2017
Conservative modified Serre—Green—Naghdi equations with improved dispersion characteristics
CComm. Nonlinear Sci. Numer. Simul.
D. Clamond, D. Dutykh and D. Mitsotakis
Comm. Nonlinear Sci. Numer. Simul. 45: 245-257 (2017)
Open Access
Abstract
For surface gravity waves propagating in shallow water, we propose a variant of the fully nonlinear Serre-Green-Naghdi equations involving a free parameter that can be chosen to improve the dispersion properties. The novelty here consists in the fact that the new model conserves the energy, contrary to other modified Serre's equations found in the literature. Numerical comparisons with the Euler equations show that the new model is substantially more accurate than the classical Serre equations, specially for long time simulations and for large amplitudes.
Keywords
math.APphysics.class-phphysics.ao-phMathematicsPhysicsmath.MPphysics.flu-dynmath-ph
Bibliographic record
Journal: Comm. Nonlinear Sci. Numer. Simul.
Volume: 45
Pages: 245-257
arXiv: 1511.07395
HAL: hal-01232370
BibTeX Citation
@article{Clamond2017conservativemodified,
author = {Clamond, D. and Dutykh, D. and Mitsotakis, D.},
title = {Conservative modified Serre—Green—Naghdi equations with improved dispersion characteristics},
journal = {Comm. Nonlinear Sci. Numer. Simul.},
year = {2017},
volume = {45},
pages = {245--257},
doi = {10.1016/j.cnsns.2016.10.009},
abstract = {For surface gravity waves propagating in shallow water, we propose a variant of the fully nonlinear Serre-Green-Naghdi equations involving a free parameter that can be chosen to improve the dispersion properties. The novelty here consists in the fact that the new model conserves the energy, contrary to other modified Serre's equations found in the literature. Numerical comparisons with the Euler equations show that the new model is substantially more accurate than the classical Serre equations, specially for long time simulations and for large amplitudes.},
keywords = {math.AP, physics.class-ph, physics.ao-ph, Mathematics, Physics, math.MP, physics.flu-dyn, math-ph}
}