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Assimilation of Earth rotation parameters into a global ocean model: excitation of polar motion

机译:将地球自转参数同化为全球海洋模型:激发极运动

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The oceanic contribution to Earth rotation anomalies can be manifold. Possible causes are a change of total ocean mass, changes in current speed or location and changes in mass distribution. To derive the governing physical mechanisms of oceanic Earth rotation excitation we assimilate Earth rotation observations with a global circulation ocean model. Before assimilation, observations of length of day and polar motion were transformed into estimates of ocean angular momentum. By using the adjoint 4D-VAR assimilation method we were able to reproduce these estimated time series. Although length of day was assimilated simultaneously the analysis in this paper focuses on the oceanic polar motion generation. Our results show that changes in mass distribution and currents contribute to oceanic polar motion generation. Both contributions are highly correlated and show similar amplitudes. The changes in the model done by the assimilation procedure could be related to changes in the atmospheric forcing. Since for geometrical reasons the change of total ocean mass does not project on polar motion, we conclude that the polar motion is mainly generated by a geostrophic response to atmospheric momentum forcing. In geostrophic currents mass displacement and current speed entail each other. This way the large similarity of mass and current generated ocean angular momentum can be explained.
机译:海洋对地球自转异常的贡献可能是多种多样的。可能的原因是海洋总质量的变化,当前速度或位置的变化以及质量分布的变化。为了推论海洋地球自转激发的控制物理机制,我们将地球自转观测与全球环流海洋模型进行了同化。在同化之前,将白天的长度和极运动的观测值转换为海洋角动量的估计值。通过使用伴随的4D-VAR同化方法,我们能够重现这些估计的时间序列。尽管同时吸收了一天的时间,但本文的分析主要集中在海洋极地运动的产生上。我们的结果表明,质量分布和洋流的变化有助于海洋极地运动的产生。两种贡献都是高度相关的,并且显示相似的幅度。通过同化过程完成的模型变化可能与大气强迫的变化有关。由于出于几何原因,总海洋质量的变化并不反映在极运动上,因此我们得出结论,极运动主要是由对大气动量强迫的地转反应产生的。在地转流中,质量位移和电流速度是相互联系的。这样可以解释质量和电流产生的海洋角动量的巨大相似性。

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