首页> 外文期刊>Geoscientific Model Development >The on-line coupled atmospheric chemistry model system MECO(n) – Part 5: Expanding the Multi-Model-Driver (MMD v2.0) for 2-way data exchange including data interpolation via GRID (v1.0)
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The on-line coupled atmospheric chemistry model system MECO(n) – Part 5: Expanding the Multi-Model-Driver (MMD v2.0) for 2-way data exchange including data interpolation via GRID (v1.0)

机译:在线耦合大气化学模型系统MECO(n)–第5部分:扩展多模型驱动程序(MMD v2.0)以进行双向数据交换,包括通过GRID(v1.0)进行数据插值

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As part of the Modular Earth Submodel System (MESSy), the Multi-Model-Driver (MMD v1.0) was developed to couple online the regional Consortium for Small-scale Modeling (COSMO) model into a driving model, which can be either the regional COSMO model or the global European Centre Hamburg general circulation model (ECHAM) (see Part 2 of the model documentation). The coupled system is called MECO(n), i.e., MESSy-fied ECHAM and COSMO models nested n times. In this article, which is part of the model documentation of the MECO(n) system, the second generation of MMD is introduced. MMD comprises the message-passing infrastructure required for the parallel execution (multiple programme multiple data, MPMD) of different models and the communication of the individual model instances, i.e. between the driving and the driven models. Initially, the MMD library was developed for a one-way coupling between the global chemistry–climate ECHAM/MESSy atmospheric chemistry (EMAC) model and an arbitrary number of (optionally cascaded) instances of the regional chemistry–climate model COSMO/MESSy. Thus, MMD (v1.0) provided only functions for unidirectional data transfer, i.e. from the larger-scale to the smaller-scale models.Soon, extended applications requiring data transfer from the small-scale model back to the larger-scale model became of interest. For instance, the original fields of the larger-scale model can directly be compared to the upscaled small-scale fields to analyse the improvements gained through the small-scale calculations, after the results are upscaled. Moreover, the fields originating from the two different models might be fed into the same diagnostic tool, e.g. the online calculation of the radiative forcing calculated consistently with the same radiation scheme. Last but not least, enabling the two-way data transfer between two models is the first important step on the way to a fully dynamical and chemical two-way coupling of the various model instances.In MMD (v1.0), interpolation between the base model grids is performed via the COSMO preprocessing tool INT2LM, which was implemented into the MMD submodel for online interpolation, specifically for mapping onto the rotated COSMO grid. A more flexible algorithm is required for the backward mapping. Thus, MMD (v2.0) uses the new MESSy submodel GRID for the generalised definition of arbitrary grids and for the transformation of data between them.In this article, we explain the basics of the MMD expansion and the newly developed generic MESSy submodel GRID (v1.0) and show some examples of the abovementioned applications.
机译:作为模块化地球子模型系统(MESSy)的一部分,开发了多模型驱动程序(MMD v1.0),以将区域小规模建模联盟(COSMO)模型在线耦合到驱动模型中,该模型可以是区域COSMO模型或全球欧洲中心汉堡通用流通模型(ECHAM)(请参阅模型文档的第2部分)。耦合的系统称为MECO(n),即,嵌套n次的MESSy型ECHAM和COSMO模型。本文是MECO(n)系统模型文档的一部分,介绍了第二代MMD。 MMD包括并行执行不同模型所需的消息传递基础结构(多程序多数据,MPMD)以及各个模型实例的通信,即在驱动模型和从动模型之间进行通信。最初,开发MMD库是为了在全球化学-气候ECHAM / MESSy大气化学(EMAC)模型与任意数量(可选级联)的区域化学-气候模型COSMO / MESSy之间进行单向耦合。因此,MMD(v1.0)仅提供用于单向数据传输的功能,即从大型模型到小型模型。很快,扩展的应用程序要求将数据从小型模型传输回大型模型。出于兴趣。例如,在将结果放大后,可以将大型模型的原始字段直接与放大后的小型字段进行比较,以分析通过小型计算获得的改进。而且,源自两个不同模型的字段可以被馈送到相同的诊断工具中,例如。辐射强迫的在线计算与相同的辐射方案一致。最后但并非最不重要的一点是,实现两个模型之间的双向数据传输是实现各种模型实例的完全动态和化学双向耦合的第一步,这是重要的一步。在MMD(v1.0)中,基本模型网格是通过COSMO预处理工具INT2LM执行的,该工具已实现到用于在线插值的MMD子模型中,特别是用于映射到旋转的COSMO网格上。向后映射需要更灵活的算法。因此,MMD(v2.0)使用新的MESSy子模型GRID来对任意网格进行广义定义以及它们之间的数据转换。在本文中,我们解释了MMD扩展和新开发的通用MESSy子模型GRID的基础。 (v1.0),并显示上述应用程序的一些示例。

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