Di Luca M, Mintchev S, Heitz G, Noca F, Floreano D
School of Engineering , Brown University , Providence, RI , USA.
Laboratory of Intelligent Systems , École Polytechnique Fédérale de Lausanne , Lausanne , Switzerland.
Interface Focus. 2017 Feb 6;7(1):20160092. doi: 10.1098/rsfs.2016.0092.
Small-winged drones can face highly varied aerodynamic requirements, such as high manoeuvrability for flight among obstacles and high wind resistance for constant ground speed against strong headwinds that cannot all be optimally addressed by a single aerodynamic profile. Several bird species solve this problem by changing the shape of their wings to adapt to the different aerodynamic requirements. Here, we describe a novel morphing wing design composed of artificial feathers that can rapidly modify its geometry to fulfil different aerodynamic requirements. We show that a fully deployed configuration enhances manoeuvrability while a folded configuration offers low drag at high speeds and is beneficial in strong headwinds. We also show that asymmetric folding of the wings can be used for roll control of the drone. The aerodynamic performance of the morphing wing is characterized in simulations, in wind tunnel measurements and validated in outdoor flights with a small drone.
小型无人机可能面临高度多样化的空气动力学要求,例如在障碍物间飞行时需要高机动性,以及在逆强风保持恒定地速时需要高抗风性,而单一的空气动力学外形无法最佳地满足所有这些要求。几种鸟类通过改变翅膀形状来适应不同的空气动力学要求,从而解决了这个问题。在此,我们描述了一种由人造羽毛组成的新型变形机翼设计,它可以快速改变其几何形状以满足不同的空气动力学要求。我们表明,完全展开的构型可增强机动性,而折叠构型在高速时具有低阻力,并且在强逆风情况下有益。我们还表明,机翼的不对称折叠可用于无人机的滚转控制。变形机翼的空气动力学性能在模拟、风洞测量中进行了表征,并在小型无人机的户外飞行中得到了验证。