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Response of a Coupled Ocean-Atmosphere Model to Greenland Ice Melting

机译:耦合海洋气氛模型对格陵兰冰融化的响应

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We investigate the transient response of the global coupled ocean-atmosphere system to enhanced freshwater forcing representative of melting of the Greenland ice sheets. A 50-year long simulation by a coupled atmosphere-ocean general circulation model (CGCM) is compared with another of the same length in which Greenland melting is prescribed. To highlight the importance of coupled atmosphere-ocean processes, the CGCM results are compared with those of two other experiments carried out with the oceanic general circulation model (OGCM). In one of these OGCM experiments, the prescribed surface fluxes of heat, momentum and freshwater correspond to the unperturbed simulation by the CGCM; in the other experiment, Greenland melting is added to the freshwater flux. The responses by the CGCM and OGCM to the Greenland melting have similar patterns in the Atlantic, albeit the former having five times larger amplitudes in sea surface height anomalies. The CGCM shows likewise stronger variability in all state variables in all ocean basins because the impact of Greenland melting is quickly communicated to all ocean basins via atmospheric bridges. We conclude that the response of the global climate to Greenland ice melting is highly dependent on coupled atmosphere-ocean processes. These lead to reduced latent heat flux into the atmosphere and an associated increase in net freshwater flux into the ocean, especially in the subpolar North Atlantic. The combined result is a stronger response of the coupled system to Greenland ice sheet melting.
机译:我们调查全​​球耦合海洋气氛系统的瞬态响应,以增强淡水迫使代表格陵兰冰盖的熔化。通过耦合的大气 - 海洋一般循环模型(CGCM)进行了50年的仿真与另一种相同的长度进行了比较,其中格陵兰熔化是规定的。为了突出耦合耦合大气流程的重要性,将CGCM结果与与海洋一般循环模型(OGCM)进行的另外两个实验进行了比较。在这些OGCM实验之一中,规定的热量,动量和淡水的规定表面助熔剂对应于CGCM的不受干扰的模拟;在其他实验中,格兰兰熔化被添加到淡水通量中。由海气耦合模式和OGCM格陵兰融化的响应在大西洋相似的模式,尽管在海面高度异常前者有五次较大振幅。 CGCM在所有海洋盆地中的所有状态变量都显示出更强的变化,因为格陵兰熔化的影响很快通过大气桥接到所有海洋盆地。我们得出结论,全球气候对格陵兰冰融化的回应高度依赖于耦合的大气海洋过程。这些导致将潜在的热量减少到大气中,净淡水通量的相关增加进入海洋,特别是在底部的北大西洋。合并的结果是耦合系统对格陵兰冰盖熔化的更强的反应。

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