English

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

Fluid Dynamics 2014-04-17 v1 Analysis of PDEs Numerical Analysis Computational Physics

Abstract

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 10710^7) 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.

Keywords

Cite

@article{arxiv.1404.0959,
  title  = {Direct numerical simulation of a compressible multiphase flow through the fast Eulerian approach},
  author = {Matteo Cerminara and Luigi Carlo Berselli and Tomaso Esposti Ongaro and Maria Vittoria Salvetti},
  journal= {arXiv preprint arXiv:1404.0959},
  year   = {2014}
}

Comments

4 pages, 4 figures, conference abstract

R2 v1 2026-06-22T03:42:22.749Z