基于顺序凸规划的协同车辆快速轨迹重规划

IF 6.5 1区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS
Peng Zhang, Lin Cheng, Shengping Gong
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引用次数: 0

摘要

随着飞行环境和态势的快速变化,多枚导弹在执行任务时会出现各种突发情况。为了快速应对任务执行中的各种情况,本文提出了传统的顺序凸规划算法和基于并行的多导弹快速弹道重规划的顺序凸规划算法。基于序列凸规划方法,将原非凸轨迹优化问题转化为一系列凸优化子问题。传统的序贯凸规划算法是通过线性化、逐次凸化和松弛技术来迭代求解凸优化子问题的。然而,多个导弹通过各种合作约束相互关联。当将多导弹弹道优化问题表述为一个最优控制问题来求解时,随着导弹数量的增加,问题的复杂性会急剧增加。为缓解多枚气动控制导弹所带来的耦合效应,提出了基于并行的序列凸规划算法求解多枚导弹并行的弹道优化问题,降低了弹道优化问题的复杂度,显著缩短了计算时间。通过数值仿真,验证了传统顺序凸规划算法和基于并行的顺序凸规划算法在处理各种约束条件下的轨迹优化问题时的收敛性和有效性。此外,通过对比仿真实例讨论了所提算法的最优性和实时性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fast trajectory replanning for cooperative vehicles using sequential convex programming

With the rapid changes of the flight environment and situation, there will be various unexpected situations while multiple missiles are performing the missions. To fast cope with the various situations in mission executions, the conventional sequential convex programming algorithm and the parallel-based sequential convex programming algorithm for multiple missiles fast trajectory replanning are proposed in this paper. The originally non-convex trajectory optimization problem is reformulated into a series of convex optimization subproblems based on the sequential convex programming method. The conventional sequential convex programming algorithm is developed through linearization, successive convexification, and relaxation techniques to solve the convex optimization subproblems iteratively. However, multiple missiles are related through various cooperative constraints. When the trajectory optimization of multiple missiles is formulated as an optimal control problem to solve, the complexity of the problem will increase dramatically as the number of missiles increases. To alleviate the coupled effect caused by multiple aerodynamically controlled missiles, the parallel-based sequential convex programming algorithm is proposed to solve the trajectory optimization problem for multiple missiles in parallel, reducing the complexity of the trajectory optimization problem and significantly shortening the computation time. Numerical simulations are provided to verify the convergence and effectiveness of the conventional sequential convex programming algorithm and the parallel-based sequential convex programming algorithm to cope with the trajectory optimization problem with various constraints. Furthermore, the optimality and the real-time performance of the proposed algorithms are discussed in comparative simulation examples.

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来源期刊
Astrodynamics
Astrodynamics Engineering-Aerospace Engineering
CiteScore
6.90
自引率
34.40%
发文量
32
期刊介绍: Astrodynamics is a peer-reviewed international journal that is co-published by Tsinghua University Press and Springer. The high-quality peer-reviewed articles of original research, comprehensive review, mission accomplishments, and technical comments in all fields of astrodynamics will be given priorities for publication. In addition, related research in astronomy and astrophysics that takes advantages of the analytical and computational methods of astrodynamics is also welcome. Astrodynamics would like to invite all of the astrodynamics specialists to submit their research articles to this new journal. Currently, the scope of the journal includes, but is not limited to:Fundamental orbital dynamicsSpacecraft trajectory optimization and space mission designOrbit determination and prediction, autonomous orbital navigationSpacecraft attitude determination, control, and dynamicsGuidance and control of spacecraft and space robotsSpacecraft constellation design and formation flyingModelling, analysis, and optimization of innovative space systemsNovel concepts for space engineering and interdisciplinary applicationsThe effort of the Editorial Board will be ensuring the journal to publish novel researches that advance the field, and will provide authors with a productive, fair, and timely review experience. It is our sincere hope that all researchers in the field of astrodynamics will eagerly access this journal, Astrodynamics, as either authors or readers, making it an illustrious journal that will shape our future space explorations and discoveries.
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