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On the fracture resistance of dragonfly wings

机译:论蜻蜓翅膀的裂缝抗性

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The biological success of insects is attributed to evolution of their wings. Over 400 million years of evolution, insect wings have become one of the most complex and adaptive locomotor structures in the animal kingdom. Although seemingly fragile, they satisfactorily perform their intended function under millions of cycles of repeated stress without failure. However, mechanistic origins of wing resistance to failure remain largely unknown. Most of our understanding of biomechanics of insect wing and flight is based on computer simulations and laboratory experiments. While those studies are needed to reveal certain aspects of wing design, a full understanding can be achieved only by linking obtained data with results of studies in natural conditions. In this study, we tracked the initiation and progression of wing damage of dragonflies in their natural habitats. By quantifying wing area loss over the flight season, we aimed to find a link between the wing structure and accumulated damage. Our results showed that dragonfly wings are exceptionally damage tolerant. Even at the very end of the flight season, the mean wing area loss does not exceed 1.3% of the total wing area. Crack termination, deflection, bifurcation and bridging are the mechanisms that raise the resistance of wings to fracture. This study suggests that insect wings are adapted not only for flight efficiency, but also for damage tolerance. Hence, they should be studied not only from the perspective of aerodynamic performance, but also from that of fracture mechanics.
机译:昆虫的生物成功归因于他们的翅膀的演变。 4亿多年来的进化,昆虫翅膀已成为动物王国中最复杂和适应的运动结构之一。虽然看似脆弱,但它们令人满意地在数百万的重复压力周期下进行预期的功能而没有失败。然而,机翼抵抗失败的机械起源在很大程度上是未知的。我们对昆虫翼和飞行生物力学的大部分理解是基于计算机模拟和实验室实验。虽然需要这些研究来揭示机翼设计的某些方面,但只能通过将获得的数据与自然条件的研究结果联系起来,可以实现全面的理解。在这项研究中,我们在自然栖息地中履行了蜻蜓的机翼伤害的启动和进展。通过在飞行季节量化翼面积损失,我们旨在找到机翼结构和累积损坏之间的联系。我们的研究结果表明,蜻蜓翅膀的耐受性差。即使在飞行季节的结束时,平均翼面积损失也不会超过总翼面积的1.3%。裂缝终止,偏转,分叉和桥接是提高翅膀对骨折的阻力的机制。本研究表明,昆虫翅膀不仅适用于飞行效率,而且适用于损坏耐受性。因此,不仅应该从空气动力学性能的角度来研究它们,也应该从骨折力学的角度进行研究。

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