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Orbit Determination Accuracy Analysis of the Magnetospheric Multiscale Mission During Perigee Raise

机译:近地天上升过程中磁层多尺度任务的轨道确定精度分析

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The Goddard Space Flight Center (GSFC) Flight Dynamics Facility (FDF) will provide orbit determination and prediction support for the Magnetospheric Multiscale (MMS) mission during the mission's commissioning period. The spacecraft will launch into a highly elliptical Earth orbit in 2015. Starting approximately four days after launch, a series of five large perigee-raising maneuvers will be executed near apogee on a nearly every-other-orbit cadence. This perigee-raise operations concept requires a high-accuracy estimate of the orbital state within one orbit following the maneuver for performance evaluation and a high-accuracy orbit prediction to correctly plan and execute the next maneuver in the sequence. During early mission design, a linear covariance analysis method was used to study orbit determination and prediction accuracy for this perigee-raising campaign. This paper provides a higher fidelity Monte Carlo analysis using the operational COTS extended Kalman filter implementation that was performed to validate the linear covariance analysis estimates and to better characterize orbit determination performance for actively maneuvering spacecraft in a highly elliptical orbit. The study finds that the COTS extended Kalman filter tool converges on accurate definitive orbit solutions quickly, but prediction accuracy through orbits with very low altitude perigees is degraded by the unpredictability of atmospheric density variation.
机译:戈达德太空飞行中心(GSFC)飞行动力学设施(FDF)将在任务调试期间为磁层多尺度(MMS)任务提供轨道确定和预测支持。该航天器将于2015年发射到高度椭圆形的地球轨道。发射后约四天开始,将在近地点的近地点处以近乎每条轨道的节奏执行一系列五次大型近地点提升演习。这种近地点飞行的操作概念要求对机动进行跟踪后,对一个轨道内的轨道状态进行高精度的估计,以进行性能评估;对高精度的轨道进行预测,以正确地计划和执行序列中的下一个机动。在早期任务设计过程中,线性协方差分析方法用于研究此近战提升战役的轨道确定和预测精度。本文使用可操作的COTS扩展卡尔曼滤波器实施方案提供了更高保真度的蒙特卡洛分析,该方案的执行是为了验证线性协方差分析估计并更好地表征高椭圆轨道上主动机动航天器的轨道确定性能。研究发现,COTS扩展卡尔曼滤波工具可以快速收敛于精确的定轨道解,但是由于大气密度变化的不可预测性,通过具有极低海拔边缘的轨道进行的预测精度会降低。

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