Abstract
In the present paper we study features and abilities of the combined TVD+SPH method relative to problems of numerical simulation of long waves runup on a shore within the shallow water theory. The results obtained by this method are compared to analytic solutions and to the data of laboratory experiments. Examples of successful application of the TVD+SPH method are presented for the case of study of runup processes for weakly nonlinear and strongly nonlinear waves, and also for N-waves.
Funding
The work was supported by the Russian Science Foundation (project No. 14–17–00219).
References
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© 2016 Walter de Gruyter GmbH, Berlin/Boston
Artikel in diesem Heft
- Frontmatter
- Research Article
- Application of kinetic approach to porous medium flow simulation in environmental hydrology problems on high-performance computing systems
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- Weighted Monte Carlo estimators for angular distributions of the solar radiation reflected from a cloud layer
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- A combined computational algorithm for solving the problem of long surface waves runup on the shore
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Artikel in diesem Heft
- Frontmatter
- Research Article
- Application of kinetic approach to porous medium flow simulation in environmental hydrology problems on high-performance computing systems
- Research Article
- Weighted Monte Carlo estimators for angular distributions of the solar radiation reflected from a cloud layer
- Research Article
- Weighted statistical modelling algorithms with branching and extension of a model ensemble of interacting particles
- Research Article
- A combined computational algorithm for solving the problem of long surface waves runup on the shore
- Research Article
- Numerical simulation of the performance of an artificial heart valve