4.6 Article

Mesoscale SST-wind stress coupling in the Peru-Chile current system: Which mechanisms drive its seasonal variability?

期刊

CLIMATE DYNAMICS
卷 47, 期 7-8, 页码 2309-2330

出版社

SPRINGER
DOI: 10.1007/s00382-015-2965-7

关键词

Ocean-atmosphere interactions; Mesoscale SST-wind stress coupling; Regional coupled modeling; Eastern Boundary Upwelling System

资金

  1. Ministere de l'Enseignement Superieur et de la Recherche
  2. ANR [PULSATION-11-MONU-010]
  3. supercomputer Curie from the GENCI at the CEA [2011040542, 2012061047, 2014102286]
  4. National Oceanographic Partnership Program (NOPP)
  5. NASA Earth Science Physical Oceanography Program
  6. NASA MEaSUREs DISCOVER Project
  7. NERC [noc010010] Funding Source: UKRI
  8. Natural Environment Research Council [noc010010] Funding Source: researchfish

向作者/读者索取更多资源

Satellite observations and a high-resolution regional ocean-atmosphere coupled model are used to study the air/sea interactions at the oceanic mesoscale in the Peru-Chile upwelling current system. Coupling between mesoscale sea surface temperature (SST) and wind stress (WS) intensity is evidenced and characterized by correlations and regression coefficients. Both the model and the observations display similar spatial and seasonal variability of the coupling characteristics that are stronger off Peru than off Northern Chile, in relation with stronger wind mean speed and steadiness. The coupling is also more intense during winter than during summer in both regions. It is shown that WS intensity anomalies due to SST anomalies are mainly forced by mixing coefficient anomalies and partially compensated by wind shear anomalies. A momentum balance analysis shows that wind speed anomalies are created by stress shear anomalies. Near-surface pressure gradient anomalies have a negligible contribution because of the back-pressure effect related to the air temperature inversion. As mixing coefficients are mainly unchanged between summer and winter, the stronger coupling in winter is due to the enhanced large-scale wind shear that enables a more efficient action of the turbulent stress perturbations. This mechanism is robust as it does not depend on the choice of planetary boundary layer parameterization.

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