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A flight control system design for highly unstable unmanned combat aerial vehicles

机译:高度不稳定的无人机的飞行控制系统设计

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This study proposes a flight control system for tailless unmanned combat aerial vehicles (UCAVs) and applies it to a representative example: the UCAV1303, an unstable blended wing body (BWB) aircraft. The UCAV1303 has no tail wing and a large sweepback angle, as a result of which it shows highly nonlinear aerodynamic characteristics such as wing rock and the pitch break phenomenon. In particular, in the latter, the pitching moment of an aircraft increases with the angle of attack, causing it to pitch up rapidly and then stall. In this study, an L1 adaptive controller is designed for the UCAV1303 to accommodate and be robust to the pitch break phenomenon, which is used to model uncertain aerodynamics. Furthermore, a moving wing fence is proposed for realizing good stability and performance at a high angle of attack. It delays flow separation and aerodynamic stalling, thereby improving the effectiveness of the wing and other control surfaces at a high angle of attack. Under normal or level flight conditions, during which the angle of attack is low, it may negatively affect the aircraft performance because it increases the radar cross section and parasitic drag. A series of flight tests were performed to validate the proposed controller and moving wing fence. The former is robust to model uncertain aerodynamics, and the latter prevented the pitch break phenomenon at a high angle of attack and afforded an adequate margin between the initial and the pitch break regions.
机译:这项研究提出了一种用于无尾无人战斗机(UCAV)的飞行控制系统,并将其应用于一个具有代表性的示例:UCAV1303,一种不稳定的混合翼体(BWB)飞机。 UCAV1303没有尾翼且后掠角大,因此它具有高度非线性的空气动力学特性,例如机翼岩石和俯仰折断现象。特别地,在后者中,飞机的俯仰力矩随着迎角而增加,使其迅速俯仰然后失速。在这项研究中,为UCAV1303设计了一个L1自适应控制器,以适应变桨现象并对其具有较强的鲁棒性,该变桨现象用于对不确定的空气动力学进行建模。此外,提出了一种用于在高迎角下实现良好的稳定性和性能的活动翼栅栏。它延迟了气流分离和空气动力学失速,从而提高了机翼和其他控制面在大迎角下的效率。在正常或水平飞行条件下,其迎角较低,这可能会对飞机性能产生负面影响,因为它会增加雷达的横截面和寄生阻力。进行了一系列飞行测试,以验证建议的控制器和动翼护栏。前者对建模不确定的空气动力学模型非常有力,而后者可以防止在高攻角下出现俯仰中断现象,并在初始和俯仰中断区域之间提供足够的余量。

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