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The effect of wave grouping phenomenon is discussed with particular attention to the Doppler effect.
This is a sequel with extensive new data to Liu's (Liu, 2000a. Wave grouping characteristics in nearshore Great Lakes. Ocean Engineering 27, 1221 1230) exploratory study on wave grouping characteristics in the nearshore Great Lakes.
Pairs of experiments with slightly different bandwidth or wave grouping show very similar net cross-shore sediment transport patterns, giving high confidence to the data set.
However, it is shown that the effect of wave grouping can produce waves in shallower water that are at least 30% greater in height than the limit proposed by Nelson (1994).
With the advantage of continued application of time-frequency wavelet spectrum analysis, the extensive new measurements substantially confirmed the effectiveness of the empirical characterization of wave grouping parameters defined in Liu.
While studying wave time-series alone does not really alleviate the vast intricacies of the wind wave processes, the embodiment of wave grouping as the predominant feature in the wind wave processes clearly represents a significant step forward toward sound conceptual advancement.
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Fourteen different wave conditions were used, encompassing monochromatic waves, bichromatic wave groups and random waves.
Input waves were based on focused wave groups generated using NewWave with an underlying JONSWAP spectrum.
For wave and wave group velocities, numerical computations of distributions are presented and illustrated graphically.
Rayleigh and Love wave group velocity dispersion was measured from ambient noise cross-correlations.
They were able to predict which groups turned rogue, based on two parameters: a wave group's length and height.
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