کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
---|---|---|---|---|
666816 | 1458545 | 2011 | 16 صفحه PDF | دانلود رایگان |
This paper presents results of a large eddy simulation (LES) combined with Lagrangian particle tracking and a point-force approximation for the feedback effect of particles on the downward turbulent gaseous flow in a vertical channel. The LES predictions are compared with the results obtained by direct numerical simulation (DNS) of a finer computational mesh. A parametric study is conducted for particles with two response times in simulations with and without streamwise gravitational settling and elastic, binary interparticle collisions. It is shown that the classical and the dynamic Smagorinsky turbulence models adequately predict the particle-induced changes in the mean streamwise velocity and the Reynolds stresses of the carrier phase for the range of parameters studied. However, the largest discrepancies between the LES and DNS results are found in the cases of particle-laden flows. Conditional sampling of the instantaneous resolved flow fields indicates that the mechanisms by which particles directly oppose the production of momentum and vorticity of the organized fluid motions are also observed in the LES results. However, the geometric features of the near-wall quasistreamwise vortices are overestimated by the use of both turbulence models compared to the DNS predictions.
Research highlights
► LES feasibility in two and four-way coupling in gas-solid channel flows is studied.
► Two particle response times, gravity and collisions effects are studied.
► LES adequately predict particle-induced changes in mean and rms fluid velocities.
► The size of near-wall coherent structures is overestimated by the use of LES.
► The damping particle action on organized fluid motions is observed in LES results.
Journal: International Journal of Multiphase Flow - Volume 37, Issue 7, September 2011, Pages 706–721