EGU21-692
https://doi.org/10.5194/egusphere-egu21-692
EGU General Assembly 2021
© Author(s) 2021. This work is distributed under
the Creative Commons Attribution 4.0 License.

Validity domains and parametrizations for white-noise and multiscale models in turbulence and wave-turbulence interactions

valentin resseguier1, Erwan Hascoet2, Bertrand Chapron3, and Baylor Fox-Kemper4,5
valentin resseguier et al.
  • 1Lab, SCALIAN DS, Rennes, France (valentin.resseguier@scalian.com)
  • 2Oceandatalab, Locmaria-Plouzané, France
  • 3LOPS, Ifremer, Plouzané, France
  • 4Department of Earth, Environmental and Planetary Sciences (DEEPS), Brown University, Providence, USA
  • 5Institute at Brown for Environment and Society (IBES), Brown University, Providence, USA

Geophysical fluid dynamics systems generally involve a wide range of spatio-temporal scales. Numerical representation can only simulate some of the scales. The others, at the unresolved scales of motion, must be parameterized for each type of phenomenon (wave, eddy, current), in terms of expected effects on the resolved scales. Most developments then assume that the fluid transport velocity has a time-uncorrelated noisy component with zero mean and stationary statistics. These approximations generally simplify theoretical descriptions, numerical simulations, data comparisons or more recently model error quantifications for data assimilation.

In the present work, we will discuss the applicability of such approximations through two examples: a surface oceanic current dynamics and swell refractions by surface currents.

When the time-decorrelation assumption is valid, we propose simple and tuning-free parametric models to represent the spatial correlations of the white-in-time small-scale velocity to help simulate the geophysical system of interest. These parametric models relies on turbulence space self-similarity and their statistical properties (e.g. spectral slope) can be easily estimated from observations of larger scale fluid velocities.

When the white-in-time approximation is not valid, we extend the previous parametric models to follow self-similarity properties in both time and space.

Numerical simulations will illustrate these theoretical developments along the presentation.

How to cite: resseguier, V., Hascoet, E., Chapron, B., and Fox-Kemper, B.: Validity domains and parametrizations for white-noise and multiscale models in turbulence and wave-turbulence interactions, EGU General Assembly 2021, online, 19–30 Apr 2021, EGU21-692, https://doi.org/10.5194/egusphere-egu21-692, 2021.

Displays

Display file