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Ohmic dissipation in the Earth's outer core resulting from the free inner core nutation

机译:自由内核核心的地球外核在地球外核的欧姆耗散

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摘要

The diurnal tidal forces can excite a normal mode of the Earth's core, the free inner core nutation (FICN), which is characterized by a tilt of the rotation axis of the inner core with respect to the rotation axis of the outer core. The differential rotation between the inner core and the outer core induces fluid motions in the outer core and gives rise to Ohmic dissipation in the presence of the Earth's internal magnetic field. Nutation measurements can reflect such dissipation if it is sufficiently strong and thus can provide insights into the properties and dynamics of the Earth's core. In this study we perform a set of numerical calculations of the linear perturbations in the outer core induced by the FICN at very low Ekman numbers (as small as 10(-11)). Our numerical results show that the back-reaction of the magnetic field notably alters the structure and length scale of the perturbations induced by the FICN, and thus influences the Ohmic dissipation resulting from the perturbations. When the Ekman number is sufficiently small, Ohmic dissipation tends to be insensitive to the fluid viscosity and to the magnetic diffusivity, which allows us to estimate the Ohmic dissipation associated with the FICN without relying on an extrapolation. In contrast to the results of Buffett (2010b), the estimated Ohmic dissipation based on our numerical calculations is too weak to account for the observed damping of the FICN mode. This also implies that nutation measurements cannot provide effective constraints on the strength of the magnetic field inside the Earth's outer core. (C) 2019 Elsevier B.V. All rights reserved.
机译:昼夜潮汐力可以激发地球芯的正常模式,自由内核核心螺母(FICN),其特征在于内芯的旋转轴相对于外芯的旋转轴线倾斜。内芯和外芯之间的差动旋转在地球内磁场的存在下引起外芯中的流体运动,并产生欧姆耗散。如果它足够强大,则可以反映这种耗散,因此可以为地球核心的性质和动态提供见解。在该研究中,我们在非常低的EKMAN编号(小于10(-11))中,执行由FICN引起的外芯中的线性扰动的一组数值计算。我们的数值结果表明,磁场的后反应显着地改变了由FICN诱导的扰动的结构和长度,因此影响扰动引起的欧姆耗散。当EKMAN编号足够小时,欧姆耗散倾向于对流体粘度和磁散性不敏感,这使我们能够估计与FICN相关的欧姆耗散而不依赖于外推。与Buffett(2010B)的结果相比,基于我们数值计算的估计欧姆耗散太弱,无法考虑观察到的FICN模式的阻尼。这也意味着询问测量不能为地球外核内部的磁场的强度提供有效的限制。 (c)2019 Elsevier B.v.保留所有权利。

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