首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >An all-composite, all-electric, morphing trailing edge device for flight control on a blended-wing-body airliner
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An all-composite, all-electric, morphing trailing edge device for flight control on a blended-wing-body airliner

机译:全复合,全电动,变形后缘装置,用于混合机翼客机的飞行控制

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摘要

For a significant improvement in the fuel efficiency of long-range transport aircraft, a transition to blended-wing-body (BWB) configurations will be required in the long term. Further efficiency improvements are expected from an all-composite primary structure, all-electric actuation, as well as from seamless control surfaces that provide reduced drag compared to conventional control surfaces. BWB configurations feature specific demands on the control system because of the high coupling between flap deflections and aircraft movements in all three axes. Thus, multi-objective control surfaces are required for flight control, as well as for active gust and manoeuvre load alleviation. A major challenge therefore is to provide sufficient yaw control and stability in the absence of a vertical tail. Generally, one engine inoperative poses an important sizing case for the control system design, especially for the control surfaces.rnIn this article, the sizing of winglet flaps and crocodile flaps is performed for the preliminary design of an all-composite, all-electric BWB airliner. For further improvement in efficiency, a seamless morphing trailing edge device is designed that provides both crocodile flap and aileron modes at the same time. Based on these results, a composite morphing trailing edge demonstrator with an all-electric actuation system is investigated. Some open issues remain for investigation. Still, the proposed design provides a promising approach for further efficiency improvement on BWB aircraft configurations.
机译:为了大大改善远程运输机的燃油效率,从长远来看,将需要过渡到混合翼体(BWB)配置。与传统控制表面相比,全复合主结构,全电驱动以及无缝控制表面可望进一步提高效率。由于襟翼偏转和飞机在所有三个轴上的运动之间的高度耦合,BWB配置对控制系统有特殊要求。因此,飞行控制以及主动阵风和机动载荷减轻需要多目标控制面。因此,主要的挑战是在没有垂直尾翼的情况下提供足够的偏航控制和稳定性。通常,一台发动机不工作会对控制系统的设计,尤其是对控制表面的设计造成重要的考量。在本文中,小翼襟翼和鳄鱼皮襟翼的确定是为全复合全电动BWB的初步设计而进行的。客机。为了进一步提高效率,设计了无缝变形后缘设备,该设备可同时提供鳄鱼襟翼和副翼模式。基于这些结果,研究了具有全电驱动系统的复合变形后沿演示器。一些悬而未决的问题尚待调查。尽管如此,提出的设计仍为进一步提高BWB飞机配置的效率提供了一种有前途的方法。

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