导弹与制导技术

一种基于解析规划的多约束再入制导算法

  • 李强 ,
  • 夏群利 ,
  • 郭涛 ,
  • 温求道
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  • 1 北京理工大学宇航学院,北京 100081
    2 北京航天自动控制研究所,北京 100854

李强(1986-),男,黑龙江人,博士研究生,研究方向:飞行器总体与制导控制。

收稿日期: 2012-06-02

  网络出版日期: 2025-05-24

基金资助

博士后科学基金(2011M500008)

Reentry Guidance Research with Multi-constrain Based on Analytic Planning Method

  • LI Qiang ,
  • XIA Qunli ,
  • GUO Tao ,
  • WEN Qiuqiu
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  • 1 School of Aerospace Engineering, Beijing Institute of Technology, Beijing 100081, China
    2 Beijing Aerospace Automatic Control Institute, Beijing 100854, China

Received date: 2012-06-02

  Online published: 2025-05-24

摘要

提出了一种基于H-V剖面的亚轨道飞行器再入制导方法。将再入轨迹分为初始下降段和过渡段分别进行规划,初始下降段采用常值倾侧角飞行,过渡段则采用四次解析多项式进行描述,满足再入走廊约束和能量管理(TAEM)初始条件的同时提高再入轨迹在线规划速度;通过反馈线性化方法设计自适应控制律跟踪标准剖面,同时根据航向误差走廊确定滚转方向,从而完成纵向和侧向的联合设计。仿真结果表明,该制导方法对初始状态偏差和参数不确定性具有较强的鲁棒性。

本文引用格式

李强 , 夏群利 , 郭涛 , 温求道 . 一种基于解析规划的多约束再入制导算法[J]. 弹箭与制导学报, 2013 , 33(1) : 1 -4,9 . DOI: 10.15892/j.cnki.djzdxb.2013.01.013

Abstract

A new reentry guidance algorithm based on H-V profile for reusable launch vehicles was presented. The reentry trajectory was divided into two phases to plan independently, initial descent phase and transition phase. In initial descent phase, a constant bank angle is used to control flight. In transition phase, a fourth order analytic polynomial is used to describe the H-V profile, which can both satisfy the constraints of reentry corridor and terminal area energy management interface, and improve the planning-efficiency. The technique of feedback linearization is used to obtain an adaptive control law to track longitudinal profile; meanwhile heading error corridor is used to determine lateral motion, which can complete the longitudinal and lateral integrative-design. Simulation results show that the guidance algorithm has strong robustness against initial state errors and uncertain conditions.

参考文献

[1]
李焱, 才满瑞, 佟艳春. 临近空间飞行器的种类及军事应用[J]. 中国航天, 2007(10): 39- 44.
[2]
Edward B. Near space as a combat space effects enabler R. USAF, catalyst for air & space power research dialogue, 2004.
[3]
赵颖. 2003年世界运载器发展综述[J]. 导弹与航天运载技术, 2004(2): 16- 24.
[4]
胡建学, 陈克俊, 赵汉元,等. RLV再入标准轨道制导与轨道预测制导方法比较分析[J]. 国防科技大学学报, 2007, 29(1): 26- 29.
[5]
Horneman K R, Schierman J D. Rapid terminal-trajectory planner for an unpowered launch vehicle[C] // AIAA, Guidance, Navigation and Control Conference, 2009: 1- 13.
[6]
李惠峰, 谢陵. 基于预测校正方法的RLV再入制导率设计[J]. 北京航空航天大学学报, 2009, 35(11): 1344- 1348.
[7]
Shen Z, Lu P. On-board generation of three-dimensional constrained entry trajectories J. Journal of Guidance, Control and Dynamics, 2003, 26 (1): 110– 121.
[8]
Nguyen X Vinh, Adolf Busemann, Robert D Culp. Hypersonic and planetary entry flight mechanics[M]. University of Michigan: Press, 1980.
[9]
Lu P. Predictor-corrector entry guidance for low lifting vehicles, AIAA, 2007-6425 [R]. 2007.
[10]
Xue S, Lu P. Constrained predictor-corrector entry guid-ance J. Journal of Guidance, Control, and Dynamics, 2010, 33(4): 1273– 1281.
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