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Numerical study on characteristics of turbulent two-phase gas-particle flow using multi-fluid model
Tae-Kuk Kim
The Journal of Mechanical Science and Technology, vol. 22, no. 7, pp.1436-1443, 2008
Abstract : The purpose of this research is to study numerically the turbulent gas-particle two-phase flow characteristics using
the Eulerian-Eulerian method. A computer code is developed for the numerical study by using the k -¥å - kp
two-phase
turbulent model. The developed code is applied for particle-laden flows in which the particle volume fraction is between
n 10−5 and 10−2 for the Stokes numbers smaller than unity. The gas and particle velocities and the particle
volume fraction obtained by using this code are in good agreement with those obtained by a commercial code for the
gas-particle jet flows within a rectangular enclosure. The gas-particle jet injected into a vertical rectangular 3D enclosure
is numerically modeled to study the effect of the Stokes number, the particle volume fraction and the particle Reynolds
numbers. The numerical results show that the Stokes number and the particle volume fraction are important parameters
in turbulent gas-particle flows. A small Stokes number ( St ¡Â 0.07) implies that the particles are nearly at the
velocity equilibrium with the gas phase, while a large Stokes number ( St ¡Ã 0.07) implies that the slip velocity between
the gas and particle phase increases and the particle velocity is less affected by the gas phase. A large particle volume
fraction ( p ¥á ¡Ã 0.0001) implies that the effect of the particles on the gas phase momentum increases, while a small
particle volume fraction ( p ¥á ¡Â 0.0001) implies that the particles would have no or small effect on the gas flow field.
For fixed Stokes number and particle volume fraction, an increase of the particle Reynolds number results in a decrease
of the slip velocity between the gas and particle velocities.
Keyword : Two-phase flow; Eulerian-Eulerian method; Stokes number; Particle volume fraction; Gas-particle jet |
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