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Evolution of weakly nonlinear random directional waves: laboratory experiments and numerical simulations

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posted on 2024-07-11, 06:41 authored by Alessandro Toffoli, O. Gramstad, K. Trulsen, J. Monbaliu, E. Bitner-Gregersen, M. Onorato
Nonlinear modulational instability of wavepackets is one of the mechanisms responsible for the formation of large-amplitude water waves. Here, mechanically generated waves in a three-dimensional basin and numerical simulations of nonlinear waves have been compared in order to assess the ability of numerical models to describe the evolution of weakly nonlinear waves and predict the probability of occurrence of extreme waves within a variety of random directional wave fields. Numerical simulations have been performed following two different approaches: numerical integration of a modified nonlinear Schrodinger equation and numerical integration of the potential Euler equations based on a higher-order spectral method. Whereas the first makes a narrow-banded approximation (both in frequency and direction), the latter is free from bandwidth constraints. Both models assume weakly nonlinear waves. On the whole, it has been found that the statistical properties of numerically simulated wave fields are in good quantitative agreement with laboratory observations. Moreover, this study shows that the modified nonlinear Schrodinger equation can also provide consistent results outside its narrow-banded domain of validity.

Funding

Oceanic Conditions within Extreme Tropical Cyclones

Australian Research Council

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ISSN

0022-1120

Journal title

Journal of Fluid Mechanics

Volume

664

Pagination

23 pp

Publisher

Cambridge University Press

Copyright statement

Copyright © Cambridge University Press 2010. The published version is reproduced in accordance with the copyright policy of the publisher.

Language

eng

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