Auroral Bead Propagation: Explanation Based on the Conservation of Vorticity

IF 2.6 2区 地球科学 Q2 ASTRONOMY & ASTROPHYSICS
Shinichi Ohtani, Tetsuo Motoba
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Abstract

The beading of auroral arcs often takes place at substorm onset. It is known that auroral beads propagate more often eastward than westward at several km/s, which is difficult to explain by existing models. We investigate this issue observationally and theoretically. First, based on previous research and additional statistical analysis, we suggest that (a) auroral beads often propagate eastward in the presence of westward background convection, and (b) background ionospheric convection may be better represented by large-scale convection for westward propagation, and by meso-scale convection for eastward propagation. Then we model auroral beads as vortices of ionospheric flow, and consider the longitudinal propagation of their meridional displacement based on the conservation of vorticity. Here it is crucial that the background zonal flow has vorticity (i.e., flow shear) changing with latitude. It is found that the wave propagates either parallel or anti-parallel to the background flow depending on whether the background vorticity increases or decreases in latitude, and if its latitudinal scale is significantly smaller than the longitudinal wavelength, the phase velocity exceeds the background flow speed. The result suggests that the latitudinal structure of the background flow is crucial for the bead propagation. More specifically, the aforementioned feature (a) implies that the zonal flow associated with eastward propagation is confined in latitude, which may correspond to the preonset approach of mesoscale flows. In contrast, the large-scale ionospheric flow suggested for westward propagation as described in (b) may correspond to the global convection of the conventional growth phase.

Abstract Image

极光珠传播:基于涡度守恒的解释
极光弧的串珠往往发生在亚暴开始时。众所周知,极光珠以几千米/秒的速度向东传播的频率高于向西传播的频率,而现有模型很难解释这一点。我们从观测和理论上研究了这一问题。首先,根据以往的研究和额外的统计分析,我们认为:(a)极光珠通常在背景对流向西的情况下向东传播;(b)背景电离层对流在向西传播时可以用大尺度对流更好地表示,在向东传播时可以用中尺度对流更好地表示。然后,我们将极光珠建模为电离层流动的涡旋,并根据涡度守恒考虑其经向位移的纵向传播。这里的关键是背景地带流的涡度(即流切变)随纬度变化。研究发现,根据背景涡度在纬度上的增加或减少,波会平行或反平行于背景流传播,如果波的纬度尺度明显小于经度波长,相速度就会超过背景流速度。这一结果表明,背景流的纬度结构对珠子的传播至关重要。更具体地说,上述特征(a)意味着与向东传播相关的带状流被限制在纬度范围内,这可能与中尺度流的起始前方式相对应。与此相反,(b)中描述的大尺度电离层流动暗示了向西传播,这可能与常规增长阶段的全球对流相对应。
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来源期刊
Journal of Geophysical Research: Space Physics
Journal of Geophysical Research: Space Physics Earth and Planetary Sciences-Geophysics
CiteScore
5.30
自引率
35.70%
发文量
570
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