基于模型预测控制技术的战斗机地面防撞轨迹预测

Q3 Earth and Planetary Sciences
Shiyi Yuan, Qifu Li, Bei Lu, Xingjie Niu, Yishu Liu, Wei Gao
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引用次数: 0

摘要

可控飞行撞地事故对航空安全构成重大威胁,迫切需要有效的自动地面碰撞避免系统(Auto GCAS)。然而,任务的多样性和复杂性给飞机避碰控制带来了相当大的挑战。提出了一种基于模型预测控制(MPC)技术的弹道预测方法。不同于以往的方法依赖于预定义的固定轨迹,该方法结合了飞机状态和实际地形的约束来生成最优轨迹。通过将轨迹预测算法集成到汽车GCAS系统中,验证了该方法的安全性和有效性。仿真结果表明,基于mpc的自动GCAS能够达到符合飞机性能和任务需求的最优避碰效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Trajectory prediction for fighter aircraft ground collision avoidance based on the model predictive control technique

Controlled flight into terrain accidents pose a significant threat to aviation safety, emphasizing the need for effective automatic ground collision avoidance system (Auto GCAS). However, the diversity and complexity of missions present considerable challenges to aircraft collision avoidance control. This paper proposes an approach for trajectory prediction based on the model predictive control (MPC) technique. Different from previous methods that rely on predefined fixed trajectories, the proposed approach incorporates constraints of aircraft state and actual terrain to generate an optimal trajectory. The safety and effectiveness of the method are demonstrated through integrating the trajectory prediction algorithm into the Auto GCAS system. The simulation results show that the MPC-based Auto GCAS can achieve optimal collision avoidance outcomes aligned with the aircraft's performance and mission needs.

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来源期刊
Aerospace Systems
Aerospace Systems Social Sciences-Social Sciences (miscellaneous)
CiteScore
1.80
自引率
0.00%
发文量
53
期刊介绍: Aerospace Systems provides an international, peer-reviewed forum which focuses on system-level research and development regarding aeronautics and astronautics. The journal emphasizes the unique role and increasing importance of informatics on aerospace. It fills a gap in current publishing coverage from outer space vehicles to atmospheric vehicles by highlighting interdisciplinary science, technology and engineering. Potential topics include, but are not limited to: Trans-space vehicle systems design and integration Air vehicle systems Space vehicle systems Near-space vehicle systems Aerospace robotics and unmanned system Communication, navigation and surveillance Aerodynamics and aircraft design Dynamics and control Aerospace propulsion Avionics system Opto-electronic system Air traffic management Earth observation Deep space exploration Bionic micro-aircraft/spacecraft Intelligent sensing and Information fusion
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