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行星发电机波的磁场反转。

Magnetic reversals from planetary dynamo waves.

机构信息

Institute of Geophysics, ETH Zurich, 8092 Zurich, Switzerland.

Division of Geomagnetism, DTU Space, Technical University of Denmark, 2800 Kongens Lyngby, Denmark.

出版信息

Nature. 2016 Nov 24;539(7630):551-554. doi: 10.1038/nature19842. Epub 2016 Nov 7.


DOI:10.1038/nature19842
PMID:27820946
Abstract

A striking feature of many natural dynamos is their ability to undergo polarity reversals. The best documented example is Earth's magnetic field, which has reversed hundreds of times during its history. The origin of geomagnetic polarity reversals lies in a magnetohydrodynamic process that takes place in Earth's core, but the precise mechanism is debated. The majority of numerical geodynamo simulations that exhibit reversals operate in a regime in which the viscosity of the fluid remains important, and in which the dynamo mechanism primarily involves stretching and twisting of field lines by columnar convection. Here we present an example of another class of reversing-geodynamo model, which operates in a regime of comparatively low viscosity and high magnetic diffusivity. This class does not fit into the paradigm of reversal regimes that are dictated by the value of the local Rossby number (the ratio of advection to Coriolis force). Instead, stretching of the magnetic field by a strong shear in the east-west flow near the imaginary cylinder just touching the inner core and parallel to the axis of rotation is crucial to the reversal mechanism in our models, which involves a process akin to kinematic dynamo waves. Because our results are relevant in a regime of low viscosity and high magnetic diffusivity, and with geophysically appropriate boundary conditions, this form of dynamo wave may also be involved in geomagnetic reversals.

摘要

许多自然发电机的一个显著特点是它们能够经历磁极反转。最有文献记载的例子是地球磁场,它在历史上已经反转了数百次。地磁极性反转的起源在于发生在地球核心的磁流体动力学过程,但精确的机制仍存在争议。大多数表现出反转的数值地发电机模拟在一个粘性仍然很重要的区域中运行,其中发电机机制主要涉及柱状对流转捩线的拉伸和扭曲。在这里,我们提出了另一种反转地发电机模型的例子,该模型在相对低粘度和高磁扩散率的区域中运行。这类模型不符合由当地罗斯贝数(平流与科里奥利力之比)决定的反转区域范例。相反,在靠近刚好触及内核的想象圆柱的东西向流中的强剪切对磁场的拉伸对于我们模型中的反转机制至关重要,该机制涉及类似于运动发电机波的过程。由于我们的结果在低粘度和高磁扩散率的区域以及具有地球物理适当边界条件的情况下是相关的,因此这种形式的发电机波也可能参与地磁反转。

相似文献

[1]
Magnetic reversals from planetary dynamo waves.

Nature. 2016-11-7

[2]
Approaching a realistic force balance in geodynamo simulations.

Proc Natl Acad Sci U S A. 2016-10-25

[3]
Dependence of the duration of geomagnetic polarity reversals on site latitude.

Nature. 2004-4-8

[4]
Simulations of a quasi-Taylor state geomagnetic field including polarity reversals on the Earth Simulator.

Science. 2005-7-15

[5]
On the genesis of the Earth's magnetism.

Rep Prog Phys. 2013-9-4

[6]
A deep dynamo generating Mercury's magnetic field.

Nature. 2006-12-21

[7]
Power requirement of the geodynamo from ohmic losses in numerical and laboratory dynamos.

Nature. 2004-5-13

[8]
Convection-driven kinematic dynamos at low Rossby and magnetic Prandtl numbers: Single mode solutions.

Phys Rev E. 2016-2-24

[9]
Strong-field dynamo action in rapidly rotating convection with no inertia.

Phys Rev E. 2016-6-3

[10]
A model for the geomagnetic field reversal rate and constraints on the heat flux variations at the core-mantle boundary.

Sci Rep. 2020-8-3

引用本文的文献

[1]
Invariance of dynamo action in an early-Earth model.

Nature. 2025-8

[2]
Scale separated low viscosity dynamos and dissipation within the Earth's core.

Sci Rep. 2018-8-22

[3]
The cross-over to magnetostrophic convection in planetary dynamo systems.

Proc Math Phys Eng Sci. 2017-3

本文引用的文献

[1]
On the genesis of the Earth's magnetism.

Rep Prog Phys. 2013-9-4

[2]
Mechanisms for magnetic field reversals.

Philos Trans A Math Phys Eng Sci. 2010-4-13

[3]
Simple mechanism for reversals of earth's magnetic field.

Phys Rev Lett. 2009-4-10

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