2008/10/31 by Fabrice Ardhuin, Louis Marié, Nicolas Rascle +3
Earth and Planetary Sciences · Physics and Astronomy · #Dissipation #Ocean Waves and Remote Sensing #Oceanographic and Atmospheric Processes #Radar #Sea state #Stokes drift #Stratification (seeds) #Surface wave #Tropical and Extratropical Cyclones Research #Wind speed #Wind stress #Wind wave #Wind wave model #physics.ao-ph
paper · pdf · doi:10.1175/2009jpo4169.1
Submitted to J. Phys. Oceanogr. le 16/10/2008. Revised 18/02/2009, Accepted 03/04/2010
arxiv created 2009/04/09 · openalex publication_date 2009/04/15 · arxiv updated 2015/05/12 · openalex created_date 2016/06/24 · openalex updated_date 2026/08/05
Abstract The surface current response to winds is analyzed in a 2-yr time series of a 12-MHz (HF) Wellen Radar (WERA) off the west coast of France. Consistent with previous observations, the measured currents, after filtering tides, are on the order of 1.0%–1.8% of the wind speed, in a direction 10°–40° to the right of the wind, and with systematic trends as a function of wind speed. This Lagrangian current can be decomposed as the vector sum of a quasi-Eulerian current UE, representative of the top 1 m of the water column and part of the wave-induced Stokes drift Uss at the sea surface. Here, Uss is estimated with an accurate numerical wave model using a novel parameterization of wave dissipation processes. Using both observed and modeled wave spectra, Uss is found to be very well approximated by a simple function of the wind speed and significant wave height, generally increasing quadratically with the wind speed. Focusing on a site located 100 km from the mainland, the wave-induced contribution of Uss to the radar measurement has an estimated magnitude of 0.6%–1.3% of the wind speed, in the wind direction—a percentage that increases with wind speed. The difference UE of Lagrangian and Stokes contributions is found to be on the order of 0.4%–0.8% of the wind speed and 45°–70° to the right of the wind. This relatively weak, quasi-Eulerian current with a large deflection angle is interpreted as evidence of strong near-surface mixing, likely related to breaking waves and/or Langmuir circulations. Summer stratification tends to increase the UE response by up to a factor of 2 on average, and further increase the deflection angle of UE by 5°–10°. At locations closer to the coast, Uss is smaller and UE is larger with a smaller deflection angle. These results would be transposable to the World Ocean if the relative part of geostrophic currents in UE was weak, which is expected. This decomposition into Stokes drift and quasi-Eulerian current is most important for the estimation of energy fluxes to the Ekman layer.