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Aerosol penetration in microchannels

机译:气雾剂在微通道中的渗透

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摘要

New applications involving aerosol transport in microscale configurations requires the derivation of the penetration efficiency of aerosols in microchannels. Although many analytical solutions for the aerosol penetration in channels have been investigated, none of them are applicable for microchannels. Previously, the no-slip condition for the gas velocity and the zero particle concentration boundary condition have been applied to the convection diffusion equation. However, recent studies show these boundary conditions may not be appropriate for microscale geometries. The particle penetration through rectangular microchannels and cylindrical microtubes has been obtained using the numerical Crank Nicolson method with slip flow at the walls. Existing correlations for the aerosol penetration have been modified for the slip flow regime based on an optimization method. These correlations give the penetration as a function of the dimensionless deposition factor and Knudsen number of the gas. At large Knudsen numbers the penetration decreases relative to the case with continuum flow. Therefore, the aerosol penetration decreases in the slip flow regime. However, the non-zero boundary condition for the particle concentration at the walls does not have any significant effect on the model results of the particle penetration.
机译:涉及微尺度配置中的气溶胶运输的新应用要求推导微通道中气溶胶的渗透效率。尽管已经研究了许多关于气溶胶渗透通道的分析解决方案,但是它们都不适用于微通道。以前,气体速度的无滑移条件和零粒子浓度边界条件已应用于对流扩散方程。但是,最近的研究表明这些边界条件可能不适用于微尺度的几何形状。已经使用数值Crank Nicolson方法在壁上产生滑流的情况下获得了通过矩形微通道和圆柱形微管的颗粒渗透。基于优化方法,针对滑流状态修改了气溶胶渗透的现有相关性。这些相关性给出了渗透率与气体无量纲沉积因子和克努森数的函数关系。在大克努森数下,渗透率相对于连续流情况降低。因此,在滑流状态下气溶胶渗透降低。但是,壁处粒子浓度的非零边界条件对粒子渗透的模型结果没有任何显着影响。

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