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Drag Reduction in a Natural High-Frequency Swinging Micro-Articulation: Mouthparts of the Honey Bee

机译:自然高频摆动微铰接中的减阻:蜜蜂的口器

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Worker-bee mouthparts consist of the glossa, the galeae and the vestigial labial palp, and it is these structures that enable bees to feed themselves. The articulation joints, 60~70?μm in diameter, are present on the tip of the labial palp and are covered with olfactory sensilla, allowing movements between the segments. Using a specially designed high-speed camera system, we discovered that the articulation joint could swing in the nectar at a frequency of ~50?Hz, considerably higher than the usual motion frequency of mammalian joints. To understand the potential drag reduction in this tiny organ, we examined its microstructure and also its surface wettability. We found that chitinous semispherical protuberances (4~6?μm in diameter) are uniformly scattered on the surface of the joint and, moreover, that the surface is hydrophobic. We proposed a hydrodynamic model and revealed that the specialized surface can effectively reduce the mean equivalent friction ( Ff ) by ~10%, through the use of protuberances immersed in the liquid feed. Theoretical results indicated that the dimensions of such protuberances are the predominant factor in minimizing Ff , and that the natural dimensions of the protuberances are close to the theoretical optimum at which friction is at a minimum. These discoveries may inspire the design of high-frequency micro-joints for engineering applications, such as in micro-stirrers.
机译:工蜂的口器由光泽,牛角和残留的唇唇组成,正是这些结构使蜜蜂能够自食其力。唇关节尖端有直径为60〜70?m的关节,并覆盖着嗅觉,可在各节之间运动。通过使用专门设计的高速摄像系统,我们发现关节运动关节可以在花蜜中以〜50?Hz的频率摆动,大大高于哺乳动物关节通常的运动频率。为了了解这种微小器官中潜在的减阻作用,我们检查了其微观结构以及表面润湿性。我们发现,几丁质半球形突起(直径4〜6μm)均匀地散布在关节的表面,而且表面是疏水的。我们提出了一种流体动力学模型,并揭示了专用表面可以通过使用浸入液体进料中的凸起有效地将平均等效摩擦力(F f )降低约10%。理论结果表明,这种凸起的尺寸是使F f 最小化的主要因素,并且凸起的自然尺寸接近于摩擦最小的理论最佳值。这些发现可能会启发设计用于工程应用(例如微搅拌器)的高频微接头。

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