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Hydrodynamic interactions between aerosol particles in the transition regime

机译:过渡方案中气溶胶颗粒之间的流体动力学相互作用

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摘要

We present a method for calculating the hydrodynamic interactions between particles in the kinetic (or transition regime), characterized by non-negligible particle Knudsen numbers. Such particles are often present in aerosol systems. The method is based on our extended Kirkwood-Riseman theory (Corson etal., Phys.Rev.E, vol.95 (1), 2017c, 013103), which accounts for interactions between spheres using the velocity field around a translating sphere as a function of Knudsen number. Results for the two-sphere problem at small Knudsen numbers are in good agreement with those obtained using Felderhof's interaction actions for mixed slip-stick boundary conditions, which are accurate to order r(-7) (Felderhof, PhysicaA, vol.89 (2), 1977, pp.373-384). The strength of the interactions decreases with increasing Knudsen number. Results for two fractal aggregates demonstrate that one can apply a point force approach for interactions between particles in the transition regime; the interaction tensor is similar to the Oseen tensor for continuum flow. Using this point force approach, we present an analysis for the settling of an unbounded cloud of particles. Our analysis shows that for sufficiently high volume fractions and cloud radii, the cloud behaves as a gas droplet in continuum flow even when the individual particles are small relative to the mean free path of the gas. The method presented here can be applied in a Brownian dynamics simulation analogous to Stokesian dynamics to study the behaviour of a dense aerosol system.
机译:我们提出了一种用于计算动力学(或过渡制度)中颗粒之间的流体动力相互作用的方法,其特征在于不可忽略的粒子knudsen数。这种颗粒通常存在于气溶胶系统中。该方法基于我们的扩展Kirkwood-Riseman理论(Corson Etal。,phys.rev.e,Vol.95(1),2017c,013103),其考虑了使用转换球周围的速度场的球体之间的相互作用。的Knudsen数函数。对于使用Felderhof的相互作用动作获得的混合滑棒边界条件的相互作用措施,这是良好的,对混合滑动边界条件的相互作用,这是良好的,这是良好的,这是良好的。 ),1977,PP.373-384)。相互作用的强度随着knudsen数的增加而降低。两个分形聚集体的结果表明,可以在过渡方案中施加粒子之间的相互作用的点力方法;的相互作用张量是类似于奥辛张量为连续流。使用这一点力方法,我们展示了一个分析了沉降无限的颗粒云。我们的分析表明,对于足够大的体积分数和云半径,即使各个颗粒相对于气体的平均自由路径小,云也表现为连续型的气体液滴。这里呈现的方法可以应用于褐色动力学模拟,类似于STOKESIAN Dynamics来研究致密气溶胶系统的行为。

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