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A structured H-infinity-based optimization approach for integrated plant and self-scheduled flight control system design

机译:基于结构H-无穷大的优化方法,用于集成工厂和自定进度的飞行控制系统设计

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摘要

This paper presents a new procedure for the integrated plant and flight control system design in the presence of parametric uncertainties. The proposed approach is based on a design procedure consisting in casting gain-scheduling and robustness requirements into the framework of structured H-infinity design. As both controller architecture and gain-scheduling structure are defined a priori, the scheduled gains can be tuned by the newly available MATLAB-based tool systune to minimize H-infinity constraints related to performance requirements over both operating and uncertain domains. It is shown that this technique allows for optimization and adjustment of plant's physical parameters while satisfying closed-loop performance requirements. The proposed procedure is applied to the F-16 Fighting Falcon flight control system design under mass and center of gravity uncertainties by adjusting the location of an additional accelerometer to optimize the closed-loop performance while minimizing the horizontal tail area. Numerical studies are carried out to evaluate the effectiveness of the proposed approach. (C) 2015 Elsevier Masson SAS. All rights reserved.
机译:本文提出了在存在参数不确定性的情况下集成工厂和飞行控制系统设计的新程序。所提出的方法基于一种设计程序,该程序包括将增益调度和鲁棒性要求转化为结构化H无限设计框架。由于控制器架构和增益调度结构都是事先定义的,因此可以通过新近使用的基于MATLAB的工具systune来调节调度增益,以最大程度地减少与工作域和不确定域上的性能要求有关的H无限约束。结果表明,该技术可在满足闭环性能要求的同时优化和调整工厂的物理参数。通过调整附加加速度计的位置,以优化闭环性能,同时最小化水平尾翼面积,将拟议的程序应用于质量和重心不确定的F-16战F飞行控制系统设计。进行了数值研究,以评估该方法的有效性。 (C)2015 Elsevier Masson SAS。版权所有。

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