Rapid and Near-Analytical Planning Method for Entry Trajectory under Time and Full-State Constraints

Wenjie Xia, Peichen Wang, Xunliang Yan, Bei Hong, Xinguo Li
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Abstract

A rapid trajectory-planning method based on an analytical predictor–corrector design of drag acceleration profile and a bank-reversal logic based on double-stage adaptive adjustment is proposed to solve the entry issue under time and full-state constraints. First, an analytical predictor–corrector algorithm is used to design the profile parameters to satisfy the terminal of altitude, velocity, range, time, and flight-path angle constraints. Subsequently, an adaptive lateral planning algorithm based on heading adjustment and maintenance is proposed to achieve the flight stage adaptive division and determination of the bank-reversal point, thereby satisfying the terminal position and heading angle constraints. Concurrently, a rapid quantification method is proposed for the adjustable capacity boundary of the terminal heading angle. On this basis, a range-and-time correction strategy is designed to achieve high precision and the rapid generation of a three-degree-of-freedom entry trajectory under large-scale lateral maneuvering. The simulation results demonstrated that compared with the existing methods, the proposed method can adaptively divide flight stages, ensuring better multitask applicability and higher computational efficiency.
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时间和全状态约束下的进入轨迹快速近似分析规划方法
提出了一种基于阻力加速度剖面分析预测-校正器设计和基于双级自适应调整的银行逆转逻辑的快速轨迹规划方法,以解决时间和全状态约束下的进入问题。首先,采用分析预测-修正算法设计剖面参数,以满足高度、速度、航程、时间和飞行路径角等终端约束。随后,提出了一种基于航向调整和保持的自适应横向规划算法,实现飞行阶段自适应划分并确定反库点,从而满足终端位置和航向角约束。同时,提出了终端航向角可调容量边界的快速量化方法。在此基础上,设计了一种范围-时间修正策略,以实现在大规模横向机动下高精度和快速生成三自由度进入轨迹。仿真结果表明,与现有方法相比,所提出的方法可以自适应地划分飞行阶段,确保了更好的多任务适用性和更高的计算效率。
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