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首页> 外文期刊>Journal of atmospheric and solar-terrestrial physics >Solving the auroral-arc-generator question by using an electron beam to unambiguously connect critical magnetospheric measurements to auroral images
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Solving the auroral-arc-generator question by using an electron beam to unambiguously connect critical magnetospheric measurements to auroral images

机译:通过使用电子束来毫不含糊地连接到极光图像的临界磁体测量来解决极光 - 电弧发电机问题

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An active mapping mission is described that unambiguously connects measurements in the Earth's magnetosphere to visible aurora in the atmosphere. The core of the mission is an electron-beam source operated on a spacecraft in the equatorial magnetosphere, with the electron beam traveling along the Earth's magnetic-field lines to the atmosphere, depositing its energy to create an optical beam-spot in the atmosphere at the footpoint of the spacecraft's magnetic-field line. This optical spot can be imaged by ground-based cameras, putting the location of the spacecraft's magnetic footpoint into the context of the optical aurora. Scientific instruments carried on the spacecraft make critical measurements of the properties of the magnetosphere at the locations where the magnetosphere powers the aurora, allowing the determination of the plasma-physics mechanisms by which the magnetosphere drives the aurora, in particular answering the outstanding question of how the magnetosphere drives low-latitude auroral arcs. Long-standing questions in magnetosphere-ionosphere coupling that have not been answered because we could not unambiguously connect locations in the magnetosphere with their image in the ionosphere will finally be addressed. In this paper the properties of a "standard" growth-phase auroral arc are collected, theories of the magnetospheric generation of auroral arcs are reviewed, and critical magnetospheric measurements to discern the mechanisms that drive auroral arcs are determined. Further, the plasma physics of the experiment is investigated, including spacecraft-charging mitigation, beam stability, beam scattering, and electron orbit theory. Tradeoffs (keV versus MeV) concerning the energy of the electron beam are enumerated.
机译:描述了一个主动映射任务,其中明确地将地球磁层中的测量结果与大气中可见的极光连接。该任务的核心是在赤道磁层的航天器上运行的电子束源,其中电子束沿着地球的磁场线传播到大气中,沉积其能量,在大气中产生光束点宇宙飞船磁场线的距离。该光学点可以通过基于地面的相机成像,将航天器的磁力磁力点的位置放入光学极光的上下文中。在航天器上携带的科学仪器对磁极磁性的位置进行了磁极的性质的临界测量,允许确定磁极圈驱动极光的等离子体物理机制,特别是回答如何解决方法的出色问题磁极圈驱动低纬度极光弧。磁性影像电离层耦合中的长期问题尚未得到解答,因为我们无法在磁性影数中毫不含糊地连接到电离层中的图像,最终将解决。在本文中,收集了“标准”生长相弧形弧的性质,综述了极光弧的磁体产生的理论,以及判断驱动极光弧的机构的临界磁体测量。此外,研究了实验的等离子体物理学,包括航天器充电缓解,光束稳定性,光束散射和电子轨道理论。列举有关电子束能量的权衡(Kev与MeV)。

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