A mathematical justification of the Isobe-Kakinuma model for water waves with and without bottom topography
arXiv:1803.09236 · doi:10.1007/s00021-018-0398-x
Abstract
We consider the Isobe-Kakinuma model for water waves in both cases of the flat and the variable bottoms. The Isobe-Kakinuma model is a system of Euler-Lagrange equations for an approximate Lagrangian which is derived from Luke's Lagrangian for water waves by approximating the velocity potential in the Lagrangian appropriately. The Isobe-Kakinuma model consists of second order and a first order partial differential equations, where is a nonnegative integer. We justify rigorously the Isobe-Kakinuma model as a higher order shallow water approximation in the strongly nonlinear regime by giving an error estimate between the solutions of the Isobe-Kakinuma model and of the full water wave problem in terms of the small nondimensional parameter , which is the ratio of the mean depth to the typical wavelength. It turns out that the error is of order in the case of the flat bottom and of order in the case of variable bottoms.
References in corpus (4)
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- Hamiltonian structure for two-dimensional extended Green-Naghdi equations
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Cited by in corpus (5)
- Modeling shallow water waves
- A Hamiltonian structure of the Isobe-Kakinuma model for water waves
- Solitary wave solutions to the Isobe-Kakinuma model for water waves
- A mathematical analysis of the Kakinuma model for interfacial gravity waves. Part II: Justification as a shallow water approximation
- A mathematical analysis of the Kakinuma model for interfacial gravity waves. Part I: Structures and well-posedness