Growth of gravity-capillary waves in countercurrent air/water turbulence

ORAL

Abstract

We use Direct Numerical Simulation (DNS) of the Navier Stokes equations to analyze the dynamics of the interface between air and water when both phases are driven by opposite pressure gradients (countercurrent configuration). The Reynolds number ($Re_{\tau}$), the Weber number ($We$) and the Froude number ($Fr$) fully describe the physical problem. We examine the problem of the transient growth of interface waves for different combinations of physical parameters. Keeping $Re_{\tau}$ constant and varying $We$ and $Fr$, we show that, in the initial stages of the wave generation process, the amplitude of the interface elevation $\eta$ grows in time as $\eta \propto t^{2/5}$. Wavenumber spectra, $E(k_x)$, of the surface elevation in the capillary range are in good agreement with the prediction of the Wave Turbulence Theory. Finally, the wave-induced modification of the average wind and current velocity profiles will be addressed.

Authors

  • Alfredo Soldati

    University of Udine, Dept. of Elec. Manag. and Mechanical Engineering, University of Udine, Italy

  • Francesco Zonta

    Dept. of Elec., Manag., and Mechanical Engineering, University of Udine, Udine, Italy, Dept. of Elec. Manag. and Mechanical Engineering, University of Udine, Italy

  • Miguel Onorato

    Dept. of Physics, University of Torino, Italy