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地月平动点拟周期轨道探测器自主导航方法研究 被引量:2

Autonomous Orbit Determination for Quasi-Periodic Orbit about the Translunar Libration Point
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摘要 地月L2点的拟周期轨道可以用于实现与月球背面的持续通信,具有重要的科学研究价值和广阔的应用前景。针对地月L2点探测器所处的弱稳定拟周期轨道,论证了基于日地月信息的自主导航方法的可行性,并进行了深入分析。首先,推导了会合坐标系下带有星历的精确导航动力学方程;其次,针对弱稳定轨道不同于近地强稳定轨道的特性,在基于日地月方位信息导航的基础上,提出了三种敏感器组合方案。使用迭代最小二乘方法给出导航仿真结果,并结合非线性可辨识性理论对这三种情况下历元状态的可辨识性及可辨识度进行分析。最后,仿真结果表明,使用日地月敏感器以及对地多普勒雷达可以满足历元状态的可辨识性、导航的收敛性以及系统经济性的要求。 The quasi-periodic orbit about the translunar libration point can be used to establish a continuous communication link between the Earth and the far side of the Moon.In this paper,Sun-Earth-Moon autonomous navigation is implemented and investigated in the translunar libration point problem.Firstly,a new navigation dynamic model is proposed.Furthermore,due to the unstable nature of the translunar libration orbit,three sensor configuration cases for Sun-Earth-Moon autonomous navigation are studied.Simulation results of autonomous navigation are obtained by the iterative Least Squares Filtering.The nonlinear identifiability analysis is used to evaluate the identifiability and find an appropriate and robust sensor configuration for translunar libration probe.Finally,Simulations show that the sensor configuration of using directional data from the spacecraft to the Sun,the Earth and the Moon and one Doppler measurement can satisfy both the economical index and reliability.
出处 《宇航学报》 EI CAS CSCD 北大核心 2013年第5期625-633,共9页 Journal of Astronautics
基金 国家自然科学基金(61021002)
关键词 平动点问题 自主导航 拟周期轨道 可辨识性 迭代最小二乘 Liberation point Autonomous navigation Quasi-periodic orbit Identifiability Iterative least squares
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  • 1Farquhar R, Muhonen D, Church L C. Trajectories and orbital maneuvers for the ISEE-3/ICE comet mission [ C 1- AIAA/AAS Astrodynamics Conference, Seattle, WA, August 20 - 22, 1984.
  • 2Domingo V, Fleck B, Poland A 1. SOHO: The solar and heliospheric observatory [ J ]. Space Science Reviews, 1995,72 (1) :81 -84.
  • 3Stone E C, Frandsen A M, Mewaldt R A, et al. The advanced composition explorer[ J]. Space Science Reviews, 1998,86 ( 1 ) : 1 - 22.
  • 4NASA. gov. Wilkinson microwave anisotropy probe [ EB/OL ]. 2012. http://map, gsfc. nasa. gov/.
  • 5NASA. gov. Wind, understanding interplanetary dynamics [ EB/ OL]. 2005. http ://pwg. gsfe. nasa. gov/wind, shtml.
  • 6Burnett D S, Barraelough B L, Bennett R, et al. The genesis discovery mission: return of solar matter to earth [ J ]. Space Science Reviews, 2003,105 (3) : 509 - 534.
  • 7Folta D, Sweetser T. ARTEMIS mission overview: from concept to operations [ C ]. AIAA/AAS Astrodynamics Specialist Conference, Girdwood, Alaska, July 31 -August 4, 2011.
  • 8ESA. int Herschel and Planck [ EB/OL]. 2009. http://www. esa. int/esaMI/herschelplanck/index, html.
  • 9Dunham D W, Farquhar R W. Libration point missions 1978 - 2000[ C]. Libration Point Orbits and Applications, Parador d' Aiguablava, Girona, Spain, June 10-14, 2002.
  • 10Beckman M. Orbit determination issues for libration point orbits [ C ]. Libration Point Orbits and Applications, Parador d' Aiguablaa, Girona, Spain, June 10 -14, 2002.

二级参考文献29

  • 1潘科炎.航天器的自主导航技术[J].航天控制,1994,12(2):18-27. 被引量:10
  • 2章仁为.卫星轨道姿态动力学[M].北京:北京航空航天大学出版社,1999.
  • 3Hosken R W, and Wertz J R. Microcosm Autonomous Navigation System On-Orbit Operation. AAS95-074,pp491-506.
  • 4Wang Xin, Liu Lin. On the orbit dynamics of lunar satellite[J].Chin Astro Astrophys,2002,26(4):489.
  • 5Liu Lin, Wang Jiasong. An analytical solution of the orbital variation of lunar satellites[J]. Chin. Astron. Astrophys, 1999,39( 1 ) : 109 -1192002.51(1 -9):501.
  • 6张燕.基于日地月信息的月球探测器自主导航技术研究[D].航天学院哈尔滨工业大学,哈尔滨,2007.
  • 7Guinn J, Williams B, Wolff P, et al. TAOS orbit determination results using global positioning satellites [ J ]. Advances in the Astronautical Sciences, 1995, 89:185 - 185.
  • 8Hosken R, Wertz J. Microcosm autonomous navigation system on-orbit operation [ J ]. Advances in the Astronautical Sciences, 1995, 88:491 -491.
  • 9Li J. Simple Correction algorithm of scanning horizon sensor measurement for earth oblateness [ J ]. Journal of Guidance, Control, and Dynamics, 1999, 22 ( 1 ) : 187 - 190.
  • 10Tekawy J, Wang P, Gray C. Scanning horizon sensor attitude correction for earth oblateness[ J]. Journal of Guidance, Control, and Dynamics, 1996, 19(3):707-708.

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