Onshore Wind Stress and Buoyancy Flux Observed on a Dissipative Mediterranean Beach

Abstract

A five-month study was performed on an energetic, dissipative beach on a climatologically Mediterranean coastline to explore the wind stress and buoyancy flux. An eddy covariance system was deployed in the intertidal zone resulting in 1088 hours of quality-controlled flux observations at elevations of 1, 3, and 6m on a sandy beach in Monterey, CA. The wind stress angle relative to the mean wind direction varied as much as 31 deg, representing one standard deviation, with a range of 151 deg. The variations were dependent on the wind angle relative to the swell direction and shoreline, which directed the stress vector to the left for winds approaching from 0 deg> >-45 deg and to the right for winds approaching from -45 deg> >-80 deg, where 0 deg is onshore. The stress angle was independent of stability, stress, and wind speed. Air-ocean temperature differences produced unstable conditions 88% of the time in contrast to the near neutral conditions that dominate the open ocean. Based on flux footprints, the surf zone was found to be a source of positive buoyancy and heat flux contributing to the unstable conditions. Minimum buoyancy fluxes were observed with the flux footprints that were farther offshore centered outside the surf zone, resulting in stable conditions.

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Document Details

Document Type
Technical Report
Publication Date
Dec 01, 2015
Accession Number
ADA632249

Entities

People

  • Darin H. Keeter

Organizations

  • Naval Postgraduate School

Tags

Communities of Interest

  • Materials and Manufacturing Processes
  • Sensors
  • Space

DTIC Thesaurus Topics

  • Boundary Layer
  • Buoyancy
  • Coordinate Systems
  • Covariance
  • Elevation
  • Environment
  • Heat Energy
  • Heat Flux
  • Intertidal Zones
  • Measurement
  • Meteorology
  • Oceans
  • Regions
  • Shores
  • Wind
  • Wind Direction
  • Wind Stress

Fields of Study

  • Environmental science

Readers

  • Atmospheric Science/Meteorology
  • Coastal Oceanography
  • Ocean-Atmosphere Mesoscale Modeling, Data Assimilation, and Flux Boundary Layers