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Collection/aggregation algorithms in Lagrangian cloud microphysical models: rigorous evaluation in box model simulations

机译:拉格朗日云微物理模型中的收集/聚集算法:盒模型仿真中的严格评估

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Recently, several Lagrangian microphysical models have been developed which use a large number of (computational) particles to represent a cloud. In particular, the collision process leading to coalescence of cloud droplets or aggregation of ice crystals is implemented differently in various models. Three existing implementations are reviewed and extended, and their performance is evaluated by a comparison with well-established analytical and bin model solutions. In this first step of rigorous evaluation, box model simulations, with collection/aggregation being the only process considered, have been performed for the three well-known kernels of Golovin, Long and Hall. Besides numerical parameters, like the time step and the number of simulation particles (SIPs) used, the details of how the initial SIP ensemble is created from a prescribed analytically defined size distribution is crucial for the performance of the algorithms. Using a constant weight technique, as done in previous studies, greatly underestimates the quality of the algorithms. Using better initialisation techniques considerably reduces the number of required SIPs to obtain realistic results. From the box model results, recommendations for the collection/aggregation implementation in higher dimensional model setups are derived. Suitable algorithms are equally relevant to treating the warm rain process and aggregation in cirrus.
机译:最近,已经开发了几种拉格朗日微物理模型,它们使用大量(计算)粒子表示云。特别地,在各种模型中以不同的方式实现导致云滴聚结或冰晶聚集的碰撞过程。审查并扩展了三个现有的实现,并通过与公认的分析和bin模型解决方案进行比较来评估其性能。在严格评估的第一步中,已经对Golovin,Long和Hall的三个著名内核执行了框模型模拟,其中仅考虑了收集/聚合。 除了时间步长和所使用的模拟粒子(SIP)数量之类的数字参数外,如何根据规定的分析定义的尺寸分布创建初始SIP集合的细节对于算法的性能至关重要。 。像以前的研究一样,使用恒重技术会大大低估算法的质量。使用更好的初始化技术会大大减少获得实际结果所需的SIP数量。从盒模型结果中,可以得出有关在高维模型设置中实施收集/汇总的建议。合适的算法与处理卷云中的暖雨过程和聚集同样相关。

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