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Design of robust flight control systems for advanced technology vehicles

机译:先进技术车辆的强大飞行控制系统设计

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Innovative approaches for analysis, design and modeling of advanced flight vehicles are demanded in response to requirements toward substantial performance improvements. Although control theory is thoroughly developed, the calculus of variations and Pontryagin's principle are not well suited because these methods exhibit rather poor robustness and are hampered by the limited time available for computations. This paper explores the robust control technology for uncertain nonlinear systems and presents innovative design procedures to enhance the robustness for open-loop unstable systems with constraints. Utilizing the Hamilton-Jacobi theory, the developed procedures allow one to find a straightforward avenue to design the robust controllers. A new control methodology is less conservative than the known results and allows us to solve the nonlinear control problem for uncertain systems. The explored time-optimal and antiwindup techniques are studied for a highly-manoeuvrable missile. The longitudinal and rolling flight control, as well as the guidance problem, are treated and solved. To evaluate the robustness, analytical and simulation results are performed.
机译:响应于对显着性能改进的要求,需要用于先进飞行器的分析,设计和建模的创新方法。尽管控制理论已经得到了充分的发展,但是变化的演算和蓬特里亚金的原理并不能很好地适用,因为这些方法的鲁棒性很差,并且由于有限的计算时间而受到阻碍。本文探讨了不确定非线性系统的鲁棒控制技术,并提出了创新的设计程序来增强具有约束条件的开环不稳定系统的鲁棒性。利用汉密尔顿-雅各比理论,开发的程序使人们能够找到一种直接的途径来设计鲁棒的控制器。一种新的控制方法没有已知结果那么保守,它使我们能够解决不确定系统的非线性控制问题。对于高机动性的导弹,研究了探索的时间最优和反缠绕技术。纵向和滚动飞行控制以及制导问题都得到了解决。为了评估鲁棒性,执行了分析和仿真结果。

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