Comparative Analyses between the Zero-Inertia and Fully Dynamic Models of the Shallow Water Equations for Unsteady Overland Flow Propagation

The shallow water equations are a mathematical tool widely applied for the simulation of flow routing in rivers and floodplains, as well as for flood inundation mapping. The interest of many researchers has been focused on the study of simplified forms of the original set of equations. One of the mo...

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Main Authors: Costanza Aricò, Carmelo Nasello
Format: Article
Language:English
Published: MDPI AG 2018-01-01
Series:Water
Subjects:
Online Access:http://www.mdpi.com/2073-4441/10/1/44
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spelling doaj-b455a588bfe648e9bc653fc22ba3daa52020-11-24T23:12:23ZengMDPI AGWater2073-44412018-01-011014410.3390/w10010044w10010044Comparative Analyses between the Zero-Inertia and Fully Dynamic Models of the Shallow Water Equations for Unsteady Overland Flow PropagationCostanza Aricò0Carmelo Nasello1Department of Civil, Environmental, Aerospace and Materials Engineering, University of Palermo, Viale delle Scienze, 90128 Palermo, ItalyDepartment of Civil, Environmental, Aerospace and Materials Engineering, University of Palermo, Viale delle Scienze, 90128 Palermo, ItalyThe shallow water equations are a mathematical tool widely applied for the simulation of flow routing in rivers and floodplains, as well as for flood inundation mapping. The interest of many researchers has been focused on the study of simplified forms of the original set of equations. One of the most commonly applied simplifications consists of neglecting the inertial terms. The effects of such a choice on the outputs of the simulations of flooding events are controversial and are an important topic of debate. In the present paper, two numerical models recently proposed for the solution of the complete and zero-inertia forms of the shallow water equations, are applied to several unsteady flow routing scenarios. We simulate synthetic and laboratory scenarios of unsteady flow routing, starting from very simple geometries and gradually moving towards complex topographies. Unlike the studies of the range of validity of the zero-inertia model, based on a small perturbation of the linearized flow model, in unsteady flow propagation over irregular topographies, it is more difficult to specify criteria for the applicability of the simplified set of equations. In analyzing the role of the terms in the momentum equations, we try to understand the effect of neglecting the inertial terms in the zero-inertia formulation. We also analyze the computational costs.http://www.mdpi.com/2073-4441/10/1/44shallow water equationsmodels comparisonfully dynamic modelzero-inertia modelinertial termsoverland flow routing
collection DOAJ
language English
format Article
sources DOAJ
author Costanza Aricò
Carmelo Nasello
spellingShingle Costanza Aricò
Carmelo Nasello
Comparative Analyses between the Zero-Inertia and Fully Dynamic Models of the Shallow Water Equations for Unsteady Overland Flow Propagation
Water
shallow water equations
models comparison
fully dynamic model
zero-inertia model
inertial terms
overland flow routing
author_facet Costanza Aricò
Carmelo Nasello
author_sort Costanza Aricò
title Comparative Analyses between the Zero-Inertia and Fully Dynamic Models of the Shallow Water Equations for Unsteady Overland Flow Propagation
title_short Comparative Analyses between the Zero-Inertia and Fully Dynamic Models of the Shallow Water Equations for Unsteady Overland Flow Propagation
title_full Comparative Analyses between the Zero-Inertia and Fully Dynamic Models of the Shallow Water Equations for Unsteady Overland Flow Propagation
title_fullStr Comparative Analyses between the Zero-Inertia and Fully Dynamic Models of the Shallow Water Equations for Unsteady Overland Flow Propagation
title_full_unstemmed Comparative Analyses between the Zero-Inertia and Fully Dynamic Models of the Shallow Water Equations for Unsteady Overland Flow Propagation
title_sort comparative analyses between the zero-inertia and fully dynamic models of the shallow water equations for unsteady overland flow propagation
publisher MDPI AG
series Water
issn 2073-4441
publishDate 2018-01-01
description The shallow water equations are a mathematical tool widely applied for the simulation of flow routing in rivers and floodplains, as well as for flood inundation mapping. The interest of many researchers has been focused on the study of simplified forms of the original set of equations. One of the most commonly applied simplifications consists of neglecting the inertial terms. The effects of such a choice on the outputs of the simulations of flooding events are controversial and are an important topic of debate. In the present paper, two numerical models recently proposed for the solution of the complete and zero-inertia forms of the shallow water equations, are applied to several unsteady flow routing scenarios. We simulate synthetic and laboratory scenarios of unsteady flow routing, starting from very simple geometries and gradually moving towards complex topographies. Unlike the studies of the range of validity of the zero-inertia model, based on a small perturbation of the linearized flow model, in unsteady flow propagation over irregular topographies, it is more difficult to specify criteria for the applicability of the simplified set of equations. In analyzing the role of the terms in the momentum equations, we try to understand the effect of neglecting the inertial terms in the zero-inertia formulation. We also analyze the computational costs.
topic shallow water equations
models comparison
fully dynamic model
zero-inertia model
inertial terms
overland flow routing
url http://www.mdpi.com/2073-4441/10/1/44
work_keys_str_mv AT costanzaarico comparativeanalysesbetweenthezeroinertiaandfullydynamicmodelsoftheshallowwaterequationsforunsteadyoverlandflowpropagation
AT carmelonasello comparativeanalysesbetweenthezeroinertiaandfullydynamicmodelsoftheshallowwaterequationsforunsteadyoverlandflowpropagation
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