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首页> 外文期刊>MATEC Web of Conferences >Langevin Dynamics Calculation of Brownian Coagulation Coefficient for Spherical Equal-size Aerosol Particles in Transient Regime
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Langevin Dynamics Calculation of Brownian Coagulation Coefficient for Spherical Equal-size Aerosol Particles in Transient Regime

机译:朗滨动力学计算瞬态方案球形等大小气溶胶颗粒的褐色凝血系数

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Coagulation coefficient of aerosol particles due to Brownian motion is an important issue to describe change in particle size distribution. Motion of aerosol particles is diffusive in continuous region (small Knudsen number; Kn ), or like free molecular motion of gaseous molecular in free molecular region (large Kn ). Fuchs (1964) presented an expression of coagulation coefficient in transition regime by a so-called “Flux Matching” method. In his method, transportation of particles inside of the “limiting sphere” is assumed to be like free molecular, or diffusive outside of the sphere. These days, some researchers presented coagulation coefficient of aerosol particles by direct calculation of motion of aerosol particles. They employed Langevin dynamics equation to represent the stochastic motion of aerosol particles. In this study, we developed new model to calculate the coagulation coefficient. Our model employed spherical calculation space in which one scavenging particle is in the center of it: the calculation sphere moves together with the motion of the scavenging particle. The coagulation coefficient can be calculated from the mean time between collisions and the concentration of collision particles. By using the above numerical model, we have calculated the coagulation coefficient of spherical particles of from 4 nm to 100 nm in diameter.
机译:由于布朗运动引起的气溶胶颗粒的凝血系数是描述粒度分布变化的重要问题。气溶胶颗粒的运动在连续区域(小knudsen编号; kn)中扩散,或者在游离分子区域(大Kn)中的气态分子的自由分子运动。 FUCHS(1964)通过所谓的“助焊剂匹配”方法呈现过渡制度中的凝血系数的表达。在他的方法中,假设“限制球体”内部的颗粒的运输方式是自由分子,或者在球体外部扩散。如今,一些研究人员通过直接计算气溶胶颗粒的运动来呈现气溶胶颗粒的凝血系数。它们采用Langevin动力学方程来代表气溶胶颗粒的随机运动。在这项研究中,我们开发了新模型来计算凝血系数。我们的模型采用了球形计算空间,其中一个清除粒子在其中心:计算球与清除颗粒的运动一起移动。凝血系数可以根据碰撞之间的平均时间和碰撞颗粒的浓度计算。通过使用上述数值模型,我们已经计算了直径4nm至100nm的球形颗粒的凝固系数。

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