paper

Effects of preferential concentration on the combustion of iron particles -- A numerical study with homogeneous isotropic turbulence

arXiv:2604.04048

Abstract

Iron particles, with their non-volatile combustion mode, remain in the dispersed phase throughout the combustion process, causing the flow in a typical iron powder combustor to be particle-laden and turbulent. Preferential concentration is a phenomenon prevalent in such turbulent flows that causes particle clustering. To estimate the effects of clustering on the combustion process, direct-numerical-simulations are performed on a cubical domain with forced homogeneous isotropic turbulence. Simulations pertaining to Kolmogorov Stokes number , turbulent Reynolds number , and global equivalence ratio (considering FeO as the oxidation product) are executed. Increasing significantly extends the combustion completion time. A Poisson distribution of particles burns faster with a higher peak mean temperature. The evolution of the mean temperature in the combustion of the clustered distribution is smooth and results in a smaller peak value. However, the total combustion time of a clustered distribution is significantly extended, by up to eight times at and . Analysis of the Voronoi volumes at the start of combustion shows that particles in highly dense regions burn longer, as seen before in the literature. Furthermore, the combustion time exhibits a strong exponential dependence on in the ``cluster'' regions, and an asymptotic behavior in the ``void'' regions. However, significant spread is observed in the correlation. Time-averaging does not minimize this variation considerably. Analysis of the macroscale depletion zone indicates the importance of the macrostructure -- proximity of multiple clusters -- on the extension of the combustion time.

Preprint under review. Supplementary videos (~120MB) available upon request or at final publication