Kundanati Lakshminath, Das Prashant, Pugno Nicola M
Laboratory of Bio-Inspired, Bionic, Nano, Meta Materials and Mechanics, Department of Civil, Environmental and Mechanical Engineering, University of Trento, Via Mesiano 77, 38123 Trento, Italy.
Mechanical Engineering Department, University of Alberta, 116 St. and 85 Ave., Edmonton, AB T6G 2R3, Canada.
Materials (Basel). 2021 Jan 25;14(3):559. doi: 10.3390/ma14030559.
Aquatic predatory insects, like the nymphs of a dragonfly, use rapid movements to catch their prey and it presents challenges in terms of movements due to drag forces. Dragonfly nymphs are known to be voracious predators with structures and movements that are yet to be fully understood. Thus, we examine two main mouthparts of the dragonfly nymph (Libellulidae: Insecta: Odonata) that are used in prey capturing and cutting the prey. To observe and analyze the preying mechanism under water, we used high-speed photography and, electron microscopy. The morphological details suggest that the prey-capturing labium is a complex grasping mechanism with additional sensory organs that serve some functionality. The time taken for the protraction and retraction of labium during prey capture was estimated to be 187 ± 54 ms, suggesting that these nymphs have a rapid prey mechanism. The Young's modulus and hardness of the mandibles were estimated to be 9.1 ± 1.9 GPa and 0.85 ± 0.13 GPa, respectively. Such mechanical properties of the mandibles make them hard tools that can cut into the exoskeleton of the prey and also resistant to wear. Thus, studying such mechanisms with their sensory capabilities provides a unique opportunity to design and develop bioinspired underwater deployable mechanisms.
水生食肉昆虫,比如蜻蜓若虫,会利用快速移动来捕食猎物,而由于阻力,这在移动方面带来了挑战。已知蜻蜓若虫是贪婪的捕食者,其结构和移动方式尚未被完全理解。因此,我们研究了蜻蜓若虫(蜻科:昆虫纲:蜻蜓目)用于捕获和切割猎物的两个主要口器。为了观察和分析水下捕食机制,我们使用了高速摄影和电子显微镜。形态学细节表明,用于捕获猎物的下唇是一种复杂的抓握机制,带有一些具有特定功能的额外感觉器官。估计在捕获猎物过程中下唇伸出和缩回所需的时间为187±54毫秒,这表明这些若虫具有快速的捕食机制。上颚的杨氏模量和硬度分别估计为9.1±1.9吉帕和0.85±0.13吉帕。上颚的这种机械性能使其成为能够切入猎物外骨骼且耐磨的坚硬工具。因此,研究这些机制及其感觉能力为设计和开发受生物启发的水下可展开机制提供了独特的机会。