Dispersion in fixed beds

热扩散率 Péclet编号 分子扩散 流线、条纹线和路径线 色散(光学) 机械 扩散 质量扩散率 物理 多孔介质 涡流扩散 材料科学 热力学 经典力学 多孔性 湍流 光学 运营管理 公制(单位) 经济 复合材料
作者
Donald L. Koch,John F. Brady
出处
期刊:Journal of Fluid Mechanics [Cambridge University Press]
卷期号:154: 399-427 被引量:495
标识
DOI:10.1017/s0022112085001598
摘要

A macroscopic equation of mass conservation is obtained by ensemble-averaging the basic conservation laws in a porous medium. In the long-time limit this ‘macro-transport’ equation takes the form of a macroscopic Fick's law with a constant effective diffusivity tensor. An asymptotic analysis in low volume fraction of the effective diffusivity in a bed of fixed spheres is carried out for all values of the Péclet number ℙ = Ua / D f , where U is the average velocity through the bed. a is the particle radius and D f is the molecular diffusivity of the solute in the fluid. Several physical mechanisms causing dispersion are revealed by this analysis. The stochastic velocity fluctuations induced in the fluid by the randomly positioned bed particles give rise to a convectively driven contribution to dispersion. At high Péclet numbers, this convective dispersion mechanism is purely mechanical, and the resulting effective diffusivities are independent of molecular diffusion and grow linearly with ℙ. The region of zero velocity in and near the bed particles gives rise to non-mechanical dispersion mechanisms that dominate the longitudinal diffusivity at very high Péclet numbers. One such mechanism involves the retention of the diffusing species in permeable particles, from which it can escape only by molecular diffusion, leading to a diffusion coefficient that grows as ℙ 2 . Even if the bed particles are impermeable, non-mechanical contributions that grow as ℙ ln ℙ and ℙ 2 at high ℙ arise from a diffusive boundary layer near the solid surfaces and from regions of closed streamlines respectively. The results for the longitudinal and transverse effective diffusivities as functions of the Péclet number are summarized in tabular form in §6. Because the same physical mechanisms promote dispersion in dilute and dense fixed beds, the predicted Péclet-number dependences of the effective diffusivities are applicable to all porous media. The theoretical predictions are compared with experiments in densely packed beds of impermeable particles, and the agreement is shown to be remarkably good.
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