首页> 美国卫生研究院文献>Journal of the Royal Society Interface >Improvement of the aerodynamic performance by wing flexibility and elytra–hind wing interaction of a beetle during forward flight
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Improvement of the aerodynamic performance by wing flexibility and elytra–hind wing interaction of a beetle during forward flight

机译:甲虫在前飞过程中的机翼灵活性和鞘翅与后翅的相互作用改善了空气动力学性能

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摘要

In this work, the aerodynamic performance of beetle wing in free-forward flight was explored by a three-dimensional computational fluid dynamics (CFDs) simulation with measured wing kinematics. It is shown from the CFD results that twist and camber variation, which represent the wing flexibility, are most important when determining the aerodynamic performance. Twisting wing significantly increased the mean lift and camber variation enhanced the mean thrust while the required power was lower than the case when neither was considered. Thus, in a comparison of the power economy among rigid, twisting and flexible models, the flexible model showed the best performance. When the positive effect of wing interaction was added to that of wing flexibility, we found that the elytron created enough lift to support its weight, and the total lift (48.4 mN) generated from the simulation exceeded the gravity force of the beetle (47.5 mN) during forward flight.
机译:在这项工作中,通过对实测机翼运动学进行三维计算流体动力学(CFD)仿真,探索了甲壳虫机翼在自由飞行中的空气动力学性能。从CFD结果可以看出,代表机翼柔性的扭曲和外倾变化在确定空气动力性能时最重要。扭曲的机翼显着增加了平均升力,而外倾角变化则增加了平均推力,而所需功率却低于未考虑两者的情况。因此,在刚性模型,扭曲模型和柔性模型之间的功率经济性比较中,柔性模型显示出最佳性能。当机翼相互作用对机翼柔性产生积极影响时,我们发现elytron产生了足以支撑其重量的升力,并且模拟产生的总升力(48.4 mN)超过了甲虫的重力(47.5 mN) )。

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