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arxiv: 1404.0959 · v1 · pith:VZZVVUTInew · submitted 2014-04-02 · ⚛️ physics.flu-dyn · cs.NA· math.AP· math.NA· physics.comp-ph

Direct numerical simulation of a compressible multiphase flow through the fast Eulerian approach

classification ⚛️ physics.flu-dyn cs.NAmath.APmath.NAphysics.comp-ph
keywords numberlargeparticlesdynamicseulerianflowhomogeneousisotropic
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Our work is motivated by the analysis of ash plume dynamics, arising in the study of volcanic eruptions. Such phenomena are characterized by large Reynolds number (exceeding $10^7$) and a large number of polydispersed particles~[1]. Thus, the choice of the methodology to be used is straightforward: we need LES of a multiphase gas-particles flow. Since the simulation of the behavior of a large number of dispersed particles is very difficult with Lagrangian methods, we model the particles as a continuum, Eulerian fluid (dust), by using reduced models involving two fluids, as proposed in Ref.~[2,3,4]. Moreover, we need a robust numerical scheme to simultaneously treat compressibility, buoyancy effects and turbulent dispersal dynamics. We analyze the turbulence properties of such models in a homogeneous and isotropic setting, with the aim of formulating a LES model. In particular, we examine the development of freely decaying homogeneous and isotropic turbulence in subsonic regime (the r.m.s. Mach number either 0.2 or 0.5) using OpenFOAM\textsuperscript{\textregistered}, which is one of the best known CFD open source software packages.

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