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    Application of a Consistent Nonlinear Mild-Slope Equation Model to Random Wave Propagation and Dissipation

    Source: Journal of Waterway, Port, Coastal, and Ocean Engineering:;2024:;Volume ( 150 ):;issue: 006::page 04024015-1
    Author:
    In-Chul Kim
    ,
    James M. Kaihatu
    DOI: 10.1061/JWPED5.WWENG-2114
    Publisher: American Society of Civil Engineers
    Abstract: In the context of actual surface wave conditions, the wave field is represented as a set of complex fluctuations that randomly change in both time and space, commonly known as “random waves.” These random waves can be expressed mathematically as a combination of multiple monochromatic waves, each having unique phases, directions, and amplitudes. Frequency-domain phase-resolving wave models have been shown to be robust predictors of random wave propagation provided the dispersive characteristics are valid for the range of water depths considered. Recently, a new dispersive nonlinear mild-slope equation model was developed by establishing a closer correspondence between the scaling of nonlinearity, horizontal depth variation, and modulation scale during the derivation process. In this work, this new model is augmented with a wave-breaking dissipation model using frequency-squared dissipation weighting over the wave spectrum. The new model and previous models are compared with laboratory data for accuracy in modeling the evolution of the random wave spectrum. Overall, the new model demonstrates improved agreement with results compared with the previously derived models. The additional nonlinear terms of the model, indicating the interaction effects between amplitude and amplitude change, correct the overprediction of wave spectral energy from prior models, especially at the lower frequencies of the shallowest gauges. Furthermore, the predictions of free surface elevation by the newly derived model are in excellent agreement with the observations at the shallowest gauge, primarily due to the alleviation of phase mismatch caused by the additional terms. Lastly, we provide the nonlinear modification to linear wavenumber on the basis of the additional nonlinearity.
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      Application of a Consistent Nonlinear Mild-Slope Equation Model to Random Wave Propagation and Dissipation

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    contributor authorIn-Chul Kim
    contributor authorJames M. Kaihatu
    date accessioned2024-12-24T10:08:37Z
    date available2024-12-24T10:08:37Z
    date copyright11/1/2024 12:00:00 AM
    date issued2024
    identifier otherJWPED5.WWENG-2114.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4298378
    description abstractIn the context of actual surface wave conditions, the wave field is represented as a set of complex fluctuations that randomly change in both time and space, commonly known as “random waves.” These random waves can be expressed mathematically as a combination of multiple monochromatic waves, each having unique phases, directions, and amplitudes. Frequency-domain phase-resolving wave models have been shown to be robust predictors of random wave propagation provided the dispersive characteristics are valid for the range of water depths considered. Recently, a new dispersive nonlinear mild-slope equation model was developed by establishing a closer correspondence between the scaling of nonlinearity, horizontal depth variation, and modulation scale during the derivation process. In this work, this new model is augmented with a wave-breaking dissipation model using frequency-squared dissipation weighting over the wave spectrum. The new model and previous models are compared with laboratory data for accuracy in modeling the evolution of the random wave spectrum. Overall, the new model demonstrates improved agreement with results compared with the previously derived models. The additional nonlinear terms of the model, indicating the interaction effects between amplitude and amplitude change, correct the overprediction of wave spectral energy from prior models, especially at the lower frequencies of the shallowest gauges. Furthermore, the predictions of free surface elevation by the newly derived model are in excellent agreement with the observations at the shallowest gauge, primarily due to the alleviation of phase mismatch caused by the additional terms. Lastly, we provide the nonlinear modification to linear wavenumber on the basis of the additional nonlinearity.
    publisherAmerican Society of Civil Engineers
    titleApplication of a Consistent Nonlinear Mild-Slope Equation Model to Random Wave Propagation and Dissipation
    typeJournal Article
    journal volume150
    journal issue6
    journal titleJournal of Waterway, Port, Coastal, and Ocean Engineering
    identifier doi10.1061/JWPED5.WWENG-2114
    journal fristpage04024015-1
    journal lastpage04024015-13
    page13
    treeJournal of Waterway, Port, Coastal, and Ocean Engineering:;2024:;Volume ( 150 ):;issue: 006
    contenttypeFulltext
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