A Day in the Life of a Warm Front

Abstract

Three numerical model simulations of cyclogenesis are compared to examine the role of boundary layer stratification in enhancing the components forcing the ageostrophic circulation of an idealized warm front. The Sawyer- Eliassen diagnostic equation is applied to examine the contributions of frictional forcing and diabatic heating, as well as confluent and shear geostrophic deformation, to forcing of the secondary circulation of a warm front. The surface heat and moisture flux distributions are varied in each case, to evaluate the effect on each component as well as the cyclogenesis. Results confirm previous studies that geostrophic deformation forces strong frontogenesis at the surface, and at mid-levels frontogenesis is weaker and forced primarily by latent heat release. Frontogenetical forcing is modified by small-scale frictional forcing and diabatic heating, which depend upon the surface and boundary layer processes. Although frictional forcing comprises less than 5% of total forcing of the warm front, it apparently enhances frontogenesis, partially due to indirect effects on other more dominant processes. The intensity of frictional forcing is strongly dependent on the surface heat flux distribution and track of the cyclone relative to the sea- surface temperature gradient. In the absence of surface fluxes, frictional forcing is negligible. Surface forcing due to diabatic heating is frontolytical, and reduces total forcing at low levels by about twenty percent. Theses.

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Document Details

Document Type
Technical Report
Publication Date
Dec 01, 1989
Accession Number
ADA220373

Entities

People

  • Susan A. Davies

Organizations

  • Naval Postgraduate School

Tags

Communities of Interest

  • Materials and Manufacturing Processes
  • Weapons Technologies

DTIC Thesaurus Topics

  • Boundaries
  • Boundary Layer
  • Cardiac Arrest
  • Case Studies
  • Cold Fronts
  • Equations
  • Heat Energy
  • Heat Flux
  • Intensity
  • Latent Heat
  • Layers
  • Moisture
  • Simulations
  • Stratification
  • Surface Temperature
  • Temperature Gradients
  • Two Dimensional

Fields of Study

  • Environmental science

Readers

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