Analysis of triangular C-grid finite volume scheme for shallow water flows
| Author | Shirkhani, Hamidreza |
| Author | Mohammadian, Abdolmajid |
| Author | Seidou, Ousmane |
| Author | Qiblawey, Hazim |
| Available date | 2026-01-18T09:52:30Z |
| Publication Date | 2015-08-31 |
| Publication Name | Advances in Water Resources |
| Identifier | http://dx.doi.org/10.1016/j.advwatres.2015.04.011 |
| Citation | Shirkhani, Hamidreza, Abdolmajid Mohammadian, Ousmane Seidou, and Hazim Qiblawey. "Analysis of triangular C-grid finite volume scheme for shallow water flows." Advances in Water Resources 82 (2015): 176-195. |
| ISSN | 03091708 |
| Abstract | In this paper, a dispersion relation analysis is employed to investigate the finite volume triangular C-grid formulation for two-dimensional shallow-water equations. In addition, two proposed combinations of time-stepping methods with the C-grid spatial discretization are investigated. In the first part of this study, the C-grid spatial discretization scheme is assessed, and in the second part, fully discrete schemes are analyzed. Analysis of the semi-discretized scheme (i.e. only spatial discretization) shows that there is no damping associated with the spatial C-grid scheme, and its phase speed behavior is also acceptable for long and intermediate waves. The analytical dispersion analysis after considering the effect of time discretization shows that the Leap-Frog time stepping technique can improve the phase speed behavior of the numerical method; however it could not damp the shorter decelerated waves. The Adams–Bashforth technique leads to slower propagation of short and intermediate waves and it damps those waves with a slower propagating speed. The numerical solutions of various test problems also conform and are in good agreement with the analytical dispersion analysis. They also indicate that the Adams–Bashforth scheme exhibits faster convergence and more accurate results, respectively, when the spatial and temporal step size decreases. However, the Leap-Frog scheme is more stable with higher CFL numbers. |
| Sponsor | The 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. |
| Language | en |
| Publisher | Elsevier |
| Subject | Dispersion relation analysis Fourier analysis C-grid scheme Shallow water Ocean modeling |
| Type | Article |
| Pagination | 176-195 |
| Volume Number | 82 |
| ESSN | 1872-9657 |
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