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Turning dynamics and passive damping in flapping flight

机译:扑翼飞行中的转向动力学和被动阻尼

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We investigated whether flapping flight has an inherent stability by analyzing the inertial and aerodynamic effects of flapping wings on body dynamics. Based on wing and body kinematics of free flying fruit flies during rapid maneuvers, we found a passive counter torque due to body rotation. It is identified both in simulation through quasi-steady state aerodynamic model and through experiments on a dynamically scaled robotic wing. An analytical form is derived correspondingly. In the turning yaw axis, the estimated damping coefficient of flapping wings is significantly higher than body frictional damping; this indicates a passive deceleration during turning. By simulating insect to rotate about each principal axis of inertial and body frames, we calculated the corresponding damping coefficients, and further analyzed the attitude stability. The result reveals that, passive damping of flapping flight, while does not necessarily lead to a stable full body dynamics, provides a considerable passive restoring torque that could be critical for flight stabilization and control in the design of micro aerial vehicles. Preliminary analysis on the scaling parameters of passive damping was also performed.
机译:我们通过分析襟翼对人体动力学的惯性和空气动力学影响,研究了襟翼飞行是否具有固有的稳定性。基于自由机动果蝇在快速机动过程中的机翼和身体运动学,我们发现由于身体旋转而产生的被动反扭矩。在模拟中,通过准稳态空气动力学模型以及在动态缩放的机器人机翼上进行的实验都可以识别出这种现象。相应地得出分析形式。在旋转偏航轴上,估计的襟翼的阻尼系数明显高于车身摩擦阻尼。这表示转弯时被动减速。通过模拟昆虫绕惯性和主体框架的每个主轴旋转,我们计算了相应的阻尼系数,并进一步分析了姿态稳定性。结果表明,扑翼飞行的被动阻尼虽然不一定会导致稳定的全身动力学,但会提供相当大的被动恢复扭矩,这对于微型飞机的飞行稳定和控制至关重要。还对被动阻尼的比例参数进行了初步分析。

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