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哈尔滨工程大学 自动化学院,黑龙江 哈尔滨,150001
收稿日期:2015-08-18,
修回日期:2015-11-12,
纸质出版日期:2016-01-25
移动端阅览
赵琳, 李玉玲, 刘源等. 连续小推力拦截卫星攻击轨道的优化[J]. 光学精密工程, 2016,24(1): 178-186
ZHAO Lin, LI Yu-ling, LIU Yuan etc. Optimization of attacking orbit for interception satellite with low continuous thrust[J]. Editorial Office of Optics and Precision Engineering, 2016,24(1): 178-186
赵琳, 李玉玲, 刘源等. 连续小推力拦截卫星攻击轨道的优化[J]. 光学精密工程, 2016,24(1): 178-186 DOI: 10.3788/OPE.20162401.0178.
ZHAO Lin, LI Yu-ling, LIU Yuan etc. Optimization of attacking orbit for interception satellite with low continuous thrust[J]. Editorial Office of Optics and Precision Engineering, 2016,24(1): 178-186 DOI: 10.3788/OPE.20162401.0178.
针对空间攻防中目标卫星周围由若干小卫星以编队形式绕飞的情况
研究了拦截卫星的轨道规划问题。以配备电推进的连续推力拦截卫星为对象
提出了基于遗传算法的拦截卫星攻击轨道寻优方法。以编队小卫星的动态防御模型作为环境模型
根据进攻轨道安全性和节省燃料的要求建立综合适应度函数
并对算法的编码方式、选择算子、交叉算子和变异算子进行了设计。基于MATLAB平台进行了仿真试验
结果表明
拦截卫星于650 s时击中目标卫星
总开机时间为410 s。提出的算法能够寻找到最优攻击路径
并且算法收敛性速度快
稳定性高。与同类的研究方法相比
该算法能够有效减少火箭开机时间
进而减轻了卫星在轨道机动过程中姿态调整的任务负荷。
The attacking orbits of interception satellites were explored when target satellites flied with several small satellites in concomitant formation in anti-satellite combination. By taking an interception satellite with a low continuous thrust to transfer orbit for a researching object
an attacking orbit optimization method based on genetic algorithm was proposed. A dynamic defending model of the small formation satellite was taken as environment model
and comprehensive fitness function was constructed according to the requirements of orbit safety and fuel saving. Then
the coding method
selection operator
crossover operator and the mutation operator were designed for proposed algorithm. A simulation experiment was performed on the MATLAB platform. The simulation results show that the interception satellite hits the target satellite at 650 s
spending 410 s. The algorithm proposed searches an optimal attacking path and has a good convergence and stability. As compared with the same kind of optimization method
this algorithm effectively reduces the boot time of rockets
and reduces the task loads of orbit maneuver attitude control of the interception satellite.
邓泓, 仲惟超, 孙兆伟,等. 基于遗传算法的卫星攻击路径规划方法研究[J]. 宇航学报, 2008, 30(4): 1587-1592. DENG H, ZHONG W CH, SUN ZH W, et al.. Method research of satellite attacking path planning based on genetic algorithm[J]. Joumal of Astronautics, 2008, 30(4): 1587-1592.(in Chinese)
EBRAHIMI B, BAHRAMI M, ROSHANIAN W. Optimal sliding-mode guidance with terminal velocity constraint for fixed-interval propulsive maneuvers[J]. Acta Astronautica, 2008, 60(10-11): 556-562.
RASIT K. A neuro-simulated annealing approach to the inverse kinematics solution of redundant robotic manipulators[J].Engineering with Computers, 2013,29(4):507-515.
KESHAVARZ S, KHOEI A R, MOLAEINIA Z. Genetic algorithm-based numerical optimization of powder compaction process with temperature-dependent cap plasticity model[J]. International Journal of Advanced Manufacturing Technology, 2013, 64(5-8):1057-1072.
孟宪权, 赵英男, 薛青. 遗传算法在路径规划中的应用[J]. 计算机工程, 2008, 34(16): 215-220. MENG X Q, ZHAO Y N, XUE Q. Application of genetic algorithm in path planning [J].Computer Engineering, 2008, 34(16): 215-220. (in Chinese)
LU T, ZHU J. A genetic algorithm for finding a path subject to two constraints [J]. Applied Soft Computing,2013,13(2):891-898.
崔建军. 基于遗传算法的移动机器人路径规划研究[D]. 西安:西安科技大学,2010. CUI J J.The research of mobile robot path planning based on genetic algorithm [D]. Xi'an:Xi'an University of Science and Technology,2010. (in Chinese)
ZHENG Q, SHA J X, SHU H, et al.. A variant constrained genetic algorithm for solving conditional nonlinear optimal perturbations [J]. Advances in Atmospheric Sciences, 2014, 31(1): 219-229.
田百义. 小推力借力转移轨道设计与优化方法研究[D]. 哈尔滨:哈尔滨工业大学,2012. TIAN B Y. Design and optimization of low-thrust gravity-assist trajectories [D].Harbin:Harbin Institute of Technology,2012. (in Chinese)
LEUNG C S, LAM P M, TSANG P W M. A graphics processing unit accelerated genetic algorithm for affine invariant matching of broken contours [J].Journal of Signal Processing Systems for Signal Image and Video Techndogy,2012,66(2):105-111.
曹喜滨, 贺东雷. 基于Hill方程的编队初始化误差分析[J]. 飞行力学, 2008, 26(6): 84-88. CAO X B, HE D L.Error analysis of Hill equation-based formation initialization [J]. Flight Dynamics, 2008, 26(6): 84-88.(in Chinese)
刘源, 沈毅, 邢雷,等. 快速响应卫星电子系统等寿命设计方法[J]. 航空学报, 2014, 35(6): 1673-1683. LIU Y, SHEN Y, XIING L, et al.. Equal life design method of operationally responsive on-board electronic systems [J]. Acta Aeronautica et Astronautica Sinica, 2014, 35(6): 1673-1683. (in Chinese)
LOZANO P T, WESLEY M A. An algorithm for planning collision-free paths among polyhedral obstacles [J]. Communications of the ACM, 1979, 22(10): 560-570.
MICHAEL F M, GURPARTAP S S. Rendezvous and docking for space exploration [C].AIAA 1st Space Exploration Conference, 2005, Orlando, Florida, 2005-2716.
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