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Ocean circulation generated magnetic signals

机译:海洋环流产生磁信号

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Conducting ocean water, as it flows through the Earth's magnetic field, generates secondary electric and mag-netic fields. An assessment of the ocean-generated magnetic fields and their detectability may be of impor-tance for geomagnetism and oceanography. Motivated by the clear identification of ocean tidal signatures in the CHAMP magnetic field data we estimate the ocean magnetic signals of steady flow using a global 3-D EM nu-merical solution. The required velocity data are from the ECCO ocean circulation experiment and alternatively from the OCCAM model for higher resolution. We assume an Earth's conductivity model with a surface thin shell of variable conductance with a realistic 1D mantle underneath. Simulations using both models predict an amplitude range of ±2 nT at Swarm altitude (430 km). However at sea level, the higher resolution simulation predicts a higher strength of the magnetic field, as compared to the ECCO simulation. Besides the expected signatures of the global circulation patterns, we find significant seasonal variability of ocean magnetic signals in the Indian and Western Pacific Oceans. Compared to seasonal variation, interannual variations produce weaker signals.
机译:当海水流过地球磁场时,它会产生次级电场和磁场。对海洋产生的磁场及其可探测性的评估可能对地磁和海洋学很重要。通过在CHAMP磁场数据中清楚识别海洋潮汐特征,我们可以使用全局3-D EM数值解决方案估算稳定流的海洋磁信号。所需的速度数据来自ECCO海洋环流实验,或者来自OCCAM模型,以实现更高的分辨率。我们假设地球的电导率模型具有可变电导率的表面薄壳,并在其下方具有逼真的一维地幔。使用这两个模型进行的仿真预测,在群体高度(430 km)下,幅度范围为±2 nT。但是,在海平面上,与ECCO仿真相比,更高分辨率的仿真预测磁场强度更高。除了全球环流模式的预期特征外,我们发现印度洋和西太平洋的海洋磁信号存在明显的季节性变化。与季节变化相比,年际变化产生的信号较弱。

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