Title of article :
Turbulent collision of inertial particles: Point-particle based, hybrid simulations and beyond
Author/Authors :
Wang، نويسنده , , Lian-Ping and Rosa، نويسنده , , Bogdan and Gao، نويسنده , , Hui and He، نويسنده , , Guowei and Jin، نويسنده , , Guodong، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2009
Pages :
14
From page :
854
To page :
867
Abstract :
Point-particle based direct numerical simulation (PPDNS) has been a productive research tool for studying both single-particle and particle-pair statistics of inertial particles suspended in a turbulent carrier flow. Here we focus on its use in addressing particle-pair statistics relevant to the quantification of turbulent collision rate of inertial particles. PPDNS is particularly useful as the interaction of particles with small-scale (dissipative) turbulent motion of the carrier flow is mostly relevant. Furthermore, since the particle size may be much smaller than the Kolmogorov length of the background fluid turbulence, a large number of particles are needed to accumulate meaningful pair statistics. Starting from the relative simple Lagrangian tracking of so-called ghost particles, PPDNS has significantly advanced our theoretical understanding of the kinematic formulation of the turbulent geometric collision kernel by providing essential data on dynamic collision kernel, radial relative velocity, and radial distribution function. A recent extension of PPDNS is a hybrid direct numerical simulation (HDNS) approach in which the effect of local hydrodynamic interactions of particles is considered, allowing quantitative assessment of the enhancement of collision efficiency by fluid turbulence. Limitations and open issues in PPDNS and HDNS are discussed. Finally, on-going studies of turbulent collision of inertial particles using large-eddy simulations and particle-resolved simulations are briefly discussed.
Keywords :
Collision kernel , large-eddy simulation , inertial particles , Collision–coalescence , direct numerical simulation , Droplets , Hydrodynamic interaction
Journal title :
International Journal of Multiphase Flow
Serial Year :
2009
Journal title :
International Journal of Multiphase Flow
Record number :
1410332
Link To Document :
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