Title of article :
Turbulence modulation by dispersed solid particles in rotating channel flows
Author/Authors :
Pan، نويسنده , , Yingkang and Tanaka، نويسنده , , Toshitsugu and Tsuji، نويسنده , , Yutaka، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2002
Pages :
26
From page :
527
To page :
552
Abstract :
Turbulence modulation in rotating channel flows due to small solid particles, at low particle volume fractions O(10−5), is studied using direct numerical simulation (DNS). found, for the larger and heavier particles in a rotating channel, that the consideration of inter-particle collisions in the modeling yields higher turbulence kinetic energy as compared to the one without consideration of the inter-particle collisions. From the present DNS results, it is shown that, the inter-particle collisions enhance the fluid turbulence energy in the central region mainly at low wavenumbers; the inter-particle collisions enhance the fluid turbulence energy in the near-wall regions in the whole spectral band. μm copper particles have a positive contribution in the vicinity of the pressure surface and a negative contribution a little far from it to u2 and v2, while a negative contribution to uv in the vicinity of the pressure surface. The dissipation and viscous diffusion are changed consequently in this area. When the inter-particle collisions have not been considered, the magnitudes of the peaks of terms in balance of the Reynolds stress equations are much damped near the pressure surface and their positions are moved away from the wall, and there is almost no gain or loss near the suction surface compared with the corresponding case considering the inter-particle collisions. Production term G12 due to system rotation plays an important role in the uv equation, especially for the cases not considering the inter-particle collisions.
Keywords :
particles , Particle–turbulence interaction , Inter-particle collisions , Coriolis force , Rotating channel , direct numerical simulation
Journal title :
International Journal of Multiphase Flow
Serial Year :
2002
Journal title :
International Journal of Multiphase Flow
Record number :
1403803
Link To Document :
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