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Multi-scale structural design and biomechanics of the pistol shrimp snapper claw

机译:手枪虾鲷鱼爪的多尺度结构设计和生物力学

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The Arthropoda, the largest phylum of the Animal Kingdom, have successfully evolved to survive various ecological constraints under a wide range of environmental conditions. Central to this survival are the structural designs developed in their exoskeletons and their raptorial appendages for protection and hunting. One such example, the pistol shrimp, is a shallow-water crustacean that is well-known for its aggressive hunting behavior, using its snapper claw to trigger the nucleation of cavitation bubbles that strike targets. In this study, we conducted a multi-scale structural/nanomechanics relationship study of this biotool to analyze its mechanical response to contact stresses. We found that the pistol shrimp snapper claw, which exhibits the capacity to emit a high-velocity water jet during rapid closure actions, is more brittle than other mineralized biotools, exhibiting accelerated wear damage under contact stresses. However, due to an angular offset between the dactylus and pollex of the snapper claw, the appendage never engages in any mechanical contact during the snapping action. This feature is in stark contrast to that reported in other fast raptorial appendages of crustaceans, notably the mantis shrimp dactyl club, which is designed to shatter close range targets in contact mode and exhibits a superior resistance to contact damage and wear. These findings suggest that adaptation of hunting appendages goes beyond their macroscopic morphology, and that multi-scale structural design concomitantly adapted to function, with enhanced structural complexification for tools that are subjected to more intense contact stresses.
机译:节肢动物是动物王国的最大字段,已经成功地进化以在各种环境条件下存活各种生态限制。这种生存的核心是他们的外骨骼和急流封面的结构设计,用于保护和狩猎。一种这样的例子,手枪虾是一种浅水甲壳类动物,该浅水甲壳类动物以其积极的狩猎行为而闻名,使用其鲷鱼爪触发撞击目标的空化泡沫的成核。在这项研究中,我们进行了这种生物池的多尺度结构/纳米力学关系研究,以分析其对接触应力的机械响应。我们发现手枪虾鲷鱼爪,它表现出在快速闭合动作期间发射高速水射流的能力,比其他矿化生物冷却更脆,在接触应力下表现出加速磨损损伤。然而,由于捕捉爪的Dayylus和Pollex之间的角度偏移,附属物在捕捉动作期间切勿在任何机械触点上接合。此功能与甲壳类动物的其他快速急流阑尾报告的鲜明对比度,特别是螳螂虾DACTYL CLUB,其设计用于在接触模式中粉碎近距离目标,并且具有卓越的接触损坏和磨损。这些发现表明,狩猎附属物的适应超出了宏观形态,并且多尺度结构设计伴随着功能,具有增强的结构络合,用于对更强烈的接触应力进行更强烈的接触应力。

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