Two-phase flow numerical simulation with real-gas effects and occurrence of rarefaction shock waves

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Abstract

A discrete equation method (DEM) for the simulation of compressible multiphase flows including real-gas effects is illustrated. A reduced five equation model is obtained starting from the semi-discrete numerical approximation of the two-phase model. A simple procedure is then proposed for using a more complex equation of state, thus improving the quality of the numerical prediction. Classical test-cases well-known in literature are performed featuring a strong importance of thermodynamic complexity for a good prediction of temperature evolution. Finally, a computational study on the occurrence of rarefaction shock waves (RSW) in a two-phase shock tube is presented, with dense vapors of complex organic fluids. Since previous studies have shown that a RSW is relatively weak in a single-phase (vapor) configuration, its occurrence and intensity are investigated considering the influence of the initial volume fraction, initial conditions and the thermodynamic model.

Original languageEnglish
Pages (from-to)20-35
Number of pages16
JournalEuropean Journal of Mechanics, B/Fluids
Volume45
DOIs
Publication statusPublished - 1 May 2014

Keywords

  • Discrete equation method
  • Rarefaction shock wave
  • Real gas effects
  • Shock-tube

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