A Well-Balanced Central-Upwind Scheme for the 2D Shallow Water Equations on Triangular Meshes
Steve Bryson, Doron Levy
Abstract
Open-access reader
Steve Bryson, Doron Levy
Abstract
Open-access reader
We are interested in approximating solutions of the two-dimensional shallow water equations with a bottom topography on triangular meshes. We show that there is a certain flexibility in choosing the numerical fluxes in the design of semi-discrete Godunov-type central schemes. We take advantage of this fact to generate a new second-order, central-upwind method for the two-dimensional shallow water equations that is well-balanced. We demonstrate the accuracy of our method as well as its balance properties in a variety of examples.
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We are interested in approximating solutions of the two-dimensional shallow water equations with a bottom topography on triangular meshes. We show that there is a certain flexibility in choosing the numerical fluxes in the design of semi-discrete Godunov-type central schemes. We take advantage of this fact to generate a new second-order, central-upwind method for the two-dimensional shallow water equations that is well-balanced. We demonstrate the accuracy of our method as well as its balance properties in a variety of examples.
Key concepts: Upwind scheme, Shallow water equations, Polygon mesh, Godunov's scheme, Mathematics, Flexibility (engineering), Applied mathematics, Variety (cybernetics)