首页> 外文会议>AAS Kyle T. Alfriend astrodynamics symposium >DESIGN OF SATELLITE FORMATIONS IN ORBITS OF HIGH ECCENTRICITY WITH PERFORMANCE CONSTRAINTS SPECIFIED OVER A REGION OF INTEREST
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DESIGN OF SATELLITE FORMATIONS IN ORBITS OF HIGH ECCENTRICITY WITH PERFORMANCE CONSTRAINTS SPECIFIED OVER A REGION OF INTEREST

机译:高偏心轨道轨道结构设计,具有在一个兴趣区域的性能约束

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TheMagnetosphericMultiscale (MMS) mission requires a formation of four satellites in a nearly regular tetrahedron throughout a Region of Interest (RoI), defined near the apogee of a highly eccentric reference orbit. In this paper, an approach for determining the differential mean orbital element initial conditions for formations in highly eccentric orbits to maximize a Quality Factor (QF) in a RoI is presented. Previous works on the design of formations in high-eccentricity orbits have used numerical integration-based approaches for orbit propagation. We present a fast optimization scheme by using the Gim-Alfriend state transition matrix. Two optimization approaches are presented for the long-term MMS formation design: a single-orbit constrained (SOC) optimization, subject to an along-track drift condition, and a multi-orbit unconstrained (MOU) optimization. A new along-track drift condition is proposed to minimize the along-track drift only in certain portions of the orbit and is shown to producemuch more stable long-term behaviour of the QF than the previous condition. A verification of our results using the NASA General Mission Analysis Tool is provided. Under ideal conditions, i.e., without errors in the establishment of the initial conditions, the best formation can satisfy the MMS mission QF requirements for over 80 days without corrective action.
机译:ThemagnetomphericMultiscale(MMS)任务需要在一个感兴趣区域(ROI)的几乎常规的四面体中形成四颗卫星,在高度偏心参考轨道的APOGEE附近定义。在本文中,用于确定所述差的平均轨道体的初始条件为在地层高度偏心轨道以最大化在ROI内的品质因数(QF)的方法,提出。以前的工作在高偏心轨道中的结构设计上使用了基于数值集成的轨道传播方法。我们使用GIM-Alfriend状态转换矩阵呈现了快速优化方案。为长期MMS形成设计提供了两种优化方法:通过沿轨道漂移条件和多轨无关(MOU)优化的单轨约束(SOC)优化。提出了一种新的沿轨道漂移条件,以最小化仅在轨道的某些部分中沿着轨道漂移,并且被示出为QF的QF的更稳定的长期行为而不是先前的条件。提供了使用NASA常规使命分析工具的结果验证。在理想条件下,即,在建立初始条件下没有错误,最好的形成可以满足MMS任务QF要求超过80天,而无需纠正措施。

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