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Piezoelectric energy harvesting from morphing wing motions for micro air vehicles

机译:微型飞机变形机翼运动产生的压电能量收集

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摘要

Wing flapping and morphing can be very beneficial to managing the weight of micro air vehicles through coupling the aerodynamic forces with stability and control. In this letter, harvesting energy from the wing morphing is studied to power cameras, sensors, or communication devices of micro air vehicles and to aid in the management of their power. The aerodynamic loads on flapping wings are simulated using a three-dimensional unsteady vortex lattice method. Active wing shape morphing is considered to enhance the performance of the flapping motion. A gradient-based optimization algorithm is used to pinpoint the optimal kinematics maximizing the propellent efficiency. To benefit from the wing deformation, we place piezoelectric layers near the wing roots. Gauss law is used to estimate the electrical harvested power. We demonstrate that enough power can be generated to operate a camera. Numerical analysis shows the feasibility of exploiting wing morphing to harvest energy and improving the design and performance of micro air vehicles.
机译:通过将气动力与稳定性和控制性结合起来,机翼拍打和变形对管理微型航空器的重量非常有益。在这封信中,研究了从机翼变形中获取能量的过程,以为微型飞行器的摄像头,传感器或通信设备提供动力,并帮助对其进行动力管理。使用三维非定常涡旋格子法模拟了襟翼上的空气动力载荷。主动翼形变形被认为可以增强扑翼运动的性能。基于梯度的优化算法用于查明使推进效率最大化的最佳运动学。为了受益于机翼变形,我们在机翼根部附近放置了压电层。高斯定律用于估计电收集功率。我们证明可以产生足够的能量来操作相机。数值分析表明,利用机翼变形来获取能量并改善微型飞行器的设计和性能是可行的。

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