Role of Nonlinear Four-Wave Interactions Source Term on the Spectral Shape

The goal of this paper is to investigate the importance of the four-wave nonlinear interactions (SNL4) on the shape of the power spectrum of ocean waves. To this end, the following results are discussed: a number of authors have conducted modern experimental measurements of ocean waves over the past...

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Main Authors: Sonia Ponce de León, Alfred R. Osborne
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Series:Journal of Marine Science and Engineering
Subjects:
DIA
Online Access:https://www.mdpi.com/2077-1312/8/4/251
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spelling doaj-bc77a6b4a3fd4aa8bfcdc989eba272ce2021-04-02T10:31:09ZengMDPI AGJournal of Marine Science and Engineering2077-13122020-04-01825125110.3390/jmse8040251Role of Nonlinear Four-Wave Interactions Source Term on the Spectral ShapeSonia Ponce de León0Alfred R. Osborne1Centre for Marine Technology and Ocean Engineering (CENTEC), Instituto Superior Técnico, Universidade de Lisboa, Lisboa 1049-001, PortugalNonlinear Waves Research Corporation, Alexandria, VA 22314, USAThe goal of this paper is to investigate the importance of the four-wave nonlinear interactions (SNL4) on the shape of the power spectrum of ocean waves. To this end, the following results are discussed: a number of authors have conducted modern experimental measurements of ocean waves over the past decades and found that the measured power spectrum has (a) a very high central peak (characterized by the parameter γ, developed in the 1970s in the JONSWAP program) and (b) enhanced high-frequency channels which lead to the phenomenon of “bimodality”, also a well-known phenomenon. We discuss how a numerical hindcast of the Draupner storm (1995) with the standard code WAVEWATCH-III with full Boltzmann interactions also reflects these previously experimentally determined spectral shapes. Our results suggest that the use of the full Boltzmann interactions (as opposed to the discrete interaction approximation often employed for forecasting/hindcasting) is important for obtaining this characteristic physical spectral shape of the power spectrum.https://www.mdpi.com/2077-1312/8/4/251Draupner stormspectral shapenonlinear four-wave interactionsDIAexact nonlinear interactionsWAVEWATCH-III
collection DOAJ
language English
format Article
sources DOAJ
author Sonia Ponce de León
Alfred R. Osborne
spellingShingle Sonia Ponce de León
Alfred R. Osborne
Role of Nonlinear Four-Wave Interactions Source Term on the Spectral Shape
Journal of Marine Science and Engineering
Draupner storm
spectral shape
nonlinear four-wave interactions
DIA
exact nonlinear interactions
WAVEWATCH-III
author_facet Sonia Ponce de León
Alfred R. Osborne
author_sort Sonia Ponce de León
title Role of Nonlinear Four-Wave Interactions Source Term on the Spectral Shape
title_short Role of Nonlinear Four-Wave Interactions Source Term on the Spectral Shape
title_full Role of Nonlinear Four-Wave Interactions Source Term on the Spectral Shape
title_fullStr Role of Nonlinear Four-Wave Interactions Source Term on the Spectral Shape
title_full_unstemmed Role of Nonlinear Four-Wave Interactions Source Term on the Spectral Shape
title_sort role of nonlinear four-wave interactions source term on the spectral shape
publisher MDPI AG
series Journal of Marine Science and Engineering
issn 2077-1312
publishDate 2020-04-01
description The goal of this paper is to investigate the importance of the four-wave nonlinear interactions (SNL4) on the shape of the power spectrum of ocean waves. To this end, the following results are discussed: a number of authors have conducted modern experimental measurements of ocean waves over the past decades and found that the measured power spectrum has (a) a very high central peak (characterized by the parameter γ, developed in the 1970s in the JONSWAP program) and (b) enhanced high-frequency channels which lead to the phenomenon of “bimodality”, also a well-known phenomenon. We discuss how a numerical hindcast of the Draupner storm (1995) with the standard code WAVEWATCH-III with full Boltzmann interactions also reflects these previously experimentally determined spectral shapes. Our results suggest that the use of the full Boltzmann interactions (as opposed to the discrete interaction approximation often employed for forecasting/hindcasting) is important for obtaining this characteristic physical spectral shape of the power spectrum.
topic Draupner storm
spectral shape
nonlinear four-wave interactions
DIA
exact nonlinear interactions
WAVEWATCH-III
url https://www.mdpi.com/2077-1312/8/4/251
work_keys_str_mv AT soniaponcedeleon roleofnonlinearfourwaveinteractionssourcetermonthespectralshape
AT alfredrosborne roleofnonlinearfourwaveinteractionssourcetermonthespectralshape
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