Numerical investigation of turbulence of surface gravity waves
arXiv:2108.01189 · doi:10.1017/jfm.2021.1114
Abstract
In this paper, we numerically study the wave turbulence of surface gravity waves in the framework of Euler equations of the free surface. The purpose is to understand the variation of the scaling of the spectra with wavenumber and energy flux at different nonlinearity levels under different forcing/free-decay conditions. For all conditions (free decay, narrow- and broadband forcing) we consider, we find that the spectral forms approach wave turbulence theory (WTT) solution and at high nonlinearity levels. With the decrease of nonlinearity level, the spectra for all cases become steeper, with the narrow-band forcing case exhibiting the most rapid deviation from WTT. To interpret these spectral variations, we further investigate two hypothetical and disputable mechanisms about bound waves and finite-size effect. Through a tri-coherence analysis, we find that the finite-size effect is present in all cases, which is responsible for the overall steepening of the spectra and reduced capacity of energy flux at lower nonlinearity levels. The fraction of bound waves in the domain generally decreases with the decrease of nonlinearity level, except for the narrow-band case, which exhibits a transition at some critical nonlinearity level below which a rapid increase is observed. This increase serves as the main reason for the fastest deviation from WTT with the decrease of nonlinearity in the narrow-band forcing case.
20 pages, 11 figures
References in corpus (6)
- Gravity surface wave turbulence in a laboratory flume
- Weak Turbulent Kolmogorov Spectrum for Surface Gravity Waves
- Observation of nonlinear dispersion relation and spatial statistics of wave turbulence on the surface of a fluid
- Resonant interactions of nonlinear water waves in a finite basin
- On the Properties of Energy Flux in Wave Turbulence
- Fast Computation Algorithm for Discrete Resonances among Gravity Waves
Cited by in corpus (5)
- On the Properties of Energy Flux in Wave Turbulence
- Feynman rules for forced wave turbulence
- Role of triad interactions in spectral evolution of surface gravity waves in deep water
- Bound Bogoliubov quasiparticles in photon superfluids
- Collapse of statistical equilibrium in large-scale hydroelastic turbulent waves