变形
空气动力学
航空航天工程
外倾角(空气动力学)
翼
飞机飞行力学
风力发电
升力系数
飞行动力学
Lift(数据挖掘)
攻角
飞行操纵面
翼型
飞机
工程类
计算机科学
物理
机械
湍流
电气工程
雷诺数
计算机视觉
数据挖掘
作者
Urban Fasel,Paolo Tiso,Dominic Keidel,Giulio Molinari,Paolo Ermanni
出处
期刊:AIAA Journal
[American Institute of Aeronautics and Astronautics]
日期:2019-06-12
卷期号:57 (8): 3586-3598
被引量:21
摘要
Airborne wind energy (AWE) is a power production technique aiming to harvest energy from high-altitude winds through tethered aircraft. In the ground-based power generation concept, the aircraft flies dynamic trajectories at high flight speeds and lift coefficients, thus creating large lift forces. These forces drive a ground-based generator via a tether, thereby producing energy. The tethered aircraft operates over a wide range of wind speeds, with distinct operating modes. Current rigid-wing AWE aircraft adapt to these conditions by using discrete control surfaces. Morphing wings, in contrast, can adjust to the different flight conditions and operating modes by continuously altering their shape, and thus can increase the power production of AWE systems. This paper presents the modeling of a camber-morphing AWE system, focusing in particular on the coupled aeroelastics and flight dynamics of the aircraft and on the reduced-order structural and aerodynamic model of the morphing wing. The resulting framework allows analysis of the entire AWE system consisting of the aircraft, tether, and ground station. Owing to its high computational efficiency, the model enables comparison of different trajectories and flight control strategies, and it permits identification of optimal aerodynamic- and structural-design parameters of morphing AWE wings.
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