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Phase transition dynamics of liquid phase precipitation from a supersaturated gas mixture

机译:过饱和气体混合物中液相沉淀的相变动力学

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This work presents a self-consistent description of phase transition dynamics of disperse liquid phase precipitating from a supersaturated gas mixture. The unified approach integrates the macroscale transport phenomena of cloud dynamics with the essential microphysical kinetic processes of droplet condensation, evaporation, and droplet collisions simultaneously taking place in stochastic population of liquid droplets. A complete set of governing equations with well-defined dissipative fluxes and kinetic rates is derived for phase transition dynamics from nucleation to postnucleation to coarsening stages. The local thermodynamics of precipitating system, which is considered as ternary mixture of disperse liquid phase and water vapor with dry air, is redefined to explicitly include on equal basis both the vapor content and liquid content into the fundamental thermodynamic relations and equation of state. The molecular kinetic flux regularization method for growth of submicron droplets is reexamined to include, among others, significant contribution of vapor molecular energy flux into total heat flux, resulting in new expressions for the droplet temperature, growth rate, and effective diffusion coefficients. The local kinetic rates are determined on the basis of microscale kinetic equation for the droplet distribution function. This is in contrast to commonly used semiempirical parametrization schemes for kinetic rates with adjustable parameters, wherein the probabilistic aspects of microphysical processes are not rigorously addressed. Stochastic diffusion interactions among droplets competing for the available water vapor and modifications in the kinetic equation for droplets growing in stochastic population with direct long-range diffusion interactions amongst them are discussed and formulated as well. (C) 2004 American Institute of Physics.
机译:这项工作提出了从过饱和气体混合物中沉淀出来的分散液相的相变动力学的自洽描述。统一的方法将云动力学的宏观传输现象与液滴的随机凝聚中同时发生的液滴凝结,蒸发和液滴碰撞的基本微观物理动力学过程结合在一起。对于从成核到后成核再到粗化阶段的相变动力学,导出了具有明确定义的耗散通量和动力学速率的一整套控制方程。重新定义了沉淀系统的局部热力学,该系统被认为是分散液相和水蒸气与干燥空气的三元混合物,明确地将相等的蒸气含量和液体含量包括在基本热力学关系式和状态方程中。重新审查了用于亚微米液滴生长的分子动力学通量正则化方法,其中包括将蒸汽分子能量通量对总热通量的显着贡献包括在内,从而产生了液滴温度,生长速率和有效扩散系数的新表达式。基于液滴分布函数的微观动力学方程式确定局部动力学速率。这与具有可调参数的动力学速率的常用半经验参数化方案相反,在该方案中,未严格解决微物理过程的概率方面。还讨论并制定了液滴争夺可用水蒸气之间的随机扩散相互作用以及对随机种群中具有直接长程扩散相互作用的液滴生长动力学方程的修正。 (C)2004年美国物理研究所。

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