Local Interactions by Diffusion between Mixed-Phase Hydrometeors: Insights from Model Simulations

Manuel Baumgartner, P. Spichtinger
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引用次数: 2

Abstract

Abstract Diffusion ofwater vapor is the dominant growth mechanism for smallwater droplets and ice crystals in clouds. In current cloud models, Maxwell’s theory is used for describing growth of cloud particles. In this approach the local interaction between particles is neglected; the particles can only grow due to changes in environmental conditions, which are assumed as boundary conditions at infinity. This assumption is meaningful if the particles are well separated and far away from each other. However, turbulent motions might change the distances between cloud particles and thus these particles are no longer well separated leading to direct local interactions. In this study we develop a reference model for investigating the direct interaction of cloud particles in mixed-phase clouds as driven by diffusion processes. The model is numerically integrated using finite elements. Additionally, we develop a numerical method based on generalized finite elements for including moving particles and their direct interactions with respect to diffusional growth and evaporation. Several idealized simulations are carried out for investigating direct interactions of liquid droplets and ice particles in a mixed-phase cloud. The results show that local interaction between cloud particles might enhance life times of droplets and ice particles and thus lead to changes in mixed-phase cloud life time and properties.
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混合相水成物间扩散的局部相互作用:来自模型模拟的见解
摘要水蒸气的扩散是云中小水滴和冰晶的主要生长机制。在目前的云模型中,麦克斯韦理论被用来描述云粒子的生长。这种方法忽略了粒子间的局部相互作用;粒子只能由于环境条件的变化而生长,这些环境条件被假定为无穷远处的边界条件。如果粒子分离得很好并且彼此距离很远,这个假设是有意义的。然而,湍流运动可能会改变云粒子之间的距离,因此这些粒子不再很好地分离,导致直接的局部相互作用。在这项研究中,我们开发了一个参考模型,用于研究由扩散过程驱动的混合相云中云粒子的直接相互作用。该模型采用有限元方法进行数值积分。此外,我们开发了一种基于广义有限元的数值方法,包括运动粒子及其在扩散生长和蒸发方面的直接相互作用。为了研究混合相云中液滴和冰粒的直接相互作用,进行了几种理想化的模拟。结果表明,云粒子之间的局部相互作用可能会增加液滴和冰粒的寿命,从而导致混合相云寿命和性质的变化。
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