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Geomagnetic Energy Approach to Space Debris Deorbiting in a Low Earth Orbit

机译:地磁在低地球轨道上对空间碎片进行离轨的方法

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摘要

The space debris removal problem needs to be solved urgently. Over 70% of debris is distributed between the 500km and 1000km low Earth orbits (LEO), and existing methods may be theoretically feasible but are not the high-efficiency and low-consumption methods for LEO debris removal. Based on the torque effect of a static magnet interacting with the geomagnetic field, a new spin angular momentum exchange (SAME) method by geomagnetic excitation (without working medium consumption) for LEO active debris deorbiting is proposed. The LEO delivery capability of this method is researched. Two kinds of spin angular momentum accumulation (SAMA) strategies are proposed. Then through numerical simulation under the dipole model and International Geomagnetic Reference Field (IGRF11) model, the results confirm the physical feasibility and basic performance of the proposed method. The method can be applied to the regions of the LEO below 1000km with different altitudes/inclinations and eccentricities, and with existent magnetorquer technology, only several days of preparation is required for about 10(4)mboldkg mechanism/bold-scale-debris-mass deorbiting, which can be used for deorbiting missions in debris-intensive areas (altitude1000km); without consideration of external effects on the geomagnetic field distribution, it has the same deorbiting capability with that of the LEO below 1000km when the altitude is over 1000km. Besides, the method is characterized by explicit mechanism, flexible control strategy and application, and low dependence on the scale. Finally, the key technology requirements and future application of LEO active debris removal and on-orbit delivery by using SAME are prospected.
机译:空间碎片清除问题亟待解决。超过70%的碎片分布在500 km和1000 km的低地球轨道(LEO)之间,现有方法在理论上可能是可行的,但不是消除LEO的高效低消耗方法。基于静磁场与地磁场相互作用的转矩效应,提出了一种新的利用地磁激发(不消耗工作介质)自旋角动量交换(SAME)方法进行LEO主动碎屑解轨道的方法。研究了该方法的LEO传递能力。提出了两种自旋角动量累积(SAMA)策略。然后通过偶极子模型和国际地磁参考场(IGRF11)模型下的数值模拟,结果证实了该方法的物理可行性和基本性能。该方法可适用于海拔高度,倾角和偏心率在1000km以下的LEO区域,并采用现有的磁矩技术,仅需几天的准备就可完成约10(4)m kg机制 -规模碎片质量轨道化,可用于碎片密集地区(海拔1000公里)的任务轨道化;在不考虑外部因素对地磁场分布的影响下,当海拔超过1000 km时,它具有与低于1000 km的LEO相同的去轨能力。此外,该方法具有机制明确,控制策略和应用灵活,对规模的依赖性小等特点。最后,展望了使用SAME进行LEO主动碎片清除和在轨交付的关键技术要求和未来应用。

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  • 来源
    《International journal of aerospace engineering》 |2019年第1期|5876861.1-5876861.18|共18页
  • 作者单位

    Chinese Acad Sci, Inst Mech, Beijing 100190, Peoples R China|Univ Chinese Acad Sci, Sch Engn Sci, Beijing 100049, Peoples R China;

    Chinese Acad Sci, Inst Mech, Beijing 100190, Peoples R China|Univ Chinese Acad Sci, Sch Engn Sci, Beijing 100049, Peoples R China;

    Chinese Acad Sci, Inst Mech, Beijing 100190, Peoples R China|Univ Chinese Acad Sci, Sch Engn Sci, Beijing 100049, Peoples R China;

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