辐射带电子降水:最近的BARREL观测和未来的任务

L. Woodger, R. Millan, J. Sample, A. Johnson, M. McCarthy, T. Sotirelis
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引用次数: 0

摘要

共振波粒相互作用与等离子体波(如等离子体的嘶嘶声,哨声模式合唱,和电磁离子回旋(EMIC)波)经常被引用为驱动地球辐射带中电子通量变异性的主要损失过程之一。我们对辐射带电子降水、此类事件的驱动机制及其对辐射带粒子通量的相对影响的认识已经从单点测量发展到多点同时测量和联合研究的曙光。作为范艾伦探测器任务的一个机会,BARREL任务部署了一系列气球携带的探测器来观察辐射带电子在大气中的损失。这次任务提供了与范艾伦探测器和极低轨道卫星一起工作的较长时间。结合研究将Van Allen探针上观察到的等离子体波与BARREL上观察到的电子沉淀联系起来,进一步限制了电子沉淀的空间尺度[1-3]。这些研究结合理论建模表明,波粒相互作用的参数空间超出了我们的测量范围。因此,为了进一步提高我们对这些现象及其对辐射带的影响的理解,我们需要扩大我们的测量范围,缩小理论中的假设和未定义参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Radiation Belt Electron Precipitation: Recent BARREL Observations and Future Missions
Resonant wave-particle interactions with plasma waves (e.g. plasmaspheric hiss, whistler mode chorus, and electromagnetic ion cyclotron (EMIC) waves) are often cited as one of the main loss processes that drive the variability of electron fluxes in the Earth's radiation belts . The evolution of our understanding of the radiation belt electron precipitation, the driving mechanism for such events, and its relative impact on radiation belt particle fluxes has moved from single point measurements to the dawn of simultaneous multi-point measurements and conjunction studies. The BARREL mission, as a mission of opportunity to the Van Allen Probes mission, deployed an array of balloon borne detectors to observe radiation belt electron losses into the atmosphere. This mission offered extended periods of time in conjunction with Van Allen Probes and polar LEO orbiting satellites. Conjunction studies have been used to correlate observed plasma waves on Van Allen Probes with electron precipitation observed on BARREL and further constrained the spatial scale of electron precipitation [1-3]. These studies, in combination with theoretical modeling, have shown that the parameter space involved in wave-particle interaction extends beyond our measurements. Therefore, in order to further advance our understanding of these phenomena and their impact on the radiation belts we need to broaden the scope of our measurements and narrow the assumptions and undefined parameters that go into the theory.
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