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X-Ray Pulsar-Based Navigation Considering Spacecraft Orbital Motion and Systematic Biases

机译:考虑航天器轨道运动和系统偏差的基于X射线脉冲星的导航

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摘要

The accuracy of X-ray pulsar-based navigation is greatly affected by the Doppler effect caused by the spacecraft orbital motion and the systematic biases introduced by the pulsar directional error, spacecraft-borne clock error, etc. In this paper, an innovative navigation method simultaneously employing the pulse phase (PP), the difference of two neighbor PPs (DPP) and the Doppler frequency (DF) of X-ray pulsars as measurements is proposed to solve this problem. With the aid of the spacecraft orbital dynamics, a single pair of PP and DF relative to the spacecraft’s state estimation error can be estimated by using the joint probability density function of the arrival photon timestamps as the likelihood function. The systematic biases involved to the PP is proved to be nearly invariant over two adjacent navigation periods and the major part of it is eliminated in the DPP; therefore, the DPP is also exploited as additional navigation measurement to weaken the impact of systematic biases on navigation accuracy. Results of photon-level simulations show that the navigation accuracy of the proposed method is remarkably better than that of the method only using PP, the method using both PP and DF and the method using both PP and DPP for Earth orbit.
机译:基于X射线脉冲星的导航精度受航天器轨道运动引起的多普勒效应以及脉冲星方向误差,航天器时钟误差等引起的系统性偏差的影响。本文提出了一种创新的导航方法同时提出了利用脉冲相位(PP),X射线脉冲星的两个相邻PP(DPP)之差和多普勒频率(DF)作为解决方案。借助航天器的轨道动力学,可以通过使用到达光子时间戳的联合概率密度函数作为似然函数来评估相对于航天器状态估计误差的一对PP和DF。事实证明,与PP有关的系统偏差在两个相邻的导航期间几乎是不变的,并且在DPP中消除了大部分偏差。因此,DPP还被用作附加的导航测量,以减弱系统偏差对导航精度的影响。光子级仿真结果表明,该方法对地球轨道的导航精度明显优于仅使用PP的方法,同时使用PP和DF的方法以及同时使用PP和DPP的方法。

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