Real-time trajectory optimization for hypersonic vehicles with Proximal-Newton-Kantorovich convex programming

被引:0
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作者
Wang J. [1 ]
Zhang R. [1 ]
Hao Z. [1 ]
Li H. [1 ]
机构
[1] School of Astronautics, Beihang University, Beijing
关键词
Ascent phase; Atmospheric flight; Convex programming; Hypersonic vehicles; Trajectory optimization;
D O I
10.7527/S1000-6893.2020.24051
中图分类号
学科分类号
摘要
This paper proposes a trajectory optimization approach for the real-time atmospheric ascent trajectory optimization problem based on Proximal-Newton-Kantorovich convex programming. The Newton-Kantorovich iteration approach casts the trajectory optimization problem into subproblems with each being a linear optimal control problem. However, the Newton-Kantorovich iteration approach ignores higher order terms in motion equations, making it hard to converge. This paper proposes a Proximal-Newton-Kantorovich iteration approach. A Proximal term is introduced in the performance index of the subproblems to improve the convergence. The subproblems are then casted into second-order cone programming problems and solved by the interior-point methods. The proposed Proximal-Newton-Kantorovich iteration approach is an efficient approach to solve nonlinear trajectory optimization problems. It is proved that the convergence results of the Proximal-Newton-Kantorovich iteration approach always satisfy the necessary conditions of the original trajectory optimization problem. Numerical results show that this approach can be executed in milliseconds. © 2020, Beihang University Aerospace Knowledge Press. All right reserved.
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