The Balbi operational model, a simplified physical model for surface fires. Part I – modelling

Background Previously published versions of the ‘Balbi model’ describing surface fire propagation consist of a set of equations based on simplified conservation laws. Their main equation calculating the fire rate of spread (ROS) relied on an iterative process to account for the effect of environmental drivers. Aims We formulated a new version of this model that considers a 3D flame front composed of peaks and troughs, integrates distinct radiation and convection heat transfer mechanisms, and outputs the physical characteristics of a flame front as they are influenced by weather, fuel and topographical conditions. A simpler operational version, composed of only one equation, is also exhibited. Methods While maintaining its characteristics (physics-oriented, fully predictive and faster than real time) from older versions, the global structure of the proposed model is changed to obtain a set of algebraic equations easy to solve and to code. Key results We described the model and provided an analysis of model response to key environmental variables. Model evaluation against independent data is provided in a companion paper. Conclusions A simplified physical propagation model for surface fires has been exhibited. Implications The algebraic nature of the model’s equations makes it suitable to incorporate into fire management decision-making tools to support suppression activities.

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Publication Details

Journal
International Journal of Wildland Fire
Published
2026-09-04
DOI
https://doi.org/10.1071/wf25203
Citations
1
Primary Topic
Fire dynamics and safety research
Type
article
Field-Weighted Citation Impact
4.94
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The Balbi operational model, a simplified physical model for surface fires. Part I – modelling

Dominique Morvan, Miguel G. Cruz, Sofiane Méradji, Thierry Marcelli et al.
1 citations
International Journal of Wildland Fire
Fire dynamics and safety research
4.94
article

The Balbi operational model, a simplified physical model for surface fires. Part I – modelling

Dominique Morvan, Miguel G. Cruz, Sofiane Méradji, Thierry Marcelli, Jacques Henri Balbi, Jean Louis Rossi, François-Joseph Chatelon
article en
1 citations

Abstract

Background Previously published versions of the ‘Balbi model’ describing surface fire propagation consist of a set of equations based on simplified conservation laws. Their main equation calculating the fire rate of spread (ROS) relied on an iterative process to account for the effect of environmental drivers. Aims We formulated a new version of this model that considers a 3D flame front composed of peaks and troughs, integrates distinct radiation and convection heat transfer mechanisms, and outputs the physical characteristics of a flame front as they are influenced by weather, fuel and topographical conditions. A simpler operational version, composed of only one equation, is also exhibited. Methods While maintaining its characteristics (physics-oriented, fully predictive and faster than real time) from older versions, the global structure of the proposed model is changed to obtain a set of algebraic equations easy to solve and to code. Key results We described the model and provided an analysis of model response to key environmental variables. Model evaluation against independent data is provided in a companion paper. Conclusions A simplified physical propagation model for surface fires has been exhibited. Implications The algebraic nature of the model’s equations makes it suitable to incorporate into fire management decision-making tools to support suppression activities.

International Journal of Wildland FireVol. 35(9)
Commonwealth Scientific and Industrial Research Organisation (AU), Université de Corse Pascal Paoli (FR), Université de Toulon (FR), Marathon Oil (United States) (US), Centre National pour la Recherche Scientifique et Technique (CNRST) (MA), Centrale Méditerranée (FR), University of Limpopo (ZA)
Life in Land
Openalex Percentile: Top 4%
Fire dynamics and safety research
4.94
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