容错
电梯
控制器(灌溉)
飞行操纵面
断层(地质)
控制工程
控制理论(社会学)
计算机科学
控制(管理)
工作(物理)
控制系统
工程类
可靠性工程
空气动力学
航空航天工程
人工智能
农学
地质学
地震学
电气工程
生物
机械工程
作者
İlkay Gümüşboğa,A. İftar
出处
期刊:Journal of the Royal Aeronautical Society
[Cambridge University Press]
日期:2021-08-11
卷期号:126 (1303): 1568-1592
被引量:1
摘要
Abstract Elevator failure may have fatal consequences for fighter aircraft that are unstable due to their high manoeuvrability requirements. Many studies have been conducted in the literature using active and passive fault-tolerant control structures. However, these studies mostly include sophisticated controllers with high computational load that cannot work in real systems. Considering the multi-functionality and broad operational prospects of fighter aircraft, computational load is very important in terms of applicability. In this study, an integrated fault-tolerant control strategy with low computational load is proposed without sacrificing the ability to cope with failures. This control strategy switches between predetermined controllers in the case of failure. One of these controllers is designed to operate in a non-failure condition. This controller is a basic controller that requires very little computational effort. The other controller operates when an asymmetric elevator failure occurs. This controller is a robust fault-tolerant controller that can fly the aircraft safely in case of elevator failure. The switching is decided by a failure detection system. The proposed integrated fault-tolerant control system is verified by non-linear F-16 flight simulations. These simulations show that the proposed method can cope with failures but requires less computational load because it uses a conventional controller in the case of no failure.
科研通智能强力驱动
Strongly Powered by AbleSci AI