Three-Dimensional Trajectory Optimization of Soft Lunar Landings from the Parking Orbit with Considerations of the Landing Site

被引:13
|
作者
Park, Bong-Gyun [1 ]
Tahk, Min-Jea [1 ]
机构
[1] Korea Adv Inst Sci & Technol, Dept Aerosp Engn, Taejon 305701, South Korea
关键词
Legendre pseudospectral method; optimal control; pseudospectral knotting method; sequential quadratic programming; soft lunar landing;
D O I
10.1007/s12555-011-0618-0
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Minimum fuel, three-dimensional trajectory optimization from a parking orbit considering the desired landing site is addressed for soft lunar landings. The landing site is determined by the final longitude and latitude; therefore, a two-dimensional approach is limited and a three-dimensional approach is required. In addition, the landing site is not usually considered when performing lunar landing trajectory optimizations, but should be considered in order to design more accurate and realistic lunar landing trajectories. A Legendre pseudospectral (PS) method is used to discretize the trajectory optimization problem as a nonlinear programming (NLP) problem. Because the lunar landing consists of three phases including a de-orbit burn, a transfer orbit phase, and a powered descent phase, the lunar landing problem is regarded as a multiphase problem. Thus, a PS knotting method is also used to manage the multiphase problem, and C code for Feasible Sequential Quadratic Programming (CFSQP) using a sequential quadratic programming (SQP) algorithm is employed as a numerical solver after formulating the problem as an NLP problem. The optimal solutions obtained satisfy all constraints as well as the desired landing site, and the solutions are verified through a feasibility check.
引用
收藏
页码:1164 / 1172
页数:9
相关论文
共 50 条
  • [1] Three-dimensional trajectory optimization of soft lunar landings from the parking orbit with considerations of the landing site
    Bong-Gyun Park
    Min-Jea Tahk
    International Journal of Control, Automation and Systems, 2011, 9 : 1164 - 1172
  • [2] Three-Dimensional Trajectory Optimization for soft lunar landing considering landing constraints
    Qiao, Yandi
    Zhang, Zexu
    Chen, Feng
    Wang, Xingyan
    Wang, Jing
    2020 IEEE 16TH INTERNATIONAL CONFERENCE ON CONTROL & AUTOMATION (ICCA), 2020, : 1199 - 1204
  • [3] Optimal trajectory design and analysis for soft landing on the moon from lunar parking orbits
    Choudhary, Santosh Kumar
    Raj, Kaushik
    Muthukumar, Venkatesan
    INTERNATIONAL JOURNAL OF SPACE SCIENCE AND ENGINEERING, 2019, 5 (04) : 321 - 338
  • [4] Trajectory optimization for lunar soft landing with complex constraints
    Chu, Huiping
    Ma, Lin
    Wang, Kexin
    Shao, Zhijiang
    Song, Zhengyu
    ADVANCES IN SPACE RESEARCH, 2017, 60 (09) : 2060 - 2076
  • [5] Optimization of lunar soft landing trajectory based on hybrid method
    Peng, Kun
    Guo, Linli
    Xiang, Kaiheng
    Wang, Ping
    Xu, Shijie
    Peng, K. (bhkpeng@126.com), 1600, Beijing University of Aeronautics and Astronautics (BUAA) (40): : 910 - 915
  • [6] RAPID TRAJECTORY OPTIMIZATION FOR LUNAR SOFT LANDING WITH HAZARD AVOIDANCE
    Wang, Cong
    Song, Zhengyu
    THIRD IAA CONFERENCE ON DYNAMICS AND CONTROL OF SPACE SYSTEMS 2017, 2017, 161 : 885 - 900
  • [7] Trajectory Optimization of Lunar Soft Landing Using Differential Evolution
    Amrutha, V. P.
    Sreeja, S.
    Sabarinath, A.
    2021 IEEE AEROSPACE CONFERENCE (AEROCONF 2021), 2021,
  • [8] Optimization of lunar soft landing trajectory based on ant colony algorithm
    Duan, Jia-Jia
    Xu, Shi-Jie
    Zhu, Jian-Feng
    Yuhang Xuebao/Journal of Astronautics, 2008, 29 (02): : 476 - 481
  • [9] Legendre pseudospectral method for rapid lunar soft-landing trajectory optimization
    College of Astronautics, Northwestern Polytechnical University, Xi'an 710072, China
    Yuhang Xuebao, 2007, 5 (1119-1122):
  • [10] Analysis of optimal strategies for soft landing on the Moon from lunar parking orbits
    Ramanan, RV
    Lal, M
    JOURNAL OF EARTH SYSTEM SCIENCE, 2005, 114 (06) : 807 - 813