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North-South Asymmetries in Earth's Magnetic Field : Effects on High-Latitude Geospace

机译:地球磁场中的南北不对称:对高纬度地球空间的影响

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摘要

The solar-wind magnetosphere interaction primarily occurs at altitudes where the dipole component of Earth’s magnetic field is dominating. The disturbances that are created in this interaction propagate along magnetic field lines and interact with the ionosphere–thermosphere system. At ionospheric altitudes, the Earth’s field deviates significantly from a dipole. North–South asymmetries in the magnetic field imply that the magnetosphere–ionosphere–thermosphere (M–I–T) coupling is different in the two hemispheres. In this paper we review the primary differences in the magnetic field at polar latitudes, and the consequences that these have for the M–I–T coupling. We focus on two interhemispheric differences which are thought to have the strongest effects: 1) A difference in the offset between magnetic and geographic poles in the Northern and Southern Hemispheres, and 2) differences in the magnetic field strength at magnetically conjugate regions. These asymmetries lead to differences in plasma convection, neutral winds, total electron content, ion outflow, ionospheric currents and auroral precipitation.
机译:太阳风磁层相互作用主要发生在地球磁场的偶极子分量占主导地位的高度。在这种相互作用中产生的干扰沿着磁场线传播,并与电离层-热层系统相互作用。在电离层高度,地球场偏离偶极子。磁场中的南北不对称意味着两个半球的磁层-电离层-热层(M–T)耦合不同。在本文中,我们回顾了极纬度磁场的主要差异,以及这些差异对M–I–T耦合的影响。我们着眼于两个影响最强的半球间差异:1)北半球和南半球的磁极和地理极之间的偏移差异,以及2)磁共轭区域的磁场强度差异。这些不对称导致等离子体对流,中性风,总电子含量,离子流出,电离层电流和极光降水的差异。

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