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An adaptive GNSS-based reduced dynamic approach for real time autonomous navigation from the Earth to the Moon

机译:基于基于GNSS的自适应GNSS的实时自主导航从地球到月球

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In this research study we describe our last effort in further improving the achievable Global Navigation Satellite System (GNSS) based navigation performance in an Earth-Moon Transfer Orbit (MTO). The GNSS-based orbital filter we implemented previously with a dynamic approach, is modified by adopting a reduced-dynamics approach, which, with a certain accuracy, compensates for the dynamic model errors using a process noise model that weights observational and dynamical errors. Empirical accelerations are estimated as part of the state vector in a Kalman filter, adopting a deterministic forces model. Unlike the implementations reported in the existing literature, typically for orbit determination in Low Earth Orbit (LEO), here, in order to correctly weight observational and dynamical errors in the full trajectory from the Earth to the Moon, characterized by very variable signals and geometry conditions, an adaptive tuning of the filter is adopted. The observational and dynamical errors are predicted as function of different parameters, i.e., the estimated carrier-to-noise-ratio of the signals at the receiver position, the tracking loops setting, the kinematic state of the receiver and the combination of orbital forces modelled at different altitudes. The implemented orbital filter together with the developed receiver are designed in order to provide real-time autonomous on-board navigation on the way from the Earth to the Moon. Following a description of the simulation models and assumptions and of the existing orbit determination approaches, the paper focusses on the implementation of the proposed adaptive reduced-dynamic orbital filter and finally presents its performance in a MTO.
机译:在这项研究中,我们描述了我们在进一步改善基于地球转移轨道(MTO)中的基于可实现的全球导航卫星系统(GNSS)的导航性能方面的最后一次努力。我们以前用动态方法实现的基于GNSS的轨道过滤器通过采用减少动态方法来修改,该方法具有一定精度,使用权重观察和动态误差的过程噪声模型来补偿动态模型误差。估计经验加速度作为卡尔曼滤波器中的状态向量的一部分,采用确定性力模型。与现有文献中报告的实施不同,通常用于在低地球轨道(LEO)中的轨道确定,以便在从地球到月球的完整轨迹中正确地重量观察和动态误差,以非常可变的信号和几何形状为特征条件,采用过滤器的自适应调谐。观察和动态误差被预测为不同参数的功能,即接收器位置处的信号的估计载波 - 噪声比,跟踪回路设置,接收器的运动状态以及模型的轨道力的组合在不同的海拔地区。设计的轨道滤波器与开发的接收器一起设计,以便在从地球到月球的方式提供实时自主车载导航。在描述模拟模型和假设以及现有的轨道确定方法的描述之后,该纸张侧重于所提出的自适应减少动态轨道滤波器的实现,最终呈现其在MTO中的性能。

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