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Relative drift between black aurora and the ionospheric plasma.

机译:黑极光与电离层等离子体之间的相对漂移。

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摘要

Black auroras are recognized as spatially well-defined regions within uniform diffuse aurora where the optical emission is significantly reduced. Although a well studied phenomenon, there is no generally accepted theory for black auroras. One theory suggests that black regions are formed when energetic magnetospheric electrons no longer have access to the loss cone. If this blocking mechanism drifts with the source electron population in the magnetosphere, black auroras in the ionosphere should drift eastward with a velocity that increases with the energy of the precipitating electrons in the surrounding aurora, since the gradient-B curvature drift is energy dependent. It is the purpose of this paper to test this hypothesis. To do so we have used simultaneous measurements by the European Incoherent Scatter (EISCAT) radar and an auroral TV camera at Tromsø, Norway. We have analyzed 8 periods in which a black aurora occurred frequently to determine their relative drift with respect to the ionospheric plasma. The black aurora was found to drift eastward with a velocity of 1.5–4km/s, which is in accordance with earlier observations. However, one case was found where a black patch was moving westward, this being the first report of such behaviour in the literature. In general, the drift was parallel to the ionospheric flow but at a much higher velocity. This suggests that the generating mechanism is not of ionospheric origin. The characteristic energy of the precipitating electron population was estimated through inversion of E-region plasma density profiles. We show that the drift speed of the black patches increased with the energy of the precipitating electrons in a way consistent with the gradient-B curvature drift, suggesting a magnetospheric mechanism for the black aurora. As expected, a comparison of the drift speeds with a rudimentary dipole field model of the gradient-B curvature drift speed only yields order-of-magnitude agreement, which most likely is due to the nightside disturbed magnetosphere being significantly stretched.
机译:黑色极光被认为是均匀扩散极光内的空间明确定义的区域,其中光发射显着降低。尽管现象已得到充分研究,但尚无公认的黑色极光理论。一种理论认为,当高能磁层电子不再能够进入损耗锥时,就会形成黑色区域。如果这种阻止机制随磁层中的源电子迁移而漂移,则电离层中的黑色极光应向东漂移,其速度随周围极光中沉淀电子的能量而增加,因为梯度B曲率漂移取决于能量。本文的目的是检验该假设。为此,我们使用了欧洲不相干散射(EISCAT)雷达和挪威特罗姆瑟(Tromsø)的极光电视摄像机进行的同步测量。我们分析了八个黑色极光频繁发生的时段,以确定它们相对于电离层等离子体的相对漂移。发现黑色极光以1.5–4km / s的速度向东漂移,这与早期的观测结果一致。但是,发现了一个黑色斑点向西移动的案例,这是文献中有关这种行为的首次报道。通常,漂移与电离层流平行,但速度要高得多。这表明产生机理不是电离层起源。通过反演E区等离子体密度分布来估算沉淀电子种群的特征能。我们表明,黑色斑块的漂移速度随着沉淀电子的能量的增加而增加,与梯度B曲率漂移一致,表明了黑色极光的磁层机制。不出所料,将漂移速度与梯度B曲率漂移速度的基本偶极子场模型进行比较只能得出数量级的一致性,这很可能是由于夜间扰动的磁层被大大拉伸了。

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