Refined mode classification and performance analysis method of dual-mode scramjet vehicles for flight trajectory optimization

IF 5 1区 工程技术 Q1 ENGINEERING, AEROSPACE Aerospace Science and Technology Pub Date : 2024-07-06 DOI:10.1016/j.ast.2024.109366
Jiwon Son , Hyosang Ko , Han-Lim Choi , Kwanjung Yee
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Abstract

Hypersonic air-breathing vehicles, utilizing ramjet and scramjet propulsion systems, are emerging as a promising option for future hypersonic transportation due to high specific impulse. The performance of hypersonic aircraft is significantly influenced by their flight trajectory, as combustion efficiency and aerodynamic forces vary markedly with altitude. Although numerous studies have focused on optimizing these trajectories, they have not adequately considered the potential for operational failures in the propulsion system, such as unstart and blowout. This study introduces a trajectory optimization approach for hypersonic aircraft that proactively addresses and mitigates these operational failures. This is achieved by establishing an operational classification process for a dual-mode scramjet engine and proposing a failure mode avoidance strategy using a Gaussian process classifier. Optimized ascent trajectories are achieved through the development of a two-stage robust sequential convex programming approach. The results of trajectory optimization indicate that the failure mode avoidance strategy proposed is crucial in obtaining minimal time trajectories, and that the optimal trajectories include drop motion in the initial stage flight in order to increase combustion efficiency.

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用于飞行轨迹优化的双模式喷气式飞行器的精细模式分类和性能分析方法
利用冲压喷气和扰流喷气推进系统的高超音速喷气式飞行器,由于具有高比冲,正在成为未来高超音速运输的一种有前途的选择。高超音速飞行器的性能在很大程度上受其飞行轨迹的影响,因为燃烧效率和空气动力随高度的变化而显著不同。虽然许多研究都侧重于优化这些飞行轨迹,但没有充分考虑推进系统可能出现的运行故障,如未启动和喷气。本研究为高超音速飞行器引入了一种轨迹优化方法,可主动解决并减少这些运行故障。具体方法是为双模式喷气发动机建立运行分类过程,并使用高斯过程分类器提出故障模式规避策略。通过开发两阶段稳健顺序凸编程方法,实现了上升轨迹的优化。轨迹优化结果表明,提出的故障模式规避策略对获得最短时间轨迹至关重要,而且最佳轨迹包括初始阶段飞行中的下降运动,以提高燃烧效率。
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来源期刊
Aerospace Science and Technology
Aerospace Science and Technology 工程技术-工程:宇航
CiteScore
10.30
自引率
28.60%
发文量
654
审稿时长
54 days
期刊介绍: Aerospace Science and Technology publishes articles of outstanding scientific quality. Each article is reviewed by two referees. The journal welcomes papers from a wide range of countries. This journal publishes original papers, review articles and short communications related to all fields of aerospace research, fundamental and applied, potential applications of which are clearly related to: • The design and the manufacture of aircraft, helicopters, missiles, launchers and satellites • The control of their environment • The study of various systems they are involved in, as supports or as targets. Authors are invited to submit papers on new advances in the following topics to aerospace applications: • Fluid dynamics • Energetics and propulsion • Materials and structures • Flight mechanics • Navigation, guidance and control • Acoustics • Optics • Electromagnetism and radar • Signal and image processing • Information processing • Data fusion • Decision aid • Human behaviour • Robotics and intelligent systems • Complex system engineering. Etc.
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