Topographic Disorder, Wind Coupling, and Directional Fire Spread: Critical Behavior in a Terrain-Weighted Forest Fire Model
arXiv:2609.07763
Abstract
We introduce the Terrain-Weighted Forest Fire Model (TFFM), a lattice model in which fire spreads on a spatially correlated Gaussian height field with the asymmetric bond probability , plus an additive wind bias. Simulations on lattices up to reveal a sharp active-to-inactive transition whose critical suppression threshold is even in , decreases with , and decreases as the terrain correlation length is reduced: slope asymmetry acts as a suppressant because downhill bonds are penalized and fire stalls at local elevation maxima. For rough terrain and low tree density the fire fails to percolate even at zero suppression. Finite-size scaling on a fine grid at -- gives a correlation-length exponent from both the susceptibility peak and the width of the transition, and a front-velocity exponent , identical for smooth and rough terrain; neither matches directed percolation (, ) or isotropic percolation (, ). The single-seed survival probability at is independent of and decays extremely slowly, with a running exponent falling from to , excluding directed percolation and pointing to a survival probability that remains finite at criticality, consistent with the -independent value at which drops to zero. Wind raises by a factor of --, produces a sharp onset of downwind fire-scar drift at weak coupling, and, at high terrain coupling, decreases the burned fraction at boundary crossing---a terrain-wind competition effect absent from isotropic bond-disorder models. The model yields fire-risk thresholds and fire-scar signatures comparable to satellite burn-scar data.
22 pages, 15 figures, 2 tables