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A new bioinspired method for pressure and flow sensing based on the underwater air-retaining surface of the backswimmer Notonecta

机译:基于反潜Notonecta水下空气保留表面的压力和流量感测的新方法

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摘要

In technical systems, static pressure and pressure changes are usually measured with piezoelectric materials or solid membranes. In this paper, we suggest a new biomimetic principle based on thin air layers that can be used to measure underwater pressure changes. Submerged backswimmers (Notonecta sp.) are well known for their ability to retain air layers on the surface of their forewings (hemelytra). While analyzing the hemelytra of Notonecta, we found that the air layer on the hemelytra, in combination with various types of mechanosensitive hairs (clubs and pins), most likely serve a sensory function. We suggest that this predatory aquatic insect can detect pressure changes and water movements by sensing volume changes of the air layer under water. In the present study, we used a variety of microscopy techniques to investigate the fine structure of the hemelytra. Furthermore, we provide a biomimetic proof of principle to validate our hypothesis. The suggested sensory principle has never been documented before and is not only of interest for sensory biologists but can also be used for the development of highly sensitive underwater acoustic or seismographic sensory systems.
机译:在技​​术系统中,通常使用压电材料或固体膜来测量静压和压力变化。在本文中,我们提出了一种新的仿生原理,该原理基于薄空气层,可用于测量水下压力变化。浸没式后掠器(Notonecta sp。)以将空气层保留在其前爪(hemelytra)表面上的能力而闻名。分析Notonecta的血红素丝时,我们发现血红素丝上的空气层与各种类型的对机械敏感的毛发(棍棒和大头针)结合在一起,最有可能发挥感觉功能。我们建议这种掠食性水生昆虫可以通过感知水下空气层的体积变化来检测压力变化和水运动。在本研究中,我们使用了多种显微镜技术来研究血红素的精细结构。此外,我们提供了仿生原理的证明来验证我们的假设。所提出的感觉原理从未被记录过,不仅使感觉生物学家感兴趣,而且还可以用于开发高度敏感的水下声学或地震传感系统。

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