Passive scalar characteristics along inertial particle trajectory in turbulent non-isothermal flows

被引:0
作者
Chao Yi
YaMing Liu
Zhu He
ZhaoHui Liu
ChuGuang Zheng
机构
[1] Huazhong University of Science and Technology,State Key Laboratory of Coal Combustion
来源
Science China Technological Sciences | 2012年 / 55卷
关键词
DNS; non-isothermal flow; gas-particle flow; passive scalar; isotropic turbulence;
D O I
暂无
中图分类号
学科分类号
摘要
The momentum and heat coupling between carrier fluid and particles are a complex and challenge topic in turbulent reactive gas-solid flow modeling. Most observations on this topic, either numerical or experimental, are based on Eulerian framework, which is not enough for developing the probability density function (PDF) model. In this paper, the instantous behavior and multi-particle statistics of passive scalar along inertial particle trajectory, in homogenous isotropic turbulence with a mean scalar gradient, are investigated by using the direct numerical simulation (DNS). The results show that St∼1.0 particles are easy to aggregate in high strain and low vorticity regions in the fluid field, where the scalar dissipation is usually much higher than the mean value, and that every time they move across the cliff structures, the scalar change is much more intensive. Anyway, the self-correlation of scalar along particle trajectory is significantly different from the velocities observed by particle, for which the prefer-concentration effect is evident. The mechanical-to-thermal time scale ratio averaged along the particles, <r>p, is approximately two times smaller than that computed in the Eulerian frame r, and stays at nearly 1.77 with a weak dependence on particle inertia.
引用
收藏
页码:2593 / 2600
页数:7
相关论文
共 39 条
[1]  
Warhaft Z.(2000)Passive scalars in turbulent flows Ann Rev Fluid Mech 32 203-240
[2]  
Yudine M. I.(1959)Physical considerations on heavy particle diffusion Proc Int Sym Atmospheric Diffusion and Air Pollution. Adv. in Geophys 6 185-191
[3]  
Csanady G. T.(1963)Turbulent Diffusion of Heavy Particles in the Atmosphere J Atmospheric Sci 20 201-208
[4]  
Wang L. P.(1993)Dispersion of Heavy Particles by Turbulent Motion J Atmospheric Sci 50 1897-1913
[5]  
Stock D. E.(1990)Particle Response and Turbulence Modification in Isotropic Turbulence Phys Fluids 2 1191-1203
[6]  
Squires K. D.(1991)Preferential Concentration of Particles by Turbulence Phys Fluids 3 1169-1178
[7]  
Eaton J. K.(1998)Direct numerical simulations of heat transfer by solid particles suspended in homogeneous isotropic turbulence Int J Heat Fluid Flow 19 187-192
[8]  
Squires K. D.(1998)Temperature fluctuations in particle-laden homogeneous turbulent flows Int J Heat Mass Transfer 41 4081-4093
[9]  
Eaton J. K.(2000)Temperature decays in two-phase turbulent flows Int J Heat Mass Transfer 43 993-1005
[10]  
Sato Y.(1985)PDF methods for turbulent reactive flows Prog Energy Combust Sci 11 119-192