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集群卫星在地缘空间环境中的定位
Benjamin Grison1, Fabien Darrouzet2, Romain Maggiolo2
1Institute of Atmospheric Physics of the Czech Academy of Sciences (IAP), Department of Space Physics, 14100, Prague, Czech Republic. grison@ufa.cas.cz.
Scientific data
|February 22, 2025
概括
一个新的数据集标记了集群航天器在地球地层空间中的位置,帮助数据分析. 这个地理空间区域和磁层边界识别 (GRMB) 数据集绘制了航天器位置的地图,以更好地理解太空物理.
科学领域:
- 空间物理 空间物理
- 地质物理学 地质物理学
- 磁层物理 磁层物理
背景情况:
- 地质空间,地球的磁化环境,是动态和空间复杂的.
- 航天器定位需要了解不均的地球空间环境.
- 准确的位置数据对于分析航天器观测至关重要.
研究的目的:
- 介绍地理空间区域和磁层边界识别 (GRMB) 数据集.
- 在整个任务期间为集群航天器提供连续的标记位置.
- 通过将其置于当地地缘空间环境中来加强对集群任务数据的分析.
主要方法:
- 根据44个集群数据产品手动选择航天器位置.
- 为地缘空间区域开发15个不同的标签,从等离子体到太阳风.
- 通过使用参考列表和物理属性,在七年内验证数据集的一致性.
主要成果:
- GRMB数据集提供了整个任务中集群航天器的标记位置.
- 该数据集包括15个不同的地缘空间区域,包括等离子球,叶片,等离子板,磁层和太阳风.
- 集群航天器在其任务时间中大约花费了15%的时间在叶片,等离子体板,等离子体板过渡区域,磁层和太阳风中.
结论:
- GRMB数据集为地球空间研究提供了有价值的,经过验证的资源.
- 持续的环境标签显著支持对航天器数据的解释.
- 该数据集有助于更深入地了解地缘空间区域的空间和时间动态.
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