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Fully coupled methods for multiphase morphodynamics

delete2013-09-01
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PRE
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C
Craig Michoski *
C
Clint Dawson
C
Chris Mirabito
E
Ethan J. Kubatko
D
Damrongsak Wirasaet
J
Joannes J. Westerink
DOI:10.1016/j.advwatres.2013.05.002delete
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Abstract

Abstract

En 中文
We present numerical methods for a system of equations consisting of the two dimensional Saint-Venant shallow water equations (SWEs) fully coupled to a completely generalized Exner formulation of hydrodynamically driven sediment discharge. This formulation is implemented by way of a discontinuous Galerkin (DG) finite element method, using a Roe Flux for the advective components and the unified form for the dissipative components. We implement a number of Runge-Kutta time integrators, including a family of strong stability preserving (SSP) schemes, and Runge-Kutta Chebyshev (RKC) methods. A brief discussion is provided regarding implementational details for generalizable computer algebra tokenization using arbitrary algebraic fluxes. We then run numerical experiments to show standard convergence rates, and discuss important mathematical and numerical nuances that arise due to prominent features in the coupled system, such as the emergence of nondifferentiable and sharp zero crossing functions, radii of convergence in manufactured solutions, and nonconservative product (NCP) formalisms. Finally we present a challenging application model concerning hydrothermal venting across metalliferous muds in the presence of chemical reactions occurring in low pH environments. Published by Elsevier Ltd.
Keywords:
Shallow water
Morphodynamics
Geophysical flow
Discontinuous Galerkin
Hydrothermal vent
Sediment transport
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Advances in Water Resources cover
Advances in Water Resources
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4.2
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University System of Ohio
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university of texas austin
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university of texas system
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