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SPACCIM: A parcel model with detailed microphysics and complex multiphase chemistry

机译:SPACCIM:具有详细的微观物理学和复杂的多相化学的包裹模型

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Multiphase processes, such as the uptake of gases by clouds or the production of gas phase halogens from particulate halides are of increasing importance for the understanding of the tropospheric system. Mass transfer and chemical reactions modify the concentrations of stable compounds and oxidants in either phase. The parcel model SPACCIM is presented which combines a complex multiphase chemical model with a detailed microphysical model. For this purpose, a new coupling scheme is implemented. The description of both components is given for a fine-resolved particle/drop spectrum. The SPACCIM approach allows the coupling of multiphase chemical models with microphysical codes of various types. An efficient numerical solution of such systems is only possible utilizing the special structure. An implicit time-integration scheme with an adapted sparse solver for the linear systems is applied. Its numerical efficiency and robustness is analyzed for two scenarios and versions of different complexity of the multiphase chemistry mechanism CAPRAM. The sensitivity of simulation results against variations in the particle/droplet size resolution, the coupling time step and numerical control parameters is discussed. Guidelines for an "optimal" choice of control parameters are derived from this sensitivity study. The coupling scheme operation is always robust and reliable. Model simulations are compared with several measurements from the FEBUKO field campaign. Simulated and measured results show a reasonable agreement.
机译:多相过程,例如被云层吸收气体或由颗粒状卤化物产生气相卤素,对于理解对流层系统的重要性日益增加。传质和化学反应会改变任一相中稳定化合物和氧化剂的浓度。提出了包裹模型SPACCIM,该模型将复杂的多相化学模型与详细的微物理模型相结合。为此目的,实现了新的耦合方案。给出了这两种成分的描述,用于精细解析的粒子/液滴光谱。 SPACCIM方法允许将多相化学模型与各种类型的微物理代码耦合。这种系统的有效数值解决方案只有利用特殊的结构才有可能。应用了一种适用于线性系统的具有稀疏求解器的隐式时间积分方案。针对多相化学机制CAPRAM的两种不同复杂度的方案和版本,分析了其数值效率和鲁棒性。讨论了仿真结果对颗粒/液滴尺寸分辨率,耦合时间步长和数控参数变化的敏感性。从敏感性研究中可以得出控制参数“最佳”选择的指南。耦合方案操作始终可靠且可靠。将模型仿真与FEBUKO野战活动的几种测量结果进行比较。模拟和测量结果表明合理的一致性。

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