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Sustained Oxygen Spectral Gaps and Their Dynamic Evolution in the Inner Magnetosphere

机译:持续氧光谱差异及其动态进化的内在的磁气圈

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Van Allen Probes observations of ion spectra often show a sustained gap within a very narrow energy range throughout the full orbit. To understand their formation mechanism, we statistically investigate the characteristics of the narrow gaps for oxygen ions and find that they are most frequently observed near the noon sector with a peak occurrence rate of over 30%. The magnetic moment (μ) of the oxygen ions in the gap shows a strong dependence on magnetic local time (MLT), with higher and lower μ values in the morning and afternoon sectors, respectively. Moreover, we find through superposed epoch analysis that the gap formation also depends on geomagnetic conditions. Those gaps formed at lower magnetic moments (μ < 3,000 keV/G) are associated with stable convection electric fields, which enable magnetospheric ions to follow a steady drift pattern that facilitates the gap formation by corotational drift resonance. On the other hand, gaps with higher μ values are statistically preceded by a gradual increase of geomagnetic activity. We suggest that ions within the gap were originally located inside the Alfven layer following closed drift paths, before they were transitioned into open drift paths as the convection electric field was enhanced. The sunward drift of these ions, with very low fluxes, forms a drainage void in the dayside magnetosphere manifested as the sustained gap in the oxygen spectrum. This scenario is supported by particle-tracing simulations, which reproduce most of the observed characteristics and therefore provide new insights into inner magnetospheric dynamics.
机译:范艾伦辐射探测器的观测离子光谱显示持续的差距在一个非常狭窄的能量整个完整的轨道范围。他们的形成机制,我们统计调查狭窄的特点间隙氧离子和发现他们最经常观察到中午部门与附近峰值出现率超过30%。时刻(μ)显示了一个氧离子的差距强烈依赖于磁(MLT),当地时间较高和较低的在早上和μ值下午部门,分别。发现通过叠加期分析差距的形成也取决于地磁条件。时刻(μ< 3000 keV / G)相关联稳定的对流电场,使磁性层的离子稳定漂移模式,促进形成的差距corotational漂移共振。差距与更高的μ值统计之前地磁的逐渐增加活动。最初位于阿尔芬层封闭的漂移路径后,在他们面前转变成开放的漂移路径对流电场增强。这些离子的朝着太阳漂移,非常低通量,形成一个排水的光面无效磁层表现为持续的差距氧谱。粒子跟踪模拟,繁殖大部分的观察和特征因此为内部提供新的见解磁性层的动态。

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