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首页> 外文期刊>Geoscientific Model Development >Extending legacy climate models by adaptive mesh refinement for single-component tracer transport: a case study with ECHAM6-HAMMOZ (ECHAM6.3-HAM2.3-MOZ1.0)
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Extending legacy climate models by adaptive mesh refinement for single-component tracer transport: a case study with ECHAM6-HAMMOZ (ECHAM6.3-HAM2.3-MOZ1.0)

机译:通过自适应网格精炼延伸遗产气候模型,用于单组件示踪运输:用ECHAM6-Hammoz进行一个案例研究(ECHAM6.3-HAM2.3-MOZ1.0)

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The model error in climate models depends on mesh resolution, among other factors. While global refinement of the computational mesh is often not feasible computationally, adaptive mesh refinement (AMR) can be an option for spatially localized features. Creating a climate model with AMR has been prohibitive so far. We use AMR in one single-model component, namely the tracer transport scheme. Particularly, we integrate AMR into the tracer transport module of the atmospheric model ECHAM6 and test our implementation in several idealized scenarios and in a realistic application scenario (dust transport). To achieve this goal, we modify the flux-form semi-Lagrangian (FFSL) transport scheme in ECHAM6 such that we can use it on adaptive meshes while retaining all important properties (such as mass conservation) of the original FFSL implementation. Our proposed AMR scheme is dimensionally split and ensures that high-resolution information is always propagated on (locally) highly resolved meshes. We utilize a data structure that can accommodate an adaptive Gaussian grid. We demonstrate that our AMR scheme improves both accuracy and efficiency compared to the original FFSL scheme. More importantly, our approach improves the representation of transport processes in ECHAM6 for coarse-resolution simulations. Hence, this paper suggests that we can overcome the overhead of developing a fully adaptive Earth system model by integrating AMR into single components while leaving data structures of the dynamical core untouched. This enables studies to retain well-tested and complex legacy code of existing models while still improving the accuracy of specific components without sacrificing efficiency.
机译:气候模型中的模型错误取决于网格分辨率,以及其他因素。虽然计算网格的全局细化通常不可行,但是,适应网格细化(AMR)可以是空间局部特征的选项。到目前为止,创造与AMR的气候模型一直普遍。我们在一个单模型组件中使用AMR,即示踪传输方案。特别是,我们将AMR集成到大气模型ECHAM6的示踪传输模块中,并在几种理想化场景中测试我们的实现,并在现实的应用方案(灰尘运输)中。为实现这一目标,我们在ECHAM6中修改了FFI-Forms Semi-Lagrangian(FFSL)传输方案,使得我们可以在自适应网格上使用它,同时保留原始FFSL实现的所有重要属性(如质量保护)。我们提出的AMR方案尺寸均拆分,并确保高分辨率信息始终在(本地)高度解决的网格上传播。我们利用可以容纳自适应高斯网格的数据结构。与原始FFSL方案相比,我们证明我们的AMR方案提高了准确性和效率。更重要的是,我们的方法改善了Echam6中的传输过程的代表,以进行粗辨率模拟。因此,本文认为我们可以通过将AMR集成到单个组件中,克服开发完全自适应地球系统模型的开销,同时留下动态核心的数据结构。这使得研究能够保留现有模型的经过良好测试和复杂的传统代码,同时仍在提高特定组件的准确性而不会牺牲效率。

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