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Elytra boost lift but reduce aerodynamic efficiency in flying beetles

机译:Elytra助力提升但降低了飞行甲虫的空气动力学效率

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摘要

Flying insects typically possess two pairs of wings. In beetles, the front pair has evolved into short, hardened structures, the elytra, which protect the second pair of wings and the abdomen. This allows beetles to exploit habitats that would otherwise cause damage to the wings and body. Many beetles fly with the elytra extended, suggesting that they influence aerodynamic performance, but little is known about their role in flight. Using quantitative measurements of the beetle's wake, we show that the presence of the elytra increases vertical force production by approximately 40 per cent, indicating that they contribute to weight support. The wing-elytra combination creates a complex wake compared with previously studied animal wakes. At mid-downstroke, multiple vortices are visible behind each wing. These include a wingtip and an elytron vortex with the same sense of rotation, a body vortex and an additional vortex of the opposite sense of rotation. This latter vortex reflects a negative interaction between the wing and the elytron, resulting in a single wing span efficiency of approximately 0.77 at mid downstroke. This is lower than that found in birds and bats, suggesting that the extra weight support of the elytra comes at the price of reduced efficiency.
机译:飞行昆虫通常具有两对翅膀。在甲虫中,前对已演变成矮小的,硬化的结构,即鞘翅,它保护第二对翅膀和腹部。这使甲虫可以利用栖息地,否则会破坏翅膀和身体。许多甲虫会随着鞘翅的延伸而飞行,这表明它们会影响空气动力学性能,但对其飞行作用的了解却很少。使用甲虫尾迹的定量测量结果,我们发现鞘管的存在使垂直力的产生增加了约40%,这表明它们有助于支撑体重。与先前研究的动物尾流相比,机翼-鞘翅的组合产生了复杂的尾流。在下中风时,每个机翼后部可见多个涡流。这些包括具有相同旋转方向的翼尖和电子涡旋涡旋,体涡旋和具有相反旋转方向的附加涡旋涡旋。后一个涡流反映了机翼和电子加速器之间的负面相互作用,导致在下冲程中段的单机翼跨度效率约为0.77。这比鸟类和蝙蝠中发现的低,这表明鞘翅目额外的重量支撑是以降低效率为代价的。

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