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  4. Finite-volume multi-stage scheme for advection-diffusion modeling in shallow water flows
 
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Finite-volume multi-stage scheme for advection-diffusion modeling in shallow water flows

Journal
Journal of Mechanics
Journal Volume
27
Journal Issue
3
Pages
415-430
Date Issued
2011
Author(s)
Guo, W.-D.
Lai, J.-S.
Lin, G.-F.
Lee, F.-Z.
YIH-CHI TAN  
GWO-FONG LIN  
DOI
10.1017/jmech.2011.44
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/435878
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-80053060509&doi=10.1017%2fjmech.2011.44&partnerID=40&md5=7db6dedc816f530747815bc392361ec3
Abstract
This paper adopts the finite-volume multi-stage (FMUSTA) scheme to the two-dimensional coupled system combining the shallow water equations and the advection-diffusion equation. For the convection part, the numerical flux is estimated by adopting the FMUSTA scheme, where high order accuracy is achieved by the data reconstruction using the monotonic upstream schemes for conservation laws method. For the diffusion part, the evaluations of first-order derivatives are solved via the method of Jacobian transformation. The hydrostatic reconstruction method is employed for treatment of source terms. The overall accuracy of resulting scheme is second-order both in time and space. In addition, the scheme is non-oscillatory and conserves the pollutant mass during the transport process. For scheme validation, six advection and diffusion transport tests are simulated. The influences of the grid spacing and limiters on the numerical performance are also discussed. Furthermore, the scheme is employed in the simulation of suspended sediment transport in natural-irregular river topography. From the satisfactory agreements between the simulated results and the field measured data, it is demonstrated that the proposed FMUSTA scheme is practically suitable for hydraulic engineering applications. Copyright © 2011 The Society of Theoretical and Applied Mechanics, R.O.C.
SDGs

[SDGs]SDG15

Type
journal article

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