基于飞行器滑行阶段预定性能控制的多重跃迁轨迹设计与跟踪方法

IF 1.1 4区 工程技术 Q3 ENGINEERING, AEROSPACE
Taotao Zhang, Jun Zhang, Sen Shen, Weiyi Chen
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引用次数: 0

摘要

本文提出了一种用于高超音速滑翔飞行器(HGV)多主动跃迁机动模式的新型标准轨迹设计和跟踪制导。首先,在飞行路径坐标系中建立动态方程和多约束模型。其次,通过牛顿迭代算法,以单一设计参数快速确定多主动跃迁机动模式的参考阻力加速度-归一化能量(D-e)曲线。通过阻力加速度剖面更新算法修正航程误差,通过气动参数估计算法修正滑翔终端的阻力加速度误差。然后,根据规定的性能控制方法设计参考阻力加速度跟踪制导法则。最后,使用 CAV-L 车辆模型进行数值仿真。结果表明,所提出的方法能满足多种主动跃升机动模式下阻力加速度的设计要求,并能精确跟踪参考阻力加速度。在各种组合偏差条件下的蒙特卡罗仿真验证了所提方法的适应性和鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiple Leap Maneuver Trajectory Design and Tracking Method Based on Prescribed Performance Control during the Gliding Phase of Vehicles
A novel standard trajectory design and tracking guidance used in the multiple active leap maneuver mode for hypersonic glide vehicles (HGVs) is proposed in this paper. First, the dynamic equation and multiconstraint model are first established in the flight path coordinate system. Second, the reference drag acceleration-normalized energy (D-e) profile of the multiple active leap maneuver mode is quickly determined by the Newton iterative algorithm with a single design parameter. The range to go error is corrected by the drag acceleration profile update algorithm, and the drag acceleration error of the gliding terminal is corrected by the aerodynamic parameter estimation algorithm. Then, the reference drag acceleration tracking guidance law is designed based on the prescribed performance control method. Finally, the CAV-L vehicle model is used for numerical simulation. The results show that the proposed method can satisfy the design requirements of drag acceleration under multiple active leap maneuver modes, and the reference drag acceleration can be tracked precisely. The adaptability and robustness of the proposed method are verified by the Monte Carlo simulations under various combined deviation conditions.
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来源期刊
CiteScore
2.70
自引率
7.10%
发文量
195
审稿时长
22 weeks
期刊介绍: International Journal of Aerospace Engineering aims to serve the international aerospace engineering community through dissemination of scientific knowledge on practical engineering and design methodologies pertaining to aircraft and space vehicles. Original unpublished manuscripts are solicited on all areas of aerospace engineering including but not limited to: -Mechanics of materials and structures- Aerodynamics and fluid mechanics- Dynamics and control- Aeroacoustics- Aeroelasticity- Propulsion and combustion- Avionics and systems- Flight simulation and mechanics- Unmanned air vehicles (UAVs). Review articles on any of the above topics are also welcome.
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