge curve is found to outperform the other boundary conditions investigated in this study. Conversely, for segments with a negative slope, a closed wall boundary condition appears clearly preferable. Additionally, a drainage reservoir boundary condition performs effectively for more complex boundary segments but necessitates extensive preprocessing. Based on these insights, simulations were repeated with segment-tailored boundary conditions. The results indicate that this combined model outperforms the global application of each individual model.

Funder

German Federal Ministry of Education and Research

Publisher

MDPI AG

Reference55 articles.

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