Fetch-Limited Wind Wave Generation on the Continental Shelf

Abstract

The growth of wind waves in coastal areas is limited by the fetch. Understanding this sheltering effect of the coastline on the nearshore wave climate is of critical importance for Navy operations (e,g, amphibious assault and mine countermeasures) in shallow water. Whilst the effect of fetch limitation on the development of the wave field is well understood, the effects of bottom topography, the presence of swell and its interaction with wind waves, the angle of the wind relative to the coastline with regards to the change in effective fetch, and the effects of atmospheric stability, are not well documented. This study investigates fetch-limited wind wave growth by examining cases where a steady wind blows at various angles to a straight coastline, across a continental shelf in the presence of swell. The observed wind wave growth for offshore winds is consistent with previous observations in the North Sea. The presence of energetic swell opposing the wind does not have a significant effect on the wind sea development. Refraction strongly affects the directional properties of wind waves on the inner shelf. Observed wave growth rates agree well with predictions of the WAVEWATCH III operational wave prediction model forced with COAMPS winds.

Open PDF

Document Details

Document Type
Technical Report
Publication Date
Dec 01, 2003
Accession Number
ADA420508

Entities

People

  • Kristen P. Watts

Organizations

  • Naval Postgraduate School

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Boundary Layer
  • Cape Hatteras
  • Continental Shelves
  • Fluid Mechanics
  • Geography
  • Measurement
  • Measuring Instruments
  • Meteorology
  • North Carolina
  • North Sea
  • Ocean Waves
  • Oceans
  • Orientation (Direction)
  • Research Facilities
  • Ridges
  • Shallow Water
  • Topography

Fields of Study

  • Environmental science

Readers

  • Atmospheric Science / Meteorology, specifically Wind Wave Turbulence.
  • Coastal Oceanography
  • Ocean-Atmosphere Mesoscale Modeling, Data Assimilation, and Flux Boundary Layers