School of Physics and Astronomy, University of Minnesota, Minneapolis, Minnesota 55455, USA.
Department of Physics and Astronomy, Dartmouth College, Hanover, New Hampshire 03755, USA.
Nature. 2015 Jul 9;523(7559):193-5. doi: 10.1038/nature14515. Epub 2015 Jun 29.
Over 40 years ago it was suggested that electron loss in the region of the radiation belts that overlaps with the region of high plasma density called the plasmasphere, within four to five Earth radii, arises largely from interaction with an electromagnetic plasma wave called plasmaspheric hiss. This interaction strongly influences the evolution of the radiation belts during a geomagnetic storm, and over the course of many hours to days helps to return the radiation-belt structure to its 'quiet' pre-storm configuration. Observations have shown that the long-term electron-loss rate is consistent with this theory but the temporal and spatial dynamics of the loss process remain to be directly verified. Here we report simultaneous measurements of structured radiation-belt electron losses and the hiss phenomenon that causes the losses. Losses were observed in the form of bremsstrahlung X-rays generated by hiss-scattered electrons colliding with the Earth's atmosphere after removal from the radiation belts. Our results show that changes of up to an order of magnitude in the dynamics of electron loss arising from hiss occur on timescales as short as one to twenty minutes, in association with modulations in plasma density and magnetic field. Furthermore, these loss dynamics are coherent with hiss dynamics on spatial scales comparable to the size of the plasmasphere. This nearly global-scale coherence was not predicted and may affect the short-term evolution of the radiation belts during active times.
四十多年前有人提出,在与等离子体密度较高的区域(称为等离子体层)重叠的辐射带区域内,四到五个地球半径范围内的电子损失主要是由于与一种称为等离子体哨声的电磁等离子体波相互作用而产生的。这种相互作用强烈影响了磁暴期间辐射带的演化,在数小时到数天的时间内有助于将辐射带结构恢复到其“安静”的磁暴前构型。观测表明,长期电子损失率与该理论一致,但损失过程的时空动力学仍有待直接验证。在这里,我们报告了同时测量引起损失的结构辐射带电子损失和哨声现象。在从辐射带中移除后,与地球大气碰撞的哨声散射电子产生的韧致辐射 X 射线以辐射带电子损失的形式被观察到。我们的结果表明,由于哨声引起的电子损失动态变化高达一个数量级,其发生时间短至一到二十分钟,与等离子体密度和磁场的调制有关。此外,这些损失动态与等离子体层大小相当的空间尺度上的哨声动态相干。这种几乎全球范围的相干性是没有预测到的,可能会影响活跃时期辐射带的短期演化。