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Clap-and-fling mechanism in a hovering insect-like two-winged flapping-wing micro air vehicle

机译:盘旋在昆虫类双翼扑翼微型飞行器中的拍打机制

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摘要

This study used numerical and experimental approaches to investigate the role played by the clap-and-fling mechanism in enhancing force generation in hovering insect-like two-winged flapping-wing micro air vehicle (FW-MAV). The flapping mechanism was designed to symmetrically flap wings at a high flapping amplitude of approximately 192°. The clap-and-fling mechanisms were thereby implemented at both dorsal and ventral stroke reversals. A computational fluid dynamic (CFD) model was constructed based on three-dimensional wing kinematics to estimate the force generation, which was validated by the measured forces using a 6-axis load cell. The computed forces proved that the CFD model provided reasonable estimation with differences less than 8%, when compared with the measured forces. The measurement indicated that the clap and flings at both the stroke reversals augmented the average vertical force by 16.2% when compared with the force without the clap-and-fling effect. In the CFD simulation, the clap and flings enhanced the vertical force by 11.5% and horizontal drag force by 18.4%. The observations indicated that both the fling and the clap contributed to the augmented vertical force by 62.6% and 37.4%, respectively, and to the augmented horizontal drag force by 71.7% and 28.3%, respectively. The flow structures suggested that a strong downwash was expelled from the opening gap between the trailing edges during the fling as well as the clap at each stroke reversal. In addition to the fling phases, the influx of air into the low-pressure region between the wings from the leading edges also significantly contributed to augmentation of the vertical force. The study conducted for high Reynolds numbers also confirmed that the effect of the clap and fling was insignificant when the minimum distance between the two wings exceeded 1.2c (c = wing chord). Thus, the clap and flings were successfully implemented in the FW-MAV, and there was a significant improvement in the vertical force.
机译:这项研究使用数值和实验方法来研究拍击和逃逸机制在盘旋像昆虫一样的两翼扑翼双翼微型飞行器(FW-MAV)中增强力产生中的作用。拍打机构设计为以大约192°的高拍打幅度对称地拍打机翼。因此,在背侧和腹侧中风逆转时都执行拍击和击打机制。基于三维机翼运动学建立了计算流体动力学(CFD)模型,以估算力的产生,该力通过使用6轴测力计测得的力进行验证。计算得出的力证明,与实测力相比,CFD模型提供了合理的估计,差异小于8%。测量结果表明,与没有拍击和击打效果的力相比,两次击球反转时的拍击和甩动使平均垂直力增加了16.2%。在CFD仿真中,拍手和击打声将垂直力提高了11.5%,水平阻力提高了18.4%。观测结果表明,弹击和拍手都分别使垂直力增加了62.6%和37.4%,对水平阻力增加了71.7%和28.3%。流动结构表明,在甩动过程中,后缘之间的开口间隙以及每次冲程反转时的拍击声都排出了强烈的向下冲洗。除了甩尾阶段,空气还从前缘进入机翼之间的低压区域,这也极大地增加了垂直力。对高雷诺数进行的研究还证实,当两个机翼之间的最小距离超过1.2c(c =机翼弦)时,拍打和甩动的影响微不足道。因此,在FW-MAV中成功地拍打和击打,并且垂直力有了很大的提高。

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