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Impact of a Two-Way Coupling between an Atmospheric and an Ocean-Ice Model over the Gulf of St. Lawrence

机译:圣劳伦斯湾大气与海冰模式之间双向耦合的影响

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The purpose of this study is to present the impacts of a fully interactive coupling between an atmospheric and a sea ice model over the Gulf of St. Lawrence, Canada. The impacts are assessed in terms of the atmospheric and sea ice forecasts produced by the coupled numerical system. The ocean-ice model has been developed at the Maurice Lamontagne Institute, where it runs operationally at a horizontal resolution of 5 km and is driven (one-way coupling) by atmospheric model forecasts provided by the Meteorological Service of Canada (MSC). In this paper the importance of two-way coupling is assessed by comparing the one-way coupled version with a two-way coupled version in which the atmospheric model interacts with the sea ice model during the simulation. The impacts are examined for a case in which the sea ice conditions are changing rapidly. Two atmospheric model configurations have been studied. The first one has a horizontal grid spacing of 24 km, which is the operational configuration used at the Canadian Meteorological Centre. The second one is a high-resolution configuration with a 4-km horizontal grid spacing. A 48-h forecast has been validated using satellite images for the ice and the clouds, and also using the air temperature and precipitation observations. It is shown that the two-way coupled system improves the atmospheric forecast and has a direct impact on the sea ice forecast. It is also found that forecasts are improved with a fine resolution that better resolves the physical events, fluxes, and forcing. The coupling technique is also briefly described and discussed.
机译:这项研究的目的是介绍加拿大圣劳伦斯湾上空与海冰模型之间完全互动耦合的影响。根据耦合数值系统产生的大气和海冰预报评估影响。海洋冰模型是由莫里斯·拉蒙塔涅研究所(Maurice Lamontagne Institute)开发的,在该模型中,它以5 km的水平分辨率运行,并由加拿大气象局(MSC)提供的大气模型预测驱动(单向耦合)。在本文中,通过将单向耦合版本与两向耦合版本进行比较,评估了双向耦合的重要性,在仿真过程中,大气模型与海冰模型相互作用。对于海冰条件迅速变化的情况,要检查其影响。已经研究了两种大气模型配置。第一个具有24 km的水平网格间距,这是加拿大气象中心使用的操作配置。第二个是具有4公里水平网格间距的高分辨率配置。使用冰和云的卫星图像以及空气温度和降水的观测值,已经验证了48小时的预报。结果表明,双向耦合系统改善了大气预报并直接影响了海冰预报。还发现,可以通过更好地解决物理事件,通量和强迫的精细分辨率来改善预测。还简要描述和讨论了耦合技术。

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