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Analysis of Fire-Induced Circulations during the FireFlux2 Experiment

Journal Article · · Fire
DOI:https://doi.org/10.3390/fire6090332· OSTI ID:2500955

Despite recent advances in both coupled fire modeling and measurement techniques to sample the fire environment, the fire–atmosphere coupling mechanisms that lead to fast propagating wildfires remain poorly understood. This knowledge gap adversely affects fire management when wildland fires propagate unexpectedly rapidly and shift direction due to the fire impacts on local wind conditions. In this work, we utilized observational data from the FireFlux2 prescribed burn and numerical simulations performed with a coupled fire–atmosphere model WRF-SFIRE to assess the small-scale impacts of fire on local micrometeorology under moderate wind conditions (10–12 m/s). The FireFlux2 prescribed burn provided a comprehensive observational dataset with in situ meteorological observations as well as IR measurements of fire progression. To directly quantify the effects of fire–atmosphere interactions, two WRF-SFIRE simulations were executed. One simulation was run in a two-way coupled mode in which the heat and moisture fluxes emitted from the fire were injected into the atmosphere, and the other simulation was performed in a one-way coupled mode for which the atmosphere was not affected by the fire. The difference between these two simulations was used to analyze and quantify the fire impacts on the atmospheric circulation at different sections of the fire front. The fire-released heat fluxes resulted in vertical velocities as high as 10.8 m/s at the highest measurement level (20 m above ground level) gradually diminishing with height and dropping to 7.9 m/s at 5.77 m. The fire-induced horizontal winds indicated the strongest fire-induced flow at the lowest measurement levels (as high as 3.3 m/s) gradually decreasing to less than 1 m/s at 20 m above ground level. The analysis of the simulated flow indicates significant differences between the fire-induced circulation at the fire head and on the flanks. The fire-induced circulation was much stronger near the fire head than at the flanks, where the fire did not produce particularly strong cross-fire flow and did not significantly change the lateral fire progression. However, at the head of the fire the fire-induced winds blowing across the front were the strongest and significantly accelerated fire progression. The two-way coupled simulation including the fire-induced winds produced 36.2% faster fire propagation than the one-way coupled run, and more realistically represented the fire progression.

Sponsoring Organization:
USDOE
Grant/Contract Number:
AC52-07NA27344
OSTI ID:
2500955
Journal Information:
Fire, Journal Name: Fire Journal Issue: 9 Vol. 6; ISSN 2571-6255; ISSN FBSIB9
Publisher:
MDPI AGCopyright Statement
Country of Publication:
Switzerland
Language:
English

References (17)

Observations of fire-induced turbulence regimes during low-intensity wildland fires in forested environments: implications for smoke dispersion: Observations of fire-induced turbulence regimes journal May 2015
The importance of low-level environmental vertical wind shear to wildfire propagation: Proof of concept: VERTICAL WIND SHEAR AND FIRE PROPAGATION journal August 2013
Observations of Fire–Atmosphere Interactions and Near-Surface Heat Transport on a Slope journal November 2014
Subgrid-scale fire front reconstruction for ensemble coupled atmosphere-fire simulations of the FireFlux I experiment journal December 2021
Real time simulation of 2007 Santa Ana fires journal April 2013
A wildland fire model with data assimilation journal December 2008
Assessment of ForeFire/Meso-NH for wildland fire/atmosphere coupled simulation of the FireFlux experiment journal January 2013
First observations of turbulence generated by grass fires journal January 2008
A physics-based approach to modelling grassland fires journal January 2007
The importance of fire - atmosphere coupling and boundary-layer turbulence to wildfire spread journal January 2009
The FireFlux II experiment: a model-guided field experiment to improve understanding of fire–atmosphere interactions and fire spread journal January 2019
Fire Growth in Grassland Fuels journal January 1995
A Coupled Atmosphere–Fire Model: Convective Feedback on Fire-Line Dynamics journal June 1996
Incorporating a Canopy Parameterization within a Coupled Fire-Atmosphere Model to Improve a Smoke Simulation for a Prescribed Burn journal August 2020
Defining Extreme Wildfire Events: Difficulties, Challenges, and Impacts journal February 2018
Coupled atmosphere-wildland fire modeling with WRF 3.3 and SFIRE 2011 journal January 2011
Evaluation of WRF-SFIRE performance with field observations from the FireFlux experiment journal January 2013

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