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Translational and Rotational Damping of Flapping Flight and Its Dynamics and Stability at Hovering

机译:扑翼飞行的平移和旋转阻尼及其悬停时的动力学和稳定性

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Body movements of flying insects change their effective wing kinematics and, therefore, influence aerodynamic force and torque production. It was found that substantial aerodynamic damping is produced by flapping wings through a passive mechanism termed “flapping countertorque” during fast yaw turns. We expand this study to include the aerodynamic damping that is produced by flapping wings during body translations and rotations with respect to all its six principal axes—roll, pitch, yaw, forward/backward, sideways, and heave. Analytical models were derived by the use of a quasi-steady aerodynamic model and blade-element analysis by the incorporation of the effective changes of wing kinematics that are caused by body motion. We found that aerodynamic damping, in all these cases, is linearly dependent on the body translational and angular velocities and increases with wing-stroke amplitude and frequency. Based on these analytical models, we calculated the stability derivatives that are associated with the linearized flight dynamics at hover and derived a complete 6-degree-of-freedom (6-DOF) dynamic model. The model was then used to estimate the flight dynamics and stability of four different species of flying insects as case studies. The analytical model that is developed in this paper is important to study the flight dynamics and passive stability of flying animals, as well as to develop flapping-wing micro air vehicles (MAVs) with stable and maneuverable flight, which is achieved through passive dynamic stability and active flight control.
机译:飞行昆虫的身体运动会改变其有效的机翼运动学,因此会影响空气动力和扭矩产生。发现在快速偏航转弯期间,通过被称为“拍打反扭矩”的被动机构拍打机翼,会产生很大的空气动力学阻尼。我们将这项研究扩展到包括空气动力学阻尼,该阻尼是通过在车身相对于其所有六个主轴(横摇,俯仰,偏航,向前/向后,侧向和升沉)的平移和旋转过程中拍打翅膀而产生的。分析模型是通过使用准稳态空气动力学模型和叶片元素分析得出的,其中纳入了由人体运动引起的机翼运动学的有效变化。我们发现,在所有这些情况下,空气动力学阻尼都线性依赖于车身的平移和角速度,并且随着机翼冲程的幅度和频率而增加。基于这些分析模型,我们计算了与悬停时的线性飞行动力学相关的稳定性导数,并得出了完整的6自由度(6-DOF)动力学模型。然后,作为案例研究,使用该模型估算四种不同飞行昆虫的飞行动力学和稳定性。本文开发的分析模型对于研究飞行动物的飞行动力学和被动稳定性,以及开发通过被动动态稳定性实现稳定且可操纵飞行的襟翼微型飞机(MAV)具有重要意义。和主动的飞行控制。

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