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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >On the contribution of plasma sheet bubbles to the storm time ring current
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On the contribution of plasma sheet bubbles to the storm time ring current

机译:在等离子体片泡沫的贡献风暴时间环电流

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Particle injections occur frequently inside 10 Re during geomagnetic storms. They are commonly associated with bursty bulk flows or plasma sheet bubbles transported from the tail to the inner magnetosphere. Although observations and theoretical arguments have suggested that they may have an important role in storm time dynamics, this assertion has not been addressed quantitatively. In this paper, we investigate which process is dominant for the storm time ring current buildup: large-scale enhanced convection or localized bubble injections. We use the Rice Convection Model-Equilibrium (RCM-E) to model a series of idealized storm main phases. The boundary conditions at 14–15 Re on the nightside are adjusted to randomly inject bubbles to a degree roughly consistent with observed statistical properties. A test particle tracing technique is then used to identify the source of the ring current plasma. We find that the contribution of plasma sheet bubbles to the ring current energy increases from ~20% for weak storms to ~50% for moderate storms and levels off at ~61% for intense storms, while the contribution of trapped particles decreases from ~60% for weak storms to ~30% for moderate and ~21% for intense storms. The contribution of nonbubble plasma sheet flux tubes remains ~20% on average regardless of the storm intensity. Consistent with previous RCM and RCM-E simulations, our results show that the mechanisms for plasma sheet bubbles enhancing the ring current energy are (1) the deep penetration of bubbles and (2) the bulk plasma pushed ahead of bubbles. Both the bubbles and the plasma pushed ahead typically contain larger distribution functions than those in the inner magnetosphere at quiet times. An integrated effect of those individual bubble injections is the gradual enhancement of the storm time ring current. We also make two predictions testable against observations. First, fluctuations over a time scale of 5–20 min in the plasma distributions and electric field can be seen in the central ring current region for the storm main phase. We find that the plasma pressure and the electric field EY there vary over about 10%–30% and 50%–300% of the background values, respectively. Second, the maximum plasma pressure and magnetic field depression in the central ring current region during the main phase are well correlated with the Dst index.
机译:粒子注入内经常发生10再保险在地磁风暴。与丛发性散装流或等离子板泡沫从尾巴运送至内磁气圈。表明,他们的理论争论可能有一个重要的角色在风暴的时间吗动态,这种说法并没有得到解决定量。过程是主导风暴次戒指吗当前累积:大规模增强对流或局部注射泡沫。对流Model-Equilibrium (RCM-E)模型一系列理想化的风暴的主要阶段。边界条件在14日至15日在阴面调整随机注入泡沫吗度观察基本一致统计特性。技术用于识别的来源环电流等离子体。贡献的等离子体环板泡沫当前能源增加~ 20%弱风暴~ 50%温和的暴风雨和水平~ 61%的强烈风暴,虽然的贡献被困颗粒减少~ 60%为温和、弱风暴~ 30%~ 21%为强烈的风暴。那些没有泡沫的等离子体片通量管仍~ 20%平均无论风暴强度。与先前的RCM和RCM-E一致模拟,我们的结果表明,该机制对等离子体片泡沫增强环当前能源的深层渗透(1)泡沫和(2)大部分血浆前推泡沫。前通常包含较大的分布功能比内部的磁场在安静的时候。个人泡沫注射是渐进的增强环电流风暴的时间。也有两个预测可测试的观察。等离子体分布和规模,5 - 20分钟电场中可以看到中央环当前地区风暴的主要阶段。等离子体压力和电场按照不同大约10%的-300%,-30%和50%背景值,分别。最大的等离子体压力和磁场抑郁症在中央环电流区在主要阶段相关Dst指数。

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