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A COMPUTATIONAL STUDY OF INSECT WING CROSS-SECTIONAL GEOMETRY ON FLIGHT PERFORMANCE

机译:昆虫机翼横截面几何形状对飞行性能的计算研究

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The influence of cross-sectional geometry on flight performance is investigated for an insect wing using bee-like kinematics. Bee flight is of particular interest due to its mechanical simplicity, utilizing only three degrees of freedom, a high flap frequency, and mechanically linked front and hind wings. These unique flapping flight kinematics result in extremely agile flight characteristics, capable of carrying extraordinary loads relative to the bee's weight, at a biologically capable efficiency. The performance of a corrugated insect wing and a more intuitively aerodynamic profile are compared computationally. At velocities from 1-3 m/s, the approximated cross-section is foudn to overpredict the lift generated by the corrugated profile by up to 18%. At higher velocities, 4 and 5 m/s, the approximated profile underpredicts the lift generated by the corrugated cross-section by 15%. Based upon this information the cross-sectional geometry of an insect's wing is significant to the investigation and quantification of insect flight characteristics, for both computational analysis and future robotic applications.
机译:使用像蜜蜂一样的运动学研究了昆虫翅膀的横截面几何形状对飞行性能的影响。蜜蜂飞行由于其机械简单性,仅利用三个自由度,较高的襟翼频率以及机械连接的前翼和后翼而特别受关注。这些独特的拍打飞行运动学特性可实现极其灵活的飞行特性,能够以生物学上有效的效率承受相对于蜜蜂重量的非凡负载。通过计算比较了波纹状昆虫翼的性能和更直观的空气动力学轮廓。在1-3 m / s的速度下,近似的横截面会过度预测由波纹轮廓产生的升力,最高可达18%。在较高的速度(4和5 m / s)下,近似轮廓将波纹断面产生的升力预测不足15%。基于此信息,对于计算分析和未来的机器人应用而言,昆虫翅膀的横截面几何形状对于研究和量化昆虫的飞行特性均具有重要意义。

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