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The Framework For Ice Sheet–Ocean Coupling (FISOC) V1.1

机译:冰块 - 海洋耦合框架(Fisoc)V1.1

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A number of important questions concern processes at the margins of ice sheets where multiple components of the Earth system, most crucially ice sheets and oceans, interact. Such processes include thermodynamic interaction at the ice–ocean interface, the impact of meltwater on ice shelf cavity circulation, the impact of basal melting of ice shelves on grounded ice dynamics and ocean controls on iceberg calving. These include fundamentally coupled processes in which feedback mechanisms between ice and ocean play an important role. Some of these mechanisms have major implications for humanity, most notably the impact of retreating marine ice sheets on the global sea level. In order to better quantify these mechanisms using computer models, feedbacks need to be incorporated into the modelling system. To achieve this, ocean and ice dynamic models must be coupled, allowing runtime information sharing between components. We have developed a flexible coupling framework based on existing Earth system coupling technologies. The open-source Framework for Ice Sheet–Ocean Coupling (FISOC) provides a modular approach to coupling, facilitating switching between different ice dynamic and ocean components. FISOC allows fully synchronous coupling, in which both ice and ocean run on the same time step, or semi-synchronous coupling in which the ice dynamic model uses a longer time step. Multiple regridding options are available, and there are multiple methods for coupling the sub-ice-shelf cavity geometry. Thermodynamic coupling may also be activated. We present idealized simulations using FISOC with a Stokes flow ice dynamic model coupled to a regional ocean model. We demonstrate the modularity of FISOC by switching between two different regional ocean models and presenting outputs for both. We demonstrate conservation of mass and other verification steps during evolution of an idealized coupled ice–ocean system, both with and without grounding line movement.
机译:许多重要问题涉及冰盖边缘的过程,其中地球系统的多个部件,最关键的冰盖和海洋,互动。此类方法包括冰海界面的热力学相互作用,熔融水对冰架腔循环的影响,冰架基础熔化对冰山冰箱接地冰动力学和海洋控制的影响。这些包括基本上耦合的过程,其中冰和海洋之间的反馈机制起着重要作用。其中一些机制对人性产生了重大影响,最重要的是撤退海洋冰板对全球海平面的影响。为了更好地使用计算机模型量化这些机制,需要将反馈结合到建模系统中。为实现这一目标,必须耦合海洋和冰动态模型,允许在组件之间共享运行时信息。我们开发了一种基于现有地球系统耦合技术的灵活耦合框架。冰床 - 海洋耦合(Fisoc)的开源框架提供了一种模块化的耦合方法,促进了不同冰动态和海洋部件之间的切换。 Fisoc允许完全同步耦合,其中冰和海洋在同一时间步长,或者冰动态模型使用较长时间步长的半同步耦合。可提供多种遗产选项,并且有多种方法用于耦合亚冰架腔几何形状。也可以激活热力学耦合。我们使用Fisoc与耦合到区域海洋模型的Stokes流冰动态模型的理想化模拟。我们通过在两个不同的区域海洋模型之间切换并呈现两者的输出来展示Fisoc的模块化。我们展示了在理想化的耦合冰海系统的演变期间的质量和其他验证步骤的守恒,无论是在没有接地线运动的情况下。

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