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Flexural stiffness in insect wings I. Scaling and the influence of wing venation

机译:昆虫机翼的抗弯刚度I.结垢和机翼静脉的影响

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摘要

During flight, many insect wings undergo dramatic deformations that are controlled largely by the architecture of the wing. The pattern of supporting veins in wings varies widely among insect orders and families, but the functional significance of phylogenetic trends in wing venation remains unknown, and measurements of the mechanical properties of wings are rare. In this study, we address the relationship between venation pattern and wing flexibility by measuring the flexural stiffness of wings (in both the spanwise and chordwise directions) and quantifying wing venation in 16 insect species from six orders. These measurements show that spanwise flexural stiffness scales strongly with the cube of wing span, whereas chordwise flexural stiffness scales with the square of chord length. Wing size accounts for over 95% of the variability in measured flexural stiffness; the residuals of this relationship are small and uncorrelated with standardized independent contrasts of wing venation characters. In all species tested, spanwise flexural stiffness is 1-2 orders of magnitude larger than chordwise flexural stiffness. A finite element model of an insect wing demonstrates that leading edge veins are crucial in generating this spanwise-chordwise anisotropy.
机译:在飞行过程中,许多昆虫的机翼都会经历剧烈的变形,这在很大程度上受到机翼结构的控制。机翼上的支撑静脉的模式在昆虫纲和科之间差异很大,但是机翼脉管系统发育趋势的功能意义仍然未知,机翼机械性能的测量很少。在这项研究中,我们通过测量机翼的弯曲刚度(在翼展方向和翼弦方向)并量化六个等级的16种昆虫的机翼静脉,来解决通气模式与机翼柔性之间的关系。这些测量结果表明,翼展方向的弯曲刚度与机翼翼展的立方成正比,而翼弦方向的弯曲刚度则与弦长的平方成正比。机翼尺寸占所测挠度刚度变化的95%以上;这种关系的残差很小,并且与机翼通风特性的标准化独立对比无关。在所有测试的物种中,翼展方向的抗弯刚度比弦弦方向的抗弯刚度大1-2个数量级。昆虫翅膀的有限元模型表明,前缘静脉对于产生这种跨展向-弦向各向异性至关重要。

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