In the context of large-scale urban flood modeling, porosity shallow-water models enable a considerable speed-up in computations while preserving information on subgrid topography. Over the last two decades, major improvements have been brought to these models, but a single generally accepted model formulation has not yet been reached. Instead, existing models vary in many respects. Some studies define porosity parameters at the scale of the computational cells or cell interfaces, while others treat the urban area as a continuum and introduce statistically defined porosity parameters. The porosity parameters are considered either isotropic or anisotropic and depth-independent or depth-dependent. The underlying flow models are based either on the full shallow-water equations or approximations thereof, with various flow resistance parameterizations. Here, we provide a review of the spectrum of porosity models developed so far for large-scale urban flood modeling.
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CEA, DAM, Valduc, F-21120 Is Sur Tille, France
Arts & Metiers ParisTech, LaBoMaP, F-71250 Cluny, FranceCEA, DAM, Valduc, F-21120 Is Sur Tille, France
Germain, Dimitri
Fromentin, Guillaume
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Arts & Metiers ParisTech, LaBoMaP, F-71250 Cluny, FranceCEA, DAM, Valduc, F-21120 Is Sur Tille, France
Fromentin, Guillaume
Poulachon, Gerard
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Arts & Metiers ParisTech, LaBoMaP, F-71250 Cluny, FranceCEA, DAM, Valduc, F-21120 Is Sur Tille, France
Poulachon, Gerard
Bissey-Breton, Stephanie
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CEA, DAM, Valduc, F-21120 Is Sur Tille, FranceCEA, DAM, Valduc, F-21120 Is Sur Tille, France
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Univ Vienna, Fac Math, Oskar Morgenstern Pl 1, A-1090 Vienna, AustriaUniv Vienna, Fac Math, Oskar Morgenstern Pl 1, A-1090 Vienna, Austria
Constantin, A.
Johnson, R. S.
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Newcastle Univ, Sch Math Stat & Phys, Newcastle Upon Tyne NE1 7RU, Tyne & Wear, EnglandUniv Vienna, Fac Math, Oskar Morgenstern Pl 1, A-1090 Vienna, Austria