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Aerodynamics and flight stability of a prototype flapping micro air vehicle

机译:原型扑翼微型飞行器的空气动力学和飞行稳定性

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Inspired by novel mechanisms in insect and bird flights, in particular, the clap-and-fling mechanism associated with the aerodynamic force enhancement owing to the wing-wing interaction, we developed a prototype flapping micro air vehicle (fMAV), which is weighted 2.4 – 3.0 g, equipped with a X-type wing and a wingspan of 12 –15 cm. In this study, we carried out an integrated study of flexible wing aerodynamics and passive dynamic flight stability of the MAV by a combination of flexible wing kinematics and force measurements and computational approaches. We designed a high-speed camera filming system to measure the flexible wing kinematics and deformations and constructed the computational wing kinematic model. Together with the force measurements we investigated the wing stiffness effects on the force generation associated with the flexible wing deformation. We further used a biology-inspired, dynamic flight simulator to evaluate the aerodynamic performance of the flexible wing MAV. This simulator, by integrating the modeling of realistic wing-body morphology and realistic flapping-wing and body kinematics, provided an evaluation of the MAV's unsteady aerodynamics in terms of vortex and wake structures and their relationship with aerodynamic force generation. Our results show that the clap-and-fling mechanism is indeed realized by the prototype four-winged MAV and the flexible wing deformation even further enhance its effects. Furthermore, we employed a computational approach to analyze the passive dynamic flight stability of the MAV's forward flight. Results based on a linear theory indicated that the MAV is very likely of dynamical stability even with no active feedback control system.
机译:受昆虫和鸟类飞行中新颖机制的启发,特别是由于机翼-机翼相互作用而与气动力增强相关的拍手和甩子机制的启发,我们开发了重量为2.4的原型拍打微型飞行器(fMAV) – 3.0 g,配备X型机翼和12 – 15 cm的翼展。在这项研究中,我们通过结合灵活的机翼运动学和力测量以及计算方法,对MAV的灵活机翼空气动力学和被动动态飞行稳定性进行了综合研究。我们设计了一个高速相机拍摄系统来测量机翼的运动学和变形,并构建了计算机翼的运动学模型。连同力的测量,我们研究了机翼刚度对与柔性机翼变形相关的力产生的影响。我们还使用了以生物学为灵感的动态飞行模拟器来评估柔性机翼MAV的空气动力学性能。该仿真器通过整合现实的机翼-机体形态模型和现实的襟翼-机体运动学模型,从涡流和尾流结构及其与气动力产生的关系方面评估了MAV的非定常空气动力学。我们的研究结果表明,拍击和击飞机制的确是通过原型四翼MAV实现的,而柔性翼变形甚至进一步增强了其效果。此外,我们采用了一种计算方法来分析MAV向前飞行的被动动态飞行稳定性。基于线性理论的结果表明,即使没有主动反馈控制系统,MAV也很可能具有动态稳定性。

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