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Indirect effect of the atmosphere through the oceans on the Earth nutation using the torque approach

机译:使用扭矩方法,通过海洋的间接大气对地球章动的影响

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摘要

The atmosphere exerts a direct torque on the Earth, perturbing its rotation. Additionally, the atmosphere exerts pressure, gravitational, and friction forces on the ocean, which induce an indirect effect of the atmosphere on the Earth. The oceanic response consists of variable currents and mass fluxes. These effects change the oceanic torque on the Earth. As the atmosphere has a large diurnal cycle, the indirect torque also presents a large diurnal component. This indirect diurnal torque is investigated using a numerical barotropic ocean model. In particular, we show that a dynamic ocean model is essential to compute the indirect effect of the atmosphere on nutation, as the oceanic response is far from that predicted by a static model. We also point out that the response of the ocean is nevertheless highly correlated with the atmospheric signal for the diurnal timescale but with a large amplification. The amount of ocean bottom friction is found to have a substantial influence on the indirect diurnal torque acting on the Earth. The effect of this indirect torque on the Earth nutation is computed and found to be much larger than the precision of current nutation observations, but results are uncertain in light of discrepancies in the angular momentum and torque balance. [References: 16]
机译:大气在地球上施加直接扭矩,从而扰乱了地球的旋转。此外,大气在海洋上施加压力,重力和摩擦力,从而引起大气对地球的间接影响。海洋响应包括可变电流和质量通量。这些影响改变了地球上的海洋扭矩。由于大气具有较大的昼夜循环,因此间接转矩也具有较大的昼夜分量。使用数值正压海洋模型研究了这种间接的日间扭矩。特别是,我们表明动态海洋模型对于计算大气对章动的间接影响至关重要,因为海洋响应远非静态模型预测的那样。我们还指出,在昼夜尺度上,海洋的响应与大气信号高度相关,但放大幅度很大。发现海底摩擦的量对作用在地球上的间接昼夜扭矩有很大影响。计算了这种间接扭矩对地球章动的影响,发现其远大于当前章动观测的精度,但是鉴于角动量和扭矩平衡的差异,结果尚不确定。 [参考:16]

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