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Coupled Fire–Atmosphere Simulations of the Rocky River Fire Using WRF-SFIRE
Author(s) -
Mika Peace,
Trent W. Mattner,
Graham Mills,
Jeffrey D. Kepert,
Lachlan McCaw
Publication year - 2016
Publication title -
journal of applied meteorology and climatology
Language(s) - English
Resource type - Journals
eISSN - 1558-8432
pISSN - 1558-8424
DOI - 10.1175/jamc-d-15-0157.1
Subject(s) - environmental science , weather research and forecasting model , atmosphere (unit) , atmospheric sciences , mesoscale meteorology , meteorology , convection , plume , subsidence , climatology , geology , physics , paleontology , structural basin
The coupled atmosphere–fire spread model “WRF-SFIRE” has been used to simulate a fire where extreme fire behavior was observed. Tall flames and a dense convective smoke column were features of the fire as it burned rapidly up the Rocky River gully on Kangaroo Island, South Australia. WRF-SFIRE simulations of the event show a number of interesting dynamical processes resulting from fire–atmosphere feedback, including the following: fire spread was sensitive to small changes in mean wind direction; fire perimeter was affected by wind convergence resulting from interactions between the fire, atmosphere, and local topography; and the fire plume mixed high-momentum air from above a strong subsidence inversion. At 1-min intervals, output from the simulations showed fire spread exhibiting fast and slow pulses. These pulses occurred coincident with the passage of mesoscale convective (Rayleigh–Benard) cells in the planetary boundary layer. Simulations show that feedback between the fire and atmosphere may...

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