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首页> 外文期刊>Geoscientific Model Development >Coupling framework (1.0) for the PISM (1.1.4) ice sheet model and the MOM5 (5.1.0) ocean model via the PICO ice shelf cavity model in an Antarctic domain
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Coupling framework (1.0) for the PISM (1.1.4) ice sheet model and the MOM5 (5.1.0) ocean model via the PICO ice shelf cavity model in an Antarctic domain

机译:耦合框架(1.0)对于术语(1.1.4)冰盖模型和MOM5(5.1.0)海洋模型通过南极域中的微微冰架腔模型

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The past and future evolution of the Antarctic Ice Sheet is largely controlled by interactions between the ocean and floating ice shelves. To investigate these interactions, coupled ocean and ice sheet model configurations are required. Previous modelling studies have mostly relied on high-resolution configurations, limiting these studies to individual glaciers or regions over short timescales of decades to a few centuries. We present a framework to couple the dynamic ice sheet model PISM (Parallel Ice Sheet Model) with the global ocean general circulation model MOM5 (Modular Ocean Model) via the ice shelf cavity model PICO (Potsdam Ice-shelf Cavity mOdel). As ice shelf cavities are not resolved by MOM5 but are parameterized with the PICO box model, the framework allows the ice sheet and ocean components to be run at resolutions of 16? km and 3 ° respectively. This approach makes the coupled configuration a useful tool for the analysis of interactions between the Antarctic Ice Sheet and the global ocean over time spans of the order of centuries to millennia. In this study, we describe the technical implementation of this coupling framework: sub-shelf melting in the ice sheet component is calculated by PICO from modelled ocean temperatures and salinities at the depth of the continental shelf, and, vice versa, the resulting mass and energy fluxes from melting at the ice–ocean interface are transferred to the ocean component. Mass and energy fluxes are shown to be conserved to machine precision across the considered component domains. The implementation is computationally efficient as it introduces only minimal overhead. Furthermore, the coupled model is evaluated in a 4000 year simulation under constant present-day climate forcing and is found to be stable with respect to the ocean and ice sheet spin-up states. The framework deals with heterogeneous spatial grid geometries, varying grid resolutions, and timescales between the ice and ocean component in a generic way; thus, it can be adopted to a wide range of model set-ups.
机译:南极冰盖的过去和未来演化主要受海洋与浮冰之间的相互作用控制。为了研究这些相互作用,需要耦合的海洋和冰板模型配置。以前的建模研究主要依赖于高分辨率配置,将这些研究限制在几十年的几十年中的单个冰川或地区。我们展示了一种框架,将动态冰板模型派系(平行冰板模型)与全球海洋通用循环模型MOM5(模块化海洋模型)通过冰货架腔模型PICO(波茨坦冰货架腔模型)耦合。由于MOM5没有解决冰架腔,但是用微微框模型参数化,该框架允许在16的分辨率下运行冰盖和海洋部件? KM和3°分别。这种方法使耦合配置成为分析南极冰板与全球海洋之间的相互作用的有用工具,随着时间的推移跨越几个世纪以来的时间。在本研究中,我们描述了该耦合框架的技术实现:冰盖组件中的子架熔化是通过在大陆架深度的模型海洋温度和盐度下计算的,反之亦然,使得块状物质和从冰海界面熔化的能量通量转移到海洋成分。显示质量和能量通量在考虑的组分结构域中被保守到机器精度。实现是计算的高效,因为它仅引入最小的开销。此外,在恒定当前的气候迫使下,在4000年的模拟中评价耦合模型,并且发现相对于海洋和冰盖旋转状态稳定。该框架涉及异质空间网格几何形状,不同的网格分辨率,冰和海洋部件之间以通用方式划分;因此,可以采用广泛的模型设置。

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