Trajectory optimization for solar sail in cislunar navigation constellation with minimal lightness number

被引:18
作者
Pan, Xiao [1 ]
Xu, Ming [1 ]
Santos, Ramil [1 ]
机构
[1] Beihang Univ, Sch Astronaut, Beijing 100191, Peoples R China
基金
北京市自然科学基金; 中国国家自然科学基金;
关键词
Cislunar navigation; Trajectory optimization; Hamiltonian-structure-preserving controller; Differential evolution algorithm; PERIODIC-ORBITS; LIBRATION; FEEDBACK;
D O I
10.1016/j.ast.2017.08.042
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
In view of the limitations of the existing libration-point satellite navigation systems in cislunar space, this paper replaces satellites with solar sails to construct a cislunar navigation constellation and is devoted to the trajectory optimization of solar sails to minimize the lightness number control. The Artificial Lagrangian Points (ALPS) yielded by solar sail in the Sun-Earth+Moon system benefit from the advantages of numberless equilibria and out-of-plane displacement, when compared with the classical Lagrangian points. Limited to the manufacturing of sail film in practice, the candidate constellation architecture in the shape of a cube is constructed based on the optimization of the average lightness number required at ALPs. Considering the lunar gravity, the Hamiltonian-structure-preserving (HSP) controller achieved by changing the sail's attitude and lightness number is developed to stabilize the sails' trajectories near the ALPs. Moreover, an optimal quasi-periodic trajectory with minimum lightness number control is searched for through differential evolution algorithm evolving the controller gains and initial states of orbits. There are three important contributions of the trajectory optimization for a sail in the cislunar navigation constellation: firstly, the large amounts of ALPs break the restrictions on the number and plane of the five classical Lagrangian equilibrium solutions to enlarge the selection of constellations; secondly, the station keeping tool HSP controller powerfully ensures the boundedness of the ALP's trajectory; thirdly, using the optimization algorithm to generate ALP orbits effectively avoids the time consumption of differential correction, which is more convenient and general for the natural trajectory design of ALPs. (C) 2017 Elsevier Masson SAS. All rights reserved.
引用
收藏
页码:559 / 567
页数:9
相关论文
共 29 条
[11]  
Lee Sanguk, 2003, Journal of Astronomy and Space Sciences, V20, P313
[12]   Adaptive backstepping-based flight control system using integral filters [J].
Li, Chao-Yong ;
Jing, Wu-Xing ;
Gao, Chang-Sheng .
AEROSPACE SCIENCE AND TECHNOLOGY, 2009, 13 (2-3) :105-113
[13]   Distributed finite-time consensus of nonlinear systems under switching topologies [J].
Li, Chaoyong ;
Qu, Zhihua .
AUTOMATICA, 2014, 50 (06) :1626-1631
[14]   Distributed estimation of algebraic connectivity of directed networks [J].
Li, Chaoyong ;
Qu, Zhihua .
SYSTEMS & CONTROL LETTERS, 2013, 62 (06) :517-524
[15]  
Li X., 2014, SCI REP, V5
[16]  
McInnes C.R, 1999, Solar Sailing-Technology, Dynamics and Mission Applications, DOI DOI 10.1007/978-1-4471-3992-8
[17]  
National Science Foundation of China China Academy of Sciences, 2012, SPAC SCI CHIN DISC D
[18]   Transfer to a Multi-revolution Elliptic Halo orbit in Earth Moon Elliptic Restricted Three-Body Problem using stable manifold [J].
Peng, Hao ;
Xu, Shijie .
ADVANCES IN SPACE RESEARCH, 2015, 55 (04) :1015-1027
[19]   Differential Evolution Algorithm With Strategy Adaptation for Global Numerical Optimization [J].
Qin, A. K. ;
Huang, V. L. ;
Suganthan, P. N. .
IEEE TRANSACTIONS ON EVOLUTIONARY COMPUTATION, 2009, 13 (02) :398-417
[20]   A novel algorithm for generating libration point orbits about the collinear points [J].
Ren, Yuan ;
Shan, Jinjun .
CELESTIAL MECHANICS & DYNAMICAL ASTRONOMY, 2014, 120 (01) :57-75