ASHEE: a compressible, equilibrium-Eulerian model for volcanic ash plumes
Matteo Cerminara, Tomaso Esposti Ongaro, Luigi Carlo Berselli

TL;DR
This paper introduces ASHEE, a new compressible, equilibrium-Eulerian model for simulating volcanic ash plumes, capturing non-equilibrium gas-particle dynamics efficiently in high-temperature, high-Reynolds environments.
Contribution
The paper develops a novel, faster non-equilibrium model for polydisperse gas-particle mixtures, applicable to volcanic plume simulations, extending previous dusty-gas models.
Findings
Model accurately reproduces turbulence dynamics and particle concentration.
Large-Eddy Simulations match observed plume properties.
Gas-particle non-equilibrium influences large-scale plume behavior.
Abstract
A new fluid-dynamic model is developed to numerically simulate the non-equilibrium dynamics of polydisperse gas-particle mixtures forming volcanic plumes. Starting from the three-dimensional N-phase Eulerian transport equations for a mixture of gases and solid particles, we adopt an asymptotic expansion strategy to derive a compressible version of the first-order non-equilibrium model, valid for low concentration regimes and small particles Stokes . When the model reduces to the dusty-gas one. The new model is significantly faster than the Eulerian model while retaining the capability to describe gas-particle non-equilibrium. Direct numerical simulation accurately reproduce the dynamics of isotropic turbulence in subsonic regime. For gas-particle mixtures, it describes the main features of density fluctuations and the preferential concentration of particles by…
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