机械
颗粒沉积
湍流
阻力
物理
剪切速度
剪切流
沉积(地质)
平流
湍流扩散
斯托克斯数
经典力学
粒子(生态学)
Lift(数据挖掘)
雷诺数
地质学
热力学
海洋学
计算机科学
数据挖掘
古生物学
沉积物
作者
Haifeng Zhang,Goodarz Ahmadi
标识
DOI:10.1017/s0022112099007284
摘要
Aerosol particle transport and deposition in vertical and horizontal turbulent duct flows in the presence of different gravity directions are studied. The instantaneous fluid velocity field is generated by the direct numerical simulation of the Navier–Stokes equation via a pseudospectral method. A particle equation of motion including Stokes drag, Brownian diffusion, lift and gravitational forces is used for trajectory analysis. Ensembles of 8192 particle paths are evaluated, compiled, and statistically analysed. The results show that the wall coherent structure plays an important role in the particle deposition process. The simulated deposition velocities under various conditions are compared with the available experimental data and the sublayer model predictions. It is shown that the shear velocity, density ratio, the shear-induced lift force and the flow direction affect the particle deposition rate. The results for vertical ducts show that the particle deposition velocity varies with the direction of gravity, and the effect becomes more significant when the shear velocity is small. For horizontal ducts, the gravitational sedimentation increases the particle deposition rate on the lower wall.
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