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AuthorBeljadid, A.
AuthorMohammadian, A.
AuthorQiblawey, Hazim
Available date2026-01-19T05:02:14Z
Publication Date2012-06-15
Publication NameComputers & Fluids
Identifierhttp://dx.doi.org/10.1016/j.compfluid.2012.02.026
CitationBeljadid, Abdelaziz, Abdolmajid Mohammadian, and Hazim Qiblawey. "Numerical simulation of rotation dominated linear shallow water flows using finite volume methods and fourth order Adams scheme." Computers & fluids 62 (2012): 64-70.
ISSN00457930
URIhttps://www.sciencedirect.com/science/article/pii/S0045793012000813
URIhttp://hdl.handle.net/10576/69380
AbstractIn this paper, we study the performance of some finite volume schemes for linear shallow water equations on a rotating frame. It is shown here that some well-known upwind schemes, which perform well for gravity waves, lead to a high level of damping or numerical oscillation for Rossby waves. We present a modified five-point upwind finite volume scheme which leads to a low level of numerical diffusion and oscillation for Rossby waves. The method uses a high-order upwind method for the calculation of the numerical flux and a fourth-order Adams method for time integration of the equations and is considerably more efficient than the fourth-order Runge–Kutta method that is usually used for temporal integration of shallow water equations in the presence of the Coriolis term. In the method proposed here, the Coriolis term is treated analytically in two stages: before and after calculation of computational fluxes. It is shown that the energy dissipation of the proposed method is considerably less than other upwind methods that are widely used, such as the third-order upwind method.
SponsorThe authors thank the anonymous reviewers for their valuable comments and suggestions to improve the quality of the paper. This publication was made possible by NPRP grant # 4-935-2-354 from the Qatar National Research Fund (a member of Qatar Foundation). The statements made herein are solely the responsibility of the authors.
Languageen
PublisherElsevier
SubjectRossby waves
Shallow water flows
Numerical scheme
Finite volume method
Coriolis effect
TitleNumerical simulation of rotation dominated linear shallow water flows using finite volume methods and fourth order Adams scheme
TypeArticle
Pagination64-70
Volume Number62
ESSN1879-0747
dc.accessType Full Text


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